1 //===--- SemaOverload.cpp - C++ Overloading -------------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file provides Sema routines for C++ overloading. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "clang/Sema/Overload.h" 15 #include "clang/AST/ASTContext.h" 16 #include "clang/AST/CXXInheritance.h" 17 #include "clang/AST/DeclObjC.h" 18 #include "clang/AST/Expr.h" 19 #include "clang/AST/ExprCXX.h" 20 #include "clang/AST/ExprObjC.h" 21 #include "clang/AST/TypeOrdering.h" 22 #include "clang/Basic/Diagnostic.h" 23 #include "clang/Basic/DiagnosticOptions.h" 24 #include "clang/Basic/PartialDiagnostic.h" 25 #include "clang/Basic/TargetInfo.h" 26 #include "clang/Sema/Initialization.h" 27 #include "clang/Sema/Lookup.h" 28 #include "clang/Sema/SemaInternal.h" 29 #include "clang/Sema/Template.h" 30 #include "clang/Sema/TemplateDeduction.h" 31 #include "llvm/ADT/DenseSet.h" 32 #include "llvm/ADT/Optional.h" 33 #include "llvm/ADT/STLExtras.h" 34 #include "llvm/ADT/SmallPtrSet.h" 35 #include "llvm/ADT/SmallString.h" 36 #include <algorithm> 37 #include <cstdlib> 38 39 using namespace clang; 40 using namespace sema; 41 42 static bool functionHasPassObjectSizeParams(const FunctionDecl *FD) { 43 return llvm::any_of(FD->parameters(), [](const ParmVarDecl *P) { 44 return P->hasAttr<PassObjectSizeAttr>(); 45 }); 46 } 47 48 /// A convenience routine for creating a decayed reference to a function. 49 static ExprResult 50 CreateFunctionRefExpr(Sema &S, FunctionDecl *Fn, NamedDecl *FoundDecl, 51 const Expr *Base, bool HadMultipleCandidates, 52 SourceLocation Loc = SourceLocation(), 53 const DeclarationNameLoc &LocInfo = DeclarationNameLoc()){ 54 if (S.DiagnoseUseOfDecl(FoundDecl, Loc)) 55 return ExprError(); 56 // If FoundDecl is different from Fn (such as if one is a template 57 // and the other a specialization), make sure DiagnoseUseOfDecl is 58 // called on both. 59 // FIXME: This would be more comprehensively addressed by modifying 60 // DiagnoseUseOfDecl to accept both the FoundDecl and the decl 61 // being used. 62 if (FoundDecl != Fn && S.DiagnoseUseOfDecl(Fn, Loc)) 63 return ExprError(); 64 if (auto *FPT = Fn->getType()->getAs<FunctionProtoType>()) 65 S.ResolveExceptionSpec(Loc, FPT); 66 DeclRefExpr *DRE = new (S.Context) DeclRefExpr(Fn, false, Fn->getType(), 67 VK_LValue, Loc, LocInfo); 68 if (HadMultipleCandidates) 69 DRE->setHadMultipleCandidates(true); 70 71 S.MarkDeclRefReferenced(DRE, Base); 72 return S.ImpCastExprToType(DRE, S.Context.getPointerType(DRE->getType()), 73 CK_FunctionToPointerDecay); 74 } 75 76 static bool IsStandardConversion(Sema &S, Expr* From, QualType ToType, 77 bool InOverloadResolution, 78 StandardConversionSequence &SCS, 79 bool CStyle, 80 bool AllowObjCWritebackConversion); 81 82 static bool IsTransparentUnionStandardConversion(Sema &S, Expr* From, 83 QualType &ToType, 84 bool InOverloadResolution, 85 StandardConversionSequence &SCS, 86 bool CStyle); 87 static OverloadingResult 88 IsUserDefinedConversion(Sema &S, Expr *From, QualType ToType, 89 UserDefinedConversionSequence& User, 90 OverloadCandidateSet& Conversions, 91 bool AllowExplicit, 92 bool AllowObjCConversionOnExplicit); 93 94 95 static ImplicitConversionSequence::CompareKind 96 CompareStandardConversionSequences(Sema &S, SourceLocation Loc, 97 const StandardConversionSequence& SCS1, 98 const StandardConversionSequence& SCS2); 99 100 static ImplicitConversionSequence::CompareKind 101 CompareQualificationConversions(Sema &S, 102 const StandardConversionSequence& SCS1, 103 const StandardConversionSequence& SCS2); 104 105 static ImplicitConversionSequence::CompareKind 106 CompareDerivedToBaseConversions(Sema &S, SourceLocation Loc, 107 const StandardConversionSequence& SCS1, 108 const StandardConversionSequence& SCS2); 109 110 /// GetConversionRank - Retrieve the implicit conversion rank 111 /// corresponding to the given implicit conversion kind. 112 ImplicitConversionRank clang::GetConversionRank(ImplicitConversionKind Kind) { 113 static const ImplicitConversionRank 114 Rank[(int)ICK_Num_Conversion_Kinds] = { 115 ICR_Exact_Match, 116 ICR_Exact_Match, 117 ICR_Exact_Match, 118 ICR_Exact_Match, 119 ICR_Exact_Match, 120 ICR_Exact_Match, 121 ICR_Promotion, 122 ICR_Promotion, 123 ICR_Promotion, 124 ICR_Conversion, 125 ICR_Conversion, 126 ICR_Conversion, 127 ICR_Conversion, 128 ICR_Conversion, 129 ICR_Conversion, 130 ICR_Conversion, 131 ICR_Conversion, 132 ICR_Conversion, 133 ICR_Conversion, 134 ICR_OCL_Scalar_Widening, 135 ICR_Complex_Real_Conversion, 136 ICR_Conversion, 137 ICR_Conversion, 138 ICR_Writeback_Conversion, 139 ICR_Exact_Match, // NOTE(gbiv): This may not be completely right -- 140 // it was omitted by the patch that added 141 // ICK_Zero_Event_Conversion 142 ICR_C_Conversion, 143 ICR_C_Conversion_Extension 144 }; 145 return Rank[(int)Kind]; 146 } 147 148 /// GetImplicitConversionName - Return the name of this kind of 149 /// implicit conversion. 150 static const char* GetImplicitConversionName(ImplicitConversionKind Kind) { 151 static const char* const Name[(int)ICK_Num_Conversion_Kinds] = { 152 "No conversion", 153 "Lvalue-to-rvalue", 154 "Array-to-pointer", 155 "Function-to-pointer", 156 "Function pointer conversion", 157 "Qualification", 158 "Integral promotion", 159 "Floating point promotion", 160 "Complex promotion", 161 "Integral conversion", 162 "Floating conversion", 163 "Complex conversion", 164 "Floating-integral conversion", 165 "Pointer conversion", 166 "Pointer-to-member conversion", 167 "Boolean conversion", 168 "Compatible-types conversion", 169 "Derived-to-base conversion", 170 "Vector conversion", 171 "Vector splat", 172 "Complex-real conversion", 173 "Block Pointer conversion", 174 "Transparent Union Conversion", 175 "Writeback conversion", 176 "OpenCL Zero Event Conversion", 177 "C specific type conversion", 178 "Incompatible pointer conversion" 179 }; 180 return Name[Kind]; 181 } 182 183 /// StandardConversionSequence - Set the standard conversion 184 /// sequence to the identity conversion. 185 void StandardConversionSequence::setAsIdentityConversion() { 186 First = ICK_Identity; 187 Second = ICK_Identity; 188 Third = ICK_Identity; 189 DeprecatedStringLiteralToCharPtr = false; 190 QualificationIncludesObjCLifetime = false; 191 ReferenceBinding = false; 192 DirectBinding = false; 193 IsLvalueReference = true; 194 BindsToFunctionLvalue = false; 195 BindsToRvalue = false; 196 BindsImplicitObjectArgumentWithoutRefQualifier = false; 197 ObjCLifetimeConversionBinding = false; 198 CopyConstructor = nullptr; 199 } 200 201 /// getRank - Retrieve the rank of this standard conversion sequence 202 /// (C++ 13.3.3.1.1p3). The rank is the largest rank of each of the 203 /// implicit conversions. 204 ImplicitConversionRank StandardConversionSequence::getRank() const { 205 ImplicitConversionRank Rank = ICR_Exact_Match; 206 if (GetConversionRank(First) > Rank) 207 Rank = GetConversionRank(First); 208 if (GetConversionRank(Second) > Rank) 209 Rank = GetConversionRank(Second); 210 if (GetConversionRank(Third) > Rank) 211 Rank = GetConversionRank(Third); 212 return Rank; 213 } 214 215 /// isPointerConversionToBool - Determines whether this conversion is 216 /// a conversion of a pointer or pointer-to-member to bool. This is 217 /// used as part of the ranking of standard conversion sequences 218 /// (C++ 13.3.3.2p4). 219 bool StandardConversionSequence::isPointerConversionToBool() const { 220 // Note that FromType has not necessarily been transformed by the 221 // array-to-pointer or function-to-pointer implicit conversions, so 222 // check for their presence as well as checking whether FromType is 223 // a pointer. 224 if (getToType(1)->isBooleanType() && 225 (getFromType()->isPointerType() || 226 getFromType()->isMemberPointerType() || 227 getFromType()->isObjCObjectPointerType() || 228 getFromType()->isBlockPointerType() || 229 getFromType()->isNullPtrType() || 230 First == ICK_Array_To_Pointer || First == ICK_Function_To_Pointer)) 231 return true; 232 233 return false; 234 } 235 236 /// isPointerConversionToVoidPointer - Determines whether this 237 /// conversion is a conversion of a pointer to a void pointer. This is 238 /// used as part of the ranking of standard conversion sequences (C++ 239 /// 13.3.3.2p4). 240 bool 241 StandardConversionSequence:: 242 isPointerConversionToVoidPointer(ASTContext& Context) const { 243 QualType FromType = getFromType(); 244 QualType ToType = getToType(1); 245 246 // Note that FromType has not necessarily been transformed by the 247 // array-to-pointer implicit conversion, so check for its presence 248 // and redo the conversion to get a pointer. 249 if (First == ICK_Array_To_Pointer) 250 FromType = Context.getArrayDecayedType(FromType); 251 252 if (Second == ICK_Pointer_Conversion && FromType->isAnyPointerType()) 253 if (const PointerType* ToPtrType = ToType->getAs<PointerType>()) 254 return ToPtrType->getPointeeType()->isVoidType(); 255 256 return false; 257 } 258 259 /// Skip any implicit casts which could be either part of a narrowing conversion 260 /// or after one in an implicit conversion. 261 static const Expr *IgnoreNarrowingConversion(const Expr *Converted) { 262 while (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(Converted)) { 263 switch (ICE->getCastKind()) { 264 case CK_NoOp: 265 case CK_IntegralCast: 266 case CK_IntegralToBoolean: 267 case CK_IntegralToFloating: 268 case CK_BooleanToSignedIntegral: 269 case CK_FloatingToIntegral: 270 case CK_FloatingToBoolean: 271 case CK_FloatingCast: 272 Converted = ICE->getSubExpr(); 273 continue; 274 275 default: 276 return Converted; 277 } 278 } 279 280 return Converted; 281 } 282 283 /// Check if this standard conversion sequence represents a narrowing 284 /// conversion, according to C++11 [dcl.init.list]p7. 285 /// 286 /// \param Ctx The AST context. 287 /// \param Converted The result of applying this standard conversion sequence. 288 /// \param ConstantValue If this is an NK_Constant_Narrowing conversion, the 289 /// value of the expression prior to the narrowing conversion. 290 /// \param ConstantType If this is an NK_Constant_Narrowing conversion, the 291 /// type of the expression prior to the narrowing conversion. 292 /// \param IgnoreFloatToIntegralConversion If true type-narrowing conversions 293 /// from floating point types to integral types should be ignored. 294 NarrowingKind StandardConversionSequence::getNarrowingKind( 295 ASTContext &Ctx, const Expr *Converted, APValue &ConstantValue, 296 QualType &ConstantType, bool IgnoreFloatToIntegralConversion) const { 297 assert(Ctx.getLangOpts().CPlusPlus && "narrowing check outside C++"); 298 299 // C++11 [dcl.init.list]p7: 300 // A narrowing conversion is an implicit conversion ... 301 QualType FromType = getToType(0); 302 QualType ToType = getToType(1); 303 304 // A conversion to an enumeration type is narrowing if the conversion to 305 // the underlying type is narrowing. This only arises for expressions of 306 // the form 'Enum{init}'. 307 if (auto *ET = ToType->getAs<EnumType>()) 308 ToType = ET->getDecl()->getIntegerType(); 309 310 switch (Second) { 311 // 'bool' is an integral type; dispatch to the right place to handle it. 312 case ICK_Boolean_Conversion: 313 if (FromType->isRealFloatingType()) 314 goto FloatingIntegralConversion; 315 if (FromType->isIntegralOrUnscopedEnumerationType()) 316 goto IntegralConversion; 317 // Boolean conversions can be from pointers and pointers to members 318 // [conv.bool], and those aren't considered narrowing conversions. 319 return NK_Not_Narrowing; 320 321 // -- from a floating-point type to an integer type, or 322 // 323 // -- from an integer type or unscoped enumeration type to a floating-point 324 // type, except where the source is a constant expression and the actual 325 // value after conversion will fit into the target type and will produce 326 // the original value when converted back to the original type, or 327 case ICK_Floating_Integral: 328 FloatingIntegralConversion: 329 if (FromType->isRealFloatingType() && ToType->isIntegralType(Ctx)) { 330 return NK_Type_Narrowing; 331 } else if (FromType->isIntegralOrUnscopedEnumerationType() && 332 ToType->isRealFloatingType()) { 333 if (IgnoreFloatToIntegralConversion) 334 return NK_Not_Narrowing; 335 llvm::APSInt IntConstantValue; 336 const Expr *Initializer = IgnoreNarrowingConversion(Converted); 337 assert(Initializer && "Unknown conversion expression"); 338 339 // If it's value-dependent, we can't tell whether it's narrowing. 340 if (Initializer->isValueDependent()) 341 return NK_Dependent_Narrowing; 342 343 if (Initializer->isIntegerConstantExpr(IntConstantValue, Ctx)) { 344 // Convert the integer to the floating type. 345 llvm::APFloat Result(Ctx.getFloatTypeSemantics(ToType)); 346 Result.convertFromAPInt(IntConstantValue, IntConstantValue.isSigned(), 347 llvm::APFloat::rmNearestTiesToEven); 348 // And back. 349 llvm::APSInt ConvertedValue = IntConstantValue; 350 bool ignored; 351 Result.convertToInteger(ConvertedValue, 352 llvm::APFloat::rmTowardZero, &ignored); 353 // If the resulting value is different, this was a narrowing conversion. 354 if (IntConstantValue != ConvertedValue) { 355 ConstantValue = APValue(IntConstantValue); 356 ConstantType = Initializer->getType(); 357 return NK_Constant_Narrowing; 358 } 359 } else { 360 // Variables are always narrowings. 361 return NK_Variable_Narrowing; 362 } 363 } 364 return NK_Not_Narrowing; 365 366 // -- from long double to double or float, or from double to float, except 367 // where the source is a constant expression and the actual value after 368 // conversion is within the range of values that can be represented (even 369 // if it cannot be represented exactly), or 370 case ICK_Floating_Conversion: 371 if (FromType->isRealFloatingType() && ToType->isRealFloatingType() && 372 Ctx.getFloatingTypeOrder(FromType, ToType) == 1) { 373 // FromType is larger than ToType. 374 const Expr *Initializer = IgnoreNarrowingConversion(Converted); 375 376 // If it's value-dependent, we can't tell whether it's narrowing. 377 if (Initializer->isValueDependent()) 378 return NK_Dependent_Narrowing; 379 380 if (Initializer->isCXX11ConstantExpr(Ctx, &ConstantValue)) { 381 // Constant! 382 assert(ConstantValue.isFloat()); 383 llvm::APFloat FloatVal = ConstantValue.getFloat(); 384 // Convert the source value into the target type. 385 bool ignored; 386 llvm::APFloat::opStatus ConvertStatus = FloatVal.convert( 387 Ctx.getFloatTypeSemantics(ToType), 388 llvm::APFloat::rmNearestTiesToEven, &ignored); 389 // If there was no overflow, the source value is within the range of 390 // values that can be represented. 