1 //===--- SemaInit.cpp - Semantic Analysis for Initializers ----------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements semantic analysis for initializers. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "clang/AST/ASTContext.h" 14 #include "clang/AST/DeclObjC.h" 15 #include "clang/AST/ExprCXX.h" 16 #include "clang/AST/ExprObjC.h" 17 #include "clang/AST/ExprOpenMP.h" 18 #include "clang/AST/TypeLoc.h" 19 #include "clang/Basic/CharInfo.h" 20 #include "clang/Basic/SourceManager.h" 21 #include "clang/Basic/TargetInfo.h" 22 #include "clang/Sema/Designator.h" 23 #include "clang/Sema/Initialization.h" 24 #include "clang/Sema/Lookup.h" 25 #include "clang/Sema/SemaInternal.h" 26 #include "llvm/ADT/APInt.h" 27 #include "llvm/ADT/SmallString.h" 28 #include "llvm/Support/ErrorHandling.h" 29 #include "llvm/Support/raw_ostream.h" 30 31 using namespace clang; 32 33 //===----------------------------------------------------------------------===// 34 // Sema Initialization Checking 35 //===----------------------------------------------------------------------===// 36 37 /// Check whether T is compatible with a wide character type (wchar_t, 38 /// char16_t or char32_t). 39 static bool IsWideCharCompatible(QualType T, ASTContext &Context) { 40 if (Context.typesAreCompatible(Context.getWideCharType(), T)) 41 return true; 42 if (Context.getLangOpts().CPlusPlus || Context.getLangOpts().C11) { 43 return Context.typesAreCompatible(Context.Char16Ty, T) || 44 Context.typesAreCompatible(Context.Char32Ty, T); 45 } 46 return false; 47 } 48 49 enum StringInitFailureKind { 50 SIF_None, 51 SIF_NarrowStringIntoWideChar, 52 SIF_WideStringIntoChar, 53 SIF_IncompatWideStringIntoWideChar, 54 SIF_UTF8StringIntoPlainChar, 55 SIF_PlainStringIntoUTF8Char, 56 SIF_Other 57 }; 58 59 /// Check whether the array of type AT can be initialized by the Init 60 /// expression by means of string initialization. Returns SIF_None if so, 61 /// otherwise returns a StringInitFailureKind that describes why the 62 /// initialization would not work. 63 static StringInitFailureKind IsStringInit(Expr *Init, const ArrayType *AT, 64 ASTContext &Context) { 65 if (!isa<ConstantArrayType>(AT) && !isa<IncompleteArrayType>(AT)) 66 return SIF_Other; 67 68 // See if this is a string literal or @encode. 69 Init = Init->IgnoreParens(); 70 71 // Handle @encode, which is a narrow string. 72 if (isa<ObjCEncodeExpr>(Init) && AT->getElementType()->isCharType()) 73 return SIF_None; 74 75 // Otherwise we can only handle string literals. 76 StringLiteral *SL = dyn_cast<StringLiteral>(Init); 77 if (!SL) 78 return SIF_Other; 79 80 const QualType ElemTy = 81 Context.getCanonicalType(AT->getElementType()).getUnqualifiedType(); 82 83 switch (SL->getKind()) { 84 case StringLiteral::UTF8: 85 // char8_t array can be initialized with a UTF-8 string. 86 if (ElemTy->isChar8Type()) 87 return SIF_None; 88 LLVM_FALLTHROUGH; 89 case StringLiteral::Ascii: 90 // char array can be initialized with a narrow string. 91 // Only allow char x[] = "foo"; not char x[] = L"foo"; 92 if (ElemTy->isCharType()) 93 return (SL->getKind() == StringLiteral::UTF8 && 94 Context.getLangOpts().Char8) 95 ? SIF_UTF8StringIntoPlainChar 96 : SIF_None; 97 if (ElemTy->isChar8Type()) 98 return SIF_PlainStringIntoUTF8Char; 99 if (IsWideCharCompatible(ElemTy, Context)) 100 return SIF_NarrowStringIntoWideChar; 101 return SIF_Other; 102 // C99 6.7.8p15 (with correction from DR343), or C11 6.7.9p15: 103 // "An array with element type compatible with a qualified or unqualified 104 // version of wchar_t, char16_t, or char32_t may be initialized by a wide 105 // string literal with the corresponding encoding prefix (L, u, or U, 106 // respectively), optionally enclosed in braces. 107 case StringLiteral::UTF16: 108 if (Context.typesAreCompatible(Context.Char16Ty, ElemTy)) 109 return SIF_None; 110 if (ElemTy->isCharType() || ElemTy->isChar8Type()) 111 return SIF_WideStringIntoChar; 112 if (IsWideCharCompatible(ElemTy, Context)) 113 return SIF_IncompatWideStringIntoWideChar; 114 return SIF_Other; 115 case StringLiteral::UTF32: 116 if (Context.typesAreCompatible(Context.Char32Ty, ElemTy)) 117 return SIF_None; 118 if (ElemTy->isCharType() || ElemTy->isChar8Type()) 119 return SIF_WideStringIntoChar; 120 if (IsWideCharCompatible(ElemTy, Context)) 121 return SIF_IncompatWideStringIntoWideChar; 122 return SIF_Other; 123 case StringLiteral::Wide: 124 if (Context.typesAreCompatible(Context.getWideCharType(), ElemTy)) 125 return SIF_None; 126 if (ElemTy->isCharType() || ElemTy->isChar8Type()) 127 return SIF_WideStringIntoChar; 128 if (IsWideCharCompatible(ElemTy, Context)) 129 return SIF_IncompatWideStringIntoWideChar; 130 return SIF_Other; 131 } 132 133 llvm_unreachable("missed a StringLiteral kind?"); 134 } 135 136 static StringInitFailureKind IsStringInit(Expr *init, QualType declType, 137 ASTContext &Context) { 138 const ArrayType *arrayType = Context.getAsArrayType(declType); 139 if (!arrayType) 140 return SIF_Other; 141 return IsStringInit(init, arrayType, Context); 142 } 143 144 bool Sema::IsStringInit(Expr *Init, const ArrayType *AT) { 145 return ::IsStringInit(Init, AT, Context) == SIF_None; 146 } 147 148 /// Update the type of a string literal, including any surrounding parentheses, 149 /// to match the type of the object which it is initializing. 150 static void updateStringLiteralType(Expr *E, QualType Ty) { 151 while (true) { 152 E->setType(Ty); 153 E->setValueKind(VK_RValue); 154 if (isa<StringLiteral>(E) || isa<ObjCEncodeExpr>(E)) { 155 break; 156 } else if (ParenExpr *PE = dyn_cast<ParenExpr>(E)) { 157 E = PE->getSubExpr(); 158 } else if (UnaryOperator *UO = dyn_cast<UnaryOperator>(E)) { 159 assert(UO->getOpcode() == UO_Extension); 160 E = UO->getSubExpr(); 161 } else if (GenericSelectionExpr *GSE = dyn_cast<GenericSelectionExpr>(E)) { 162 E = GSE->getResultExpr(); 163 } else if (ChooseExpr *CE = dyn_cast<ChooseExpr>(E)) { 164 E = CE->getChosenSubExpr(); 165 } else { 166 llvm_unreachable("unexpected expr in string literal init"); 167 } 168 } 169 } 170 171 /// Fix a compound literal initializing an array so it's correctly marked 172 /// as an rvalue. 173 static void updateGNUCompoundLiteralRValue(Expr *E) { 174 while (true) { 175 E->setValueKind(VK_RValue); 176 if (isa<CompoundLiteralExpr>(E)) { 177 break; 178 } else if (ParenExpr *PE = dyn_cast<ParenExpr>(E)) { 179 E = PE->getSubExpr(); 180 } else if (UnaryOperator *UO = dyn_cast<UnaryOperator>(E)) { 181 assert(UO->getOpcode() == UO_Extension); 182 E = UO->getSubExpr(); 183 } else if (GenericSelectionExpr *GSE = dyn_cast<GenericSelectionExpr>(E)) { 184 E = GSE->getResultExpr(); 185 } else if (ChooseExpr *CE = dyn_cast<ChooseExpr>(E)) { 186 E = CE->getChosenSubExpr(); 187 } else { 188 llvm_unreachable("unexpected expr in array compound literal init"); 189 } 190 } 191 } 192 193 static void CheckStringInit(Expr *Str, QualType &DeclT, const ArrayType *AT, 194 Sema &S) { 195 // Get the length of the string as parsed. 196 auto *ConstantArrayTy = 197 cast<ConstantArrayType>(Str->getType()->getAsArrayTypeUnsafe()); 198 uint64_t StrLength = ConstantArrayTy->getSize().getZExtValue(); 199 200 if (const IncompleteArrayType *IAT = dyn_cast<IncompleteArrayType>(AT)) { 201 // C99 6.7.8p14. We have an array of character type with unknown size 202 // being initialized to a string literal. 203 llvm::APInt ConstVal(32, StrLength); 204 // Return a new array type (C99 6.7.8p22). 205 DeclT = S.Context.getConstantArrayType(IAT->getElementType(), 206 ConstVal, nullptr, 207 ArrayType::Normal, 0); 208 updateStringLiteralType(Str, DeclT); 209 return; 210 } 211 212 const ConstantArrayType *CAT = cast<ConstantArrayType>(AT); 213 214 // We have an array of character type with known size. However, 215 // the size may be smaller or larger than the string we are initializing. 216 // FIXME: Avoid truncation for 64-bit length strings. 217 if (S.getLangOpts().CPlusPlus) { 218 if (StringLiteral *SL = dyn_cast<StringLiteral>(Str->IgnoreParens())) { 219 // For Pascal strings it's OK to strip off the terminating null character, 220 // so the example below is valid: 221 // 222 // unsigned char a[2] = "\pa"; 223 if (SL->isPascal()) 224 StrLength--; 225 } 226 227 // [dcl.init.string]p2 228 if (StrLength > CAT->getSize().getZExtValue()) 229 S.Diag(Str->getBeginLoc(), 230 diag::err_initializer_string_for_char_array_too_long) 231 << Str->getSourceRange(); 232 } else { 233 // C99 6.7.8p14. 234 if (StrLength-1 > CAT->getSize().getZExtValue()) 235 S.Diag(Str->getBeginLoc(), 236 diag::ext_initializer_string_for_char_array_too_long) 237 << Str->getSourceRange(); 238 } 239 240 // Set the type to the actual size that we are initializing. If we have 241 // something like: 242 // char x[1] = "foo"; 243 // then this will set the string literal's type to char[1]. 244 updateStringLiteralType(Str, DeclT); 245 } 246 247 //===----------------------------------------------------------------------===// 248 // Semantic checking for initializer lists. 249 //===----------------------------------------------------------------------===// 250 251 namespace { 252 253 /// Semantic checking for initializer lists. 254 /// 255 /// The InitListChecker class contains a set of routines that each 256 /// handle the initialization of a certain kind of entity, e.g., 257 /// arrays, vectors, struct/union types, scalars, etc. The 258 /// InitListChecker itself performs a recursive walk of the subobject 259 /// structure of the type to be initialized, while stepping through 260 /// the initializer list one element at a time. The IList and Index 261 /// parameters to each of the Check* routines contain the active 262 /// (syntactic) initializer list and the index into that initializer 263 /// list that represents the current initializer. Each routine is 264 /// responsible for moving that Index forward as it consumes elements. 265 /// 266 /// Each Check* routine also has a StructuredList/StructuredIndex 267 /// arguments, which contains the current "structured" (semantic) 268 /// initializer list and the index into that initializer list where we 269 /// are copying initializers as we map them over to the semantic 270 /// list. Once we have completed our recursive walk of the subobject 271 /// structure, we will have constructed a full semantic initializer 272 /// list. 273 /// 274 /// C99 designators cause changes in the initializer list traversal, 275 /// because they make the initialization "jump" into a specific 276 /// subobject and then continue the initialization from that 277 /// point. CheckDesignatedInitializer() recursively steps into the 278 /// designated subobject and manages backing out the recursion to 279 /// initialize the subobjects after the one designated. 280 /// 281 /// If an initializer list contains any designators, we build a placeholder 282 /// structured list even in 'verify only' mode, so that we can track which 283 /// elements need 'empty' initializtion. 284 class InitListChecker { 285 Sema &SemaRef; 286 bool hadError = false; 287 bool VerifyOnly; // No diagnostics. 288 bool TreatUnavailableAsInvalid; // Used only in VerifyOnly mode. 289 bool InOverloadResolution; 290 InitListExpr *FullyStructuredList = nullptr; 291 NoInitExpr *DummyExpr = nullptr; 292 293 NoInitExpr *getDummyInit() { 294 if (!DummyExpr) 295 DummyExpr = new (SemaRef.Context) NoInitExpr(SemaRef.Context.VoidTy); 296 return DummyExpr; 297 } 298 299 void CheckImplicitInitList(const InitializedEntity &Entity, 300 InitListExpr *ParentIList, QualType T, 301 unsigned &Index, InitListExpr *StructuredList, 302 unsigned &StructuredIndex); 303 void CheckExplicitInitList(const InitializedEntity &Entity, 304 InitListExpr *IList, QualType &T, 305 InitListExpr *StructuredList, 306 bool TopLevelObject = false); 307 void CheckListElementTypes(const InitializedEntity &Entity, 308 InitListExpr *IList, QualType &DeclType, 309 bool SubobjectIsDesignatorContext, 310 unsigned &Index, 311 InitListExpr *StructuredList, 312 unsigned &StructuredIndex, 313 bool TopLevelObject = false); 314 void CheckSubElementType(const InitializedEntity &Entity, 315 InitListExpr *IList, QualType ElemType, 316 unsigned &Index, 317 InitListExpr *StructuredList, 318 unsigned &StructuredIndex); 319 void CheckComplexType(const InitializedEntity &Entity, 320 InitListExpr *IList, QualType DeclType, 321 unsigned &Index, 322 InitListExpr *StructuredList, 323 unsigned &StructuredIndex); 324 void CheckScalarType(const InitializedEntity &Entity, 325 InitListExpr *IList, QualType DeclType, 326 unsigned &Index, 327 InitListExpr *StructuredList, 328 unsigned &StructuredIndex); 329 void CheckReferenceType(const InitializedEntity &Entity, 330 InitListExpr *IList, QualType DeclType, 331 unsigned &Index, 332 InitListExpr *StructuredList, 333 unsigned &StructuredIndex); 334 void CheckVectorType(const InitializedEntity &Entity, 335 InitListExpr *IList, QualType DeclType, unsigned &Index, 336 InitListExpr *StructuredList, 337 unsigned &StructuredIndex); 338 void CheckStructUnionTypes(const InitializedEntity &Entity, 339 InitListExpr *IList, QualType DeclType, 340 CXXRecordDecl::base_class_range Bases, 341 RecordDecl::field_iterator Field, 342 bool SubobjectIsDesignatorContext, unsigned &Index, 343 InitListExpr *StructuredList, 344 unsigned &StructuredIndex, 345 bool TopLevelObject = false); 346 void CheckArrayType(const InitializedEntity &Entity, 347 InitListExpr *IList, QualType &DeclType, 348 llvm::APSInt elementIndex, 349 bool SubobjectIsDesignatorContext, unsigned &Index, 350 InitListExpr *StructuredList, 351 unsigned &StructuredIndex); 352 bool CheckDesignatedInitializer(const InitializedEntity &Entity, 353 InitListExpr *IList, DesignatedInitExpr *DIE, 354 unsigned DesigIdx, 355 QualType &CurrentObjectType, 356 RecordDecl::field_iterator *NextField, 357 llvm::APSInt *NextElementIndex, 358 unsigned &Index, 359 InitListExpr *StructuredList, 360 unsigned &StructuredIndex, 361 bool FinishSubobjectInit, 362 bool TopLevelObject); 363 InitListExpr *getStructuredSubobjectInit(InitListExpr *IList, unsigned Index, 364 QualType CurrentObjectType, 365 InitListExpr *StructuredList, 366 unsigned StructuredIndex, 367 SourceRange InitRange, 368 bool IsFullyOverwritten = false); 369 void UpdateStructuredListElement(InitListExpr *StructuredList, 370 unsigned &StructuredIndex, 371 Expr *expr); 372 InitListExpr *createInitListExpr(QualType CurrentObjectType, 373 SourceRange InitRange, 374 unsigned ExpectedNumInits); 375 int numArrayElements(QualType DeclType); 376 int numStructUnionElements(QualType DeclType); 377 378 ExprResult PerformEmptyInit(SourceLocation Loc, 379 const InitializedEntity &Entity); 380 381 /// Diagnose that OldInit (or part thereof) has been overridden by NewInit. 382 void diagnoseInitOverride(Expr *OldInit, SourceRange NewInitRange, 383 bool FullyOverwritten = true) { 384 // Overriding an initializer via a designator is valid with C99 designated 385 // initializers, but ill-formed with C++20 designated initializers. 386 unsigned DiagID = SemaRef.getLangOpts().CPlusPlus 387 ? diag::ext_initializer_overrides 388 : diag::warn_initializer_overrides; 389 390 if (InOverloadResolution && SemaRef.getLangOpts().CPlusPlus) { 391 // In overload resolution, we have to strictly enforce the rules, and so 392 // don't allow any overriding of prior initializers. This matters for a 393 // case such as: 394 // 395 // union U { int a, b; }; 396 // struct S { int a, b; }; 397 // void f(U), f(S); 398 // 399 // Here, f({.a = 1, .b = 2}) is required to call the struct overload. For 400 // consistency, we disallow all overriding of prior initializers in 401 // overload resolution, not only overriding of union members. 402 hadError = true; 403 } else if (OldInit->getType().isDestructedType() && !FullyOverwritten) { 404 // If we'll be keeping around the old initializer but overwriting part of 405 // the object it initialized, and that object is not trivially 406 // destructible, this can leak. Don't allow that, not even as an 407 // extension. 408 // 409 // FIXME: It might be reasonable to allow this in cases where the part of 410 // the initializer that we're overriding has trivial destruction. 411 DiagID = diag::err_initializer_overrides_destructed; 412 } else if (!OldInit->getSourceRange().isValid()) { 413 // We need to check on source range validity because the previous 414 // initializer does not have to be an explicit initializer. e.g., 415 // 416 // struct P { int a, b; }; 417 // struct PP { struct P p } l = { { .a = 2 }, .p.b = 3 }; 418 // 419 // There is an overwrite taking place because the first braced initializer 420 // list "{ .a = 2 }" already provides value for .p.b (which is zero). 421 // 422 // Such overwrites are harmless, so we don't diagnose them. (Note that in 423 // C++, this cannot be reached unless we've already seen and diagnosed a 424 // different conformance issue, such as a mixture of designated and 425 // non-designated initializers or a multi-level designator.) 426 return; 427 } 428 429 if (!VerifyOnly) { 430 SemaRef.Diag(NewInitRange.getBegin(), DiagID) 431 << NewInitRange << FullyOverwritten << OldInit->getType(); 432 SemaRef.Diag(OldInit->getBeginLoc(), diag::note_previous_initializer) 433 << (OldInit->HasSideEffects(SemaRef.Context) && FullyOverwritten) 434 << OldInit->getSourceRange(); 435 } 436 } 437 438 // Explanation on the "FillWithNoInit" mode: 439 // 440 // Assume we have the following definitions (Case#1): 441 // struct P { char x[6][6]; } xp = { .x[1] = "bar" }; 442 // struct PP { struct P lp; } l = { .lp = xp, .lp.x[1][2] = 'f' }; 443 // 444 // l.lp.x[1][0..1] should not be filled with implicit initializers because the 445 // "base" initializer "xp" will provide values for them; l.lp.x[1] will be "baf". 446 // 447 // But if we have (Case#2): 448 // struct PP l = { .lp = xp, .lp.x[1] = { [2] = 'f' } }; 449 // 450 // l.lp.x[1][0..1] are implicitly initialized and do not use values from the 451 // "base" initializer; l.lp.x[1] will be "\0\0f\0\0\0". 452 // 453 // To distinguish Case#1 from Case#2, and also to avoid leaving many "holes" 454 // in the InitListExpr, the "holes" in Case#1 are filled not with empty 455 // initializers but with special "NoInitExpr" place holders, which tells the 456 // CodeGen not to generate any initializers for these parts. 457 void FillInEmptyInitForBase(unsigned Init, const CXXBaseSpecifier &Base, 458 const InitializedEntity &ParentEntity, 459 InitListExpr *ILE, bool &RequiresSecondPass, 460 bool FillWithNoInit); 461 void FillInEmptyInitForField(unsigned Init, FieldDecl *Field, 462 const InitializedEntity &ParentEntity, 463 InitListExpr *ILE, bool &RequiresSecondPass, 464 bool FillWithNoInit = false); 465 void FillInEmptyInitializations(const InitializedEntity &Entity, 466 InitListExpr *ILE, bool &RequiresSecondPass, 467 InitListExpr *OuterILE, unsigned OuterIndex, 468 bool FillWithNoInit = false); 469 bool CheckFlexibleArrayInit(const InitializedEntity &Entity, 470 Expr *InitExpr, FieldDecl *Field, 471 bool TopLevelObject); 472 void CheckEmptyInitializable(const InitializedEntity &Entity, 473 SourceLocation Loc); 474 475 public: 476 InitListChecker(Sema &S, const InitializedEntity &Entity, InitListExpr *IL, 477 QualType &T, bool VerifyOnly, bool TreatUnavailableAsInvalid, 478 bool InOverloadResolution = false); 479 bool HadError() { return hadError; } 480 481 // Retrieves the fully-structured initializer list used for 482 // semantic analysis and code generation. 483 InitListExpr *getFullyStructuredList() const { return FullyStructuredList; } 484 }; 485 486 } // end anonymous namespace 487 488 ExprResult InitListChecker::PerformEmptyInit(SourceLocation Loc, 489 const InitializedEntity &Entity) { 490 InitializationKind Kind = InitializationKind::CreateValue(Loc, Loc, Loc, 491 true); 492 MultiExprArg SubInit; 493 Expr *InitExpr; 494 InitListExpr DummyInitList(SemaRef.Context, Loc, None, Loc); 495 496 // C++ [dcl.init.aggr]p7: 497 // If there are fewer initializer-clauses in the list than there are 498 // members in the aggregate, then each member not explicitly initialized 499 // ... 500 bool EmptyInitList = SemaRef.getLangOpts().CPlusPlus11 && 501 Entity.getType()->getBaseElementTypeUnsafe()->isRecordType(); 502 if (EmptyInitList) { 503 // C++1y / DR1070: 504 // shall be initialized [...] from an empty initializer list. 505 // 506 // We apply the resolution of this DR to C++11 but not C++98, since C++98 507 // does not have useful semantics for initialization from an init list. 508 // We treat this as copy-initialization, because aggregate initialization 509 // always performs copy-initialization on its elements. 510 // 511 // Only do this if we're initializing a class type, to avoid filling in 512 // the initializer list where possible. 513 InitExpr = VerifyOnly ? &DummyInitList : new (SemaRef.Context) 514 InitListExpr(SemaRef.Context, Loc, None, Loc); 515 InitExpr->setType(SemaRef.Context.VoidTy); 516 SubInit = InitExpr; 517 Kind = InitializationKind::CreateCopy(Loc, Loc); 518 } else { 519 // C++03: 520 // shall be value-initialized. 521 } 522 523 InitializationSequence InitSeq(SemaRef, Entity, Kind, SubInit); 524 // libstdc++4.6 marks the vector default constructor as explicit in 525 // _GLIBCXX_DEBUG mode, so recover using the C++03 logic in that case. 526 // stlport does so too. Look for std::__debug for libstdc++, and for 527 // std:: for stlport. This is effectively a compiler-side implementation of 528 // LWG2193. 529 if (!InitSeq && EmptyInitList && InitSeq.getFailureKind() == 530 InitializationSequence::FK_ExplicitConstructor) { 531 OverloadCandidateSet::iterator Best; 532 OverloadingResult O = 533 InitSeq.getFailedCandidateSet() 534 .BestViableFunction(SemaRef, Kind.getLocation(), Best); 535 (void)O; 536 assert(O == OR_Success && "Inconsistent overload resolution"); 537 CXXConstructorDecl *CtorDecl = cast<CXXConstructorDecl>(Best->Function); 538 CXXRecordDecl *R = CtorDecl->getParent(); 539 540 if (CtorDecl->getMinRequiredArguments() == 0 && 541 CtorDecl->isExplicit() && R->getDeclName() && 542 SemaRef.SourceMgr.isInSystemHeader(CtorDecl->getLocation())) { 543 bool IsInStd = false; 544 for (NamespaceDecl *ND = dyn_cast<NamespaceDecl>(R->getDeclContext()); 545 ND && !IsInStd; ND = dyn_cast<NamespaceDecl>(ND->getParent())) { 546 if (SemaRef.getStdNamespace()->InEnclosingNamespaceSetOf(ND)) 547 IsInStd = true; 548 } 549 550 if (IsInStd && llvm::StringSwitch<bool>(R->getName()) 551 .Cases("basic_string", "deque", "forward_list", true) 552 .Cases("list", "map", "multimap", "multiset", true) 553 .Cases("priority_queue", "queue", "set", "stack", true) 554 .Cases("unordered_map", "unordered_set", "vector", true) 555 .Default(false)) { 556 InitSeq.InitializeFrom( 557 SemaRef, Entity, 558 InitializationKind::CreateValue(Loc, Loc, Loc, true), 559 MultiExprArg(), /*TopLevelOfInitList=*/false, 560 TreatUnavailableAsInvalid); 561 // Emit a warning for this. System header warnings aren't shown 562 // by default, but people working on system headers should see it. 563 if (!VerifyOnly) { 564 SemaRef.Diag(CtorDecl->getLocation(), 565 diag::warn_invalid_initializer_from_system_header); 566 if (Entity.getKind() == InitializedEntity::EK_Member) 567 SemaRef.Diag(Entity.getDecl()->getLocation(), 568 diag::note_used_in_initialization_here); 569 else if (Entity.getKind() == InitializedEntity::EK_ArrayElement) 570 SemaRef.Diag(Loc, diag::note_used_in_initialization_here); 571 } 572 } 573 } 574 } 575 if (!InitSeq) { 576 if (!VerifyOnly) { 577 InitSeq.Diagnose(SemaRef, Entity, Kind, SubInit); 578 if (Entity.getKind() == InitializedEntity::EK_Member) 579 SemaRef.Diag(Entity.getDecl()->getLocation(), 580 diag::note_in_omitted_aggregate_initializer) 581 << /*field*/1 << Entity.getDecl(); 582 else if (Entity.getKind() == InitializedEntity::EK_ArrayElement) { 583 bool IsTrailingArrayNewMember = 584 Entity.getParent() && 585 Entity.getParent()->isVariableLengthArrayNew(); 586 SemaRef.Diag(Loc, diag::note_in_omitted_aggregate_initializer) 587 << (IsTrailingArrayNewMember ? 2 : /*array element*/0) 588 << Entity.getElementIndex(); 589 } 590 } 591 hadError = true; 592 return ExprError(); 593 } 594 595 return VerifyOnly ? ExprResult() 596 : InitSeq.Perform(SemaRef, Entity, Kind, SubInit); 597 } 598 599 void InitListChecker::CheckEmptyInitializable(const InitializedEntity &Entity, 600 SourceLocation Loc) { 601 // If we're building a fully-structured list, we'll check this at the end 602 // once we know which elements are actually initialized. Otherwise, we know 603 // that there are no designators so we can just check now. 604 if (FullyStructuredList) 605 return; 606 PerformEmptyInit(Loc, Entity); 607 } 608 609 void InitListChecker::FillInEmptyInitForBase( 610 unsigned Init, const CXXBaseSpecifier &Base, 611 const InitializedEntity &ParentEntity, InitListExpr *ILE, 612 bool &RequiresSecondPass, bool FillWithNoInit) { 613 InitializedEntity BaseEntity = InitializedEntity::InitializeBase( 614 SemaRef.Context, &Base, false, &ParentEntity); 615 616 if (Init >= ILE->getNumInits() || !ILE->getInit(Init)) { 617 ExprResult BaseInit = FillWithNoInit 618 ? new (SemaRef.Context) NoInitExpr(Base.getType()) 619 : PerformEmptyInit(ILE->getEndLoc(), BaseEntity); 620 if (BaseInit.isInvalid()) { 621 hadError = true; 622 return; 623 } 624 625 if (!VerifyOnly) { 626 assert(Init < ILE->getNumInits() && "should have been expanded"); 627 ILE->setInit(Init, BaseInit.getAs<Expr>()); 628 } 629 } else if (InitListExpr *InnerILE = 630 dyn_cast<InitListExpr>(ILE->getInit(Init))) { 631 FillInEmptyInitializations(BaseEntity, InnerILE, RequiresSecondPass, 632 ILE, Init, FillWithNoInit); 633 } else if (DesignatedInitUpdateExpr *InnerDIUE = 634 dyn_cast<DesignatedInitUpdateExpr>(ILE->getInit(Init))) { 635 FillInEmptyInitializations(BaseEntity, InnerDIUE->getUpdater(), 636 RequiresSecondPass, ILE, Init, 637 /*FillWithNoInit =*/true); 638 } 639 } 640 641 void InitListChecker::FillInEmptyInitForField(unsigned Init, FieldDecl *Field, 642 const InitializedEntity &ParentEntity, 643 InitListExpr *ILE, 644 bool &RequiresSecondPass, 645 bool FillWithNoInit) { 646 SourceLocation Loc = ILE->getEndLoc(); 647 unsigned NumInits = ILE->getNumInits(); 648 InitializedEntity MemberEntity 649 = InitializedEntity::InitializeMember(Field, &ParentEntity); 650 651 if (Init >= NumInits || !ILE->getInit(Init)) { 652 if (const RecordType *RType = ILE->getType()->getAs<RecordType>()) 653 if (!RType->getDecl()->isUnion()) 654 assert((Init < NumInits || VerifyOnly) && 655 "This ILE should have been expanded"); 656 657 if (FillWithNoInit) { 658 assert(!VerifyOnly && "should not fill with no-init in verify-only mode"); 659 Expr *Filler = new (SemaRef.Context) NoInitExpr(Field->getType()); 660 if (Init < NumInits) 661 ILE->setInit(Init, Filler); 662 else 663 ILE->updateInit(SemaRef.Context, Init, Filler); 664 return; 665 } 666 // C++1y [dcl.init.aggr]p7: 667 // If there are fewer initializer-clauses in the list than there are 668 // members in the aggregate, then each member not explicitly initialized 669 // shall be initialized from its brace-or-equal-initializer [...] 670 if (Field->hasInClassInitializer()) { 671 if (VerifyOnly) 672 return; 673 674 ExprResult DIE = SemaRef.BuildCXXDefaultInitExpr(Loc, Field); 675 if (DIE.isInvalid()) { 676 hadError = true; 677 return; 678 } 679 SemaRef.checkInitializerLifetime(MemberEntity, DIE.get()); 680 if (Init < NumInits) 681 ILE->setInit(Init, DIE.get()); 682 else { 683 ILE->updateInit(SemaRef.Context, Init, DIE.get()); 684 RequiresSecondPass = true; 685 } 686 return; 687 } 688 689 if (Field->getType()->isReferenceType()) { 690 if (!VerifyOnly) { 691 // C++ [dcl.init.aggr]p9: 692 // If an incomplete or empty initializer-list leaves a 693 // member of reference type uninitialized, the program is 694 // ill-formed. 695 SemaRef.Diag(Loc, diag::err_init_reference_member_uninitialized) 696 << Field->getType() 697 << ILE->getSyntacticForm()->getSourceRange(); 698 SemaRef.Diag(Field->getLocation(), 699 diag::note_uninit_reference_member); 700 } 701 hadError = true; 702 return; 703 } 704 705 ExprResult MemberInit = PerformEmptyInit(Loc, MemberEntity); 706 if (MemberInit.isInvalid()) { 707 hadError = true; 708 return; 709 } 710 711 if (hadError || VerifyOnly) { 712 // Do nothing 713 } else if (Init < NumInits) { 714 ILE->setInit(Init, MemberInit.getAs<Expr>()); 715 } else if (!isa<ImplicitValueInitExpr>(MemberInit.get())) { 716 // Empty initialization requires a constructor call, so 717 // extend the initializer list to include the constructor 718 // call and make a note that we'll need to take another pass 719 // through the initializer list. 720 ILE->updateInit(SemaRef.Context, Init, MemberInit.getAs<Expr>()); 721 RequiresSecondPass = true; 722 } 723 } else if (InitListExpr *InnerILE 724 = dyn_cast<InitListExpr>(ILE->getInit(Init))) { 725 FillInEmptyInitializations(MemberEntity, InnerILE, 726 RequiresSecondPass, ILE, Init, FillWithNoInit); 727 } else if (DesignatedInitUpdateExpr *InnerDIUE = 728 dyn_cast<DesignatedInitUpdateExpr>(ILE->getInit(Init))) { 729 FillInEmptyInitializations(MemberEntity, InnerDIUE->getUpdater(), 730 RequiresSecondPass, ILE, Init, 731 /*FillWithNoInit =*/true); 732 } 733 } 734 735 /// Recursively replaces NULL values within the given initializer list 736 /// with expressions that perform value-initialization of the 737 /// appropriate type, and finish off the InitListExpr formation. 738 void 739 InitListChecker::FillInEmptyInitializations(const InitializedEntity &Entity, 740 InitListExpr *ILE, 741 bool &RequiresSecondPass, 742 InitListExpr *OuterILE, 743 unsigned OuterIndex, 744 bool FillWithNoInit) { 745 assert((ILE->getType() != SemaRef.Context.VoidTy) && 746 "Should not have void type"); 747 748 // We don't need to do any checks when just filling NoInitExprs; that can't 749 // fail. 750 if (FillWithNoInit && VerifyOnly) 751 return; 752 753 // If this is a nested initializer list, we might have changed its contents 754 // (and therefore some of its properties, such as instantiation-dependence) 755 // while filling it in. Inform the outer initializer list so that its state 756 // can be updated to match. 757 // FIXME: We should fully build the inner initializers before constructing 758 // the outer InitListExpr instead of mutating AST nodes after they have 759 // been used as subexpressions of other nodes. 760 struct UpdateOuterILEWithUpdatedInit { 761 InitListExpr *Outer; 762 unsigned OuterIndex; 763 ~UpdateOuterILEWithUpdatedInit() { 764 if (Outer) 765 Outer->setInit(OuterIndex, Outer->getInit(OuterIndex)); 766 } 767 } UpdateOuterRAII = {OuterILE, OuterIndex}; 768 769 // A transparent ILE is not performing aggregate initialization and should 770 // not be filled in. 771 if (ILE->isTransparent()) 772 return; 773 774 if (const RecordType *RType = ILE->getType()->getAs<RecordType>()) { 775 const RecordDecl *RDecl = RType->getDecl(); 776 if (RDecl->isUnion() && ILE->getInitializedFieldInUnion()) 777 FillInEmptyInitForField(0, ILE->getInitializedFieldInUnion(), 778 Entity, ILE, RequiresSecondPass, FillWithNoInit); 779 else if (RDecl->isUnion() && isa<CXXRecordDecl>(RDecl) && 780 cast<CXXRecordDecl>(RDecl)->hasInClassInitializer()) { 781 for (auto *Field : RDecl->fields()) { 782 if (Field->hasInClassInitializer()) { 783 FillInEmptyInitForField(0, Field, Entity, ILE, RequiresSecondPass, 784 FillWithNoInit); 785 break; 786 } 787 } 788 } else { 789 // The fields beyond ILE->getNumInits() are default initialized, so in 790 // order to leave them uninitialized, the ILE is expanded and the extra 791 // fields are then filled with NoInitExpr. 792 unsigned NumElems = numStructUnionElements(ILE->getType()); 793 if (RDecl->hasFlexibleArrayMember()) 794 ++NumElems; 795 if (!VerifyOnly && ILE->getNumInits() < NumElems) 796 ILE->resizeInits(SemaRef.Context, NumElems); 797 798 unsigned Init = 0; 799 800 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(RDecl)) { 801 for (auto &Base : CXXRD->bases()) { 802 if (hadError) 803 return; 804 805 FillInEmptyInitForBase(Init, Base, Entity, ILE, RequiresSecondPass, 806 FillWithNoInit); 807 ++Init; 808 } 809 } 810 811 for (auto *Field : RDecl->fields()) { 812 if (Field->isUnnamedBitfield()) 813 continue; 814 815 if (hadError) 816 return; 817 818 FillInEmptyInitForField(Init, Field, Entity, ILE, RequiresSecondPass, 819 FillWithNoInit); 820 if (hadError) 821 return; 822 823 ++Init; 824 825 // Only look at the first initialization of a union. 826 if (RDecl->isUnion()) 827 break; 828 } 829 } 830 831 return; 832 } 833 834 QualType ElementType; 835 836 InitializedEntity ElementEntity = Entity; 837 unsigned NumInits = ILE->getNumInits(); 838 unsigned NumElements = NumInits; 839 if (const ArrayType *AType = SemaRef.Context.getAsArrayType(ILE->getType())) { 840 ElementType = AType->getElementType(); 841 if (const auto *CAType = dyn_cast<ConstantArrayType>(AType)) 842 NumElements = CAType->getSize().getZExtValue(); 843 // For an array new with an unknown bound, ask for one additional element 844 // in order to populate the array filler. 845 if (Entity.isVariableLengthArrayNew()) 846 ++NumElements; 847 ElementEntity = InitializedEntity::InitializeElement(SemaRef.Context, 848 0, Entity); 849 } else if (const VectorType *VType = ILE->getType()->getAs<VectorType>()) { 850 ElementType = VType->getElementType(); 851 NumElements = VType->getNumElements(); 852 ElementEntity = InitializedEntity::InitializeElement(SemaRef.Context, 853 0, Entity); 854 } else 855 ElementType = ILE->getType(); 856 857 bool SkipEmptyInitChecks = false; 858 for (unsigned Init = 0; Init != NumElements; ++Init) { 859 if (hadError) 860 return; 861 862 if (ElementEntity.getKind() == InitializedEntity::EK_ArrayElement || 863 ElementEntity.getKind() == InitializedEntity::EK_VectorElement) 864 ElementEntity.setElementIndex(Init); 865 866 if (Init >= NumInits && (ILE->hasArrayFiller() || SkipEmptyInitChecks)) 867 return; 868 869 Expr *InitExpr = (Init < NumInits ? ILE->getInit(Init) : nullptr); 870 if (!InitExpr && Init < NumInits && ILE->hasArrayFiller()) 871 ILE->setInit(Init, ILE->getArrayFiller()); 872 else if (!InitExpr && !ILE->hasArrayFiller()) { 873 // In VerifyOnly mode, there's no point performing empty initialization 874 // more than once. 875 if (SkipEmptyInitChecks) 876 continue; 877 878 Expr *Filler = nullptr; 879 880 if (FillWithNoInit) 881 Filler = new (SemaRef.Context) NoInitExpr(ElementType); 882 else { 883 ExprResult ElementInit = 884 PerformEmptyInit(ILE->getEndLoc(), ElementEntity); 885 if (ElementInit.isInvalid()) { 886 hadError = true; 887 return; 888 } 889 890 Filler = ElementInit.getAs<Expr>(); 891 } 892 893 if (hadError) { 894 // Do nothing 895 } else if (VerifyOnly) { 896 SkipEmptyInitChecks = true; 897 } else if (Init < NumInits) { 898 // For arrays, just set the expression used for value-initialization 899 // of the "holes" in the array. 900 if (ElementEntity.getKind() == InitializedEntity::EK_ArrayElement) 901 ILE->setArrayFiller(Filler); 902 else 903 ILE->setInit(Init, Filler); 904 } else { 905 // For arrays, just set the expression used for value-initialization 906 // of the rest of elements and exit. 907 if (ElementEntity.getKind() == InitializedEntity::EK_ArrayElement) { 908 ILE->setArrayFiller(Filler); 909 return; 910 } 911 912 if (!isa<ImplicitValueInitExpr>(Filler) && !isa<NoInitExpr>(Filler)) { 913 // Empty initialization requires a constructor call, so 914 // extend the initializer list to include the constructor 915 // call and make a note that we'll need to take another pass 916 // through the initializer list. 917 ILE->updateInit(SemaRef.Context, Init, Filler); 918 RequiresSecondPass = true; 919 } 920 } 921 } else if (InitListExpr *InnerILE 922 = dyn_cast_or_null<InitListExpr>(InitExpr)) { 923 FillInEmptyInitializations(ElementEntity, InnerILE, RequiresSecondPass, 924 ILE, Init, FillWithNoInit); 925 } else if (DesignatedInitUpdateExpr *InnerDIUE = 926 dyn_cast_or_null<DesignatedInitUpdateExpr>(InitExpr)) { 927 FillInEmptyInitializations(ElementEntity, InnerDIUE->getUpdater(), 928 RequiresSecondPass, ILE, Init, 929 /*FillWithNoInit =*/true); 930 } 931 } 932 } 933 934 static bool hasAnyDesignatedInits(const InitListExpr *IL) { 935 for (const Stmt *Init : *IL) 936 if (Init && isa<DesignatedInitExpr>(Init)) 937 return true; 938 return false; 939 } 940 941 InitListChecker::InitListChecker(Sema &S, const InitializedEntity &Entity, 942 InitListExpr *IL, QualType &T, bool VerifyOnly, 943 bool TreatUnavailableAsInvalid, 944 bool InOverloadResolution) 945 : SemaRef(S), VerifyOnly(VerifyOnly), 946 TreatUnavailableAsInvalid(TreatUnavailableAsInvalid), 947 InOverloadResolution(InOverloadResolution) { 948 if (!VerifyOnly || hasAnyDesignatedInits(IL)) { 949 FullyStructuredList = 950 createInitListExpr(T, IL->getSourceRange(), IL->getNumInits()); 951 952 // FIXME: Check that IL isn't already the semantic form of some other 953 // InitListExpr. If it is, we'd create a broken AST. 954 if (!VerifyOnly) 955 FullyStructuredList->setSyntacticForm(IL); 956 } 957 958 CheckExplicitInitList(Entity, IL, T, FullyStructuredList, 959 /*TopLevelObject=*/true); 960 961 if (!hadError && FullyStructuredList) { 962 bool RequiresSecondPass = false; 963 FillInEmptyInitializations(Entity, FullyStructuredList, RequiresSecondPass, 964 /*OuterILE=*/nullptr, /*OuterIndex=*/0); 965 if (RequiresSecondPass && !hadError) 966 FillInEmptyInitializations(Entity, FullyStructuredList, 967 RequiresSecondPass, nullptr, 0); 968 } 969 if (hadError && FullyStructuredList) 970 FullyStructuredList->markError(); 971 } 972 973 int InitListChecker::numArrayElements(QualType DeclType) { 974 // FIXME: use a proper constant 975 int maxElements = 0x7FFFFFFF; 976 if (const ConstantArrayType *CAT = 977 SemaRef.Context.getAsConstantArrayType(DeclType)) { 978 maxElements = static_cast<int>(CAT->getSize().getZExtValue()); 979 } 980 return maxElements; 981 } 982 983 int InitListChecker::numStructUnionElements(QualType DeclType) { 984 RecordDecl *structDecl = DeclType->castAs<RecordType>()->getDecl(); 985 int InitializableMembers = 0; 986 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(structDecl)) 987 InitializableMembers += CXXRD->getNumBases(); 988 for (const auto *Field : structDecl->fields()) 989 if (!Field->isUnnamedBitfield()) 990 ++InitializableMembers; 991 992 if (structDecl->isUnion()) 993 return std::min(InitializableMembers, 1); 994 return InitializableMembers - structDecl->hasFlexibleArrayMember(); 995 } 996 997 /// Determine whether Entity is an entity for which it is idiomatic to elide 998 /// the braces in aggregate initialization. 999 static bool isIdiomaticBraceElisionEntity(const InitializedEntity &Entity) { 1000 // Recursive initialization of the one and only field within an aggregate 1001 // class is considered idiomatic. This case arises in particular for 1002 // initialization of std::array, where the C++ standard suggests the idiom of 1003 // 1004 // std::array<T, N> arr = {1, 2, 3}; 1005 // 1006 // (where std::array is an aggregate struct containing a single array field. 1007 1008 // FIXME: Should aggregate initialization of a struct with a single 1009 // base class and no members also suppress the warning? 1010 if (Entity.getKind() != InitializedEntity::EK_Member || !Entity.getParent()) 1011 return false; 1012 1013 auto *ParentRD = 1014 Entity.getParent()->getType()->castAs<RecordType>()->getDecl(); 1015 if (CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(ParentRD)) 1016 if (CXXRD->getNumBases()) 1017 return false; 1018 1019 auto FieldIt = ParentRD->field_begin(); 1020 assert(FieldIt != ParentRD->field_end() && 1021 "no fields but have initializer for member?"); 1022 return ++FieldIt == ParentRD->field_end(); 1023 } 1024 1025 /// Check whether the range of the initializer \p ParentIList from element 1026 /// \p Index onwards can be used to initialize an object of type \p T. Update 1027 /// \p Index to indicate how many elements of the list were consumed. 1028 /// 1029 /// This also fills in \p StructuredList, from element \p StructuredIndex 1030 /// onwards, with the fully-braced, desugared form of the initialization. 1031 void InitListChecker::CheckImplicitInitList(const InitializedEntity &Entity, 1032 InitListExpr *ParentIList, 1033 QualType T, unsigned &Index, 1034 InitListExpr *StructuredList, 1035 unsigned &StructuredIndex) { 1036 int maxElements = 0; 1037 1038 if (T->isArrayType()) 1039 maxElements = numArrayElements(T); 1040 else if (T->isRecordType()) 1041 maxElements = numStructUnionElements(T); 1042 else if (T->isVectorType()) 1043 maxElements = T->castAs<VectorType>()->getNumElements(); 1044 else 1045 llvm_unreachable("CheckImplicitInitList(): Illegal type"); 1046 1047 if (maxElements == 0) { 1048 if (!VerifyOnly) 1049 SemaRef.Diag(ParentIList->getInit(Index)->getBeginLoc(), 1050 diag::err_implicit_empty_initializer); 1051 ++Index; 1052 hadError = true; 1053 return; 1054 } 1055 1056 // Build a structured initializer list corresponding to this subobject. 1057 InitListExpr *StructuredSubobjectInitList = getStructuredSubobjectInit( 1058 ParentIList, Index, T, StructuredList, StructuredIndex, 1059 SourceRange(ParentIList->getInit(Index)->getBeginLoc(), 1060 ParentIList->getSourceRange().getEnd())); 1061 unsigned StructuredSubobjectInitIndex = 0; 1062 1063 // Check the element types and build the structural subobject. 1064 unsigned StartIndex = Index; 1065 CheckListElementTypes(Entity, ParentIList, T, 1066 /*SubobjectIsDesignatorContext=*/false, Index, 1067 StructuredSubobjectInitList, 1068 StructuredSubobjectInitIndex); 1069 1070 if (StructuredSubobjectInitList) { 1071 StructuredSubobjectInitList->setType(T); 1072 1073 unsigned EndIndex = (Index == StartIndex? StartIndex : Index - 1); 1074 // Update the structured sub-object initializer so that it's ending 1075 // range corresponds with the end of the last initializer it used. 1076 if (EndIndex < ParentIList->getNumInits() && 1077 ParentIList->getInit(EndIndex)) { 1078 SourceLocation EndLoc 1079 = ParentIList->getInit(EndIndex)->getSourceRange().getEnd(); 1080 StructuredSubobjectInitList->setRBraceLoc(EndLoc); 1081 } 1082 1083 // Complain about missing braces. 1084 if (!VerifyOnly && (T->isArrayType() || T->isRecordType()) && 1085 !ParentIList->isIdiomaticZeroInitializer(SemaRef.getLangOpts()) && 1086 !isIdiomaticBraceElisionEntity(Entity)) { 1087 SemaRef.Diag(StructuredSubobjectInitList->getBeginLoc(), 1088 diag::warn_missing_braces) 1089 << StructuredSubobjectInitList->getSourceRange() 1090 << FixItHint::CreateInsertion( 1091 StructuredSubobjectInitList->getBeginLoc(), "{") 1092 << FixItHint::CreateInsertion( 1093 SemaRef.getLocForEndOfToken( 1094 StructuredSubobjectInitList->getEndLoc()), 1095 "}"); 1096 } 1097 1098 // Warn if this type won't be an aggregate in future versions of C++. 1099 auto *CXXRD = T->getAsCXXRecordDecl(); 1100 if (!VerifyOnly && CXXRD && CXXRD->hasUserDeclaredConstructor()) { 1101 SemaRef.Diag(StructuredSubobjectInitList->getBeginLoc(), 1102 diag::warn_cxx20_compat_aggregate_init_with_ctors) 1103 << StructuredSubobjectInitList->getSourceRange() << T; 1104 } 1105 } 1106 } 1107 1108 /// Warn that \p Entity was of scalar type and was initialized by a 1109 /// single-element braced initializer list. 1110 static void warnBracedScalarInit(Sema &S, const InitializedEntity &Entity, 1111 SourceRange Braces) { 1112 // Don't warn during template instantiation. If the initialization was 1113 // non-dependent, we warned during the initial parse; otherwise, the 1114 // type might not be scalar in some uses of the template. 1115 if (S.inTemplateInstantiation()) 1116 return; 1117 1118 unsigned DiagID = 0; 1119 1120 switch (Entity.getKind()) { 1121 case InitializedEntity::EK_VectorElement: 1122 case InitializedEntity::EK_ComplexElement: 1123 case InitializedEntity::EK_ArrayElement: 1124 case InitializedEntity::EK_Parameter: 1125 case InitializedEntity::EK_Parameter_CF_Audited: 1126 case InitializedEntity::EK_TemplateParameter: 1127 case InitializedEntity::EK_Result: 1128 // Extra braces here are suspicious. 1129 DiagID = diag::warn_braces_around_init; 1130 break; 1131 1132 case InitializedEntity::EK_Member: 1133 // Warn on aggregate initialization but not on ctor init list or 1134 // default member initializer. 1135 if (Entity.getParent()) 1136 DiagID = diag::warn_braces_around_init; 1137 break; 1138 1139 case InitializedEntity::EK_Variable: 1140 case InitializedEntity::EK_LambdaCapture: 1141 // No warning, might be direct-list-initialization. 1142 // FIXME: Should we warn for copy-list-initialization in these cases? 1143 break; 1144 1145 case InitializedEntity::EK_New: 1146 case InitializedEntity::EK_Temporary: 1147 case InitializedEntity::EK_CompoundLiteralInit: 1148 // No warning, braces are part of the syntax of the underlying construct. 1149 break; 1150 1151 case InitializedEntity::EK_RelatedResult: 1152 // No warning, we already warned when initializing the result. 1153 break; 1154 1155 case InitializedEntity::EK_Exception: 1156 case InitializedEntity::EK_Base: 1157 case InitializedEntity::EK_Delegating: 1158 case InitializedEntity::EK_BlockElement: 1159 case InitializedEntity::EK_LambdaToBlockConversionBlockElement: 1160 case InitializedEntity::EK_Binding: 1161 case InitializedEntity::EK_StmtExprResult: 1162 llvm_unreachable("unexpected braced scalar init"); 1163 } 1164 1165 if (DiagID) { 1166 S.Diag(Braces.getBegin(), DiagID) 1167 << Entity.getType()->isSizelessBuiltinType() << Braces 1168 << FixItHint::CreateRemoval(Braces.getBegin()) 1169 << FixItHint::CreateRemoval(Braces.getEnd()); 1170 } 1171 } 1172 1173 /// Check whether the initializer \p IList (that was written with explicit 1174 /// braces) can be used to initialize an object of type \p T. 1175 /// 1176 /// This also fills in \p StructuredList with the fully-braced, desugared 1177 /// form of the initialization. 1178 void InitListChecker::CheckExplicitInitList(const InitializedEntity &Entity, 1179 InitListExpr *IList, QualType &T, 1180 InitListExpr *StructuredList, 1181 bool TopLevelObject) { 1182 unsigned Index = 0, StructuredIndex = 0; 1183 CheckListElementTypes(Entity, IList, T, /*SubobjectIsDesignatorContext=*/true, 1184 Index, StructuredList, StructuredIndex, TopLevelObject); 1185 if (StructuredList) { 1186 QualType ExprTy = T; 1187 if (!ExprTy->isArrayType()) 1188 ExprTy = ExprTy.getNonLValueExprType(SemaRef.Context); 1189 if (!VerifyOnly) 1190 IList->setType(ExprTy); 1191 StructuredList->setType(ExprTy); 1192 } 1193 if (hadError) 1194 return; 1195 1196 // Don't complain for incomplete types, since we'll get an error elsewhere. 1197 if (Index < IList->getNumInits() && !T->isIncompleteType()) { 1198 // We have leftover initializers 1199 bool ExtraInitsIsError = SemaRef.getLangOpts().CPlusPlus || 1200 (SemaRef.getLangOpts().OpenCL && T->isVectorType()); 1201 hadError = ExtraInitsIsError; 1202 if (VerifyOnly) { 1203 return; 1204 } else if (StructuredIndex == 1 && 1205 IsStringInit(StructuredList->getInit(0), T, SemaRef.Context) == 1206 SIF_None) { 1207 unsigned DK = 1208 ExtraInitsIsError 1209 ? diag::err_excess_initializers_in_char_array_initializer 1210 : diag::ext_excess_initializers_in_char_array_initializer; 1211 SemaRef.Diag(IList->getInit(Index)->getBeginLoc(), DK) 1212 << IList->getInit(Index)->getSourceRange(); 1213 } else if (T->isSizelessBuiltinType()) { 1214 unsigned DK = ExtraInitsIsError 1215 ? diag::err_excess_initializers_for_sizeless_type 1216 : diag::ext_excess_initializers_for_sizeless_type; 1217 SemaRef.Diag(IList->getInit(Index)->getBeginLoc(), DK) 1218 << T << IList->getInit(Index)->getSourceRange(); 1219 } else { 1220 int initKind = T->isArrayType() ? 0 : 1221 T->isVectorType() ? 1 : 1222 T->isScalarType() ? 2 : 1223 T->isUnionType() ? 3 : 1224 4; 1225 1226 unsigned DK = ExtraInitsIsError ? diag::err_excess_initializers 1227 : diag::ext_excess_initializers; 1228 SemaRef.Diag(IList->getInit(Index)->getBeginLoc(), DK) 1229 << initKind << IList->getInit(Index)->getSourceRange(); 1230 } 1231 } 1232 1233 if (!VerifyOnly) { 1234 if (T->isScalarType() && IList->getNumInits() == 1 && 1235 !isa<InitListExpr>(IList->getInit(0))) 1236 warnBracedScalarInit(SemaRef, Entity, IList->getSourceRange()); 1237 1238 // Warn if this is a class type that won't be an aggregate in future 1239 // versions of C++. 1240 auto *CXXRD = T->getAsCXXRecordDecl(); 1241 if (CXXRD && CXXRD->hasUserDeclaredConstructor()) { 1242 // Don't warn if there's an equivalent default constructor that would be 1243 // used instead. 