391 if (ConvertStatus & llvm::APFloat::opOverflow) { 392 ConstantType = Initializer->getType(); 393 return NK_Constant_Narrowing; 394 } 395 } else { 396 return NK_Variable_Narrowing; 397 } 398 } 399 return NK_Not_Narrowing; 400 401 // -- from an integer type or unscoped enumeration type to an integer type 402 // that cannot represent all the values of the original type, except where 403 // the source is a constant expression and the actual value after 404 // conversion will fit into the target type and will produce the original 405 // value when converted back to the original type. 406 case ICK_Integral_Conversion: 407 IntegralConversion: { 408 assert(FromType->isIntegralOrUnscopedEnumerationType()); 409 assert(ToType->isIntegralOrUnscopedEnumerationType()); 410 const bool FromSigned = FromType->isSignedIntegerOrEnumerationType(); 411 const unsigned FromWidth = Ctx.getIntWidth(FromType); 412 const bool ToSigned = ToType->isSignedIntegerOrEnumerationType(); 413 const unsigned ToWidth = Ctx.getIntWidth(ToType); 414 415 if (FromWidth > ToWidth || 416 (FromWidth == ToWidth && FromSigned != ToSigned) || 417 (FromSigned && !ToSigned)) { 418 // Not all values of FromType can be represented in ToType. 419 llvm::APSInt InitializerValue; 420 const Expr *Initializer = IgnoreNarrowingConversion(Converted); 421 422 // If it's value-dependent, we can't tell whether it's narrowing. 423 if (Initializer->isValueDependent()) 424 return NK_Dependent_Narrowing; 425 426 if (!Initializer->isIntegerConstantExpr(InitializerValue, Ctx)) { 427 // Such conversions on variables are always narrowing. 428 return NK_Variable_Narrowing; 429 } 430 bool Narrowing = false; 431 if (FromWidth < ToWidth) { 432 // Negative -> unsigned is narrowing. Otherwise, more bits is never 433 // narrowing. 434 if (InitializerValue.isSigned() && InitializerValue.isNegative()) 435 Narrowing = true; 436 } else { 437 // Add a bit to the InitializerValue so we don't have to worry about 438 // signed vs. unsigned comparisons. 439 InitializerValue = InitializerValue.extend( 440 InitializerValue.getBitWidth() + 1); 441 // Convert the initializer to and from the target width and signed-ness. 442 llvm::APSInt ConvertedValue = InitializerValue; 443 ConvertedValue = ConvertedValue.trunc(ToWidth); 444 ConvertedValue.setIsSigned(ToSigned); 445 ConvertedValue = ConvertedValue.extend(InitializerValue.getBitWidth()); 446 ConvertedValue.setIsSigned(InitializerValue.isSigned()); 447 // If the result is different, this was a narrowing conversion. 448 if (ConvertedValue != InitializerValue) 449 Narrowing = true; 450 } 451 if (Narrowing) { 452 ConstantType = Initializer->getType(); 453 ConstantValue = APValue(InitializerValue); 454 return NK_Constant_Narrowing; 455 } 456 } 457 return NK_Not_Narrowing; 458 } 459 460 default: 461 // Other kinds of conversions are not narrowings. 462 return NK_Not_Narrowing; 463 } 464 } 465 466 /// dump - Print this standard conversion sequence to standard 467 /// error. Useful for debugging overloading issues. 468 LLVM_DUMP_METHOD void StandardConversionSequence::dump() const { 469 raw_ostream &OS = llvm::errs(); 470 bool PrintedSomething = false; 471 if (First != ICK_Identity) { 472 OS << GetImplicitConversionName(First); 473 PrintedSomething = true; 474 } 475 476 if (Second != ICK_Identity) { 477 if (PrintedSomething) { 478 OS << " -> "; 479 } 480 OS << GetImplicitConversionName(Second); 481 482 if (CopyConstructor) { 483 OS << " (by copy constructor)"; 484 } else if (DirectBinding) { 485 OS << " (direct reference binding)"; 486 } else if (ReferenceBinding) { 487 OS << " (reference binding)"; 488 } 489 PrintedSomething = true; 490 } 491 492 if (Third != ICK_Identity) { 493 if (PrintedSomething) { 494 OS << " -> "; 495 } 496 OS << GetImplicitConversionName(Third); 497 PrintedSomething = true; 498 } 499 500 if (!PrintedSomething) { 501 OS << "No conversions required"; 502 } 503 } 504 505 /// dump - Print this user-defined conversion sequence to standard 506 /// error. Useful for debugging overloading issues. 507 void UserDefinedConversionSequence::dump() const { 508 raw_ostream &OS = llvm::errs(); 509 if (Before.First || Before.Second || Before.Third) { 510 Before.dump(); 511 OS << " -> "; 512 } 513 if (ConversionFunction) 514 OS << '\'' << *ConversionFunction << '\''; 515 else 516 OS << "aggregate initialization"; 517 if (After.First || After.Second || After.Third) { 518 OS << " -> "; 519 After.dump(); 520 } 521 } 522 523 /// dump - Print this implicit conversion sequence to standard 524 /// error. Useful for debugging overloading issues. 525 void ImplicitConversionSequence::dump() const { 526 raw_ostream &OS = llvm::errs(); 527 if (isStdInitializerListElement()) 528 OS << "Worst std::initializer_list element conversion: "; 529 switch (ConversionKind) { 530 case StandardConversion: 531 OS << "Standard conversion: "; 532 Standard.dump(); 533 break; 534 case UserDefinedConversion: 535 OS << "User-defined conversion: "; 536 UserDefined.dump(); 537 break; 538 case EllipsisConversion: 539 OS << "Ellipsis conversion"; 540 break; 541 case AmbiguousConversion: 542 OS << "Ambiguous conversion"; 543 break; 544 case BadConversion: 545 OS << "Bad conversion"; 546 break; 547 } 548 549 OS << "\n"; 550 } 551 552 void AmbiguousConversionSequence::construct() { 553 new (&conversions()) ConversionSet(); 554 } 555 556 void AmbiguousConversionSequence::destruct() { 557 conversions().~ConversionSet(); 558 } 559 560 void 561 AmbiguousConversionSequence::copyFrom(const AmbiguousConversionSequence &O) { 562 FromTypePtr = O.FromTypePtr; 563 ToTypePtr = O.ToTypePtr; 564 new (&conversions()) ConversionSet(O.conversions()); 565 } 566 567 namespace { 568 // Structure used by DeductionFailureInfo to store 569 // template argument information. 570 struct DFIArguments { 571 TemplateArgument FirstArg; 572 TemplateArgument SecondArg; 573 }; 574 // Structure used by DeductionFailureInfo to store 575 // template parameter and template argument information. 576 struct DFIParamWithArguments : DFIArguments { 577 TemplateParameter Param; 578 }; 579 // Structure used by DeductionFailureInfo to store template argument 580 // information and the index of the problematic call argument. 581 struct DFIDeducedMismatchArgs : DFIArguments { 582 TemplateArgumentList *TemplateArgs; 583 unsigned CallArgIndex; 584 }; 585 } 586 587 /// Convert from Sema's representation of template deduction information 588 /// to the form used in overload-candidate information. 589 DeductionFailureInfo 590 clang::MakeDeductionFailureInfo(ASTContext &Context, 591 Sema::TemplateDeductionResult TDK, 592 TemplateDeductionInfo &Info) { 593 DeductionFailureInfo Result; 594 Result.Result = static_cast<unsigned>(TDK); 595 Result.HasDiagnostic = false; 596 switch (TDK) { 597 case Sema::TDK_Invalid: 598 case Sema::TDK_InstantiationDepth: 599 case Sema::TDK_TooManyArguments: 600 case Sema::TDK_TooFewArguments: 601 case Sema::TDK_MiscellaneousDeductionFailure: 602 case Sema::TDK_CUDATargetMismatch: 603 Result.Data = nullptr; 604 break; 605 606 case Sema::TDK_Incomplete: 607 case Sema::TDK_InvalidExplicitArguments: 608 Result.Data = Info.Param.getOpaqueValue(); 609 break; 610 611 case Sema::TDK_DeducedMismatch: 612 case Sema::TDK_DeducedMismatchNested: { 613 // FIXME: Should allocate from normal heap so that we can free this later. 614 auto *Saved = new (Context) DFIDeducedMismatchArgs; 615 Saved->FirstArg = Info.FirstArg; 616 Saved->SecondArg = Info.SecondArg; 617 Saved->TemplateArgs = Info.take(); 618 Saved->CallArgIndex = Info.CallArgIndex; 619 Result.Data = Saved; 620 break; 621 } 622 623 case Sema::TDK_NonDeducedMismatch: { 624 // FIXME: Should allocate from normal heap so that we can free this later. 625 DFIArguments *Saved = new (Context) DFIArguments; 626 Saved->FirstArg = Info.FirstArg; 627 Saved->SecondArg = Info.SecondArg; 628 Result.Data = Saved; 629 break; 630 } 631 632 case Sema::TDK_Inconsistent: 633 case Sema::TDK_Underqualified: { 634 // FIXME: Should allocate from normal heap so that we can free this later. 635 DFIParamWithArguments *Saved = new (Context) DFIParamWithArguments; 636 Saved->Param = Info.Param; 637 Saved->FirstArg = Info.FirstArg; 638 Saved->SecondArg = Info.SecondArg; 639 Result.Data = Saved; 640 break; 641 } 642 643 case Sema::TDK_SubstitutionFailure: 644 Result.Data = Info.take(); 645 if (Info.hasSFINAEDiagnostic()) { 646 PartialDiagnosticAt *Diag = new (Result.Diagnostic) PartialDiagnosticAt( 647 SourceLocation(), PartialDiagnostic::NullDiagnostic()); 648 Info.takeSFINAEDiagnostic(*Diag); 649 Result.HasDiagnostic = true; 650 } 651 break; 652 653 case Sema::TDK_Success: 654 case Sema::TDK_NonDependentConversionFailure: 655 llvm_unreachable("not a deduction failure"); 656 } 657 658 return Result; 659 } 660 661 void DeductionFailureInfo::Destroy() { 662 switch (static_cast<Sema::TemplateDeductionResult>(Result)) { 663 case Sema::TDK_Success: 664 case Sema::TDK_Invalid: 665 case Sema::TDK_InstantiationDepth: 666 case Sema::TDK_Incomplete: 667 case Sema::TDK_TooManyArguments: 668 case Sema::TDK_TooFewArguments: 669 case Sema::TDK_InvalidExplicitArguments: 670 case Sema::TDK_CUDATargetMismatch: 671 case Sema::TDK_NonDependentConversionFailure: 672 break; 673 674 case Sema::TDK_Inconsistent: 675 case Sema::TDK_Underqualified: 676 case Sema::TDK_DeducedMismatch: 677 case Sema::TDK_DeducedMismatchNested: 678 case Sema::TDK_NonDeducedMismatch: 679 // FIXME: Destroy the data? 680 Data = nullptr; 681 break; 682 683 case Sema::TDK_SubstitutionFailure: 684 // FIXME: Destroy the template argument list? 685 Data = nullptr; 686 if (PartialDiagnosticAt *Diag = getSFINAEDiagnostic()) { 687 Diag->~PartialDiagnosticAt(); 688 HasDiagnostic = false; 689 } 690 break; 691 692 // Unhandled 693 case Sema::TDK_MiscellaneousDeductionFailure: 694 break; 695 } 696 } 697 698 PartialDiagnosticAt *DeductionFailureInfo::getSFINAEDiagnostic() { 699 if (HasDiagnostic) 700 return static_cast<PartialDiagnosticAt*>(static_cast<void*>(Diagnostic)); 701 return nullptr; 702 } 703 704 TemplateParameter DeductionFailureInfo::getTemplateParameter() { 705 switch (static_cast<Sema::TemplateDeductionResult>(Result)) { 706 case Sema::TDK_Success: 707 case Sema::TDK_Invalid: 708 case Sema::TDK_InstantiationDepth: 709 case Sema::TDK_TooManyArguments: 710 case Sema::TDK_TooFewArguments: 711 case Sema::TDK_SubstitutionFailure: 712 case Sema::TDK_DeducedMismatch: 713 case Sema::TDK_DeducedMismatchNested: 714 case Sema::TDK_NonDeducedMismatch: 715 case Sema::TDK_CUDATargetMismatch: 716 case Sema::TDK_NonDependentConversionFailure: 717 return TemplateParameter(); 718 719 case Sema::TDK_Incomplete: 720 case Sema::TDK_InvalidExplicitArguments: 721 return TemplateParameter::getFromOpaqueValue(Data); 722 723 case Sema::TDK_Inconsistent: 724 case Sema::TDK_Underqualified: 725 return static_cast<DFIParamWithArguments*>(Data)->Param; 726 727 // Unhandled 728 case Sema::TDK_MiscellaneousDeductionFailure: 729 break; 730 } 731 732 return TemplateParameter(); 733 } 734 735 TemplateArgumentList *DeductionFailureInfo::getTemplateArgumentList() { 736 switch (static_cast<Sema::TemplateDeductionResult>(Result)) { 737 case Sema::TDK_Success: 738 case Sema::TDK_Invalid: 739 case Sema::TDK_InstantiationDepth: 740 case Sema::TDK_TooManyArguments: 741 case Sema::TDK_TooFewArguments: 742 case Sema::TDK_Incomplete: 743 case Sema::TDK_InvalidExplicitArguments: 744 case Sema::TDK_Inconsistent: 745 case Sema::TDK_Underqualified: 746 case Sema::TDK_NonDeducedMismatch: 747 case Sema::TDK_CUDATargetMismatch: 748 case Sema::TDK_NonDependentConversionFailure: 749 return nullptr; 750 751 case Sema::TDK_DeducedMismatch: 752 case Sema::TDK_DeducedMismatchNested: 753 return static_cast<DFIDeducedMismatchArgs*>(Data)->TemplateArgs; 754 755 case Sema::TDK_SubstitutionFailure: 756 return static_cast<TemplateArgumentList*>(Data); 757 758 // Unhandled 759 case Sema::TDK_MiscellaneousDeductionFailure: 760 break; 761 } 762 763 return nullptr; 764 } 765 766 const TemplateArgument *DeductionFailureInfo::getFirstArg() { 767 switch (static_cast<Sema::TemplateDeductionResult>(Result)) { 768 case Sema::TDK_Success: 769 case Sema::TDK_Invalid: 770 case Sema::TDK_InstantiationDepth: 771 case Sema::TDK_Incomplete: 772 case Sema::TDK_TooManyArguments: 773 case Sema::TDK_TooFewArguments: 774 case Sema::TDK_InvalidExplicitArguments: 775 case Sema::TDK_SubstitutionFailure: 776 case Sema::TDK_CUDATargetMismatch: 777 case Sema::TDK_NonDependentConversionFailure: 778 return nullptr; 779 780 case Sema::TDK_Inconsistent: 781 case Sema::TDK_Underqualified: 782 case Sema::TDK_DeducedMismatch: 783 case Sema::TDK_DeducedMismatchNested: 784 case Sema::TDK_NonDeducedMismatch: 785 return &static_cast<DFIArguments*>(Data)->FirstArg; 786 787 // Unhandled 788 case Sema::TDK_MiscellaneousDeductionFailure: 789 break; 790 } 791 792 return nullptr; 793 } 794 795 const TemplateArgument *DeductionFailureInfo::getSecondArg() { 796 switch (static_cast<Sema::TemplateDeductionResult>(Result)) { 797 case Sema::TDK_Success: 798 case Sema::TDK_Invalid: 799 case Sema::TDK_InstantiationDepth: 800 case Sema::TDK_Incomplete: 801 case Sema::TDK_TooManyArguments: 802 case Sema::TDK_TooFewArguments: 803 case Sema::TDK_InvalidExplicitArguments: 804 case Sema::TDK_SubstitutionFailure: 805 case Sema::TDK_CUDATargetMismatch: 806 case Sema::TDK_NonDependentConversionFailure: 807 return nullptr; 808 809 case Sema::TDK_Inconsistent: 810 case Sema::TDK_Underqualified: 811 case Sema::TDK_DeducedMismatch: 812 case Sema::TDK_DeducedMismatchNested: 813 case Sema::TDK_NonDeducedMismatch: 814 return &static_cast<DFIArguments*>(Data)->SecondArg; 815 816 // Unhandled 817 case Sema::TDK_MiscellaneousDeductionFailure: 818 break; 819 } 820 821 return nullptr; 822 } 823 824 llvm::Optional<unsigned> DeductionFailureInfo::getCallArgIndex() { 825 switch (static_cast<Sema::TemplateDeductionResult>(Result)) { 826 case Sema::TDK_DeducedMismatch: 827 case Sema::TDK_DeducedMismatchNested: 828 return static_cast<DFIDeducedMismatchArgs*>(Data)->CallArgIndex; 829 830 default: 831 return llvm::None; 832 } 833 } 834 835 void OverloadCandidateSet::destroyCandidates() { 836 for (iterator i = begin(), e = end(); i != e; ++i) { 837 for (auto &C : i->Conversions) 838 C.~ImplicitConversionSequence(); 839 if (!i->Viable && i->FailureKind == ovl_fail_bad_deduction) 840 i->DeductionFailure.Destroy(); 841 } 842 } 843 844 void OverloadCandidateSet::clear(CandidateSetKind CSK) { 845 destroyCandidates(); 846 SlabAllocator.Reset(); 847 NumInlineBytesUsed = 0; 848 Candidates.clear(); 849 Functions.clear(); 850 Kind = CSK; 851 } 852 853 namespace { 854 class UnbridgedCastsSet { 855 struct Entry { 856 Expr **Addr; 857 Expr *Saved; 858 }; 859 SmallVector<Entry, 2> Entries; 860 861 public: 862 void save(Sema &S, Expr *&E) { 863 assert(E->hasPlaceholderType(BuiltinType::ARCUnbridgedCast)); 864 Entry entry = { &E, E }; 865 Entries.push_back(entry); 866 E = S.stripARCUnbridgedCast(E); 867 } 868 869 void restore() { 870 for (SmallVectorImpl<Entry>::iterator 871 i = Entries.begin(), e = Entries.end(); i != e; ++i) 872 *i->Addr = i->Saved; 873 } 874 }; 875 } 876 877 /// checkPlaceholderForOverload - Do any interesting placeholder-like 878 /// preprocessing on the given expression. 879 /// 880 /// \param unbridgedCasts a collection to which to add unbridged casts; 881 /// without this, they will be immediately diagnosed as errors 882 /// 883 /// Return true on unrecoverable error. 884 static bool 885 checkPlaceholderForOverload(Sema &S, Expr *&E, 886 UnbridgedCastsSet *unbridgedCasts = nullptr) { 887 if (const BuiltinType *placeholder = E->getType()->getAsPlaceholderType()) { 888 // We can't handle overloaded expressions here because overload 889 // resolution might reasonably tweak them. 890 if (placeholder->getKind() == BuiltinType::Overload) return false; 891 892 // If the context potentially accepts unbridged ARC casts, strip 893 // the unbridged cast and add it to the collection for later restoration. 894 if (placeholder->getKind() == BuiltinType::ARCUnbridgedCast && 895 unbridgedCasts) { 896 unbridgedCasts->save(S, E); 897 return false; 898 } 899 900 // Go ahead and check everything else. 901 ExprResult result = S.CheckPlaceholderExpr(E); 902 if (result.isInvalid()) 903 return true; 904 905 E = result.get(); 906 return false; 907 } 908 909 // Nothing to do. 910 return false; 911 } 912 913 /// checkArgPlaceholdersForOverload - Check a set of call operands for 914 /// placeholders. 915 static bool checkArgPlaceholdersForOverload(Sema &S, 916 MultiExprArg Args, 917 UnbridgedCastsSet &unbridged) { 918 for (unsigned i = 0, e = Args.size(); i != e; ++i) 919 if (checkPlaceholderForOverload(S, Args[i], &unbridged)) 920 return true; 921 922 return false; 923 } 924 925 /// Determine whether the given New declaration is an overload of the 926 /// declarations in Old. This routine returns Ovl_Match or Ovl_NonFunction if 927 /// New and Old cannot be overloaded, e.g., if New has the same signature as 928 /// some function in Old (C++ 1.3.10) or if the Old declarations aren't 929 /// functions (or function templates) at all. When it does return Ovl_Match or 930 /// Ovl_NonFunction, MatchedDecl will point to the decl that New cannot be 931 /// overloaded with. This decl may be a UsingShadowDecl on top of the underlying 932 /// declaration. 933 /// 934 /// Example: Given the following input: 935 /// 936 /// void f(int, float); // #1 937 /// void f(int, int); // #2 938 /// int f(int, int); // #3 939 /// 940 /// When we process #1, there is no previous declaration of "f", so IsOverload 941 /// will not be used. 942 /// 943 /// When we process #2, Old contains only the FunctionDecl for #1. By comparing 944 /// the parameter types, we see that #1 and #2 are overloaded (since they have 945 /// different signatures), so this routine returns Ovl_Overload; MatchedDecl is 946 /// unchanged. 947 /// 948 /// When we process #3, Old is an overload set containing #1 and #2. We compare 949 /// the signatures of #3 to #1 (they're overloaded, so we do nothing) and then 950 /// #3 to #2. Since the signatures of #3 and #2 are identical (return types of 951 /// functions are not part of the signature), IsOverload returns Ovl_Match and 952 /// MatchedDecl will be set to point to the FunctionDecl for #2. 953 /// 954 /// 'NewIsUsingShadowDecl' indicates that 'New' is being introduced into a class 955 /// by a using declaration. The rules for whether to hide shadow declarations 956 /// ignore some properties which otherwise figure into a function template's 957 /// signature. 958 Sema::OverloadKind 959 Sema::CheckOverload(Scope *S, FunctionDecl *New, const LookupResult &Old, 960 NamedDecl *&Match, bool NewIsUsingDecl) { 961 for (LookupResult::iterator I = Old.begin(), E = Old.end(); 962 I != E; ++I) { 963 NamedDecl *OldD = *I; 964 965 bool OldIsUsingDecl = false; 966 if (isa<UsingShadowDecl>(OldD)) { 967 OldIsUsingDecl = true; 968 969 // We can always introduce two using declarations into the same 970 // context, even if they have identical signatures. 971 if (NewIsUsingDecl) continue; 972 973 OldD = cast<UsingShadowDecl>(OldD)->getTargetDecl(); 974 } 975 976 // A using-declaration does not conflict with another declaration 977 // if one of them is hidden. 978 if ((OldIsUsingDecl || NewIsUsingDecl) && !isVisible(*I)) 979 continue; 980 981 // If either declaration was introduced by a using declaration, 982 // we'll need to use slightly different rules for matching. 983 // Essentially, these rules are the normal rules, except that 984 // function templates hide function templates with different 985 // return types or template parameter lists. 986 bool UseMemberUsingDeclRules = 987 (OldIsUsingDecl || NewIsUsingDecl) && CurContext->isRecord() && 988 !New->getFriendObjectKind(); 989 990 if (FunctionDecl *OldF = OldD->getAsFunction()) { 991 if (!IsOverload(New, OldF, UseMemberUsingDeclRules)) { 992 if (UseMemberUsingDeclRules && OldIsUsingDecl) { 993 HideUsingShadowDecl(S, cast<UsingShadowDecl>(*I)); 994 continue; 995 } 996 997 if (!isa<FunctionTemplateDecl>(OldD) && 998 !shouldLinkPossiblyHiddenDecl(*I, New)) 999 continue; 1000 1001 Match = *I; 1002 return Ovl_Match; 1003 } 1004 1005 // Builtins that have custom typechecking or have a reference should 1006 // not be overloadable or redeclarable. 1007 if (!getASTContext().canBuiltinBeRedeclared(OldF)) { 1008 Match = *I; 1009 return Ovl_NonFunction; 1010 } 1011 } else if (isa<UsingDecl>(OldD) || isa<UsingPackDecl>(OldD)) { 1012 // We can overload with these, which can show up when doing 1013 // redeclaration checks for UsingDecls. 1014 assert(Old.getLookupKind() == LookupUsingDeclName); 1015 } else if (isa<TagDecl>(OldD)) { 1016 // We can always overload with tags by hiding them. 1017 } else if (auto *UUD = dyn_cast<UnresolvedUsingValueDecl>(OldD)) { 1018 // Optimistically assume that an unresolved using decl will 1019 // overload; if it doesn't, we'll have to diagnose during 1020 // template instantiation. 1021 // 1022 // Exception: if the scope is dependent and this is not a class 1023 // member, the using declaration can only introduce an enumerator. 1024 if (UUD->getQualifier()->isDependent() && !UUD->isCXXClassMember()) { 1025 Match = *I; 1026 return Ovl_NonFunction; 1027 } 1028 } else { 1029 // (C++ 13p1): 1030 // Only function declarations can be overloaded; object and type 1031 // declarations cannot be overloaded. 1032 Match = *I; 1033 return Ovl_NonFunction; 1034 } 1035 } 1036 1037 return Ovl_Overload; 1038 } 1039 1040 bool Sema::IsOverload(FunctionDecl *New, FunctionDecl *Old, 1041 bool UseMemberUsingDeclRules, bool ConsiderCudaAttrs) { 1042 // C++ [basic.start.main]p2: This function shall not be overloaded. 1043 if (New->isMain()) 1044 return false; 1045 1046 // MSVCRT user defined entry points cannot be overloaded. 1047 if (New->isMSVCRTEntryPoint()) 1048 return false; 1049 1050 FunctionTemplateDecl *OldTemplate = Old->getDescribedFunctionTemplate(); 1051 FunctionTemplateDecl *NewTemplate = New->getDescribedFunctionTemplate(); 1052 1053 // C++ [temp.fct]p2: 1054 // A function template can be overloaded with other function templates 1055 // and with normal (non-template) functions. 1056 if ((OldTemplate == nullptr) != (NewTemplate == nullptr)) 1057 return true; 1058 1059 // Is the function New an overload of the function Old? 1060 QualType OldQType = Context.getCanonicalType(Old->getType()); 1061 QualType NewQType = Context.getCanonicalType(New->getType()); 1062 1063 // Compare the signatures (C++ 1.3.10) of the two functions to 1064 // determine whether they are overloads. If we find any mismatch 1065 // in the signature, they are overloads. 1066 1067 // If either of these functions is a K&R-style function (no 1068 // prototype), then we consider them to have matching signatures. 1069 if (isa<FunctionNoProtoType>(OldQType.getTypePtr()) || 1070 isa<FunctionNoProtoType>(NewQType.getTypePtr())) 1071 return false; 1072 1073 const FunctionProtoType *OldType = cast<FunctionProtoType>(OldQType); 1074 const FunctionProtoType *NewType = cast<FunctionProtoType>(NewQType); 1075 1076 // The signature of a function includes the types of its 1077 // parameters (C++ 1.3.10), which includes the presence or absence 1078 // of the ellipsis; see C++ DR 357). 1079 if (OldQType != NewQType && 1080 (OldType->getNumParams() != NewType->getNumParams() || 1081 OldType->isVariadic() != NewType->isVariadic() || 1082 !FunctionParamTypesAreEqual(OldType, NewType))) 1083 return true; 1084 1085 // C++ [temp.over.link]p4: 1086 // The signature of a function template consists of its function 1087 // signature, its return type and its template parameter list. The names 1088 // of the template parameters are significant only for establishing the 1089 // relationship between the template parameters and the rest of the 1090 // signature. 1091 // 1092 // We check the return type and template parameter lists for function 1093 // templates first; the remaining checks follow. 1094 // 1095 // However, we don't consider either of these when deciding whether 1096 // a member introduced by a shadow declaration is hidden. 1097 if (!UseMemberUsingDeclRules && NewTemplate && 1098 (!TemplateParameterListsAreEqual(NewTemplate->getTemplateParameters(), 1099 OldTemplate->getTemplateParameters(), 1100 false, TPL_TemplateMatch) || 1101 OldType->getReturnType() != NewType->getReturnType())) 1102 return true; 1103 1104 // If the function is a class member, its signature includes the 1105 // cv-qualifiers (if any) and ref-qualifier (if any) on the function itself. 1106 // 1107 // As part of this, also check whether one of the member functions 1108 // is static, in which case they are not overloads (C++ 1109 // 13.1p2). While not part of the definition of the signature, 1110 // this check is important to determine whether these functions 1111 // can be overloaded. 1112 CXXMethodDecl *OldMethod = dyn_cast<CXXMethodDecl>(Old); 1113 CXXMethodDecl *NewMethod = dyn_cast<CXXMethodDecl>(New); 1114 if (OldMethod && NewMethod && 1115 !OldMethod->isStatic() && !NewMethod->isStatic()) { 1116 if (OldMethod->getRefQualifier() != NewMethod->getRefQualifier()) { 1117 if (!UseMemberUsingDeclRules && 1118 (OldMethod->getRefQualifier() == RQ_None || 1119 NewMethod->getRefQualifier() == RQ_None)) { 1120 // C++0x [over.load]p2: 1121 // - Member function declarations with the same name and the same 1122 // parameter-type-list as well as member function template 1123 // declarations with the same name, the same parameter-type-list, and 1124 // the same template parameter lists cannot be overloaded if any of 1125 // them, but not all, have a ref-qualifier (8.3.5). 1126 Diag(NewMethod->getLocation(), diag::err_ref_qualifier_overload) 1127 << NewMethod->getRefQualifier() << OldMethod->getRefQualifier(); 1128 Diag(OldMethod->getLocation(), diag::note_previous_declaration); 1129 } 1130 return true; 1131 } 1132 1133 // We may not have applied the implicit const for a constexpr member 1134 // function yet (because we haven't yet resolved whether this is a static 1135 // or non-static member function). Add it now, on the assumption that this 1136 // is a redeclaration of OldMethod. 1137 unsigned OldQuals = OldMethod->getTypeQualifiers(); 1138 unsigned NewQuals = NewMethod->getTypeQualifiers(); 1139 if (!getLangOpts().CPlusPlus14 && NewMethod->isConstexpr() && 1140 !isa<CXXConstructorDecl>(NewMethod)) 1141 NewQuals |= Qualifiers::Const; 1142 1143 // We do not allow overloading based off of '__restrict'. 1144 OldQuals &= ~Qualifiers::Restrict; 1145 NewQuals &= ~Qualifiers::Restrict; 1146 if (OldQuals != NewQuals) 1147 return true; 1148 } 1149 1150 // Though pass_object_size is placed on parameters and takes an argument, we 1151 // consider it to be a function-level modifier for the sake of function 1152 // identity. Either the function has one or more parameters with 1153 // pass_object_size or it doesn't. 1154 if (functionHasPassObjectSizeParams(New) != 1155 functionHasPassObjectSizeParams(Old)) 1156 return true; 1157 1158 // enable_if attributes are an order-sensitive part of the signature. 1159 for (specific_attr_iterator<EnableIfAttr> 1160 NewI = New->specific_attr_begin<EnableIfAttr>(), 1161 NewE = New->specific_attr_end<EnableIfAttr>(), 1162 OldI = Old->specific_attr_begin<EnableIfAttr>(), 1163 OldE = Old->specific_attr_end<EnableIfAttr>(); 1164 NewI != NewE || OldI != OldE; ++NewI, ++OldI) { 1165 if (NewI == NewE || OldI == OldE) 1166 return true; 1167 llvm::FoldingSetNodeID NewID, OldID; 1168 NewI->getCond()->Profile(NewID, Context, true); 1169 OldI->getCond()->Profile(OldID, Context, true); 1170 if (NewID != OldID) 1171 return true; 1172 } 1173 1174 if (getLangOpts().CUDA && ConsiderCudaAttrs) { 1175 // Don't allow overloading of destructors. (In theory we could, but it 1176 // would be a giant change to clang.) 1177 if (isa<CXXDestructorDecl>(New)) 1178 return false; 1179 1180 CUDAFunctionTarget NewTarget = IdentifyCUDATarget(New), 1181 OldTarget = IdentifyCUDATarget(Old); 1182 if (NewTarget == CFT_InvalidTarget) 1183 return false; 1184 1185 assert((OldTarget != CFT_InvalidTarget) && "Unexpected invalid target."); 1186 1187 // Allow overloading of functions with same signature and different CUDA 1188 // target attributes. 1189 return NewTarget != OldTarget; 1190 } 1191 1192 // The signatures match; this is not an overload. 1193 return false; 1194 } 1195 1196 /// Checks availability of the function depending on the current 1197 /// function context. Inside an unavailable function, unavailability is ignored. 1198 /// 1199 /// \returns true if \arg FD is unavailable and current context is inside 1200 /// an available function, false otherwise. 1201 bool Sema::isFunctionConsideredUnavailable(FunctionDecl *FD) { 1202 if (!FD->isUnavailable()) 1203 return false; 1204 1205 // Walk up the context of the caller. 1206 Decl *C = cast<Decl>(CurContext); 1207 do { 1208 if (C->isUnavailable()) 1209 return false; 1210 } while ((C = cast_or_null<Decl>(C->getDeclContext()))); 1211 return true; 1212 } 1213 1214 /// Tries a user-defined conversion from From to ToType. 1215 /// 1216 /// Produces an implicit conversion sequence for when a standard conversion 1217 /// is not an option. See TryImplicitConversion for more information. 1218 static ImplicitConversionSequence 1219 TryUserDefinedConversion(Sema &S, Expr *From, QualType ToType, 1220 bool SuppressUserConversions, 1221 bool AllowExplicit, 1222 bool InOverloadResolution, 1223 bool CStyle, 1224 bool AllowObjCWritebackConversion, 1225 bool AllowObjCConversionOnExplicit) { 1226 ImplicitConversionSequence ICS; 1227 1228 if (SuppressUserConversions) { 1229 // We're not in the case above, so there is no conversion that 1230 // we can perform. 1231 ICS.setBad(BadConversionSequence::no_conversion, From, ToType); 1232 return ICS; 1233 } 1234 1235 // Attempt user-defined conversion. 1236 OverloadCandidateSet Conversions(From->getExprLoc(), 1237 OverloadCandidateSet::CSK_Normal); 1238 switch (IsUserDefinedConversion(S, From, ToType, ICS.UserDefined, 1239 Conversions, AllowExplicit, 1240 AllowObjCConversionOnExplicit)) { 1241 case OR_Success: 1242 case OR_Deleted: 1243 ICS.setUserDefined(); 1244 // C++ [over.ics.user]p4: 1245 // A conversion of an expression of class type to the same class 1246 // type is given Exact Match rank, and a conversion of an 1247 // expression of class type to a base class of that type is 1248 // given Conversion rank, in spite of the fact that a copy 1249 // constructor (i.e., a user-defined conversion function) is 1250 // called for those cases. 