1244 bool HasEquivCtor = false; 1245 if (IList->getNumInits() == 0) { 1246 auto *CD = SemaRef.LookupDefaultConstructor(CXXRD); 1247 HasEquivCtor = CD && !CD->isDeleted(); 1248 } 1249 1250 if (!HasEquivCtor) { 1251 SemaRef.Diag(IList->getBeginLoc(), 1252 diag::warn_cxx20_compat_aggregate_init_with_ctors) 1253 << IList->getSourceRange() << T; 1254 } 1255 } 1256 } 1257 } 1258 1259 void InitListChecker::CheckListElementTypes(const InitializedEntity &Entity, 1260 InitListExpr *IList, 1261 QualType &DeclType, 1262 bool SubobjectIsDesignatorContext, 1263 unsigned &Index, 1264 InitListExpr *StructuredList, 1265 unsigned &StructuredIndex, 1266 bool TopLevelObject) { 1267 if (DeclType->isAnyComplexType() && SubobjectIsDesignatorContext) { 1268 // Explicitly braced initializer for complex type can be real+imaginary 1269 // parts. 1270 CheckComplexType(Entity, IList, DeclType, Index, 1271 StructuredList, StructuredIndex); 1272 } else if (DeclType->isScalarType()) { 1273 CheckScalarType(Entity, IList, DeclType, Index, 1274 StructuredList, StructuredIndex); 1275 } else if (DeclType->isVectorType()) { 1276 CheckVectorType(Entity, IList, DeclType, Index, 1277 StructuredList, StructuredIndex); 1278 } else if (DeclType->isRecordType()) { 1279 assert(DeclType->isAggregateType() && 1280 "non-aggregate records should be handed in CheckSubElementType"); 1281 RecordDecl *RD = DeclType->castAs<RecordType>()->getDecl(); 1282 auto Bases = 1283 CXXRecordDecl::base_class_range(CXXRecordDecl::base_class_iterator(), 1284 CXXRecordDecl::base_class_iterator()); 1285 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(RD)) 1286 Bases = CXXRD->bases(); 1287 CheckStructUnionTypes(Entity, IList, DeclType, Bases, RD->field_begin(), 1288 SubobjectIsDesignatorContext, Index, StructuredList, 1289 StructuredIndex, TopLevelObject); 1290 } else if (DeclType->isArrayType()) { 1291 llvm::APSInt Zero( 1292 SemaRef.Context.getTypeSize(SemaRef.Context.getSizeType()), 1293 false); 1294 CheckArrayType(Entity, IList, DeclType, Zero, 1295 SubobjectIsDesignatorContext, Index, 1296 StructuredList, StructuredIndex); 1297 } else if (DeclType->isVoidType() || DeclType->isFunctionType()) { 1298 // This type is invalid, issue a diagnostic. 1299 ++Index; 1300 if (!VerifyOnly) 1301 SemaRef.Diag(IList->getBeginLoc(), diag::err_illegal_initializer_type) 1302 << DeclType; 1303 hadError = true; 1304 } else if (DeclType->isReferenceType()) { 1305 CheckReferenceType(Entity, IList, DeclType, Index, 1306 StructuredList, StructuredIndex); 1307 } else if (DeclType->isObjCObjectType()) { 1308 if (!VerifyOnly) 1309 SemaRef.Diag(IList->getBeginLoc(), diag::err_init_objc_class) << DeclType; 1310 hadError = true; 1311 } else if (DeclType->isOCLIntelSubgroupAVCType() || 1312 DeclType->isSizelessBuiltinType()) { 1313 // Checks for scalar type are sufficient for these types too. 1314 CheckScalarType(Entity, IList, DeclType, Index, StructuredList, 1315 StructuredIndex); 1316 } else { 1317 if (!VerifyOnly) 1318 SemaRef.Diag(IList->getBeginLoc(), diag::err_illegal_initializer_type) 1319 << DeclType; 1320 hadError = true; 1321 } 1322 } 1323 1324 void InitListChecker::CheckSubElementType(const InitializedEntity &Entity, 1325 InitListExpr *IList, 1326 QualType ElemType, 1327 unsigned &Index, 1328 InitListExpr *StructuredList, 1329 unsigned &StructuredIndex) { 1330 Expr *expr = IList->getInit(Index); 1331 1332 if (ElemType->isReferenceType()) 1333 return CheckReferenceType(Entity, IList, ElemType, Index, 1334 StructuredList, StructuredIndex); 1335 1336 if (InitListExpr *SubInitList = dyn_cast<InitListExpr>(expr)) { 1337 if (SubInitList->getNumInits() == 1 && 1338 IsStringInit(SubInitList->getInit(0), ElemType, SemaRef.Context) == 1339 SIF_None) { 1340 // FIXME: It would be more faithful and no less correct to include an 1341 // InitListExpr in the semantic form of the initializer list in this case. 1342 expr = SubInitList->getInit(0); 1343 } 1344 // Nested aggregate initialization and C++ initialization are handled later. 1345 } else if (isa<ImplicitValueInitExpr>(expr)) { 1346 // This happens during template instantiation when we see an InitListExpr 1347 // that we've already checked once. 1348 assert(SemaRef.Context.hasSameType(expr->getType(), ElemType) && 1349 "found implicit initialization for the wrong type"); 1350 UpdateStructuredListElement(StructuredList, StructuredIndex, expr); 1351 ++Index; 1352 return; 1353 } 1354 1355 if (SemaRef.getLangOpts().CPlusPlus || isa<InitListExpr>(expr)) { 1356 // C++ [dcl.init.aggr]p2: 1357 // Each member is copy-initialized from the corresponding 1358 // initializer-clause. 1359 1360 // FIXME: Better EqualLoc? 1361 InitializationKind Kind = 1362 InitializationKind::CreateCopy(expr->getBeginLoc(), SourceLocation()); 1363 1364 // Vector elements can be initialized from other vectors in which case 1365 // we need initialization entity with a type of a vector (and not a vector 1366 // element!) initializing multiple vector elements. 1367 auto TmpEntity = 1368 (ElemType->isExtVectorType() && !Entity.getType()->isExtVectorType()) 1369 ? InitializedEntity::InitializeTemporary(ElemType) 1370 : Entity; 1371 1372 InitializationSequence Seq(SemaRef, TmpEntity, Kind, expr, 1373 /*TopLevelOfInitList*/ true); 1374 1375 // C++14 [dcl.init.aggr]p13: 1376 // If the assignment-expression can initialize a member, the member is 1377 // initialized. Otherwise [...] brace elision is assumed 1378 // 1379 // Brace elision is never performed if the element is not an 1380 // assignment-expression. 1381 if (Seq || isa<InitListExpr>(expr)) { 1382 if (!VerifyOnly) { 1383 ExprResult Result = Seq.Perform(SemaRef, TmpEntity, Kind, expr); 1384 if (Result.isInvalid()) 1385 hadError = true; 1386 1387 UpdateStructuredListElement(StructuredList, StructuredIndex, 1388 Result.getAs<Expr>()); 1389 } else if (!Seq) { 1390 hadError = true; 1391 } else if (StructuredList) { 1392 UpdateStructuredListElement(StructuredList, StructuredIndex, 1393 getDummyInit()); 1394 } 1395 ++Index; 1396 return; 1397 } 1398 1399 // Fall through for subaggregate initialization 1400 } else if (ElemType->isScalarType() || ElemType->isAtomicType()) { 1401 // FIXME: Need to handle atomic aggregate types with implicit init lists. 1402 return CheckScalarType(Entity, IList, ElemType, Index, 1403 StructuredList, StructuredIndex); 1404 } else if (const ArrayType *arrayType = 1405 SemaRef.Context.getAsArrayType(ElemType)) { 1406 // arrayType can be incomplete if we're initializing a flexible 1407 // array member. There's nothing we can do with the completed 1408 // type here, though. 1409 1410 if (IsStringInit(expr, arrayType, SemaRef.Context) == SIF_None) { 1411 // FIXME: Should we do this checking in verify-only mode? 1412 if (!VerifyOnly) 1413 CheckStringInit(expr, ElemType, arrayType, SemaRef); 1414 if (StructuredList) 1415 UpdateStructuredListElement(StructuredList, StructuredIndex, expr); 1416 ++Index; 1417 return; 1418 } 1419 1420 // Fall through for subaggregate initialization. 1421 1422 } else { 1423 assert((ElemType->isRecordType() || ElemType->isVectorType() || 1424 ElemType->isOpenCLSpecificType()) && "Unexpected type"); 1425 1426 // C99 6.7.8p13: 1427 // 1428 // The initializer for a structure or union object that has 1429 // automatic storage duration shall be either an initializer 1430 // list as described below, or a single expression that has 1431 // compatible structure or union type. In the latter case, the 1432 // initial value of the object, including unnamed members, is 1433 // that of the expression. 1434 ExprResult ExprRes = expr; 1435 if (SemaRef.CheckSingleAssignmentConstraints( 1436 ElemType, ExprRes, !VerifyOnly) != Sema::Incompatible) { 1437 if (ExprRes.isInvalid()) 1438 hadError = true; 1439 else { 1440 ExprRes = SemaRef.DefaultFunctionArrayLvalueConversion(ExprRes.get()); 1441 if (ExprRes.isInvalid()) 1442 hadError = true; 1443 } 1444 UpdateStructuredListElement(StructuredList, StructuredIndex, 1445 ExprRes.getAs<Expr>()); 1446 ++Index; 1447 return; 1448 } 1449 ExprRes.get(); 1450 // Fall through for subaggregate initialization 1451 } 1452 1453 // C++ [dcl.init.aggr]p12: 1454 // 1455 // [...] Otherwise, if the member is itself a non-empty 1456 // subaggregate, brace elision is assumed and the initializer is 1457 // considered for the initialization of the first member of 1458 // the subaggregate. 1459 // OpenCL vector initializer is handled elsewhere. 1460 if ((!SemaRef.getLangOpts().OpenCL && ElemType->isVectorType()) || 1461 ElemType->isAggregateType()) { 1462 CheckImplicitInitList(Entity, IList, ElemType, Index, StructuredList, 1463 StructuredIndex); 1464 ++StructuredIndex; 1465 } else { 1466 if (!VerifyOnly) { 1467 // We cannot initialize this element, so let PerformCopyInitialization 1468 // produce the appropriate diagnostic. We already checked that this 1469 // initialization will fail. 1470 ExprResult Copy = 1471 SemaRef.PerformCopyInitialization(Entity, SourceLocation(), expr, 1472 /*TopLevelOfInitList=*/true); 1473 (void)Copy; 1474 assert(Copy.isInvalid() && 1475 "expected non-aggregate initialization to fail"); 1476 } 1477 hadError = true; 1478 ++Index; 1479 ++StructuredIndex; 1480 } 1481 } 1482 1483 void InitListChecker::CheckComplexType(const InitializedEntity &Entity, 1484 InitListExpr *IList, QualType DeclType, 1485 unsigned &Index, 1486 InitListExpr *StructuredList, 1487 unsigned &StructuredIndex) { 1488 assert(Index == 0 && "Index in explicit init list must be zero"); 1489 1490 // As an extension, clang supports complex initializers, which initialize 1491 // a complex number component-wise. When an explicit initializer list for 1492 // a complex number contains two two initializers, this extension kicks in: 1493 // it exepcts the initializer list to contain two elements convertible to 1494 // the element type of the complex type. The first element initializes 1495 // the real part, and the second element intitializes the imaginary part. 1496 1497 if (IList->getNumInits() != 2) 1498 return CheckScalarType(Entity, IList, DeclType, Index, StructuredList, 1499 StructuredIndex); 1500 1501 // This is an extension in C. (The builtin _Complex type does not exist 1502 // in the C++ standard.) 1503 if (!SemaRef.getLangOpts().CPlusPlus && !VerifyOnly) 1504 SemaRef.Diag(IList->getBeginLoc(), diag::ext_complex_component_init) 1505 << IList->getSourceRange(); 1506 1507 // Initialize the complex number. 1508 QualType elementType = DeclType->castAs<ComplexType>()->getElementType(); 1509 InitializedEntity ElementEntity = 1510 InitializedEntity::InitializeElement(SemaRef.Context, 0, Entity); 1511 1512 for (unsigned i = 0; i < 2; ++i) { 1513 ElementEntity.setElementIndex(Index); 1514 CheckSubElementType(ElementEntity, IList, elementType, Index, 1515 StructuredList, StructuredIndex); 1516 } 1517 } 1518 1519 void InitListChecker::CheckScalarType(const InitializedEntity &Entity, 1520 InitListExpr *IList, QualType DeclType, 1521 unsigned &Index, 1522 InitListExpr *StructuredList, 1523 unsigned &StructuredIndex) { 1524 if (Index >= IList->getNumInits()) { 1525 if (!VerifyOnly) { 1526 if (DeclType->isSizelessBuiltinType()) 1527 SemaRef.Diag(IList->getBeginLoc(), 1528 SemaRef.getLangOpts().CPlusPlus11 1529 ? diag::warn_cxx98_compat_empty_sizeless_initializer 1530 : diag::err_empty_sizeless_initializer) 1531 << DeclType << IList->getSourceRange(); 1532 else 1533 SemaRef.Diag(IList->getBeginLoc(), 1534 SemaRef.getLangOpts().CPlusPlus11 1535 ? diag::warn_cxx98_compat_empty_scalar_initializer 1536 : diag::err_empty_scalar_initializer) 1537 << IList->getSourceRange(); 1538 } 1539 hadError = !SemaRef.getLangOpts().CPlusPlus11; 1540 ++Index; 1541 ++StructuredIndex; 1542 return; 1543 } 1544 1545 Expr *expr = IList->getInit(Index); 1546 if (InitListExpr *SubIList = dyn_cast<InitListExpr>(expr)) { 1547 // FIXME: This is invalid, and accepting it causes overload resolution 1548 // to pick the wrong overload in some corner cases. 1549 if (!VerifyOnly) 1550 SemaRef.Diag(SubIList->getBeginLoc(), diag::ext_many_braces_around_init) 1551 << DeclType->isSizelessBuiltinType() << SubIList->getSourceRange(); 1552 1553 CheckScalarType(Entity, SubIList, DeclType, Index, StructuredList, 1554 StructuredIndex); 1555 return; 1556 } else if (isa<DesignatedInitExpr>(expr)) { 1557 if (!VerifyOnly) 1558 SemaRef.Diag(expr->getBeginLoc(), 1559 diag::err_designator_for_scalar_or_sizeless_init) 1560 << DeclType->isSizelessBuiltinType() << DeclType 1561 << expr->getSourceRange(); 1562 hadError = true; 1563 ++Index; 1564 ++StructuredIndex; 1565 return; 1566 } 1567 1568 ExprResult Result; 1569 if (VerifyOnly) { 1570 if (SemaRef.CanPerformCopyInitialization(Entity, expr)) 1571 Result = getDummyInit(); 1572 else 1573 Result = ExprError(); 1574 } else { 1575 Result = 1576 SemaRef.PerformCopyInitialization(Entity, expr->getBeginLoc(), expr, 1577 /*TopLevelOfInitList=*/true); 1578 } 1579 1580 Expr *ResultExpr = nullptr; 1581 1582 if (Result.isInvalid()) 1583 hadError = true; // types weren't compatible. 1584 else { 1585 ResultExpr = Result.getAs<Expr>(); 1586 1587 if (ResultExpr != expr && !VerifyOnly) { 1588 // The type was promoted, update initializer list. 1589 // FIXME: Why are we updating the syntactic init list? 1590 IList->setInit(Index, ResultExpr); 1591 } 1592 } 1593 UpdateStructuredListElement(StructuredList, StructuredIndex, ResultExpr); 1594 ++Index; 1595 } 1596 1597 void InitListChecker::CheckReferenceType(const InitializedEntity &Entity, 1598 InitListExpr *IList, QualType DeclType, 1599 unsigned &Index, 1600 InitListExpr *StructuredList, 1601 unsigned &StructuredIndex) { 1602 if (Index >= IList->getNumInits()) { 1603 // FIXME: It would be wonderful if we could point at the actual member. In 1604 // general, it would be useful to pass location information down the stack, 1605 // so that we know the location (or decl) of the "current object" being 1606 // initialized. 1607 if (!VerifyOnly) 1608 SemaRef.Diag(IList->getBeginLoc(), 1609 diag::err_init_reference_member_uninitialized) 1610 << DeclType << IList->getSourceRange(); 1611 hadError = true; 1612 ++Index; 1613 ++StructuredIndex; 1614 return; 1615 } 1616 1617 Expr *expr = IList->getInit(Index); 1618 if (isa<InitListExpr>(expr) && !SemaRef.getLangOpts().CPlusPlus11) { 1619 if (!VerifyOnly) 1620 SemaRef.Diag(IList->getBeginLoc(), diag::err_init_non_aggr_init_list) 1621 << DeclType << IList->getSourceRange(); 1622 hadError = true; 1623 ++Index; 1624 ++StructuredIndex; 1625 return; 1626 } 1627 1628 ExprResult Result; 1629 if (VerifyOnly) { 1630 if (SemaRef.CanPerformCopyInitialization(Entity,expr)) 1631 Result = getDummyInit(); 1632 else 1633 Result = ExprError(); 1634 } else { 1635 Result = 1636 SemaRef.PerformCopyInitialization(Entity, expr->getBeginLoc(), expr, 1637 /*TopLevelOfInitList=*/true); 1638 } 1639 1640 if (Result.isInvalid()) 1641 hadError = true; 1642 1643 expr = Result.getAs<Expr>(); 1644 // FIXME: Why are we updating the syntactic init list? 1645 if (!VerifyOnly && expr) 1646 IList->setInit(Index, expr); 1647 1648 UpdateStructuredListElement(StructuredList, StructuredIndex, expr); 1649 ++Index; 1650 } 1651 1652 void InitListChecker::CheckVectorType(const InitializedEntity &Entity, 1653 InitListExpr *IList, QualType DeclType, 1654 unsigned &Index, 1655 InitListExpr *StructuredList, 1656 unsigned &StructuredIndex) { 1657 const VectorType *VT = DeclType->castAs<VectorType>(); 1658 unsigned maxElements = VT->getNumElements(); 1659 unsigned numEltsInit = 0; 1660 QualType elementType = VT->getElementType(); 1661 1662 if (Index >= IList->getNumInits()) { 1663 // Make sure the element type can be value-initialized. 1664 CheckEmptyInitializable( 1665 InitializedEntity::InitializeElement(SemaRef.Context, 0, Entity), 1666 IList->getEndLoc()); 1667 return; 1668 } 1669 1670 if (!SemaRef.getLangOpts().OpenCL) { 1671 // If the initializing element is a vector, try to copy-initialize 1672 // instead of breaking it apart (which is doomed to failure anyway). 1673 Expr *Init = IList->getInit(Index); 1674 if (!isa<InitListExpr>(Init) && Init->getType()->isVectorType()) { 1675 ExprResult Result; 1676 if (VerifyOnly) { 1677 if (SemaRef.CanPerformCopyInitialization(Entity, Init)) 1678 Result = getDummyInit(); 1679 else 1680 Result = ExprError(); 1681 } else { 1682 Result = 1683 SemaRef.PerformCopyInitialization(Entity, Init->getBeginLoc(), Init, 1684 /*TopLevelOfInitList=*/true); 1685 } 1686 1687 Expr *ResultExpr = nullptr; 1688 if (Result.isInvalid()) 1689 hadError = true; // types weren't compatible. 1690 else { 1691 ResultExpr = Result.getAs<Expr>(); 1692 1693 if (ResultExpr != Init && !VerifyOnly) { 1694 // The type was promoted, update initializer list. 1695 // FIXME: Why are we updating the syntactic init list? 1696 IList->setInit(Index, ResultExpr); 1697 } 1698 } 1699 UpdateStructuredListElement(StructuredList, StructuredIndex, ResultExpr); 1700 ++Index; 1701 return; 1702 } 1703 1704 InitializedEntity ElementEntity = 1705 InitializedEntity::InitializeElement(SemaRef.Context, 0, Entity); 1706 1707 for (unsigned i = 0; i < maxElements; ++i, ++numEltsInit) { 1708 // Don't attempt to go past the end of the init list 1709 if (Index >= IList->getNumInits()) { 1710 CheckEmptyInitializable(ElementEntity, IList->getEndLoc()); 1711 break; 1712 } 1713 1714 ElementEntity.setElementIndex(Index); 1715 CheckSubElementType(ElementEntity, IList, elementType, Index, 1716 StructuredList, StructuredIndex); 1717 } 1718 1719 if (VerifyOnly) 1720 return; 1721 1722 bool isBigEndian = SemaRef.Context.getTargetInfo().isBigEndian(); 1723 const VectorType *T = Entity.getType()->castAs<VectorType>(); 1724 if (isBigEndian && (T->getVectorKind() == VectorType::NeonVector || 1725 T->getVectorKind() == VectorType::NeonPolyVector)) { 1726 // The ability to use vector initializer lists is a GNU vector extension 1727 // and is unrelated to the NEON intrinsics in arm_neon.h. On little 1728 // endian machines it works fine, however on big endian machines it 1729 // exhibits surprising behaviour: 1730 // 1731 // uint32x2_t x = {42, 64}; 1732 // return vget_lane_u32(x, 0); // Will return 64. 1733 // 1734 // Because of this, explicitly call out that it is non-portable. 1735 // 1736 SemaRef.Diag(IList->getBeginLoc(), 1737 diag::warn_neon_vector_initializer_non_portable); 1738 1739 const char *typeCode; 1740 unsigned typeSize = SemaRef.Context.getTypeSize(elementType); 1741 1742 if (elementType->isFloatingType()) 1743 typeCode = "f"; 1744 else if (elementType->isSignedIntegerType()) 1745 typeCode = "s"; 1746 else if (elementType->isUnsignedIntegerType()) 1747 typeCode = "u"; 1748 else 1749 llvm_unreachable("Invalid element type!"); 1750 1751 SemaRef.Diag(IList->getBeginLoc(), 1752 SemaRef.Context.getTypeSize(VT) > 64 1753 ? diag::note_neon_vector_initializer_non_portable_q 1754 : diag::note_neon_vector_initializer_non_portable) 1755 << typeCode << typeSize; 1756 } 1757 1758 return; 1759 } 1760 1761 InitializedEntity ElementEntity = 1762 InitializedEntity::InitializeElement(SemaRef.Context, 0, Entity); 1763 1764 // OpenCL initializers allows vectors to be constructed from vectors. 1765 for (unsigned i = 0; i < maxElements; ++i) { 1766 // Don't attempt to go past the end of the init list 1767 if (Index >= IList->getNumInits()) 1768 break; 1769 1770 ElementEntity.setElementIndex(Index); 1771 1772 QualType IType = IList->getInit(Index)->getType(); 1773 if (!IType->isVectorType()) { 1774 CheckSubElementType(ElementEntity, IList, elementType, Index, 1775 StructuredList, StructuredIndex); 1776 ++numEltsInit; 1777 } else { 1778 QualType VecType; 1779 const VectorType *IVT = IType->castAs<VectorType>(); 1780 unsigned numIElts = IVT->getNumElements(); 1781 1782 if (IType->isExtVectorType()) 1783 VecType = SemaRef.Context.getExtVectorType(elementType, numIElts); 1784 else 1785 VecType = SemaRef.Context.getVectorType(elementType, numIElts, 1786 IVT->getVectorKind()); 1787 CheckSubElementType(ElementEntity, IList, VecType, Index, 1788 StructuredList, StructuredIndex); 1789 numEltsInit += numIElts; 1790 } 1791 } 1792 1793 // OpenCL requires all elements to be initialized. 1794 if (numEltsInit != maxElements) { 1795 if (!VerifyOnly) 1796 SemaRef.Diag(IList->getBeginLoc(), 1797 diag::err_vector_incorrect_num_initializers) 1798 << (numEltsInit < maxElements) << maxElements << numEltsInit; 1799 hadError = true; 1800 } 1801 } 1802 1803 /// Check if the type of a class element has an accessible destructor, and marks 1804 /// it referenced. Returns true if we shouldn't form a reference to the 1805 /// destructor. 1806 /// 1807 /// Aggregate initialization requires a class element's destructor be 1808 /// accessible per 11.6.1 [dcl.init.aggr]: 1809 /// 1810 /// The destructor for each element of class type is potentially invoked 1811 /// (15.4 [class.dtor]) from the context where the aggregate initialization 1812 /// occurs. 1813 static bool checkDestructorReference(QualType ElementType, SourceLocation Loc, 1814 Sema &SemaRef) { 1815 auto *CXXRD = ElementType->getAsCXXRecordDecl(); 1816 if (!CXXRD) 1817 return false; 1818 1819 CXXDestructorDecl *Destructor = SemaRef.LookupDestructor(CXXRD); 1820 SemaRef.CheckDestructorAccess(Loc, Destructor, 1821 SemaRef.PDiag(diag::err_access_dtor_temp) 1822 << ElementType); 1823 SemaRef.MarkFunctionReferenced(Loc, Destructor); 1824 return SemaRef.DiagnoseUseOfDecl(Destructor, Loc); 1825 } 1826 1827 void InitListChecker::CheckArrayType(const InitializedEntity &Entity, 1828 InitListExpr *IList, QualType &DeclType, 1829 llvm::APSInt elementIndex, 1830 bool SubobjectIsDesignatorContext, 1831 unsigned &Index, 1832 InitListExpr *StructuredList, 1833 unsigned &StructuredIndex) { 1834 const ArrayType *arrayType = SemaRef.Context.getAsArrayType(DeclType); 1835 1836 if (!VerifyOnly) { 1837 if (checkDestructorReference(arrayType->getElementType(), 1838 IList->getEndLoc(), SemaRef)) { 1839 hadError = true; 1840 return; 1841 } 1842 } 1843 1844 // Check for the special-case of initializing an array with a string. 1845 if (Index < IList->getNumInits()) { 1846 if (IsStringInit(IList->getInit(Index), arrayType, SemaRef.Context) == 1847 SIF_None) { 1848 // We place the string literal directly into the resulting 1849 // initializer list. This is the only place where the structure 1850 // of the structured initializer list doesn't match exactly, 1851 // because doing so would involve allocating one character 1852 // constant for each string. 1853 // FIXME: Should we do these checks in verify-only mode too? 1854 if (!VerifyOnly) 1855 CheckStringInit(IList->getInit(Index), DeclType, arrayType, SemaRef); 1856 if (StructuredList) { 1857 UpdateStructuredListElement(StructuredList, StructuredIndex, 1858 IList->getInit(Index)); 1859 StructuredList->resizeInits(SemaRef.Context, StructuredIndex); 1860 } 1861 ++Index; 1862 return; 1863 } 1864 } 1865 if (const VariableArrayType *VAT = dyn_cast<VariableArrayType>(arrayType)) { 1866 // Check for VLAs; in standard C it would be possible to check this 1867 // earlier, but I don't know where clang accepts VLAs (gcc accepts 1868 // them in all sorts of strange places). 1869 if (!VerifyOnly) 1870 SemaRef.Diag(VAT->getSizeExpr()->getBeginLoc(), 1871 diag::err_variable_object_no_init) 1872 << VAT->getSizeExpr()->getSourceRange(); 1873 hadError = true; 1874 ++Index; 1875 ++StructuredIndex; 1876 return; 1877 } 1878 1879 // We might know the maximum number of elements in advance. 1880 llvm::APSInt maxElements(elementIndex.getBitWidth(), 1881 elementIndex.isUnsigned()); 1882 bool maxElementsKnown = false; 1883 if (const ConstantArrayType *CAT = dyn_cast<ConstantArrayType>(arrayType)) { 1884 maxElements = CAT->getSize(); 1885 elementIndex = elementIndex.extOrTrunc(maxElements.getBitWidth()); 1886 elementIndex.setIsUnsigned(maxElements.isUnsigned()); 1887 maxElementsKnown = true; 1888 } 1889 1890 QualType elementType = arrayType->getElementType(); 1891 while (Index < IList->getNumInits()) { 1892 Expr *Init = IList->getInit(Index); 1893 if (DesignatedInitExpr *DIE = dyn_cast<DesignatedInitExpr>(Init)) { 1894 // If we're not the subobject that matches up with the '{' for 1895 // the designator, we shouldn't be handling the 1896 // designator. Return immediately. 1897 if (!SubobjectIsDesignatorContext) 1898 return; 1899 1900 // Handle this designated initializer. elementIndex will be 1901 // updated to be the next array element we'll initialize. 1902 if (CheckDesignatedInitializer(Entity, IList, DIE, 0, 1903 DeclType, nullptr, &elementIndex, Index, 1904 StructuredList, StructuredIndex, true, 1905 false)) { 1906 hadError = true; 1907 continue; 1908 } 1909 1910 if (elementIndex.getBitWidth() > maxElements.getBitWidth()) 1911 maxElements = maxElements.extend(elementIndex.getBitWidth()); 1912 else if (elementIndex.getBitWidth() < maxElements.getBitWidth()) 1913 elementIndex = elementIndex.extend(maxElements.getBitWidth()); 1914 elementIndex.setIsUnsigned(maxElements.isUnsigned()); 1915 1916 // If the array is of incomplete type, keep track of the number of 1917 // elements in the initializer. 1918 if (!maxElementsKnown && elementIndex > maxElements) 1919 maxElements = elementIndex; 1920 1921 continue; 1922 } 1923 1924 // If we know the maximum number of elements, and we've already 1925 // hit it, stop consuming elements in the initializer list. 1926 if (maxElementsKnown && elementIndex == maxElements) 1927 break; 1928 1929 InitializedEntity ElementEntity = 1930 InitializedEntity::InitializeElement(SemaRef.Context, StructuredIndex, 1931 Entity); 1932 // Check this element. 1933 CheckSubElementType(ElementEntity, IList, elementType, Index, 1934 StructuredList, StructuredIndex); 1935 ++elementIndex; 1936 1937 // If the array is of incomplete type, keep track of the number of 1938 // elements in the initializer. 1939 if (!maxElementsKnown && elementIndex > maxElements) 1940 maxElements = elementIndex; 1941 } 1942 if (!hadError && DeclType->isIncompleteArrayType() && !VerifyOnly) { 1943 // If this is an incomplete array type, the actual type needs to 1944 // be calculated here. 1945 llvm::APSInt Zero(maxElements.getBitWidth(), maxElements.isUnsigned()); 1946 if (maxElements == Zero && !Entity.isVariableLengthArrayNew()) { 1947 // Sizing an array implicitly to zero is not allowed by ISO C, 1948 // but is supported by GNU. 1949 SemaRef.Diag(IList->getBeginLoc(), diag::ext_typecheck_zero_array_size); 1950 } 1951 1952 DeclType = SemaRef.Context.getConstantArrayType( 1953 elementType, maxElements, nullptr, ArrayType::Normal, 0); 1954 } 1955 if (!hadError) { 1956 // If there are any members of the array that get value-initialized, check 1957 // that is possible. That happens if we know the bound and don't have 1958 // enough elements, or if we're performing an array new with an unknown 1959 // bound. 1960 if ((maxElementsKnown && elementIndex < maxElements) || 1961 Entity.isVariableLengthArrayNew()) 1962 CheckEmptyInitializable( 1963 InitializedEntity::InitializeElement(SemaRef.Context, 0, Entity), 1964 IList->getEndLoc()); 1965 } 1966 } 1967 1968 bool InitListChecker::CheckFlexibleArrayInit(const InitializedEntity &Entity, 1969 Expr *InitExpr, 1970 FieldDecl *Field, 1971 bool TopLevelObject) { 1972 // Handle GNU flexible array initializers. 1973 unsigned FlexArrayDiag; 1974 if (isa<InitListExpr>(InitExpr) && 1975 cast<InitListExpr>(InitExpr)->getNumInits() == 0) { 1976 // Empty flexible array init always allowed as an extension 1977 FlexArrayDiag = diag::ext_flexible_array_init; 1978 } else if (SemaRef.getLangOpts().CPlusPlus) { 1979 // Disallow flexible array init in C++; it is not required for gcc 1980 // compatibility, and it needs work to IRGen correctly in general. 1981 FlexArrayDiag = diag::err_flexible_array_init; 1982 } else if (!TopLevelObject) { 1983 // Disallow flexible array init on non-top-level object 1984 FlexArrayDiag = diag::err_flexible_array_init; 1985 } else if (Entity.getKind() != InitializedEntity::EK_Variable) { 1986 // Disallow flexible array init on anything which is not a variable. 1987 FlexArrayDiag = diag::err_flexible_array_init; 1988 } else if (cast<VarDecl>(Entity.getDecl())->hasLocalStorage()) { 1989 // Disallow flexible array init on local variables. 1990 FlexArrayDiag = diag::err_flexible_array_init; 1991 } else { 1992 // Allow other cases. 1993 FlexArrayDiag = diag::ext_flexible_array_init; 1994 } 1995 1996 if (!VerifyOnly) { 1997 SemaRef.Diag(InitExpr->getBeginLoc(), FlexArrayDiag) 1998 << InitExpr->getBeginLoc(); 1999 SemaRef.Diag(Field->getLocation(), diag::note_flexible_array_member) 2000 << Field; 2001 } 2002 2003 return FlexArrayDiag != diag::ext_flexible_array_init; 2004 } 2005 2006 void InitListChecker::CheckStructUnionTypes( 2007 const InitializedEntity &Entity, InitListExpr *IList, QualType DeclType, 2008 CXXRecordDecl::base_class_range Bases, RecordDecl::field_iterator Field, 2009 bool SubobjectIsDesignatorContext, unsigned &Index, 2010 InitListExpr *StructuredList, unsigned &StructuredIndex, 2011 bool TopLevelObject) { 2012 RecordDecl *structDecl = DeclType->castAs<RecordType>()->getDecl(); 2013 2014 // If the record is invalid, some of it's members are invalid. To avoid 2015 // confusion, we forgo checking the intializer for the entire record. 2016 if (structDecl->isInvalidDecl()) { 2017 // Assume it was supposed to consume a single initializer. 2018 ++Index; 2019 hadError = true; 2020 return; 2021 } 2022 2023 if (DeclType->isUnionType() && IList->getNumInits() == 0) { 2024 RecordDecl *RD = DeclType->castAs<RecordType>()->getDecl(); 2025 2026 if (!VerifyOnly) 2027 for (FieldDecl *FD : RD->fields()) { 2028 QualType ET = SemaRef.Context.getBaseElementType(FD->getType()); 2029 if (checkDestructorReference(ET, IList->getEndLoc(), SemaRef)) { 2030 hadError = true; 2031 return; 2032 } 2033 } 2034 2035 // If there's a default initializer, use it. 2036 if (isa<CXXRecordDecl>(RD) && 2037 cast<CXXRecordDecl>(RD)->hasInClassInitializer()) { 2038 if (!StructuredList) 2039 return; 2040 for (RecordDecl::field_iterator FieldEnd = RD->field_end(); 2041 Field != FieldEnd; ++Field) { 2042 if (Field->hasInClassInitializer()) { 2043 StructuredList->setInitializedFieldInUnion(*Field); 2044 // FIXME: Actually build a CXXDefaultInitExpr? 2045 return; 2046 } 2047 } 2048 } 2049 2050 // Value-initialize the first member of the union that isn't an unnamed 2051 // bitfield. 2052 for (RecordDecl::field_iterator FieldEnd = RD->field_end(); 2053 Field != FieldEnd; ++Field) { 2054 if (!Field->isUnnamedBitfield()) { 2055 CheckEmptyInitializable( 2056 InitializedEntity::InitializeMember(*Field, &Entity), 2057 IList->getEndLoc()); 2058 if (StructuredList) 2059 StructuredList->setInitializedFieldInUnion(*Field); 2060 break; 2061 } 2062 } 2063 return; 2064 } 2065 2066 bool InitializedSomething = false; 2067 2068 // If we have any base classes, they are initialized prior to the fields. 2069 for (auto &Base : Bases) { 2070 Expr *Init = Index < IList->getNumInits() ? IList->getInit(Index) : nullptr; 2071 2072 // Designated inits always initialize fields, so if we see one, all 2073 // remaining base classes have no explicit initializer. 2074 if (Init && isa<DesignatedInitExpr>(Init)) 2075 Init = nullptr; 2076 2077 SourceLocation InitLoc = Init ? Init->getBeginLoc() : IList->getEndLoc(); 2078 InitializedEntity BaseEntity = InitializedEntity::InitializeBase( 2079 SemaRef.Context, &Base, false, &Entity); 2080 if (Init) { 2081 CheckSubElementType(BaseEntity, IList, Base.getType(), Index, 2082 StructuredList, StructuredIndex); 2083 InitializedSomething = true; 2084 } else { 2085 CheckEmptyInitializable(BaseEntity, InitLoc); 2086 } 2087 2088 if (!VerifyOnly) 2089 if (checkDestructorReference(Base.getType(), InitLoc, SemaRef)) { 2090 hadError = true; 2091 return; 2092 } 2093 } 2094 2095 // If structDecl is a forward declaration, this loop won't do 2096 // anything except look at designated initializers; That's okay, 2097 // because an error should get printed out elsewhere. It might be 2098 // worthwhile to skip over the rest of the initializer, though. 2099 RecordDecl *RD = DeclType->castAs<RecordType>()->getDecl(); 2100 RecordDecl::field_iterator FieldEnd = RD->field_end(); 2101 bool CheckForMissingFields = 2102 !IList->isIdiomaticZeroInitializer(SemaRef.getLangOpts()); 2103 bool HasDesignatedInit = false; 2104 2105 while (Index < IList->getNumInits()) { 2106 Expr *Init = IList->getInit(Index); 2107 SourceLocation InitLoc = Init->getBeginLoc(); 2108 2109 if (DesignatedInitExpr *DIE = dyn_cast<DesignatedInitExpr>(Init)) { 2110 // If we're not the subobject that matches up with the '{' for 2111 // the designator, we shouldn't be handling the 2112 // designator. Return immediately. 2113 if (!SubobjectIsDesignatorContext) 2114 return; 2115 2116 HasDesignatedInit = true; 2117 2118 // Handle this designated initializer. Field will be updated to 2119 // the next field that we'll be initializing. 2120 if (CheckDesignatedInitializer(Entity, IList, DIE, 0, 2121 DeclType, &Field, nullptr, Index, 2122 StructuredList, StructuredIndex, 2123 true, TopLevelObject)) 2124 hadError = true; 2125 else if (!VerifyOnly) { 2126 // Find the field named by the designated initializer. 2127 RecordDecl::field_iterator F = RD->field_begin(); 2128 while (std::next(F) != Field) 2129 ++F; 2130 QualType ET = SemaRef.Context.getBaseElementType(F->getType()); 2131 if (checkDestructorReference(ET, InitLoc, SemaRef)) { 2132 hadError = true; 2133 return; 2134 } 2135 } 2136 2137 InitializedSomething = true; 2138 2139 // Disable check for missing fields when designators are used. 2140 // This matches gcc behaviour. 2141 CheckForMissingFields = false; 2142 continue; 2143 } 2144 2145 if (Field == FieldEnd) { 2146 // We've run out of fields. We're done. 2147 break; 2148 } 2149 2150 // We've already initialized a member of a union. We're done. 2151 if (InitializedSomething && DeclType->isUnionType()) 2152 break; 2153 2154 // If we've hit the flexible array member at the end, we're done. 2155 if (Field->getType()->isIncompleteArrayType()) 2156 break; 2157 2158 if (Field->isUnnamedBitfield()) { 2159 // Don't initialize unnamed bitfields, e.g. "int : 20;" 2160 ++Field; 2161 continue; 2162 } 2163 2164 // Make sure we can use this declaration. 2165 bool InvalidUse; 2166 if (VerifyOnly) 2167 InvalidUse = !SemaRef.CanUseDecl(*Field, TreatUnavailableAsInvalid); 2168 else 2169 InvalidUse = SemaRef.DiagnoseUseOfDecl( 2170 *Field, IList->getInit(Index)->getBeginLoc()); 2171 if (InvalidUse) { 2172 ++Index; 2173 ++Field; 2174 hadError = true; 2175 continue; 2176 } 2177 2178 if (!VerifyOnly) { 2179 QualType ET = SemaRef.Context.getBaseElementType(Field->getType()); 2180 if (checkDestructorReference(ET, InitLoc, SemaRef)) { 2181 hadError = true; 2182 return; 2183 } 2184 } 2185 2186 InitializedEntity MemberEntity = 2187 InitializedEntity::InitializeMember(*Field, &Entity); 2188 CheckSubElementType(MemberEntity, IList, Field->getType(), Index, 2189 StructuredList, StructuredIndex); 2190 InitializedSomething = true; 2191 2192 if (DeclType->isUnionType() && StructuredList) { 2193 // Initialize the first field within the union. 2194 StructuredList->setInitializedFieldInUnion(*Field); 2195 } 2196 2197 ++Field; 2198 } 2199 2200 // Emit warnings for missing struct field initializers. 2201 if (!VerifyOnly && InitializedSomething && CheckForMissingFields && 2202 Field != FieldEnd && !Field->getType()->isIncompleteArrayType() && 2203 !DeclType->isUnionType()) { 2204 // It is possible we have one or more unnamed bitfields remaining. 2205 // Find first (if any) named field and emit warning. 2206 for (RecordDecl::field_iterator it = Field, end = RD->field_end(); 2207 it != end; ++it) { 2208 if (!it->isUnnamedBitfield() && !it->hasInClassInitializer()) { 2209 SemaRef.Diag(IList->getSourceRange().getEnd(), 2210 diag::warn_missing_field_initializers) << *it; 2211 break; 2212 } 2213 } 2214 } 2215 2216 // Check that any remaining fields can be value-initialized if we're not 2217 // building a structured list. (If we are, we'll check this later.) 2218 if (!StructuredList && Field != FieldEnd && !DeclType->isUnionType() && 2219 !Field->getType()->isIncompleteArrayType()) { 2220 for (; Field != FieldEnd && !hadError; ++Field) { 2221 if (!Field->isUnnamedBitfield() && !Field->hasInClassInitializer()) 2222 CheckEmptyInitializable( 2223 InitializedEntity::InitializeMember(*Field, &Entity), 2224 IList->getEndLoc()); 2225 } 2226 } 2227 2228 // Check that the types of the remaining fields have accessible destructors. 2229 if (!VerifyOnly) { 2230 // If the initializer expression has a designated initializer, check the 2231 // elements for which a designated initializer is not provided too. 2232 RecordDecl::field_iterator I = HasDesignatedInit ? RD->field_begin() 2233 : Field; 2234 for (RecordDecl::field_iterator E = RD->field_end(); I != E; ++I) { 2235 QualType ET = SemaRef.Context.getBaseElementType(I->getType()); 2236 if (checkDestructorReference(ET, IList->getEndLoc(), SemaRef)) { 2237 hadError = true; 2238 return; 2239 } 2240 } 2241 } 2242 2243 if (Field == FieldEnd || !Field->getType()->isIncompleteArrayType() || 2244 Index >= IList->getNumInits()) 2245 return; 2246 2247 if (CheckFlexibleArrayInit(Entity, IList->getInit(Index), *Field, 2248 TopLevelObject)) { 2249 hadError = true; 2250 ++Index; 2251 return; 2252 } 2253 2254 InitializedEntity MemberEntity = 2255 InitializedEntity::InitializeMember(*Field, &Entity); 2256 2257 if (isa<InitListExpr>(IList->getInit(Index))) 2258 CheckSubElementType(MemberEntity, IList, Field->getType(), Index, 2259 StructuredList, StructuredIndex); 2260 else 2261 CheckImplicitInitList(MemberEntity, IList, Field->getType(), Index, 2262 StructuredList, StructuredIndex); 2263 } 2264 2265 /// Expand a field designator that refers to a member of an 2266 /// anonymous struct or union into a series of field designators that 2267 /// refers to the field within the appropriate subobject. 2268 /// 2269 static void ExpandAnonymousFieldDesignator(Sema &SemaRef, 2270 DesignatedInitExpr *DIE, 2271 unsigned DesigIdx, 2272 IndirectFieldDecl *IndirectField) { 2273 typedef DesignatedInitExpr::Designator Designator; 2274 2275 // Build the replacement designators. 2276 SmallVector<Designator, 4> Replacements; 2277 for (IndirectFieldDecl::chain_iterator PI = IndirectField->chain_begin(), 2278 PE = IndirectField->chain_end(); PI != PE; ++PI) { 2279 if (PI + 1 == PE) 2280 Replacements.push_back(Designator((IdentifierInfo *)nullptr, 2281 DIE->getDesignator(DesigIdx)->getDotLoc(), 2282 DIE->getDesignator(DesigIdx)->getFieldLoc())); 2283 else 2284 Replacements.push_back(Designator((IdentifierInfo *)nullptr, 2285 SourceLocation(), SourceLocation())); 2286 assert(isa<FieldDecl>(*PI)); 2287 Replacements.back().setField(cast<FieldDecl>(*PI)); 2288 } 2289 2290 // Expand the current designator into the set of replacement 2291 // designators, so we have a full subobject path down to where the 2292 // member of the anonymous struct/union is actually stored. 2293 DIE->ExpandDesignator(SemaRef.Context, DesigIdx, &Replacements[0], 2294 &Replacements[0] + Replacements.size()); 2295 } 2296 2297 static DesignatedInitExpr *CloneDesignatedInitExpr(Sema &SemaRef, 2298 DesignatedInitExpr *DIE) { 2299 unsigned NumIndexExprs = DIE->getNumSubExprs() - 1; 2300 SmallVector<Expr*, 4> IndexExprs(NumIndexExprs); 2301 for (unsigned I = 0; I < NumIndexExprs; ++I) 2302 IndexExprs[I] = DIE->getSubExpr(I + 1); 2303 return DesignatedInitExpr::Create(SemaRef.Context, DIE->designators(), 2304 IndexExprs, 2305 DIE->getEqualOrColonLoc(), 2306 DIE->usesGNUSyntax(), DIE->getInit()); 2307 } 2308 2309 namespace { 2310 2311 // Callback to only accept typo corrections that are for field members of 2312 // the given struct or union. 2313 class FieldInitializerValidatorCCC final : public CorrectionCandidateCallback { 2314 public: 2315 explicit FieldInitializerValidatorCCC(RecordDecl *RD) 2316 : Record(RD) {} 2317 2318 bool ValidateCandidate(const TypoCorrection &candidate) override { 2319 FieldDecl *FD = candidate.getCorrectionDeclAs<FieldDecl>(); 2320 return FD && FD->getDeclContext()->getRedeclContext()->Equals(Record); 2321 } 2322 2323 std::unique_ptr<CorrectionCandidateCallback> clone() override { 2324 return std::make_unique<FieldInitializerValidatorCCC>(*this); 2325 } 2326 2327 private: 2328 RecordDecl *Record; 2329 }; 2330 2331 } // end anonymous namespace 2332 2333 /// Check the well-formedness of a C99 designated initializer. 2334 /// 2335 /// Determines whether the designated initializer @p DIE, which 2336 /// resides at the given @p Index within the initializer list @p 2337 /// IList, is well-formed for a current object of type @p DeclType 2338 /// (C99 6.7.8). The actual subobject that this designator refers to 2339 /// within the current subobject is returned in either 2340 /// @p NextField or @p NextElementIndex (whichever is appropriate). 2341 /// 2342 /// @param IList The initializer list in which this designated 2343 /// initializer occurs. 2344 /// 2345 /// @param DIE The designated initializer expression. 2346 /// 2347 /// @param DesigIdx The index of the current designator. 2348 /// 2349 /// @param CurrentObjectType The type of the "current object" (C99 6.7.8p17), 2350 /// into which the designation in @p DIE should refer. 2351 /// 2352 /// @param NextField If non-NULL and the first designator in @p DIE is 2353 /// a field, this will be set to the field declaration corresponding 2354 /// to the field named by the designator. On input, this is expected to be 2355 /// the next field that would be initialized in the absence of designation, 2356 /// if the complete object being initialized is a struct. 2357 /// 2358 /// @param NextElementIndex If non-NULL and the first designator in @p 2359 /// DIE is an array designator or GNU array-range designator, this 2360 /// will be set to the last index initialized by this designator. 2361 /// 2362 /// @param Index Index into @p IList where the designated initializer 2363 /// @p DIE occurs. 2364 /// 2365 /// @param StructuredList The initializer list expression that 2366 /// describes all of the subobject initializers in the order they'll 2367 /// actually be initialized. 2368 /// 2369 /// @returns true if there was an error, false otherwise. 2370 bool 2371 InitListChecker::CheckDesignatedInitializer(const InitializedEntity &Entity, 2372 InitListExpr *IList, 2373 DesignatedInitExpr *DIE, 2374 unsigned DesigIdx, 2375 QualType &CurrentObjectType, 2376 RecordDecl::field_iterator *NextField, 2377 llvm::APSInt *NextElementIndex, 2378 unsigned &Index, 2379 InitListExpr *StructuredList, 2380 unsigned &StructuredIndex, 2381 bool FinishSubobjectInit, 2382 bool TopLevelObject) { 2383 if (DesigIdx == DIE->size()) { 2384 // C++20 designated initialization can result in direct-list-initialization 2385 // of the designated subobject. This is the only way that we can end up 2386 // performing direct initialization as part of aggregate initialization, so 2387 // it needs special handling. 2388 if (DIE->isDirectInit()) { 2389 Expr *Init = DIE->getInit(); 2390 assert(isa<InitListExpr>(Init) && 2391 "designator result in direct non-list initialization?"); 2392 InitializationKind Kind = InitializationKind::CreateDirectList( 2393 DIE->getBeginLoc(), Init->getBeginLoc(), Init->getEndLoc()); 2394 InitializationSequence Seq(SemaRef, Entity, Kind, Init, 2395 /*TopLevelOfInitList*/ true); 2396 if (StructuredList) { 2397 ExprResult Result = VerifyOnly 2398 ? getDummyInit() 2399 : Seq.Perform(SemaRef, Entity, Kind, Init); 2400 UpdateStructuredListElement(StructuredList, StructuredIndex, 2401 Result.get()); 2402 } 2403 ++Index; 2404 return !Seq; 2405 } 2406 2407 // Check the actual initialization for the designated object type. 2408 bool prevHadError = hadError; 2409 2410 // Temporarily remove the designator expression from the 2411 // initializer list that the child calls see, so that we don't try 2412 // to re-process the designator. 2413 unsigned OldIndex = Index; 2414 IList->setInit(OldIndex, DIE->getInit()); 2415 2416 CheckSubElementType(Entity, IList, CurrentObjectType, Index, 2417 StructuredList, StructuredIndex); 2418 2419 // Restore the designated initializer expression in the syntactic 2420 // form of the initializer list. 2421 if (IList->getInit(OldIndex) != DIE->getInit()) 2422 DIE->setInit(IList->getInit(OldIndex)); 2423 IList->setInit(OldIndex, DIE); 2424 2425 return hadError && !prevHadError; 2426 } 2427 2428 DesignatedInitExpr::Designator *D = DIE->getDesignator(DesigIdx); 2429 bool IsFirstDesignator = (DesigIdx == 0); 2430 if (IsFirstDesignator ? FullyStructuredList : StructuredList) { 2431 // Determine the structural initializer list that corresponds to the 2432 // current subobject. 2433 if (IsFirstDesignator) 2434 StructuredList = FullyStructuredList; 2435 else { 2436 Expr *ExistingInit = StructuredIndex < StructuredList->getNumInits() ? 2437 StructuredList->getInit(StructuredIndex) : nullptr; 2438 if (!ExistingInit && StructuredList->hasArrayFiller()) 2439 ExistingInit = StructuredList->getArrayFiller(); 2440 2441 if (!ExistingInit) 2442 StructuredList = getStructuredSubobjectInit( 2443 IList, Index, CurrentObjectType, StructuredList, StructuredIndex, 2444 SourceRange(D->getBeginLoc(), DIE->getEndLoc())); 2445 else if (InitListExpr *Result = dyn_cast<InitListExpr>(ExistingInit)) 2446 StructuredList = Result; 2447 else { 2448 // We are creating an initializer list that initializes the 2449 // subobjects of the current object, but there was already an 2450 // initialization that completely initialized the current 2451 // subobject, e.g., by a compound literal: 2452 // 2453 // struct X { int a, b; }; 2454 // struct X xs[] = { [0] = (struct X) { 1, 2 }, [0].b = 3 }; 2455 // 2456 // Here, xs[0].a == 1 and xs[0].b == 3, since the second, 2457 // designated initializer re-initializes only its current object 2458 // subobject [0].b. 2459 diagnoseInitOverride(ExistingInit, 2460 SourceRange(D->getBeginLoc(), DIE->getEndLoc()), 2461 /*FullyOverwritten=*/false); 2462 2463 if (!VerifyOnly) { 2464 if (DesignatedInitUpdateExpr *E = 2465 dyn_cast<DesignatedInitUpdateExpr>(ExistingInit)) 2466 StructuredList = E->getUpdater(); 2467 else { 2468 DesignatedInitUpdateExpr *DIUE = new (SemaRef.Context) 2469 DesignatedInitUpdateExpr(SemaRef.Context, D->getBeginLoc(), 2470 ExistingInit, DIE->getEndLoc()); 2471 StructuredList->updateInit(SemaRef.Context, StructuredIndex, DIUE); 2472 StructuredList = DIUE->getUpdater(); 2473 } 2474 } else { 2475 // We don't need to track the structured representation of a 2476 // designated init update of an already-fully-initialized object in 2477 // verify-only mode. The only reason we would need the structure is 2478 // to determine where the uninitialized "holes" are, and in this 2479 // case, we know there aren't any and we can't introduce any. 2480 StructuredList = nullptr; 2481 } 2482 } 2483 } 2484 } 2485 2486 if (D->isFieldDesignator()) { 2487 // C99 6.7.8p7: 2488 // 2489 // If a designator has the form 2490 // 2491 // . identifier 2492 // 2493 // then the current object (defined below) shall have 2494 // structure or union type and the identifier shall be the 2495 // name of a member of that type. 2496 const RecordType *RT = CurrentObjectType->getAs<RecordType>(); 2497 if (!RT) { 2498 SourceLocation Loc = D->getDotLoc(); 2499 if (Loc.isInvalid()) 2500 Loc = D->getFieldLoc(); 2501 if (!VerifyOnly) 2502 SemaRef.Diag(Loc, diag::err_field_designator_non_aggr) 2503 << SemaRef.getLangOpts().CPlusPlus << CurrentObjectType; 2504 ++Index; 2505 return true; 2506 } 2507 2508 FieldDecl *KnownField = D->getField(); 2509 if (!KnownField) { 2510 IdentifierInfo *FieldName = D->getFieldName(); 2511 DeclContext::lookup_result Lookup = RT->getDecl()->lookup(FieldName); 2512 for (NamedDecl *ND : Lookup) { 2513 if (auto *FD = dyn_cast<FieldDecl>(ND)) { 2514 KnownField = FD; 2515 break; 2516 } 2517 if (auto *IFD = dyn_cast<IndirectFieldDecl>(ND)) { 2518 // In verify mode, don't modify the original. 2519 if (VerifyOnly) 2520 DIE = CloneDesignatedInitExpr(SemaRef, DIE); 2521 ExpandAnonymousFieldDesignator(SemaRef, DIE, DesigIdx, IFD); 2522 D = DIE->getDesignator(DesigIdx); 2523 KnownField = cast<FieldDecl>(*IFD->chain_begin()); 2524 break; 2525 } 2526 } 2527 if (!KnownField) { 2528 if (VerifyOnly) { 2529 ++Index; 2530 return true; // No typo correction when just trying this out. 2531 } 2532 2533 // Name lookup found something, but it wasn't a field. 2534 if (!Lookup.empty()) { 2535 SemaRef.Diag(D->getFieldLoc(), diag::err_field_designator_nonfield) 2536 << FieldName; 2537 SemaRef.Diag(Lookup.front()->getLocation(), 2538 diag::note_field_designator_found); 2539 ++Index; 2540 return true; 2541 } 2542 2543 // Name lookup didn't find anything. 