1251 if (CXXConstructorDecl *Constructor 1252 = dyn_cast<CXXConstructorDecl>(ICS.UserDefined.ConversionFunction)) { 1253 QualType FromCanon 1254 = S.Context.getCanonicalType(From->getType().getUnqualifiedType()); 1255 QualType ToCanon 1256 = S.Context.getCanonicalType(ToType).getUnqualifiedType(); 1257 if (Constructor->isCopyConstructor() && 1258 (FromCanon == ToCanon || 1259 S.IsDerivedFrom(From->getLocStart(), FromCanon, ToCanon))) { 1260 // Turn this into a "standard" conversion sequence, so that it 1261 // gets ranked with standard conversion sequences. 1262 DeclAccessPair Found = ICS.UserDefined.FoundConversionFunction; 1263 ICS.setStandard(); 1264 ICS.Standard.setAsIdentityConversion(); 1265 ICS.Standard.setFromType(From->getType()); 1266 ICS.Standard.setAllToTypes(ToType); 1267 ICS.Standard.CopyConstructor = Constructor; 1268 ICS.Standard.FoundCopyConstructor = Found; 1269 if (ToCanon != FromCanon) 1270 ICS.Standard.Second = ICK_Derived_To_Base; 1271 } 1272 } 1273 break; 1274 1275 case OR_Ambiguous: 1276 ICS.setAmbiguous(); 1277 ICS.Ambiguous.setFromType(From->getType()); 1278 ICS.Ambiguous.setToType(ToType); 1279 for (OverloadCandidateSet::iterator Cand = Conversions.begin(); 1280 Cand != Conversions.end(); ++Cand) 1281 if (Cand->Viable) 1282 ICS.Ambiguous.addConversion(Cand->FoundDecl, Cand->Function); 1283 break; 1284 1285 // Fall through. 1286 case OR_No_Viable_Function: 1287 ICS.setBad(BadConversionSequence::no_conversion, From, ToType); 1288 break; 1289 } 1290 1291 return ICS; 1292 } 1293 1294 /// TryImplicitConversion - Attempt to perform an implicit conversion 1295 /// from the given expression (Expr) to the given type (ToType). This 1296 /// function returns an implicit conversion sequence that can be used 1297 /// to perform the initialization. Given 1298 /// 1299 /// void f(float f); 1300 /// void g(int i) { f(i); } 1301 /// 1302 /// this routine would produce an implicit conversion sequence to 1303 /// describe the initialization of f from i, which will be a standard 1304 /// conversion sequence containing an lvalue-to-rvalue conversion (C++ 1305 /// 4.1) followed by a floating-integral conversion (C++ 4.9). 1306 // 1307 /// Note that this routine only determines how the conversion can be 1308 /// performed; it does not actually perform the conversion. As such, 1309 /// it will not produce any diagnostics if no conversion is available, 1310 /// but will instead return an implicit conversion sequence of kind 1311 /// "BadConversion". 1312 /// 1313 /// If @p SuppressUserConversions, then user-defined conversions are 1314 /// not permitted. 1315 /// If @p AllowExplicit, then explicit user-defined conversions are 1316 /// permitted. 1317 /// 1318 /// \param AllowObjCWritebackConversion Whether we allow the Objective-C 1319 /// writeback conversion, which allows __autoreleasing id* parameters to 1320 /// be initialized with __strong id* or __weak id* arguments. 1321 static ImplicitConversionSequence 1322 TryImplicitConversion(Sema &S, Expr *From, QualType ToType, 1323 bool SuppressUserConversions, 1324 bool AllowExplicit, 1325 bool InOverloadResolution, 1326 bool CStyle, 1327 bool AllowObjCWritebackConversion, 1328 bool AllowObjCConversionOnExplicit) { 1329 ImplicitConversionSequence ICS; 1330 if (IsStandardConversion(S, From, ToType, InOverloadResolution, 1331 ICS.Standard, CStyle, AllowObjCWritebackConversion)){ 1332 ICS.setStandard(); 1333 return ICS; 1334 } 1335 1336 if (!S.getLangOpts().CPlusPlus) { 1337 ICS.setBad(BadConversionSequence::no_conversion, From, ToType); 1338 return ICS; 1339 } 1340 1341 // C++ [over.ics.user]p4: 1342 // A conversion of an expression of class type to the same class 1343 // type is given Exact Match rank, and a conversion of an 1344 // expression of class type to a base class of that type is 1345 // given Conversion rank, in spite of the fact that a copy/move 1346 // constructor (i.e., a user-defined conversion function) is 1347 // called for those cases. 1348 QualType FromType = From->getType(); 1349 if (ToType->getAs<RecordType>() && FromType->getAs<RecordType>() && 1350 (S.Context.hasSameUnqualifiedType(FromType, ToType) || 1351 S.IsDerivedFrom(From->getLocStart(), FromType, ToType))) { 1352 ICS.setStandard(); 1353 ICS.Standard.setAsIdentityConversion(); 1354 ICS.Standard.setFromType(FromType); 1355 ICS.Standard.setAllToTypes(ToType); 1356 1357 // We don't actually check at this point whether there is a valid 1358 // copy/move constructor, since overloading just assumes that it 1359 // exists. When we actually perform initialization, we'll find the 1360 // appropriate constructor to copy the returned object, if needed. 1361 ICS.Standard.CopyConstructor = nullptr; 1362 1363 // Determine whether this is considered a derived-to-base conversion. 1364 if (!S.Context.hasSameUnqualifiedType(FromType, ToType)) 1365 ICS.Standard.Second = ICK_Derived_To_Base; 1366 1367 return ICS; 1368 } 1369 1370 return TryUserDefinedConversion(S, From, ToType, SuppressUserConversions, 1371 AllowExplicit, InOverloadResolution, CStyle, 1372 AllowObjCWritebackConversion, 1373 AllowObjCConversionOnExplicit); 1374 } 1375 1376 ImplicitConversionSequence 1377 Sema::TryImplicitConversion(Expr *From, QualType ToType, 1378 bool SuppressUserConversions, 1379 bool AllowExplicit, 1380 bool InOverloadResolution, 1381 bool CStyle, 1382 bool AllowObjCWritebackConversion) { 1383 return ::TryImplicitConversion(*this, From, ToType, 1384 SuppressUserConversions, AllowExplicit, 1385 InOverloadResolution, CStyle, 1386 AllowObjCWritebackConversion, 1387 /*AllowObjCConversionOnExplicit=*/false); 1388 } 1389 1390 /// PerformImplicitConversion - Perform an implicit conversion of the 1391 /// expression From to the type ToType. Returns the 1392 /// converted expression. Flavor is the kind of conversion we're 1393 /// performing, used in the error message. If @p AllowExplicit, 1394 /// explicit user-defined conversions are permitted. 1395 ExprResult 1396 Sema::PerformImplicitConversion(Expr *From, QualType ToType, 1397 AssignmentAction Action, bool AllowExplicit) { 1398 ImplicitConversionSequence ICS; 1399 return PerformImplicitConversion(From, ToType, Action, AllowExplicit, ICS); 1400 } 1401 1402 ExprResult 1403 Sema::PerformImplicitConversion(Expr *From, QualType ToType, 1404 AssignmentAction Action, bool AllowExplicit, 1405 ImplicitConversionSequence& ICS) { 1406 if (checkPlaceholderForOverload(*this, From)) 1407 return ExprError(); 1408 1409 // Objective-C ARC: Determine whether we will allow the writeback conversion. 1410 bool AllowObjCWritebackConversion 1411 = getLangOpts().ObjCAutoRefCount && 1412 (Action == AA_Passing || Action == AA_Sending); 1413 if (getLangOpts().ObjC1) 1414 CheckObjCBridgeRelatedConversions(From->getLocStart(), 1415 ToType, From->getType(), From); 1416 ICS = ::TryImplicitConversion(*this, From, ToType, 1417 /*SuppressUserConversions=*/false, 1418 AllowExplicit, 1419 /*InOverloadResolution=*/false, 1420 /*CStyle=*/false, 1421 AllowObjCWritebackConversion, 1422 /*AllowObjCConversionOnExplicit=*/false); 1423 return PerformImplicitConversion(From, ToType, ICS, Action); 1424 } 1425 1426 /// Determine whether the conversion from FromType to ToType is a valid 1427 /// conversion that strips "noexcept" or "noreturn" off the nested function 1428 /// type. 1429 bool Sema::IsFunctionConversion(QualType FromType, QualType ToType, 1430 QualType &ResultTy) { 1431 if (Context.hasSameUnqualifiedType(FromType, ToType)) 1432 return false; 1433 1434 // Permit the conversion F(t __attribute__((noreturn))) -> F(t) 1435 // or F(t noexcept) -> F(t) 1436 // where F adds one of the following at most once: 1437 // - a pointer 1438 // - a member pointer 1439 // - a block pointer 1440 // Changes here need matching changes in FindCompositePointerType. 1441 CanQualType CanTo = Context.getCanonicalType(ToType); 1442 CanQualType CanFrom = Context.getCanonicalType(FromType); 1443 Type::TypeClass TyClass = CanTo->getTypeClass(); 1444 if (TyClass != CanFrom->getTypeClass()) return false; 1445 if (TyClass != Type::FunctionProto && TyClass != Type::FunctionNoProto) { 1446 if (TyClass == Type::Pointer) { 1447 CanTo = CanTo.getAs<PointerType>()->getPointeeType(); 1448 CanFrom = CanFrom.getAs<PointerType>()->getPointeeType(); 1449 } else if (TyClass == Type::BlockPointer) { 1450 CanTo = CanTo.getAs<BlockPointerType>()->getPointeeType(); 1451 CanFrom = CanFrom.getAs<BlockPointerType>()->getPointeeType(); 1452 } else if (TyClass == Type::MemberPointer) { 1453 auto ToMPT = CanTo.getAs<MemberPointerType>(); 1454 auto FromMPT = CanFrom.getAs<MemberPointerType>(); 1455 // A function pointer conversion cannot change the class of the function. 1456 if (ToMPT->getClass() != FromMPT->getClass()) 1457 return false; 1458 CanTo = ToMPT->getPointeeType(); 1459 CanFrom = FromMPT->getPointeeType(); 1460 } else { 1461 return false; 1462 } 1463 1464 TyClass = CanTo->getTypeClass(); 1465 if (TyClass != CanFrom->getTypeClass()) return false; 1466 if (TyClass != Type::FunctionProto && TyClass != Type::FunctionNoProto) 1467 return false; 1468 } 1469 1470 const auto *FromFn = cast<FunctionType>(CanFrom); 1471 FunctionType::ExtInfo FromEInfo = FromFn->getExtInfo(); 1472 1473 const auto *ToFn = cast<FunctionType>(CanTo); 1474 FunctionType::ExtInfo ToEInfo = ToFn->getExtInfo(); 1475 1476 bool Changed = false; 1477 1478 // Drop 'noreturn' if not present in target type. 1479 if (FromEInfo.getNoReturn() && !ToEInfo.getNoReturn()) { 1480 FromFn = Context.adjustFunctionType(FromFn, FromEInfo.withNoReturn(false)); 1481 Changed = true; 1482 } 1483 1484 // Drop 'noexcept' if not present in target type. 1485 if (const auto *FromFPT = dyn_cast<FunctionProtoType>(FromFn)) { 1486 const auto *ToFPT = cast<FunctionProtoType>(ToFn); 1487 if (FromFPT->isNothrow() && !ToFPT->isNothrow()) { 1488 FromFn = cast<FunctionType>( 1489 Context.getFunctionTypeWithExceptionSpec(QualType(FromFPT, 0), 1490 EST_None) 1491 .getTypePtr()); 1492 Changed = true; 1493 } 1494 1495 // Convert FromFPT's ExtParameterInfo if necessary. The conversion is valid 1496 // only if the ExtParameterInfo lists of the two function prototypes can be 1497 // merged and the merged list is identical to ToFPT's ExtParameterInfo list. 1498 SmallVector<FunctionProtoType::ExtParameterInfo, 4> NewParamInfos; 1499 bool CanUseToFPT, CanUseFromFPT; 1500 if (Context.mergeExtParameterInfo(ToFPT, FromFPT, CanUseToFPT, 1501 CanUseFromFPT, NewParamInfos) && 1502 CanUseToFPT && !CanUseFromFPT) { 1503 FunctionProtoType::ExtProtoInfo ExtInfo = FromFPT->getExtProtoInfo(); 1504 ExtInfo.ExtParameterInfos = 1505 NewParamInfos.empty() ? nullptr : NewParamInfos.data(); 1506 QualType QT = Context.getFunctionType(FromFPT->getReturnType(), 1507 FromFPT->getParamTypes(), ExtInfo); 1508 FromFn = QT->getAs<FunctionType>(); 1509 Changed = true; 1510 } 1511 } 1512 1513 if (!Changed) 1514 return false; 1515 1516 assert(QualType(FromFn, 0).isCanonical()); 1517 if (QualType(FromFn, 0) != CanTo) return false; 1518 1519 ResultTy = ToType; 1520 return true; 1521 } 1522 1523 /// Determine whether the conversion from FromType to ToType is a valid 1524 /// vector conversion. 1525 /// 1526 /// \param ICK Will be set to the vector conversion kind, if this is a vector 1527 /// conversion. 1528 static bool IsVectorConversion(Sema &S, QualType FromType, 1529 QualType ToType, ImplicitConversionKind &ICK) { 1530 // We need at least one of these types to be a vector type to have a vector 1531 // conversion. 1532 if (!ToType->isVectorType() && !FromType->isVectorType()) 1533 return false; 1534 1535 // Identical types require no conversions. 1536 if (S.Context.hasSameUnqualifiedType(FromType, ToType)) 1537 return false; 1538 1539 // There are no conversions between extended vector types, only identity. 1540 if (ToType->isExtVectorType()) { 1541 // There are no conversions between extended vector types other than the 1542 // identity conversion. 1543 if (FromType->isExtVectorType()) 1544 return false; 1545 1546 // Vector splat from any arithmetic type to a vector. 1547 if (FromType->isArithmeticType()) { 1548 ICK = ICK_Vector_Splat; 1549 return true; 1550 } 1551 } 1552 1553 // We can perform the conversion between vector types in the following cases: 1554 // 1)vector types are equivalent AltiVec and GCC vector types 1555 // 2)lax vector conversions are permitted and the vector types are of the 1556 // same size 1557 if (ToType->isVectorType() && FromType->isVectorType()) { 1558 if (S.Context.areCompatibleVectorTypes(FromType, ToType) || 1559 S.isLaxVectorConversion(FromType, ToType)) { 1560 ICK = ICK_Vector_Conversion; 1561 return true; 1562 } 1563 } 1564 1565 return false; 1566 } 1567 1568 static bool tryAtomicConversion(Sema &S, Expr *From, QualType ToType, 1569 bool InOverloadResolution, 1570 StandardConversionSequence &SCS, 1571 bool CStyle); 1572 1573 /// IsStandardConversion - Determines whether there is a standard 1574 /// conversion sequence (C++ [conv], C++ [over.ics.scs]) from the 1575 /// expression From to the type ToType. Standard conversion sequences 1576 /// only consider non-class types; for conversions that involve class 1577 /// types, use TryImplicitConversion. If a conversion exists, SCS will 1578 /// contain the standard conversion sequence required to perform this 1579 /// conversion and this routine will return true. Otherwise, this 1580 /// routine will return false and the value of SCS is unspecified. 1581 static bool IsStandardConversion(Sema &S, Expr* From, QualType ToType, 1582 bool InOverloadResolution, 1583 StandardConversionSequence &SCS, 1584 bool CStyle, 1585 bool AllowObjCWritebackConversion) { 1586 QualType FromType = From->getType(); 1587 1588 // Standard conversions (C++ [conv]) 1589 SCS.setAsIdentityConversion(); 1590 SCS.IncompatibleObjC = false; 1591 SCS.setFromType(FromType); 1592 SCS.CopyConstructor = nullptr; 1593 1594 // There are no standard conversions for class types in C++, so 1595 // abort early. When overloading in C, however, we do permit them. 1596 if (S.getLangOpts().CPlusPlus && 1597 (FromType->isRecordType() || ToType->isRecordType())) 1598 return false; 1599 1600 // The first conversion can be an lvalue-to-rvalue conversion, 1601 // array-to-pointer conversion, or function-to-pointer conversion 1602 // (C++ 4p1). 1603 1604 if (FromType == S.Context.OverloadTy) { 1605 DeclAccessPair AccessPair; 1606 if (FunctionDecl *Fn 1607 = S.ResolveAddressOfOverloadedFunction(From, ToType, false, 1608 AccessPair)) { 1609 // We were able to resolve the address of the overloaded function, 1610 // so we can convert to the type of that function. 1611 FromType = Fn->getType(); 1612 SCS.setFromType(FromType); 1613 1614 // we can sometimes resolve &foo<int> regardless of ToType, so check 1615 // if the type matches (identity) or we are converting to bool 1616 if (!S.Context.hasSameUnqualifiedType( 1617 S.ExtractUnqualifiedFunctionType(ToType), FromType)) { 1618 QualType resultTy; 1619 // if the function type matches except for [[noreturn]], it's ok 1620 if (!S.IsFunctionConversion(FromType, 1621 S.ExtractUnqualifiedFunctionType(ToType), resultTy)) 1622 // otherwise, only a boolean conversion is standard 1623 if (!ToType->isBooleanType()) 1624 return false; 1625 } 1626 1627 // Check if the "from" expression is taking the address of an overloaded 1628 // function and recompute the FromType accordingly. Take advantage of the 1629 // fact that non-static member functions *must* have such an address-of 1630 // expression. 1631 CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Fn); 1632 if (Method && !Method->isStatic()) { 1633 assert(isa<UnaryOperator>(From->IgnoreParens()) && 1634 "Non-unary operator on non-static member address"); 1635 assert(cast<UnaryOperator>(From->IgnoreParens())->getOpcode() 1636 == UO_AddrOf && 1637 "Non-address-of operator on non-static member address"); 1638 const Type *ClassType 1639 = S.Context.getTypeDeclType(Method->getParent()).getTypePtr(); 1640 FromType = S.Context.getMemberPointerType(FromType, ClassType); 1641 } else if (isa<UnaryOperator>(From->IgnoreParens())) { 1642 assert(cast<UnaryOperator>(From->IgnoreParens())->getOpcode() == 1643 UO_AddrOf && 1644 "Non-address-of operator for overloaded function expression"); 1645 FromType = S.Context.getPointerType(FromType); 1646 } 1647 1648 // Check that we've computed the proper type after overload resolution. 1649 // FIXME: FixOverloadedFunctionReference has side-effects; we shouldn't 1650 // be calling it from within an NDEBUG block. 1651 assert(S.Context.hasSameType( 1652 FromType, 1653 S.FixOverloadedFunctionReference(From, AccessPair, Fn)->getType())); 1654 } else { 1655 return false; 1656 } 1657 } 1658 // Lvalue-to-rvalue conversion (C++11 4.1): 1659 // A glvalue (3.10) of a non-function, non-array type T can 1660 // be converted to a prvalue. 1661 bool argIsLValue = From->isGLValue(); 1662 if (argIsLValue && 1663 !FromType->isFunctionType() && !FromType->isArrayType() && 1664 S.Context.getCanonicalType(FromType) != S.Context.OverloadTy) { 1665 SCS.First = ICK_Lvalue_To_Rvalue; 1666 1667 // C11 6.3.2.1p2: 1668 // ... if the lvalue has atomic type, the value has the non-atomic version 1669 // of the type of the lvalue ... 1670 if (const AtomicType *Atomic = FromType->getAs<AtomicType>()) 1671 FromType = Atomic->getValueType(); 1672 1673 // If T is a non-class type, the type of the rvalue is the 1674 // cv-unqualified version of T. Otherwise, the type of the rvalue 1675 // is T (C++ 4.1p1). C++ can't get here with class types; in C, we 1676 // just strip the qualifiers because they don't matter. 1677 FromType = FromType.getUnqualifiedType(); 1678 } else if (FromType->isArrayType()) { 1679 // Array-to-pointer conversion (C++ 4.2) 1680 SCS.First = ICK_Array_To_Pointer; 1681 1682 // An lvalue or rvalue of type "array of N T" or "array of unknown 1683 // bound of T" can be converted to an rvalue of type "pointer to 1684 // T" (C++ 4.2p1). 1685 FromType = S.Context.getArrayDecayedType(FromType); 1686 1687 if (S.IsStringLiteralToNonConstPointerConversion(From, ToType)) { 1688 // This conversion is deprecated in C++03 (D.4) 1689 SCS.DeprecatedStringLiteralToCharPtr = true; 1690 1691 // For the purpose of ranking in overload resolution 1692 // (13.3.3.1.1), this conversion is considered an 1693 // array-to-pointer conversion followed by a qualification 1694 // conversion (4.4). (C++ 4.2p2) 1695 SCS.Second = ICK_Identity; 1696 SCS.Third = ICK_Qualification; 1697 SCS.QualificationIncludesObjCLifetime = false; 1698 SCS.setAllToTypes(FromType); 1699 return true; 1700 } 1701 } else if (FromType->isFunctionType() && argIsLValue) { 1702 // Function-to-pointer conversion (C++ 4.3). 1703 SCS.First = ICK_Function_To_Pointer; 1704 1705 if (auto *DRE = dyn_cast<DeclRefExpr>(From->IgnoreParenCasts())) 1706 if (auto *FD = dyn_cast<FunctionDecl>(DRE->getDecl())) 1707 if (!S.checkAddressOfFunctionIsAvailable(FD)) 1708 return false; 1709 1710 // An lvalue of function type T can be converted to an rvalue of 1711 // type "pointer to T." The result is a pointer to the 1712 // function. (C++ 4.3p1). 1713 FromType = S.Context.getPointerType(FromType); 1714 } else { 1715 // We don't require any conversions for the first step. 1716 SCS.First = ICK_Identity; 1717 } 1718 SCS.setToType(0, FromType); 1719 1720 // The second conversion can be an integral promotion, floating 1721 // point promotion, integral conversion, floating point conversion, 1722 // floating-integral conversion, pointer conversion, 1723 // pointer-to-member conversion, or boolean conversion (C++ 4p1). 1724 // For overloading in C, this can also be a "compatible-type" 1725 // conversion. 1726 bool IncompatibleObjC = false; 1727 ImplicitConversionKind SecondICK = ICK_Identity; 1728 if (S.Context.hasSameUnqualifiedType(FromType, ToType)) { 1729 // The unqualified versions of the types are the same: there's no 1730 // conversion to do. 1731 SCS.Second = ICK_Identity; 1732 } else if (S.IsIntegralPromotion(From, FromType, ToType)) { 1733 // Integral promotion (C++ 4.5). 1734 SCS.Second = ICK_Integral_Promotion; 1735 FromType = ToType.getUnqualifiedType(); 1736 } else if (S.IsFloatingPointPromotion(FromType, ToType)) { 1737 // Floating point promotion (C++ 4.6). 1738 SCS.Second = ICK_Floating_Promotion; 1739 FromType = ToType.getUnqualifiedType(); 1740 } else if (S.IsComplexPromotion(FromType, ToType)) { 1741 // Complex promotion (Clang extension) 1742 SCS.Second = ICK_Complex_Promotion; 1743 FromType = ToType.getUnqualifiedType(); 1744 } else if (ToType->isBooleanType() && 1745 (FromType->isArithmeticType() || 1746 FromType->isAnyPointerType() || 1747 FromType->isBlockPointerType() || 1748 FromType->isMemberPointerType() || 1749 FromType->isNullPtrType())) { 1750 // Boolean conversions (C++ 4.12). 1751 SCS.Second = ICK_Boolean_Conversion; 1752 FromType = S.Context.BoolTy; 1753 } else if (FromType->isIntegralOrUnscopedEnumerationType() && 1754 ToType->isIntegralType(S.Context)) { 1755 // Integral conversions (C++ 4.7). 1756 SCS.Second = ICK_Integral_Conversion; 1757 FromType = ToType.getUnqualifiedType(); 1758 } else if (FromType->isAnyComplexType() && ToType->isAnyComplexType()) { 1759 // Complex conversions (C99 6.3.1.6) 1760 SCS.Second = ICK_Complex_Conversion; 1761 FromType = ToType.getUnqualifiedType(); 1762 } else if ((FromType->isAnyComplexType() && ToType->isArithmeticType()) || 1763 (ToType->isAnyComplexType() && FromType->isArithmeticType())) { 1764 // Complex-real conversions (C99 6.3.1.7) 1765 SCS.Second = ICK_Complex_Real; 1766 FromType = ToType.getUnqualifiedType(); 1767 } else if (FromType->isRealFloatingType() && ToType->isRealFloatingType()) { 1768 // FIXME: disable conversions between long double and __float128 if 1769 // their representation is different until there is back end support 1770 // We of course allow this conversion if long double is really double. 1771 if (&S.Context.getFloatTypeSemantics(FromType) != 1772 &S.Context.getFloatTypeSemantics(ToType)) { 1773 bool Float128AndLongDouble = ((FromType == S.Context.Float128Ty && 1774 ToType == S.Context.LongDoubleTy) || 1775 (FromType == S.Context.LongDoubleTy && 1776 ToType == S.Context.Float128Ty)); 1777 if (Float128AndLongDouble && 1778 (&S.Context.getFloatTypeSemantics(S.Context.LongDoubleTy) == 1779 &llvm::APFloat::PPCDoubleDouble())) 1780 return false; 1781 } 1782 // Floating point conversions (C++ 4.8). 1783 SCS.Second = ICK_Floating_Conversion; 1784 FromType = ToType.getUnqualifiedType(); 1785 } else if ((FromType->isRealFloatingType() && 1786 ToType->isIntegralType(S.Context)) || 1787 (FromType->isIntegralOrUnscopedEnumerationType() && 1788 ToType->isRealFloatingType())) { 1789 // Floating-integral conversions (C++ 4.9). 1790 SCS.Second = ICK_Floating_Integral; 1791 FromType = ToType.getUnqualifiedType(); 1792 } else if (S.IsBlockPointerConversion(FromType, ToType, FromType)) { 1793 SCS.Second = ICK_Block_Pointer_Conversion; 1794 } else if (AllowObjCWritebackConversion && 1795 S.isObjCWritebackConversion(FromType, ToType, FromType)) { 1796 SCS.Second = ICK_Writeback_Conversion; 1797 } else if (S.IsPointerConversion(From, FromType, ToType, InOverloadResolution, 1798 FromType, IncompatibleObjC)) { 1799 // Pointer conversions (C++ 4.10). 1800 SCS.Second = ICK_Pointer_Conversion; 1801 SCS.IncompatibleObjC = IncompatibleObjC; 1802 FromType = FromType.getUnqualifiedType(); 1803 } else if (S.IsMemberPointerConversion(From, FromType, ToType, 1804 InOverloadResolution, FromType)) { 1805 // Pointer to member conversions (4.11). 1806 SCS.Second = ICK_Pointer_Member; 1807 } else if (IsVectorConversion(S, FromType, ToType, SecondICK)) { 1808 SCS.Second = SecondICK; 1809 FromType = ToType.getUnqualifiedType(); 1810 } else if (!S.getLangOpts().CPlusPlus && 1811 S.Context.typesAreCompatible(ToType, FromType)) { 1812 // Compatible conversions (Clang extension for C function overloading) 1813 SCS.Second = ICK_Compatible_Conversion; 1814 FromType = ToType.getUnqualifiedType(); 1815 } else if (IsTransparentUnionStandardConversion(S, From, ToType, 1816 InOverloadResolution, 1817 SCS, CStyle)) { 1818 SCS.Second = ICK_TransparentUnionConversion; 1819 FromType = ToType; 1820 } else if (tryAtomicConversion(S, From, ToType, InOverloadResolution, SCS, 1821 CStyle)) { 1822 // tryAtomicConversion has updated the standard conversion sequence 1823 // appropriately. 1824 return true; 1825 } else if (ToType->isEventT() && 1826 From->isIntegerConstantExpr(S.getASTContext()) && 1827 From->EvaluateKnownConstInt(S.getASTContext()) == 0) { 1828 SCS.Second = ICK_Zero_Event_Conversion; 1829 FromType = ToType; 1830 } else if (ToType->isQueueT() && 1831 From->isIntegerConstantExpr(S.getASTContext()) && 1832 (From->EvaluateKnownConstInt(S.getASTContext()) == 0)) { 1833 SCS.Second = ICK_Zero_Queue_Conversion; 1834 FromType = ToType; 1835 } else { 1836 // No second conversion required. 1837 SCS.Second = ICK_Identity; 1838 } 1839 SCS.setToType(1, FromType); 1840 1841 // The third conversion can be a function pointer conversion or a 1842 // qualification conversion (C++ [conv.fctptr], [conv.qual]). 1843 bool ObjCLifetimeConversion; 1844 if (S.IsFunctionConversion(FromType, ToType, FromType)) { 1845 // Function pointer conversions (removing 'noexcept') including removal of 1846 // 'noreturn' (Clang extension). 1847 SCS.Third = ICK_Function_Conversion; 1848 } else if (S.IsQualificationConversion(FromType, ToType, CStyle, 1849 ObjCLifetimeConversion)) { 1850 SCS.Third = ICK_Qualification; 1851 SCS.QualificationIncludesObjCLifetime = ObjCLifetimeConversion; 1852 FromType = ToType; 1853 } else { 1854 // No conversion required 1855 SCS.Third = ICK_Identity; 1856 } 1857 1858 // C++ [over.best.ics]p6: 1859 // [...] Any difference in top-level cv-qualification is 1860 // subsumed by the initialization itself and does not constitute 1861 // a conversion. [...] 1862 QualType CanonFrom = S.Context.getCanonicalType(FromType); 1863 QualType CanonTo = S.Context.getCanonicalType(ToType); 1864 if (CanonFrom.getLocalUnqualifiedType() 1865 == CanonTo.getLocalUnqualifiedType() && 1866 CanonFrom.getLocalQualifiers() != CanonTo.getLocalQualifiers()) { 1867 FromType = ToType; 1868 CanonFrom = CanonTo; 1869 } 1870 1871 SCS.setToType(2, FromType); 1872 1873 if (CanonFrom == CanonTo) 1874 return true; 1875 1876 // If we have not converted the argument type to the parameter type, 1877 // this is a bad conversion sequence, unless we're resolving an overload in C. 1878 if (S.getLangOpts().CPlusPlus || !InOverloadResolution) 1879 return false; 1880 1881 ExprResult ER = ExprResult{From}; 1882 Sema::AssignConvertType Conv = 1883 S.CheckSingleAssignmentConstraints(ToType, ER, 1884 /*Diagnose=*/false, 1885 /*DiagnoseCFAudited=*/false, 1886 /*ConvertRHS=*/false); 1887 ImplicitConversionKind SecondConv; 1888 switch (Conv) { 1889 case Sema::Compatible: 1890 SecondConv = ICK_C_Only_Conversion; 1891 break; 1892 // For our purposes, discarding qualifiers is just as bad as using an 1893 // incompatible pointer. Note that an IncompatiblePointer conversion can drop 1894 // qualifiers, as well. 1895 case Sema::CompatiblePointerDiscardsQualifiers: 1896 case Sema::IncompatiblePointer: 1897 case Sema::IncompatiblePointerSign: 1898 SecondConv = ICK_Incompatible_Pointer_Conversion; 1899 break; 1900 default: 1901 return false; 1902 } 1903 1904 // First can only be an lvalue conversion, so we pretend that this was the 1905 // second conversion. First should already be valid from earlier in the 1906 // function. 1907 SCS.Second = SecondConv; 1908 SCS.setToType(1, ToType); 1909 1910 // Third is Identity, because Second should rank us worse than any other 1911 // conversion. This could also be ICK_Qualification, but it's simpler to just 1912 // lump everything in with the second conversion, and we don't gain anything 1913 // from making this ICK_Qualification. 1914 SCS.Third = ICK_Identity; 1915 SCS.setToType(2, ToType); 1916 return true; 1917 } 1918 1919 static bool 1920 IsTransparentUnionStandardConversion(Sema &S, Expr* From, 1921 QualType &ToType, 1922 bool InOverloadResolution, 1923 StandardConversionSequence &SCS, 1924 bool CStyle) { 1925 1926 const RecordType *UT = ToType->getAsUnionType(); 1927 if (!UT || !UT->getDecl()->hasAttr<TransparentUnionAttr>()) 1928 return false; 1929 // The field to initialize within the transparent union. 1930 RecordDecl *UD = UT->getDecl(); 1931 // It's compatible if the expression matches any of the fields. 1932 for (const auto *it : UD->fields()) { 1933 if (IsStandardConversion(S, From, it->getType(), InOverloadResolution, SCS, 1934 CStyle, /*ObjCWritebackConversion=*/false)) { 1935 ToType = it->getType(); 1936 return true; 1937 } 1938 } 1939 return false; 1940 } 1941 1942 /// IsIntegralPromotion - Determines whether the conversion from the 1943 /// expression From (whose potentially-adjusted type is FromType) to 1944 /// ToType is an integral promotion (C++ 4.5). If so, returns true and 1945 /// sets PromotedType to the promoted type. 1946 bool Sema::IsIntegralPromotion(Expr *From, QualType FromType, QualType ToType) { 1947 const BuiltinType *To = ToType->getAs<BuiltinType>(); 1948 // All integers are built-in. 1949 if (!To) { 1950 return false; 1951 } 1952 1953 // An rvalue of type char, signed char, unsigned char, short int, or 1954 // unsigned short int can be converted to an rvalue of type int if 1955 // int can represent all the values of the source type; otherwise, 1956 // the source rvalue can be converted to an rvalue of type unsigned 1957 // int (C++ 4.5p1). 