2544 // Determine whether this was a typo for another field name. 2545 FieldInitializerValidatorCCC CCC(RT->getDecl()); 2546 if (TypoCorrection Corrected = SemaRef.CorrectTypo( 2547 DeclarationNameInfo(FieldName, D->getFieldLoc()), 2548 Sema::LookupMemberName, /*Scope=*/nullptr, /*SS=*/nullptr, CCC, 2549 Sema::CTK_ErrorRecovery, RT->getDecl())) { 2550 SemaRef.diagnoseTypo( 2551 Corrected, 2552 SemaRef.PDiag(diag::err_field_designator_unknown_suggest) 2553 << FieldName << CurrentObjectType); 2554 KnownField = Corrected.getCorrectionDeclAs<FieldDecl>(); 2555 hadError = true; 2556 } else { 2557 // Typo correction didn't find anything. 2558 SemaRef.Diag(D->getFieldLoc(), diag::err_field_designator_unknown) 2559 << FieldName << CurrentObjectType; 2560 ++Index; 2561 return true; 2562 } 2563 } 2564 } 2565 2566 unsigned NumBases = 0; 2567 if (auto *CXXRD = dyn_cast<CXXRecordDecl>(RT->getDecl())) 2568 NumBases = CXXRD->getNumBases(); 2569 2570 unsigned FieldIndex = NumBases; 2571 2572 for (auto *FI : RT->getDecl()->fields()) { 2573 if (FI->isUnnamedBitfield()) 2574 continue; 2575 if (declaresSameEntity(KnownField, FI)) { 2576 KnownField = FI; 2577 break; 2578 } 2579 ++FieldIndex; 2580 } 2581 2582 RecordDecl::field_iterator Field = 2583 RecordDecl::field_iterator(DeclContext::decl_iterator(KnownField)); 2584 2585 // All of the fields of a union are located at the same place in 2586 // the initializer list. 2587 if (RT->getDecl()->isUnion()) { 2588 FieldIndex = 0; 2589 if (StructuredList) { 2590 FieldDecl *CurrentField = StructuredList->getInitializedFieldInUnion(); 2591 if (CurrentField && !declaresSameEntity(CurrentField, *Field)) { 2592 assert(StructuredList->getNumInits() == 1 2593 && "A union should never have more than one initializer!"); 2594 2595 Expr *ExistingInit = StructuredList->getInit(0); 2596 if (ExistingInit) { 2597 // We're about to throw away an initializer, emit warning. 2598 diagnoseInitOverride( 2599 ExistingInit, SourceRange(D->getBeginLoc(), DIE->getEndLoc())); 2600 } 2601 2602 // remove existing initializer 2603 StructuredList->resizeInits(SemaRef.Context, 0); 2604 StructuredList->setInitializedFieldInUnion(nullptr); 2605 } 2606 2607 StructuredList->setInitializedFieldInUnion(*Field); 2608 } 2609 } 2610 2611 // Make sure we can use this declaration. 2612 bool InvalidUse; 2613 if (VerifyOnly) 2614 InvalidUse = !SemaRef.CanUseDecl(*Field, TreatUnavailableAsInvalid); 2615 else 2616 InvalidUse = SemaRef.DiagnoseUseOfDecl(*Field, D->getFieldLoc()); 2617 if (InvalidUse) { 2618 ++Index; 2619 return true; 2620 } 2621 2622 // C++20 [dcl.init.list]p3: 2623 // The ordered identifiers in the designators of the designated- 2624 // initializer-list shall form a subsequence of the ordered identifiers 2625 // in the direct non-static data members of T. 2626 // 2627 // Note that this is not a condition on forming the aggregate 2628 // initialization, only on actually performing initialization, 2629 // so it is not checked in VerifyOnly mode. 2630 // 2631 // FIXME: This is the only reordering diagnostic we produce, and it only 2632 // catches cases where we have a top-level field designator that jumps 2633 // backwards. This is the only such case that is reachable in an 2634 // otherwise-valid C++20 program, so is the only case that's required for 2635 // conformance, but for consistency, we should diagnose all the other 2636 // cases where a designator takes us backwards too. 2637 if (IsFirstDesignator && !VerifyOnly && SemaRef.getLangOpts().CPlusPlus && 2638 NextField && 2639 (*NextField == RT->getDecl()->field_end() || 2640 (*NextField)->getFieldIndex() > Field->getFieldIndex() + 1)) { 2641 // Find the field that we just initialized. 2642 FieldDecl *PrevField = nullptr; 2643 for (auto FI = RT->getDecl()->field_begin(); 2644 FI != RT->getDecl()->field_end(); ++FI) { 2645 if (FI->isUnnamedBitfield()) 2646 continue; 2647 if (*NextField != RT->getDecl()->field_end() && 2648 declaresSameEntity(*FI, **NextField)) 2649 break; 2650 PrevField = *FI; 2651 } 2652 2653 if (PrevField && 2654 PrevField->getFieldIndex() > KnownField->getFieldIndex()) { 2655 SemaRef.Diag(DIE->getBeginLoc(), diag::ext_designated_init_reordered) 2656 << KnownField << PrevField << DIE->getSourceRange(); 2657 2658 unsigned OldIndex = NumBases + PrevField->getFieldIndex(); 2659 if (StructuredList && OldIndex <= StructuredList->getNumInits()) { 2660 if (Expr *PrevInit = StructuredList->getInit(OldIndex)) { 2661 SemaRef.Diag(PrevInit->getBeginLoc(), 2662 diag::note_previous_field_init) 2663 << PrevField << PrevInit->getSourceRange(); 2664 } 2665 } 2666 } 2667 } 2668 2669 2670 // Update the designator with the field declaration. 2671 if (!VerifyOnly) 2672 D->setField(*Field); 2673 2674 // Make sure that our non-designated initializer list has space 2675 // for a subobject corresponding to this field. 2676 if (StructuredList && FieldIndex >= StructuredList->getNumInits()) 2677 StructuredList->resizeInits(SemaRef.Context, FieldIndex + 1); 2678 2679 // This designator names a flexible array member. 2680 if (Field->getType()->isIncompleteArrayType()) { 2681 bool Invalid = false; 2682 if ((DesigIdx + 1) != DIE->size()) { 2683 // We can't designate an object within the flexible array 2684 // member (because GCC doesn't allow it). 2685 if (!VerifyOnly) { 2686 DesignatedInitExpr::Designator *NextD 2687 = DIE->getDesignator(DesigIdx + 1); 2688 SemaRef.Diag(NextD->getBeginLoc(), 2689 diag::err_designator_into_flexible_array_member) 2690 << SourceRange(NextD->getBeginLoc(), DIE->getEndLoc()); 2691 SemaRef.Diag(Field->getLocation(), diag::note_flexible_array_member) 2692 << *Field; 2693 } 2694 Invalid = true; 2695 } 2696 2697 if (!hadError && !isa<InitListExpr>(DIE->getInit()) && 2698 !isa<StringLiteral>(DIE->getInit())) { 2699 // The initializer is not an initializer list. 2700 if (!VerifyOnly) { 2701 SemaRef.Diag(DIE->getInit()->getBeginLoc(), 2702 diag::err_flexible_array_init_needs_braces) 2703 << DIE->getInit()->getSourceRange(); 2704 SemaRef.Diag(Field->getLocation(), diag::note_flexible_array_member) 2705 << *Field; 2706 } 2707 Invalid = true; 2708 } 2709 2710 // Check GNU flexible array initializer. 2711 if (!Invalid && CheckFlexibleArrayInit(Entity, DIE->getInit(), *Field, 2712 TopLevelObject)) 2713 Invalid = true; 2714 2715 if (Invalid) { 2716 ++Index; 2717 return true; 2718 } 2719 2720 // Initialize the array. 2721 bool prevHadError = hadError; 2722 unsigned newStructuredIndex = FieldIndex; 2723 unsigned OldIndex = Index; 2724 IList->setInit(Index, DIE->getInit()); 2725 2726 InitializedEntity MemberEntity = 2727 InitializedEntity::InitializeMember(*Field, &Entity); 2728 CheckSubElementType(MemberEntity, IList, Field->getType(), Index, 2729 StructuredList, newStructuredIndex); 2730 2731 IList->setInit(OldIndex, DIE); 2732 if (hadError && !prevHadError) { 2733 ++Field; 2734 ++FieldIndex; 2735 if (NextField) 2736 *NextField = Field; 2737 StructuredIndex = FieldIndex; 2738 return true; 2739 } 2740 } else { 2741 // Recurse to check later designated subobjects. 2742 QualType FieldType = Field->getType(); 2743 unsigned newStructuredIndex = FieldIndex; 2744 2745 InitializedEntity MemberEntity = 2746 InitializedEntity::InitializeMember(*Field, &Entity); 2747 if (CheckDesignatedInitializer(MemberEntity, IList, DIE, DesigIdx + 1, 2748 FieldType, nullptr, nullptr, Index, 2749 StructuredList, newStructuredIndex, 2750 FinishSubobjectInit, false)) 2751 return true; 2752 } 2753 2754 // Find the position of the next field to be initialized in this 2755 // subobject. 2756 ++Field; 2757 ++FieldIndex; 2758 2759 // If this the first designator, our caller will continue checking 2760 // the rest of this struct/class/union subobject. 2761 if (IsFirstDesignator) { 2762 if (NextField) 2763 *NextField = Field; 2764 StructuredIndex = FieldIndex; 2765 return false; 2766 } 2767 2768 if (!FinishSubobjectInit) 2769 return false; 2770 2771 // We've already initialized something in the union; we're done. 2772 if (RT->getDecl()->isUnion()) 2773 return hadError; 2774 2775 // Check the remaining fields within this class/struct/union subobject. 2776 bool prevHadError = hadError; 2777 2778 auto NoBases = 2779 CXXRecordDecl::base_class_range(CXXRecordDecl::base_class_iterator(), 2780 CXXRecordDecl::base_class_iterator()); 2781 CheckStructUnionTypes(Entity, IList, CurrentObjectType, NoBases, Field, 2782 false, Index, StructuredList, FieldIndex); 2783 return hadError && !prevHadError; 2784 } 2785 2786 // C99 6.7.8p6: 2787 // 2788 // If a designator has the form 2789 // 2790 // [ constant-expression ] 2791 // 2792 // then the current object (defined below) shall have array 2793 // type and the expression shall be an integer constant 2794 // expression. If the array is of unknown size, any 2795 // nonnegative value is valid. 2796 // 2797 // Additionally, cope with the GNU extension that permits 2798 // designators of the form 2799 // 2800 // [ constant-expression ... constant-expression ] 2801 const ArrayType *AT = SemaRef.Context.getAsArrayType(CurrentObjectType); 2802 if (!AT) { 2803 if (!VerifyOnly) 2804 SemaRef.Diag(D->getLBracketLoc(), diag::err_array_designator_non_array) 2805 << CurrentObjectType; 2806 ++Index; 2807 return true; 2808 } 2809 2810 Expr *IndexExpr = nullptr; 2811 llvm::APSInt DesignatedStartIndex, DesignatedEndIndex; 2812 if (D->isArrayDesignator()) { 2813 IndexExpr = DIE->getArrayIndex(*D); 2814 DesignatedStartIndex = IndexExpr->EvaluateKnownConstInt(SemaRef.Context); 2815 DesignatedEndIndex = DesignatedStartIndex; 2816 } else { 2817 assert(D->isArrayRangeDesignator() && "Need array-range designator"); 2818 2819 DesignatedStartIndex = 2820 DIE->getArrayRangeStart(*D)->EvaluateKnownConstInt(SemaRef.Context); 2821 DesignatedEndIndex = 2822 DIE->getArrayRangeEnd(*D)->EvaluateKnownConstInt(SemaRef.Context); 2823 IndexExpr = DIE->getArrayRangeEnd(*D); 2824 2825 // Codegen can't handle evaluating array range designators that have side 2826 // effects, because we replicate the AST value for each initialized element. 2827 // As such, set the sawArrayRangeDesignator() bit if we initialize multiple 2828 // elements with something that has a side effect, so codegen can emit an 2829 // "error unsupported" error instead of miscompiling the app. 2830 if (DesignatedStartIndex.getZExtValue()!=DesignatedEndIndex.getZExtValue()&& 2831 DIE->getInit()->HasSideEffects(SemaRef.Context) && !VerifyOnly) 2832 FullyStructuredList->sawArrayRangeDesignator(); 2833 } 2834 2835 if (isa<ConstantArrayType>(AT)) { 2836 llvm::APSInt MaxElements(cast<ConstantArrayType>(AT)->getSize(), false); 2837 DesignatedStartIndex 2838 = DesignatedStartIndex.extOrTrunc(MaxElements.getBitWidth()); 2839 DesignatedStartIndex.setIsUnsigned(MaxElements.isUnsigned()); 2840 DesignatedEndIndex 2841 = DesignatedEndIndex.extOrTrunc(MaxElements.getBitWidth()); 2842 DesignatedEndIndex.setIsUnsigned(MaxElements.isUnsigned()); 2843 if (DesignatedEndIndex >= MaxElements) { 2844 if (!VerifyOnly) 2845 SemaRef.Diag(IndexExpr->getBeginLoc(), 2846 diag::err_array_designator_too_large) 2847 << DesignatedEndIndex.toString(10) << MaxElements.toString(10) 2848 << IndexExpr->getSourceRange(); 2849 ++Index; 2850 return true; 2851 } 2852 } else { 2853 unsigned DesignatedIndexBitWidth = 2854 ConstantArrayType::getMaxSizeBits(SemaRef.Context); 2855 DesignatedStartIndex = 2856 DesignatedStartIndex.extOrTrunc(DesignatedIndexBitWidth); 2857 DesignatedEndIndex = 2858 DesignatedEndIndex.extOrTrunc(DesignatedIndexBitWidth); 2859 DesignatedStartIndex.setIsUnsigned(true); 2860 DesignatedEndIndex.setIsUnsigned(true); 2861 } 2862 2863 bool IsStringLiteralInitUpdate = 2864 StructuredList && StructuredList->isStringLiteralInit(); 2865 if (IsStringLiteralInitUpdate && VerifyOnly) { 2866 // We're just verifying an update to a string literal init. We don't need 2867 // to split the string up into individual characters to do that. 2868 StructuredList = nullptr; 2869 } else if (IsStringLiteralInitUpdate) { 2870 // We're modifying a string literal init; we have to decompose the string 2871 // so we can modify the individual characters. 2872 ASTContext &Context = SemaRef.Context; 2873 Expr *SubExpr = StructuredList->getInit(0)->IgnoreParens(); 2874 2875 // Compute the character type 2876 QualType CharTy = AT->getElementType(); 2877 2878 // Compute the type of the integer literals. 2879 QualType PromotedCharTy = CharTy; 2880 if (CharTy->isPromotableIntegerType()) 2881 PromotedCharTy = Context.getPromotedIntegerType(CharTy); 2882 unsigned PromotedCharTyWidth = Context.getTypeSize(PromotedCharTy); 2883 2884 if (StringLiteral *SL = dyn_cast<StringLiteral>(SubExpr)) { 2885 // Get the length of the string. 2886 uint64_t StrLen = SL->getLength(); 2887 if (cast<ConstantArrayType>(AT)->getSize().ult(StrLen)) 2888 StrLen = cast<ConstantArrayType>(AT)->getSize().getZExtValue(); 2889 StructuredList->resizeInits(Context, StrLen); 2890 2891 // Build a literal for each character in the string, and put them into 2892 // the init list. 2893 for (unsigned i = 0, e = StrLen; i != e; ++i) { 2894 llvm::APInt CodeUnit(PromotedCharTyWidth, SL->getCodeUnit(i)); 2895 Expr *Init = new (Context) IntegerLiteral( 2896 Context, CodeUnit, PromotedCharTy, SubExpr->getExprLoc()); 2897 if (CharTy != PromotedCharTy) 2898 Init = 2899 ImplicitCastExpr::Create(Context, CharTy, CK_IntegralCast, Init, 2900 nullptr, VK_RValue, FPOptionsOverride()); 2901 StructuredList->updateInit(Context, i, Init); 2902 } 2903 } else { 2904 ObjCEncodeExpr *E = cast<ObjCEncodeExpr>(SubExpr); 2905 std::string Str; 2906 Context.getObjCEncodingForType(E->getEncodedType(), Str); 2907 2908 // Get the length of the string. 2909 uint64_t StrLen = Str.size(); 2910 if (cast<ConstantArrayType>(AT)->getSize().ult(StrLen)) 2911 StrLen = cast<ConstantArrayType>(AT)->getSize().getZExtValue(); 2912 StructuredList->resizeInits(Context, StrLen); 2913 2914 // Build a literal for each character in the string, and put them into 2915 // the init list. 2916 for (unsigned i = 0, e = StrLen; i != e; ++i) { 2917 llvm::APInt CodeUnit(PromotedCharTyWidth, Str[i]); 2918 Expr *Init = new (Context) IntegerLiteral( 2919 Context, CodeUnit, PromotedCharTy, SubExpr->getExprLoc()); 2920 if (CharTy != PromotedCharTy) 2921 Init = 2922 ImplicitCastExpr::Create(Context, CharTy, CK_IntegralCast, Init, 2923 nullptr, VK_RValue, FPOptionsOverride()); 2924 StructuredList->updateInit(Context, i, Init); 2925 } 2926 } 2927 } 2928 2929 // Make sure that our non-designated initializer list has space 2930 // for a subobject corresponding to this array element. 2931 if (StructuredList && 2932 DesignatedEndIndex.getZExtValue() >= StructuredList->getNumInits()) 2933 StructuredList->resizeInits(SemaRef.Context, 2934 DesignatedEndIndex.getZExtValue() + 1); 2935 2936 // Repeatedly perform subobject initializations in the range 2937 // [DesignatedStartIndex, DesignatedEndIndex]. 2938 2939 // Move to the next designator 2940 unsigned ElementIndex = DesignatedStartIndex.getZExtValue(); 2941 unsigned OldIndex = Index; 2942 2943 InitializedEntity ElementEntity = 2944 InitializedEntity::InitializeElement(SemaRef.Context, 0, Entity); 2945 2946 while (DesignatedStartIndex <= DesignatedEndIndex) { 2947 // Recurse to check later designated subobjects. 2948 QualType ElementType = AT->getElementType(); 2949 Index = OldIndex; 2950 2951 ElementEntity.setElementIndex(ElementIndex); 2952 if (CheckDesignatedInitializer( 2953 ElementEntity, IList, DIE, DesigIdx + 1, ElementType, nullptr, 2954 nullptr, Index, StructuredList, ElementIndex, 2955 FinishSubobjectInit && (DesignatedStartIndex == DesignatedEndIndex), 2956 false)) 2957 return true; 2958 2959 // Move to the next index in the array that we'll be initializing. 2960 ++DesignatedStartIndex; 2961 ElementIndex = DesignatedStartIndex.getZExtValue(); 2962 } 2963 2964 // If this the first designator, our caller will continue checking 2965 // the rest of this array subobject. 2966 if (IsFirstDesignator) { 2967 if (NextElementIndex) 2968 *NextElementIndex = DesignatedStartIndex; 2969 StructuredIndex = ElementIndex; 2970 return false; 2971 } 2972 2973 if (!FinishSubobjectInit) 2974 return false; 2975 2976 // Check the remaining elements within this array subobject. 2977 bool prevHadError = hadError; 2978 CheckArrayType(Entity, IList, CurrentObjectType, DesignatedStartIndex, 2979 /*SubobjectIsDesignatorContext=*/false, Index, 2980 StructuredList, ElementIndex); 2981 return hadError && !prevHadError; 2982 } 2983 2984 // Get the structured initializer list for a subobject of type 2985 // @p CurrentObjectType. 2986 InitListExpr * 2987 InitListChecker::getStructuredSubobjectInit(InitListExpr *IList, unsigned Index, 2988 QualType CurrentObjectType, 2989 InitListExpr *StructuredList, 2990 unsigned StructuredIndex, 2991 SourceRange InitRange, 2992 bool IsFullyOverwritten) { 2993 if (!StructuredList) 2994 return nullptr; 2995 2996 Expr *ExistingInit = nullptr; 2997 if (StructuredIndex < StructuredList->getNumInits()) 2998 ExistingInit = StructuredList->getInit(StructuredIndex); 2999 3000 if (InitListExpr *Result = dyn_cast_or_null<InitListExpr>(ExistingInit)) 3001 // There might have already been initializers for subobjects of the current 3002 // object, but a subsequent initializer list will overwrite the entirety 3003 // of the current object. (See DR 253 and C99 6.7.8p21). e.g., 3004 // 3005 // struct P { char x[6]; }; 3006 // struct P l = { .x[2] = 'x', .x = { [0] = 'f' } }; 3007 // 3008 // The first designated initializer is ignored, and l.x is just "f". 3009 if (!IsFullyOverwritten) 3010 return Result; 3011 3012 if (ExistingInit) { 3013 // We are creating an initializer list that initializes the 3014 // subobjects of the current object, but there was already an 3015 // initialization that completely initialized the current 3016 // subobject: 3017 // 3018 // struct X { int a, b; }; 3019 // struct X xs[] = { [0] = { 1, 2 }, [0].b = 3 }; 3020 // 3021 // Here, xs[0].a == 1 and xs[0].b == 3, since the second, 3022 // designated initializer overwrites the [0].b initializer 3023 // from the prior initialization. 3024 // 3025 // When the existing initializer is an expression rather than an 3026 // initializer list, we cannot decompose and update it in this way. 3027 // For example: 3028 // 3029 // struct X xs[] = { [0] = (struct X) { 1, 2 }, [0].b = 3 }; 3030 // 3031 // This case is handled by CheckDesignatedInitializer. 3032 diagnoseInitOverride(ExistingInit, InitRange); 3033 } 3034 3035 unsigned ExpectedNumInits = 0; 3036 if (Index < IList->getNumInits()) { 3037 if (auto *Init = dyn_cast_or_null<InitListExpr>(IList->getInit(Index))) 3038 ExpectedNumInits = Init->getNumInits(); 3039 else 3040 ExpectedNumInits = IList->getNumInits() - Index; 3041 } 3042 3043 InitListExpr *Result = 3044 createInitListExpr(CurrentObjectType, InitRange, ExpectedNumInits); 3045 3046 // Link this new initializer list into the structured initializer 3047 // lists. 3048 StructuredList->updateInit(SemaRef.Context, StructuredIndex, Result); 3049 return Result; 3050 } 3051 3052 InitListExpr * 3053 InitListChecker::createInitListExpr(QualType CurrentObjectType, 3054 SourceRange InitRange, 3055 unsigned ExpectedNumInits) { 3056 InitListExpr *Result 3057 = new (SemaRef.Context) InitListExpr(SemaRef.Context, 3058 InitRange.getBegin(), None, 3059 InitRange.getEnd()); 3060 3061 QualType ResultType = CurrentObjectType; 3062 if (!ResultType->isArrayType()) 3063 ResultType = ResultType.getNonLValueExprType(SemaRef.Context); 3064 Result->setType(ResultType); 3065 3066 // Pre-allocate storage for the structured initializer list. 3067 unsigned NumElements = 0; 3068 3069 if (const ArrayType *AType 3070 = SemaRef.Context.getAsArrayType(CurrentObjectType)) { 3071 if (const ConstantArrayType *CAType = dyn_cast<ConstantArrayType>(AType)) { 3072 NumElements = CAType->getSize().getZExtValue(); 3073 // Simple heuristic so that we don't allocate a very large 3074 // initializer with many empty entries at the end. 3075 if (NumElements > ExpectedNumInits) 3076 NumElements = 0; 3077 } 3078 } else if (const VectorType *VType = CurrentObjectType->getAs<VectorType>()) { 3079 NumElements = VType->getNumElements(); 3080 } else if (CurrentObjectType->isRecordType()) { 3081 NumElements = numStructUnionElements(CurrentObjectType); 3082 } 3083 3084 Result->reserveInits(SemaRef.Context, NumElements); 3085 3086 return Result; 3087 } 3088 3089 /// Update the initializer at index @p StructuredIndex within the 3090 /// structured initializer list to the value @p expr. 3091 void InitListChecker::UpdateStructuredListElement(InitListExpr *StructuredList, 3092 unsigned &StructuredIndex, 3093 Expr *expr) { 3094 // No structured initializer list to update 3095 if (!StructuredList) 3096 return; 3097 3098 if (Expr *PrevInit = StructuredList->updateInit(SemaRef.Context, 3099 StructuredIndex, expr)) { 3100 // This initializer overwrites a previous initializer. 3101 // No need to diagnose when `expr` is nullptr because a more relevant 3102 // diagnostic has already been issued and this diagnostic is potentially 3103 // noise. 3104 if (expr) 3105 diagnoseInitOverride(PrevInit, expr->getSourceRange()); 3106 } 3107 3108 ++StructuredIndex; 3109 } 3110 3111 /// Determine whether we can perform aggregate initialization for the purposes 3112 /// of overload resolution. 3113 bool Sema::CanPerformAggregateInitializationForOverloadResolution( 3114 const InitializedEntity &Entity, InitListExpr *From) { 3115 QualType Type = Entity.getType(); 3116 InitListChecker Check(*this, Entity, From, Type, /*VerifyOnly=*/true, 3117 /*TreatUnavailableAsInvalid=*/false, 3118 /*InOverloadResolution=*/true); 3119 return !Check.HadError(); 3120 } 3121 3122 /// Check that the given Index expression is a valid array designator 3123 /// value. This is essentially just a wrapper around 3124 /// VerifyIntegerConstantExpression that also checks for negative values 3125 /// and produces a reasonable diagnostic if there is a 3126 /// failure. Returns the index expression, possibly with an implicit cast 3127 /// added, on success. If everything went okay, Value will receive the 3128 /// value of the constant expression. 3129 static ExprResult 3130 CheckArrayDesignatorExpr(Sema &S, Expr *Index, llvm::APSInt &Value) { 3131 SourceLocation Loc = Index->getBeginLoc(); 3132 3133 // Make sure this is an integer constant expression. 3134 ExprResult Result = 3135 S.VerifyIntegerConstantExpression(Index, &Value, Sema::AllowFold); 3136 if (Result.isInvalid()) 3137 return Result; 3138 3139 if (Value.isSigned() && Value.isNegative()) 3140 return S.Diag(Loc, diag::err_array_designator_negative) 3141 << Value.toString(10) << Index->getSourceRange(); 3142 3143 Value.setIsUnsigned(true); 3144 return Result; 3145 } 3146 3147 ExprResult Sema::ActOnDesignatedInitializer(Designation &Desig, 3148 SourceLocation EqualOrColonLoc, 3149 bool GNUSyntax, 3150 ExprResult Init) { 3151 typedef DesignatedInitExpr::Designator ASTDesignator; 3152 3153 bool Invalid = false; 3154 SmallVector<ASTDesignator, 32> Designators; 3155 SmallVector<Expr *, 32> InitExpressions; 3156 3157 // Build designators and check array designator expressions. 3158 for (unsigned Idx = 0; Idx < Desig.getNumDesignators(); ++Idx) { 3159 const Designator &D = Desig.getDesignator(Idx); 3160 switch (D.getKind()) { 3161 case Designator::FieldDesignator: 3162 Designators.push_back(ASTDesignator(D.getField(), D.getDotLoc(), 3163 D.getFieldLoc())); 3164 break; 3165 3166 case Designator::ArrayDesignator: { 3167 Expr *Index = static_cast<Expr *>(D.getArrayIndex()); 3168 llvm::APSInt IndexValue; 3169 if (!Index->isTypeDependent() && !Index->isValueDependent()) 3170 Index = CheckArrayDesignatorExpr(*this, Index, IndexValue).get(); 3171 if (!Index) 3172 Invalid = true; 3173 else { 3174 Designators.push_back(ASTDesignator(InitExpressions.size(), 3175 D.getLBracketLoc(), 3176 D.getRBracketLoc())); 3177 InitExpressions.push_back(Index); 3178 } 3179 break; 3180 } 3181 3182 case Designator::ArrayRangeDesignator: { 3183 Expr *StartIndex = static_cast<Expr *>(D.getArrayRangeStart()); 3184 Expr *EndIndex = static_cast<Expr *>(D.getArrayRangeEnd()); 3185 llvm::APSInt StartValue; 3186 llvm::APSInt EndValue; 3187 bool StartDependent = StartIndex->isTypeDependent() || 3188 StartIndex->isValueDependent(); 3189 bool EndDependent = EndIndex->isTypeDependent() || 3190 EndIndex->isValueDependent(); 3191 if (!StartDependent) 3192 StartIndex = 3193 CheckArrayDesignatorExpr(*this, StartIndex, StartValue).get(); 3194 if (!EndDependent) 3195 EndIndex = CheckArrayDesignatorExpr(*this, EndIndex, EndValue).get(); 3196 3197 if (!StartIndex || !EndIndex) 3198 Invalid = true; 3199 else { 3200 // Make sure we're comparing values with the same bit width. 3201 if (StartDependent || EndDependent) { 3202 // Nothing to compute. 3203 } else if (StartValue.getBitWidth() > EndValue.getBitWidth()) 3204 EndValue = EndValue.extend(StartValue.getBitWidth()); 3205 else if (StartValue.getBitWidth() < EndValue.getBitWidth()) 3206 StartValue = StartValue.extend(EndValue.getBitWidth()); 3207 3208 if (!StartDependent && !EndDependent && EndValue < StartValue) { 3209 Diag(D.getEllipsisLoc(), diag::err_array_designator_empty_range) 3210 << StartValue.toString(10) << EndValue.toString(10) 3211 << StartIndex->getSourceRange() << EndIndex->getSourceRange(); 3212 Invalid = true; 3213 } else { 3214 Designators.push_back(ASTDesignator(InitExpressions.size(), 3215 D.getLBracketLoc(), 3216 D.getEllipsisLoc(), 3217 D.getRBracketLoc())); 3218 InitExpressions.push_back(StartIndex); 3219 InitExpressions.push_back(EndIndex); 3220 } 3221 } 3222 break; 3223 } 3224 } 3225 } 3226 3227 if (Invalid || Init.isInvalid()) 3228 return ExprError(); 3229 3230 // Clear out the expressions within the designation. 3231 Desig.ClearExprs(*this); 3232 3233 return DesignatedInitExpr::Create(Context, Designators, InitExpressions, 3234 EqualOrColonLoc, GNUSyntax, 3235 Init.getAs<Expr>()); 3236 } 3237 3238 //===----------------------------------------------------------------------===// 3239 // Initialization entity 3240 //===----------------------------------------------------------------------===// 3241 3242 InitializedEntity::InitializedEntity(ASTContext &Context, unsigned Index, 3243 const InitializedEntity &Parent) 3244 : Parent(&Parent), Index(Index) 3245 { 3246 if (const ArrayType *AT = Context.getAsArrayType(Parent.getType())) { 3247 Kind = EK_ArrayElement; 3248 Type = AT->getElementType(); 3249 } else if (const VectorType *VT = Parent.getType()->getAs<VectorType>()) { 3250 Kind = EK_VectorElement; 3251 Type = VT->getElementType(); 3252 } else { 3253 const ComplexType *CT = Parent.getType()->getAs<ComplexType>(); 3254 assert(CT && "Unexpected type"); 3255 Kind = EK_ComplexElement; 3256 Type = CT->getElementType(); 3257 } 3258 } 3259 3260 InitializedEntity 3261 InitializedEntity::InitializeBase(ASTContext &Context, 3262 const CXXBaseSpecifier *Base, 3263 bool IsInheritedVirtualBase, 3264 const InitializedEntity *Parent) { 3265 InitializedEntity Result; 3266 Result.Kind = EK_Base; 3267 Result.Parent = Parent; 3268 Result.Base = reinterpret_cast<uintptr_t>(Base); 3269 if (IsInheritedVirtualBase) 3270 Result.Base |= 0x01; 3271 3272 Result.Type = Base->getType(); 3273 return Result; 3274 } 3275 3276 DeclarationName InitializedEntity::getName() const { 3277 switch (getKind()) { 3278 case EK_Parameter: 3279 case EK_Parameter_CF_Audited: { 3280 ParmVarDecl *D = reinterpret_cast<ParmVarDecl*>(Parameter & ~0x1); 3281 return (D ? D->getDeclName() : DeclarationName()); 3282 } 3283 3284 case EK_Variable: 3285 case EK_Member: 3286 case EK_Binding: 3287 case EK_TemplateParameter: 3288 return Variable.VariableOrMember->getDeclName(); 3289 3290 case EK_LambdaCapture: 3291 return DeclarationName(Capture.VarID); 3292 3293 case EK_Result: 3294 case EK_StmtExprResult: 3295 case EK_Exception: 3296 case EK_New: 3297 case EK_Temporary: 3298 case EK_Base: 3299 case EK_Delegating: 3300 case EK_ArrayElement: 3301 case EK_VectorElement: 3302 case EK_ComplexElement: 3303 case EK_BlockElement: 3304 case EK_LambdaToBlockConversionBlockElement: 3305 case EK_CompoundLiteralInit: 3306 case EK_RelatedResult: 3307 return DeclarationName(); 3308 } 3309 3310 llvm_unreachable("Invalid EntityKind!"); 3311 } 3312 3313 ValueDecl *InitializedEntity::getDecl() const { 3314 switch (getKind()) { 3315 case EK_Variable: 3316 case EK_Member: 3317 case EK_Binding: 3318 case EK_TemplateParameter: 3319 return Variable.VariableOrMember; 3320 3321 case EK_Parameter: 3322 case EK_Parameter_CF_Audited: 3323 return reinterpret_cast<ParmVarDecl*>(Parameter & ~0x1); 3324 3325 case EK_Result: 3326 case EK_StmtExprResult: 3327 case EK_Exception: 3328 case EK_New: 3329 case EK_Temporary: 3330 case EK_Base: 3331 case EK_Delegating: 3332 case EK_ArrayElement: 3333 case EK_VectorElement: 3334 case EK_ComplexElement: 3335 case EK_BlockElement: 3336 case EK_LambdaToBlockConversionBlockElement: 3337 case EK_LambdaCapture: 3338 case EK_CompoundLiteralInit: 3339 case EK_RelatedResult: 3340 return nullptr; 3341 } 3342 3343 llvm_unreachable("Invalid EntityKind!"); 3344 } 3345 3346 bool InitializedEntity::allowsNRVO() const { 3347 switch (getKind()) { 3348 case EK_Result: 3349 case EK_Exception: 3350 return LocAndNRVO.NRVO; 3351 3352 case EK_StmtExprResult: 3353 case EK_Variable: 3354 case EK_Parameter: 3355 case EK_Parameter_CF_Audited: 3356 case EK_TemplateParameter: 3357 case EK_Member: 3358 case EK_Binding: 3359 case EK_New: 3360 case EK_Temporary: 3361 case EK_CompoundLiteralInit: 3362 case EK_Base: 3363 case EK_Delegating: 3364 case EK_ArrayElement: 3365 case EK_VectorElement: 3366 case EK_ComplexElement: 3367 case EK_BlockElement: 3368 case EK_LambdaToBlockConversionBlockElement: 3369 case EK_LambdaCapture: 3370 case EK_RelatedResult: 3371 break; 3372 } 3373 3374 return false; 3375 } 3376 3377 unsigned InitializedEntity::dumpImpl(raw_ostream &OS) const { 3378 assert(getParent() != this); 3379 unsigned Depth = getParent() ? getParent()->dumpImpl(OS) : 0; 3380 for (unsigned I = 0; I != Depth; ++I) 3381 OS << "`-"; 3382 3383 switch (getKind()) { 3384 case EK_Variable: OS << "Variable"; break; 3385 case EK_Parameter: OS << "Parameter"; break; 3386 case EK_Parameter_CF_Audited: OS << "CF audited function Parameter"; 3387 break; 3388 case EK_TemplateParameter: OS << "TemplateParameter"; break; 3389 case EK_Result: OS << "Result"; break; 3390 case EK_StmtExprResult: OS << "StmtExprResult"; break; 3391 case EK_Exception: OS << "Exception"; break; 3392 case EK_Member: OS << "Member"; break; 3393 case EK_Binding: OS << "Binding"; break; 3394 case EK_New: OS << "New"; break; 3395 case EK_Temporary: OS << "Temporary"; break; 3396 case EK_CompoundLiteralInit: OS << "CompoundLiteral";break; 3397 case EK_RelatedResult: OS << "RelatedResult"; break; 3398 case EK_Base: OS << "Base"; break; 3399 case EK_Delegating: OS << "Delegating"; break; 3400 case EK_ArrayElement: OS << "ArrayElement " << Index; break; 3401 case EK_VectorElement: OS << "VectorElement " << Index; break; 3402 case EK_ComplexElement: OS << "ComplexElement " << Index; break; 3403 case EK_BlockElement: OS << "Block"; break; 3404 case EK_LambdaToBlockConversionBlockElement: 3405 OS << "Block (lambda)"; 3406 break; 3407 case EK_LambdaCapture: 3408 OS << "LambdaCapture "; 3409 OS << DeclarationName(Capture.VarID); 3410 break; 3411 } 3412 3413 if (auto *D = getDecl()) { 3414 OS << " "; 3415 D->printQualifiedName(OS); 3416 } 3417 3418 OS << " '" << getType().getAsString() << "'\n"; 3419 3420 return Depth + 1; 3421 } 3422 3423 LLVM_DUMP_METHOD void InitializedEntity::dump() const { 3424 dumpImpl(llvm::errs()); 3425 } 3426 3427 //===----------------------------------------------------------------------===// 3428 // Initialization sequence 3429 //===----------------------------------------------------------------------===// 3430 3431 void InitializationSequence::Step::Destroy() { 3432 switch (Kind) { 3433 case SK_ResolveAddressOfOverloadedFunction: 3434 case SK_CastDerivedToBaseRValue: 3435 case SK_CastDerivedToBaseXValue: 3436 case SK_CastDerivedToBaseLValue: 3437 case SK_BindReference: 3438 case SK_BindReferenceToTemporary: 3439 case SK_FinalCopy: 3440 case SK_ExtraneousCopyToTemporary: 3441 case SK_UserConversion: 3442 case SK_QualificationConversionRValue: 3443 case SK_QualificationConversionXValue: 3444 case SK_QualificationConversionLValue: 3445 case SK_FunctionReferenceConversion: 3446 case SK_AtomicConversion: 3447 case SK_ListInitialization: 3448 case SK_UnwrapInitList: 3449 case SK_RewrapInitList: 3450 case SK_ConstructorInitialization: 3451 case SK_ConstructorInitializationFromList: 3452 case SK_ZeroInitialization: 3453 case SK_CAssignment: 3454 case SK_StringInit: 3455 case SK_ObjCObjectConversion: 3456 case SK_ArrayLoopIndex: 3457 case SK_ArrayLoopInit: 3458 case SK_ArrayInit: 3459 case SK_GNUArrayInit: 3460 case SK_ParenthesizedArrayInit: 3461 case SK_PassByIndirectCopyRestore: 3462 case SK_PassByIndirectRestore: 3463 case SK_ProduceObjCObject: 3464 case SK_StdInitializerList: 3465 case SK_StdInitializerListConstructorCall: 3466 case SK_OCLSamplerInit: 3467 case SK_OCLZeroOpaqueType: 3468 break; 3469 3470 case SK_ConversionSequence: 3471 case SK_ConversionSequenceNoNarrowing: 3472 delete ICS; 3473 } 3474 } 3475 3476 bool InitializationSequence::isDirectReferenceBinding() const { 3477 // There can be some lvalue adjustments after the SK_BindReference step. 3478 for (auto I = Steps.rbegin(); I != Steps.rend(); ++I) { 3479 if (I->Kind == SK_BindReference) 3480 return true; 3481 if (I->Kind == SK_BindReferenceToTemporary) 3482 return false; 3483 } 3484 return false; 3485 } 3486 3487 bool InitializationSequence::isAmbiguous() const { 3488 if (!Failed()) 3489 return false; 3490 3491 switch (getFailureKind()) { 3492 case FK_TooManyInitsForReference: 3493 case FK_ParenthesizedListInitForReference: 3494 case FK_ArrayNeedsInitList: 3495 case FK_ArrayNeedsInitListOrStringLiteral: 3496 case FK_ArrayNeedsInitListOrWideStringLiteral: 3497 case FK_NarrowStringIntoWideCharArray: 3498 case FK_WideStringIntoCharArray: 3499 case FK_IncompatWideStringIntoWideChar: 3500 case FK_PlainStringIntoUTF8Char: 3501 case FK_UTF8StringIntoPlainChar: 3502 case FK_AddressOfOverloadFailed: // FIXME: Could do better 3503 case FK_NonConstLValueReferenceBindingToTemporary: 3504 case FK_NonConstLValueReferenceBindingToBitfield: 3505 case FK_NonConstLValueReferenceBindingToVectorElement: 3506 case FK_NonConstLValueReferenceBindingToMatrixElement: 3507 case FK_NonConstLValueReferenceBindingToUnrelated: 3508 case FK_RValueReferenceBindingToLValue: 3509 case FK_ReferenceAddrspaceMismatchTemporary: 3510 case FK_ReferenceInitDropsQualifiers: 3511 case FK_ReferenceInitFailed: 3512 case FK_ConversionFailed: 3513 case FK_ConversionFromPropertyFailed: 3514 case FK_TooManyInitsForScalar: 3515 case FK_ParenthesizedListInitForScalar: 3516 case FK_ReferenceBindingToInitList: 3517 case FK_InitListBadDestinationType: 3518 case FK_DefaultInitOfConst: 3519 case FK_Incomplete: 3520 case FK_ArrayTypeMismatch: 3521 case FK_NonConstantArrayInit: 3522 case FK_ListInitializationFailed: 3523 case FK_VariableLengthArrayHasInitializer: 3524 case FK_PlaceholderType: 3525 case FK_ExplicitConstructor: 3526 case FK_AddressOfUnaddressableFunction: 3527 return false; 3528 3529 case FK_ReferenceInitOverloadFailed: 3530 case FK_UserConversionOverloadFailed: 3531 case FK_ConstructorOverloadFailed: 3532 case FK_ListConstructorOverloadFailed: 3533 return FailedOverloadResult == OR_Ambiguous; 3534 } 3535 3536 llvm_unreachable("Invalid EntityKind!"); 3537 } 3538 3539 bool InitializationSequence::isConstructorInitialization() const { 3540 return !Steps.empty() && Steps.back().Kind == SK_ConstructorInitialization; 3541 } 3542 3543 void 3544 InitializationSequence 3545 ::AddAddressOverloadResolutionStep(FunctionDecl *Function, 3546 DeclAccessPair Found, 3547 bool HadMultipleCandidates) { 3548 Step S; 3549 S.Kind = SK_ResolveAddressOfOverloadedFunction; 3550 S.Type = Function->getType(); 3551 S.Function.HadMultipleCandidates = HadMultipleCandidates; 3552 S.Function.Function = Function; 3553 S.Function.FoundDecl = Found; 3554 Steps.push_back(S); 3555 } 3556 3557 void InitializationSequence::AddDerivedToBaseCastStep(QualType BaseType, 3558 ExprValueKind VK) { 3559 Step S; 3560 switch (VK) { 3561 case VK_RValue: S.Kind = SK_CastDerivedToBaseRValue; break; 3562 case VK_XValue: S.Kind = SK_CastDerivedToBaseXValue; break; 3563 case VK_LValue: S.Kind = SK_CastDerivedToBaseLValue; break; 3564 } 3565 S.Type = BaseType; 3566 Steps.push_back(S); 3567 } 3568 3569 void InitializationSequence::AddReferenceBindingStep(QualType T, 3570 bool BindingTemporary) { 3571 Step S; 3572 S.Kind = BindingTemporary? SK_BindReferenceToTemporary : SK_BindReference; 3573 S.Type = T; 3574 Steps.push_back(S); 3575 } 3576 3577 void InitializationSequence::AddFinalCopy(QualType T) { 3578 Step S; 3579 S.Kind = SK_FinalCopy; 3580 S.Type = T; 3581 Steps.push_back(S); 3582 } 3583 3584 void InitializationSequence::AddExtraneousCopyToTemporary(QualType T) { 3585 Step S; 3586 S.Kind = SK_ExtraneousCopyToTemporary; 3587 S.Type = T; 3588 Steps.push_back(S); 3589 } 3590 3591 void 3592 InitializationSequence::AddUserConversionStep(FunctionDecl *Function, 3593 DeclAccessPair FoundDecl, 3594 QualType T, 3595 bool HadMultipleCandidates) { 3596 Step S; 3597 S.Kind = SK_UserConversion; 3598 S.Type = T; 3599 S.Function.HadMultipleCandidates = HadMultipleCandidates; 3600 S.Function.Function = Function; 3601 S.Function.FoundDecl = FoundDecl; 3602 Steps.push_back(S); 3603 } 3604 3605 void InitializationSequence::AddQualificationConversionStep(QualType Ty, 3606 ExprValueKind VK) { 3607 Step S; 3608 S.Kind = SK_QualificationConversionRValue; // work around a gcc warning 3609 switch (VK) { 3610 case VK_RValue: 3611 S.Kind = SK_QualificationConversionRValue; 3612 break; 3613 case VK_XValue: 3614 S.Kind = SK_QualificationConversionXValue; 3615 break; 3616 case VK_LValue: 3617 S.Kind = SK_QualificationConversionLValue; 3618 break; 3619 } 3620 S.Type = Ty; 3621 Steps.push_back(S); 3622 } 3623 3624 void InitializationSequence::AddFunctionReferenceConversionStep(QualType Ty) { 3625 Step S; 3626 S.Kind = SK_FunctionReferenceConversion; 3627 S.Type = Ty; 3628 Steps.push_back(S); 3629 } 3630 3631 void InitializationSequence::AddAtomicConversionStep(QualType Ty) { 3632 Step S; 3633 S.Kind = SK_AtomicConversion; 3634 S.Type = Ty; 3635 Steps.push_back(S); 3636 } 3637 3638 void InitializationSequence::AddConversionSequenceStep( 3639 const ImplicitConversionSequence &ICS, QualType T, 3640 bool TopLevelOfInitList) { 3641 Step S; 3642 S.Kind = TopLevelOfInitList ? SK_ConversionSequenceNoNarrowing 3643 : SK_ConversionSequence; 3644 S.Type = T; 3645 S.ICS = new ImplicitConversionSequence(ICS); 3646 Steps.push_back(S); 3647 } 3648 3649 void InitializationSequence::AddListInitializationStep(QualType T) { 3650 Step S; 3651 S.Kind = SK_ListInitialization; 3652 S.Type = T; 3653 Steps.push_back(S); 3654 } 3655 3656 void InitializationSequence::AddConstructorInitializationStep( 3657 DeclAccessPair FoundDecl, CXXConstructorDecl *Constructor, QualType T, 3658 bool HadMultipleCandidates, bool FromInitList, bool AsInitList) { 3659 Step S; 3660 S.Kind = FromInitList ? AsInitList ? SK_StdInitializerListConstructorCall 3661 : SK_ConstructorInitializationFromList 3662 : SK_ConstructorInitialization; 3663 S.Type = T; 3664 S.Function.HadMultipleCandidates = HadMultipleCandidates; 3665 S.Function.Function = Constructor; 3666 S.Function.FoundDecl = FoundDecl; 3667 Steps.push_back(S); 3668 } 3669 3670 void InitializationSequence::AddZeroInitializationStep(QualType T) { 3671 Step S; 3672 S.Kind = SK_ZeroInitialization; 3673 S.Type = T; 3674 Steps.push_back(S); 3675 } 3676 3677 void InitializationSequence::AddCAssignmentStep(QualType T) { 3678 Step S; 3679 S.Kind = SK_CAssignment; 3680 S.Type = T; 3681 Steps.push_back(S); 3682 } 3683 3684 void InitializationSequence::AddStringInitStep(QualType T) { 3685 Step S; 3686 S.Kind = SK_StringInit; 3687 S.Type = T; 3688 Steps.push_back(S); 3689 } 3690 3691 void InitializationSequence::AddObjCObjectConversionStep(QualType T) { 3692 Step S; 3693 S.Kind = SK_ObjCObjectConversion; 3694 S.Type = T; 3695 Steps.push_back(S); 3696 } 3697 3698 void InitializationSequence::AddArrayInitStep(QualType T, bool IsGNUExtension) { 3699 Step S; 3700 S.Kind = IsGNUExtension ? SK_GNUArrayInit : SK_ArrayInit; 3701 S.Type = T; 3702 Steps.push_back(S); 3703 } 3704 3705 void InitializationSequence::AddArrayInitLoopStep(QualType T, QualType EltT) { 3706 Step S; 3707 S.Kind = SK_ArrayLoopIndex; 3708 S.Type = EltT; 3709 Steps.insert(Steps.begin(), S); 3710 3711 S.Kind = SK_ArrayLoopInit; 3712 S.Type = T; 3713 Steps.push_back(S); 3714 } 3715 3716 void InitializationSequence::AddParenthesizedArrayInitStep(QualType T) { 3717 Step S; 3718 S.Kind = SK_ParenthesizedArrayInit; 3719 S.Type = T; 3720 Steps.push_back(S); 3721 } 3722 3723 void InitializationSequence::AddPassByIndirectCopyRestoreStep(QualType type, 3724 bool shouldCopy) { 3725 Step s; 3726 s.Kind = (shouldCopy ? SK_PassByIndirectCopyRestore 3727 : SK_PassByIndirectRestore); 3728 s.Type = type; 3729 Steps.push_back(s); 3730 } 3731 3732 void InitializationSequence::AddProduceObjCObjectStep(QualType T) { 3733 Step S; 3734 S.Kind = SK_ProduceObjCObject; 3735 S.Type = T; 3736 Steps.push_back(S); 3737 } 3738 3739 void InitializationSequence::AddStdInitializerListConstructionStep(QualType T) { 3740 Step S; 3741 S.Kind = SK_StdInitializerList; 3742 S.Type = T; 3743 Steps.push_back(S); 3744 } 3745 3746 void InitializationSequence::AddOCLSamplerInitStep(QualType T) { 3747 Step S; 3748 S.Kind = SK_OCLSamplerInit; 3749 S.Type = T; 3750 Steps.push_back(S); 3751 } 3752 3753 void InitializationSequence::AddOCLZeroOpaqueTypeStep(QualType T) { 3754 Step S; 3755 S.Kind = SK_OCLZeroOpaqueType; 3756 S.Type = T; 3757 Steps.push_back(S); 3758 } 3759 3760 void InitializationSequence::RewrapReferenceInitList(QualType T, 3761 InitListExpr *Syntactic) { 3762 assert(Syntactic->getNumInits() == 1 && 3763 "Can only rewrap trivial init lists."); 3764 Step S; 3765 S.Kind = SK_UnwrapInitList; 3766 S.Type = Syntactic->getInit(0)->getType(); 3767 Steps.insert(Steps.begin(), S); 3768 3769 S.Kind = SK_RewrapInitList; 3770 S.Type = T; 3771 S.WrappingSyntacticList = Syntactic; 3772 Steps.push_back(S); 3773 } 3774 3775 void InitializationSequence::SetOverloadFailure(FailureKind Failure, 3776 OverloadingResult Result) { 3777 setSequenceKind(FailedSequence); 3778 this->Failure = Failure; 3779 this->FailedOverloadResult = Result; 3780 } 3781 3782 //===----------------------------------------------------------------------===// 3783 // Attempt initialization 3784 //===----------------------------------------------------------------------===// 3785 3786 /// Tries to add a zero initializer. Returns true if that worked. 3787 static bool 3788 maybeRecoverWithZeroInitialization(Sema &S, InitializationSequence &Sequence, 3789 const InitializedEntity &Entity) { 3790 if (Entity.getKind() != InitializedEntity::EK_Variable) 3791 return false; 3792 3793 VarDecl *VD = cast<VarDecl>(Entity.getDecl()); 3794 if (VD->getInit() || VD->getEndLoc().isMacroID()) 3795 return false; 3796 3797 QualType VariableTy = VD->getType().getCanonicalType(); 3798 SourceLocation Loc = S.getLocForEndOfToken(VD->getEndLoc()); 3799 std::string Init = S.getFixItZeroInitializerForType(VariableTy, Loc); 3800 if (!Init.empty()) { 3801 Sequence.AddZeroInitializationStep(Entity.getType()); 3802 Sequence.SetZeroInitializationFixit(Init, Loc); 3803 return true; 3804 } 3805 return false; 3806 } 3807 3808 static void MaybeProduceObjCObject(Sema &S, 3809 InitializationSequence &Sequence, 3810 const InitializedEntity &Entity) { 3811 if (!S.getLangOpts().ObjCAutoRefCount) return; 3812 3813 /// When initializing a parameter, produce the value if it's marked 3814 /// __attribute__((ns_consumed)). 3815 if (Entity.isParameterKind()) { 3816 if (!Entity.isParameterConsumed()) 3817 return; 3818 3819 assert(Entity.getType()->isObjCRetainableType() && 3820 "consuming an object of unretainable type?"); 3821 Sequence.AddProduceObjCObjectStep(Entity.getType()); 3822 3823 /// When initializing a return value, if the return type is a 3824 /// retainable type, then returns need to immediately retain the 3825 /// object. If an autorelease is required, it will be done at the 3826 /// last instant. 3827 } else if (Entity.getKind() == InitializedEntity::EK_Result || 3828 Entity.getKind() == InitializedEntity::EK_StmtExprResult) { 3829 if (!Entity.getType()->isObjCRetainableType()) 3830 return; 3831 3832 Sequence.AddProduceObjCObjectStep(Entity.getType()); 3833 } 3834 } 3835 3836 static void TryListInitialization(Sema &S, 3837 const InitializedEntity &Entity, 3838 const InitializationKind &Kind, 3839 InitListExpr *InitList, 3840 InitializationSequence &Sequence, 3841 bool TreatUnavailableAsInvalid); 3842 3843 /// When initializing from init list via constructor, handle 3844 /// initialization of an object of type std::initializer_list<T>. 3845 /// 3846 /// \return true if we have handled initialization of an object of type 3847 /// std::initializer_list<T>, false otherwise. 3848 static bool TryInitializerListConstruction(Sema &S, 3849 InitListExpr *List, 3850 QualType DestType, 3851 InitializationSequence &Sequence, 3852 bool TreatUnavailableAsInvalid) { 3853 QualType E; 3854 if (!S.isStdInitializerList(DestType, &E)) 3855 return false; 3856 3857 if (!S.isCompleteType(List->getExprLoc(), E)) { 3858 Sequence.setIncompleteTypeFailure(E); 3859 return true; 3860 } 3861 3862 // Try initializing a temporary array from the init list. 3863 QualType ArrayType = S.Context.getConstantArrayType( 3864 E.withConst(), 3865 llvm::APInt(S.Context.getTypeSize(S.Context.getSizeType()), 3866 List->getNumInits()), 3867 nullptr, clang::ArrayType::Normal, 0); 3868 InitializedEntity HiddenArray = 3869 InitializedEntity::InitializeTemporary(ArrayType); 3870 InitializationKind Kind = InitializationKind::CreateDirectList( 3871 List->getExprLoc(), List->getBeginLoc(), List->getEndLoc()); 3872 TryListInitialization(S, HiddenArray, Kind, List, Sequence, 3873 TreatUnavailableAsInvalid); 3874 if (Sequence) 3875 Sequence.AddStdInitializerListConstructionStep(DestType); 3876 return true; 3877 } 3878 3879 /// Determine if the constructor has the signature of a copy or move 3880 /// constructor for the type T of the class in which it was found. That is, 3881 /// determine if its first parameter is of type T or reference to (possibly 3882 /// cv-qualified) T. 3883 static bool hasCopyOrMoveCtorParam(ASTContext &Ctx, 3884 const ConstructorInfo &Info) { 3885 if (Info.Constructor->getNumParams() == 0) 3886 return false; 3887 3888 QualType ParmT = 3889 Info.Constructor->getParamDecl(0)->getType().getNonReferenceType(); 3890 QualType ClassT = 3891 Ctx.getRecordType(cast<CXXRecordDecl>(Info.FoundDecl->getDeclContext())); 3892 3893 return Ctx.hasSameUnqualifiedType(ParmT, ClassT); 3894 } 3895 3896 static OverloadingResult 3897 ResolveConstructorOverload(Sema &S, SourceLocation DeclLoc, 3898 MultiExprArg Args, 3899 OverloadCandidateSet &CandidateSet, 3900 QualType DestType, 3901 DeclContext::lookup_result Ctors, 3902 OverloadCandidateSet::iterator &Best, 3903 bool CopyInitializing, bool AllowExplicit, 3904 bool OnlyListConstructors, bool IsListInit, 3905 bool SecondStepOfCopyInit = false) { 3906 CandidateSet.clear(OverloadCandidateSet::CSK_InitByConstructor); 3907 CandidateSet.setDestAS(DestType.getQualifiers().getAddressSpace()); 3908 3909 for (NamedDecl *D : Ctors) { 3910 auto Info = getConstructorInfo(D); 3911 if (!Info.Constructor || Info.Constructor->isInvalidDecl()) 3912 continue; 3913 3914 if (OnlyListConstructors && !S.isInitListConstructor(Info.Constructor)) 3915 continue; 3916 3917 // C++11 [over.best.ics]p4: 3918 // ... and the constructor or user-defined conversion function is a 3919 // candidate by 3920 // - 13.3.1.3, when the argument is the temporary in the second step 3921 // of a class copy-initialization, or 3922 // - 13.3.1.4, 13.3.1.5, or 13.3.1.6 (in all cases), [not handled here] 3923 // - the second phase of 13.3.1.7 when the initializer list has exactly 3924 // one element that is itself an initializer list, and the target is 3925 // the first parameter of a constructor of class X, and the conversion 3926 // is to X or reference to (possibly cv-qualified X), 3927 // user-defined conversion sequences are not considered. 