1958 if (FromType->isPromotableIntegerType() && !FromType->isBooleanType() && 1959 !FromType->isEnumeralType()) { 1960 if (// We can promote any signed, promotable integer type to an int 1961 (FromType->isSignedIntegerType() || 1962 // We can promote any unsigned integer type whose size is 1963 // less than int to an int. 1964 Context.getTypeSize(FromType) < Context.getTypeSize(ToType))) { 1965 return To->getKind() == BuiltinType::Int; 1966 } 1967 1968 return To->getKind() == BuiltinType::UInt; 1969 } 1970 1971 // C++11 [conv.prom]p3: 1972 // A prvalue of an unscoped enumeration type whose underlying type is not 1973 // fixed (7.2) can be converted to an rvalue a prvalue of the first of the 1974 // following types that can represent all the values of the enumeration 1975 // (i.e., the values in the range bmin to bmax as described in 7.2): int, 1976 // unsigned int, long int, unsigned long int, long long int, or unsigned 1977 // long long int. If none of the types in that list can represent all the 1978 // values of the enumeration, an rvalue a prvalue of an unscoped enumeration 1979 // type can be converted to an rvalue a prvalue of the extended integer type 1980 // with lowest integer conversion rank (4.13) greater than the rank of long 1981 // long in which all the values of the enumeration can be represented. If 1982 // there are two such extended types, the signed one is chosen. 1983 // C++11 [conv.prom]p4: 1984 // A prvalue of an unscoped enumeration type whose underlying type is fixed 1985 // can be converted to a prvalue of its underlying type. Moreover, if 1986 // integral promotion can be applied to its underlying type, a prvalue of an 1987 // unscoped enumeration type whose underlying type is fixed can also be 1988 // converted to a prvalue of the promoted underlying type. 1989 if (const EnumType *FromEnumType = FromType->getAs<EnumType>()) { 1990 // C++0x 7.2p9: Note that this implicit enum to int conversion is not 1991 // provided for a scoped enumeration. 1992 if (FromEnumType->getDecl()->isScoped()) 1993 return false; 1994 1995 // We can perform an integral promotion to the underlying type of the enum, 1996 // even if that's not the promoted type. Note that the check for promoting 1997 // the underlying type is based on the type alone, and does not consider 1998 // the bitfield-ness of the actual source expression. 1999 if (FromEnumType->getDecl()->isFixed()) { 2000 QualType Underlying = FromEnumType->getDecl()->getIntegerType(); 2001 return Context.hasSameUnqualifiedType(Underlying, ToType) || 2002 IsIntegralPromotion(nullptr, Underlying, ToType); 2003 } 2004 2005 // We have already pre-calculated the promotion type, so this is trivial. 2006 if (ToType->isIntegerType() && 2007 isCompleteType(From->getLocStart(), FromType)) 2008 return Context.hasSameUnqualifiedType( 2009 ToType, FromEnumType->getDecl()->getPromotionType()); 2010 } 2011 2012 // C++0x [conv.prom]p2: 2013 // A prvalue of type char16_t, char32_t, or wchar_t (3.9.1) can be converted 2014 // to an rvalue a prvalue of the first of the following types that can 2015 // represent all the values of its underlying type: int, unsigned int, 2016 // long int, unsigned long int, long long int, or unsigned long long int. 2017 // If none of the types in that list can represent all the values of its 2018 // underlying type, an rvalue a prvalue of type char16_t, char32_t, 2019 // or wchar_t can be converted to an rvalue a prvalue of its underlying 2020 // type. 2021 if (FromType->isAnyCharacterType() && !FromType->isCharType() && 2022 ToType->isIntegerType()) { 2023 // Determine whether the type we're converting from is signed or 2024 // unsigned. 2025 bool FromIsSigned = FromType->isSignedIntegerType(); 2026 uint64_t FromSize = Context.getTypeSize(FromType); 2027 2028 // The types we'll try to promote to, in the appropriate 2029 // order. Try each of these types. 2030 QualType PromoteTypes[6] = { 2031 Context.IntTy, Context.UnsignedIntTy, 2032 Context.LongTy, Context.UnsignedLongTy , 2033 Context.LongLongTy, Context.UnsignedLongLongTy 2034 }; 2035 for (int Idx = 0; Idx < 6; ++Idx) { 2036 uint64_t ToSize = Context.getTypeSize(PromoteTypes[Idx]); 2037 if (FromSize < ToSize || 2038 (FromSize == ToSize && 2039 FromIsSigned == PromoteTypes[Idx]->isSignedIntegerType())) { 2040 // We found the type that we can promote to. If this is the 2041 // type we wanted, we have a promotion. Otherwise, no 2042 // promotion. 2043 return Context.hasSameUnqualifiedType(ToType, PromoteTypes[Idx]); 2044 } 2045 } 2046 } 2047 2048 // An rvalue for an integral bit-field (9.6) can be converted to an 2049 // rvalue of type int if int can represent all the values of the 2050 // bit-field; otherwise, it can be converted to unsigned int if 2051 // unsigned int can represent all the values of the bit-field. If 2052 // the bit-field is larger yet, no integral promotion applies to 2053 // it. If the bit-field has an enumerated type, it is treated as any 2054 // other value of that type for promotion purposes (C++ 4.5p3). 2055 // FIXME: We should delay checking of bit-fields until we actually perform the 2056 // conversion. 2057 if (From) { 2058 if (FieldDecl *MemberDecl = From->getSourceBitField()) { 2059 llvm::APSInt BitWidth; 2060 if (FromType->isIntegralType(Context) && 2061 MemberDecl->getBitWidth()->isIntegerConstantExpr(BitWidth, Context)) { 2062 llvm::APSInt ToSize(BitWidth.getBitWidth(), BitWidth.isUnsigned()); 2063 ToSize = Context.getTypeSize(ToType); 2064 2065 // Are we promoting to an int from a bitfield that fits in an int? 2066 if (BitWidth < ToSize || 2067 (FromType->isSignedIntegerType() && BitWidth <= ToSize)) { 2068 return To->getKind() == BuiltinType::Int; 2069 } 2070 2071 // Are we promoting to an unsigned int from an unsigned bitfield 2072 // that fits into an unsigned int? 2073 if (FromType->isUnsignedIntegerType() && BitWidth <= ToSize) { 2074 return To->getKind() == BuiltinType::UInt; 2075 } 2076 2077 return false; 2078 } 2079 } 2080 } 2081 2082 // An rvalue of type bool can be converted to an rvalue of type int, 2083 // with false becoming zero and true becoming one (C++ 4.5p4). 2084 if (FromType->isBooleanType() && To->getKind() == BuiltinType::Int) { 2085 return true; 2086 } 2087 2088 return false; 2089 } 2090 2091 /// IsFloatingPointPromotion - Determines whether the conversion from 2092 /// FromType to ToType is a floating point promotion (C++ 4.6). If so, 2093 /// returns true and sets PromotedType to the promoted type. 2094 bool Sema::IsFloatingPointPromotion(QualType FromType, QualType ToType) { 2095 if (const BuiltinType *FromBuiltin = FromType->getAs<BuiltinType>()) 2096 if (const BuiltinType *ToBuiltin = ToType->getAs<BuiltinType>()) { 2097 /// An rvalue of type float can be converted to an rvalue of type 2098 /// double. (C++ 4.6p1). 2099 if (FromBuiltin->getKind() == BuiltinType::Float && 2100 ToBuiltin->getKind() == BuiltinType::Double) 2101 return true; 2102 2103 // C99 6.3.1.5p1: 2104 // When a float is promoted to double or long double, or a 2105 // double is promoted to long double [...]. 2106 if (!getLangOpts().CPlusPlus && 2107 (FromBuiltin->getKind() == BuiltinType::Float || 2108 FromBuiltin->getKind() == BuiltinType::Double) && 2109 (ToBuiltin->getKind() == BuiltinType::LongDouble || 2110 ToBuiltin->getKind() == BuiltinType::Float128)) 2111 return true; 2112 2113 // Half can be promoted to float. 2114 if (!getLangOpts().NativeHalfType && 2115 FromBuiltin->getKind() == BuiltinType::Half && 2116 ToBuiltin->getKind() == BuiltinType::Float) 2117 return true; 2118 } 2119 2120 return false; 2121 } 2122 2123 /// Determine if a conversion is a complex promotion. 2124 /// 2125 /// A complex promotion is defined as a complex -> complex conversion 2126 /// where the conversion between the underlying real types is a 2127 /// floating-point or integral promotion. 2128 bool Sema::IsComplexPromotion(QualType FromType, QualType ToType) { 2129 const ComplexType *FromComplex = FromType->getAs<ComplexType>(); 2130 if (!FromComplex) 2131 return false; 2132 2133 const ComplexType *ToComplex = ToType->getAs<ComplexType>(); 2134 if (!ToComplex) 2135 return false; 2136 2137 return IsFloatingPointPromotion(FromComplex->getElementType(), 2138 ToComplex->getElementType()) || 2139 IsIntegralPromotion(nullptr, FromComplex->getElementType(), 2140 ToComplex->getElementType()); 2141 } 2142 2143 /// BuildSimilarlyQualifiedPointerType - In a pointer conversion from 2144 /// the pointer type FromPtr to a pointer to type ToPointee, with the 2145 /// same type qualifiers as FromPtr has on its pointee type. ToType, 2146 /// if non-empty, will be a pointer to ToType that may or may not have 2147 /// the right set of qualifiers on its pointee. 2148 /// 2149 static QualType 2150 BuildSimilarlyQualifiedPointerType(const Type *FromPtr, 2151 QualType ToPointee, QualType ToType, 2152 ASTContext &Context, 2153 bool StripObjCLifetime = false) { 2154 assert((FromPtr->getTypeClass() == Type::Pointer || 2155 FromPtr->getTypeClass() == Type::ObjCObjectPointer) && 2156 "Invalid similarly-qualified pointer type"); 2157 2158 /// Conversions to 'id' subsume cv-qualifier conversions. 2159 if (ToType->isObjCIdType() || ToType->isObjCQualifiedIdType()) 2160 return ToType.getUnqualifiedType(); 2161 2162 QualType CanonFromPointee 2163 = Context.getCanonicalType(FromPtr->getPointeeType()); 2164 QualType CanonToPointee = Context.getCanonicalType(ToPointee); 2165 Qualifiers Quals = CanonFromPointee.getQualifiers(); 2166 2167 if (StripObjCLifetime) 2168 Quals.removeObjCLifetime(); 2169 2170 // Exact qualifier match -> return the pointer type we're converting to. 2171 if (CanonToPointee.getLocalQualifiers() == Quals) { 2172 // ToType is exactly what we need. Return it. 2173 if (!ToType.isNull()) 2174 return ToType.getUnqualifiedType(); 2175 2176 // Build a pointer to ToPointee. It has the right qualifiers 2177 // already. 2178 if (isa<ObjCObjectPointerType>(ToType)) 2179 return Context.getObjCObjectPointerType(ToPointee); 2180 return Context.getPointerType(ToPointee); 2181 } 2182 2183 // Just build a canonical type that has the right qualifiers. 2184 QualType QualifiedCanonToPointee 2185 = Context.getQualifiedType(CanonToPointee.getLocalUnqualifiedType(), Quals); 2186 2187 if (isa<ObjCObjectPointerType>(ToType)) 2188 return Context.getObjCObjectPointerType(QualifiedCanonToPointee); 2189 return Context.getPointerType(QualifiedCanonToPointee); 2190 } 2191 2192 static bool isNullPointerConstantForConversion(Expr *Expr, 2193 bool InOverloadResolution, 2194 ASTContext &Context) { 2195 // Handle value-dependent integral null pointer constants correctly. 2196 // http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_active.html#903 2197 if (Expr->isValueDependent() && !Expr->isTypeDependent() && 2198 Expr->getType()->isIntegerType() && !Expr->getType()->isEnumeralType()) 2199 return !InOverloadResolution; 2200 2201 return Expr->isNullPointerConstant(Context, 2202 InOverloadResolution? Expr::NPC_ValueDependentIsNotNull 2203 : Expr::NPC_ValueDependentIsNull); 2204 } 2205 2206 /// IsPointerConversion - Determines whether the conversion of the 2207 /// expression From, which has the (possibly adjusted) type FromType, 2208 /// can be converted to the type ToType via a pointer conversion (C++ 2209 /// 4.10). If so, returns true and places the converted type (that 2210 /// might differ from ToType in its cv-qualifiers at some level) into 2211 /// ConvertedType. 2212 /// 2213 /// This routine also supports conversions to and from block pointers 2214 /// and conversions with Objective-C's 'id', 'id<protocols...>', and 2215 /// pointers to interfaces. FIXME: Once we've determined the 2216 /// appropriate overloading rules for Objective-C, we may want to 2217 /// split the Objective-C checks into a different routine; however, 2218 /// GCC seems to consider all of these conversions to be pointer 2219 /// conversions, so for now they live here. IncompatibleObjC will be 2220 /// set if the conversion is an allowed Objective-C conversion that 2221 /// should result in a warning. 2222 bool Sema::IsPointerConversion(Expr *From, QualType FromType, QualType ToType, 2223 bool InOverloadResolution, 2224 QualType& ConvertedType, 2225 bool &IncompatibleObjC) { 2226 IncompatibleObjC = false; 2227 if (isObjCPointerConversion(FromType, ToType, ConvertedType, 2228 IncompatibleObjC)) 2229 return true; 2230 2231 // Conversion from a null pointer constant to any Objective-C pointer type. 2232 if (ToType->isObjCObjectPointerType() && 2233 isNullPointerConstantForConversion(From, InOverloadResolution, Context)) { 2234 ConvertedType = ToType; 2235 return true; 2236 } 2237 2238 // Blocks: Block pointers can be converted to void*. 2239 if (FromType->isBlockPointerType() && ToType->isPointerType() && 2240 ToType->getAs<PointerType>()->getPointeeType()->isVoidType()) { 2241 ConvertedType = ToType; 2242 return true; 2243 } 2244 // Blocks: A null pointer constant can be converted to a block 2245 // pointer type. 2246 if (ToType->isBlockPointerType() && 2247 isNullPointerConstantForConversion(From, InOverloadResolution, Context)) { 2248 ConvertedType = ToType; 2249 return true; 2250 } 2251 2252 // If the left-hand-side is nullptr_t, the right side can be a null 2253 // pointer constant. 2254 if (ToType->isNullPtrType() && 2255 isNullPointerConstantForConversion(From, InOverloadResolution, Context)) { 2256 ConvertedType = ToType; 2257 return true; 2258 } 2259 2260 const PointerType* ToTypePtr = ToType->getAs<PointerType>(); 2261 if (!ToTypePtr) 2262 return false; 2263 2264 // A null pointer constant can be converted to a pointer type (C++ 4.10p1). 2265 if (isNullPointerConstantForConversion(From, InOverloadResolution, Context)) { 2266 ConvertedType = ToType; 2267 return true; 2268 } 2269 2270 // Beyond this point, both types need to be pointers 2271 // , including objective-c pointers. 2272 QualType ToPointeeType = ToTypePtr->getPointeeType(); 2273 if (FromType->isObjCObjectPointerType() && ToPointeeType->isVoidType() && 2274 !getLangOpts().ObjCAutoRefCount) { 2275 ConvertedType = BuildSimilarlyQualifiedPointerType( 2276 FromType->getAs<ObjCObjectPointerType>(), 2277 ToPointeeType, 2278 ToType, Context); 2279 return true; 2280 } 2281 const PointerType *FromTypePtr = FromType->getAs<PointerType>(); 2282 if (!FromTypePtr) 2283 return false; 2284 2285 QualType FromPointeeType = FromTypePtr->getPointeeType(); 2286 2287 // If the unqualified pointee types are the same, this can't be a 2288 // pointer conversion, so don't do all of the work below. 2289 if (Context.hasSameUnqualifiedType(FromPointeeType, ToPointeeType)) 2290 return false; 2291 2292 // An rvalue of type "pointer to cv T," where T is an object type, 2293 // can be converted to an rvalue of type "pointer to cv void" (C++ 2294 // 4.10p2). 2295 if (FromPointeeType->isIncompleteOrObjectType() && 2296 ToPointeeType->isVoidType()) { 2297 ConvertedType = BuildSimilarlyQualifiedPointerType(FromTypePtr, 2298 ToPointeeType, 2299 ToType, Context, 2300 /*StripObjCLifetime=*/true); 2301 return true; 2302 } 2303 2304 // MSVC allows implicit function to void* type conversion. 2305 if (getLangOpts().MSVCCompat && FromPointeeType->isFunctionType() && 2306 ToPointeeType->isVoidType()) { 2307 ConvertedType = BuildSimilarlyQualifiedPointerType(FromTypePtr, 2308 ToPointeeType, 2309 ToType, Context); 2310 return true; 2311 } 2312 2313 // When we're overloading in C, we allow a special kind of pointer 2314 // conversion for compatible-but-not-identical pointee types. 2315 if (!getLangOpts().CPlusPlus && 2316 Context.typesAreCompatible(FromPointeeType, ToPointeeType)) { 2317 ConvertedType = BuildSimilarlyQualifiedPointerType(FromTypePtr, 2318 ToPointeeType, 2319 ToType, Context); 2320 return true; 2321 } 2322 2323 // C++ [conv.ptr]p3: 2324 // 2325 // An rvalue of type "pointer to cv D," where D is a class type, 2326 // can be converted to an rvalue of type "pointer to cv B," where 2327 // B is a base class (clause 10) of D. If B is an inaccessible 2328 // (clause 11) or ambiguous (10.2) base class of D, a program that 2329 // necessitates this conversion is ill-formed. The result of the 2330 // conversion is a pointer to the base class sub-object of the 2331 // derived class object. The null pointer value is converted to 2332 // the null pointer value of the destination type. 2333 // 2334 // Note that we do not check for ambiguity or inaccessibility 2335 // here. That is handled by CheckPointerConversion. 2336 if (getLangOpts().CPlusPlus && 2337 FromPointeeType->isRecordType() && ToPointeeType->isRecordType() && 2338 !Context.hasSameUnqualifiedType(FromPointeeType, ToPointeeType) && 2339 IsDerivedFrom(From->getLocStart(), FromPointeeType, ToPointeeType)) { 2340 ConvertedType = BuildSimilarlyQualifiedPointerType(FromTypePtr, 2341 ToPointeeType, 2342 ToType, Context); 2343 return true; 2344 } 2345 2346 if (FromPointeeType->isVectorType() && ToPointeeType->isVectorType() && 2347 Context.areCompatibleVectorTypes(FromPointeeType, ToPointeeType)) { 2348 ConvertedType = BuildSimilarlyQualifiedPointerType(FromTypePtr, 2349 ToPointeeType, 2350 ToType, Context); 2351 return true; 2352 } 2353 2354 return false; 2355 } 2356 2357 /// Adopt the given qualifiers for the given type. 2358 static QualType AdoptQualifiers(ASTContext &Context, QualType T, Qualifiers Qs){ 2359 Qualifiers TQs = T.getQualifiers(); 2360 2361 // Check whether qualifiers already match. 2362 if (TQs == Qs) 2363 return T; 2364 2365 if (Qs.compatiblyIncludes(TQs)) 2366 return Context.getQualifiedType(T, Qs); 2367 2368 return Context.getQualifiedType(T.getUnqualifiedType(), Qs); 2369 } 2370 2371 /// isObjCPointerConversion - Determines whether this is an 2372 /// Objective-C pointer conversion. Subroutine of IsPointerConversion, 2373 /// with the same arguments and return values. 2374 bool Sema::isObjCPointerConversion(QualType FromType, QualType ToType, 2375 QualType& ConvertedType, 2376 bool &IncompatibleObjC) { 2377 if (!getLangOpts().ObjC1) 2378 return false; 2379 2380 // The set of qualifiers on the type we're converting from. 2381 Qualifiers FromQualifiers = FromType.getQualifiers(); 2382 2383 // First, we handle all conversions on ObjC object pointer types. 2384 const ObjCObjectPointerType* ToObjCPtr = 2385 ToType->getAs<ObjCObjectPointerType>(); 2386 const ObjCObjectPointerType *FromObjCPtr = 2387 FromType->getAs<ObjCObjectPointerType>(); 2388 2389 if (ToObjCPtr && FromObjCPtr) { 2390 // If the pointee types are the same (ignoring qualifications), 2391 // then this is not a pointer conversion. 2392 if (Context.hasSameUnqualifiedType(ToObjCPtr->getPointeeType(), 2393 FromObjCPtr->getPointeeType())) 2394 return false; 2395 2396 // Conversion between Objective-C pointers. 2397 if (Context.canAssignObjCInterfaces(ToObjCPtr, FromObjCPtr)) { 2398 const ObjCInterfaceType* LHS = ToObjCPtr->getInterfaceType(); 2399 const ObjCInterfaceType* RHS = FromObjCPtr->getInterfaceType(); 2400 if (getLangOpts().CPlusPlus && LHS && RHS && 2401 !ToObjCPtr->getPointeeType().isAtLeastAsQualifiedAs( 2402 FromObjCPtr->getPointeeType())) 2403 return false; 2404 ConvertedType = BuildSimilarlyQualifiedPointerType(FromObjCPtr, 2405 ToObjCPtr->getPointeeType(), 2406 ToType, Context); 2407 ConvertedType = AdoptQualifiers(Context, ConvertedType, FromQualifiers); 2408 return true; 2409 } 2410 2411 if (Context.canAssignObjCInterfaces(FromObjCPtr, ToObjCPtr)) { 2412 // Okay: this is some kind of implicit downcast of Objective-C 2413 // interfaces, which is permitted. However, we're going to 2414 // complain about it. 2415 IncompatibleObjC = true; 2416 ConvertedType = BuildSimilarlyQualifiedPointerType(FromObjCPtr, 2417 ToObjCPtr->getPointeeType(), 2418 ToType, Context); 2419 ConvertedType = AdoptQualifiers(Context, ConvertedType, FromQualifiers); 2420 return true; 2421 } 2422 } 2423 // Beyond this point, both types need to be C pointers or block pointers. 2424 QualType ToPointeeType; 2425 if (const PointerType *ToCPtr = ToType->getAs<PointerType>()) 2426 ToPointeeType = ToCPtr->getPointeeType(); 2427 else if (const BlockPointerType *ToBlockPtr = 2428 ToType->getAs<BlockPointerType>()) { 2429 // Objective C++: We're able to convert from a pointer to any object 2430 // to a block pointer type. 2431 if (FromObjCPtr && FromObjCPtr->isObjCBuiltinType()) { 2432 ConvertedType = AdoptQualifiers(Context, ToType, FromQualifiers); 2433 return true; 2434 } 2435 ToPointeeType = ToBlockPtr->getPointeeType(); 2436 } 2437 else if (FromType->getAs<BlockPointerType>() && 2438 ToObjCPtr && ToObjCPtr->isObjCBuiltinType()) { 2439 // Objective C++: We're able to convert from a block pointer type to a 2440 // pointer to any object. 2441 ConvertedType = AdoptQualifiers(Context, ToType, FromQualifiers); 2442 return true; 2443 } 2444 else 2445 return false; 2446 2447 QualType FromPointeeType; 2448 if (const PointerType *FromCPtr = FromType->getAs<PointerType>()) 2449 FromPointeeType = FromCPtr->getPointeeType(); 2450 else if (const BlockPointerType *FromBlockPtr = 2451 FromType->getAs<BlockPointerType>()) 2452 FromPointeeType = FromBlockPtr->getPointeeType(); 2453 else 2454 return false; 2455 2456 // If we have pointers to pointers, recursively check whether this 2457 // is an Objective-C conversion. 2458 if (FromPointeeType->isPointerType() && ToPointeeType->isPointerType() && 2459 isObjCPointerConversion(FromPointeeType, ToPointeeType, ConvertedType, 2460 IncompatibleObjC)) { 2461 // We always complain about this conversion. 2462 IncompatibleObjC = true; 2463 ConvertedType = Context.getPointerType(ConvertedType); 2464 ConvertedType = AdoptQualifiers(Context, ConvertedType, FromQualifiers); 2465 return true; 2466 } 2467 // Allow conversion of pointee being objective-c pointer to another one; 2468 // as in I* to id. 2469 if (FromPointeeType->getAs<ObjCObjectPointerType>() && 2470 ToPointeeType->getAs<ObjCObjectPointerType>() && 2471 isObjCPointerConversion(FromPointeeType, ToPointeeType, ConvertedType, 2472 IncompatibleObjC)) { 2473 2474 ConvertedType = Context.getPointerType(ConvertedType); 2475 ConvertedType = AdoptQualifiers(Context, ConvertedType, FromQualifiers); 2476 return true; 2477 } 2478 2479 // If we have pointers to functions or blocks, check whether the only 2480 // differences in the argument and result types are in Objective-C 2481 // pointer conversions. If so, we permit the conversion (but 2482 // complain about it). 2483 const FunctionProtoType *FromFunctionType 2484 = FromPointeeType->getAs<FunctionProtoType>(); 2485 const FunctionProtoType *ToFunctionType 2486 = ToPointeeType->getAs<FunctionProtoType>(); 2487 if (FromFunctionType && ToFunctionType) { 2488 // If the function types are exactly the same, this isn't an 2489 // Objective-C pointer conversion. 2490 if (Context.getCanonicalType(FromPointeeType) 2491 == Context.getCanonicalType(ToPointeeType)) 2492 return false; 2493 2494 // Perform the quick checks that will tell us whether these 2495 // function types are obviously different. 2496 if (FromFunctionType->getNumParams() != ToFunctionType->getNumParams() || 2497 FromFunctionType->isVariadic() != ToFunctionType->isVariadic() || 2498 FromFunctionType->getTypeQuals() != ToFunctionType->getTypeQuals()) 2499 return false; 2500 2501 bool HasObjCConversion = false; 2502 if (Context.getCanonicalType(FromFunctionType->getReturnType()) == 2503 Context.getCanonicalType(ToFunctionType->getReturnType())) { 2504 // Okay, the types match exactly. Nothing to do. 2505 } else if (isObjCPointerConversion(FromFunctionType->getReturnType(), 2506 ToFunctionType->getReturnType(), 2507 ConvertedType, IncompatibleObjC)) { 2508 // Okay, we have an Objective-C pointer conversion. 2509 HasObjCConversion = true; 2510 } else { 2511 // Function types are too different. Abort. 2512 return false; 2513 } 2514 2515 // Check argument types. 2516 for (unsigned ArgIdx = 0, NumArgs = FromFunctionType->getNumParams(); 2517 ArgIdx != NumArgs; ++ArgIdx) { 2518 QualType FromArgType = FromFunctionType->getParamType(ArgIdx); 2519 QualType ToArgType = ToFunctionType->getParamType(ArgIdx); 2520 if (Context.getCanonicalType(FromArgType) 2521 == Context.getCanonicalType(ToArgType)) { 2522 // Okay, the types match exactly. Nothing to do. 2523 } else if (isObjCPointerConversion(FromArgType, ToArgType, 2524 ConvertedType, IncompatibleObjC)) { 2525 // Okay, we have an Objective-C pointer conversion. 2526 HasObjCConversion = true; 2527 } else { 2528 // Argument types are too different. Abort. 2529 return false; 2530 } 2531 } 2532 2533 if (HasObjCConversion) { 2534 // We had an Objective-C conversion. Allow this pointer 2535 // conversion, but complain about it. 2536 ConvertedType = AdoptQualifiers(Context, ToType, FromQualifiers); 2537 IncompatibleObjC = true; 2538 return true; 2539 } 2540 } 2541 2542 return false; 2543 } 2544 2545 /// Determine whether this is an Objective-C writeback conversion, 2546 /// used for parameter passing when performing automatic reference counting. 2547 /// 2548 /// \param FromType The type we're converting form. 2549 /// 2550 /// \param ToType The type we're converting to. 2551 /// 2552 /// \param ConvertedType The type that will be produced after applying 2553 /// this conversion. 2554 bool Sema::isObjCWritebackConversion(QualType FromType, QualType ToType, 2555 QualType &ConvertedType) { 2556 if (!getLangOpts().ObjCAutoRefCount || 2557 Context.hasSameUnqualifiedType(FromType, ToType)) 2558 return false; 2559 2560 // Parameter must be a pointer to __autoreleasing (with no other qualifiers). 2561 QualType ToPointee; 2562 if (const PointerType *ToPointer = ToType->getAs<PointerType>()) 2563 ToPointee = ToPointer->getPointeeType(); 2564 else 2565 return false; 2566 2567 Qualifiers ToQuals = ToPointee.getQualifiers(); 2568 if (!ToPointee->isObjCLifetimeType() || 2569 ToQuals.getObjCLifetime() != Qualifiers::OCL_Autoreleasing || 2570 !ToQuals.withoutObjCLifetime().empty()) 2571 return false; 2572 2573 // Argument must be a pointer to __strong to __weak. 2574 QualType FromPointee; 2575 if (const PointerType *FromPointer = FromType->getAs<PointerType>()) 2576 FromPointee = FromPointer->getPointeeType(); 2577 else 2578 return false; 2579 2580 Qualifiers FromQuals = FromPointee.getQualifiers(); 2581 if (!FromPointee->isObjCLifetimeType() || 2582 (FromQuals.getObjCLifetime() != Qualifiers::OCL_Strong && 2583 FromQuals.getObjCLifetime() != Qualifiers::OCL_Weak)) 2584 return false; 2585 2586 // Make sure that we have compatible qualifiers. 2587 FromQuals.setObjCLifetime(Qualifiers::OCL_Autoreleasing); 2588 if (!ToQuals.compatiblyIncludes(FromQuals)) 2589 return false; 2590 2591 // Remove qualifiers from the pointee type we're converting from; they 2592 // aren't used in the compatibility check belong, and we'll be adding back 2593 // qualifiers (with __autoreleasing) if the compatibility check succeeds. 2594 FromPointee = FromPointee.getUnqualifiedType(); 2595 2596 // The unqualified form of the pointee types must be compatible. 2597 ToPointee = ToPointee.getUnqualifiedType(); 2598 bool IncompatibleObjC; 2599 if (Context.typesAreCompatible(FromPointee, ToPointee)) 2600 FromPointee = ToPointee; 2601 else if (!isObjCPointerConversion(FromPointee, ToPointee, FromPointee, 2602 IncompatibleObjC)) 2603 return false; 2604 2605 /// Construct the type we're converting to, which is a pointer to 2606 /// __autoreleasing pointee. 2607 FromPointee = Context.getQualifiedType(FromPointee, FromQuals); 2608 ConvertedType = Context.getPointerType(FromPointee); 2609 return true; 2610 } 2611 2612 bool Sema::IsBlockPointerConversion(QualType FromType, QualType ToType, 2613 QualType& ConvertedType) { 2614 QualType ToPointeeType; 2615 if (const BlockPointerType *ToBlockPtr = 2616 ToType->getAs<BlockPointerType>()) 2617 ToPointeeType = ToBlockPtr->getPointeeType(); 2618 else 2619 return false; 2620 2621 QualType FromPointeeType; 2622 if (const BlockPointerType *FromBlockPtr = 2623 FromType->getAs<BlockPointerType>()) 2624 FromPointeeType = FromBlockPtr->getPointeeType(); 2625 else 2626 return false; 2627 // We have pointer to blocks, check whether the only 2628 // differences in the argument and result types are in Objective-C 2629 // pointer conversions. If so, we permit the conversion. 2630 2631 const FunctionProtoType *FromFunctionType 2632 = FromPointeeType->getAs<FunctionProtoType>(); 2633 const FunctionProtoType *ToFunctionType 2634 = ToPointeeType->getAs<FunctionProtoType>(); 2635 2636 if (!FromFunctionType || !ToFunctionType) 2637 return false; 2638 2639 if (Context.hasSameType(FromPointeeType, ToPointeeType)) 2640 return true; 2641 2642 // Perform the quick checks that will tell us whether these 2643 // function types are obviously different. 2644 if (FromFunctionType->getNumParams() != ToFunctionType->getNumParams() || 2645 FromFunctionType->isVariadic() != ToFunctionType->isVariadic()) 2646 return false; 2647 2648 FunctionType::ExtInfo FromEInfo = FromFunctionType->getExtInfo(); 2649 FunctionType::ExtInfo ToEInfo = ToFunctionType->getExtInfo(); 2650 if (FromEInfo != ToEInfo) 2651 return false; 2652 2653 bool IncompatibleObjC = false; 2654 if (Context.hasSameType(FromFunctionType->getReturnType(), 2655 ToFunctionType->getReturnType())) { 2656 // Okay, the types match exactly. Nothing to do. 2657 } else { 2658 QualType RHS = FromFunctionType->getReturnType(); 2659 QualType LHS = ToFunctionType->getReturnType(); 2660 if ((!getLangOpts().CPlusPlus || !RHS->isRecordType()) && 2661 !RHS.hasQualifiers() && LHS.hasQualifiers()) 2662 LHS = LHS.getUnqualifiedType(); 2663 2664 if (Context.hasSameType(RHS,LHS)) { 2665 // OK exact match. 2666 } else if (isObjCPointerConversion(RHS, LHS, 2667 ConvertedType, IncompatibleObjC)) { 2668 if (IncompatibleObjC) 2669 return false; 2670 // Okay, we have an Objective-C pointer conversion. 2671 } 2672 else 2673 return false; 2674 } 2675 2676 // Check argument types. 2677 for (unsigned ArgIdx = 0, NumArgs = FromFunctionType->getNumParams(); 2678 ArgIdx != NumArgs; ++ArgIdx) { 2679 IncompatibleObjC = false; 2680 QualType FromArgType = FromFunctionType->getParamType(ArgIdx); 2681 QualType ToArgType = ToFunctionType->getParamType(ArgIdx); 2682 if (Context.hasSameType(FromArgType, ToArgType)) { 2683 // Okay, the types match exactly. Nothing to do. 2684 } else if (isObjCPointerConversion(ToArgType, FromArgType, 2685 ConvertedType, IncompatibleObjC)) { 2686 if (IncompatibleObjC) 2687 return false; 2688 // Okay, we have an Objective-C pointer conversion. 2689 } else 2690 // Argument types are too different. Abort. 