3928 bool SuppressUserConversions = 3929 SecondStepOfCopyInit || 3930 (IsListInit && Args.size() == 1 && isa<InitListExpr>(Args[0]) && 3931 hasCopyOrMoveCtorParam(S.Context, Info)); 3932 3933 if (Info.ConstructorTmpl) 3934 S.AddTemplateOverloadCandidate( 3935 Info.ConstructorTmpl, Info.FoundDecl, 3936 /*ExplicitArgs*/ nullptr, Args, CandidateSet, SuppressUserConversions, 3937 /*PartialOverloading=*/false, AllowExplicit); 3938 else { 3939 // C++ [over.match.copy]p1: 3940 // - When initializing a temporary to be bound to the first parameter 3941 // of a constructor [for type T] that takes a reference to possibly 3942 // cv-qualified T as its first argument, called with a single 3943 // argument in the context of direct-initialization, explicit 3944 // conversion functions are also considered. 3945 // FIXME: What if a constructor template instantiates to such a signature? 3946 bool AllowExplicitConv = AllowExplicit && !CopyInitializing && 3947 Args.size() == 1 && 3948 hasCopyOrMoveCtorParam(S.Context, Info); 3949 S.AddOverloadCandidate(Info.Constructor, Info.FoundDecl, Args, 3950 CandidateSet, SuppressUserConversions, 3951 /*PartialOverloading=*/false, AllowExplicit, 3952 AllowExplicitConv); 3953 } 3954 } 3955 3956 // FIXME: Work around a bug in C++17 guaranteed copy elision. 3957 // 3958 // When initializing an object of class type T by constructor 3959 // ([over.match.ctor]) or by list-initialization ([over.match.list]) 3960 // from a single expression of class type U, conversion functions of 3961 // U that convert to the non-reference type cv T are candidates. 3962 // Explicit conversion functions are only candidates during 3963 // direct-initialization. 3964 // 3965 // Note: SecondStepOfCopyInit is only ever true in this case when 3966 // evaluating whether to produce a C++98 compatibility warning. 3967 if (S.getLangOpts().CPlusPlus17 && Args.size() == 1 && 3968 !SecondStepOfCopyInit) { 3969 Expr *Initializer = Args[0]; 3970 auto *SourceRD = Initializer->getType()->getAsCXXRecordDecl(); 3971 if (SourceRD && S.isCompleteType(DeclLoc, Initializer->getType())) { 3972 const auto &Conversions = SourceRD->getVisibleConversionFunctions(); 3973 for (auto I = Conversions.begin(), E = Conversions.end(); I != E; ++I) { 3974 NamedDecl *D = *I; 3975 CXXRecordDecl *ActingDC = cast<CXXRecordDecl>(D->getDeclContext()); 3976 D = D->getUnderlyingDecl(); 3977 3978 FunctionTemplateDecl *ConvTemplate = dyn_cast<FunctionTemplateDecl>(D); 3979 CXXConversionDecl *Conv; 3980 if (ConvTemplate) 3981 Conv = cast<CXXConversionDecl>(ConvTemplate->getTemplatedDecl()); 3982 else 3983 Conv = cast<CXXConversionDecl>(D); 3984 3985 if (ConvTemplate) 3986 S.AddTemplateConversionCandidate( 3987 ConvTemplate, I.getPair(), ActingDC, Initializer, DestType, 3988 CandidateSet, AllowExplicit, AllowExplicit, 3989 /*AllowResultConversion*/ false); 3990 else 3991 S.AddConversionCandidate(Conv, I.getPair(), ActingDC, Initializer, 3992 DestType, CandidateSet, AllowExplicit, 3993 AllowExplicit, 3994 /*AllowResultConversion*/ false); 3995 } 3996 } 3997 } 3998 3999 // Perform overload resolution and return the result. 4000 return CandidateSet.BestViableFunction(S, DeclLoc, Best); 4001 } 4002 4003 /// Attempt initialization by constructor (C++ [dcl.init]), which 4004 /// enumerates the constructors of the initialized entity and performs overload 4005 /// resolution to select the best. 4006 /// \param DestType The destination class type. 4007 /// \param DestArrayType The destination type, which is either DestType or 4008 /// a (possibly multidimensional) array of DestType. 4009 /// \param IsListInit Is this list-initialization? 4010 /// \param IsInitListCopy Is this non-list-initialization resulting from a 4011 /// list-initialization from {x} where x is the same 4012 /// type as the entity? 4013 static void TryConstructorInitialization(Sema &S, 4014 const InitializedEntity &Entity, 4015 const InitializationKind &Kind, 4016 MultiExprArg Args, QualType DestType, 4017 QualType DestArrayType, 4018 InitializationSequence &Sequence, 4019 bool IsListInit = false, 4020 bool IsInitListCopy = false) { 4021 assert(((!IsListInit && !IsInitListCopy) || 4022 (Args.size() == 1 && isa<InitListExpr>(Args[0]))) && 4023 "IsListInit/IsInitListCopy must come with a single initializer list " 4024 "argument."); 4025 InitListExpr *ILE = 4026 (IsListInit || IsInitListCopy) ? cast<InitListExpr>(Args[0]) : nullptr; 4027 MultiExprArg UnwrappedArgs = 4028 ILE ? MultiExprArg(ILE->getInits(), ILE->getNumInits()) : Args; 4029 4030 // The type we're constructing needs to be complete. 4031 if (!S.isCompleteType(Kind.getLocation(), DestType)) { 4032 Sequence.setIncompleteTypeFailure(DestType); 4033 return; 4034 } 4035 4036 // C++17 [dcl.init]p17: 4037 // - If the initializer expression is a prvalue and the cv-unqualified 4038 // version of the source type is the same class as the class of the 4039 // destination, the initializer expression is used to initialize the 4040 // destination object. 4041 // Per DR (no number yet), this does not apply when initializing a base 4042 // class or delegating to another constructor from a mem-initializer. 4043 // ObjC++: Lambda captured by the block in the lambda to block conversion 4044 // should avoid copy elision. 4045 if (S.getLangOpts().CPlusPlus17 && 4046 Entity.getKind() != InitializedEntity::EK_Base && 4047 Entity.getKind() != InitializedEntity::EK_Delegating && 4048 Entity.getKind() != 4049 InitializedEntity::EK_LambdaToBlockConversionBlockElement && 4050 UnwrappedArgs.size() == 1 && UnwrappedArgs[0]->isRValue() && 4051 S.Context.hasSameUnqualifiedType(UnwrappedArgs[0]->getType(), DestType)) { 4052 // Convert qualifications if necessary. 4053 Sequence.AddQualificationConversionStep(DestType, VK_RValue); 4054 if (ILE) 4055 Sequence.RewrapReferenceInitList(DestType, ILE); 4056 return; 4057 } 4058 4059 const RecordType *DestRecordType = DestType->getAs<RecordType>(); 4060 assert(DestRecordType && "Constructor initialization requires record type"); 4061 CXXRecordDecl *DestRecordDecl 4062 = cast<CXXRecordDecl>(DestRecordType->getDecl()); 4063 4064 // Build the candidate set directly in the initialization sequence 4065 // structure, so that it will persist if we fail. 4066 OverloadCandidateSet &CandidateSet = Sequence.getFailedCandidateSet(); 4067 4068 // Determine whether we are allowed to call explicit constructors or 4069 // explicit conversion operators. 4070 bool AllowExplicit = Kind.AllowExplicit() || IsListInit; 4071 bool CopyInitialization = Kind.getKind() == InitializationKind::IK_Copy; 4072 4073 // - Otherwise, if T is a class type, constructors are considered. The 4074 // applicable constructors are enumerated, and the best one is chosen 4075 // through overload resolution. 4076 DeclContext::lookup_result Ctors = S.LookupConstructors(DestRecordDecl); 4077 4078 OverloadingResult Result = OR_No_Viable_Function; 4079 OverloadCandidateSet::iterator Best; 4080 bool AsInitializerList = false; 4081 4082 // C++11 [over.match.list]p1, per DR1467: 4083 // When objects of non-aggregate type T are list-initialized, such that 4084 // 8.5.4 [dcl.init.list] specifies that overload resolution is performed 4085 // according to the rules in this section, overload resolution selects 4086 // the constructor in two phases: 4087 // 4088 // - Initially, the candidate functions are the initializer-list 4089 // constructors of the class T and the argument list consists of the 4090 // initializer list as a single argument. 4091 if (IsListInit) { 4092 AsInitializerList = true; 4093 4094 // If the initializer list has no elements and T has a default constructor, 4095 // the first phase is omitted. 4096 if (!(UnwrappedArgs.empty() && S.LookupDefaultConstructor(DestRecordDecl))) 4097 Result = ResolveConstructorOverload(S, Kind.getLocation(), Args, 4098 CandidateSet, DestType, Ctors, Best, 4099 CopyInitialization, AllowExplicit, 4100 /*OnlyListConstructors=*/true, 4101 IsListInit); 4102 } 4103 4104 // C++11 [over.match.list]p1: 4105 // - If no viable initializer-list constructor is found, overload resolution 4106 // is performed again, where the candidate functions are all the 4107 // constructors of the class T and the argument list consists of the 4108 // elements of the initializer list. 4109 if (Result == OR_No_Viable_Function) { 4110 AsInitializerList = false; 4111 Result = ResolveConstructorOverload(S, Kind.getLocation(), UnwrappedArgs, 4112 CandidateSet, DestType, Ctors, Best, 4113 CopyInitialization, AllowExplicit, 4114 /*OnlyListConstructors=*/false, 4115 IsListInit); 4116 } 4117 if (Result) { 4118 Sequence.SetOverloadFailure( 4119 IsListInit ? InitializationSequence::FK_ListConstructorOverloadFailed 4120 : InitializationSequence::FK_ConstructorOverloadFailed, 4121 Result); 4122 4123 if (Result != OR_Deleted) 4124 return; 4125 } 4126 4127 bool HadMultipleCandidates = (CandidateSet.size() > 1); 4128 4129 // In C++17, ResolveConstructorOverload can select a conversion function 4130 // instead of a constructor. 4131 if (auto *CD = dyn_cast<CXXConversionDecl>(Best->Function)) { 4132 // Add the user-defined conversion step that calls the conversion function. 4133 QualType ConvType = CD->getConversionType(); 4134 assert(S.Context.hasSameUnqualifiedType(ConvType, DestType) && 4135 "should not have selected this conversion function"); 4136 Sequence.AddUserConversionStep(CD, Best->FoundDecl, ConvType, 4137 HadMultipleCandidates); 4138 if (!S.Context.hasSameType(ConvType, DestType)) 4139 Sequence.AddQualificationConversionStep(DestType, VK_RValue); 4140 if (IsListInit) 4141 Sequence.RewrapReferenceInitList(Entity.getType(), ILE); 4142 return; 4143 } 4144 4145 CXXConstructorDecl *CtorDecl = cast<CXXConstructorDecl>(Best->Function); 4146 if (Result != OR_Deleted) { 4147 // C++11 [dcl.init]p6: 4148 // If a program calls for the default initialization of an object 4149 // of a const-qualified type T, T shall be a class type with a 4150 // user-provided default constructor. 4151 // C++ core issue 253 proposal: 4152 // If the implicit default constructor initializes all subobjects, no 4153 // initializer should be required. 4154 // The 253 proposal is for example needed to process libstdc++ headers 4155 // in 5.x. 4156 if (Kind.getKind() == InitializationKind::IK_Default && 4157 Entity.getType().isConstQualified()) { 4158 if (!CtorDecl->getParent()->allowConstDefaultInit()) { 4159 if (!maybeRecoverWithZeroInitialization(S, Sequence, Entity)) 4160 Sequence.SetFailed(InitializationSequence::FK_DefaultInitOfConst); 4161 return; 4162 } 4163 } 4164 4165 // C++11 [over.match.list]p1: 4166 // In copy-list-initialization, if an explicit constructor is chosen, the 4167 // initializer is ill-formed. 4168 if (IsListInit && !Kind.AllowExplicit() && CtorDecl->isExplicit()) { 4169 Sequence.SetFailed(InitializationSequence::FK_ExplicitConstructor); 4170 return; 4171 } 4172 } 4173 4174 // [class.copy.elision]p3: 4175 // In some copy-initialization contexts, a two-stage overload resolution 4176 // is performed. 4177 // If the first overload resolution selects a deleted function, we also 4178 // need the initialization sequence to decide whether to perform the second 4179 // overload resolution. 4180 // For deleted functions in other contexts, there is no need to get the 4181 // initialization sequence. 4182 if (Result == OR_Deleted && Kind.getKind() != InitializationKind::IK_Copy) 4183 return; 4184 4185 // Add the constructor initialization step. Any cv-qualification conversion is 4186 // subsumed by the initialization. 4187 Sequence.AddConstructorInitializationStep( 4188 Best->FoundDecl, CtorDecl, DestArrayType, HadMultipleCandidates, 4189 IsListInit | IsInitListCopy, AsInitializerList); 4190 } 4191 4192 static bool 4193 ResolveOverloadedFunctionForReferenceBinding(Sema &S, 4194 Expr *Initializer, 4195 QualType &SourceType, 4196 QualType &UnqualifiedSourceType, 4197 QualType UnqualifiedTargetType, 4198 InitializationSequence &Sequence) { 4199 if (S.Context.getCanonicalType(UnqualifiedSourceType) == 4200 S.Context.OverloadTy) { 4201 DeclAccessPair Found; 4202 bool HadMultipleCandidates = false; 4203 if (FunctionDecl *Fn 4204 = S.ResolveAddressOfOverloadedFunction(Initializer, 4205 UnqualifiedTargetType, 4206 false, Found, 4207 &HadMultipleCandidates)) { 4208 Sequence.AddAddressOverloadResolutionStep(Fn, Found, 4209 HadMultipleCandidates); 4210 SourceType = Fn->getType(); 4211 UnqualifiedSourceType = SourceType.getUnqualifiedType(); 4212 } else if (!UnqualifiedTargetType->isRecordType()) { 4213 Sequence.SetFailed(InitializationSequence::FK_AddressOfOverloadFailed); 4214 return true; 4215 } 4216 } 4217 return false; 4218 } 4219 4220 static void TryReferenceInitializationCore(Sema &S, 4221 const InitializedEntity &Entity, 4222 const InitializationKind &Kind, 4223 Expr *Initializer, 4224 QualType cv1T1, QualType T1, 4225 Qualifiers T1Quals, 4226 QualType cv2T2, QualType T2, 4227 Qualifiers T2Quals, 4228 InitializationSequence &Sequence); 4229 4230 static void TryValueInitialization(Sema &S, 4231 const InitializedEntity &Entity, 4232 const InitializationKind &Kind, 4233 InitializationSequence &Sequence, 4234 InitListExpr *InitList = nullptr); 4235 4236 /// Attempt list initialization of a reference. 4237 static void TryReferenceListInitialization(Sema &S, 4238 const InitializedEntity &Entity, 4239 const InitializationKind &Kind, 4240 InitListExpr *InitList, 4241 InitializationSequence &Sequence, 4242 bool TreatUnavailableAsInvalid) { 4243 // First, catch C++03 where this isn't possible. 4244 if (!S.getLangOpts().CPlusPlus11) { 4245 Sequence.SetFailed(InitializationSequence::FK_ReferenceBindingToInitList); 4246 return; 4247 } 4248 // Can't reference initialize a compound literal. 4249 if (Entity.getKind() == InitializedEntity::EK_CompoundLiteralInit) { 4250 Sequence.SetFailed(InitializationSequence::FK_ReferenceBindingToInitList); 4251 return; 4252 } 4253 4254 QualType DestType = Entity.getType(); 4255 QualType cv1T1 = DestType->castAs<ReferenceType>()->getPointeeType(); 4256 Qualifiers T1Quals; 4257 QualType T1 = S.Context.getUnqualifiedArrayType(cv1T1, T1Quals); 4258 4259 // Reference initialization via an initializer list works thus: 4260 // If the initializer list consists of a single element that is 4261 // reference-related to the referenced type, bind directly to that element 4262 // (possibly creating temporaries). 4263 // Otherwise, initialize a temporary with the initializer list and 4264 // bind to that. 4265 if (InitList->getNumInits() == 1) { 4266 Expr *Initializer = InitList->getInit(0); 4267 QualType cv2T2 = S.getCompletedType(Initializer); 4268 Qualifiers T2Quals; 4269 QualType T2 = S.Context.getUnqualifiedArrayType(cv2T2, T2Quals); 4270 4271 // If this fails, creating a temporary wouldn't work either. 4272 if (ResolveOverloadedFunctionForReferenceBinding(S, Initializer, cv2T2, T2, 4273 T1, Sequence)) 4274 return; 4275 4276 SourceLocation DeclLoc = Initializer->getBeginLoc(); 4277 Sema::ReferenceCompareResult RefRelationship 4278 = S.CompareReferenceRelationship(DeclLoc, cv1T1, cv2T2); 4279 if (RefRelationship >= Sema::Ref_Related) { 4280 // Try to bind the reference here. 4281 TryReferenceInitializationCore(S, Entity, Kind, Initializer, cv1T1, T1, 4282 T1Quals, cv2T2, T2, T2Quals, Sequence); 4283 if (Sequence) 4284 Sequence.RewrapReferenceInitList(cv1T1, InitList); 4285 return; 4286 } 4287 4288 // Update the initializer if we've resolved an overloaded function. 4289 if (Sequence.step_begin() != Sequence.step_end()) 4290 Sequence.RewrapReferenceInitList(cv1T1, InitList); 4291 } 4292 // Perform address space compatibility check. 4293 QualType cv1T1IgnoreAS = cv1T1; 4294 if (T1Quals.hasAddressSpace()) { 4295 Qualifiers T2Quals; 4296 (void)S.Context.getUnqualifiedArrayType(InitList->getType(), T2Quals); 4297 if (!T1Quals.isAddressSpaceSupersetOf(T2Quals)) { 4298 Sequence.SetFailed( 4299 InitializationSequence::FK_ReferenceInitDropsQualifiers); 4300 return; 4301 } 4302 // Ignore address space of reference type at this point and perform address 4303 // space conversion after the reference binding step. 4304 cv1T1IgnoreAS = 4305 S.Context.getQualifiedType(T1, T1Quals.withoutAddressSpace()); 4306 } 4307 // Not reference-related. Create a temporary and bind to that. 4308 InitializedEntity TempEntity = 4309 InitializedEntity::InitializeTemporary(cv1T1IgnoreAS); 4310 4311 TryListInitialization(S, TempEntity, Kind, InitList, Sequence, 4312 TreatUnavailableAsInvalid); 4313 if (Sequence) { 4314 if (DestType->isRValueReferenceType() || 4315 (T1Quals.hasConst() && !T1Quals.hasVolatile())) { 4316 Sequence.AddReferenceBindingStep(cv1T1IgnoreAS, 4317 /*BindingTemporary=*/true); 4318 if (T1Quals.hasAddressSpace()) 4319 Sequence.AddQualificationConversionStep( 4320 cv1T1, DestType->isRValueReferenceType() ? VK_XValue : VK_LValue); 4321 } else 4322 Sequence.SetFailed( 4323 InitializationSequence::FK_NonConstLValueReferenceBindingToTemporary); 4324 } 4325 } 4326 4327 /// Attempt list initialization (C++0x [dcl.init.list]) 4328 static void TryListInitialization(Sema &S, 4329 const InitializedEntity &Entity, 4330 const InitializationKind &Kind, 4331 InitListExpr *InitList, 4332 InitializationSequence &Sequence, 4333 bool TreatUnavailableAsInvalid) { 4334 QualType DestType = Entity.getType(); 4335 4336 // C++ doesn't allow scalar initialization with more than one argument. 4337 // But C99 complex numbers are scalars and it makes sense there. 4338 if (S.getLangOpts().CPlusPlus && DestType->isScalarType() && 4339 !DestType->isAnyComplexType() && InitList->getNumInits() > 1) { 4340 Sequence.SetFailed(InitializationSequence::FK_TooManyInitsForScalar); 4341 return; 4342 } 4343 if (DestType->isReferenceType()) { 4344 TryReferenceListInitialization(S, Entity, Kind, InitList, Sequence, 4345 TreatUnavailableAsInvalid); 4346 return; 4347 } 4348 4349 if (DestType->isRecordType() && 4350 !S.isCompleteType(InitList->getBeginLoc(), DestType)) { 4351 Sequence.setIncompleteTypeFailure(DestType); 4352 return; 4353 } 4354 4355 // C++11 [dcl.init.list]p3, per DR1467: 4356 // - If T is a class type and the initializer list has a single element of 4357 // type cv U, where U is T or a class derived from T, the object is 4358 // initialized from that element (by copy-initialization for 4359 // copy-list-initialization, or by direct-initialization for 4360 // direct-list-initialization). 4361 // - Otherwise, if T is a character array and the initializer list has a 4362 // single element that is an appropriately-typed string literal 4363 // (8.5.2 [dcl.init.string]), initialization is performed as described 4364 // in that section. 4365 // - Otherwise, if T is an aggregate, [...] (continue below). 4366 if (S.getLangOpts().CPlusPlus11 && InitList->getNumInits() == 1) { 4367 if (DestType->isRecordType()) { 4368 QualType InitType = InitList->getInit(0)->getType(); 4369 if (S.Context.hasSameUnqualifiedType(InitType, DestType) || 4370 S.IsDerivedFrom(InitList->getBeginLoc(), InitType, DestType)) { 4371 Expr *InitListAsExpr = InitList; 4372 TryConstructorInitialization(S, Entity, Kind, InitListAsExpr, DestType, 4373 DestType, Sequence, 4374 /*InitListSyntax*/false, 4375 /*IsInitListCopy*/true); 4376 return; 4377 } 4378 } 4379 if (const ArrayType *DestAT = S.Context.getAsArrayType(DestType)) { 4380 Expr *SubInit[1] = {InitList->getInit(0)}; 4381 if (!isa<VariableArrayType>(DestAT) && 4382 IsStringInit(SubInit[0], DestAT, S.Context) == SIF_None) { 4383 InitializationKind SubKind = 4384 Kind.getKind() == InitializationKind::IK_DirectList 4385 ? InitializationKind::CreateDirect(Kind.getLocation(), 4386 InitList->getLBraceLoc(), 4387 InitList->getRBraceLoc()) 4388 : Kind; 4389 Sequence.InitializeFrom(S, Entity, SubKind, SubInit, 4390 /*TopLevelOfInitList*/ true, 4391 TreatUnavailableAsInvalid); 4392 4393 // TryStringLiteralInitialization() (in InitializeFrom()) will fail if 4394 // the element is not an appropriately-typed string literal, in which 4395 // case we should proceed as in C++11 (below). 4396 if (Sequence) { 4397 Sequence.RewrapReferenceInitList(Entity.getType(), InitList); 4398 return; 4399 } 4400 } 4401 } 4402 } 4403 4404 // C++11 [dcl.init.list]p3: 4405 // - If T is an aggregate, aggregate initialization is performed. 4406 if ((DestType->isRecordType() && !DestType->isAggregateType()) || 4407 (S.getLangOpts().CPlusPlus11 && 4408 S.isStdInitializerList(DestType, nullptr))) { 4409 if (S.getLangOpts().CPlusPlus11) { 4410 // - Otherwise, if the initializer list has no elements and T is a 4411 // class type with a default constructor, the object is 4412 // value-initialized. 4413 if (InitList->getNumInits() == 0) { 4414 CXXRecordDecl *RD = DestType->getAsCXXRecordDecl(); 4415 if (S.LookupDefaultConstructor(RD)) { 4416 TryValueInitialization(S, Entity, Kind, Sequence, InitList); 4417 return; 4418 } 4419 } 4420 4421 // - Otherwise, if T is a specialization of std::initializer_list<E>, 4422 // an initializer_list object constructed [...] 4423 if (TryInitializerListConstruction(S, InitList, DestType, Sequence, 4424 TreatUnavailableAsInvalid)) 4425 return; 4426 4427 // - Otherwise, if T is a class type, constructors are considered. 4428 Expr *InitListAsExpr = InitList; 4429 TryConstructorInitialization(S, Entity, Kind, InitListAsExpr, DestType, 4430 DestType, Sequence, /*InitListSyntax*/true); 4431 } else 4432 Sequence.SetFailed(InitializationSequence::FK_InitListBadDestinationType); 4433 return; 4434 } 4435 4436 if (S.getLangOpts().CPlusPlus && !DestType->isAggregateType() && 4437 InitList->getNumInits() == 1) { 4438 Expr *E = InitList->getInit(0); 4439 4440 // - Otherwise, if T is an enumeration with a fixed underlying type, 4441 // the initializer-list has a single element v, and the initialization 4442 // is direct-list-initialization, the object is initialized with the 4443 // value T(v); if a narrowing conversion is required to convert v to 4444 // the underlying type of T, the program is ill-formed. 4445 auto *ET = DestType->getAs<EnumType>(); 4446 if (S.getLangOpts().CPlusPlus17 && 4447 Kind.getKind() == InitializationKind::IK_DirectList && 4448 ET && ET->getDecl()->isFixed() && 4449 !S.Context.hasSameUnqualifiedType(E->getType(), DestType) && 4450 (E->getType()->isIntegralOrEnumerationType() || 4451 E->getType()->isFloatingType())) { 4452 // There are two ways that T(v) can work when T is an enumeration type. 4453 // If there is either an implicit conversion sequence from v to T or 4454 // a conversion function that can convert from v to T, then we use that. 4455 // Otherwise, if v is of integral, enumeration, or floating-point type, 4456 // it is converted to the enumeration type via its underlying type. 4457 // There is no overlap possible between these two cases (except when the 4458 // source value is already of the destination type), and the first 4459 // case is handled by the general case for single-element lists below. 4460 ImplicitConversionSequence ICS; 4461 ICS.setStandard(); 4462 ICS.Standard.setAsIdentityConversion(); 4463 if (!E->isRValue()) 4464 ICS.Standard.First = ICK_Lvalue_To_Rvalue; 4465 // If E is of a floating-point type, then the conversion is ill-formed 4466 // due to narrowing, but go through the motions in order to produce the 4467 // right diagnostic. 4468 ICS.Standard.Second = E->getType()->isFloatingType() 4469 ? ICK_Floating_Integral 4470 : ICK_Integral_Conversion; 4471 ICS.Standard.setFromType(E->getType()); 4472 ICS.Standard.setToType(0, E->getType()); 4473 ICS.Standard.setToType(1, DestType); 4474 ICS.Standard.setToType(2, DestType); 4475 Sequence.AddConversionSequenceStep(ICS, ICS.Standard.getToType(2), 4476 /*TopLevelOfInitList*/true); 4477 Sequence.RewrapReferenceInitList(Entity.getType(), InitList); 4478 return; 4479 } 4480 4481 // - Otherwise, if the initializer list has a single element of type E 4482 // [...references are handled above...], the object or reference is 4483 // initialized from that element (by copy-initialization for 4484 // copy-list-initialization, or by direct-initialization for 4485 // direct-list-initialization); if a narrowing conversion is required 4486 // to convert the element to T, the program is ill-formed. 4487 // 4488 // Per core-24034, this is direct-initialization if we were performing 4489 // direct-list-initialization and copy-initialization otherwise. 4490 // We can't use InitListChecker for this, because it always performs 4491 // copy-initialization. This only matters if we might use an 'explicit' 4492 // conversion operator, or for the special case conversion of nullptr_t to 4493 // bool, so we only need to handle those cases. 4494 // 4495 // FIXME: Why not do this in all cases? 4496 Expr *Init = InitList->getInit(0); 4497 if (Init->getType()->isRecordType() || 4498 (Init->getType()->isNullPtrType() && DestType->isBooleanType())) { 4499 InitializationKind SubKind = 4500 Kind.getKind() == InitializationKind::IK_DirectList 4501 ? InitializationKind::CreateDirect(Kind.getLocation(), 4502 InitList->getLBraceLoc(), 4503 InitList->getRBraceLoc()) 4504 : Kind; 4505 Expr *SubInit[1] = { Init }; 4506 Sequence.InitializeFrom(S, Entity, SubKind, SubInit, 4507 /*TopLevelOfInitList*/true, 4508 TreatUnavailableAsInvalid); 4509 if (Sequence) 4510 Sequence.RewrapReferenceInitList(Entity.getType(), InitList); 4511 return; 4512 } 4513 } 4514 4515 InitListChecker CheckInitList(S, Entity, InitList, 4516 DestType, /*VerifyOnly=*/true, TreatUnavailableAsInvalid); 4517 if (CheckInitList.HadError()) { 4518 Sequence.SetFailed(InitializationSequence::FK_ListInitializationFailed); 4519 return; 4520 } 4521 4522 // Add the list initialization step with the built init list. 4523 Sequence.AddListInitializationStep(DestType); 4524 } 4525 4526 /// Try a reference initialization that involves calling a conversion 4527 /// function. 4528 static OverloadingResult TryRefInitWithConversionFunction( 4529 Sema &S, const InitializedEntity &Entity, const InitializationKind &Kind, 4530 Expr *Initializer, bool AllowRValues, bool IsLValueRef, 4531 InitializationSequence &Sequence) { 4532 QualType DestType = Entity.getType(); 4533 QualType cv1T1 = DestType->castAs<ReferenceType>()->getPointeeType(); 4534 QualType T1 = cv1T1.getUnqualifiedType(); 4535 QualType cv2T2 = Initializer->getType(); 4536 QualType T2 = cv2T2.getUnqualifiedType(); 4537 4538 assert(!S.CompareReferenceRelationship(Initializer->getBeginLoc(), T1, T2) && 4539 "Must have incompatible references when binding via conversion"); 4540 4541 // Build the candidate set directly in the initialization sequence 4542 // structure, so that it will persist if we fail. 4543 OverloadCandidateSet &CandidateSet = Sequence.getFailedCandidateSet(); 4544 CandidateSet.clear(OverloadCandidateSet::CSK_InitByUserDefinedConversion); 4545 4546 // Determine whether we are allowed to call explicit conversion operators. 4547 // Note that none of [over.match.copy], [over.match.conv], nor 4548 // [over.match.ref] permit an explicit constructor to be chosen when 4549 // initializing a reference, not even for direct-initialization. 4550 bool AllowExplicitCtors = false; 4551 bool AllowExplicitConvs = Kind.allowExplicitConversionFunctionsInRefBinding(); 4552 4553 const RecordType *T1RecordType = nullptr; 4554 if (AllowRValues && (T1RecordType = T1->getAs<RecordType>()) && 4555 S.isCompleteType(Kind.getLocation(), T1)) { 4556 // The type we're converting to is a class type. Enumerate its constructors 4557 // to see if there is a suitable conversion. 4558 CXXRecordDecl *T1RecordDecl = cast<CXXRecordDecl>(T1RecordType->getDecl()); 4559 4560 for (NamedDecl *D : S.LookupConstructors(T1RecordDecl)) { 4561 auto Info = getConstructorInfo(D); 4562 if (!Info.Constructor) 4563 continue; 4564 4565 if (!Info.Constructor->isInvalidDecl() && 4566 Info.Constructor->isConvertingConstructor(/*AllowExplicit*/true)) { 4567 if (Info.ConstructorTmpl) 4568 S.AddTemplateOverloadCandidate( 4569 Info.ConstructorTmpl, Info.FoundDecl, 4570 /*ExplicitArgs*/ nullptr, Initializer, CandidateSet, 4571 /*SuppressUserConversions=*/true, 4572 /*PartialOverloading*/ false, AllowExplicitCtors); 4573 else 4574 S.AddOverloadCandidate( 4575 Info.Constructor, Info.FoundDecl, Initializer, CandidateSet, 4576 /*SuppressUserConversions=*/true, 4577 /*PartialOverloading*/ false, AllowExplicitCtors); 4578 } 4579 } 4580 } 4581 if (T1RecordType && T1RecordType->getDecl()->isInvalidDecl()) 4582 return OR_No_Viable_Function; 4583 4584 const RecordType *T2RecordType = nullptr; 4585 if ((T2RecordType = T2->getAs<RecordType>()) && 4586 S.isCompleteType(Kind.getLocation(), T2)) { 4587 // The type we're converting from is a class type, enumerate its conversion 4588 // functions. 4589 CXXRecordDecl *T2RecordDecl = cast<CXXRecordDecl>(T2RecordType->getDecl()); 4590 4591 const auto &Conversions = T2RecordDecl->getVisibleConversionFunctions(); 4592 for (auto I = Conversions.begin(), E = Conversions.end(); I != E; ++I) { 4593 NamedDecl *D = *I; 4594 CXXRecordDecl *ActingDC = cast<CXXRecordDecl>(D->getDeclContext()); 4595 if (isa<UsingShadowDecl>(D)) 4596 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 4597 4598 FunctionTemplateDecl *ConvTemplate = dyn_cast<FunctionTemplateDecl>(D); 4599 CXXConversionDecl *Conv; 4600 if (ConvTemplate) 4601 Conv = cast<CXXConversionDecl>(ConvTemplate->getTemplatedDecl()); 4602 else 4603 Conv = cast<CXXConversionDecl>(D); 4604 4605 // If the conversion function doesn't return a reference type, 4606 // it can't be considered for this conversion unless we're allowed to 4607 // consider rvalues. 4608 // FIXME: Do we need to make sure that we only consider conversion 4609 // candidates with reference-compatible results? That might be needed to 4610 // break recursion. 4611 if ((AllowRValues || 4612 Conv->getConversionType()->isLValueReferenceType())) { 4613 if (ConvTemplate) 4614 S.AddTemplateConversionCandidate( 4615 ConvTemplate, I.getPair(), ActingDC, Initializer, DestType, 4616 CandidateSet, 4617 /*AllowObjCConversionOnExplicit=*/false, AllowExplicitConvs); 4618 else 4619 S.AddConversionCandidate( 4620 Conv, I.getPair(), ActingDC, Initializer, DestType, CandidateSet, 4621 /*AllowObjCConversionOnExplicit=*/false, AllowExplicitConvs); 4622 } 4623 } 4624 } 4625 if (T2RecordType && T2RecordType->getDecl()->isInvalidDecl()) 4626 return OR_No_Viable_Function; 4627 4628 SourceLocation DeclLoc = Initializer->getBeginLoc(); 4629 4630 // Perform overload resolution. If it fails, return the failed result. 4631 OverloadCandidateSet::iterator Best; 4632 if (OverloadingResult Result 4633 = CandidateSet.BestViableFunction(S, DeclLoc, Best)) 4634 return Result; 4635 4636 FunctionDecl *Function = Best->Function; 4637 // This is the overload that will be used for this initialization step if we 4638 // use this initialization. Mark it as referenced. 4639 Function->setReferenced(); 4640 4641 // Compute the returned type and value kind of the conversion. 4642 QualType cv3T3; 4643 if (isa<CXXConversionDecl>(Function)) 4644 cv3T3 = Function->getReturnType(); 4645 else 4646 cv3T3 = T1; 4647 4648 ExprValueKind VK = VK_RValue; 4649 if (cv3T3->isLValueReferenceType()) 4650 VK = VK_LValue; 4651 else if (const auto *RRef = cv3T3->getAs<RValueReferenceType>()) 4652 VK = RRef->getPointeeType()->isFunctionType() ? VK_LValue : VK_XValue; 4653 cv3T3 = cv3T3.getNonLValueExprType(S.Context); 4654 4655 // Add the user-defined conversion step. 4656 bool HadMultipleCandidates = (CandidateSet.size() > 1); 4657 Sequence.AddUserConversionStep(Function, Best->FoundDecl, cv3T3, 4658 HadMultipleCandidates); 4659 4660 // Determine whether we'll need to perform derived-to-base adjustments or 4661 // other conversions. 4662 Sema::ReferenceConversions RefConv; 4663 Sema::ReferenceCompareResult NewRefRelationship = 4664 S.CompareReferenceRelationship(DeclLoc, T1, cv3T3, &RefConv); 4665 4666 // Add the final conversion sequence, if necessary. 4667 if (NewRefRelationship == Sema::Ref_Incompatible) { 4668 assert(!isa<CXXConstructorDecl>(Function) && 4669 "should not have conversion after constructor"); 4670 4671 ImplicitConversionSequence ICS; 4672 ICS.setStandard(); 4673 ICS.Standard = Best->FinalConversion; 4674 Sequence.AddConversionSequenceStep(ICS, ICS.Standard.getToType(2)); 4675 4676 // Every implicit conversion results in a prvalue, except for a glvalue 4677 // derived-to-base conversion, which we handle below. 4678 cv3T3 = ICS.Standard.getToType(2); 4679 VK = VK_RValue; 4680 } 4681 4682 // If the converted initializer is a prvalue, its type T4 is adjusted to 4683 // type "cv1 T4" and the temporary materialization conversion is applied. 4684 // 4685 // We adjust the cv-qualifications to match the reference regardless of 4686 // whether we have a prvalue so that the AST records the change. In this 4687 // case, T4 is "cv3 T3". 4688 QualType cv1T4 = S.Context.getQualifiedType(cv3T3, cv1T1.getQualifiers()); 4689 if (cv1T4.getQualifiers() != cv3T3.getQualifiers()) 4690 Sequence.AddQualificationConversionStep(cv1T4, VK); 4691 Sequence.AddReferenceBindingStep(cv1T4, VK == VK_RValue); 4692 VK = IsLValueRef ? VK_LValue : VK_XValue; 4693 4694 if (RefConv & Sema::ReferenceConversions::DerivedToBase) 4695 Sequence.AddDerivedToBaseCastStep(cv1T1, VK); 4696 else if (RefConv & Sema::ReferenceConversions::ObjC) 4697 Sequence.AddObjCObjectConversionStep(cv1T1); 4698 else if (RefConv & Sema::ReferenceConversions::Function) 4699 Sequence.AddFunctionReferenceConversionStep(cv1T1); 4700 else if (RefConv & Sema::ReferenceConversions::Qualification) { 4701 if (!S.Context.hasSameType(cv1T4, cv1T1)) 4702 Sequence.AddQualificationConversionStep(cv1T1, VK); 4703 } 4704 4705 return OR_Success; 4706 } 4707 4708 static void CheckCXX98CompatAccessibleCopy(Sema &S, 4709 const InitializedEntity &Entity, 4710 Expr *CurInitExpr); 4711 4712 /// Attempt reference initialization (C++0x [dcl.init.ref]) 4713 static void TryReferenceInitialization(Sema &S, 4714 const InitializedEntity &Entity, 4715 const InitializationKind &Kind, 4716 Expr *Initializer, 4717 InitializationSequence &Sequence) { 4718 QualType DestType = Entity.getType(); 4719 QualType cv1T1 = DestType->castAs<ReferenceType>()->getPointeeType(); 4720 Qualifiers T1Quals; 4721 QualType T1 = S.Context.getUnqualifiedArrayType(cv1T1, T1Quals); 4722 QualType cv2T2 = S.getCompletedType(Initializer); 4723 Qualifiers T2Quals; 4724 QualType T2 = S.Context.getUnqualifiedArrayType(cv2T2, T2Quals); 4725 4726 // If the initializer is the address of an overloaded function, try 4727 // to resolve the overloaded function. If all goes well, T2 is the 4728 // type of the resulting function. 4729 if (ResolveOverloadedFunctionForReferenceBinding(S, Initializer, cv2T2, T2, 4730 T1, Sequence)) 4731 return; 4732 4733 // Delegate everything else to a subfunction. 4734 TryReferenceInitializationCore(S, Entity, Kind, Initializer, cv1T1, T1, 4735 T1Quals, cv2T2, T2, T2Quals, Sequence); 4736 } 4737 4738 /// Determine whether an expression is a non-referenceable glvalue (one to 4739 /// which a reference can never bind). Attempting to bind a reference to 4740 /// such a glvalue will always create a temporary. 4741 static bool isNonReferenceableGLValue(Expr *E) { 4742 return E->refersToBitField() || E->refersToVectorElement() || 4743 E->refersToMatrixElement(); 4744 } 4745 4746 /// Reference initialization without resolving overloaded functions. 4747 /// 4748 /// We also can get here in C if we call a builtin which is declared as 4749 /// a function with a parameter of reference type (such as __builtin_va_end()). 4750 static void TryReferenceInitializationCore(Sema &S, 4751 const InitializedEntity &Entity, 4752 const InitializationKind &Kind, 4753 Expr *Initializer, 4754 QualType cv1T1, QualType T1, 4755 Qualifiers T1Quals, 4756 QualType cv2T2, QualType T2, 4757 Qualifiers T2Quals, 4758 InitializationSequence &Sequence) { 4759 QualType DestType = Entity.getType(); 4760 SourceLocation DeclLoc = Initializer->getBeginLoc(); 4761 4762 // Compute some basic properties of the types and the initializer. 4763 bool isLValueRef = DestType->isLValueReferenceType(); 4764 bool isRValueRef = !isLValueRef; 4765 Expr::Classification InitCategory = Initializer->Classify(S.Context); 4766 4767 Sema::ReferenceConversions RefConv; 4768 Sema::ReferenceCompareResult RefRelationship = 4769 S.CompareReferenceRelationship(DeclLoc, cv1T1, cv2T2, &RefConv); 4770 4771 // C++0x [dcl.init.ref]p5: 4772 // A reference to type "cv1 T1" is initialized by an expression of type 4773 // "cv2 T2" as follows: 4774 // 4775 // - If the reference is an lvalue reference and the initializer 4776 // expression 4777 // Note the analogous bullet points for rvalue refs to functions. Because 4778 // there are no function rvalues in C++, rvalue refs to functions are treated 4779 // like lvalue refs. 4780 OverloadingResult ConvOvlResult = OR_Success; 4781 bool T1Function = T1->isFunctionType(); 4782 if (isLValueRef || T1Function) { 4783 if (InitCategory.isLValue() && !isNonReferenceableGLValue(Initializer) && 4784 (RefRelationship == Sema::Ref_Compatible || 4785 (Kind.isCStyleOrFunctionalCast() && 4786 RefRelationship == Sema::Ref_Related))) { 4787 // - is an lvalue (but is not a bit-field), and "cv1 T1" is 4788 // reference-compatible with "cv2 T2," or 4789 if (RefConv & (Sema::ReferenceConversions::DerivedToBase | 4790 Sema::ReferenceConversions::ObjC)) { 4791 // If we're converting the pointee, add any qualifiers first; 4792 // these qualifiers must all be top-level, so just convert to "cv1 T2". 4793 if (RefConv & (Sema::ReferenceConversions::Qualification)) 4794 Sequence.AddQualificationConversionStep( 4795 S.Context.getQualifiedType(T2, T1Quals), 4796 Initializer->getValueKind()); 4797 if (RefConv & Sema::ReferenceConversions::DerivedToBase) 4798 Sequence.AddDerivedToBaseCastStep(cv1T1, VK_LValue); 4799 else 4800 Sequence.AddObjCObjectConversionStep(cv1T1); 4801 } else if (RefConv & Sema::ReferenceConversions::Qualification) { 4802 // Perform a (possibly multi-level) qualification conversion. 4803 Sequence.AddQualificationConversionStep(cv1T1, 4804 Initializer->getValueKind()); 4805 } else if (RefConv & Sema::ReferenceConversions::Function) { 4806 Sequence.AddFunctionReferenceConversionStep(cv1T1); 4807 } 4808 4809 // We only create a temporary here when binding a reference to a 4810 // bit-field or vector element. Those cases are't supposed to be 4811 // handled by this bullet, but the outcome is the same either way. 4812 Sequence.AddReferenceBindingStep(cv1T1, false); 4813 return; 4814 } 4815 4816 // - has a class type (i.e., T2 is a class type), where T1 is not 4817 // reference-related to T2, and can be implicitly converted to an 4818 // lvalue of type "cv3 T3," where "cv1 T1" is reference-compatible 4819 // with "cv3 T3" (this conversion is selected by enumerating the 4820 // applicable conversion functions (13.3.1.6) and choosing the best 4821 // one through overload resolution (13.3)), 4822 // If we have an rvalue ref to function type here, the rhs must be 4823 // an rvalue. DR1287 removed the "implicitly" here. 4824 if (RefRelationship == Sema::Ref_Incompatible && T2->isRecordType() && 4825 (isLValueRef || InitCategory.isRValue())) { 4826 if (S.getLangOpts().CPlusPlus) { 4827 // Try conversion functions only for C++. 4828 ConvOvlResult = TryRefInitWithConversionFunction( 4829 S, Entity, Kind, Initializer, /*AllowRValues*/ isRValueRef, 4830 /*IsLValueRef*/ isLValueRef, Sequence); 4831 if (ConvOvlResult == OR_Success) 4832 return; 4833 if (ConvOvlResult != OR_No_Viable_Function) 4834 Sequence.SetOverloadFailure( 4835 InitializationSequence::FK_ReferenceInitOverloadFailed, 4836 ConvOvlResult); 4837 } else { 4838 ConvOvlResult = OR_No_Viable_Function; 4839 } 4840 } 4841 } 4842 4843 // - Otherwise, the reference shall be an lvalue reference to a 4844 // non-volatile const type (i.e., cv1 shall be const), or the reference 4845 // shall be an rvalue reference. 4846 // For address spaces, we interpret this to mean that an addr space 4847 // of a reference "cv1 T1" is a superset of addr space of "cv2 T2". 4848 if (isLValueRef && !(T1Quals.hasConst() && !T1Quals.hasVolatile() && 4849 T1Quals.isAddressSpaceSupersetOf(T2Quals))) { 4850 if (S.Context.getCanonicalType(T2) == S.Context.OverloadTy) 4851 Sequence.SetFailed(InitializationSequence::FK_AddressOfOverloadFailed); 4852 else if (ConvOvlResult && !Sequence.getFailedCandidateSet().empty()) 4853 Sequence.SetOverloadFailure( 4854 InitializationSequence::FK_ReferenceInitOverloadFailed, 4855 ConvOvlResult); 4856 else if (!InitCategory.isLValue()) 4857 Sequence.SetFailed( 4858 T1Quals.isAddressSpaceSupersetOf(T2Quals) 4859 ? InitializationSequence:: 4860 FK_NonConstLValueReferenceBindingToTemporary 4861 : InitializationSequence::FK_ReferenceInitDropsQualifiers); 4862 else { 4863 InitializationSequence::FailureKind FK; 4864 switch (RefRelationship) { 4865 case Sema::Ref_Compatible: 4866 if (Initializer->refersToBitField()) 4867 FK = InitializationSequence:: 4868 FK_NonConstLValueReferenceBindingToBitfield; 4869 else if (Initializer->refersToVectorElement()) 4870 FK = InitializationSequence:: 4871 FK_NonConstLValueReferenceBindingToVectorElement; 4872 else if (Initializer->refersToMatrixElement()) 4873 FK = InitializationSequence:: 4874 FK_NonConstLValueReferenceBindingToMatrixElement; 4875 else 4876 llvm_unreachable("unexpected kind of compatible initializer"); 4877 break; 4878 case Sema::Ref_Related: 4879 FK = InitializationSequence::FK_ReferenceInitDropsQualifiers; 4880 break; 4881 case Sema::Ref_Incompatible: 4882 FK = InitializationSequence:: 4883 FK_NonConstLValueReferenceBindingToUnrelated; 4884 break; 4885 } 4886 Sequence.SetFailed(FK); 4887 } 4888 return; 4889 } 4890 4891 // - If the initializer expression 4892 // - is an 4893 // [<=14] xvalue (but not a bit-field), class prvalue, array prvalue, or 4894 // [1z] rvalue (but not a bit-field) or 4895 // function lvalue and "cv1 T1" is reference-compatible with "cv2 T2" 4896 // 4897 // Note: functions are handled above and below rather than here... 4898 if (!T1Function && 4899 (RefRelationship == Sema::Ref_Compatible || 4900 (Kind.isCStyleOrFunctionalCast() && 4901 RefRelationship == Sema::Ref_Related)) && 4902 ((InitCategory.isXValue() && !isNonReferenceableGLValue(Initializer)) || 4903 (InitCategory.isPRValue() && 4904 (S.getLangOpts().CPlusPlus17 || T2->isRecordType() || 4905 T2->isArrayType())))) { 4906 ExprValueKind ValueKind = InitCategory.isXValue() ? VK_XValue : VK_RValue; 4907 if (InitCategory.isPRValue() && T2->isRecordType()) { 4908 // The corresponding bullet in C++03 [dcl.init.ref]p5 gives the 4909 // compiler the freedom to perform a copy here or bind to the 4910 // object, while C++0x requires that we bind directly to the 4911 // object. Hence, we always bind to the object without making an 4912 // extra copy. However, in C++03 requires that we check for the 4913 // presence of a suitable copy constructor: 4914 // 4915 // The constructor that would be used to make the copy shall 4916 // be callable whether or not the copy is actually done. 4917 if (!S.getLangOpts().CPlusPlus11 && !S.getLangOpts().MicrosoftExt) 4918 Sequence.AddExtraneousCopyToTemporary(cv2T2); 4919 else if (S.getLangOpts().CPlusPlus11) 4920 CheckCXX98CompatAccessibleCopy(S, Entity, Initializer); 4921 } 4922 4923 // C++1z [dcl.init.ref]/5.2.1.2: 4924 // If the converted initializer is a prvalue, its type T4 is adjusted 4925 // to type "cv1 T4" and the temporary materialization conversion is 4926 // applied. 4927 // Postpone address space conversions to after the temporary materialization 4928 // conversion to allow creating temporaries in the alloca address space. 4929 auto T1QualsIgnoreAS = T1Quals; 4930 auto T2QualsIgnoreAS = T2Quals; 4931 if (T1Quals.getAddressSpace() != T2Quals.getAddressSpace()) { 4932 T1QualsIgnoreAS.removeAddressSpace(); 4933 T2QualsIgnoreAS.removeAddressSpace(); 4934 } 4935 QualType cv1T4 = S.Context.getQualifiedType(cv2T2, T1QualsIgnoreAS); 4936 if (T1QualsIgnoreAS != T2QualsIgnoreAS) 4937 Sequence.AddQualificationConversionStep(cv1T4, ValueKind); 4938 Sequence.AddReferenceBindingStep(cv1T4, ValueKind == VK_RValue); 4939 ValueKind = isLValueRef ? VK_LValue : VK_XValue; 4940 // Add addr space conversion if required. 4941 if (T1Quals.getAddressSpace() != T2Quals.getAddressSpace()) { 4942 auto T4Quals = cv1T4.getQualifiers(); 4943 T4Quals.addAddressSpace(T1Quals.getAddressSpace()); 4944 QualType cv1T4WithAS = S.Context.getQualifiedType(T2, T4Quals); 4945 Sequence.AddQualificationConversionStep(cv1T4WithAS, ValueKind); 4946 cv1T4 = cv1T4WithAS; 4947 } 4948 4949 // In any case, the reference is bound to the resulting glvalue (or to 4950 // an appropriate base class subobject). 4951 if (RefConv & Sema::ReferenceConversions::DerivedToBase) 4952 Sequence.AddDerivedToBaseCastStep(cv1T1, ValueKind); 4953 else if (RefConv & Sema::ReferenceConversions::ObjC) 4954 Sequence.AddObjCObjectConversionStep(cv1T1); 4955 else if (RefConv & Sema::ReferenceConversions::Qualification) { 4956 if (!S.Context.hasSameType(cv1T4, cv1T1)) 4957 Sequence.AddQualificationConversionStep(cv1T1, ValueKind); 4958 } 4959 return; 4960 } 4961 4962 // - has a class type (i.e., T2 is a class type), where T1 is not 4963 // reference-related to T2, and can be implicitly converted to an 4964 // xvalue, class prvalue, or function lvalue of type "cv3 T3", 4965 // where "cv1 T1" is reference-compatible with "cv3 T3", 4966 // 4967 // DR1287 removes the "implicitly" here. 4968 if (T2->isRecordType()) { 4969 if (RefRelationship == Sema::Ref_Incompatible) { 4970 ConvOvlResult = TryRefInitWithConversionFunction( 4971 S, Entity, Kind, Initializer, /*AllowRValues*/ true, 4972 /*IsLValueRef*/ isLValueRef, Sequence); 4973 if (ConvOvlResult) 4974 Sequence.SetOverloadFailure( 4975 InitializationSequence::FK_ReferenceInitOverloadFailed, 4976 ConvOvlResult); 4977 4978 return; 4979 } 4980 4981 if (RefRelationship == Sema::Ref_Compatible && 4982 isRValueRef && InitCategory.isLValue()) { 4983 Sequence.SetFailed( 4984 InitializationSequence::FK_RValueReferenceBindingToLValue); 4985 return; 4986 } 4987 4988 Sequence.SetFailed(InitializationSequence::FK_ReferenceInitDropsQualifiers); 4989 return; 4990 } 4991 4992 // - Otherwise, a temporary of type "cv1 T1" is created and initialized 4993 // from the initializer expression using the rules for a non-reference 4994 // copy-initialization (8.5). The reference is then bound to the 4995 // temporary. [...] 4996 4997 // Ignore address space of reference type at this point and perform address 4998 // space conversion after the reference binding step. 4999 QualType cv1T1IgnoreAS = 5000 T1Quals.hasAddressSpace() 5001 ? S.Context.getQualifiedType(T1, T1Quals.withoutAddressSpace()) 5002 : cv1T1; 5003 5004 InitializedEntity TempEntity = 5005 InitializedEntity::InitializeTemporary(cv1T1IgnoreAS); 5006 5007 // FIXME: Why do we use an implicit conversion here rather than trying 5008 // copy-initialization? 5009 ImplicitConversionSequence ICS 5010 = S.TryImplicitConversion(Initializer, TempEntity.getType(), 5011 /*SuppressUserConversions=*/false, 5012 Sema::AllowedExplicit::None, 5013 /*FIXME:InOverloadResolution=*/false, 5014 /*CStyle=*/Kind.isCStyleOrFunctionalCast(), 5015 /*AllowObjCWritebackConversion=*/false); 5016 5017 if (ICS.isBad()) { 5018 // FIXME: Use the conversion function set stored in ICS to turn 5019 // this into an overloading ambiguity diagnostic. However, we need 5020 // to keep that set as an OverloadCandidateSet rather than as some 5021 // other kind of set. 5022 if (ConvOvlResult && !Sequence.getFailedCandidateSet().empty()) 5023 Sequence.SetOverloadFailure( 5024 InitializationSequence::FK_ReferenceInitOverloadFailed, 5025 ConvOvlResult); 5026 else if (S.Context.getCanonicalType(T2) == S.Context.OverloadTy) 5027 Sequence.SetFailed(InitializationSequence::FK_AddressOfOverloadFailed); 5028 else 5029 Sequence.SetFailed(InitializationSequence::FK_ReferenceInitFailed); 5030 return; 5031 } else { 5032 Sequence.AddConversionSequenceStep(ICS, TempEntity.getType()); 5033 } 5034 5035 // [...] If T1 is reference-related to T2, cv1 must be the 5036 // same cv-qualification as, or greater cv-qualification 5037 // than, cv2; otherwise, the program is ill-formed. 5038 unsigned T1CVRQuals = T1Quals.getCVRQualifiers(); 5039 unsigned T2CVRQuals = T2Quals.getCVRQualifiers(); 5040 if ((RefRelationship == Sema::Ref_Related && 5041 (T1CVRQuals | T2CVRQuals) != T1CVRQuals) || 5042 !T1Quals.isAddressSpaceSupersetOf(T2Quals)) { 5043 Sequence.SetFailed(InitializationSequence::FK_ReferenceInitDropsQualifiers); 5044 return; 5045 } 5046 5047 // [...] If T1 is reference-related to T2 and the reference is an rvalue 5048 // reference, the initializer expression shall not be an lvalue. 5049 if (RefRelationship >= Sema::Ref_Related && !isLValueRef && 5050 InitCategory.isLValue()) { 5051 Sequence.SetFailed( 5052 InitializationSequence::FK_RValueReferenceBindingToLValue); 5053 return; 5054 } 5055 5056 Sequence.AddReferenceBindingStep(cv1T1IgnoreAS, /*BindingTemporary=*/true); 5057 5058 if (T1Quals.hasAddressSpace()) { 5059 if (!Qualifiers::isAddressSpaceSupersetOf(T1Quals.getAddressSpace(), 5060 LangAS::Default)) { 5061 Sequence.SetFailed( 5062 InitializationSequence::FK_ReferenceAddrspaceMismatchTemporary); 5063 return; 5064 } 5065 Sequence.AddQualificationConversionStep(cv1T1, isLValueRef ? VK_LValue 5066 : VK_XValue); 5067 } 5068 } 5069 5070 /// Attempt character array initialization from a string literal 5071 /// (C++ [dcl.init.string], C99 6.7.8). 5072 static void TryStringLiteralInitialization(Sema &S, 5073 const InitializedEntity &Entity, 5074 const InitializationKind &Kind, 5075 Expr *Initializer, 5076 InitializationSequence &Sequence) { 5077 Sequence.AddStringInitStep(Entity.getType()); 5078 } 5079 5080 /// Attempt value initialization (C++ [dcl.init]p7). 5081 static void TryValueInitialization(Sema &S, 5082 const InitializedEntity &Entity, 5083 const InitializationKind &Kind, 5084 InitializationSequence &Sequence, 5085 InitListExpr *InitList) { 5086 assert((!InitList || InitList->getNumInits() == 0) && 5087 "Shouldn't use value-init for non-empty init lists"); 5088 5089 // C++98 [dcl.init]p5, C++11 [dcl.init]p7: 5090 // 5091 // To value-initialize an object of type T means: 5092 QualType T = Entity.getType(); 5093 5094 // -- if T is an array type, then each element is value-initialized; 5095 T = S.Context.getBaseElementType(T); 5096 5097 if (const RecordType *RT = T->getAs<RecordType>()) { 5098 if (CXXRecordDecl *ClassDecl = dyn_cast<CXXRecordDecl>(RT->getDecl())) { 5099 bool NeedZeroInitialization = true; 5100 // C++98: 5101 // -- if T is a class type (clause 9) with a user-declared constructor 5102 // (12.1), then the default constructor for T is called (and the 5103 // initialization is ill-formed if T has no accessible default 5104 // constructor); 5105 // C++11: 5106 // -- if T is a class type (clause 9) with either no default constructor 5107 // (12.1 [class.ctor]) or a default constructor that is user-provided 5108 // or deleted, then the object is default-initialized; 5109 // 5110 // Note that the C++11 rule is the same as the C++98 rule if there are no 5111 // defaulted or deleted constructors, so we just use it unconditionally. 5112 CXXConstructorDecl *CD = S.LookupDefaultConstructor(ClassDecl); 5113 if (!CD || !CD->getCanonicalDecl()->isDefaulted() || CD->isDeleted()) 5114 NeedZeroInitialization = false; 5115 5116 // -- if T is a (possibly cv-qualified) non-union class type without a 5117 // user-provided or deleted default constructor, then the object is 5118 // zero-initialized and, if T has a non-trivial default constructor, 5119 // default-initialized; 5120 // The 'non-union' here was removed by DR1502. The 'non-trivial default 5121 // constructor' part was removed by DR1507. 5122 if (NeedZeroInitialization) 5123 Sequence.AddZeroInitializationStep(Entity.getType()); 5124 5125 // C++03: 5126 // -- if T is a non-union class type without a user-declared constructor, 5127 // then every non-static data member and base class component of T is 5128 // value-initialized; 5129 // [...] A program that calls for [...] value-initialization of an 5130 // entity of reference type is ill-formed. 5131 // 5132 // C++11 doesn't need this handling, because value-initialization does not 5133 // occur recursively there, and the implicit default constructor is 5134 // defined as deleted in the problematic cases. 5135 if (!S.getLangOpts().CPlusPlus11 && 5136 ClassDecl->hasUninitializedReferenceMember()) { 5137 Sequence.SetFailed(InitializationSequence::FK_TooManyInitsForReference); 5138 return; 5139 } 5140 5141 // If this is list-value-initialization, pass the empty init list on when 5142 // building the constructor call. This affects the semantics of a few 5143 // things (such as whether an explicit default constructor can be called). 5144 Expr *InitListAsExpr = InitList; 5145 MultiExprArg Args(&InitListAsExpr, InitList ? 1 : 0); 5146 bool InitListSyntax = InitList; 5147 5148 // FIXME: Instead of creating a CXXConstructExpr of array type here, 5149 // wrap a class-typed CXXConstructExpr in an ArrayInitLoopExpr. 5150 return TryConstructorInitialization( 5151 S, Entity, Kind, Args, T, Entity.getType(), Sequence, InitListSyntax); 5152 } 5153 } 5154 5155 Sequence.AddZeroInitializationStep(Entity.getType()); 5156 } 5157 5158 /// Attempt default initialization (C++ [dcl.init]p6). 5159 static void TryDefaultInitialization(Sema &S, 5160 const InitializedEntity &Entity, 5161 const InitializationKind &Kind, 5162 InitializationSequence &Sequence) { 5163 assert(Kind.getKind() == InitializationKind::IK_Default); 5164 5165 // C++ [dcl.init]p6: 5166 // To default-initialize an object of type T means: 5167 // - if T is an array type, each element is default-initialized; 5168 QualType DestType = S.Context.getBaseElementType(Entity.getType()); 5169 5170 // - if T is a (possibly cv-qualified) class type (Clause 9), the default 5171 // constructor for T is called (and the initialization is ill-formed if 5172 // T has no accessible default constructor); 5173 if (DestType->isRecordType() && S.getLangOpts().CPlusPlus) { 5174 TryConstructorInitialization(S, Entity, Kind, None, DestType, 5175 Entity.getType(), Sequence); 5176 return; 5177 } 5178 5179 // - otherwise, no initialization is performed. 5180 5181 // If a program calls for the default initialization of an object of 5182 // a const-qualified type T, T shall be a class type with a user-provided 5183 // default constructor. 5184 if (DestType.isConstQualified() && S.getLangOpts().CPlusPlus) { 5185 if (!maybeRecoverWithZeroInitialization(S, Sequence, Entity)) 5186 Sequence.SetFailed(InitializationSequence::FK_DefaultInitOfConst); 5187 return; 5188 } 5189 5190 // If the destination type has a lifetime property, zero-initialize it. 5191 if (DestType.getQualifiers().hasObjCLifetime()) { 5192 Sequence.AddZeroInitializationStep(Entity.getType()); 5193 return; 5194 } 5195 } 5196 5197 /// Attempt a user-defined conversion between two types (C++ [dcl.init]), 5198 /// which enumerates all conversion functions and performs overload resolution 5199 /// to select the best. 5200 static void TryUserDefinedConversion(Sema &S, 5201 QualType DestType, 5202 const InitializationKind &Kind, 5203 Expr *Initializer, 5204 InitializationSequence &Sequence, 5205 bool TopLevelOfInitList) { 5206 assert(!DestType->isReferenceType() && "References are handled elsewhere"); 5207 QualType SourceType = Initializer->getType(); 5208 assert((DestType->isRecordType() || SourceType->isRecordType()) && 5209 "Must have a class type to perform a user-defined conversion"); 5210 5211 // Build the candidate set directly in the initialization sequence 5212 // structure, so that it will persist if we fail. 5213 OverloadCandidateSet &CandidateSet = Sequence.getFailedCandidateSet(); 5214 CandidateSet.clear(OverloadCandidateSet::CSK_InitByUserDefinedConversion); 5215 CandidateSet.setDestAS(DestType.getQualifiers().getAddressSpace()); 5216 5217 // Determine whether we are allowed to call explicit constructors or 5218 // explicit conversion operators. 5219 bool AllowExplicit = Kind.AllowExplicit(); 5220 5221 if (const RecordType *DestRecordType = DestType->getAs<RecordType>()) { 5222 // The type we're converting to is a class type. Enumerate its constructors 5223 // to see if there is a suitable conversion. 5224 CXXRecordDecl *DestRecordDecl 5225 = cast<CXXRecordDecl>(DestRecordType->getDecl()); 5226 5227 // Try to complete the type we're converting to. 5228 if (S.isCompleteType(Kind.getLocation(), DestType)) { 5229 for (NamedDecl *D : S.LookupConstructors(DestRecordDecl)) { 5230 auto Info = getConstructorInfo(D); 5231 if (!Info.Constructor) 5232 continue; 5233 5234 if (!Info.Constructor->isInvalidDecl() && 5235 Info.Constructor->isConvertingConstructor(/*AllowExplicit*/true)) { 5236 if (Info.ConstructorTmpl) 5237 S.AddTemplateOverloadCandidate( 5238 Info.ConstructorTmpl, Info.FoundDecl, 5239 /*ExplicitArgs*/ nullptr, Initializer, CandidateSet, 5240 /*SuppressUserConversions=*/true, 5241 /*PartialOverloading*/ false, AllowExplicit); 5242 else 5243 S.AddOverloadCandidate(Info.Constructor, Info.FoundDecl, 5244 Initializer, CandidateSet, 5245 /*SuppressUserConversions=*/true, 5246 /*PartialOverloading*/ false, AllowExplicit); 5247 } 5248 } 5249 } 5250 } 5251 5252 SourceLocation DeclLoc = Initializer->getBeginLoc(); 5253 5254 if (const RecordType *SourceRecordType = SourceType->getAs<RecordType>()) { 5255 // The type we're converting from is a class type, enumerate its conversion 5256 // functions. 5257 5258 // We can only enumerate the conversion functions for a complete type; if 5259 // the type isn't complete, simply skip this step. 5260 if (S.isCompleteType(DeclLoc, SourceType)) { 5261 CXXRecordDecl *SourceRecordDecl 5262 = cast<CXXRecordDecl>(SourceRecordType->getDecl()); 5263 5264 const auto &Conversions = 5265 SourceRecordDecl->getVisibleConversionFunctions(); 5266 for (auto I = Conversions.begin(), E = Conversions.end(); I != E; ++I) { 5267 NamedDecl *D = *I; 5268 CXXRecordDecl *ActingDC = cast<CXXRecordDecl>(D->getDeclContext()); 5269 if (isa<UsingShadowDecl>(D)) 5270 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 5271 5272 FunctionTemplateDecl *ConvTemplate = dyn_cast<FunctionTemplateDecl>(D); 5273 CXXConversionDecl *Conv; 5274 if (ConvTemplate) 5275 Conv = cast<CXXConversionDecl>(ConvTemplate->getTemplatedDecl()); 5276 else 5277 Conv = cast<CXXConversionDecl>(D); 5278 5279 if (ConvTemplate) 5280 S.AddTemplateConversionCandidate( 5281 ConvTemplate, I.getPair(), ActingDC, Initializer, DestType, 5282 CandidateSet, AllowExplicit, AllowExplicit); 5283 else 5284 S.AddConversionCandidate(Conv, I.getPair(), ActingDC, Initializer, 5285 DestType, CandidateSet, AllowExplicit, 5286 AllowExplicit); 5287 } 5288 } 5289 } 5290 5291 // Perform overload resolution. If it fails, return the failed result. 5292 OverloadCandidateSet::iterator Best; 5293 if (OverloadingResult Result 5294 = CandidateSet.BestViableFunction(S, DeclLoc, Best)) { 5295 Sequence.SetOverloadFailure( 5296 InitializationSequence::FK_UserConversionOverloadFailed, Result); 5297 5298 // [class.copy.elision]p3: 5299 // In some copy-initialization contexts, a two-stage overload resolution 5300 // is performed. 5301 // If the first overload resolution selects a deleted function, we also 5302 // need the initialization sequence to decide whether to perform the second 5303 // overload resolution. 5304 if (!(Result == OR_Deleted && 5305 Kind.getKind() == InitializationKind::IK_Copy)) 5306 return; 5307 } 5308 5309 FunctionDecl *Function = Best->Function; 5310 Function->setReferenced(); 5311 bool HadMultipleCandidates = (CandidateSet.size() > 1); 5312 5313 if (isa<CXXConstructorDecl>(Function)) { 5314 // Add the user-defined conversion step. Any cv-qualification conversion is 5315 // subsumed by the initialization. Per DR5, the created temporary is of the 5316 // cv-unqualified type of the destination. 5317 Sequence.AddUserConversionStep(Function, Best->FoundDecl, 5318 DestType.getUnqualifiedType(), 5319 HadMultipleCandidates); 5320 5321 // C++14 and before: 5322 // - if the function is a constructor, the call initializes a temporary 5323 // of the cv-unqualified version of the destination type. The [...] 5324 // temporary [...] is then used to direct-initialize, according to the 5325 // rules above, the object that is the destination of the 5326 // copy-initialization. 5327 // Note that this just performs a simple object copy from the temporary. 5328 // 5329 // C++17: 5330 // - if the function is a constructor, the call is a prvalue of the 5331 // cv-unqualified version of the destination type whose return object 5332 // is initialized by the constructor. The call is used to 5333 // direct-initialize, according to the rules above, the object that 5334 // is the destination of the copy-initialization. 5335 // Therefore we need to do nothing further. 5336 // 5337 // FIXME: Mark this copy as extraneous. 5338 if (!S.getLangOpts().CPlusPlus17) 5339 Sequence.AddFinalCopy(DestType); 5340 else if (DestType.hasQualifiers()) 5341 Sequence.AddQualificationConversionStep(DestType, VK_RValue); 5342 return; 5343 } 5344 5345 // Add the user-defined conversion step that calls the conversion function. 5346 QualType ConvType = Function->getCallResultType(); 5347 Sequence.AddUserConversionStep(Function, Best->FoundDecl, ConvType, 5348 HadMultipleCandidates); 5349 5350 if (ConvType->getAs<RecordType>()) { 5351 // The call is used to direct-initialize [...] the object that is the 5352 // destination of the copy-initialization. 5353 // 5354 // In C++17, this does not call a constructor if we enter /17.6.1: 5355 // - If the initializer expression is a prvalue and the cv-unqualified 5356 // version of the source type is the same as the class of the 5357 // destination [... do not make an extra copy] 5358 // 5359 // FIXME: Mark this copy as extraneous. 5360 if (!S.getLangOpts().CPlusPlus17 || 5361 Function->getReturnType()->isReferenceType() || 5362 !S.Context.hasSameUnqualifiedType(ConvType, DestType)) 5363 Sequence.AddFinalCopy(DestType); 5364 else if (!S.Context.hasSameType(ConvType, DestType)) 5365 Sequence.AddQualificationConversionStep(DestType, VK_RValue); 5366 return; 5367 } 5368 5369 // If the conversion following the call to the conversion function 5370 // is interesting, add it as a separate step. 5371 if (Best->FinalConversion.First || Best->FinalConversion.Second || 5372 Best->FinalConversion.Third) { 5373 ImplicitConversionSequence ICS; 5374 ICS.setStandard(); 5375 ICS.Standard = Best->FinalConversion; 5376 Sequence.AddConversionSequenceStep(ICS, DestType, TopLevelOfInitList); 5377 } 5378 } 5379 5380 /// An egregious hack for compatibility with libstdc++-4.2: in <tr1/hashtable>, 5381 /// a function with a pointer return type contains a 'return false;' statement. 5382 /// In C++11, 'false' is not a null pointer, so this breaks the build of any 5383 /// code using that header. 5384 /// 5385 /// Work around this by treating 'return false;' as zero-initializing the result 5386 /// if it's used in a pointer-returning function in a system header. 5387 static bool isLibstdcxxPointerReturnFalseHack(Sema &S, 5388 const InitializedEntity &Entity, 5389 const Expr *Init) { 5390 return S.getLangOpts().CPlusPlus11 && 5391 Entity.getKind() == InitializedEntity::EK_Result && 5392 Entity.getType()->isPointerType() && 5393 isa<CXXBoolLiteralExpr>(Init) && 5394 !cast<CXXBoolLiteralExpr>(Init)->getValue() && 5395 S.getSourceManager().isInSystemHeader(Init->getExprLoc()); 5396 } 5397 5398 /// The non-zero enum values here are indexes into diagnostic alternatives. 5399 enum InvalidICRKind { IIK_okay, IIK_nonlocal, IIK_nonscalar }; 5400 5401 /// Determines whether this expression is an acceptable ICR source. 5402 static InvalidICRKind isInvalidICRSource(ASTContext &C, Expr *e, 5403 bool isAddressOf, bool &isWeakAccess) { 5404 // Skip parens. 5405 e = e->IgnoreParens(); 5406 5407 // Skip address-of nodes. 5408 if (UnaryOperator *op = dyn_cast<UnaryOperator>(e)) { 5409 if (op->getOpcode() == UO_AddrOf) 5410 return isInvalidICRSource(C, op->getSubExpr(), /*addressof*/ true, 5411 isWeakAccess); 5412 5413 // Skip certain casts. 5414 } else if (CastExpr *ce = dyn_cast<CastExpr>(e)) { 5415 switch (ce->getCastKind()) { 5416 case CK_Dependent: 5417 case CK_BitCast: 5418 case CK_LValueBitCast: 5419 case CK_NoOp: 5420 return isInvalidICRSource(C, ce->getSubExpr(), isAddressOf, isWeakAccess); 5421 5422 case CK_ArrayToPointerDecay: 5423 return IIK_nonscalar; 5424 5425 case CK_NullToPointer: 5426 return IIK_okay; 5427 5428 default: 5429 break; 5430 } 5431 5432 // If we have a declaration reference, it had better be a local variable. 5433 } else if (isa<DeclRefExpr>(e)) { 5434 // set isWeakAccess to true, to mean that there will be an implicit 5435 // load which requires a cleanup. 5436 if (e->getType().getObjCLifetime() == Qualifiers::OCL_Weak) 5437 isWeakAccess = true; 5438 5439 if (!isAddressOf) return IIK_nonlocal; 5440 5441 VarDecl *var = dyn_cast<VarDecl>(cast<DeclRefExpr>(e)->getDecl()); 5442 if (!var) return IIK_nonlocal; 5443 5444 return (var->hasLocalStorage() ? IIK_okay : IIK_nonlocal); 5445 5446 // If we have a conditional operator, check both sides. 5447 } else if (ConditionalOperator *cond = dyn_cast<ConditionalOperator>(e)) { 5448 if (InvalidICRKind iik = isInvalidICRSource(C, cond->getLHS(), isAddressOf, 5449 isWeakAccess)) 5450 return iik; 5451 5452 return isInvalidICRSource(C, cond->getRHS(), isAddressOf, isWeakAccess); 5453 5454 // These are never scalar. 5455 } else if (isa<ArraySubscriptExpr>(e)) { 5456 return IIK_nonscalar; 5457 5458 // Otherwise, it needs to be a null pointer constant. 5459 } else { 5460 return (e->isNullPointerConstant(C, Expr::NPC_ValueDependentIsNull) 5461 ? IIK_okay : IIK_nonlocal); 5462 } 5463 5464 return IIK_nonlocal; 5465 } 5466 5467 /// Check whether the given expression is a valid operand for an 5468 /// indirect copy/restore. 5469 static void checkIndirectCopyRestoreSource(Sema &S, Expr *src) { 5470 assert(src->isRValue()); 5471 bool isWeakAccess = false; 5472 InvalidICRKind iik = isInvalidICRSource(S.Context, src, false, isWeakAccess); 5473 // If isWeakAccess to true, there will be an implicit 5474 // load which requires a cleanup. 5475 if (S.getLangOpts().ObjCAutoRefCount && isWeakAccess) 5476 S.Cleanup.setExprNeedsCleanups(true); 5477 5478 if (iik == IIK_okay) return; 5479 5480 S.Diag(src->getExprLoc(), diag::err_arc_nonlocal_writeback) 5481 << ((unsigned) iik - 1) // shift index into diagnostic explanations 5482 << src->getSourceRange(); 5483 } 5484 5485 /// Determine whether we have compatible array types for the 5486 /// purposes of GNU by-copy array initialization. 5487 static bool hasCompatibleArrayTypes(ASTContext &Context, const ArrayType *Dest, 5488 const ArrayType *Source) { 5489 // If the source and destination array types are equivalent, we're 5490 // done. 5491 if (Context.hasSameType(QualType(Dest, 0), QualType(Source, 0))) 5492 return true; 5493 5494 // Make sure that the element types are the same. 5495 if (!Context.hasSameType(Dest->getElementType(), Source->getElementType())) 5496 return false; 5497 5498 // The only mismatch we allow is when the destination is an 5499 // incomplete array type and the source is a constant array type. 5500 return Source->isConstantArrayType() && Dest->isIncompleteArrayType(); 5501 } 5502 5503 static bool tryObjCWritebackConversion(Sema &S, 5504 InitializationSequence &Sequence, 5505 const InitializedEntity &Entity, 5506 Expr *Initializer) { 5507 bool ArrayDecay = false; 5508 QualType ArgType = Initializer->getType(); 5509 QualType ArgPointee; 5510 if (const ArrayType *ArgArrayType = S.Context.getAsArrayType(ArgType)) { 5511 ArrayDecay = true; 5512 ArgPointee = ArgArrayType->getElementType(); 5513 ArgType = S.Context.getPointerType(ArgPointee); 5514 } 5515 5516 // Handle write-back conversion. 5517 QualType ConvertedArgType; 5518 if (!S.isObjCWritebackConversion(ArgType, Entity.getType(), 5519 ConvertedArgType)) 5520 return false; 5521 5522 // We should copy unless we're passing to an argument explicitly 5523 // marked 'out'. 5524 bool ShouldCopy = true; 5525 if (ParmVarDecl *param = cast_or_null<ParmVarDecl>(Entity.getDecl())) 5526 ShouldCopy = (param->getObjCDeclQualifier() != ParmVarDecl::OBJC_TQ_Out); 5527 5528 // Do we need an lvalue conversion? 5529 if (ArrayDecay || Initializer->isGLValue()) { 5530 ImplicitConversionSequence ICS; 5531 ICS.setStandard(); 5532 ICS.Standard.setAsIdentityConversion(); 5533 5534 QualType ResultType; 5535 if (ArrayDecay) { 5536 ICS.Standard.First = ICK_Array_To_Pointer; 5537 ResultType = S.Context.getPointerType(ArgPointee); 5538 } else { 5539 ICS.Standard.First = ICK_Lvalue_To_Rvalue; 5540 ResultType = Initializer->getType().getNonLValueExprType(S.Context); 5541 } 5542 5543 Sequence.AddConversionSequenceStep(ICS, ResultType); 5544 } 5545 5546 Sequence.AddPassByIndirectCopyRestoreStep(Entity.getType(), ShouldCopy); 5547 return true; 5548 } 5549 5550 static bool TryOCLSamplerInitialization(Sema &S, 5551 InitializationSequence &Sequence, 5552 QualType DestType, 5553 Expr *Initializer) { 5554 if (!S.getLangOpts().OpenCL || !DestType->isSamplerT() || 5555 (!Initializer->isIntegerConstantExpr(S.Context) && 5556 !Initializer->getType()->isSamplerT())) 5557 return false; 5558 5559 Sequence.AddOCLSamplerInitStep(DestType); 5560 return true; 5561 } 5562 5563 static bool IsZeroInitializer(Expr *Initializer, Sema &S) { 5564 return Initializer->isIntegerConstantExpr(S.getASTContext()) && 5565 (Initializer->EvaluateKnownConstInt(S.getASTContext()) == 0); 5566 } 5567 5568 static bool TryOCLZeroOpaqueTypeInitialization(Sema &S, 5569 InitializationSequence &Sequence, 5570 QualType DestType, 5571 Expr *Initializer) { 5572 if (!S.getLangOpts().OpenCL) 5573 return false; 5574 5575 // 5576 // OpenCL 1.2 spec, s6.12.10 5577 // 5578 // The event argument can also be used to associate the 5579 // async_work_group_copy with a previous async copy allowing 5580 // an event to be shared by multiple async copies; otherwise 5581 // event should be zero. 5582 // 5583 if (DestType->isEventT() || DestType->isQueueT()) { 5584 if (!IsZeroInitializer(Initializer, S)) 5585 return false; 5586 5587 Sequence.AddOCLZeroOpaqueTypeStep(DestType); 5588 return true; 5589 } 5590 5591 // We should allow zero initialization for all types defined in the 5592 // cl_intel_device_side_avc_motion_estimation extension, except 5593 // intel_sub_group_avc_mce_payload_t and intel_sub_group_avc_mce_result_t. 5594 if (S.getOpenCLOptions().isEnabled( 5595 "cl_intel_device_side_avc_motion_estimation") && 5596 DestType->isOCLIntelSubgroupAVCType()) { 5597 if (DestType->isOCLIntelSubgroupAVCMcePayloadType() || 5598 DestType->isOCLIntelSubgroupAVCMceResultType()) 5599 return false; 5600 if (!IsZeroInitializer(Initializer, S)) 5601 return false; 5602 5603 Sequence.AddOCLZeroOpaqueTypeStep(DestType); 5604 return true; 5605 } 5606 5607 return false; 5608 } 5609 5610 InitializationSequence::InitializationSequence( 5611 Sema &S, const InitializedEntity &Entity, const InitializationKind &Kind, 5612 MultiExprArg Args, bool TopLevelOfInitList, bool TreatUnavailableAsInvalid) 5613 : FailedOverloadResult(OR_Success), 5614 FailedCandidateSet(Kind.getLocation(), OverloadCandidateSet::CSK_Normal) { 5615 InitializeFrom(S, Entity, Kind, Args, TopLevelOfInitList, 5616 TreatUnavailableAsInvalid); 5617 } 5618 5619 /// Tries to get a FunctionDecl out of `E`. If it succeeds and we can take the 5620 /// address of that function, this returns true. Otherwise, it returns false. 5621 static bool isExprAnUnaddressableFunction(Sema &S, const Expr *E) { 5622 auto *DRE = dyn_cast<DeclRefExpr>(E); 5623 if (!DRE || !isa<FunctionDecl>(DRE->getDecl())) 5624 return false; 5625 5626 return !S.checkAddressOfFunctionIsAvailable( 5627 cast<FunctionDecl>(DRE->getDecl())); 5628 } 5629 5630 /// Determine whether we can perform an elementwise array copy for this kind 5631 /// of entity. 5632 static bool canPerformArrayCopy(const InitializedEntity &Entity) { 5633 switch (Entity.getKind()) { 5634 case InitializedEntity::EK_LambdaCapture: 5635 // C++ [expr.prim.lambda]p24: 5636 // For array members, the array elements are direct-initialized in 5637 // increasing subscript order. 5638 return true; 5639 5640 case InitializedEntity::EK_Variable: 5641 // C++ [dcl.decomp]p1: 5642 // [...] each element is copy-initialized or direct-initialized from the 5643 // corresponding element of the assignment-expression [...] 5644 return isa<DecompositionDecl>(Entity.getDecl()); 5645 5646 case InitializedEntity::EK_Member: 5647 // C++ [class.copy.ctor]p14: 5648 // - if the member is an array, each element is direct-initialized with 5649 // the corresponding subobject of x 5650 return Entity.isImplicitMemberInitializer(); 5651 5652 case InitializedEntity::EK_ArrayElement: 5653 // All the above cases are intended to apply recursively, even though none 5654 // of them actually say that. 5655 if (auto *E = Entity.getParent()) 5656 return canPerformArrayCopy(*E); 5657 break; 5658 5659 default: 5660 break; 5661 } 5662 5663 return false; 5664 } 5665 5666 void InitializationSequence::InitializeFrom(Sema &S, 5667 const InitializedEntity &Entity, 5668 const InitializationKind &Kind, 5669 MultiExprArg Args, 5670 bool TopLevelOfInitList, 5671 bool TreatUnavailableAsInvalid) { 5672 ASTContext &Context = S.Context; 5673 5674 // Eliminate non-overload placeholder types in the arguments. We 5675 // need to do this before checking whether types are dependent 5676 // because lowering a pseudo-object expression might well give us 5677 // something of dependent type. 5678 for (unsigned I = 0, E = Args.size(); I != E; ++I) 5679 if (Args[I]->getType()->isNonOverloadPlaceholderType()) { 5680 // FIXME: should we be doing this here? 5681 ExprResult result = S.CheckPlaceholderExpr(Args[I]); 5682 if (result.isInvalid()) { 5683 SetFailed(FK_PlaceholderType); 5684 return; 5685 } 5686 Args[I] = result.get(); 5687 } 5688 5689 // C++0x [dcl.init]p16: 5690 // The semantics of initializers are as follows. The destination type is 5691 // the type of the object or reference being initialized and the source 5692 // type is the type of the initializer expression. The source type is not 5693 // defined when the initializer is a braced-init-list or when it is a 5694 // parenthesized list of expressions. 5695 QualType DestType = Entity.getType(); 5696 5697 if (DestType->isDependentType() || 5698 Expr::hasAnyTypeDependentArguments(Args)) { 5699 SequenceKind = DependentSequence; 5700 return; 5701 } 5702 5703 // Almost everything is a normal sequence. 5704 setSequenceKind(NormalSequence); 5705 5706 QualType SourceType; 5707 Expr *Initializer = nullptr; 5708 if (Args.size() == 1) { 5709 Initializer = Args[0]; 5710 if (S.getLangOpts().ObjC) { 5711 if (S.CheckObjCBridgeRelatedConversions(Initializer->getBeginLoc(), 5712 DestType, Initializer->getType(), 5713 Initializer) || 5714 S.CheckConversionToObjCLiteral(DestType, Initializer)) 5715 Args[0] = Initializer; 5716 } 5717 if (!isa<InitListExpr>(Initializer)) 5718 SourceType = Initializer->getType(); 5719 } 5720 5721 // - If the initializer is a (non-parenthesized) braced-init-list, the 5722 // object is list-initialized (8.5.4). 5723 if (Kind.getKind() != InitializationKind::IK_Direct) { 5724 if (InitListExpr *InitList = dyn_cast_or_null<InitListExpr>(Initializer)) { 5725 TryListInitialization(S, Entity, Kind, InitList, *this, 5726 TreatUnavailableAsInvalid); 5727 return; 5728 } 5729 } 5730 5731 // - If the destination type is a reference type, see 8.5.3. 5732 if (DestType->isReferenceType()) { 5733 // C++0x [dcl.init.ref]p1: 5734 // A variable declared to be a T& or T&&, that is, "reference to type T" 5735 // (8.3.2), shall be initialized by an object, or function, of type T or 5736 // by an object that can be converted into a T. 5737 // (Therefore, multiple arguments are not permitted.) 5738 if (Args.size() != 1) 5739 SetFailed(FK_TooManyInitsForReference); 5740 // C++17 [dcl.init.ref]p5: 5741 // A reference [...] is initialized by an expression [...] as follows: 5742 // If the initializer is not an expression, presumably we should reject, 5743 // but the standard fails to actually say so. 5744 else if (isa<InitListExpr>(Args[0])) 5745 SetFailed(FK_ParenthesizedListInitForReference); 5746 else 5747 TryReferenceInitialization(S, Entity, Kind, Args[0], *this); 5748 return; 5749 } 5750 5751 // - If the initializer is (), the object is value-initialized. 5752 if (Kind.getKind() == InitializationKind::IK_Value || 5753 (Kind.getKind() == InitializationKind::IK_Direct && Args.empty())) { 5754 TryValueInitialization(S, Entity, Kind, *this); 5755 return; 5756 } 5757 5758 // Handle default initialization. 5759 if (Kind.getKind() == InitializationKind::IK_Default) { 5760 TryDefaultInitialization(S, Entity, Kind, *this); 5761 return; 5762 } 5763 5764 // - If the destination type is an array of characters, an array of 5765 // char16_t, an array of char32_t, or an array of wchar_t, and the 5766 // initializer is a string literal, see 8.5.2. 5767 // - Otherwise, if the destination type is an array, the program is 5768 // ill-formed. 5769 if (const ArrayType *DestAT = Context.getAsArrayType(DestType)) { 5770 if (Initializer && isa<VariableArrayType>(DestAT)) { 5771 SetFailed(FK_VariableLengthArrayHasInitializer); 5772 return; 5773 } 5774 5775 if (Initializer) { 5776 switch (IsStringInit(Initializer, DestAT, Context)) { 5777 case SIF_None: 5778 TryStringLiteralInitialization(S, Entity, Kind, Initializer, *this); 5779 return; 5780 case SIF_NarrowStringIntoWideChar: 5781 SetFailed(FK_NarrowStringIntoWideCharArray); 5782 return; 5783 case SIF_WideStringIntoChar: 5784 SetFailed(FK_WideStringIntoCharArray); 5785 return; 5786 case SIF_IncompatWideStringIntoWideChar: 5787 SetFailed(FK_IncompatWideStringIntoWideChar); 5788 return; 5789 case SIF_PlainStringIntoUTF8Char: 5790 SetFailed(FK_PlainStringIntoUTF8Char); 5791 return; 5792 case SIF_UTF8StringIntoPlainChar: 5793 SetFailed(FK_UTF8StringIntoPlainChar); 5794 return; 5795 case SIF_Other: 5796 break; 5797 } 5798 } 5799 5800 // Some kinds of initialization permit an array to be initialized from 5801 // another array of the same type, and perform elementwise initialization. 5802 if (Initializer && isa<ConstantArrayType>(DestAT) && 5803 S.Context.hasSameUnqualifiedType(Initializer->getType(), 5804 Entity.getType()) && 5805 canPerformArrayCopy(Entity)) { 5806 // If source is a prvalue, use it directly. 5807 if (Initializer->getValueKind() == VK_RValue) { 5808 AddArrayInitStep(DestType, /*IsGNUExtension*/false); 5809 return; 5810 } 5811 5812 // Emit element-at-a-time copy loop. 5813 InitializedEntity Element = 5814 InitializedEntity::InitializeElement(S.Context, 0, Entity); 5815 QualType InitEltT = 5816 Context.getAsArrayType(Initializer->getType())->getElementType(); 5817 OpaqueValueExpr OVE(Initializer->getExprLoc(), InitEltT, 5818 Initializer->getValueKind(), 5819 Initializer->getObjectKind()); 5820 Expr *OVEAsExpr = &OVE; 5821 InitializeFrom(S, Element, Kind, OVEAsExpr, TopLevelOfInitList, 5822 TreatUnavailableAsInvalid); 5823 if (!Failed()) 5824 AddArrayInitLoopStep(Entity.getType(), InitEltT); 5825 return; 5826 } 5827 5828 // Note: as an GNU C extension, we allow initialization of an 5829 // array from a compound literal that creates an array of the same 5830 // type, so long as the initializer has no side effects. 5831 if (!S.getLangOpts().CPlusPlus && Initializer && 5832 isa<CompoundLiteralExpr>(Initializer->IgnoreParens()) && 5833 Initializer->getType()->isArrayType()) { 5834 const ArrayType *SourceAT 5835 = Context.getAsArrayType(Initializer->getType()); 5836 if (!hasCompatibleArrayTypes(S.Context, DestAT, SourceAT)) 5837 SetFailed(FK_ArrayTypeMismatch); 5838 else if (Initializer->HasSideEffects(S.Context)) 5839 SetFailed(FK_NonConstantArrayInit); 5840 else { 5841 AddArrayInitStep(DestType, /*IsGNUExtension*/true); 5842 } 5843 } 5844 // Note: as a GNU C++ extension, we allow list-initialization of a 5845 // class member of array type from a parenthesized initializer list. 5846 else if (S.getLangOpts().CPlusPlus && 5847 Entity.getKind() == InitializedEntity::EK_Member && 5848 Initializer && isa<InitListExpr>(Initializer)) { 5849 TryListInitialization(S, Entity, Kind, cast<InitListExpr>(Initializer), 5850 *this, TreatUnavailableAsInvalid); 5851 AddParenthesizedArrayInitStep(DestType); 5852 } else if (DestAT->getElementType()->isCharType()) 5853 SetFailed(FK_ArrayNeedsInitListOrStringLiteral); 5854 else if (IsWideCharCompatible(DestAT->getElementType(), Context)) 5855 SetFailed(FK_ArrayNeedsInitListOrWideStringLiteral); 5856 else 5857 SetFailed(FK_ArrayNeedsInitList); 5858 5859 return; 5860 } 5861 5862 // Determine whether we should consider writeback conversions for 5863 // Objective-C ARC. 5864 bool allowObjCWritebackConversion = S.getLangOpts().ObjCAutoRefCount && 5865 Entity.isParameterKind(); 5866 5867 if (TryOCLSamplerInitialization(S, *this, DestType, Initializer)) 5868 return; 5869 5870 // We're at the end of the line for C: it's either a write-back conversion 5871 // or it's a C assignment. There's no need to check anything else. 5872 if (!S.getLangOpts().CPlusPlus) { 5873 // If allowed, check whether this is an Objective-C writeback conversion. 5874 if (allowObjCWritebackConversion && 5875 tryObjCWritebackConversion(S, *this, Entity, Initializer)) { 5876 return; 5877 } 5878 5879 if (TryOCLZeroOpaqueTypeInitialization(S, *this, DestType, Initializer)) 5880 return; 5881 5882 // Handle initialization in C 5883 AddCAssignmentStep(DestType); 5884 MaybeProduceObjCObject(S, *this, Entity); 5885 return; 5886 } 5887 5888 assert(S.getLangOpts().CPlusPlus); 5889 5890 // - If the destination type is a (possibly cv-qualified) class type: 5891 if (DestType->isRecordType()) { 5892 // - If the initialization is direct-initialization, or if it is 5893 // copy-initialization where the cv-unqualified version of the 5894 // source type is the same class as, or a derived class of, the 5895 // class of the destination, constructors are considered. [...] 5896 if (Kind.getKind() == InitializationKind::IK_Direct || 5897 (Kind.getKind() == InitializationKind::IK_Copy && 5898 (Context.hasSameUnqualifiedType(SourceType, DestType) || 5899 S.IsDerivedFrom(Initializer->getBeginLoc(), SourceType, DestType)))) 5900 TryConstructorInitialization(S, Entity, Kind, Args, 5901 DestType, DestType, *this); 5902 // - Otherwise (i.e., for the remaining copy-initialization cases), 5903 // user-defined conversion sequences that can convert from the source 5904 // type to the destination type or (when a conversion function is 5905 // used) to a derived class thereof are enumerated as described in 5906 // 13.3.1.4, and the best one is chosen through overload resolution 5907 // (13.3). 5908 else 5909 TryUserDefinedConversion(S, DestType, Kind, Initializer, *this, 5910 TopLevelOfInitList); 5911 return; 5912 } 5913 5914 assert(Args.size() >= 1 && "Zero-argument case handled above"); 5915 5916 // The remaining cases all need a source type. 5917 if (Args.size() > 1) { 5918 SetFailed(FK_TooManyInitsForScalar); 5919 return; 5920 } else if (isa<InitListExpr>(Args[0])) { 5921 SetFailed(FK_ParenthesizedListInitForScalar); 5922 return; 5923 } 5924 5925 // - Otherwise, if the source type is a (possibly cv-qualified) class 5926 // type, conversion functions are considered. 5927 if (!SourceType.isNull() && SourceType->isRecordType()) { 5928 // For a conversion to _Atomic(T) from either T or a class type derived 5929 // from T, initialize the T object then convert to _Atomic type. 5930 bool NeedAtomicConversion = false; 5931 if (const AtomicType *Atomic = DestType->getAs<AtomicType>()) { 5932 if (Context.hasSameUnqualifiedType(SourceType, Atomic->getValueType()) || 5933 S.IsDerivedFrom(Initializer->getBeginLoc(), SourceType, 5934 Atomic->getValueType())) { 5935 DestType = Atomic->getValueType(); 5936 NeedAtomicConversion = true; 5937 } 5938 } 5939 5940 TryUserDefinedConversion(S, DestType, Kind, Initializer, *this, 5941 TopLevelOfInitList); 5942 MaybeProduceObjCObject(S, *this, Entity); 5943 if (!Failed() && NeedAtomicConversion) 5944 AddAtomicConversionStep(Entity.getType()); 5945 return; 5946 } 5947 5948 // - Otherwise, if the initialization is direct-initialization, the source 5949 // type is std::nullptr_t, and the destination type is bool, the initial 5950 // value of the object being initialized is false. 5951 if (!SourceType.isNull() && SourceType->isNullPtrType() && 5952 DestType->isBooleanType() && 5953 Kind.getKind() == InitializationKind::IK_Direct) { 5954 AddConversionSequenceStep( 5955 ImplicitConversionSequence::getNullptrToBool(SourceType, DestType, 5956 Initializer->isGLValue()), 5957 DestType); 5958 return; 5959 } 5960 5961 // - Otherwise, the initial value of the object being initialized is the 5962 // (possibly converted) value of the initializer expression. Standard 5963 // conversions (Clause 4) will be used, if necessary, to convert the 5964 // initializer expression to the cv-unqualified version of the 5965 // destination type; no user-defined conversions are considered. 5966 5967 ImplicitConversionSequence ICS 5968 = S.TryImplicitConversion(Initializer, DestType, 5969 /*SuppressUserConversions*/true, 5970 Sema::AllowedExplicit::None, 5971 /*InOverloadResolution*/ false, 5972 /*CStyle=*/Kind.isCStyleOrFunctionalCast(), 5973 allowObjCWritebackConversion); 5974 5975 if (ICS.isStandard() && 5976 ICS.Standard.Second == ICK_Writeback_Conversion) { 5977 // Objective-C ARC writeback conversion. 5978 5979 // We should copy unless we're passing to an argument explicitly 5980 // marked 'out'. 5981 bool ShouldCopy = true; 5982 if (ParmVarDecl *Param = cast_or_null<ParmVarDecl>(Entity.getDecl())) 5983 ShouldCopy = (Param->getObjCDeclQualifier() != ParmVarDecl::OBJC_TQ_Out); 5984 5985 // If there was an lvalue adjustment, add it as a separate conversion. 5986 if (ICS.Standard.First == ICK_Array_To_Pointer || 5987 ICS.Standard.First == ICK_Lvalue_To_Rvalue) { 5988 ImplicitConversionSequence LvalueICS; 5989 LvalueICS.setStandard(); 5990 LvalueICS.Standard.setAsIdentityConversion(); 5991 LvalueICS.Standard.setAllToTypes(ICS.Standard.getToType(0)); 5992 LvalueICS.Standard.First = ICS.Standard.First; 5993 AddConversionSequenceStep(LvalueICS, ICS.Standard.getToType(0)); 5994 } 5995 5996 AddPassByIndirectCopyRestoreStep(DestType, ShouldCopy); 5997 } else if (ICS.isBad()) { 5998 DeclAccessPair dap; 5999 if (isLibstdcxxPointerReturnFalseHack(S, Entity, Initializer)) { 6000 AddZeroInitializationStep(Entity.getType()); 6001 } else if (Initializer->getType() == Context.OverloadTy && 6002 !S.ResolveAddressOfOverloadedFunction(Initializer, DestType, 6003 false, dap)) 6004 SetFailed(InitializationSequence::FK_AddressOfOverloadFailed); 6005 else if (Initializer->getType()->isFunctionType() && 6006 isExprAnUnaddressableFunction(S, Initializer)) 6007 SetFailed(InitializationSequence::FK_AddressOfUnaddressableFunction); 6008 else 6009 SetFailed(InitializationSequence::FK_ConversionFailed); 6010 } else { 6011 AddConversionSequenceStep(ICS, DestType, TopLevelOfInitList); 6012 6013 MaybeProduceObjCObject(S, *this, Entity); 6014 } 6015 } 6016 6017 InitializationSequence::~InitializationSequence() { 6018 for (auto &S : Steps) 6019 S.Destroy(); 6020 } 6021 6022 //===----------------------------------------------------------------------===// 6023 // Perform initialization 6024 //===----------------------------------------------------------------------===// 6025 static Sema::AssignmentAction 6026 getAssignmentAction(const InitializedEntity &Entity, bool Diagnose = false) { 6027 switch(Entity.getKind()) { 6028 case InitializedEntity::EK_Variable: 6029 case InitializedEntity::EK_New: 6030 case InitializedEntity::EK_Exception: 6031 case InitializedEntity::EK_Base: 6032 case InitializedEntity::EK_Delegating: 6033 return Sema::AA_Initializing; 6034 6035 case InitializedEntity::EK_Parameter: 6036 if (Entity.getDecl() && 6037 isa<ObjCMethodDecl>(Entity.getDecl()->getDeclContext())) 6038 return Sema::AA_Sending; 6039 6040 return Sema::AA_Passing; 6041 6042 case InitializedEntity::EK_Parameter_CF_Audited: 6043 if (Entity.getDecl() && 6044 isa<ObjCMethodDecl>(Entity.getDecl()->getDeclContext())) 6045 return Sema::AA_Sending; 6046 6047 return !Diagnose ? Sema::AA_Passing : Sema::AA_Passing_CFAudited; 6048 6049 case InitializedEntity::EK_Result: 6050 case InitializedEntity::EK_StmtExprResult: // FIXME: Not quite right. 6051 return Sema::AA_Returning; 6052 6053 case InitializedEntity::EK_Temporary: 6054 case InitializedEntity::EK_RelatedResult: 6055 // FIXME: Can we tell apart casting vs. converting? 6056 return Sema::AA_Casting; 6057 6058 case InitializedEntity::EK_TemplateParameter: 6059 // This is really initialization, but refer to it as conversion for 6060 // consistency with CheckConvertedConstantExpression. 6061 return Sema::AA_Converting; 6062 6063 case InitializedEntity::EK_Member: 6064 case InitializedEntity::EK_Binding: 6065 case InitializedEntity::EK_ArrayElement: 6066 case InitializedEntity::EK_VectorElement: 6067 case InitializedEntity::EK_ComplexElement: 6068 case InitializedEntity::EK_BlockElement: 6069 case InitializedEntity::EK_LambdaToBlockConversionBlockElement: 6070 case InitializedEntity::EK_LambdaCapture: 6071 case InitializedEntity::EK_CompoundLiteralInit: 6072 return Sema::AA_Initializing; 6073 } 6074 6075 llvm_unreachable("Invalid EntityKind!"); 6076 } 6077 6078 /// Whether we should bind a created object as a temporary when 6079 /// initializing the given entity. 6080 static bool shouldBindAsTemporary(const InitializedEntity &Entity) { 6081 switch (Entity.getKind()) { 6082 case InitializedEntity::EK_ArrayElement: 6083 case InitializedEntity::EK_Member: 6084 case InitializedEntity::EK_Result: 6085 case InitializedEntity::EK_StmtExprResult: 6086 case InitializedEntity::EK_New: 6087 case InitializedEntity::EK_Variable: 6088 case InitializedEntity::EK_Base: 6089 case InitializedEntity::EK_Delegating: 6090 case InitializedEntity::EK_VectorElement: 6091 case InitializedEntity::EK_ComplexElement: 6092 case InitializedEntity::EK_Exception: 6093 case InitializedEntity::EK_BlockElement: 6094 case InitializedEntity::EK_LambdaToBlockConversionBlockElement: 6095 case InitializedEntity::EK_LambdaCapture: 6096 case InitializedEntity::EK_CompoundLiteralInit: 6097 case InitializedEntity::EK_TemplateParameter: 6098 return false; 6099 6100 case InitializedEntity::EK_Parameter: 6101 case InitializedEntity::EK_Parameter_CF_Audited: 6102 case InitializedEntity::EK_Temporary: 6103 case InitializedEntity::EK_RelatedResult: 6104 case InitializedEntity::EK_Binding: 6105 return true; 6106 } 6107 6108 llvm_unreachable("missed an InitializedEntity kind?"); 6109 } 6110 6111 /// Whether the given entity, when initialized with an object 6112 /// created for that initialization, requires destruction. 6113 static bool shouldDestroyEntity(const InitializedEntity &Entity) { 6114 switch (Entity.getKind()) { 6115 case InitializedEntity::EK_Result: 6116 case InitializedEntity::EK_StmtExprResult: 6117 case InitializedEntity::EK_New: 6118 case InitializedEntity::EK_Base: 6119 case InitializedEntity::EK_Delegating: 6120 case InitializedEntity::EK_VectorElement: 6121 case InitializedEntity::EK_ComplexElement: 6122 case InitializedEntity::EK_BlockElement: 6123 case InitializedEntity::EK_LambdaToBlockConversionBlockElement: 6124 case InitializedEntity::EK_LambdaCapture: 6125 return false; 6126 6127 case InitializedEntity::EK_Member: 6128 case InitializedEntity::EK_Binding: 6129 case InitializedEntity::EK_Variable: 6130 case InitializedEntity::EK_Parameter: 6131 case InitializedEntity::EK_Parameter_CF_Audited: 6132 case InitializedEntity::EK_TemplateParameter: 6133 case InitializedEntity::EK_Temporary: 6134 case InitializedEntity::EK_ArrayElement: 6135 case InitializedEntity::EK_Exception: 6136 case InitializedEntity::EK_CompoundLiteralInit: 6137 case InitializedEntity::EK_RelatedResult: 6138 return true; 6139 } 6140 6141 llvm_unreachable("missed an InitializedEntity kind?"); 6142 } 6143 6144 /// Get the location at which initialization diagnostics should appear. 6145 static SourceLocation getInitializationLoc(const InitializedEntity &Entity, 6146 Expr *Initializer) { 6147 switch (Entity.getKind()) { 6148 case InitializedEntity::EK_Result: 6149 case InitializedEntity::EK_StmtExprResult: 6150 return Entity.getReturnLoc(); 6151 6152 case InitializedEntity::EK_Exception: 6153 return Entity.getThrowLoc(); 6154 6155 case InitializedEntity::EK_Variable: 6156 case InitializedEntity::EK_Binding: 6157 return Entity.getDecl()->getLocation(); 6158 6159 case InitializedEntity::EK_LambdaCapture: 6160 return Entity.getCaptureLoc(); 6161 6162 case InitializedEntity::EK_ArrayElement: 6163 case InitializedEntity::EK_Member: 6164 case InitializedEntity::EK_Parameter: 6165 case InitializedEntity::EK_Parameter_CF_Audited: 6166 case InitializedEntity::EK_TemplateParameter: 6167 case InitializedEntity::EK_Temporary: 6168 case InitializedEntity::EK_New: 6169 case InitializedEntity::EK_Base: 6170 case InitializedEntity::EK_Delegating: 6171 case InitializedEntity::EK_VectorElement: 6172 case InitializedEntity::EK_ComplexElement: 6173 case InitializedEntity::EK_BlockElement: 6174 case InitializedEntity::EK_LambdaToBlockConversionBlockElement: 6175 case InitializedEntity::EK_CompoundLiteralInit: 6176 case InitializedEntity::EK_RelatedResult: 6177 return Initializer->getBeginLoc(); 6178 } 6179 llvm_unreachable("missed an InitializedEntity kind?"); 6180 } 6181 6182 /// Make a (potentially elidable) temporary copy of the object 6183 /// provided by the given initializer by calling the appropriate copy 6184 /// constructor. 6185 /// 6186 /// \param S The Sema object used for type-checking. 6187 /// 6188 /// \param T The type of the temporary object, which must either be 6189 /// the type of the initializer expression or a superclass thereof. 6190 /// 6191 /// \param Entity The entity being initialized. 6192 /// 6193 /// \param CurInit The initializer expression. 6194 /// 6195 /// \param IsExtraneousCopy Whether this is an "extraneous" copy that 6196 /// is permitted in C++03 (but not C++0x) when binding a reference to 6197 /// an rvalue. 6198 /// 6199 /// \returns An expression that copies the initializer expression into 6200 /// a temporary object, or an error expression if a copy could not be 6201 /// created. 6202 static ExprResult CopyObject(Sema &S, 6203 QualType T, 6204 const InitializedEntity &Entity, 6205 ExprResult CurInit, 6206 bool IsExtraneousCopy) { 6207 if (CurInit.isInvalid()) 6208 return CurInit; 6209 // Determine which class type we're copying to. 6210 Expr *CurInitExpr = (Expr *)CurInit.get(); 6211 CXXRecordDecl *Class = nullptr; 6212 if (const RecordType *Record = T->getAs<RecordType>()) 6213 Class = cast<CXXRecordDecl>(Record->getDecl()); 6214 if (!Class) 6215 return CurInit; 6216 6217 SourceLocation Loc = getInitializationLoc(Entity, CurInit.get()); 6218 6219 // Make sure that the type we are copying is complete. 6220 if (S.RequireCompleteType(Loc, T, diag::err_temp_copy_incomplete)) 6221 return CurInit; 6222 6223 // Perform overload resolution using the class's constructors. Per 6224 // C++11 [dcl.init]p16, second bullet for class types, this initialization 6225 // is direct-initialization. 6226 OverloadCandidateSet CandidateSet(Loc, OverloadCandidateSet::CSK_Normal); 6227 DeclContext::lookup_result Ctors = S.LookupConstructors(Class); 6228 6229 OverloadCandidateSet::iterator Best; 6230 switch (ResolveConstructorOverload( 6231 S, Loc, CurInitExpr, CandidateSet, T, Ctors, Best, 6232 /*CopyInitializing=*/false, /*AllowExplicit=*/true, 6233 /*OnlyListConstructors=*/false, /*IsListInit=*/false, 6234 /*SecondStepOfCopyInit=*/true)) { 6235 case OR_Success: 6236 break; 6237 6238 case OR_No_Viable_Function: 6239 CandidateSet.NoteCandidates( 6240 PartialDiagnosticAt( 6241 Loc, S.PDiag(IsExtraneousCopy && !S.isSFINAEContext() 6242 ? diag::ext_rvalue_to_reference_temp_copy_no_viable 6243 : diag::err_temp_copy_no_viable) 6244 << (int)Entity.getKind() << CurInitExpr->getType() 6245 << CurInitExpr->getSourceRange()), 6246 S, OCD_AllCandidates, CurInitExpr); 6247 if (!IsExtraneousCopy || S.isSFINAEContext()) 6248 return ExprError(); 6249 return CurInit; 6250 6251 case OR_Ambiguous: 6252 CandidateSet.NoteCandidates( 6253 PartialDiagnosticAt(Loc, S.PDiag(diag::err_temp_copy_ambiguous) 6254 << (int)Entity.getKind() 6255 << CurInitExpr->getType() 6256 << CurInitExpr->getSourceRange()), 6257 S, OCD_AmbiguousCandidates, CurInitExpr); 6258 return ExprError(); 6259 6260 case OR_Deleted: 6261 S.Diag(Loc, diag::err_temp_copy_deleted) 6262 << (int)Entity.getKind() << CurInitExpr->getType() 6263 << CurInitExpr->getSourceRange(); 6264 S.NoteDeletedFunction(Best->Function); 6265 return ExprError(); 6266 } 6267 6268 bool HadMultipleCandidates = CandidateSet.size() > 1; 6269 6270 CXXConstructorDecl *Constructor = cast<CXXConstructorDecl>(Best->Function); 6271 SmallVector<Expr*, 8> ConstructorArgs; 6272 CurInit.get(); // Ownership transferred into MultiExprArg, below. 6273 6274 S.CheckConstructorAccess(Loc, Constructor, Best->FoundDecl, Entity, 6275 IsExtraneousCopy); 6276 6277 if (IsExtraneousCopy) { 6278 // If this is a totally extraneous copy for C++03 reference 6279 // binding purposes, just return the original initialization 6280 // expression. We don't generate an (elided) copy operation here 6281 // because doing so would require us to pass down a flag to avoid 6282 // infinite recursion, where each step adds another extraneous, 6283 // elidable copy. 6284 6285 // Instantiate the default arguments of any extra parameters in 6286 // the selected copy constructor, as if we were going to create a 6287 // proper call to the copy constructor. 6288 for (unsigned I = 1, N = Constructor->getNumParams(); I != N; ++I) { 6289 ParmVarDecl *Parm = Constructor->getParamDecl(I); 6290 if (S.RequireCompleteType(Loc, Parm->getType(), 6291 diag::err_call_incomplete_argument)) 6292 break; 6293 6294 // Build the default argument expression; we don't actually care 6295 // if this succeeds or not, because this routine will complain 6296 // if there was a problem. 6297 S.BuildCXXDefaultArgExpr(Loc, Constructor, Parm); 6298 } 6299 6300 return CurInitExpr; 6301 } 6302 6303 // Determine the arguments required to actually perform the 6304 // constructor call (we might have derived-to-base conversions, or 6305 // the copy constructor may have default arguments). 6306 if (S.CompleteConstructorCall(Constructor, CurInitExpr, Loc, ConstructorArgs)) 6307 return ExprError(); 6308 6309 // C++0x [class.copy]p32: 6310 // When certain criteria are met, an implementation is allowed to 6311 // omit the copy/move construction of a class object, even if the 6312 // copy/move constructor and/or destructor for the object have 6313 // side effects. [...] 6314 // - when a temporary class object that has not been bound to a 6315 // reference (12.2) would be copied/moved to a class object 6316 // with the same cv-unqualified type, the copy/move operation 6317 // can be omitted by constructing the temporary object 6318 // directly into the target of the omitted copy/move 6319 // 6320 // Note that the other three bullets are handled elsewhere. Copy 6321 // elision for return statements and throw expressions are handled as part 6322 // of constructor initialization, while copy elision for exception handlers 6323 // is handled by the run-time. 6324 // 6325 // FIXME: If the function parameter is not the same type as the temporary, we 6326 // should still be able to elide the copy, but we don't have a way to 6327 // represent in the AST how much should be elided in this case. 6328 bool Elidable = 6329 CurInitExpr->isTemporaryObject(S.Context, Class) && 6330 S.Context.hasSameUnqualifiedType( 6331 Best->Function->getParamDecl(0)->getType().getNonReferenceType(), 6332 CurInitExpr->getType()); 6333 6334 // Actually perform the constructor call. 6335 CurInit = S.BuildCXXConstructExpr(Loc, T, Best->FoundDecl, Constructor, 6336 Elidable, 6337 ConstructorArgs, 6338 HadMultipleCandidates, 6339 /*ListInit*/ false, 6340 /*StdInitListInit*/ false, 6341 /*ZeroInit*/ false, 6342 CXXConstructExpr::CK_Complete, 6343 SourceRange()); 6344 6345 // If we're supposed to bind temporaries, do so. 6346 if (!CurInit.isInvalid() && shouldBindAsTemporary(Entity)) 6347 CurInit = S.MaybeBindToTemporary(CurInit.getAs<Expr>()); 6348 return CurInit; 6349 } 6350 6351 /// Check whether elidable copy construction for binding a reference to 6352 /// a temporary would have succeeded if we were building in C++98 mode, for 6353 /// -Wc++98-compat. 6354 static void CheckCXX98CompatAccessibleCopy(Sema &S, 6355 const InitializedEntity &Entity, 6356 Expr *CurInitExpr) { 6357 assert(S.getLangOpts().CPlusPlus11); 6358 6359 const RecordType *Record = CurInitExpr->getType()->getAs<RecordType>(); 6360 if (!Record) 6361 return; 6362 6363 SourceLocation Loc = getInitializationLoc(Entity, CurInitExpr); 6364 if (S.Diags.isIgnored(diag::warn_cxx98_compat_temp_copy, Loc)) 6365 return; 6366 6367 // Find constructors which would have been considered. 6368 OverloadCandidateSet CandidateSet(Loc, OverloadCandidateSet::CSK_Normal); 6369 DeclContext::lookup_result Ctors = 6370 S.LookupConstructors(cast<CXXRecordDecl>(Record->getDecl())); 6371 6372 // Perform overload resolution. 6373 OverloadCandidateSet::iterator Best; 6374 OverloadingResult OR = ResolveConstructorOverload( 6375 S, Loc, CurInitExpr, CandidateSet, CurInitExpr->getType(), Ctors, Best, 6376 /*CopyInitializing=*/false, /*AllowExplicit=*/true, 6377 /*OnlyListConstructors=*/false, /*IsListInit=*/false, 6378 /*SecondStepOfCopyInit=*/true); 6379 6380 PartialDiagnostic Diag = S.PDiag(diag::warn_cxx98_compat_temp_copy) 6381 << OR << (int)Entity.getKind() << CurInitExpr->getType() 6382 << CurInitExpr->getSourceRange(); 6383 6384 switch (OR) { 6385 case OR_Success: 6386 S.CheckConstructorAccess(Loc, cast<CXXConstructorDecl>(Best->Function), 6387 Best->FoundDecl, Entity, Diag); 6388 // FIXME: Check default arguments as far as that's possible. 6389 break; 6390 6391 case OR_No_Viable_Function: 6392 CandidateSet.NoteCandidates(PartialDiagnosticAt(Loc, Diag), S, 6393 OCD_AllCandidates, CurInitExpr); 6394 break; 6395 6396 case OR_Ambiguous: 6397 CandidateSet.NoteCandidates(PartialDiagnosticAt(Loc, Diag), S, 6398 OCD_AmbiguousCandidates, CurInitExpr); 6399 break; 6400 6401 case OR_Deleted: 6402 S.Diag(Loc, Diag); 6403 S.NoteDeletedFunction(Best->Function); 6404 break; 6405 } 6406 } 6407 6408 void InitializationSequence::PrintInitLocationNote(Sema &S, 6409 const InitializedEntity &Entity) { 6410 if (Entity.isParamOrTemplateParamKind() && Entity.getDecl()) { 6411 if (Entity.getDecl()->getLocation().isInvalid()) 6412 return; 6413 6414 if (Entity.getDecl()->getDeclName()) 6415 S.Diag(Entity.getDecl()->getLocation(), diag::note_parameter_named_here) 6416 << Entity.getDecl()->getDeclName(); 6417 else 6418 S.Diag(Entity.getDecl()->getLocation(), diag::note_parameter_here); 6419 } 6420 else if (Entity.getKind() == InitializedEntity::EK_RelatedResult && 6421 Entity.getMethodDecl()) 6422 S.Diag(Entity.getMethodDecl()->getLocation(), 6423 diag::note_method_return_type_change) 6424 << Entity.getMethodDecl()->getDeclName(); 6425 } 6426 6427 /// Returns true if the parameters describe a constructor initialization of 6428 /// an explicit temporary object, e.g. "Point(x, y)". 6429 static bool isExplicitTemporary(const InitializedEntity &Entity, 6430 const InitializationKind &Kind, 6431 unsigned NumArgs) { 6432 switch (Entity.getKind()) { 6433 case InitializedEntity::EK_Temporary: 6434 case InitializedEntity::EK_CompoundLiteralInit: 6435 case InitializedEntity::EK_RelatedResult: 6436 break; 6437 default: 6438 return false; 6439 } 6440 6441 switch (Kind.getKind()) { 6442 case InitializationKind::IK_DirectList: 6443 return true; 6444 // FIXME: Hack to work around cast weirdness. 6445 case InitializationKind::IK_Direct: 6446 case InitializationKind::IK_Value: 6447 return NumArgs != 1; 6448 default: 6449 return false; 6450 } 6451 } 6452 6453 static ExprResult 6454 PerformConstructorInitialization(Sema &S, 6455 const InitializedEntity &Entity, 6456 const InitializationKind &Kind, 6457 MultiExprArg Args, 6458 const InitializationSequence::Step& Step, 6459 bool &ConstructorInitRequiresZeroInit, 6460 bool IsListInitialization, 6461 bool IsStdInitListInitialization, 6462 SourceLocation LBraceLoc, 6463 SourceLocation RBraceLoc) { 6464 unsigned NumArgs = Args.size(); 6465 CXXConstructorDecl *Constructor 6466 = cast<CXXConstructorDecl>(Step.Function.Function); 6467 bool HadMultipleCandidates = Step.Function.HadMultipleCandidates; 6468 6469 // Build a call to the selected constructor. 6470 SmallVector<Expr*, 8> ConstructorArgs; 6471 SourceLocation Loc = (Kind.isCopyInit() && Kind.getEqualLoc().isValid()) 6472 ? Kind.getEqualLoc() 6473 : Kind.getLocation(); 6474 6475 if (Kind.getKind() == InitializationKind::IK_Default) { 6476 // Force even a trivial, implicit default constructor to be 6477 // semantically checked. We do this explicitly because we don't build 6478 // the definition for completely trivial constructors. 6479 assert(Constructor->getParent() && "No parent class for constructor."); 6480 if (Constructor->isDefaulted() && Constructor->isDefaultConstructor() && 6481 Constructor->isTrivial() && !Constructor->isUsed(false)) { 6482 S.runWithSufficientStackSpace(Loc, [&] { 6483 S.DefineImplicitDefaultConstructor(Loc, Constructor); 6484 }); 6485 } 6486 } 6487 6488 ExprResult CurInit((Expr *)nullptr); 6489 6490 // C++ [over.match.copy]p1: 6491 // - When initializing a temporary to be bound to the first parameter 6492 // of a constructor that takes a reference to possibly cv-qualified 6493 // T as its first argument, called with a single argument in the 6494 // context of direct-initialization, explicit conversion functions 6495 // are also considered. 6496 bool AllowExplicitConv = 6497 Kind.AllowExplicit() && !Kind.isCopyInit() && Args.size() == 1 && 6498 hasCopyOrMoveCtorParam(S.Context, 6499 getConstructorInfo(Step.Function.FoundDecl)); 6500 6501 // Determine the arguments required to actually perform the constructor 6502 // call. 6503 if (S.CompleteConstructorCall(Constructor, Args, 6504 Loc, ConstructorArgs, 6505 AllowExplicitConv, 6506 IsListInitialization)) 6507 return ExprError(); 6508 6509 6510 if (isExplicitTemporary(Entity, Kind, NumArgs)) { 6511 // An explicitly-constructed temporary, e.g., X(1, 2). 6512 if (S.DiagnoseUseOfDecl(Constructor, Loc)) 6513 return ExprError(); 6514 6515 TypeSourceInfo *TSInfo = Entity.getTypeSourceInfo(); 6516 if (!TSInfo) 6517 TSInfo = S.Context.getTrivialTypeSourceInfo(Entity.getType(), Loc); 6518 SourceRange ParenOrBraceRange = 6519 (Kind.getKind() == InitializationKind::IK_DirectList) 6520 ? SourceRange(LBraceLoc, RBraceLoc) 6521 : Kind.getParenOrBraceRange(); 6522 6523 if (auto *Shadow = dyn_cast<ConstructorUsingShadowDecl>( 6524 Step.Function.FoundDecl.getDecl())) { 6525 Constructor = S.findInheritingConstructor(Loc, Constructor, Shadow); 6526 if (S.DiagnoseUseOfDecl(Constructor, Loc)) 6527 return ExprError(); 6528 } 6529 S.MarkFunctionReferenced(Loc, Constructor); 6530 6531 CurInit = S.CheckForImmediateInvocation( 6532 CXXTemporaryObjectExpr::Create( 6533 S.Context, Constructor, 6534 Entity.getType().getNonLValueExprType(S.Context), TSInfo, 6535 ConstructorArgs, ParenOrBraceRange, HadMultipleCandidates, 6536 IsListInitialization, IsStdInitListInitialization, 6537 ConstructorInitRequiresZeroInit), 6538 Constructor); 6539 } else { 6540 CXXConstructExpr::ConstructionKind ConstructKind = 6541 CXXConstructExpr::CK_Complete; 6542 6543 if (Entity.getKind() == InitializedEntity::EK_Base) { 6544 ConstructKind = Entity.getBaseSpecifier()->isVirtual() ? 6545 CXXConstructExpr::CK_VirtualBase : 6546 CXXConstructExpr::CK_NonVirtualBase; 6547 } else if (Entity.getKind() == InitializedEntity::EK_Delegating) { 6548 ConstructKind = CXXConstructExpr::CK_Delegating; 6549 } 6550 6551 // Only get the parenthesis or brace range if it is a list initialization or 6552 // direct construction. 6553 SourceRange ParenOrBraceRange; 6554 if (IsListInitialization) 6555 ParenOrBraceRange = SourceRange(LBraceLoc, RBraceLoc); 6556 else if (Kind.getKind() == InitializationKind::IK_Direct) 6557 ParenOrBraceRange = Kind.getParenOrBraceRange(); 6558 6559 // If the entity allows NRVO, mark the construction as elidable 6560 // unconditionally. 6561 if (Entity.allowsNRVO()) 6562 CurInit = S.BuildCXXConstructExpr(Loc, Step.Type, 6563 Step.Function.FoundDecl, 6564 Constructor, /*Elidable=*/true, 6565 ConstructorArgs, 6566 HadMultipleCandidates, 6567 IsListInitialization, 6568 IsStdInitListInitialization, 6569 ConstructorInitRequiresZeroInit, 6570 ConstructKind, 6571 ParenOrBraceRange); 6572 else 6573 CurInit = S.BuildCXXConstructExpr(Loc, Step.Type, 6574 Step.Function.FoundDecl, 6575 Constructor, 6576 ConstructorArgs, 6577 HadMultipleCandidates, 6578 IsListInitialization, 6579 IsStdInitListInitialization, 6580 ConstructorInitRequiresZeroInit, 6581 ConstructKind, 6582 ParenOrBraceRange); 6583 } 6584 if (CurInit.isInvalid()) 6585 return ExprError(); 6586 6587 // Only check access if all of that succeeded. 6588 S.CheckConstructorAccess(Loc, Constructor, Step.Function.FoundDecl, Entity); 6589 if (S.DiagnoseUseOfDecl(Step.Function.FoundDecl, Loc)) 6590 return ExprError(); 6591 6592 if (const ArrayType *AT = S.Context.getAsArrayType(Entity.getType())) 6593 if (checkDestructorReference(S.Context.getBaseElementType(AT), Loc, S)) 6594 return ExprError(); 6595 6596 if (shouldBindAsTemporary(Entity)) 6597 CurInit = S.MaybeBindToTemporary(CurInit.get()); 6598 6599 return CurInit; 6600 } 6601 6602 namespace { 6603 enum LifetimeKind { 6604 /// The lifetime of a temporary bound to this entity ends at the end of the 6605 /// full-expression, and that's (probably) fine. 6606 LK_FullExpression, 6607 6608 /// The lifetime of a temporary bound to this entity is extended to the 6609 /// lifeitme of the entity itself. 6610 LK_Extended, 6611 6612 /// The lifetime of a temporary bound to this entity probably ends too soon, 6613 /// because the entity is allocated in a new-expression. 6614 LK_New, 6615 6616 /// The lifetime of a temporary bound to this entity ends too soon, because 6617 /// the entity is a return object. 6618 LK_Return, 6619 6620 /// The lifetime of a temporary bound to this entity ends too soon, because 6621 /// the entity is the result of a statement expression. 6622 LK_StmtExprResult, 6623 6624 /// This is a mem-initializer: if it would extend a temporary (other than via 6625 /// a default member initializer), the program is ill-formed. 6626 LK_MemInitializer, 6627 }; 6628 using LifetimeResult = 6629 llvm::PointerIntPair<const InitializedEntity *, 3, LifetimeKind>; 6630 } 6631 6632 /// Determine the declaration which an initialized entity ultimately refers to, 6633 /// for the purpose of lifetime-extending a temporary bound to a reference in 6634 /// the initialization of \p Entity. 6635 static LifetimeResult getEntityLifetime( 6636 const InitializedEntity *Entity, 6637 const InitializedEntity *InitField = nullptr) { 6638 // C++11 [class.temporary]p5: 6639 switch (Entity->getKind()) { 6640 case InitializedEntity::EK_Variable: 6641 // The temporary [...] persists for the lifetime of the reference 6642 return {Entity, LK_Extended}; 6643 6644 case InitializedEntity::EK_Member: 6645 // For subobjects, we look at the complete object. 6646 if (Entity->getParent()) 6647 return getEntityLifetime(Entity->getParent(), Entity); 6648 6649 // except: 6650 // C++17 [class.base.init]p8: 6651 // A temporary expression bound to a reference member in a 6652 // mem-initializer is ill-formed. 6653 // C++17 [class.base.init]p11: 6654 // A temporary expression bound to a reference member from a 6655 // default member initializer is ill-formed. 6656 // 6657 // The context of p11 and its example suggest that it's only the use of a 6658 // default member initializer from a constructor that makes the program 6659 // ill-formed, not its mere existence, and that it can even be used by 6660 // aggregate initialization. 6661 return {Entity, Entity->isDefaultMemberInitializer() ? LK_Extended 6662 : LK_MemInitializer}; 6663 6664 case InitializedEntity::EK_Binding: 6665 // Per [dcl.decomp]p3, the binding is treated as a variable of reference 6666 // type. 6667 return {Entity, LK_Extended}; 6668 6669 case InitializedEntity::EK_Parameter: 6670 case InitializedEntity::EK_Parameter_CF_Audited: 6671 // -- A temporary bound to a reference parameter in a function call 6672 // persists until the completion of the full-expression containing 6673 // the call. 6674 return {nullptr, LK_FullExpression}; 6675 6676 case InitializedEntity::EK_TemplateParameter: 6677 // FIXME: This will always be ill-formed; should we eagerly diagnose it here? 6678 return {nullptr, LK_FullExpression}; 6679 6680 case InitializedEntity::EK_Result: 6681 // -- The lifetime of a temporary bound to the returned value in a 6682 // function return statement is not extended; the temporary is 6683 // destroyed at the end of the full-expression in the return statement. 6684 return {nullptr, LK_Return}; 6685 6686 case InitializedEntity::EK_StmtExprResult: 6687 // FIXME: Should we lifetime-extend through the result of a statement 6688 // expression? 6689 return {nullptr, LK_StmtExprResult}; 6690 6691 case InitializedEntity::EK_New: 6692 // -- A temporary bound to a reference in a new-initializer persists 6693 // until the completion of the full-expression containing the 6694 // new-initializer. 6695 return {nullptr, LK_New}; 6696 6697 case InitializedEntity::EK_Temporary: 6698 case InitializedEntity::EK_CompoundLiteralInit: 6699 case InitializedEntity::EK_RelatedResult: 6700 // We don't yet know the storage duration of the surrounding temporary. 6701 // Assume it's got full-expression duration for now, it will patch up our 6702 // storage duration if that's not correct. 6703 return {nullptr, LK_FullExpression}; 6704 6705 case InitializedEntity::EK_ArrayElement: 6706 // For subobjects, we look at the complete object. 6707 return getEntityLifetime(Entity->getParent(), InitField); 6708 6709 case InitializedEntity::EK_Base: 6710 // For subobjects, we look at the complete object. 6711 if (Entity->getParent()) 6712 return getEntityLifetime(Entity->getParent(), InitField); 6713 return {InitField, LK_MemInitializer}; 6714 6715 case InitializedEntity::EK_Delegating: 6716 // We can reach this case for aggregate initialization in a constructor: 6717 // struct A { int &&r; }; 6718 // struct B : A { B() : A{0} {} }; 6719 // In this case, use the outermost field decl as the context. 6720 return {InitField, LK_MemInitializer}; 6721 6722 case InitializedEntity::EK_BlockElement: 6723 case InitializedEntity::EK_LambdaToBlockConversionBlockElement: 6724 case InitializedEntity::EK_LambdaCapture: 6725 case InitializedEntity::EK_VectorElement: 6726 case InitializedEntity::EK_ComplexElement: 6727 return {nullptr, LK_FullExpression}; 6728 6729 case InitializedEntity::EK_Exception: 6730 // FIXME: Can we diagnose lifetime problems with exceptions? 6731 return {nullptr, LK_FullExpression}; 6732 } 6733 llvm_unreachable("unknown entity kind"); 6734 } 6735 6736 namespace { 6737 enum ReferenceKind { 6738 /// Lifetime would be extended by a reference binding to a temporary. 6739 RK_ReferenceBinding, 6740 /// Lifetime would be extended by a std::initializer_list object binding to 6741 /// its backing array. 6742 RK_StdInitializerList, 6743 }; 6744 6745 /// A temporary or local variable. This will be one of: 6746 /// * A MaterializeTemporaryExpr. 6747 /// * A DeclRefExpr whose declaration is a local. 6748 /// * An AddrLabelExpr. 6749 /// * A BlockExpr for a block with captures. 6750 using Local = Expr*; 6751 6752 /// Expressions we stepped over when looking for the local state. Any steps 6753 /// that would inhibit lifetime extension or take us out of subexpressions of 6754 /// the initializer are included. 6755 struct IndirectLocalPathEntry { 6756 enum EntryKind { 6757 DefaultInit, 6758 AddressOf, 6759 VarInit, 6760 LValToRVal, 6761 LifetimeBoundCall, 6762 TemporaryCopy, 6763 LambdaCaptureInit, 6764 GslReferenceInit, 6765 GslPointerInit 6766 } Kind; 6767 Expr *E; 6768 union { 6769 const Decl *D = nullptr; 6770 const LambdaCapture *Capture; 6771 }; 6772 IndirectLocalPathEntry() {} 6773 IndirectLocalPathEntry(EntryKind K, Expr *E) : Kind(K), E(E) {} 6774 IndirectLocalPathEntry(EntryKind K, Expr *E, const Decl *D) 6775 : Kind(K), E(E), D(D) {} 6776 IndirectLocalPathEntry(EntryKind K, Expr *E, const LambdaCapture *Capture) 6777 : Kind(K), E(E), Capture(Capture) {} 6778 }; 6779 6780 using IndirectLocalPath = llvm::SmallVectorImpl<IndirectLocalPathEntry>; 6781 6782 struct RevertToOldSizeRAII { 6783 IndirectLocalPath &Path; 6784 unsigned OldSize = Path.size(); 6785 RevertToOldSizeRAII(IndirectLocalPath &Path) : Path(Path) {} 6786 ~RevertToOldSizeRAII() { Path.resize(OldSize); } 6787 }; 6788 6789 using LocalVisitor = llvm::function_ref<bool(IndirectLocalPath &Path, Local L, 6790 ReferenceKind RK)>; 6791 } 6792 6793 static bool isVarOnPath(IndirectLocalPath &Path, VarDecl *VD) { 6794 for (auto E : Path) 6795 if (E.Kind == IndirectLocalPathEntry::VarInit && E.D == VD) 6796 return true; 6797 return false; 6798 } 6799 6800 static bool pathContainsInit(IndirectLocalPath &Path) { 6801 return llvm::any_of(Path, [=](IndirectLocalPathEntry E) { 6802 return E.Kind == IndirectLocalPathEntry::DefaultInit || 6803 E.Kind == IndirectLocalPathEntry::VarInit; 6804 }); 6805 } 6806 6807 static void visitLocalsRetainedByInitializer(IndirectLocalPath &Path, 6808 Expr *Init, LocalVisitor Visit, 6809 bool RevisitSubinits, 6810 bool EnableLifetimeWarnings); 6811 6812 static void visitLocalsRetainedByReferenceBinding(IndirectLocalPath &Path, 6813 Expr *Init, ReferenceKind RK, 6814 LocalVisitor Visit, 6815 bool EnableLifetimeWarnings); 6816 6817 template <typename T> static bool isRecordWithAttr(QualType Type) { 6818 if (auto *RD = Type->getAsCXXRecordDecl()) 6819 return RD->hasAttr<T>(); 6820 return false; 6821 } 6822 6823 // Decl::isInStdNamespace will return false for iterators in some STL 6824 // implementations due to them being defined in a namespace outside of the std 6825 // namespace. 6826 static bool isInStlNamespace(const Decl *D) { 6827 const DeclContext *DC = D->getDeclContext(); 6828 if (!DC) 6829 return false; 6830 if (const auto *ND = dyn_cast<NamespaceDecl>(DC)) 6831 if (const IdentifierInfo *II = ND->getIdentifier()) { 6832 StringRef Name = II->getName(); 6833 if (Name.size() >= 2 && Name.front() == '_' && 6834 (Name[1] == '_' || isUppercase(Name[1]))) 6835 return true; 6836 } 6837 6838 return DC->isStdNamespace(); 6839 } 6840 6841 static bool shouldTrackImplicitObjectArg(const CXXMethodDecl *Callee) { 6842 if (auto *Conv = dyn_cast_or_null<CXXConversionDecl>(Callee)) 6843 if (isRecordWithAttr<PointerAttr>(Conv->getConversionType())) 6844 return true; 6845 if (!isInStlNamespace(Callee->getParent())) 6846 return false; 6847 if (!isRecordWithAttr<PointerAttr>(Callee->getThisObjectType()) && 6848 !isRecordWithAttr<OwnerAttr>(Callee->getThisObjectType())) 6849 return false; 6850 if (Callee->getReturnType()->isPointerType() || 6851 isRecordWithAttr<PointerAttr>(Callee->getReturnType())) { 6852 if (!Callee->getIdentifier()) 6853 return false; 6854 return llvm::StringSwitch<bool>(Callee->getName()) 6855 .Cases("begin", "rbegin", "cbegin", "crbegin", true) 6856 .Cases("end", "rend", "cend", "crend", true) 6857 .Cases("c_str", "data", "get", true) 6858 // Map and set types. 6859 .Cases("find", "equal_range", "lower_bound", "upper_bound", true) 6860 .Default(false); 6861 } else if (Callee->getReturnType()->isReferenceType()) { 6862 if (!Callee->getIdentifier()) { 6863 auto OO = Callee->getOverloadedOperator(); 6864 return OO == OverloadedOperatorKind::OO_Subscript || 6865 OO == OverloadedOperatorKind::OO_Star; 6866 } 6867 return llvm::StringSwitch<bool>(Callee->getName()) 6868 .Cases("front", "back", "at", "top", "value", true) 6869 .Default(false); 6870 } 6871 return false; 6872 } 6873 6874 static bool shouldTrackFirstArgument(const FunctionDecl *FD) { 6875 if (!FD->getIdentifier() || FD->getNumParams() != 1) 6876 return false; 6877 const auto *RD = FD->getParamDecl(0)->getType()->getPointeeCXXRecordDecl(); 6878 if (!FD->isInStdNamespace() || !RD || !RD->isInStdNamespace()) 6879 return false; 6880 if (!isRecordWithAttr<PointerAttr>(QualType(RD->getTypeForDecl(), 0)) && 6881 !isRecordWithAttr<OwnerAttr>(QualType(RD->getTypeForDecl(), 0))) 6882 return false; 6883 if (FD->getReturnType()->isPointerType() || 6884 isRecordWithAttr<PointerAttr>(FD->getReturnType())) { 6885 return llvm::StringSwitch<bool>(FD->getName()) 6886 .Cases("begin", "rbegin", "cbegin", "crbegin", true) 6887 .Cases("end", "rend", "cend", "crend", true) 6888 .Case("data", true) 6889 .Default(false); 6890 } else if (FD->getReturnType()->isReferenceType()) { 6891 return llvm::StringSwitch<bool>(FD->getName()) 6892 .Cases("get", "any_cast", true) 6893 .Default(false); 6894 } 6895 return false; 6896 } 6897 6898 static void handleGslAnnotatedTypes(IndirectLocalPath &Path, Expr *Call, 6899 LocalVisitor Visit) { 6900 auto VisitPointerArg = [&](const Decl *D, Expr *Arg, bool Value) { 6901 // We are not interested in the temporary base objects of gsl Pointers: 6902 // Temp().ptr; // Here ptr might not dangle. 6903 if (isa<MemberExpr>(Arg->IgnoreImpCasts())) 6904 return; 6905 // Once we initialized a value with a reference, it can no longer dangle. 6906 if (!Value) { 6907 for (auto It = Path.rbegin(), End = Path.rend(); It != End; ++It) { 6908 if (It->Kind == IndirectLocalPathEntry::GslReferenceInit) 6909 continue; 6910 if (It->Kind == IndirectLocalPathEntry::GslPointerInit) 6911 return; 6912 break; 6913 } 6914 } 6915 Path.push_back({Value ? IndirectLocalPathEntry::GslPointerInit 6916 : IndirectLocalPathEntry::GslReferenceInit, 6917 Arg, D}); 6918 if (Arg->isGLValue()) 6919 visitLocalsRetainedByReferenceBinding(Path, Arg, RK_ReferenceBinding, 6920 Visit, 6921 /*EnableLifetimeWarnings=*/true); 6922 else 6923 visitLocalsRetainedByInitializer(Path, Arg, Visit, true, 6924 /*EnableLifetimeWarnings=*/true); 6925 Path.pop_back(); 6926 }; 6927 6928 if (auto *MCE = dyn_cast<CXXMemberCallExpr>(Call)) { 6929 const auto *MD = cast_or_null<CXXMethodDecl>(MCE->getDirectCallee()); 6930 if (MD && shouldTrackImplicitObjectArg(MD)) 6931 VisitPointerArg(MD, MCE->getImplicitObjectArgument(), 6932 !MD->getReturnType()->isReferenceType()); 6933 return; 6934 } else if (auto *OCE = dyn_cast<CXXOperatorCallExpr>(Call)) { 6935 FunctionDecl *Callee = OCE->getDirectCallee(); 6936 if (Callee && Callee->isCXXInstanceMember() && 6937 shouldTrackImplicitObjectArg(cast<CXXMethodDecl>(Callee))) 6938 VisitPointerArg(Callee, OCE->getArg(0), 6939 !Callee->getReturnType()->isReferenceType()); 6940 return; 6941 } else if (auto *CE = dyn_cast<CallExpr>(Call)) { 6942 FunctionDecl *Callee = CE->getDirectCallee(); 6943 if (Callee && shouldTrackFirstArgument(Callee)) 6944 VisitPointerArg(Callee, CE->getArg(0), 6945 !Callee->getReturnType()->isReferenceType()); 6946 return; 6947 } 6948 6949 if (auto *CCE = dyn_cast<CXXConstructExpr>(Call)) { 6950 const auto *Ctor = CCE->getConstructor(); 6951 const CXXRecordDecl *RD = Ctor->getParent(); 6952 if (CCE->getNumArgs() > 0 && RD->hasAttr<PointerAttr>()) 6953 VisitPointerArg(Ctor->getParamDecl(0), CCE->getArgs()[0], true); 6954 } 6955 } 6956 6957 static bool implicitObjectParamIsLifetimeBound(const FunctionDecl *FD) { 6958 const TypeSourceInfo *TSI = FD->getTypeSourceInfo(); 6959 if (!TSI) 6960 return false; 6961 // Don't declare this variable in the second operand of the for-statement; 6962 // GCC miscompiles that by ending its lifetime before evaluating the 6963 // third operand. See gcc.gnu.org/PR86769. 6964 AttributedTypeLoc ATL; 6965 for (TypeLoc TL = TSI->getTypeLoc(); 6966 (ATL = TL.getAsAdjusted<AttributedTypeLoc>()); 6967 TL = ATL.getModifiedLoc()) { 6968 if (ATL.getAttrAs<LifetimeBoundAttr>()) 6969 return true; 6970 } 6971 6972 // Assume that all assignment operators with a "normal" return type return 6973 // *this, that is, an lvalue reference that is the same type as the implicit 6974 // object parameter (or the LHS for a non-member operator$=). 6975 OverloadedOperatorKind OO = FD->getDeclName().getCXXOverloadedOperator(); 6976 if (OO == OO_Equal || isCompoundAssignmentOperator(OO)) { 6977 QualType RetT = FD->getReturnType(); 6978 if (RetT->isLValueReferenceType()) { 6979 ASTContext &Ctx = FD->getASTContext(); 6980 QualType LHST; 6981 auto *MD = dyn_cast<CXXMethodDecl>(FD); 6982 if (MD && MD->isCXXInstanceMember()) 6983 LHST = Ctx.getLValueReferenceType(MD->getThisObjectType()); 6984 else 6985 LHST = MD->getParamDecl(0)->getType(); 6986 if (Ctx.hasSameType(RetT, LHST)) 6987 return true; 6988 } 6989 } 6990 6991 return false; 6992 } 6993 6994 static void visitLifetimeBoundArguments(IndirectLocalPath &Path, Expr *Call, 6995 LocalVisitor Visit) { 6996 const FunctionDecl *Callee; 6997 ArrayRef<Expr*> Args; 6998 6999 if (auto *CE = dyn_cast<CallExpr>(Call)) { 7000 Callee = CE->getDirectCallee(); 7001 Args = llvm::makeArrayRef(CE->getArgs(), CE->getNumArgs()); 7002 } else { 7003 auto *CCE = cast<CXXConstructExpr>(Call); 7004 Callee = CCE->getConstructor(); 7005 Args = llvm::makeArrayRef(CCE->getArgs(), CCE->getNumArgs()); 7006 } 7007 if (!Callee) 7008 return; 7009 7010 Expr *ObjectArg = nullptr; 7011 if (isa<CXXOperatorCallExpr>(Call) && Callee->isCXXInstanceMember()) { 7012 ObjectArg = Args[0]; 7013 Args = Args.slice(1); 7014 } else if (auto *MCE = dyn_cast<CXXMemberCallExpr>(Call)) { 7015 ObjectArg = MCE->getImplicitObjectArgument(); 7016 } 7017 7018 auto VisitLifetimeBoundArg = [&](const Decl *D, Expr *Arg) { 7019 Path.push_back({IndirectLocalPathEntry::LifetimeBoundCall, Arg, D}); 7020 if (Arg->isGLValue()) 7021 visitLocalsRetainedByReferenceBinding(Path, Arg, RK_ReferenceBinding, 7022 Visit, 7023 /*EnableLifetimeWarnings=*/false); 7024 else 7025 visitLocalsRetainedByInitializer(Path, Arg, Visit, true, 7026 /*EnableLifetimeWarnings=*/false); 7027 Path.pop_back(); 7028 }; 7029 7030 if (ObjectArg && implicitObjectParamIsLifetimeBound(Callee)) 7031 VisitLifetimeBoundArg(Callee, ObjectArg); 7032 7033 for (unsigned I = 0, 7034 N = std::min<unsigned>(Callee->getNumParams(), Args.size()); 7035 I != N; ++I) { 7036 if (Callee->getParamDecl(I)->hasAttr<LifetimeBoundAttr>()) 7037 VisitLifetimeBoundArg(Callee->getParamDecl(I), Args[I]); 7038 } 7039 } 7040 7041 /// Visit the locals that would be reachable through a reference bound to the 7042 /// glvalue expression \c Init. 7043 static void visitLocalsRetainedByReferenceBinding(IndirectLocalPath &Path, 7044 Expr *Init, ReferenceKind RK, 7045 LocalVisitor Visit, 7046 bool EnableLifetimeWarnings) { 7047 RevertToOldSizeRAII RAII(Path); 7048 7049 // Walk past any constructs which we can lifetime-extend across. 7050 Expr *Old; 7051 do { 7052 Old = Init; 7053 7054 if (auto *FE = dyn_cast<FullExpr>(Init)) 7055 Init = FE->getSubExpr(); 7056 7057 if (InitListExpr *ILE = dyn_cast<InitListExpr>(Init)) { 7058 // If this is just redundant braces around an initializer, step over it. 7059 if (ILE->isTransparent()) 7060 Init = ILE->getInit(0); 7061 } 7062 7063 // Step over any subobject adjustments; we may have a materialized 7064 // temporary inside them. 7065 Init = const_cast<Expr *>(Init->skipRValueSubobjectAdjustments()); 7066 7067 // Per current approach for DR1376, look through casts to reference type 7068 // when performing lifetime extension. 7069 if (CastExpr *CE = dyn_cast<CastExpr>(Init)) 7070 if (CE->getSubExpr()->isGLValue()) 7071 Init = CE->getSubExpr(); 7072 7073 // Per the current approach for DR1299, look through array element access 7074 // on array glvalues when performing lifetime extension. 7075 if (auto *ASE = dyn_cast<ArraySubscriptExpr>(Init)) { 7076 Init = ASE->getBase(); 7077 auto *ICE = dyn_cast<ImplicitCastExpr>(Init); 7078 if (ICE && ICE->getCastKind() == CK_ArrayToPointerDecay) 7079 Init = ICE->getSubExpr(); 7080 else 7081 // We can't lifetime extend through this but we might still find some 7082 // retained temporaries. 7083 return visitLocalsRetainedByInitializer(Path, Init, Visit, true, 7084 EnableLifetimeWarnings); 7085 } 7086 7087 // Step into CXXDefaultInitExprs so we can diagnose cases where a 7088 // constructor inherits one as an implicit mem-initializer. 7089 if (auto *DIE = dyn_cast<CXXDefaultInitExpr>(Init)) { 7090 Path.push_back( 7091 {IndirectLocalPathEntry::DefaultInit, DIE, DIE->getField()}); 7092 Init = DIE->getExpr(); 7093 } 7094 } while (Init != Old); 7095 7096 if (auto *MTE = dyn_cast<MaterializeTemporaryExpr>(Init)) { 7097 if (Visit(Path, Local(MTE), RK)) 7098 visitLocalsRetainedByInitializer(Path, MTE->getSubExpr(), Visit, true, 7099 EnableLifetimeWarnings); 7100 } 7101 7102 if (isa<CallExpr>(Init)) { 7103 if (EnableLifetimeWarnings) 7104 handleGslAnnotatedTypes(Path, Init, Visit); 7105 return visitLifetimeBoundArguments(Path, Init, Visit); 7106 } 7107 7108 switch (Init->getStmtClass()) { 7109 case Stmt::DeclRefExprClass: { 7110 // If we find the name of a local non-reference parameter, we could have a 7111 // lifetime problem. 7112 auto *DRE = cast<DeclRefExpr>(Init); 7113 auto *VD = dyn_cast<VarDecl>(DRE->getDecl()); 7114 if (VD && VD->hasLocalStorage() && 7115 !DRE->refersToEnclosingVariableOrCapture()) { 7116 if (!VD->getType()->isReferenceType()) { 7117 Visit(Path, Local(DRE), RK); 7118 } else if (isa<ParmVarDecl>(DRE->getDecl())) { 7119 // The lifetime of a reference parameter is unknown; assume it's OK 7120 // for now. 7121 break; 7122 } else if (VD->getInit() && !isVarOnPath(Path, VD)) { 7123 Path.push_back({IndirectLocalPathEntry::VarInit, DRE, VD}); 7124 visitLocalsRetainedByReferenceBinding(Path, VD->getInit(), 7125 RK_ReferenceBinding, Visit, 7126 EnableLifetimeWarnings); 7127 } 7128 } 7129 break; 7130 } 7131 7132 case Stmt::UnaryOperatorClass: { 7133 // The only unary operator that make sense to handle here 7134 // is Deref. All others don't resolve to a "name." This includes 7135 // handling all sorts of rvalues passed to a unary operator. 7136 const UnaryOperator *U = cast<UnaryOperator>(Init); 7137 if (U->getOpcode() == UO_Deref) 7138 visitLocalsRetainedByInitializer(Path, U->getSubExpr(), Visit, true, 7139 EnableLifetimeWarnings); 7140 break; 7141 } 7142 7143 case Stmt::OMPArraySectionExprClass: { 7144 visitLocalsRetainedByInitializer(Path, 7145 cast<OMPArraySectionExpr>(Init)->getBase(), 7146 Visit, true, EnableLifetimeWarnings); 7147 break; 7148 } 7149 7150 case Stmt::ConditionalOperatorClass: 7151 case Stmt::BinaryConditionalOperatorClass: { 7152 auto *C = cast<AbstractConditionalOperator>(Init); 7153 if (!C->getTrueExpr()->getType()->isVoidType()) 7154 visitLocalsRetainedByReferenceBinding(Path, C->getTrueExpr(), RK, Visit, 7155 EnableLifetimeWarnings); 7156 if (!C->getFalseExpr()->getType()->isVoidType()) 7157 visitLocalsRetainedByReferenceBinding(Path, C->getFalseExpr(), RK, Visit, 7158 EnableLifetimeWarnings); 7159 break; 7160 } 7161 7162 // FIXME: Visit the left-hand side of an -> or ->*. 7163 7164 default: 7165 break; 7166 } 7167 } 7168 7169 /// Visit the locals that would be reachable through an object initialized by 7170 /// the prvalue expression \c Init. 7171 static void visitLocalsRetainedByInitializer(IndirectLocalPath &Path, 7172 Expr *Init, LocalVisitor Visit, 7173 bool RevisitSubinits, 7174 bool EnableLifetimeWarnings) { 7175 RevertToOldSizeRAII RAII(Path); 7176 7177 Expr *Old; 7178 do { 7179 Old = Init; 7180 7181 // Step into CXXDefaultInitExprs so we can diagnose cases where a 7182 // constructor inherits one as an implicit mem-initializer. 7183 if (auto *DIE = dyn_cast<CXXDefaultInitExpr>(Init)) { 7184 Path.push_back({IndirectLocalPathEntry::DefaultInit, DIE, DIE->getField()}); 7185 Init = DIE->getExpr(); 7186 } 7187 7188 if (auto *FE = dyn_cast<FullExpr>(Init)) 7189 Init = FE->getSubExpr(); 7190 7191 // Dig out the expression which constructs the extended temporary. 7192 Init = const_cast<Expr *>(Init->skipRValueSubobjectAdjustments()); 7193 7194 if (CXXBindTemporaryExpr *BTE = dyn_cast<CXXBindTemporaryExpr>(Init)) 7195 Init = BTE->getSubExpr(); 7196 7197 Init = Init->IgnoreParens(); 7198 7199 // Step over value-preserving rvalue casts. 7200 if (auto *CE = dyn_cast<CastExpr>(Init)) { 7201 switch (CE->getCastKind()) { 7202 case CK_LValueToRValue: 7203 // If we can match the lvalue to a const object, we can look at its 7204 // initializer. 7205 Path.push_back({IndirectLocalPathEntry::LValToRVal, CE}); 7206 return visitLocalsRetainedByReferenceBinding( 7207 Path, Init, RK_ReferenceBinding, 7208 [&](IndirectLocalPath &Path, Local L, ReferenceKind RK) -> bool { 7209 if (auto *DRE = dyn_cast<DeclRefExpr>(L)) { 7210 auto *VD = dyn_cast<VarDecl>(DRE->getDecl()); 7211 if (VD && VD->getType().isConstQualified() && VD->getInit() && 7212 !isVarOnPath(Path, VD)) { 7213 Path.push_back({IndirectLocalPathEntry::VarInit, DRE, VD}); 7214 visitLocalsRetainedByInitializer(Path, VD->getInit(), Visit, true, 7215 EnableLifetimeWarnings); 7216 } 7217 } else if (auto *MTE = dyn_cast<MaterializeTemporaryExpr>(L)) { 7218 if (MTE->getType().isConstQualified()) 7219 visitLocalsRetainedByInitializer(Path, MTE->getSubExpr(), Visit, 7220 true, EnableLifetimeWarnings); 7221 } 7222 return false; 7223 }, EnableLifetimeWarnings); 7224 7225 // We assume that objects can be retained by pointers cast to integers, 7226 // but not if the integer is cast to floating-point type or to _Complex. 7227 // We assume that casts to 'bool' do not preserve enough information to 7228 // retain a local object. 7229 case CK_NoOp: 7230 case CK_BitCast: 7231 case CK_BaseToDerived: 7232 case CK_DerivedToBase: 7233 case CK_UncheckedDerivedToBase: 7234 case CK_Dynamic: 7235 case CK_ToUnion: 7236 case CK_UserDefinedConversion: 7237 case CK_ConstructorConversion: 7238 case CK_IntegralToPointer: 7239 case CK_PointerToIntegral: 7240 case CK_VectorSplat: 7241 case CK_IntegralCast: 7242 case CK_CPointerToObjCPointerCast: 7243 case CK_BlockPointerToObjCPointerCast: 7244 case CK_AnyPointerToBlockPointerCast: 7245 case CK_AddressSpaceConversion: 7246 break; 7247 7248 case CK_ArrayToPointerDecay: 7249 // Model array-to-pointer decay as taking the address of the array 7250 // lvalue. 7251 Path.push_back({IndirectLocalPathEntry::AddressOf, CE}); 7252 return visitLocalsRetainedByReferenceBinding(Path, CE->getSubExpr(), 7253 RK_ReferenceBinding, Visit, 7254 EnableLifetimeWarnings); 7255 7256 default: 7257 return; 7258 } 7259 7260 Init = CE->getSubExpr(); 7261 } 7262 } while (Old != Init); 7263 7264 // C++17 [dcl.init.list]p6: 7265 // initializing an initializer_list object from the array extends the 7266 // lifetime of the array exactly like binding a reference to a temporary. 7267 if (auto *ILE = dyn_cast<CXXStdInitializerListExpr>(Init)) 7268 return visitLocalsRetainedByReferenceBinding(Path, ILE->getSubExpr(), 7269 RK_StdInitializerList, Visit, 7270 EnableLifetimeWarnings); 7271 7272 if (InitListExpr *ILE = dyn_cast<InitListExpr>(Init)) { 7273 // We already visited the elements of this initializer list while 7274 // performing the initialization. Don't visit them again unless we've 7275 // changed the lifetime of the initialized entity. 7276 if (!RevisitSubinits) 7277 return; 7278 7279 if (ILE->isTransparent()) 7280 return visitLocalsRetainedByInitializer(Path, ILE->getInit(0), Visit, 7281 RevisitSubinits, 7282 EnableLifetimeWarnings); 7283 7284 if (ILE->getType()->isArrayType()) { 7285 for (unsigned I = 0, N = ILE->getNumInits(); I != N; ++I) 7286 visitLocalsRetainedByInitializer(Path, ILE->getInit(I), Visit, 7287 RevisitSubinits, 7288 EnableLifetimeWarnings); 7289 return; 7290 } 7291 7292 if (CXXRecordDecl *RD = ILE->getType()->getAsCXXRecordDecl()) { 7293 assert(RD->isAggregate() && "aggregate init on non-aggregate"); 7294 7295 // If we lifetime-extend a braced initializer which is initializing an 7296 // aggregate, and that aggregate contains reference members which are 7297 // bound to temporaries, those temporaries are also lifetime-extended. 7298 if (RD->isUnion() && ILE->getInitializedFieldInUnion() && 7299 ILE->getInitializedFieldInUnion()->getType()->isReferenceType()) 7300 visitLocalsRetainedByReferenceBinding(Path, ILE->getInit(0), 7301 RK_ReferenceBinding, Visit, 7302 EnableLifetimeWarnings); 7303 else { 7304 unsigned Index = 0; 7305 for (; Index < RD->getNumBases() && Index < ILE->getNumInits(); ++Index) 7306 visitLocalsRetainedByInitializer(Path, ILE->getInit(Index), Visit, 7307 RevisitSubinits, 7308 EnableLifetimeWarnings); 7309 for (const auto *I : RD->fields()) { 7310 if (Index >= ILE->getNumInits()) 7311 break; 7312 if (I->isUnnamedBitfield()) 7313 continue; 7314 Expr *SubInit = ILE->getInit(Index); 7315 if (I->getType()->isReferenceType()) 7316 visitLocalsRetainedByReferenceBinding(Path, SubInit, 7317 RK_ReferenceBinding, Visit, 7318 EnableLifetimeWarnings); 7319 else 7320 // This might be either aggregate-initialization of a member or 7321 // initialization of a std::initializer_list object. Regardless, 7322 // we should recursively lifetime-extend that initializer. 7323 visitLocalsRetainedByInitializer(Path, SubInit, Visit, 7324 RevisitSubinits, 7325 EnableLifetimeWarnings); 7326 ++Index; 7327 } 7328 } 7329 } 7330 return; 7331 } 7332 7333 // The lifetime of an init-capture is that of the closure object constructed 7334 // by a lambda-expression. 7335 if (auto *LE = dyn_cast<LambdaExpr>(Init)) { 7336 LambdaExpr::capture_iterator CapI = LE->capture_begin(); 7337 for (Expr *E : LE->capture_inits()) { 7338 assert(CapI != LE->capture_end()); 7339 const LambdaCapture &Cap = *CapI++; 7340 if (!E) 7341 continue; 7342 if (Cap.capturesVariable()) 7343 Path.push_back({IndirectLocalPathEntry::LambdaCaptureInit, E, &Cap}); 7344 if (E->isGLValue()) 7345 visitLocalsRetainedByReferenceBinding(Path, E, RK_ReferenceBinding, 7346 Visit, EnableLifetimeWarnings); 7347 else 7348 visitLocalsRetainedByInitializer(Path, E, Visit, true, 7349 EnableLifetimeWarnings); 7350 if (Cap.capturesVariable()) 7351 Path.pop_back(); 7352 } 7353 } 7354 7355 // Assume that a copy or move from a temporary references the same objects 7356 // that the temporary does. 7357 if (auto *CCE = dyn_cast<CXXConstructExpr>(Init)) { 7358 if (CCE->getConstructor()->isCopyOrMoveConstructor()) { 7359 if (auto *MTE = dyn_cast<MaterializeTemporaryExpr>(CCE->getArg(0))) { 7360 Expr *Arg = MTE->getSubExpr(); 7361 Path.push_back({IndirectLocalPathEntry::TemporaryCopy, Arg, 7362 CCE->getConstructor()}); 7363 visitLocalsRetainedByInitializer(Path, Arg, Visit, true, 7364 /*EnableLifetimeWarnings*/false); 7365 Path.pop_back(); 7366 } 7367 } 7368 } 7369 7370 if (isa<CallExpr>(Init) || isa<CXXConstructExpr>(Init)) { 7371 if (EnableLifetimeWarnings) 7372 handleGslAnnotatedTypes(Path, Init, Visit); 7373 return visitLifetimeBoundArguments(Path, Init, Visit); 7374 } 7375 7376 switch (Init->getStmtClass()) { 7377 case Stmt::UnaryOperatorClass: { 7378 auto *UO = cast<UnaryOperator>(Init); 7379 // If the initializer is the address of a local, we could have a lifetime 7380 // problem. 7381 if (UO->getOpcode() == UO_AddrOf) { 7382 // If this is &rvalue, then it's ill-formed and we have already diagnosed 7383 // it. Don't produce a redundant warning about the lifetime of the 7384 // temporary. 7385 if (isa<MaterializeTemporaryExpr>(UO->getSubExpr())) 7386 return; 7387 7388 Path.push_back({IndirectLocalPathEntry::AddressOf, UO}); 7389 visitLocalsRetainedByReferenceBinding(Path, UO->getSubExpr(), 7390 RK_ReferenceBinding, Visit, 7391 EnableLifetimeWarnings); 7392 } 7393 break; 7394 } 7395 7396 case Stmt::BinaryOperatorClass: { 7397 // Handle pointer arithmetic. 7398 auto *BO = cast<BinaryOperator>(Init); 7399 BinaryOperatorKind BOK = BO->getOpcode(); 7400 if (!BO->getType()->isPointerType() || (BOK != BO_Add && BOK != BO_Sub)) 7401 break; 7402 7403 if (BO->getLHS()->getType()->isPointerType()) 7404 visitLocalsRetainedByInitializer(Path, BO->getLHS(), Visit, true, 7405 EnableLifetimeWarnings); 7406 else if (BO->getRHS()->getType()->isPointerType()) 7407 visitLocalsRetainedByInitializer(Path, BO->getRHS(), Visit, true, 7408 EnableLifetimeWarnings); 7409 break; 7410 } 7411 7412 case Stmt::ConditionalOperatorClass: 7413 case Stmt::BinaryConditionalOperatorClass: { 7414 auto *C = cast<AbstractConditionalOperator>(Init); 7415 // In C++, we can have a throw-expression operand, which has 'void' type 7416 // and isn't interesting from a lifetime perspective. 7417 if (!C->getTrueExpr()->getType()->isVoidType()) 7418 visitLocalsRetainedByInitializer(Path, C->getTrueExpr(), Visit, true, 7419 EnableLifetimeWarnings); 7420 if (!C->getFalseExpr()->getType()->isVoidType()) 7421 visitLocalsRetainedByInitializer(Path, C->getFalseExpr(), Visit, true, 7422 EnableLifetimeWarnings); 7423 break; 7424 } 7425 7426 case Stmt::BlockExprClass: 7427 if (cast<BlockExpr>(Init)->getBlockDecl()->hasCaptures()) { 7428 // This is a local block, whose lifetime is that of the function. 7429 Visit(Path, Local(cast<BlockExpr>(Init)), RK_ReferenceBinding); 7430 } 7431 break; 7432 7433 case Stmt::AddrLabelExprClass: 7434 // We want to warn if the address of a label would escape the function. 7435 Visit(Path, Local(cast<AddrLabelExpr>(Init)), RK_ReferenceBinding); 7436 break; 7437 7438 default: 7439 break; 7440 } 7441 } 7442 7443 /// Whether a path to an object supports lifetime extension. 7444 enum PathLifetimeKind { 7445 /// Lifetime-extend along this path. 7446 Extend, 7447 /// We should lifetime-extend, but we don't because (due to technical 7448 /// limitations) we can't. This happens for default member initializers, 7449 /// which we don't clone for every use, so we don't have a unique 7450 /// MaterializeTemporaryExpr to update. 7451 ShouldExtend, 7452 /// Do not lifetime extend along this path. 7453 NoExtend 7454 }; 7455 7456 /// Determine whether this is an indirect path to a temporary that we are 7457 /// supposed to lifetime-extend along. 7458 static PathLifetimeKind 7459 shouldLifetimeExtendThroughPath(const IndirectLocalPath &Path) { 7460 PathLifetimeKind Kind = PathLifetimeKind::Extend; 7461 for (auto Elem : Path) { 7462 if (Elem.Kind == IndirectLocalPathEntry::DefaultInit) 7463 Kind = PathLifetimeKind::ShouldExtend; 7464 else if (Elem.Kind != IndirectLocalPathEntry::LambdaCaptureInit) 7465 return PathLifetimeKind::NoExtend; 7466 } 7467 return Kind; 7468 } 7469 7470 /// Find the range for the first interesting entry in the path at or after I. 7471 static SourceRange nextPathEntryRange(const IndirectLocalPath &Path, unsigned I, 7472 Expr *E) { 7473 for (unsigned N = Path.size(); I != N; ++I) { 7474 switch (Path[I].Kind) { 7475 case IndirectLocalPathEntry::AddressOf: 7476 case IndirectLocalPathEntry::LValToRVal: 7477 case IndirectLocalPathEntry::LifetimeBoundCall: 7478 case IndirectLocalPathEntry::TemporaryCopy: 7479 case IndirectLocalPathEntry::GslReferenceInit: 7480 case IndirectLocalPathEntry::GslPointerInit: 7481 // These exist primarily to mark the path as not permitting or 7482 // supporting lifetime extension. 7483 break; 7484 7485 case IndirectLocalPathEntry::VarInit: 7486 if (cast<VarDecl>(Path[I].D)->isImplicit()) 7487 return SourceRange(); 7488 LLVM_FALLTHROUGH; 7489 case IndirectLocalPathEntry::DefaultInit: 7490 return Path[I].E->getSourceRange(); 7491 7492 case IndirectLocalPathEntry::LambdaCaptureInit: 7493 if (!Path[I].Capture->capturesVariable()) 7494 continue; 7495 return Path[I].E->getSourceRange(); 7496 } 7497 } 7498 return E->getSourceRange(); 7499 } 7500 7501 static bool pathOnlyInitializesGslPointer(IndirectLocalPath &Path) { 7502 for (auto It = Path.rbegin(), End = Path.rend(); It != End; ++It) { 7503 if (It->Kind == IndirectLocalPathEntry::VarInit) 7504 continue; 7505 if (It->Kind == IndirectLocalPathEntry::AddressOf) 7506 continue; 7507 return It->Kind == IndirectLocalPathEntry::GslPointerInit || 7508 It->Kind == IndirectLocalPathEntry::GslReferenceInit; 7509 } 7510 return false; 7511 } 7512 7513 void Sema::checkInitializerLifetime(const InitializedEntity &Entity, 7514 Expr *Init) { 7515 LifetimeResult LR = getEntityLifetime(&Entity); 7516 LifetimeKind LK = LR.getInt(); 7517 const InitializedEntity *ExtendingEntity = LR.getPointer(); 7518 7519 // If this entity doesn't have an interesting lifetime, don't bother looking 7520 // for temporaries within its initializer. 7521 if (LK == LK_FullExpression) 7522 return; 7523 7524 auto TemporaryVisitor = [&](IndirectLocalPath &Path, Local L, 7525 ReferenceKind RK) -> bool { 7526 SourceRange DiagRange = nextPathEntryRange(Path, 0, L); 7527 SourceLocation DiagLoc = DiagRange.getBegin(); 7528 7529 auto *MTE = dyn_cast<MaterializeTemporaryExpr>(L); 7530 7531 bool IsGslPtrInitWithGslTempOwner = false; 7532 bool IsLocalGslOwner = false; 7533 if (pathOnlyInitializesGslPointer(Path)) { 7534 if (isa<DeclRefExpr>(L)) { 7535 // We do not want to follow the references when returning a pointer originating 7536 // from a local owner to avoid the following false positive: 7537 // int &p = *localUniquePtr; 7538 // someContainer.add(std::move(localUniquePtr)); 7539 // return p; 7540 IsLocalGslOwner = isRecordWithAttr<OwnerAttr>(L->getType()); 7541 if (pathContainsInit(Path) || !IsLocalGslOwner) 7542 return false; 7543 } else { 7544 IsGslPtrInitWithGslTempOwner = MTE && !MTE->getExtendingDecl() && 7545 isRecordWithAttr<OwnerAttr>(MTE->getType()); 7546 // Skipping a chain of initializing gsl::Pointer annotated objects. 7547 // We are looking only for the final source to find out if it was 7548 // a local or temporary owner or the address of a local variable/param. 7549 if (!IsGslPtrInitWithGslTempOwner) 7550 return true; 7551 } 7552 } 7553 7554 switch (LK) { 7555 case LK_FullExpression: 7556 llvm_unreachable("already handled this"); 7557 7558 case LK_Extended: { 7559 if (!MTE) { 7560 // The initialized entity has lifetime beyond the full-expression, 7561 // and the local entity does too, so don't warn. 7562 // 7563 // FIXME: We should consider warning if a static / thread storage 7564 // duration variable retains an automatic storage duration local. 7565 return false; 7566 } 7567 7568 if (IsGslPtrInitWithGslTempOwner && DiagLoc.isValid()) { 7569 Diag(DiagLoc, diag::warn_dangling_lifetime_pointer) << DiagRange; 7570 return false; 7571 } 7572 7573 switch (shouldLifetimeExtendThroughPath(Path)) { 7574 case PathLifetimeKind::Extend: 7575 // Update the storage duration of the materialized temporary. 7576 // FIXME: Rebuild the expression instead of mutating it. 7577 MTE->setExtendingDecl(ExtendingEntity->getDecl(), 7578 ExtendingEntity->allocateManglingNumber()); 7579 // Also visit the temporaries lifetime-extended by this initializer. 7580 return true; 7581 7582 case PathLifetimeKind::ShouldExtend: 7583 // We're supposed to lifetime-extend the temporary along this path (per 7584 // the resolution of DR1815), but we don't support that yet. 7585 // 7586 // FIXME: Properly handle this situation. Perhaps the easiest approach 7587 // would be to clone the initializer expression on each use that would 7588 // lifetime extend its temporaries. 7589 Diag(DiagLoc, diag::warn_unsupported_lifetime_extension) 7590 << RK << DiagRange; 7591 break; 7592 7593 case PathLifetimeKind::NoExtend: 7594 // If the path goes through the initialization of a variable or field, 7595 // it can't possibly reach a temporary created in this full-expression. 7596 // We will have already diagnosed any problems with the initializer. 7597 if (pathContainsInit(Path)) 7598 return false; 7599 7600 Diag(DiagLoc, diag::warn_dangling_variable) 7601 << RK << !Entity.getParent() 7602 << ExtendingEntity->getDecl()->isImplicit() 7603 << ExtendingEntity->getDecl() << Init->isGLValue() << DiagRange; 7604 break; 7605 } 7606 break; 7607 } 7608 7609 case LK_MemInitializer: { 7610 if (isa<MaterializeTemporaryExpr>(L)) { 7611 // Under C++ DR1696, if a mem-initializer (or a default member 7612 // initializer used by the absence of one) would lifetime-extend a 7613 // temporary, the program is ill-formed. 7614 if (auto *ExtendingDecl = 7615 ExtendingEntity ? ExtendingEntity->getDecl() : nullptr) { 7616 if (IsGslPtrInitWithGslTempOwner) { 7617 Diag(DiagLoc, diag::warn_dangling_lifetime_pointer_member) 7618 << ExtendingDecl << DiagRange; 7619 Diag(ExtendingDecl->getLocation(), 7620 diag::note_ref_or_ptr_member_declared_here) 7621 << true; 7622 return false; 7623 } 7624 bool IsSubobjectMember = ExtendingEntity != &Entity; 7625 Diag(DiagLoc, shouldLifetimeExtendThroughPath(Path) != 7626 PathLifetimeKind::NoExtend 7627 ? diag::err_dangling_member 7628 : diag::warn_dangling_member) 7629 << ExtendingDecl << IsSubobjectMember << RK << DiagRange; 7630 // Don't bother adding a note pointing to the field if we're inside 7631 // its default member initializer; our primary diagnostic points to 7632 // the same place in that case. 7633 if (Path.empty() || 7634 Path.back().Kind != IndirectLocalPathEntry::DefaultInit) { 7635 Diag(ExtendingDecl->getLocation(), 7636 diag::note_lifetime_extending_member_declared_here) 7637 << RK << IsSubobjectMember; 7638 } 7639 } else { 7640 // We have a mem-initializer but no particular field within it; this 7641 // is either a base class or a delegating initializer directly 7642 // initializing the base-class from something that doesn't live long 7643 // enough. 7644 // 7645 // FIXME: Warn on this. 7646 return false; 7647 } 7648 } else { 7649 // Paths via a default initializer can only occur during error recovery 7650 // (there's no other way that a default initializer can refer to a 7651 // local). Don't produce a bogus warning on those cases. 7652 if (pathContainsInit(Path)) 7653 return false; 7654 7655 // Suppress false positives for code like the one below: 7656 // Ctor(unique_ptr<T> up) : member(*up), member2(move(up)) {} 7657 if (IsLocalGslOwner && pathOnlyInitializesGslPointer(Path)) 7658 return false; 7659 7660 auto *DRE = dyn_cast<DeclRefExpr>(L); 7661 auto *VD = DRE ? dyn_cast<VarDecl>(DRE->getDecl()) : nullptr; 7662 if (!VD) { 7663 // A member was initialized to a local block. 7664 // FIXME: Warn on this. 7665 return false; 7666 } 7667 7668 if (auto *Member = 7669 ExtendingEntity ? ExtendingEntity->getDecl() : nullptr) { 7670 bool IsPointer = !Member->getType()->isReferenceType(); 7671 Diag(DiagLoc, IsPointer ? diag::warn_init_ptr_member_to_parameter_addr 7672 : diag::warn_bind_ref_member_to_parameter) 7673 << Member << VD << isa<ParmVarDecl>(VD) << DiagRange; 7674 Diag(Member->getLocation(), 7675 diag::note_ref_or_ptr_member_declared_here) 7676 << (unsigned)IsPointer; 7677 } 7678 } 7679 break; 7680 } 7681 7682 case LK_New: 7683 if (isa<MaterializeTemporaryExpr>(L)) { 7684 if (IsGslPtrInitWithGslTempOwner) 7685 Diag(DiagLoc, diag::warn_dangling_lifetime_pointer) << DiagRange; 7686 else 7687 Diag(DiagLoc, RK == RK_ReferenceBinding 7688 ? diag::warn_new_dangling_reference 7689 : diag::warn_new_dangling_initializer_list) 7690 << !Entity.getParent() << DiagRange; 7691 } else { 7692 // We can't determine if the allocation outlives the local declaration. 7693 return false; 7694 } 7695 break; 7696 7697 case LK_Return: 7698 case LK_StmtExprResult: 7699 if (auto *DRE = dyn_cast<DeclRefExpr>(L)) { 7700 // We can't determine if the local variable outlives the statement 7701 // expression. 7702 if (LK == LK_StmtExprResult) 7703 return false; 7704 Diag(DiagLoc, diag::warn_ret_stack_addr_ref) 7705 << Entity.getType()->isReferenceType() << DRE->getDecl() 7706 << isa<ParmVarDecl>(DRE->getDecl()) << DiagRange; 7707 } else if (isa<BlockExpr>(L)) { 7708 Diag(DiagLoc, diag::err_ret_local_block) << DiagRange; 7709 } else if (isa<AddrLabelExpr>(L)) { 7710 // Don't warn when returning a label from a statement expression. 7711 // Leaving the scope doesn't end its lifetime. 7712 if (LK == LK_StmtExprResult) 7713 return false; 7714 Diag(DiagLoc, diag::warn_ret_addr_label) << DiagRange; 7715 } else { 7716 Diag(DiagLoc, diag::warn_ret_local_temp_addr_ref) 7717 << Entity.getType()->isReferenceType() << DiagRange; 7718 } 7719 break; 7720 } 7721 7722 for (unsigned I = 0; I != Path.size(); ++I) { 7723 auto Elem = Path[I]; 7724 7725 switch (Elem.Kind) { 7726 case IndirectLocalPathEntry::AddressOf: 7727 case IndirectLocalPathEntry::LValToRVal: 7728 // These exist primarily to mark the path as not permitting or 7729 // supporting lifetime extension. 7730 break; 7731 7732 case IndirectLocalPathEntry::LifetimeBoundCall: 7733 case IndirectLocalPathEntry::TemporaryCopy: 7734 case IndirectLocalPathEntry::GslPointerInit: 7735 case IndirectLocalPathEntry::GslReferenceInit: 7736 // FIXME: Consider adding a note for these. 7737 break; 7738 7739 case IndirectLocalPathEntry::DefaultInit: { 7740 auto *FD = cast<FieldDecl>(Elem.D); 7741 Diag(FD->getLocation(), diag::note_init_with_default_member_initalizer) 7742 << FD << nextPathEntryRange(Path, I + 1, L); 7743 break; 7744 } 7745 7746 case IndirectLocalPathEntry::VarInit: { 7747 const VarDecl *VD = cast<VarDecl>(Elem.D); 7748 Diag(VD->getLocation(), diag::note_local_var_initializer) 7749 << VD->getType()->isReferenceType() 7750 << VD->isImplicit() << VD->getDeclName() 7751 << nextPathEntryRange(Path, I + 1, L); 7752 break; 7753 } 7754 7755 case IndirectLocalPathEntry::LambdaCaptureInit: 7756 if (!Elem.Capture->capturesVariable()) 7757 break; 7758 // FIXME: We can't easily tell apart an init-capture from a nested 7759 // capture of an init-capture. 7760 const VarDecl *VD = Elem.Capture->getCapturedVar(); 7761 Diag(Elem.Capture->getLocation(), diag::note_lambda_capture_initializer) 7762 << VD << VD->isInitCapture() << Elem.Capture->isExplicit() 7763 << (Elem.Capture->getCaptureKind() == LCK_ByRef) << VD 7764 << nextPathEntryRange(Path, I + 1, L); 7765 break; 7766 } 7767 } 7768 7769 // We didn't lifetime-extend, so don't go any further; we don't need more 7770 // warnings or errors on inner temporaries within this one's initializer. 7771 return false; 7772 }; 7773 7774 bool EnableLifetimeWarnings = !getDiagnostics().isIgnored( 7775 diag::warn_dangling_lifetime_pointer, SourceLocation()); 7776 llvm::SmallVector<IndirectLocalPathEntry, 8> Path; 7777 if (Init->isGLValue()) 7778 visitLocalsRetainedByReferenceBinding(Path, Init, RK_ReferenceBinding, 7779 TemporaryVisitor, 7780 EnableLifetimeWarnings); 7781 else 7782 visitLocalsRetainedByInitializer(Path, Init, TemporaryVisitor, false, 7783 EnableLifetimeWarnings); 7784 } 7785 7786 static void DiagnoseNarrowingInInitList(Sema &S, 7787 const ImplicitConversionSequence &ICS, 7788 QualType PreNarrowingType, 7789 QualType EntityType, 7790 const Expr *PostInit); 7791 7792 /// Provide warnings when std::move is used on construction. 7793 static void CheckMoveOnConstruction(Sema &S, const Expr *InitExpr, 7794 bool IsReturnStmt) { 7795 if (!InitExpr) 7796 return; 7797 7798 if (S.inTemplateInstantiation()) 7799 return; 7800 7801 QualType DestType = InitExpr->getType(); 7802 if (!DestType->isRecordType()) 7803 return; 7804 7805 unsigned DiagID = 0; 7806 if (IsReturnStmt) { 7807 const CXXConstructExpr *CCE = 7808 dyn_cast<CXXConstructExpr>(InitExpr->IgnoreParens()); 7809 if (!CCE || CCE->getNumArgs() != 1) 7810 return; 7811 7812 if (!CCE->getConstructor()->isCopyOrMoveConstructor()) 7813 return; 7814 7815 InitExpr = CCE->getArg(0)->IgnoreImpCasts(); 7816 } 7817 7818 // Find the std::move call and get the argument. 7819 const CallExpr *CE = dyn_cast<CallExpr>(InitExpr->IgnoreParens()); 7820 if (!CE || !CE->isCallToStdMove()) 7821 return; 7822 7823 const Expr *Arg = CE->getArg(0)->IgnoreImplicit(); 7824 7825 if (IsReturnStmt) { 7826 const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Arg->IgnoreParenImpCasts()); 7827 if (!DRE || DRE->refersToEnclosingVariableOrCapture()) 7828 return; 7829 7830 const VarDecl *VD = dyn_cast<VarDecl>(DRE->getDecl()); 7831 if (!VD || !VD->hasLocalStorage()) 7832 return; 7833 7834 // __block variables are not moved implicitly. 7835 if (VD->hasAttr<BlocksAttr>()) 7836 return; 7837 7838 QualType SourceType = VD->getType(); 7839 if (!SourceType->isRecordType()) 7840 return; 7841 7842 if (!S.Context.hasSameUnqualifiedType(DestType, SourceType)) { 7843 return; 7844 } 7845 7846 // If we're returning a function parameter, copy elision 7847 // is not possible. 7848 if (isa<ParmVarDecl>(VD)) 7849 DiagID = diag::warn_redundant_move_on_return; 7850 else 7851 DiagID = diag::warn_pessimizing_move_on_return; 7852 } else { 7853 DiagID = diag::warn_pessimizing_move_on_initialization; 7854 const Expr *ArgStripped = Arg->IgnoreImplicit()->IgnoreParens(); 7855 if (!ArgStripped->isRValue() || !ArgStripped->getType()->isRecordType()) 7856 return; 7857 } 7858 7859 S.Diag(CE->getBeginLoc(), DiagID); 7860 7861 // Get all the locations for a fix-it. Don't emit the fix-it if any location 7862 // is within a macro. 7863 SourceLocation CallBegin = CE->getCallee()->getBeginLoc(); 7864 if (CallBegin.isMacroID()) 7865 return; 7866 SourceLocation RParen = CE->getRParenLoc(); 7867 if (RParen.isMacroID()) 7868 return; 7869 SourceLocation LParen; 7870 SourceLocation ArgLoc = Arg->getBeginLoc(); 7871 7872 // Special testing for the argument location. Since the fix-it needs the 7873 // location right before the argument, the argument location can be in a 7874 // macro only if it is at the beginning of the macro. 7875 while (ArgLoc.isMacroID() && 7876 S.getSourceManager().isAtStartOfImmediateMacroExpansion(ArgLoc)) { 7877 ArgLoc = S.getSourceManager().getImmediateExpansionRange(ArgLoc).getBegin(); 7878 } 7879 7880 if (LParen.isMacroID()) 7881 return; 7882 7883 LParen = ArgLoc.getLocWithOffset(-1); 7884 7885 S.Diag(CE->getBeginLoc(), diag::note_remove_move) 7886 << FixItHint::CreateRemoval(SourceRange(CallBegin, LParen)) 7887 << FixItHint::CreateRemoval(SourceRange(RParen, RParen)); 7888 } 7889 7890 static void CheckForNullPointerDereference(Sema &S, const Expr *E) { 7891 // Check to see if we are dereferencing a null pointer. If so, this is 7892 // undefined behavior, so warn about it. This only handles the pattern 7893 // "*null", which is a very syntactic check. 7894 if (const UnaryOperator *UO = dyn_cast<UnaryOperator>(E->IgnoreParenCasts())) 7895 if (UO->getOpcode() == UO_Deref && 7896 UO->getSubExpr()->IgnoreParenCasts()-> 7897 isNullPointerConstant(S.Context, Expr::NPC_ValueDependentIsNotNull)) { 7898 S.DiagRuntimeBehavior(UO->getOperatorLoc(), UO, 7899 S.PDiag(diag::warn_binding_null_to_reference) 7900 << UO->getSubExpr()->getSourceRange()); 7901 } 7902 } 7903 7904 MaterializeTemporaryExpr * 7905 Sema::CreateMaterializeTemporaryExpr(QualType T, Expr *Temporary, 7906 bool BoundToLvalueReference) { 7907 auto MTE = new (Context) 7908 MaterializeTemporaryExpr(T, Temporary, BoundToLvalueReference); 7909 7910 // Order an ExprWithCleanups for lifetime marks. 7911 // 7912 // TODO: It'll be good to have a single place to check the access of the 7913 // destructor and generate ExprWithCleanups for various uses. Currently these 7914 // are done in both CreateMaterializeTemporaryExpr and MaybeBindToTemporary, 7915 // but there may be a chance to merge them. 7916 Cleanup.setExprNeedsCleanups(false); 7917 return MTE; 7918 } 7919 7920 ExprResult Sema::TemporaryMaterializationConversion(Expr *E) { 7921 // In C++98, we don't want to implicitly create an xvalue. 7922 // FIXME: This means that AST consumers need to deal with "prvalues" that 7923 // denote materialized temporaries. Maybe we should add another ValueKind 7924 // for "xvalue pretending to be a prvalue" for C++98 support. 7925 if (!E->isRValue() || !getLangOpts().CPlusPlus11) 7926 return E; 7927 7928 // C++1z [conv.rval]/1: T shall be a complete type. 7929 // FIXME: Does this ever matter (can we form a prvalue of incomplete type)? 7930 // If so, we should check for a non-abstract class type here too. 7931 QualType T = E->getType(); 7932 if (RequireCompleteType(E->getExprLoc(), T, diag::err_incomplete_type)) 7933 return ExprError(); 7934 7935 return CreateMaterializeTemporaryExpr(E->getType(), E, false); 7936 } 7937 7938 ExprResult Sema::PerformQualificationConversion(Expr *E, QualType Ty, 7939 ExprValueKind VK, 7940 CheckedConversionKind CCK) { 7941 7942 CastKind CK = CK_NoOp; 7943 7944 if (VK == VK_RValue) { 7945 auto PointeeTy = Ty->getPointeeType(); 7946 auto ExprPointeeTy = E->getType()->getPointeeType(); 7947 if (!PointeeTy.isNull() && 7948 PointeeTy.getAddressSpace() != ExprPointeeTy.getAddressSpace()) 7949 CK = CK_AddressSpaceConversion; 7950 } else if (Ty.getAddressSpace() != E->getType().getAddressSpace()) { 7951 CK = CK_AddressSpaceConversion; 7952 } 7953 7954 return ImpCastExprToType(E, Ty, CK, VK, /*BasePath=*/nullptr, CCK); 7955 } 7956 7957 ExprResult InitializationSequence::Perform(Sema &S, 7958 const InitializedEntity &Entity, 7959 const InitializationKind &Kind, 7960 MultiExprArg Args, 7961 QualType *ResultType) { 7962 if (Failed()) { 7963 Diagnose(S, Entity, Kind, Args); 7964 return ExprError(); 7965 } 7966 if (!ZeroInitializationFixit.empty()) { 7967 unsigned DiagID = diag::err_default_init_const; 7968 if (Decl *D = Entity.getDecl()) 7969 if (S.getLangOpts().MSVCCompat && D->hasAttr<SelectAnyAttr>()) 7970 DiagID = diag::ext_default_init_const; 7971 7972 // The initialization would have succeeded with this fixit. Since the fixit 7973 // is on the error, we need to build a valid AST in this case, so this isn't 7974 // handled in the Failed() branch above. 7975 QualType DestType = Entity.getType(); 7976 S.Diag(Kind.getLocation(), DiagID) 7977 << DestType << (bool)DestType->getAs<RecordType>() 7978 << FixItHint::CreateInsertion(ZeroInitializationFixitLoc, 7979 ZeroInitializationFixit); 7980 } 7981 7982 if (getKind() == DependentSequence) { 7983 // If the declaration is a non-dependent, incomplete array type 7984 // that has an initializer, then its type will be completed once 7985 // the initializer is instantiated. 7986 if (ResultType && !Entity.getType()->isDependentType() && 7987 Args.size() == 1) { 7988 QualType DeclType = Entity.getType(); 7989 if (const IncompleteArrayType *ArrayT 7990 = S.Context.getAsIncompleteArrayType(DeclType)) { 7991 // FIXME: We don't currently have the ability to accurately 7992 // compute the length of an initializer list without 7993 // performing full type-checking of the initializer list 7994 // (since we have to determine where braces are implicitly 7995 // introduced and such). So, we fall back to making the array 7996 // type a dependently-sized array type with no specified 7997 // bound. 7998 if (isa<InitListExpr>((Expr *)Args[0])) { 7999 SourceRange Brackets; 8000 8001 // Scavange the location of the brackets from the entity, if we can. 8002 if (auto *DD = dyn_cast_or_null<DeclaratorDecl>(Entity.getDecl())) { 8003 if (TypeSourceInfo *TInfo = DD->getTypeSourceInfo()) { 8004 TypeLoc TL = TInfo->getTypeLoc(); 8005 if (IncompleteArrayTypeLoc ArrayLoc = 8006 TL.getAs<IncompleteArrayTypeLoc>()) 8007 Brackets = ArrayLoc.getBracketsRange(); 8008 } 8009 } 8010 8011 *ResultType 8012 = S.Context.getDependentSizedArrayType(ArrayT->getElementType(), 8013 /*NumElts=*/nullptr, 8014 ArrayT->getSizeModifier(), 8015 ArrayT->getIndexTypeCVRQualifiers(), 8016 Brackets); 8017 } 8018 8019 } 8020 } 8021 if (Kind.getKind() == InitializationKind::IK_Direct && 8022 !Kind.isExplicitCast()) { 8023 // Rebuild the ParenListExpr. 8024 SourceRange ParenRange = Kind.getParenOrBraceRange(); 8025 return S.ActOnParenListExpr(ParenRange.getBegin(), ParenRange.getEnd(), 8026 Args); 8027 } 8028 assert(Kind.getKind() == InitializationKind::IK_Copy || 8029 Kind.isExplicitCast() || 8030 Kind.getKind() == InitializationKind::IK_DirectList); 8031 return ExprResult(Args[0]); 8032 } 8033 8034 // No steps means no initialization. 8035 if (Steps.empty()) 8036 return ExprResult((Expr *)nullptr); 8037 8038 if (S.getLangOpts().CPlusPlus11 && Entity.getType()->isReferenceType() && 8039 Args.size() == 1 && isa<InitListExpr>(Args[0]) && 8040 !Entity.isParamOrTemplateParamKind()) { 8041 // Produce a C++98 compatibility warning if we are initializing a reference 8042 // from an initializer list. For parameters, we produce a better warning 8043 // elsewhere. 8044 Expr *Init = Args[0]; 8045 S.Diag(Init->getBeginLoc(), diag::warn_cxx98_compat_reference_list_init) 8046 << Init->getSourceRange(); 8047 } 8048 8049 // OpenCL v2.0 s6.13.11.1. atomic variables can be initialized in global scope 8050 QualType ETy = Entity.getType(); 8051 bool HasGlobalAS = ETy.hasAddressSpace() && 8052 ETy.getAddressSpace() == LangAS::opencl_global; 8053 8054 if (S.getLangOpts().OpenCLVersion >= 200 && 8055 ETy->isAtomicType() && !HasGlobalAS && 8056 Entity.getKind() == InitializedEntity::EK_Variable && Args.size() > 0) { 8057 S.Diag(Args[0]->getBeginLoc(), diag::err_opencl_atomic_init) 8058 << 1 8059 << SourceRange(Entity.getDecl()->getBeginLoc(), Args[0]->getEndLoc()); 8060 return ExprError(); 8061 } 8062 8063 QualType DestType = Entity.getType().getNonReferenceType(); 8064 // FIXME: Ugly hack around the fact that Entity.getType() is not 8065 // the same as Entity.getDecl()->getType() in cases involving type merging, 8066 // and we want latter when it makes sense. 8067 if (ResultType) 8068 *ResultType = Entity.getDecl() ? Entity.getDecl()->getType() : 8069 Entity.getType(); 8070 8071 ExprResult CurInit((Expr *)nullptr); 8072 SmallVector<Expr*, 4> ArrayLoopCommonExprs; 8073 8074 // For initialization steps that start with a single initializer, 8075 // grab the only argument out the Args and place it into the "current" 8076 // initializer. 8077 switch (Steps.front().Kind) { 8078 case SK_ResolveAddressOfOverloadedFunction: 8079 case SK_CastDerivedToBaseRValue: 8080 case SK_CastDerivedToBaseXValue: 8081 case SK_CastDerivedToBaseLValue: 8082 case SK_BindReference: 8083 case SK_BindReferenceToTemporary: 8084 case SK_FinalCopy: 8085 case SK_ExtraneousCopyToTemporary: 8086 case SK_UserConversion: 8087 case SK_QualificationConversionLValue: 8088 case SK_QualificationConversionXValue: 8089 case SK_QualificationConversionRValue: 8090 case SK_FunctionReferenceConversion: 8091 case SK_AtomicConversion: 8092 case SK_ConversionSequence: 8093 case SK_ConversionSequenceNoNarrowing: 8094 case SK_ListInitialization: 8095 case SK_UnwrapInitList: 8096 case SK_RewrapInitList: 8097 case SK_CAssignment: 8098 case SK_StringInit: 8099 case SK_ObjCObjectConversion: 8100 case SK_ArrayLoopIndex: 8101 case SK_ArrayLoopInit: 8102 case SK_ArrayInit: 8103 case SK_GNUArrayInit: 8104 case SK_ParenthesizedArrayInit: 8105 case SK_PassByIndirectCopyRestore: 8106 case SK_PassByIndirectRestore: 8107 case SK_ProduceObjCObject: 8108 case SK_StdInitializerList: 8109 case SK_OCLSamplerInit: 8110 case SK_OCLZeroOpaqueType: { 8111 assert(Args.size() == 1); 8112 CurInit = Args[0]; 8113 if (!CurInit.get()) return ExprError(); 8114 break; 8115 } 8116 8117 case SK_ConstructorInitialization: 8118 case SK_ConstructorInitializationFromList: 8119 case SK_StdInitializerListConstructorCall: 8120 case SK_ZeroInitialization: 8121 break; 8122 } 8123 8124 // Promote from an unevaluated context to an unevaluated list context in 8125 // C++11 list-initialization; we need to instantiate entities usable in 8126 // constant expressions here in order to perform narrowing checks =( 8127 EnterExpressionEvaluationContext Evaluated( 8128 S, EnterExpressionEvaluationContext::InitList, 8129 CurInit.get() && isa<InitListExpr>(CurInit.get())); 8130 8131 // C++ [class.abstract]p2: 8132 // no objects of an abstract class can be created except as subobjects 8133 // of a class derived from it 8134 auto checkAbstractType = [&](QualType T) -> bool { 8135 if (Entity.getKind() == InitializedEntity::EK_Base || 8136 Entity.getKind() == InitializedEntity::EK_Delegating) 8137 return false; 8138 return S.RequireNonAbstractType(Kind.getLocation(), T, 8139 diag::err_allocation_of_abstract_type); 8140 }; 8141 8142 // Walk through the computed steps for the initialization sequence, 8143 // performing the specified conversions along the way. 8144 bool ConstructorInitRequiresZeroInit = false; 8145 for (step_iterator Step = step_begin(), StepEnd = step_end(); 8146 Step != StepEnd; ++Step) { 8147 if (CurInit.isInvalid()) 8148 return ExprError(); 8149 8150 QualType SourceType = CurInit.get() ? CurInit.get()->getType() : QualType(); 8151 8152 switch (Step->Kind) { 8153 case SK_ResolveAddressOfOverloadedFunction: 8154 // Overload resolution determined which function invoke; update the 8155 // initializer to reflect that choice. 8156 S.CheckAddressOfMemberAccess(CurInit.get(), Step->Function.FoundDecl); 8157 if (S.DiagnoseUseOfDecl(Step->Function.FoundDecl, Kind.getLocation())) 8158 return ExprError(); 8159 CurInit = S.FixOverloadedFunctionReference(CurInit, 8160 Step->Function.FoundDecl, 8161 Step->Function.Function); 8162 break; 8163 8164 case SK_CastDerivedToBaseRValue: 8165 case SK_CastDerivedToBaseXValue: 8166 case SK_CastDerivedToBaseLValue: { 8167 // We have a derived-to-base cast that produces either an rvalue or an 8168 // lvalue. Perform that cast. 8169 8170 CXXCastPath BasePath; 8171 8172 // Casts to inaccessible base classes are allowed with C-style casts. 8173 bool IgnoreBaseAccess = Kind.isCStyleOrFunctionalCast(); 8174 if (S.CheckDerivedToBaseConversion( 8175 SourceType, Step->Type, CurInit.get()->getBeginLoc(), 8176 CurInit.get()->getSourceRange(), &BasePath, IgnoreBaseAccess)) 8177 return ExprError(); 8178 8179 ExprValueKind VK = 8180 Step->Kind == SK_CastDerivedToBaseLValue ? 8181 VK_LValue : 8182 (Step->Kind == SK_CastDerivedToBaseXValue ? 8183 VK_XValue : 8184 VK_RValue); 8185 CurInit = ImplicitCastExpr::Create(S.Context, Step->Type, 8186 CK_DerivedToBase, CurInit.get(), 8187 &BasePath, VK, FPOptionsOverride()); 8188 break; 8189 } 8190 8191 case SK_BindReference: 8192 // Reference binding does not have any corresponding ASTs. 8193 8194 // Check exception specifications 8195 if (S.CheckExceptionSpecCompatibility(CurInit.get(), DestType)) 8196 return ExprError(); 8197 8198 // We don't check for e.g. function pointers here, since address 8199 // availability checks should only occur when the function first decays 8200 // into a pointer or reference. 8201 if (CurInit.get()->getType()->isFunctionProtoType()) { 8202 if (auto *DRE = dyn_cast<DeclRefExpr>(CurInit.get()->IgnoreParens())) { 8203 if (auto *FD = dyn_cast<FunctionDecl>(DRE->getDecl())) { 8204 if (!S.checkAddressOfFunctionIsAvailable(FD, /*Complain=*/true, 8205 DRE->getBeginLoc())) 8206 return ExprError(); 8207 } 8208 } 8209 } 8210 8211 CheckForNullPointerDereference(S, CurInit.get()); 8212 break; 8213 8214 case SK_BindReferenceToTemporary: { 8215 // Make sure the "temporary" is actually an rvalue. 8216 assert(CurInit.get()->isRValue() && "not a temporary"); 8217 8218 // Check exception specifications 8219 if (S.CheckExceptionSpecCompatibility(CurInit.get(), DestType)) 8220 return ExprError(); 8221 8222 QualType MTETy = Step->Type; 8223 8224 // When this is an incomplete array type (such as when this is 8225 // initializing an array of unknown bounds from an init list), use THAT 8226 // type instead so that we propogate the array bounds. 8227 if (MTETy->isIncompleteArrayType() && 8228 !CurInit.get()->getType()->isIncompleteArrayType() && 8229 S.Context.hasSameType( 8230 MTETy->getPointeeOrArrayElementType(), 8231 CurInit.get()->getType()->getPointeeOrArrayElementType())) 8232 MTETy = CurInit.get()->getType(); 8233 8234 // Materialize the temporary into memory. 8235 MaterializeTemporaryExpr *MTE = S.CreateMaterializeTemporaryExpr( 8236 MTETy, CurInit.get(), Entity.getType()->isLValueReferenceType()); 8237 CurInit = MTE; 8238 8239 // If we're extending this temporary to automatic storage duration -- we 8240 // need to register its cleanup during the full-expression's cleanups. 8241 if (MTE->getStorageDuration() == SD_Automatic && 8242 MTE->getType().isDestructedType()) 8243 S.Cleanup.setExprNeedsCleanups(true); 8244 break; 8245 } 8246 8247 case SK_FinalCopy: 8248 if (checkAbstractType(Step->Type)) 8249 return ExprError(); 8250 8251 // If the overall initialization is initializing a temporary, we already 8252 // bound our argument if it was necessary to do so. If not (if we're 8253 // ultimately initializing a non-temporary), our argument needs to be 8254 // bound since it's initializing a function parameter. 8255 // FIXME: This is a mess. Rationalize temporary destruction. 8256 if (!shouldBindAsTemporary(Entity)) 8257 CurInit = S.MaybeBindToTemporary(CurInit.get()); 8258 CurInit = CopyObject(S, Step->Type, Entity, CurInit, 8259 /*IsExtraneousCopy=*/false); 8260 break; 8261 8262 case SK_ExtraneousCopyToTemporary: 8263 CurInit = CopyObject(S, Step->Type, Entity, CurInit, 8264 /*IsExtraneousCopy=*/true); 8265 break; 8266 8267 case SK_UserConversion: { 8268 // We have a user-defined conversion that invokes either a constructor 8269 // or a conversion function. 8270 CastKind CastKind; 8271 FunctionDecl *Fn = Step->Function.Function; 8272 DeclAccessPair FoundFn = Step->Function.FoundDecl; 8273 bool HadMultipleCandidates = Step->Function.HadMultipleCandidates; 8274 bool CreatedObject = false; 8275 if (CXXConstructorDecl *Constructor = dyn_cast<CXXConstructorDecl>(Fn)) { 8276 // Build a call to the selected constructor. 8277 SmallVector<Expr*, 8> ConstructorArgs; 8278 SourceLocation Loc = CurInit.get()->getBeginLoc(); 8279 8280 // Determine the arguments required to actually perform the constructor 8281 // call. 8282 Expr *Arg = CurInit.get(); 8283 if (S.CompleteConstructorCall(Constructor, 8284 MultiExprArg(&Arg, 1), 8285 Loc, ConstructorArgs)) 8286 return ExprError(); 8287 8288 // Build an expression that constructs a temporary. 8289 CurInit = S.BuildCXXConstructExpr(Loc, Step->Type, 8290 FoundFn, Constructor, 8291 ConstructorArgs, 8292 HadMultipleCandidates, 8293 /*ListInit*/ false, 8294 /*StdInitListInit*/ false, 8295 /*ZeroInit*/ false, 8296 CXXConstructExpr::CK_Complete, 8297 SourceRange()); 8298 if (CurInit.isInvalid()) 8299 return ExprError(); 8300 8301 S.CheckConstructorAccess(Kind.getLocation(), Constructor, FoundFn, 8302 Entity); 8303 if (S.DiagnoseUseOfDecl(FoundFn, Kind.getLocation())) 8304 return ExprError(); 8305 8306 CastKind = CK_ConstructorConversion; 8307 CreatedObject = true; 8308 } else { 8309 // Build a call to the conversion function. 8310 CXXConversionDecl *Conversion = cast<CXXConversionDecl>(Fn); 8311 S.CheckMemberOperatorAccess(Kind.getLocation(), CurInit.get(), nullptr, 8312 FoundFn); 8313 if (S.DiagnoseUseOfDecl(FoundFn, Kind.getLocation())) 8314 return ExprError(); 8315 8316 CurInit = S.BuildCXXMemberCallExpr(CurInit.get(), FoundFn, Conversion, 8317 HadMultipleCandidates); 8318 if (CurInit.isInvalid()) 8319 return ExprError(); 8320 8321 CastKind = CK_UserDefinedConversion; 8322 CreatedObject = Conversion->getReturnType()->isRecordType(); 8323 } 8324 8325 if (CreatedObject && checkAbstractType(CurInit.get()->getType())) 8326 return ExprError(); 8327 8328 CurInit = ImplicitCastExpr::Create( 8329 S.Context, CurInit.get()->getType(), CastKind, CurInit.get(), nullptr, 8330 CurInit.get()->getValueKind(), S.CurFPFeatureOverrides()); 8331 8332 if (shouldBindAsTemporary(Entity)) 8333 // The overall entity is temporary, so this expression should be 8334 // destroyed at the end of its full-expression. 8335 CurInit = S.MaybeBindToTemporary(CurInit.getAs<Expr>()); 8336 else if (CreatedObject && shouldDestroyEntity(Entity)) { 8337 // The object outlasts the full-expression, but we need to prepare for 8338 // a destructor being run on it. 8339 // FIXME: It makes no sense to do this here. This should happen 8340 // regardless of how we initialized the entity. 8341 QualType T = CurInit.get()->getType(); 8342 if (const RecordType *Record = T->getAs<RecordType>()) { 8343 CXXDestructorDecl *Destructor 8344 = S.LookupDestructor(cast<CXXRecordDecl>(Record->getDecl())); 8345 S.CheckDestructorAccess(CurInit.get()->getBeginLoc(), Destructor, 8346 S.PDiag(diag::err_access_dtor_temp) << T); 8347 S.MarkFunctionReferenced(CurInit.get()->getBeginLoc(), Destructor); 8348 if (S.DiagnoseUseOfDecl(Destructor, CurInit.get()->getBeginLoc())) 8349 return ExprError(); 8350 } 8351 } 8352 break; 8353 } 8354 8355 case SK_QualificationConversionLValue: 8356 case SK_QualificationConversionXValue: 8357 case SK_QualificationConversionRValue: { 8358 // Perform a qualification conversion; these can never go wrong. 8359 ExprValueKind VK = 8360 Step->Kind == SK_QualificationConversionLValue 8361 ? VK_LValue 8362 : (Step->Kind == SK_QualificationConversionXValue ? VK_XValue 8363 : VK_RValue); 8364 CurInit = S.PerformQualificationConversion(CurInit.get(), Step->Type, VK); 8365 break; 8366 } 8367 8368 case SK_FunctionReferenceConversion: 8369 assert(CurInit.get()->isLValue() && 8370 "function reference should be lvalue"); 8371 CurInit = 8372 S.ImpCastExprToType(CurInit.get(), Step->Type, CK_NoOp, VK_LValue); 8373 break; 8374 8375 case SK_AtomicConversion: { 8376 assert(CurInit.get()->isRValue() && "cannot convert glvalue to atomic"); 8377 CurInit = S.ImpCastExprToType(CurInit.get(), Step->Type, 8378 CK_NonAtomicToAtomic, VK_RValue); 8379 break; 8380 } 8381 8382 case SK_ConversionSequence: 8383 case SK_ConversionSequenceNoNarrowing: { 8384 if (const auto *FromPtrType = 8385 CurInit.get()->getType()->getAs<PointerType>()) { 8386 if (const auto *ToPtrType = Step->Type->getAs<PointerType>()) { 8387 if (FromPtrType->getPointeeType()->hasAttr(attr::NoDeref) && 8388 !ToPtrType->getPointeeType()->hasAttr(attr::NoDeref)) { 8389 // Do not check static casts here because they are checked earlier 8390 // in Sema::ActOnCXXNamedCast() 8391 if (!Kind.isStaticCast()) { 8392 S.Diag(CurInit.get()->getExprLoc(), 8393 diag::warn_noderef_to_dereferenceable_pointer) 8394 << CurInit.get()->getSourceRange(); 8395 } 8396 } 8397 } 8398 } 8399 8400 Sema::CheckedConversionKind CCK 8401 = Kind.isCStyleCast()? Sema::CCK_CStyleCast 8402 : Kind.isFunctionalCast()? Sema::CCK_FunctionalCast 8403 : Kind.isExplicitCast()? Sema::CCK_OtherCast 8404 : Sema::CCK_ImplicitConversion; 8405 ExprResult CurInitExprRes = 8406 S.PerformImplicitConversion(CurInit.get(), Step->Type, *Step->ICS, 8407 getAssignmentAction(Entity), CCK); 8408 if (CurInitExprRes.isInvalid()) 8409 return ExprError(); 8410 8411 S.DiscardMisalignedMemberAddress(Step->Type.getTypePtr(), CurInit.get()); 8412 8413 CurInit = CurInitExprRes; 8414 8415 if (Step->Kind == SK_ConversionSequenceNoNarrowing && 8416 S.getLangOpts().CPlusPlus) 8417 DiagnoseNarrowingInInitList(S, *Step->ICS, SourceType, Entity.getType(), 8418 CurInit.get()); 8419 8420 break; 8421 } 8422 8423 case SK_ListInitialization: { 8424 if (checkAbstractType(Step->Type)) 8425 return ExprError(); 8426 8427 InitListExpr *InitList = cast<InitListExpr>(CurInit.get()); 8428 // If we're not initializing the top-level entity, we need to create an 8429 // InitializeTemporary entity for our target type. 8430 QualType Ty = Step->Type; 8431 bool IsTemporary = !S.Context.hasSameType(Entity.getType(), Ty); 8432 InitializedEntity TempEntity = InitializedEntity::InitializeTemporary(Ty); 8433 InitializedEntity InitEntity = IsTemporary ? TempEntity : Entity; 8434 InitListChecker PerformInitList(S, InitEntity, 8435 InitList, Ty, /*VerifyOnly=*/false, 8436 /*TreatUnavailableAsInvalid=*/false); 8437 if (PerformInitList.HadError()) 8438 return ExprError(); 8439 8440 // Hack: We must update *ResultType if available in order to set the 8441 // bounds of arrays, e.g. in 'int ar[] = {1, 2, 3};'. 8442 // Worst case: 'const int (&arref)[] = {1, 2, 3};'. 8443 if (ResultType && 8444 ResultType->getNonReferenceType()->isIncompleteArrayType()) { 8445 if ((*ResultType)->isRValueReferenceType()) 8446 Ty = S.Context.getRValueReferenceType(Ty); 8447 else if ((*ResultType)->isLValueReferenceType()) 8448 Ty = S.Context.getLValueReferenceType(Ty, 8449 (*ResultType)->castAs<LValueReferenceType>()->isSpelledAsLValue()); 8450 *ResultType = Ty; 8451 } 8452 8453 InitListExpr *StructuredInitList = 8454 PerformInitList.getFullyStructuredList(); 8455 CurInit.get(); 8456 CurInit = shouldBindAsTemporary(InitEntity) 8457 ? S.MaybeBindToTemporary(StructuredInitList) 8458 : StructuredInitList; 8459 break; 8460 } 8461 8462 case SK_ConstructorInitializationFromList: { 8463 if (checkAbstractType(Step->Type)) 8464 return ExprError(); 8465 8466 // When an initializer list is passed for a parameter of type "reference 8467 // to object", we don't get an EK_Temporary entity, but instead an 8468 // EK_Parameter entity with reference type. 8469 // FIXME: This is a hack. What we really should do is create a user 8470 // conversion step for this case, but this makes it considerably more 8471 // complicated. For now, this will do. 8472 InitializedEntity TempEntity = InitializedEntity::InitializeTemporary( 8473 Entity.getType().getNonReferenceType()); 8474 bool UseTemporary = Entity.getType()->isReferenceType(); 8475 assert(Args.size() == 1 && "expected a single argument for list init"); 8476 InitListExpr *InitList = cast<InitListExpr>(Args[0]); 8477 S.Diag(InitList->getExprLoc(), diag::warn_cxx98_compat_ctor_list_init) 8478 << InitList->getSourceRange(); 8479 MultiExprArg Arg(InitList->getInits(), InitList->getNumInits()); 8480 CurInit = PerformConstructorInitialization(S, UseTemporary ? TempEntity : 8481 Entity, 8482 Kind, Arg, *Step, 8483 ConstructorInitRequiresZeroInit, 8484 /*IsListInitialization*/true, 8485 /*IsStdInitListInit*/false, 8486 InitList->getLBraceLoc(), 8487 InitList->getRBraceLoc()); 8488 break; 8489 } 8490 8491 case SK_UnwrapInitList: 8492 CurInit = cast<InitListExpr>(CurInit.get())->getInit(0); 8493 break; 8494 8495 case SK_RewrapInitList: { 8496 Expr *E = CurInit.get(); 8497 InitListExpr *Syntactic = Step->WrappingSyntacticList; 8498 InitListExpr *ILE = new (S.Context) InitListExpr(S.Context, 8499 Syntactic->getLBraceLoc(), E, Syntactic->getRBraceLoc()); 8500 ILE->setSyntacticForm(Syntactic); 8501 ILE->setType(E->getType()); 8502 ILE->setValueKind(E->getValueKind()); 8503 CurInit = ILE; 8504 break; 8505 } 8506 8507 case SK_ConstructorInitialization: 8508 case SK_StdInitializerListConstructorCall: { 8509 if (checkAbstractType(Step->Type)) 8510 return ExprError(); 8511 8512 // When an initializer list is passed for a parameter of type "reference 8513 // to object", we don't get an EK_Temporary entity, but instead an 8514 // EK_Parameter entity with reference type. 8515 // FIXME: This is a hack. What we really should do is create a user 8516 // conversion step for this case, but this makes it considerably more 8517 // complicated. For now, this will do. 8518 InitializedEntity TempEntity = InitializedEntity::InitializeTemporary( 8519 Entity.getType().getNonReferenceType()); 8520 bool UseTemporary = Entity.getType()->isReferenceType(); 8521 bool IsStdInitListInit = 8522 Step->Kind == SK_StdInitializerListConstructorCall; 8523 Expr *Source = CurInit.get(); 8524 SourceRange Range = Kind.hasParenOrBraceRange() 8525 ? Kind.getParenOrBraceRange() 8526 : SourceRange(); 8527 CurInit = PerformConstructorInitialization( 8528 S, UseTemporary ? TempEntity : Entity, Kind, 8529 Source ? MultiExprArg(Source) : Args, *Step, 8530 ConstructorInitRequiresZeroInit, 8531 /*IsListInitialization*/ IsStdInitListInit, 8532 /*IsStdInitListInitialization*/ IsStdInitListInit, 8533 /*LBraceLoc*/ Range.getBegin(), 8534 /*RBraceLoc*/ Range.getEnd()); 8535 break; 8536 } 8537 8538 case SK_ZeroInitialization: { 8539 step_iterator NextStep = Step; 8540 ++NextStep; 8541 if (NextStep != StepEnd && 8542 (NextStep->Kind == SK_ConstructorInitialization || 8543 NextStep->Kind == SK_ConstructorInitializationFromList)) { 8544 // The need for zero-initialization is recorded directly into 8545 // the call to the object's constructor within the next step. 8546 ConstructorInitRequiresZeroInit = true; 8547 } else if (Kind.getKind() == InitializationKind::IK_Value && 8548 S.getLangOpts().CPlusPlus && 8549 !Kind.isImplicitValueInit()) { 8550 TypeSourceInfo *TSInfo = Entity.getTypeSourceInfo(); 8551 if (!TSInfo) 8552 TSInfo = S.Context.getTrivialTypeSourceInfo(Step->Type, 8553 Kind.getRange().getBegin()); 8554 8555 CurInit = new (S.Context) CXXScalarValueInitExpr( 8556 Entity.getType().getNonLValueExprType(S.Context), TSInfo, 8557 Kind.getRange().getEnd()); 8558 } else { 8559 CurInit = new (S.Context) ImplicitValueInitExpr(Step->Type); 8560 } 8561 break; 8562 } 8563 8564 case SK_CAssignment: { 8565 QualType SourceType = CurInit.get()->getType(); 8566 8567 // Save off the initial CurInit in case we need to emit a diagnostic 8568 ExprResult InitialCurInit = CurInit; 8569 ExprResult Result = CurInit; 8570 Sema::AssignConvertType ConvTy = 8571 S.CheckSingleAssignmentConstraints(Step->Type, Result, true, 8572 Entity.getKind() == InitializedEntity::EK_Parameter_CF_Audited); 8573 if (Result.isInvalid()) 8574 return ExprError(); 8575 CurInit = Result; 8576 8577 // If this is a call, allow conversion to a transparent union. 8578 ExprResult CurInitExprRes = CurInit; 8579 if (ConvTy != Sema::Compatible && 8580 Entity.isParameterKind() && 8581 S.CheckTransparentUnionArgumentConstraints(Step->Type, CurInitExprRes) 8582 == Sema::Compatible) 8583 ConvTy = Sema::Compatible; 8584 if (CurInitExprRes.isInvalid()) 8585 return ExprError(); 8586 CurInit = CurInitExprRes; 8587 8588 bool Complained; 8589 if (S.DiagnoseAssignmentResult(ConvTy, Kind.getLocation(), 8590 Step->Type, SourceType, 8591 InitialCurInit.get(), 8592 getAssignmentAction(Entity, true), 8593 &Complained)) { 8594 PrintInitLocationNote(S, Entity); 8595 return ExprError(); 8596 } else if (Complained) 8597 PrintInitLocationNote(S, Entity); 8598 break; 8599 } 8600 8601 case SK_StringInit: { 8602 QualType Ty = Step->Type; 8603 bool UpdateType = ResultType && Entity.getType()->isIncompleteArrayType(); 8604 CheckStringInit(CurInit.get(), UpdateType ? *ResultType : Ty, 8605 S.Context.getAsArrayType(Ty), S); 8606 break; 8607 } 8608 8609 case SK_ObjCObjectConversion: 8610 CurInit = S.ImpCastExprToType(CurInit.get(), Step->Type, 8611 CK_ObjCObjectLValueCast, 8612 CurInit.get()->getValueKind()); 8613 break; 8614 8615 case SK_ArrayLoopIndex: { 8616 Expr *Cur = CurInit.get(); 8617 Expr *BaseExpr = new (S.Context) 8618 OpaqueValueExpr(Cur->getExprLoc(), Cur->getType(), 8619 Cur->getValueKind(), Cur->getObjectKind(), Cur); 8620 Expr *IndexExpr = 8621 new (S.Context) ArrayInitIndexExpr(S.Context.getSizeType()); 8622 CurInit = S.CreateBuiltinArraySubscriptExpr( 8623 BaseExpr, Kind.getLocation(), IndexExpr, Kind.getLocation()); 8624 ArrayLoopCommonExprs.push_back(BaseExpr); 8625 break; 8626 } 8627 8628 case SK_ArrayLoopInit: { 8629 assert(!ArrayLoopCommonExprs.empty() && 8630 "mismatched SK_ArrayLoopIndex and SK_ArrayLoopInit"); 8631 Expr *Common = ArrayLoopCommonExprs.pop_back_val(); 8632 CurInit = new (S.Context) ArrayInitLoopExpr(Step->Type, Common, 8633 CurInit.get()); 8634 break; 8635 } 8636 8637 case SK_GNUArrayInit: 8638 // Okay: we checked everything before creating this step. Note that 8639 // this is a GNU extension. 8640 S.Diag(Kind.getLocation(), diag::ext_array_init_copy) 8641 << Step->Type << CurInit.get()->getType() 8642 << CurInit.get()->getSourceRange(); 8643 updateGNUCompoundLiteralRValue(CurInit.get()); 8644 LLVM_FALLTHROUGH; 8645 case SK_ArrayInit: 8646 // If the destination type is an incomplete array type, update the 8647 // type accordingly. 8648 if (ResultType) { 8649 if (const IncompleteArrayType *IncompleteDest 8650 = S.Context.getAsIncompleteArrayType(Step->Type)) { 8651 if (const ConstantArrayType *ConstantSource 8652 = S.Context.getAsConstantArrayType(CurInit.get()->getType())) { 8653 *ResultType = S.Context.getConstantArrayType( 8654 IncompleteDest->getElementType(), 8655 ConstantSource->getSize(), 8656 ConstantSource->getSizeExpr(), 8657 ArrayType::Normal, 0); 8658 } 8659 } 8660 } 8661 break; 8662 8663 case SK_ParenthesizedArrayInit: 8664 // Okay: we checked everything before creating this step. Note that 8665 // this is a GNU extension. 8666 S.Diag(Kind.getLocation(), diag::ext_array_init_parens) 8667 << CurInit.get()->getSourceRange(); 8668 break; 8669 8670 case SK_PassByIndirectCopyRestore: 8671 case SK_PassByIndirectRestore: 8672 checkIndirectCopyRestoreSource(S, CurInit.get()); 8673 CurInit = new (S.Context) ObjCIndirectCopyRestoreExpr( 8674 CurInit.get(), Step->Type, 8675 Step->Kind == SK_PassByIndirectCopyRestore); 8676 break; 8677 8678 case SK_ProduceObjCObject: 8679 CurInit = ImplicitCastExpr::Create( 8680 S.Context, Step->Type, CK_ARCProduceObject, CurInit.get(), nullptr, 8681 VK_RValue, FPOptionsOverride()); 8682 break; 8683 8684 case SK_StdInitializerList: { 8685 S.Diag(CurInit.get()->getExprLoc(), 8686 diag::warn_cxx98_compat_initializer_list_init) 8687 << CurInit.get()->getSourceRange(); 8688 8689 // Materialize the temporary into memory. 8690 MaterializeTemporaryExpr *MTE = S.CreateMaterializeTemporaryExpr( 8691 CurInit.get()->getType(), CurInit.get(), 8692 /*BoundToLvalueReference=*/false); 8693 8694 // Wrap it in a construction of a std::initializer_list<T>. 8695 CurInit = new (S.Context) CXXStdInitializerListExpr(Step->Type, MTE); 8696 8697 // Bind the result, in case the library has given initializer_list a 8698 // non-trivial destructor. 8699 if (shouldBindAsTemporary(Entity)) 8700 CurInit = S.MaybeBindToTemporary(CurInit.get()); 8701 break; 8702 } 8703 8704 case SK_OCLSamplerInit: { 8705 // Sampler initialization have 5 cases: 8706 // 1. function argument passing 8707 // 1a. argument is a file-scope variable 8708 // 1b. argument is a function-scope variable 8709 // 1c. argument is one of caller function's parameters 8710 // 2. variable initialization 8711 // 2a. initializing a file-scope variable 8712 // 2b. initializing a function-scope variable 8713 // 8714 // For file-scope variables, since they cannot be initialized by function 8715 // call of __translate_sampler_initializer in LLVM IR, their references 8716 // need to be replaced by a cast from their literal initializers to 8717 // sampler type. Since sampler variables can only be used in function 8718 // calls as arguments, we only need to replace them when handling the 8719 // argument passing. 8720 assert(Step->Type->isSamplerT() && 8721 "Sampler initialization on non-sampler type."); 8722 Expr *Init = CurInit.get()->IgnoreParens(); 8723 QualType SourceType = Init->getType(); 8724 // Case 1 8725 if (Entity.isParameterKind()) { 8726 if (!SourceType->isSamplerT() && !SourceType->isIntegerType()) { 8727 S.Diag(Kind.getLocation(), diag::err_sampler_argument_required) 8728 << SourceType; 8729 break; 8730 } else if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Init)) { 8731 auto Var = cast<VarDecl>(DRE->getDecl()); 8732 // Case 1b and 1c 8733 // No cast from integer to sampler is needed. 8734 if (!Var->hasGlobalStorage()) { 8735 CurInit = ImplicitCastExpr::Create( 8736 S.Context, Step->Type, CK_LValueToRValue, Init, 8737 /*BasePath=*/nullptr, VK_RValue, FPOptionsOverride()); 8738 break; 8739 } 8740 // Case 1a 8741 // For function call with a file-scope sampler variable as argument, 8742 // get the integer literal. 8743 // Do not diagnose if the file-scope variable does not have initializer 8744 // since this has already been diagnosed when parsing the variable 8745 // declaration. 8746 if (!Var->getInit() || !isa<ImplicitCastExpr>(Var->getInit())) 8747 break; 8748 Init = cast<ImplicitCastExpr>(const_cast<Expr*>( 8749 Var->getInit()))->getSubExpr(); 8750 SourceType = Init->getType(); 8751 } 8752 } else { 8753 // Case 2 8754 // Check initializer is 32 bit integer constant. 8755 // If the initializer is taken from global variable, do not diagnose since 8756 // this has already been done when parsing the variable declaration. 8757 if (!Init->isConstantInitializer(S.Context, false)) 8758 break; 8759 8760 if (!SourceType->isIntegerType() || 8761 32 != S.Context.getIntWidth(SourceType)) { 8762 S.Diag(Kind.getLocation(), diag::err_sampler_initializer_not_integer) 8763 << SourceType; 8764 break; 8765 } 8766 8767 Expr::EvalResult EVResult; 8768 Init->EvaluateAsInt(EVResult, S.Context); 8769 llvm::APSInt Result = EVResult.Val.getInt(); 8770 const uint64_t SamplerValue = Result.getLimitedValue(); 8771 // 32-bit value of sampler's initializer is interpreted as 8772 // bit-field with the following structure: 8773 // |unspecified|Filter|Addressing Mode| Normalized Coords| 8774 // |31 6|5 4|3 1| 0| 8775 // This structure corresponds to enum values of sampler properties 8776 // defined in SPIR spec v1.2 and also opencl-c.h 8777 unsigned AddressingMode = (0x0E & SamplerValue) >> 1; 8778 unsigned FilterMode = (0x30 & SamplerValue) >> 4; 8779 if (FilterMode != 1 && FilterMode != 2 && 8780 !S.getOpenCLOptions().isEnabled( 8781 "cl_intel_device_side_avc_motion_estimation")) 8782 S.Diag(Kind.getLocation(), 8783 diag::warn_sampler_initializer_invalid_bits) 8784 << "Filter Mode"; 8785 if (AddressingMode > 4) 8786 S.Diag(Kind.getLocation(), 8787 diag::warn_sampler_initializer_invalid_bits) 8788 << "Addressing Mode"; 8789 } 8790 8791 // Cases 1a, 2a and 2b 8792 // Insert cast from integer to sampler. 8793 CurInit = S.ImpCastExprToType(Init, S.Context.OCLSamplerTy, 8794 CK_IntToOCLSampler); 8795 break; 8796 } 8797 case SK_OCLZeroOpaqueType: { 8798 assert((Step->Type->isEventT() || Step->Type->isQueueT() || 8799 Step->Type->isOCLIntelSubgroupAVCType()) && 8800 "Wrong type for initialization of OpenCL opaque type."); 8801 8802 CurInit = S.ImpCastExprToType(CurInit.get(), Step->Type, 8803 CK_ZeroToOCLOpaqueType, 8804 CurInit.get()->getValueKind()); 8805 break; 8806 } 8807 } 8808 } 8809 8810 // Check whether the initializer has a shorter lifetime than the initialized 8811 // entity, and if not, either lifetime-extend or warn as appropriate. 8812 if (auto *Init = CurInit.get()) 8813 S.checkInitializerLifetime(Entity, Init); 8814 8815 // Diagnose non-fatal problems with the completed initialization. 8816 if (Entity.getKind() == InitializedEntity::EK_Member && 8817 cast<FieldDecl>(Entity.getDecl())->isBitField()) 8818 S.CheckBitFieldInitialization(Kind.getLocation(), 8819 cast<FieldDecl>(Entity.getDecl()), 8820 CurInit.get()); 8821 8822 // Check for std::move on construction. 8823 if (const Expr *E = CurInit.get()) { 8824 CheckMoveOnConstruction(S, E, 8825 Entity.getKind() == InitializedEntity::EK_Result); 8826 } 8827 8828 return CurInit; 8829 } 8830 8831 /// Somewhere within T there is an uninitialized reference subobject. 8832 /// Dig it out and diagnose it. 8833 static bool DiagnoseUninitializedReference(Sema &S, SourceLocation Loc, 8834 QualType T) { 8835 if (T->isReferenceType()) { 8836 S.Diag(Loc, diag::err_reference_without_init) 8837 << T.getNonReferenceType(); 8838 return true; 8839 } 8840 8841 CXXRecordDecl *RD = T->getBaseElementTypeUnsafe()->getAsCXXRecordDecl(); 8842 if (!RD || !RD->hasUninitializedReferenceMember()) 8843 return false; 8844 8845 for (const auto *FI : RD->fields()) { 8846 if (FI->isUnnamedBitfield()) 8847 continue; 8848 8849 if (DiagnoseUninitializedReference(S, FI->getLocation(), FI->getType())) { 8850 S.Diag(Loc, diag::note_value_initialization_here) << RD; 8851 return true; 8852 } 8853 } 8854 8855 for (const auto &BI : RD->bases()) { 8856 if (DiagnoseUninitializedReference(S, BI.getBeginLoc(), BI.getType())) { 8857 S.Diag(Loc, diag::note_value_initialization_here) << RD; 8858 return true; 8859 } 8860 } 8861 8862 return false; 8863 } 8864 8865 8866 //===----------------------------------------------------------------------===// 8867 // Diagnose initialization failures 8868 //===----------------------------------------------------------------------===// 8869 8870 /// Emit notes associated with an initialization that failed due to a 8871 /// "simple" conversion failure. 8872 static void emitBadConversionNotes(Sema &S, const InitializedEntity &entity, 8873 Expr *op) { 8874 QualType destType = entity.getType(); 8875 if (destType.getNonReferenceType()->isObjCObjectPointerType() && 8876 op->getType()->isObjCObjectPointerType()) { 8877 8878 // Emit a possible note about the conversion failing because the 8879 // operand is a message send with a related result type. 8880 S.EmitRelatedResultTypeNote(op); 8881 8882 // Emit a possible note about a return failing because we're 8883 // expecting a related result type. 8884 if (entity.getKind() == InitializedEntity::EK_Result) 8885 S.EmitRelatedResultTypeNoteForReturn(destType); 8886 } 8887 QualType fromType = op->getType(); 8888 auto *fromDecl = fromType.getTypePtr()->getPointeeCXXRecordDecl(); 8889 auto *destDecl = destType.getTypePtr()->getPointeeCXXRecordDecl(); 8890 if (fromDecl && destDecl && fromDecl->getDeclKind() == Decl::CXXRecord && 8891 destDecl->getDeclKind() == Decl::CXXRecord && 8892 !fromDecl->isInvalidDecl() && !destDecl->isInvalidDecl() && 8893 !fromDecl->hasDefinition()) 8894 S.Diag(fromDecl->getLocation(), diag::note_forward_class_conversion) 8895 << S.getASTContext().getTagDeclType(fromDecl) 8896 << S.getASTContext().getTagDeclType(destDecl); 8897 } 8898 8899 static void diagnoseListInit(Sema &S, const InitializedEntity &Entity, 8900 InitListExpr *InitList) { 8901 QualType DestType = Entity.getType(); 8902 8903 QualType E; 8904 if (S.getLangOpts().CPlusPlus11 && S.isStdInitializerList(DestType, &E)) { 8905 QualType ArrayType = S.Context.getConstantArrayType( 8906 E.withConst(), 8907 llvm::APInt(S.Context.getTypeSize(S.Context.getSizeType()), 8908 InitList->getNumInits()), 8909 nullptr, clang::ArrayType::Normal, 0); 8910 InitializedEntity HiddenArray = 8911 InitializedEntity::InitializeTemporary(ArrayType); 8912 return diagnoseListInit(S, HiddenArray, InitList); 8913 } 8914 8915 if (DestType->isReferenceType()) { 8916 // A list-initialization failure for a reference means that we tried to 8917 // create a temporary of the inner type (per [dcl.init.list]p3.6) and the 8918 // inner initialization failed. 8919 QualType T = DestType->castAs<ReferenceType>()->getPointeeType(); 8920 diagnoseListInit(S, InitializedEntity::InitializeTemporary(T), InitList); 8921 SourceLocation Loc = InitList->getBeginLoc(); 8922 if (auto *D = Entity.getDecl()) 8923 Loc = D->getLocation(); 8924 S.Diag(Loc, diag::note_in_reference_temporary_list_initializer) << T; 8925 return; 8926 } 8927 8928 InitListChecker DiagnoseInitList(S, Entity, InitList, DestType, 8929 /*VerifyOnly=*/false, 8930 /*TreatUnavailableAsInvalid=*/false); 8931 assert(DiagnoseInitList.HadError() && 8932 "Inconsistent init list check result."); 8933 } 8934 8935 bool InitializationSequence::Diagnose(Sema &S, 8936 const InitializedEntity &Entity, 8937 const InitializationKind &Kind, 8938 ArrayRef<Expr *> Args) { 8939 if (!Failed()) 8940 return false; 8941 8942 // When we want to diagnose only one element of a braced-init-list, 8943 // we need to factor it out. 8944 Expr *OnlyArg; 8945 if (Args.size() == 1) { 8946 auto *List = dyn_cast<InitListExpr>(Args[0]); 8947 if (List && List->getNumInits() == 1) 8948 OnlyArg = List->getInit(0); 8949 else 8950 OnlyArg = Args[0]; 8951 } 8952 else 8953 OnlyArg = nullptr; 8954 8955 QualType DestType = Entity.getType(); 8956 switch (Failure) { 8957 case FK_TooManyInitsForReference: 8958 // FIXME: Customize for the initialized entity? 8959 if (Args.empty()) { 8960 // Dig out the reference subobject which is uninitialized and diagnose it. 8961 // If this is value-initialization, this could be nested some way within 8962 // the target type. 8963 assert(Kind.getKind() == InitializationKind::IK_Value || 8964 DestType->isReferenceType()); 8965 bool Diagnosed = 8966 DiagnoseUninitializedReference(S, Kind.getLocation(), DestType); 8967 assert(Diagnosed && "couldn't find uninitialized reference to diagnose"); 8968 (void)Diagnosed; 8969 } else // FIXME: diagnostic below could be better! 8970 S.Diag(Kind.getLocation(), diag::err_reference_has_multiple_inits) 8971 << SourceRange(Args.front()->getBeginLoc(), Args.back()->getEndLoc()); 8972 break; 8973 case FK_ParenthesizedListInitForReference: 8974 S.Diag(Kind.getLocation(), diag::err_list_init_in_parens) 8975 << 1 << Entity.getType() << Args[0]->getSourceRange(); 8976 break; 8977 8978 case FK_ArrayNeedsInitList: 8979 S.Diag(Kind.getLocation(), diag::err_array_init_not_init_list) << 0; 8980 break; 8981 case FK_ArrayNeedsInitListOrStringLiteral: 8982 S.Diag(Kind.getLocation(), diag::err_array_init_not_init_list) << 1; 8983 break; 8984 case FK_ArrayNeedsInitListOrWideStringLiteral: 8985 S.Diag(Kind.getLocation(), diag::err_array_init_not_init_list) << 2; 8986 break; 8987 case FK_NarrowStringIntoWideCharArray: 8988 S.Diag(Kind.getLocation(), diag::err_array_init_narrow_string_into_wchar); 8989 break; 8990 case FK_WideStringIntoCharArray: 8991 S.Diag(Kind.getLocation(), diag::err_array_init_wide_string_into_char); 8992 break; 8993 case FK_IncompatWideStringIntoWideChar: 8994 S.Diag(Kind.getLocation(), 8995 diag::err_array_init_incompat_wide_string_into_wchar); 8996 break; 8997 case FK_PlainStringIntoUTF8Char: 8998 S.Diag(Kind.getLocation(), 8999 diag::err_array_init_plain_string_into_char8_t); 9000 S.Diag(Args.front()->getBeginLoc(), 9001 diag::note_array_init_plain_string_into_char8_t) 9002 << FixItHint::CreateInsertion(Args.front()->getBeginLoc(), "u8"); 9003 break; 9004 case FK_UTF8StringIntoPlainChar: 9005 S.Diag(Kind.getLocation(), 9006 diag::err_array_init_utf8_string_into_char) 9007 << S.getLangOpts().CPlusPlus20; 9008 break; 9009 case FK_ArrayTypeMismatch: 9010 case FK_NonConstantArrayInit: 9011 S.Diag(Kind.getLocation(), 9012 (Failure == FK_ArrayTypeMismatch 9013 ? diag::err_array_init_different_type 9014 : diag::err_array_init_non_constant_array)) 9015 << DestType.getNonReferenceType() 9016 << OnlyArg->getType() 9017 << Args[0]->getSourceRange(); 9018 break; 9019 9020 case FK_VariableLengthArrayHasInitializer: 9021 S.Diag(Kind.getLocation(), diag::err_variable_object_no_init) 9022 << Args[0]->getSourceRange(); 9023 break; 9024 9025 case FK_AddressOfOverloadFailed: { 9026 DeclAccessPair Found; 9027 S.ResolveAddressOfOverloadedFunction(OnlyArg, 9028 DestType.getNonReferenceType(), 9029 true, 9030 Found); 9031 break; 9032 } 9033 9034 case FK_AddressOfUnaddressableFunction: { 9035 auto *FD = cast<FunctionDecl>(cast<DeclRefExpr>(OnlyArg)->getDecl()); 9036 S.checkAddressOfFunctionIsAvailable(FD, /*Complain=*/true, 9037 OnlyArg->getBeginLoc()); 9038 break; 9039 } 9040 9041 case FK_ReferenceInitOverloadFailed: 9042 case FK_UserConversionOverloadFailed: 9043 switch (FailedOverloadResult) { 9044 case OR_Ambiguous: 9045 9046 FailedCandidateSet.NoteCandidates( 9047 PartialDiagnosticAt( 9048 Kind.getLocation(), 9049 Failure == FK_UserConversionOverloadFailed 9050 ? (S.PDiag(diag::err_typecheck_ambiguous_condition) 9051 << OnlyArg->getType() << DestType 9052 << Args[0]->getSourceRange()) 9053 : (S.PDiag(diag::err_ref_init_ambiguous) 9054 << DestType << OnlyArg->getType() 9055 << Args[0]->getSourceRange())), 9056 S, OCD_AmbiguousCandidates, Args); 9057 break; 9058 9059 case OR_No_Viable_Function: { 9060 auto Cands = FailedCandidateSet.CompleteCandidates(S, OCD_AllCandidates, Args); 9061 if (!S.RequireCompleteType(Kind.getLocation(), 9062 DestType.getNonReferenceType(), 9063 diag::err_typecheck_nonviable_condition_incomplete, 9064 OnlyArg->getType(), Args[0]->getSourceRange())) 9065 S.Diag(Kind.getLocation(), diag::err_typecheck_nonviable_condition) 9066 << (Entity.getKind() == InitializedEntity::EK_Result) 9067 << OnlyArg->getType() << Args[0]->getSourceRange() 9068 << DestType.getNonReferenceType(); 9069 9070 FailedCandidateSet.NoteCandidates(S, Args, Cands); 9071 break; 9072 } 9073 case OR_Deleted: { 9074 S.Diag(Kind.getLocation(), diag::err_typecheck_deleted_function) 9075 << OnlyArg->getType() << DestType.getNonReferenceType() 9076 << Args[0]->getSourceRange(); 9077 OverloadCandidateSet::iterator Best; 9078 OverloadingResult Ovl 9079 = FailedCandidateSet.BestViableFunction(S, Kind.getLocation(), Best); 9080 if (Ovl == OR_Deleted) { 9081 S.NoteDeletedFunction(Best->Function); 9082 } else { 9083 llvm_unreachable("Inconsistent overload resolution?"); 9084 } 9085 break; 9086 } 9087 9088 case OR_Success: 9089 llvm_unreachable("Conversion did not fail!"); 9090 } 9091 break; 9092 9093 case FK_NonConstLValueReferenceBindingToTemporary: 9094 if (isa<InitListExpr>(Args[0])) { 9095 S.Diag(Kind.getLocation(), 9096 diag::err_lvalue_reference_bind_to_initlist) 9097 << DestType.getNonReferenceType().isVolatileQualified() 9098 << DestType.getNonReferenceType() 9099 << Args[0]->getSourceRange(); 9100 break; 9101 } 9102 LLVM_FALLTHROUGH; 9103 9104 case FK_NonConstLValueReferenceBindingToUnrelated: 9105 S.Diag(Kind.getLocation(), 9106 Failure == FK_NonConstLValueReferenceBindingToTemporary 9107 ? diag::err_lvalue_reference_bind_to_temporary 9108 : diag::err_lvalue_reference_bind_to_unrelated) 9109 << DestType.getNonReferenceType().isVolatileQualified() 9110 << DestType.getNonReferenceType() 9111 << OnlyArg->getType() 9112 << Args[0]->getSourceRange(); 9113 break; 9114 9115 case FK_NonConstLValueReferenceBindingToBitfield: { 9116 // We don't necessarily have an unambiguous source bit-field. 9117 FieldDecl *BitField = Args[0]->getSourceBitField(); 9118 S.Diag(Kind.getLocation(), diag::err_reference_bind_to_bitfield) 9119 << DestType.isVolatileQualified() 9120 << (BitField ? BitField->getDeclName() : DeclarationName()) 9121 << (BitField != nullptr) 9122 << Args[0]->getSourceRange(); 9123 if (BitField) 9124 S.Diag(BitField->getLocation(), diag::note_bitfield_decl); 9125 break; 9126 } 9127 9128 case FK_NonConstLValueReferenceBindingToVectorElement: 9129 S.Diag(Kind.getLocation(), diag::err_reference_bind_to_vector_element) 9130 << DestType.isVolatileQualified() 9131 << Args[0]->getSourceRange(); 9132 break; 9133 9134 case FK_NonConstLValueReferenceBindingToMatrixElement: 9135 S.Diag(Kind.getLocation(), diag::err_reference_bind_to_matrix_element) 9136 << DestType.isVolatileQualified() << Args[0]->getSourceRange(); 9137 break; 9138 9139 case FK_RValueReferenceBindingToLValue: 9140 S.Diag(Kind.getLocation(), diag::err_lvalue_to_rvalue_ref) 9141 << DestType.getNonReferenceType() << OnlyArg->getType() 9142 << Args[0]->getSourceRange(); 9143 break; 9144 9145 case FK_ReferenceAddrspaceMismatchTemporary: 9146 S.Diag(Kind.getLocation(), diag::err_reference_bind_temporary_addrspace) 9147 << DestType << Args[0]->getSourceRange(); 9148 break; 9149 9150 case FK_ReferenceInitDropsQualifiers: { 9151 QualType SourceType = OnlyArg->getType(); 9152 QualType NonRefType = DestType.getNonReferenceType(); 9153 Qualifiers DroppedQualifiers = 9154 SourceType.getQualifiers() - NonRefType.getQualifiers(); 9155 9156 if (!NonRefType.getQualifiers().isAddressSpaceSupersetOf( 9157 SourceType.getQualifiers())) 9158 S.Diag(Kind.getLocation(), diag::err_reference_bind_drops_quals) 9159 << NonRefType << SourceType << 1 /*addr space*/ 9160 << Args[0]->getSourceRange(); 9161 else if (DroppedQualifiers.hasQualifiers()) 9162 S.Diag(Kind.getLocation(), diag::err_reference_bind_drops_quals) 9163 << NonRefType << SourceType << 0 /*cv quals*/ 9164 << Qualifiers::fromCVRMask(DroppedQualifiers.getCVRQualifiers()) 9165 << DroppedQualifiers.getCVRQualifiers() << Args[0]->getSourceRange(); 9166 else 9167 // FIXME: Consider decomposing the type and explaining which qualifiers 9168 // were dropped where, or on which level a 'const' is missing, etc. 9169 S.Diag(Kind.getLocation(), diag::err_reference_bind_drops_quals) 9170 << NonRefType << SourceType << 2 /*incompatible quals*/ 9171 << Args[0]->getSourceRange(); 9172 break; 9173 } 9174 9175 case FK_ReferenceInitFailed: 9176 S.Diag(Kind.getLocation(), diag::err_reference_bind_failed) 9177 << DestType.getNonReferenceType() 9178 << DestType.getNonReferenceType()->isIncompleteType() 9179 << OnlyArg->isLValue() 9180 << OnlyArg->getType() 9181 << Args[0]->getSourceRange(); 9182 emitBadConversionNotes(S, Entity, Args[0]); 9183 break; 9184 9185 case FK_ConversionFailed: { 9186 QualType FromType = OnlyArg->getType(); 9187 PartialDiagnostic PDiag = S.PDiag(diag::err_init_conversion_failed) 9188 << (int)Entity.getKind() 9189 << DestType 9190 << OnlyArg->isLValue() 9191 << FromType 9192 << Args[0]->getSourceRange(); 9193 S.HandleFunctionTypeMismatch(PDiag, FromType, DestType); 9194 S.Diag(Kind.getLocation(), PDiag); 9195 emitBadConversionNotes(S, Entity, Args[0]); 9196 break; 9197 } 9198 9199 case FK_ConversionFromPropertyFailed: 9200 // No-op. This error has already been reported. 9201 break; 9202 9203 case FK_TooManyInitsForScalar: { 9204 SourceRange R; 9205 9206 auto *InitList = dyn_cast<InitListExpr>(Args[0]); 9207 if (InitList && InitList->getNumInits() >= 1) { 9208 R = SourceRange(InitList->getInit(0)->getEndLoc(), InitList->getEndLoc()); 9209 } else { 9210 assert(Args.size() > 1 && "Expected multiple initializers!"); 9211 R = SourceRange(Args.front()->getEndLoc(), Args.back()->getEndLoc()); 9212 } 9213 9214 R.setBegin(S.getLocForEndOfToken(R.getBegin())); 9215 if (Kind.isCStyleOrFunctionalCast()) 9216 S.Diag(Kind.getLocation(), diag::err_builtin_func_cast_more_than_one_arg) 9217 << R; 9218 else 9219 S.Diag(Kind.getLocation(), diag::err_excess_initializers) 9220 << /*scalar=*/2 << R; 9221 break; 9222 } 9223 9224 case FK_ParenthesizedListInitForScalar: 9225 S.Diag(Kind.getLocation(), diag::err_list_init_in_parens) 9226 << 0 << Entity.getType() << Args[0]->getSourceRange(); 9227 break; 9228 9229 case FK_ReferenceBindingToInitList: 9230 S.Diag(Kind.getLocation(), diag::err_reference_bind_init_list) 9231 << DestType.getNonReferenceType() << Args[0]->getSourceRange(); 9232 break; 9233 9234 case FK_InitListBadDestinationType: 9235 S.Diag(Kind.getLocation(), diag::err_init_list_bad_dest_type) 9236 << (DestType->isRecordType()) << DestType << Args[0]->getSourceRange(); 9237 break; 9238 9239 case FK_ListConstructorOverloadFailed: 9240 case FK_ConstructorOverloadFailed: { 9241 SourceRange ArgsRange; 9242 if (Args.size()) 9243 ArgsRange = 9244 SourceRange(Args.front()->getBeginLoc(), Args.back()->getEndLoc()); 9245 9246 if (Failure == FK_ListConstructorOverloadFailed) { 9247 assert(Args.size() == 1 && 9248 "List construction from other than 1 argument."); 9249 InitListExpr *InitList = cast<InitListExpr>(Args[0]); 9250 Args = MultiExprArg(InitList->getInits(), InitList->getNumInits()); 9251 } 9252 9253 // FIXME: Using "DestType" for the entity we're printing is probably 9254 // bad. 9255 switch (FailedOverloadResult) { 9256 case OR_Ambiguous: 9257 FailedCandidateSet.NoteCandidates( 9258 PartialDiagnosticAt(Kind.getLocation(), 9259 S.PDiag(diag::err_ovl_ambiguous_init) 9260 << DestType << ArgsRange), 9261 S, OCD_AmbiguousCandidates, Args); 9262 break; 9263 9264 case OR_No_Viable_Function: 9265 if (Kind.getKind() == InitializationKind::IK_Default && 9266 (Entity.getKind() == InitializedEntity::EK_Base || 9267 Entity.getKind() == InitializedEntity::EK_Member) && 9268 isa<CXXConstructorDecl>(S.CurContext)) { 9269 // This is implicit default initialization of a member or 9270 // base within a constructor. If no viable function was 9271 // found, notify the user that they need to explicitly 9272 // initialize this base/member. 9273 CXXConstructorDecl *Constructor 9274 = cast<CXXConstructorDecl>(S.CurContext); 9275 const CXXRecordDecl *InheritedFrom = nullptr; 9276 if (auto Inherited = Constructor->getInheritedConstructor()) 9277 InheritedFrom = Inherited.getShadowDecl()->getNominatedBaseClass(); 9278 if (Entity.getKind() == InitializedEntity::EK_Base) { 9279 S.Diag(Kind.getLocation(), diag::err_missing_default_ctor) 9280 << (InheritedFrom ? 2 : Constructor->isImplicit() ? 1 : 0) 9281 << S.Context.getTypeDeclType(Constructor->getParent()) 9282 << /*base=*/0 9283 << Entity.getType() 9284 << InheritedFrom; 9285 9286 RecordDecl *BaseDecl 9287 = Entity.getBaseSpecifier()->getType()->castAs<RecordType>() 9288 ->getDecl(); 9289 S.Diag(BaseDecl->getLocation(), diag::note_previous_decl) 9290 << S.Context.getTagDeclType(BaseDecl); 9291 } else { 9292 S.Diag(Kind.getLocation(), diag::err_missing_default_ctor) 9293 << (InheritedFrom ? 2 : Constructor->isImplicit() ? 1 : 0) 9294 << S.Context.getTypeDeclType(Constructor->getParent()) 9295 << /*member=*/1 9296 << Entity.getName() 9297 << InheritedFrom; 9298 S.Diag(Entity.getDecl()->getLocation(), 9299 diag::note_member_declared_at); 9300 9301 if (const RecordType *Record 9302 = Entity.getType()->getAs<RecordType>()) 9303 S.Diag(Record->getDecl()->getLocation(), 9304 diag::note_previous_decl) 9305 << S.Context.getTagDeclType(Record->getDecl()); 9306 } 9307 break; 9308 } 9309 9310 FailedCandidateSet.NoteCandidates( 9311 PartialDiagnosticAt( 9312 Kind.getLocation(), 9313 S.PDiag(diag::err_ovl_no_viable_function_in_init) 9314 << DestType << ArgsRange), 9315 S, OCD_AllCandidates, Args); 9316 break; 9317 9318 case OR_Deleted: { 9319 OverloadCandidateSet::iterator Best; 9320 OverloadingResult Ovl 9321 = FailedCandidateSet.BestViableFunction(S, Kind.getLocation(), Best); 9322 if (Ovl != OR_Deleted) { 9323 S.Diag(Kind.getLocation(), diag::err_ovl_deleted_init) 9324 << DestType << ArgsRange; 9325 llvm_unreachable("Inconsistent overload resolution?"); 9326 break; 9327 } 9328 9329 // If this is a defaulted or implicitly-declared function, then 9330 // it was implicitly deleted. Make it clear that the deletion was 9331 // implicit. 9332 if (S.isImplicitlyDeleted(Best->Function)) 9333 S.Diag(Kind.getLocation(), diag::err_ovl_deleted_special_init) 9334 << S.getSpecialMember(cast<CXXMethodDecl>(Best->Function)) 9335 << DestType << ArgsRange; 9336 else 9337 S.Diag(Kind.getLocation(), diag::err_ovl_deleted_init) 9338 << DestType << ArgsRange; 9339 9340 S.NoteDeletedFunction(Best->Function); 9341 break; 9342 } 9343 9344 case OR_Success: 9345 llvm_unreachable("Conversion did not fail!"); 9346 } 9347 } 9348 break; 9349 9350 case FK_DefaultInitOfConst: 9351 if (Entity.getKind() == InitializedEntity::EK_Member && 9352 isa<CXXConstructorDecl>(S.CurContext)) { 9353 // This is implicit default-initialization of a const member in 9354 // a constructor. Complain that it needs to be explicitly 9355 // initialized. 9356 CXXConstructorDecl *Constructor = cast<CXXConstructorDecl>(S.CurContext); 9357 S.Diag(Kind.getLocation(), diag::err_uninitialized_member_in_ctor) 9358 << (Constructor->getInheritedConstructor() ? 2 : 9359 Constructor->isImplicit() ? 1 : 0) 9360 << S.Context.getTypeDeclType(Constructor->getParent()) 9361 << /*const=*/1 9362 << Entity.getName(); 9363 S.Diag(Entity.getDecl()->getLocation(), diag::note_previous_decl) 9364 << Entity.getName(); 9365 } else { 9366 S.Diag(Kind.getLocation(), diag::err_default_init_const) 9367 << DestType << (bool)DestType->getAs<RecordType>(); 9368 } 9369 break; 9370 9371 case FK_Incomplete: 9372 S.RequireCompleteType(Kind.getLocation(), FailedIncompleteType, 9373 diag::err_init_incomplete_type); 9374 break; 9375 9376 case FK_ListInitializationFailed: { 9377 // Run the init list checker again to emit diagnostics. 9378 InitListExpr *InitList = cast<InitListExpr>(Args[0]); 9379 diagnoseListInit(S, Entity, InitList); 9380 break; 9381 } 9382 9383 case FK_PlaceholderType: { 9384 // FIXME: Already diagnosed! 9385 break; 9386 } 9387 9388 case FK_ExplicitConstructor: { 9389 S.Diag(Kind.getLocation(), diag::err_selected_explicit_constructor) 9390 << Args[0]->getSourceRange(); 9391 OverloadCandidateSet::iterator Best; 9392 OverloadingResult Ovl 9393 = FailedCandidateSet.BestViableFunction(S, Kind.getLocation(), Best); 9394 (void)Ovl; 9395 assert(Ovl == OR_Success && "Inconsistent overload resolution"); 9396 CXXConstructorDecl *CtorDecl = cast<CXXConstructorDecl>(Best->Function); 9397 S.Diag(CtorDecl->getLocation(), 9398 diag::note_explicit_ctor_deduction_guide_here) << false; 9399 break; 9400 } 9401 } 9402 9403 PrintInitLocationNote(S, Entity); 9404 return true; 9405 } 9406 9407 void InitializationSequence::dump(raw_ostream &OS) const { 9408 switch (SequenceKind) { 9409 case FailedSequence: { 9410 OS << "Failed sequence: "; 9411 switch (Failure) { 9412 case FK_TooManyInitsForReference: 9413 OS << "too many initializers for reference"; 9414 break; 9415 9416 case FK_ParenthesizedListInitForReference: 9417 OS << "parenthesized list init for reference"; 9418 break; 9419 9420 case FK_ArrayNeedsInitList: 9421 OS << "array requires initializer list"; 9422 break; 9423 9424 case FK_AddressOfUnaddressableFunction: 9425 OS << "address of unaddressable function was taken"; 9426 break; 9427 9428 case FK_ArrayNeedsInitListOrStringLiteral: 9429 OS << "array requires initializer list or string literal"; 9430 break; 9431 9432 case FK_ArrayNeedsInitListOrWideStringLiteral: 9433 OS << "array requires initializer list or wide string literal"; 9434 break; 9435 9436 case FK_NarrowStringIntoWideCharArray: 9437 OS << "narrow string into wide char array"; 9438 break; 9439 9440 case FK_WideStringIntoCharArray: 9441 OS << "wide string into char array"; 9442 break; 9443 9444 case FK_IncompatWideStringIntoWideChar: 9445 OS << "incompatible wide string into wide char array"; 9446 break; 9447 9448 case FK_PlainStringIntoUTF8Char: 9449 OS << "plain string literal into char8_t array"; 9450 break; 9451 9452 case FK_UTF8StringIntoPlainChar: 9453 OS << "u8 string literal into char array"; 9454 break; 9455 9456 case FK_ArrayTypeMismatch: 9457 OS << "array type mismatch"; 9458 break; 9459 9460 case FK_NonConstantArrayInit: 9461 OS << "non-constant array initializer"; 9462 break; 9463 9464 case FK_AddressOfOverloadFailed: 9465 OS << "address of overloaded function failed"; 9466 break; 9467 9468 case FK_ReferenceInitOverloadFailed: 9469 OS << "overload resolution for reference initialization failed"; 9470 break; 9471 9472 case FK_NonConstLValueReferenceBindingToTemporary: 9473 OS << "non-const lvalue reference bound to temporary"; 9474 break; 9475 9476 case FK_NonConstLValueReferenceBindingToBitfield: 9477 OS << "non-const lvalue reference bound to bit-field"; 9478 break; 9479 9480 case FK_NonConstLValueReferenceBindingToVectorElement: 9481 OS << "non-const lvalue reference bound to vector element"; 9482 break; 9483 9484 case FK_NonConstLValueReferenceBindingToMatrixElement: 9485 OS << "non-const lvalue reference bound to matrix element"; 9486 break; 9487 9488 case FK_NonConstLValueReferenceBindingToUnrelated: 9489 OS << "non-const lvalue reference bound to unrelated type"; 9490 break; 9491 9492 case FK_RValueReferenceBindingToLValue: 9493 OS << "rvalue reference bound to an lvalue"; 9494 break; 9495 9496 case FK_ReferenceInitDropsQualifiers: 9497 OS << "reference initialization drops qualifiers"; 9498 break; 9499 9500 case FK_ReferenceAddrspaceMismatchTemporary: 9501 OS << "reference with mismatching address space bound to temporary"; 9502 break; 9503 9504 case FK_ReferenceInitFailed: 9505 OS << "reference initialization failed"; 9506 break; 9507 9508 case FK_ConversionFailed: 9509 OS << "conversion failed"; 9510 break; 9511 9512 case FK_ConversionFromPropertyFailed: 9513 OS << "conversion from property failed"; 9514 break; 9515 9516 case FK_TooManyInitsForScalar: 9517 OS << "too many initializers for scalar"; 9518 break; 9519 9520 case FK_ParenthesizedListInitForScalar: 9521 OS << "parenthesized list init for reference"; 9522 break; 9523 9524 case FK_ReferenceBindingToInitList: 9525 OS << "referencing binding to initializer list"; 9526 break; 9527 9528 case FK_InitListBadDestinationType: 9529 OS << "initializer list for non-aggregate, non-scalar type"; 9530 break; 9531 9532 case FK_UserConversionOverloadFailed: 9533 OS << "overloading failed for user-defined conversion"; 9534 break; 9535 9536 case FK_ConstructorOverloadFailed: 9537 OS << "constructor overloading failed"; 9538 break; 9539 9540 case FK_DefaultInitOfConst: 9541 OS << "default initialization of a const variable"; 9542 break; 9543 9544 case FK_Incomplete: 9545 OS << "initialization of incomplete type"; 9546 break; 9547 9548 case FK_ListInitializationFailed: 9549 OS << "list initialization checker failure"; 9550 break; 9551 9552 case FK_VariableLengthArrayHasInitializer: 9553 OS << "variable length array has an initializer"; 9554 break; 9555 9556 case FK_PlaceholderType: 9557 OS << "initializer expression isn't contextually valid"; 9558 break; 9559 9560 case FK_ListConstructorOverloadFailed: 9561 OS << "list constructor overloading failed"; 9562 break; 9563 9564 case FK_ExplicitConstructor: 9565 OS << "list copy initialization chose explicit constructor"; 9566 break; 9567 } 9568 OS << '\n'; 9569 return; 9570 } 9571 9572 case DependentSequence: 9573 OS << "Dependent sequence\n"; 9574 return; 9575 9576 case NormalSequence: 9577 OS << "Normal sequence: "; 9578 break; 9579 } 9580 9581 for (step_iterator S = step_begin(), SEnd = step_end(); S != SEnd; ++S) { 9582 if (S != step_begin()) { 9583 OS << " -> "; 9584 } 9585 9586 switch (S->Kind) { 9587 case SK_ResolveAddressOfOverloadedFunction: 9588 OS << "resolve address of overloaded function"; 9589 break; 9590 9591 case SK_CastDerivedToBaseRValue: 9592 OS << "derived-to-base (rvalue)"; 9593 break; 9594 9595 case SK_CastDerivedToBaseXValue: 9596 OS << "derived-to-base (xvalue)"; 9597 break; 9598 9599 case SK_CastDerivedToBaseLValue: 9600 OS << "derived-to-base (lvalue)"; 9601 break; 9602 9603 case SK_BindReference: 9604 OS << "bind reference to lvalue"; 9605 break; 9606 9607 case SK_BindReferenceToTemporary: 9608 OS << "bind reference to a temporary"; 9609 break; 9610 9611 case SK_FinalCopy: 9612 OS << "final copy in class direct-initialization"; 9613 break; 9614 9615 case SK_ExtraneousCopyToTemporary: 9616 OS << "extraneous C++03 copy to temporary"; 9617 break; 9618 9619 case SK_UserConversion: 9620 OS << "user-defined conversion via " << *S->Function.Function; 9621 break; 9622 9623 case SK_QualificationConversionRValue: 9624 OS << "qualification conversion (rvalue)"; 9625 break; 9626 9627 case SK_QualificationConversionXValue: 9628 OS << "qualification conversion (xvalue)"; 9629 break; 9630 9631 case SK_QualificationConversionLValue: 9632 OS << "qualification conversion (lvalue)"; 9633 break; 9634 9635 case SK_FunctionReferenceConversion: 9636 OS << "function reference conversion"; 9637 break; 9638 9639 case SK_AtomicConversion: 9640 OS << "non-atomic-to-atomic conversion"; 9641 break; 9642 9643 case SK_ConversionSequence: 9644 OS << "implicit conversion sequence ("; 9645 S->ICS->dump(); // FIXME: use OS 9646 OS << ")"; 9647 break; 9648 9649 case SK_ConversionSequenceNoNarrowing: 9650 OS << "implicit conversion sequence with narrowing prohibited ("; 9651 S->ICS->dump(); // FIXME: use OS 9652 OS << ")"; 9653 break; 9654 9655 case SK_ListInitialization: 9656 OS << "list aggregate initialization"; 9657 break; 9658 9659 case SK_UnwrapInitList: 9660 OS << "unwrap reference initializer list"; 9661 break; 9662 9663 case SK_RewrapInitList: 9664 OS << "rewrap reference initializer list"; 9665 break; 9666 9667 case SK_ConstructorInitialization: 9668 OS << "constructor initialization"; 9669 break; 9670 9671 case SK_ConstructorInitializationFromList: 9672 OS << "list initialization via constructor"; 9673 break; 9674 9675 case SK_ZeroInitialization: 9676 OS << "zero initialization"; 9677 break; 9678 9679 case SK_CAssignment: 9680 OS << "C assignment"; 9681 break; 9682 9683 case SK_StringInit: 9684 OS << "string initialization"; 9685 break; 9686 9687 case SK_ObjCObjectConversion: 9688 OS << "Objective-C object conversion"; 9689 break; 9690 9691 case SK_ArrayLoopIndex: 9692 OS << "indexing for array initialization loop"; 9693 break; 9694 9695 case SK_ArrayLoopInit: 9696 OS << "array initialization loop"; 9697 break; 9698 9699 case SK_ArrayInit: 9700 OS << "array initialization"; 9701 break; 9702 9703 case SK_GNUArrayInit: 9704 OS << "array initialization (GNU extension)"; 9705 break; 9706 9707 case SK_ParenthesizedArrayInit: 9708 OS << "parenthesized array initialization"; 9709 break; 9710 9711 case SK_PassByIndirectCopyRestore: 9712 OS << "pass by indirect copy and restore"; 9713 break; 9714 9715 case SK_PassByIndirectRestore: 9716 OS << "pass by indirect restore"; 9717 break; 9718 9719 case SK_ProduceObjCObject: 9720 OS << "Objective-C object retension"; 9721 break; 9722 9723 case SK_StdInitializerList: 9724 OS << "std::initializer_list from initializer list"; 9725 break; 9726 9727 case SK_StdInitializerListConstructorCall: 9728 OS << "list initialization from std::initializer_list"; 9729 break; 9730 9731 case SK_OCLSamplerInit: 9732 OS << "OpenCL sampler_t from integer constant"; 9733 break; 9734 9735 case SK_OCLZeroOpaqueType: 9736 OS << "OpenCL opaque type from zero"; 9737 break; 9738 } 9739 9740 OS << " [" << S->Type.getAsString() << ']'; 9741 } 9742 9743 OS << '\n'; 9744 } 9745 9746 void InitializationSequence::dump() const { 9747 dump(llvm::errs()); 9748 } 9749 9750 static bool NarrowingErrs(const LangOptions &L) { 9751 return L.CPlusPlus11 && 9752 (!L.MicrosoftExt || L.isCompatibleWithMSVC(LangOptions::MSVC2015)); 9753 } 9754 9755 static void DiagnoseNarrowingInInitList(Sema &S, 9756 const ImplicitConversionSequence &ICS, 9757 QualType PreNarrowingType, 9758 QualType EntityType, 9759 const Expr *PostInit) { 9760 const StandardConversionSequence *SCS = nullptr; 9761 switch (ICS.getKind()) { 9762 case ImplicitConversionSequence::StandardConversion: 9763 SCS = &ICS.Standard; 9764 break; 9765 case ImplicitConversionSequence::UserDefinedConversion: 9766 SCS = &ICS.UserDefined.After; 9767 break; 9768 case ImplicitConversionSequence::AmbiguousConversion: 9769 case ImplicitConversionSequence::EllipsisConversion: 9770 case ImplicitConversionSequence::BadConversion: 9771 return; 9772 } 9773 9774 // C++11 [dcl.init.list]p7: Check whether this is a narrowing conversion. 9775 APValue ConstantValue; 9776 QualType ConstantType; 9777 switch (SCS->getNarrowingKind(S.Context, PostInit, ConstantValue, 9778 ConstantType)) { 9779 case NK_Not_Narrowing: 9780 case NK_Dependent_Narrowing: 9781 // No narrowing occurred. 9782 return; 9783 9784 case NK_Type_Narrowing: 9785 // This was a floating-to-integer conversion, which is always considered a 9786 // narrowing conversion even if the value is a constant and can be 9787 // represented exactly as an integer. 9788 S.Diag(PostInit->getBeginLoc(), NarrowingErrs(S.getLangOpts()) 9789 ? diag::ext_init_list_type_narrowing 9790 : diag::warn_init_list_type_narrowing) 9791 << PostInit->getSourceRange() 9792 << PreNarrowingType.getLocalUnqualifiedType() 9793 << EntityType.getLocalUnqualifiedType(); 9794 break; 9795 9796 case NK_Constant_Narrowing: 9797 // A constant value was narrowed. 9798 S.Diag(PostInit->getBeginLoc(), 9799 NarrowingErrs(S.getLangOpts()) 9800 ? diag::ext_init_list_constant_narrowing 9801 : diag::warn_init_list_constant_narrowing) 9802 << PostInit->getSourceRange() 9803 << ConstantValue.getAsString(S.getASTContext(), ConstantType) 9804 << EntityType.getLocalUnqualifiedType(); 9805 break; 9806 9807 case NK_Variable_Narrowing: 9808 // A variable's value may have been narrowed. 9809 S.Diag(PostInit->getBeginLoc(), 9810 NarrowingErrs(S.getLangOpts()) 9811 ? diag::ext_init_list_variable_narrowing 9812 : diag::warn_init_list_variable_narrowing) 9813 << PostInit->getSourceRange() 9814 << PreNarrowingType.getLocalUnqualifiedType() 9815 << EntityType.getLocalUnqualifiedType(); 9816 break; 9817 } 9818 9819 SmallString<128> StaticCast; 9820 llvm::raw_svector_ostream OS(StaticCast); 9821 OS << "static_cast<"; 9822 if (const TypedefType *TT = EntityType->getAs<TypedefType>()) { 9823 // It's important to use the typedef's name if there is one so that the 9824 // fixit doesn't break code using types like int64_t. 9825 // 9826 // FIXME: This will break if the typedef requires qualification. But 9827 // getQualifiedNameAsString() includes non-machine-parsable components. 9828 OS << *TT->getDecl(); 9829 } else if (const BuiltinType *BT = EntityType->getAs<BuiltinType>()) 9830 OS << BT->getName(S.getLangOpts()); 9831 else { 9832 // Oops, we didn't find the actual type of the variable. Don't emit a fixit 9833 // with a broken cast. 9834 return; 9835 } 9836 OS << ">("; 9837 S.Diag(PostInit->getBeginLoc(), diag::note_init_list_narrowing_silence) 9838 << PostInit->getSourceRange() 9839 << FixItHint::CreateInsertion(PostInit->getBeginLoc(), OS.str()) 9840 << FixItHint::CreateInsertion( 9841 S.getLocForEndOfToken(PostInit->getEndLoc()), ")"); 9842 } 9843 9844 //===----------------------------------------------------------------------===// 9845 // Initialization helper functions 9846 //===----------------------------------------------------------------------===// 9847 bool 9848 Sema::CanPerformCopyInitialization(const InitializedEntity &Entity, 9849 ExprResult Init) { 9850 if (Init.isInvalid()) 9851 return false; 9852 9853 Expr *InitE = Init.get(); 9854 assert(InitE && "No initialization expression"); 9855 9856 InitializationKind Kind = 9857 InitializationKind::CreateCopy(InitE->getBeginLoc(), SourceLocation()); 9858 InitializationSequence Seq(*this, Entity, Kind, InitE); 9859 return !Seq.Failed(); 9860 } 9861 9862 ExprResult 9863 Sema::PerformCopyInitialization(const InitializedEntity &Entity, 9864 SourceLocation EqualLoc, 9865 ExprResult Init, 9866 bool TopLevelOfInitList, 9867 bool AllowExplicit) { 9868 if (Init.isInvalid()) 9869 return ExprError(); 9870 9871 Expr *InitE = Init.get(); 9872 assert(InitE && "No initialization expression?"); 9873 9874 if (EqualLoc.isInvalid()) 9875 EqualLoc = InitE->getBeginLoc(); 9876 9877 InitializationKind Kind = InitializationKind::CreateCopy( 9878 InitE->getBeginLoc(), EqualLoc, AllowExplicit); 9879 InitializationSequence Seq(*this, Entity, Kind, InitE, TopLevelOfInitList); 9880 9881 // Prevent infinite recursion when performing parameter copy-initialization. 9882 const bool ShouldTrackCopy = 9883 Entity.isParameterKind() && Seq.isConstructorInitialization(); 9884 if (ShouldTrackCopy) { 9885 if (llvm::find(CurrentParameterCopyTypes, Entity.getType()) != 9886 CurrentParameterCopyTypes.end()) { 9887 Seq.SetOverloadFailure( 9888 InitializationSequence::FK_ConstructorOverloadFailed, 9889 OR_No_Viable_Function); 9890 9891 // Try to give a meaningful diagnostic note for the problematic 9892 // constructor. 9893 const auto LastStep = Seq.step_end() - 1; 9894 assert(LastStep->Kind == 9895 InitializationSequence::SK_ConstructorInitialization); 9896 const FunctionDecl *Function = LastStep->Function.Function; 9897 auto Candidate = 9898 llvm::find_if(Seq.getFailedCandidateSet(), 9899 [Function](const OverloadCandidate &Candidate) -> bool { 9900 return Candidate.Viable && 9901 Candidate.Function == Function && 9902 Candidate.Conversions.size() > 0; 9903 }); 9904 if (Candidate != Seq.getFailedCandidateSet().end() && 9905 Function->getNumParams() > 0) { 9906 Candidate->Viable = false; 9907 Candidate->FailureKind = ovl_fail_bad_conversion; 9908 Candidate->Conversions[0].setBad(BadConversionSequence::no_conversion, 9909 InitE, 9910 Function->getParamDecl(0)->getType()); 9911 } 9912 } 9913 CurrentParameterCopyTypes.push_back(Entity.getType()); 9914 } 9915 9916 ExprResult Result = Seq.Perform(*this, Entity, Kind, InitE); 9917 9918 if (ShouldTrackCopy) 9919 CurrentParameterCopyTypes.pop_back(); 9920 9921 return Result; 9922 } 9923 9924 /// Determine whether RD is, or is derived from, a specialization of CTD. 9925 static bool isOrIsDerivedFromSpecializationOf(CXXRecordDecl *RD, 9926 ClassTemplateDecl *CTD) { 9927 auto NotSpecialization = [&] (const CXXRecordDecl *Candidate) { 9928 auto *CTSD = dyn_cast<ClassTemplateSpecializationDecl>(Candidate); 9929 return !CTSD || !declaresSameEntity(CTSD->getSpecializedTemplate(), CTD); 9930 }; 9931 return !(NotSpecialization(RD) && RD->forallBases(NotSpecialization)); 9932 } 9933 9934 QualType Sema::DeduceTemplateSpecializationFromInitializer( 9935 TypeSourceInfo *TSInfo, const InitializedEntity &Entity, 9936 const InitializationKind &Kind, MultiExprArg Inits) { 9937 auto *DeducedTST = dyn_cast<DeducedTemplateSpecializationType>( 9938 TSInfo->getType()->getContainedDeducedType()); 9939 assert(DeducedTST && "not a deduced template specialization type"); 9940 9941 auto TemplateName = DeducedTST->getTemplateName(); 9942 if (TemplateName.isDependent()) 9943 return SubstAutoType(TSInfo->getType(), Context.DependentTy); 9944 9945 // We can only perform deduction for class templates. 9946 auto *Template = 9947 dyn_cast_or_null<ClassTemplateDecl>(TemplateName.getAsTemplateDecl()); 9948 if (!Template) { 9949 Diag(Kind.getLocation(), 9950 diag::err_deduced_non_class_template_specialization_type) 9951 << (int)getTemplateNameKindForDiagnostics(TemplateName) << TemplateName; 9952 if (auto *TD = TemplateName.getAsTemplateDecl()) 9953 Diag(TD->getLocation(), diag::note_template_decl_here); 9954 return QualType(); 9955 } 9956 9957 // Can't deduce from dependent arguments. 9958 if (Expr::hasAnyTypeDependentArguments(Inits)) { 9959 Diag(TSInfo->getTypeLoc().getBeginLoc(), 9960 diag::warn_cxx14_compat_class_template_argument_deduction) 9961 << TSInfo->getTypeLoc().getSourceRange() << 0; 9962 return SubstAutoType(TSInfo->getType(), Context.DependentTy); 9963 } 9964 9965 // FIXME: Perform "exact type" matching first, per CWG discussion? 9966 // Or implement this via an implied 'T(T) -> T' deduction guide? 9967 9968 // FIXME: Do we need/want a std::initializer_list<T> special case? 9969 9970 // Look up deduction guides, including those synthesized from constructors. 9971 // 9972 // C++1z [over.match.class.deduct]p1: 9973 // A set of functions and function templates is formed comprising: 9974 // - For each constructor of the class template designated by the 9975 // template-name, a function template [...] 9976 // - For each deduction-guide, a function or function template [...] 9977 DeclarationNameInfo NameInfo( 9978 Context.DeclarationNames.getCXXDeductionGuideName(Template), 9979 TSInfo->getTypeLoc().getEndLoc()); 9980 LookupResult Guides(*this, NameInfo, LookupOrdinaryName); 9981 LookupQualifiedName(Guides, Template->getDeclContext()); 9982 9983 // FIXME: Do not diagnose inaccessible deduction guides. The standard isn't 9984 // clear on this, but they're not found by name so access does not apply. 9985 Guides.suppressDiagnostics(); 9986 9987 // Figure out if this is list-initialization. 9988 InitListExpr *ListInit = 9989 (Inits.size() == 1 && Kind.getKind() != InitializationKind::IK_Direct) 9990 ? dyn_cast<InitListExpr>(Inits[0]) 9991 : nullptr; 9992 9993 // C++1z [over.match.class.deduct]p1: 9994 // Initialization and overload resolution are performed as described in 9995 // [dcl.init] and [over.match.ctor], [over.match.copy], or [over.match.list] 9996 // (as appropriate for the type of initialization performed) for an object 9997 // of a hypothetical class type, where the selected functions and function 9998 // templates are considered to be the constructors of that class type 9999 // 10000 // Since we know we're initializing a class type of a type unrelated to that 10001 // of the initializer, this reduces to something fairly reasonable. 10002 OverloadCandidateSet Candidates(Kind.getLocation(), 10003 OverloadCandidateSet::CSK_Normal); 10004 OverloadCandidateSet::iterator Best; 10005 10006 bool HasAnyDeductionGuide = false; 10007 bool AllowExplicit = !Kind.isCopyInit() || ListInit; 10008 10009 auto tryToResolveOverload = 10010 [&](bool OnlyListConstructors) -> OverloadingResult { 10011 Candidates.clear(OverloadCandidateSet::CSK_Normal); 10012 HasAnyDeductionGuide = false; 10013 10014 for (auto I = Guides.begin(), E = Guides.end(); I != E; ++I) { 10015 NamedDecl *D = (*I)->getUnderlyingDecl(); 10016 if (D->isInvalidDecl()) 10017 continue; 10018 10019 auto *TD = dyn_cast<FunctionTemplateDecl>(D); 10020 auto *GD = dyn_cast_or_null<CXXDeductionGuideDecl>( 10021 TD ? TD->getTemplatedDecl() : dyn_cast<FunctionDecl>(D)); 10022 if (!GD) 10023 continue; 10024 10025 if (!GD->isImplicit()) 10026 HasAnyDeductionGuide = true; 10027 10028 // C++ [over.match.ctor]p1: (non-list copy-initialization from non-class) 10029 // For copy-initialization, the candidate functions are all the 10030 // converting constructors (12.3.1) of that class. 10031 // C++ [over.match.copy]p1: (non-list copy-initialization from class) 10032 // The converting constructors of T are candidate functions. 10033 if (!AllowExplicit) { 10034 // Overload resolution checks whether the deduction guide is declared 10035 // explicit for us. 10036 10037 // When looking for a converting constructor, deduction guides that 10038 // could never be called with one argument are not interesting to 10039 // check or note. 10040 if (GD->getMinRequiredArguments() > 1 || 10041 (GD->getNumParams() == 0 && !GD->isVariadic())) 10042 continue; 10043 } 10044 10045 // C++ [over.match.list]p1.1: (first phase list initialization) 10046 // Initially, the candidate functions are the initializer-list 10047 // constructors of the class T 10048 if (OnlyListConstructors && !isInitListConstructor(GD)) 10049 continue; 10050 10051 // C++ [over.match.list]p1.2: (second phase list initialization) 10052 // the candidate functions are all the constructors of the class T 10053 // C++ [over.match.ctor]p1: (all other cases) 10054 // the candidate functions are all the constructors of the class of 10055 // the object being initialized 10056 10057 // C++ [over.best.ics]p4: 10058 // When [...] the constructor [...] is a candidate by 10059 // - [over.match.copy] (in all cases) 10060 // FIXME: The "second phase of [over.match.list] case can also 10061 // theoretically happen here, but it's not clear whether we can 10062 // ever have a parameter of the right type. 10063 bool SuppressUserConversions = Kind.isCopyInit(); 10064 10065 if (TD) 10066 AddTemplateOverloadCandidate(TD, I.getPair(), /*ExplicitArgs*/ nullptr, 10067 Inits, Candidates, SuppressUserConversions, 10068 /*PartialOverloading*/ false, 10069 AllowExplicit); 10070 else 10071 AddOverloadCandidate(GD, I.getPair(), Inits, Candidates, 10072 SuppressUserConversions, 10073 /*PartialOverloading*/ false, AllowExplicit); 10074 } 10075 return Candidates.BestViableFunction(*this, Kind.getLocation(), Best); 10076 }; 10077 10078 OverloadingResult Result = OR_No_Viable_Function; 10079 10080 // C++11 [over.match.list]p1, per DR1467: for list-initialization, first 10081 // try initializer-list constructors. 10082 if (ListInit) { 10083 bool TryListConstructors = true; 10084 10085 // Try list constructors unless the list is empty and the class has one or 10086 // more default constructors, in which case those constructors win. 10087 if (!ListInit->getNumInits()) { 10088 for (NamedDecl *D : Guides) { 10089 auto *FD = dyn_cast<FunctionDecl>(D->getUnderlyingDecl()); 10090 if (FD && FD->getMinRequiredArguments() == 0) { 10091 TryListConstructors = false; 10092 break; 10093 } 10094 } 10095 } else if (ListInit->getNumInits() == 1) { 10096 // C++ [over.match.class.deduct]: 10097 // As an exception, the first phase in [over.match.list] (considering 10098 // initializer-list constructors) is omitted if the initializer list 10099 // consists of a single expression of type cv U, where U is a 10100 // specialization of C or a class derived from a specialization of C. 10101 Expr *E = ListInit->getInit(0); 10102 auto *RD = E->getType()->getAsCXXRecordDecl(); 10103 if (!isa<InitListExpr>(E) && RD && 10104 isCompleteType(Kind.getLocation(), E->getType()) && 10105 isOrIsDerivedFromSpecializationOf(RD, Template)) 10106 TryListConstructors = false; 10107 } 10108 10109 if (TryListConstructors) 10110 Result = tryToResolveOverload(/*OnlyListConstructor*/true); 10111 // Then unwrap the initializer list and try again considering all 10112 // constructors. 10113 Inits = MultiExprArg(ListInit->getInits(), ListInit->getNumInits()); 10114 } 10115 10116 // If list-initialization fails, or if we're doing any other kind of 10117 // initialization, we (eventually) consider constructors. 10118 if (Result == OR_No_Viable_Function) 10119 Result = tryToResolveOverload(/*OnlyListConstructor*/false); 10120 10121 switch (Result) { 10122 case OR_Ambiguous: 10123 // FIXME: For list-initialization candidates, it'd usually be better to 10124 // list why they were not viable when given the initializer list itself as 10125 // an argument. 10126 Candidates.NoteCandidates( 10127 PartialDiagnosticAt( 10128 Kind.getLocation(), 10129 PDiag(diag::err_deduced_class_template_ctor_ambiguous) 10130 << TemplateName), 10131 *this, OCD_AmbiguousCandidates, Inits); 10132 return QualType(); 10133 10134 case OR_No_Viable_Function: { 10135 CXXRecordDecl *Primary = 10136 cast<ClassTemplateDecl>(Template)->getTemplatedDecl(); 10137 bool Complete = 10138 isCompleteType(Kind.getLocation(), Context.getTypeDeclType(Primary)); 10139 Candidates.NoteCandidates( 10140 PartialDiagnosticAt( 10141 Kind.getLocation(), 10142 PDiag(Complete ? diag::err_deduced_class_template_ctor_no_viable 10143 : diag::err_deduced_class_template_incomplete) 10144 << TemplateName << !Guides.empty()), 10145 *this, OCD_AllCandidates, Inits); 10146 return QualType(); 10147 } 10148 10149 case OR_Deleted: { 10150 Diag(Kind.getLocation(), diag::err_deduced_class_template_deleted) 10151 << TemplateName; 10152 NoteDeletedFunction(Best->Function); 10153 return QualType(); 10154 } 10155 10156 case OR_Success: 10157 // C++ [over.match.list]p1: 10158 // In copy-list-initialization, if an explicit constructor is chosen, the 10159 // initialization is ill-formed. 10160 if (Kind.isCopyInit() && ListInit && 10161 cast<CXXDeductionGuideDecl>(Best->Function)->isExplicit()) { 10162 bool IsDeductionGuide = !Best->Function->isImplicit(); 10163 Diag(Kind.getLocation(), diag::err_deduced_class_template_explicit) 10164 << TemplateName << IsDeductionGuide; 10165 Diag(Best->Function->getLocation(), 10166 diag::note_explicit_ctor_deduction_guide_here) 10167 << IsDeductionGuide; 10168 return QualType(); 10169 } 10170 10171 // Make sure we didn't select an unusable deduction guide, and mark it 10172 // as referenced. 10173 DiagnoseUseOfDecl(Best->Function, Kind.getLocation()); 10174 MarkFunctionReferenced(Kind.getLocation(), Best->Function); 10175 break; 10176 } 10177 10178 // C++ [dcl.type.class.deduct]p1: 10179 // The placeholder is replaced by the return type of the function selected 10180 // by overload resolution for class template deduction. 10181 QualType DeducedType = 10182 SubstAutoType(TSInfo->getType(), Best->Function->getReturnType()); 10183 Diag(TSInfo->getTypeLoc().getBeginLoc(), 10184 diag::warn_cxx14_compat_class_template_argument_deduction) 10185 << TSInfo->getTypeLoc().getSourceRange() << 1 << DeducedType; 10186 10187 // Warn if CTAD was used on a type that does not have any user-defined 10188 // deduction guides. 10189 if (!HasAnyDeductionGuide) { 10190 Diag(TSInfo->getTypeLoc().getBeginLoc(), 10191 diag::warn_ctad_maybe_unsupported) 10192 << TemplateName; 10193 Diag(Template->getLocation(), diag::note_suppress_ctad_maybe_unsupported); 10194 } 10195 10196 return DeducedType; 10197 } 10198