2691 return false; 2692 } 2693 2694 SmallVector<FunctionProtoType::ExtParameterInfo, 4> NewParamInfos; 2695 bool CanUseToFPT, CanUseFromFPT; 2696 if (!Context.mergeExtParameterInfo(ToFunctionType, FromFunctionType, 2697 CanUseToFPT, CanUseFromFPT, 2698 NewParamInfos)) 2699 return false; 2700 2701 ConvertedType = ToType; 2702 return true; 2703 } 2704 2705 enum { 2706 ft_default, 2707 ft_different_class, 2708 ft_parameter_arity, 2709 ft_parameter_mismatch, 2710 ft_return_type, 2711 ft_qualifer_mismatch, 2712 ft_noexcept 2713 }; 2714 2715 /// Attempts to get the FunctionProtoType from a Type. Handles 2716 /// MemberFunctionPointers properly. 2717 static const FunctionProtoType *tryGetFunctionProtoType(QualType FromType) { 2718 if (auto *FPT = FromType->getAs<FunctionProtoType>()) 2719 return FPT; 2720 2721 if (auto *MPT = FromType->getAs<MemberPointerType>()) 2722 return MPT->getPointeeType()->getAs<FunctionProtoType>(); 2723 2724 return nullptr; 2725 } 2726 2727 /// HandleFunctionTypeMismatch - Gives diagnostic information for differeing 2728 /// function types. Catches different number of parameter, mismatch in 2729 /// parameter types, and different return types. 2730 void Sema::HandleFunctionTypeMismatch(PartialDiagnostic &PDiag, 2731 QualType FromType, QualType ToType) { 2732 // If either type is not valid, include no extra info. 2733 if (FromType.isNull() || ToType.isNull()) { 2734 PDiag << ft_default; 2735 return; 2736 } 2737 2738 // Get the function type from the pointers. 2739 if (FromType->isMemberPointerType() && ToType->isMemberPointerType()) { 2740 const MemberPointerType *FromMember = FromType->getAs<MemberPointerType>(), 2741 *ToMember = ToType->getAs<MemberPointerType>(); 2742 if (!Context.hasSameType(FromMember->getClass(), ToMember->getClass())) { 2743 PDiag << ft_different_class << QualType(ToMember->getClass(), 0) 2744 << QualType(FromMember->getClass(), 0); 2745 return; 2746 } 2747 FromType = FromMember->getPointeeType(); 2748 ToType = ToMember->getPointeeType(); 2749 } 2750 2751 if (FromType->isPointerType()) 2752 FromType = FromType->getPointeeType(); 2753 if (ToType->isPointerType()) 2754 ToType = ToType->getPointeeType(); 2755 2756 // Remove references. 2757 FromType = FromType.getNonReferenceType(); 2758 ToType = ToType.getNonReferenceType(); 2759 2760 // Don't print extra info for non-specialized template functions. 2761 if (FromType->isInstantiationDependentType() && 2762 !FromType->getAs<TemplateSpecializationType>()) { 2763 PDiag << ft_default; 2764 return; 2765 } 2766 2767 // No extra info for same types. 2768 if (Context.hasSameType(FromType, ToType)) { 2769 PDiag << ft_default; 2770 return; 2771 } 2772 2773 const FunctionProtoType *FromFunction = tryGetFunctionProtoType(FromType), 2774 *ToFunction = tryGetFunctionProtoType(ToType); 2775 2776 // Both types need to be function types. 2777 if (!FromFunction || !ToFunction) { 2778 PDiag << ft_default; 2779 return; 2780 } 2781 2782 if (FromFunction->getNumParams() != ToFunction->getNumParams()) { 2783 PDiag << ft_parameter_arity << ToFunction->getNumParams() 2784 << FromFunction->getNumParams(); 2785 return; 2786 } 2787 2788 // Handle different parameter types. 2789 unsigned ArgPos; 2790 if (!FunctionParamTypesAreEqual(FromFunction, ToFunction, &ArgPos)) { 2791 PDiag << ft_parameter_mismatch << ArgPos + 1 2792 << ToFunction->getParamType(ArgPos) 2793 << FromFunction->getParamType(ArgPos); 2794 return; 2795 } 2796 2797 // Handle different return type. 2798 if (!Context.hasSameType(FromFunction->getReturnType(), 2799 ToFunction->getReturnType())) { 2800 PDiag << ft_return_type << ToFunction->getReturnType() 2801 << FromFunction->getReturnType(); 2802 return; 2803 } 2804 2805 unsigned FromQuals = FromFunction->getTypeQuals(), 2806 ToQuals = ToFunction->getTypeQuals(); 2807 if (FromQuals != ToQuals) { 2808 PDiag << ft_qualifer_mismatch << ToQuals << FromQuals; 2809 return; 2810 } 2811 2812 // Handle exception specification differences on canonical type (in C++17 2813 // onwards). 2814 if (cast<FunctionProtoType>(FromFunction->getCanonicalTypeUnqualified()) 2815 ->isNothrow() != 2816 cast<FunctionProtoType>(ToFunction->getCanonicalTypeUnqualified()) 2817 ->isNothrow()) { 2818 PDiag << ft_noexcept; 2819 return; 2820 } 2821 2822 // Unable to find a difference, so add no extra info. 2823 PDiag << ft_default; 2824 } 2825 2826 /// FunctionParamTypesAreEqual - This routine checks two function proto types 2827 /// for equality of their argument types. Caller has already checked that 2828 /// they have same number of arguments. If the parameters are different, 2829 /// ArgPos will have the parameter index of the first different parameter. 2830 bool Sema::FunctionParamTypesAreEqual(const FunctionProtoType *OldType, 2831 const FunctionProtoType *NewType, 2832 unsigned *ArgPos) { 2833 for (FunctionProtoType::param_type_iterator O = OldType->param_type_begin(), 2834 N = NewType->param_type_begin(), 2835 E = OldType->param_type_end(); 2836 O && (O != E); ++O, ++N) { 2837 if (!Context.hasSameType(O->getUnqualifiedType(), 2838 N->getUnqualifiedType())) { 2839 if (ArgPos) 2840 *ArgPos = O - OldType->param_type_begin(); 2841 return false; 2842 } 2843 } 2844 return true; 2845 } 2846 2847 /// CheckPointerConversion - Check the pointer conversion from the 2848 /// expression From to the type ToType. This routine checks for 2849 /// ambiguous or inaccessible derived-to-base pointer 2850 /// conversions for which IsPointerConversion has already returned 2851 /// true. It returns true and produces a diagnostic if there was an 2852 /// error, or returns false otherwise. 2853 bool Sema::CheckPointerConversion(Expr *From, QualType ToType, 2854 CastKind &Kind, 2855 CXXCastPath& BasePath, 2856 bool IgnoreBaseAccess, 2857 bool Diagnose) { 2858 QualType FromType = From->getType(); 2859 bool IsCStyleOrFunctionalCast = IgnoreBaseAccess; 2860 2861 Kind = CK_BitCast; 2862 2863 if (Diagnose && !IsCStyleOrFunctionalCast && !FromType->isAnyPointerType() && 2864 From->isNullPointerConstant(Context, Expr::NPC_ValueDependentIsNotNull) == 2865 Expr::NPCK_ZeroExpression) { 2866 if (Context.hasSameUnqualifiedType(From->getType(), Context.BoolTy)) 2867 DiagRuntimeBehavior(From->getExprLoc(), From, 2868 PDiag(diag::warn_impcast_bool_to_null_pointer) 2869 << ToType << From->getSourceRange()); 2870 else if (!isUnevaluatedContext()) 2871 Diag(From->getExprLoc(), diag::warn_non_literal_null_pointer) 2872 << ToType << From->getSourceRange(); 2873 } 2874 if (const PointerType *ToPtrType = ToType->getAs<PointerType>()) { 2875 if (const PointerType *FromPtrType = FromType->getAs<PointerType>()) { 2876 QualType FromPointeeType = FromPtrType->getPointeeType(), 2877 ToPointeeType = ToPtrType->getPointeeType(); 2878 2879 if (FromPointeeType->isRecordType() && ToPointeeType->isRecordType() && 2880 !Context.hasSameUnqualifiedType(FromPointeeType, ToPointeeType)) { 2881 // We must have a derived-to-base conversion. Check an 2882 // ambiguous or inaccessible conversion. 2883 unsigned InaccessibleID = 0; 2884 unsigned AmbigiousID = 0; 2885 if (Diagnose) { 2886 InaccessibleID = diag::err_upcast_to_inaccessible_base; 2887 AmbigiousID = diag::err_ambiguous_derived_to_base_conv; 2888 } 2889 if (CheckDerivedToBaseConversion( 2890 FromPointeeType, ToPointeeType, InaccessibleID, AmbigiousID, 2891 From->getExprLoc(), From->getSourceRange(), DeclarationName(), 2892 &BasePath, IgnoreBaseAccess)) 2893 return true; 2894 2895 // The conversion was successful. 2896 Kind = CK_DerivedToBase; 2897 } 2898 2899 if (Diagnose && !IsCStyleOrFunctionalCast && 2900 FromPointeeType->isFunctionType() && ToPointeeType->isVoidType()) { 2901 assert(getLangOpts().MSVCCompat && 2902 "this should only be possible with MSVCCompat!"); 2903 Diag(From->getExprLoc(), diag::ext_ms_impcast_fn_obj) 2904 << From->getSourceRange(); 2905 } 2906 } 2907 } else if (const ObjCObjectPointerType *ToPtrType = 2908 ToType->getAs<ObjCObjectPointerType>()) { 2909 if (const ObjCObjectPointerType *FromPtrType = 2910 FromType->getAs<ObjCObjectPointerType>()) { 2911 // Objective-C++ conversions are always okay. 2912 // FIXME: We should have a different class of conversions for the 2913 // Objective-C++ implicit conversions. 2914 if (FromPtrType->isObjCBuiltinType() || ToPtrType->isObjCBuiltinType()) 2915 return false; 2916 } else if (FromType->isBlockPointerType()) { 2917 Kind = CK_BlockPointerToObjCPointerCast; 2918 } else { 2919 Kind = CK_CPointerToObjCPointerCast; 2920 } 2921 } else if (ToType->isBlockPointerType()) { 2922 if (!FromType->isBlockPointerType()) 2923 Kind = CK_AnyPointerToBlockPointerCast; 2924 } 2925 2926 // We shouldn't fall into this case unless it's valid for other 2927 // reasons. 2928 if (From->isNullPointerConstant(Context, Expr::NPC_ValueDependentIsNull)) 2929 Kind = CK_NullToPointer; 2930 2931 return false; 2932 } 2933 2934 /// IsMemberPointerConversion - Determines whether the conversion of the 2935 /// expression From, which has the (possibly adjusted) type FromType, can be 2936 /// converted to the type ToType via a member pointer conversion (C++ 4.11). 2937 /// If so, returns true and places the converted type (that might differ from 2938 /// ToType in its cv-qualifiers at some level) into ConvertedType. 2939 bool Sema::IsMemberPointerConversion(Expr *From, QualType FromType, 2940 QualType ToType, 2941 bool InOverloadResolution, 2942 QualType &ConvertedType) { 2943 const MemberPointerType *ToTypePtr = ToType->getAs<MemberPointerType>(); 2944 if (!ToTypePtr) 2945 return false; 2946 2947 // A null pointer constant can be converted to a member pointer (C++ 4.11p1) 2948 if (From->isNullPointerConstant(Context, 2949 InOverloadResolution? Expr::NPC_ValueDependentIsNotNull 2950 : Expr::NPC_ValueDependentIsNull)) { 2951 ConvertedType = ToType; 2952 return true; 2953 } 2954 2955 // Otherwise, both types have to be member pointers. 2956 const MemberPointerType *FromTypePtr = FromType->getAs<MemberPointerType>(); 2957 if (!FromTypePtr) 2958 return false; 2959 2960 // A pointer to member of B can be converted to a pointer to member of D, 2961 // where D is derived from B (C++ 4.11p2). 2962 QualType FromClass(FromTypePtr->getClass(), 0); 2963 QualType ToClass(ToTypePtr->getClass(), 0); 2964 2965 if (!Context.hasSameUnqualifiedType(FromClass, ToClass) && 2966 IsDerivedFrom(From->getLocStart(), ToClass, FromClass)) { 2967 ConvertedType = Context.getMemberPointerType(FromTypePtr->getPointeeType(), 2968 ToClass.getTypePtr()); 2969 return true; 2970 } 2971 2972 return false; 2973 } 2974 2975 /// CheckMemberPointerConversion - Check the member pointer conversion from the 2976 /// expression From to the type ToType. This routine checks for ambiguous or 2977 /// virtual or inaccessible base-to-derived member pointer conversions 2978 /// for which IsMemberPointerConversion has already returned true. It returns 2979 /// true and produces a diagnostic if there was an error, or returns false 2980 /// otherwise. 2981 bool Sema::CheckMemberPointerConversion(Expr *From, QualType ToType, 2982 CastKind &Kind, 2983 CXXCastPath &BasePath, 2984 bool IgnoreBaseAccess) { 2985 QualType FromType = From->getType(); 2986 const MemberPointerType *FromPtrType = FromType->getAs<MemberPointerType>(); 2987 if (!FromPtrType) { 2988 // This must be a null pointer to member pointer conversion 2989 assert(From->isNullPointerConstant(Context, 2990 Expr::NPC_ValueDependentIsNull) && 2991 "Expr must be null pointer constant!"); 2992 Kind = CK_NullToMemberPointer; 2993 return false; 2994 } 2995 2996 const MemberPointerType *ToPtrType = ToType->getAs<MemberPointerType>(); 2997 assert(ToPtrType && "No member pointer cast has a target type " 2998 "that is not a member pointer."); 2999 3000 QualType FromClass = QualType(FromPtrType->getClass(), 0); 3001 QualType ToClass = QualType(ToPtrType->getClass(), 0); 3002 3003 // FIXME: What about dependent types? 3004 assert(FromClass->isRecordType() && "Pointer into non-class."); 3005 assert(ToClass->isRecordType() && "Pointer into non-class."); 3006 3007 CXXBasePaths Paths(/*FindAmbiguities=*/true, /*RecordPaths=*/true, 3008 /*DetectVirtual=*/true); 3009 bool DerivationOkay = 3010 IsDerivedFrom(From->getLocStart(), ToClass, FromClass, Paths); 3011 assert(DerivationOkay && 3012 "Should not have been called if derivation isn't OK."); 3013 (void)DerivationOkay; 3014 3015 if (Paths.isAmbiguous(Context.getCanonicalType(FromClass). 3016 getUnqualifiedType())) { 3017 std::string PathDisplayStr = getAmbiguousPathsDisplayString(Paths); 3018 Diag(From->getExprLoc(), diag::err_ambiguous_memptr_conv) 3019 << 0 << FromClass << ToClass << PathDisplayStr << From->getSourceRange(); 3020 return true; 3021 } 3022 3023 if (const RecordType *VBase = Paths.getDetectedVirtual()) { 3024 Diag(From->getExprLoc(), diag::err_memptr_conv_via_virtual) 3025 << FromClass << ToClass << QualType(VBase, 0) 3026 << From->getSourceRange(); 3027 return true; 3028 } 3029 3030 if (!IgnoreBaseAccess) 3031 CheckBaseClassAccess(From->getExprLoc(), FromClass, ToClass, 3032 Paths.front(), 3033 diag::err_downcast_from_inaccessible_base); 3034 3035 // Must be a base to derived member conversion. 3036 BuildBasePathArray(Paths, BasePath); 3037 Kind = CK_BaseToDerivedMemberPointer; 3038 return false; 3039 } 3040 3041 /// Determine whether the lifetime conversion between the two given 3042 /// qualifiers sets is nontrivial. 3043 static bool isNonTrivialObjCLifetimeConversion(Qualifiers FromQuals, 3044 Qualifiers ToQuals) { 3045 // Converting anything to const __unsafe_unretained is trivial. 3046 if (ToQuals.hasConst() && 3047 ToQuals.getObjCLifetime() == Qualifiers::OCL_ExplicitNone) 3048 return false; 3049 3050 return true; 3051 } 3052 3053 /// IsQualificationConversion - Determines whether the conversion from 3054 /// an rvalue of type FromType to ToType is a qualification conversion 3055 /// (C++ 4.4). 3056 /// 3057 /// \param ObjCLifetimeConversion Output parameter that will be set to indicate 3058 /// when the qualification conversion involves a change in the Objective-C 3059 /// object lifetime. 3060 bool 3061 Sema::IsQualificationConversion(QualType FromType, QualType ToType, 3062 bool CStyle, bool &ObjCLifetimeConversion) { 3063 FromType = Context.getCanonicalType(FromType); 3064 ToType = Context.getCanonicalType(ToType); 3065 ObjCLifetimeConversion = false; 3066 3067 // If FromType and ToType are the same type, this is not a 3068 // qualification conversion. 3069 if (FromType.getUnqualifiedType() == ToType.getUnqualifiedType()) 3070 return false; 3071 3072 // (C++ 4.4p4): 3073 // A conversion can add cv-qualifiers at levels other than the first 3074 // in multi-level pointers, subject to the following rules: [...] 3075 bool PreviousToQualsIncludeConst = true; 3076 bool UnwrappedAnyPointer = false; 3077 while (Context.UnwrapSimilarPointerTypes(FromType, ToType)) { 3078 // Within each iteration of the loop, we check the qualifiers to 3079 // determine if this still looks like a qualification 3080 // conversion. Then, if all is well, we unwrap one more level of 3081 // pointers or pointers-to-members and do it all again 3082 // until there are no more pointers or pointers-to-members left to 3083 // unwrap. 3084 UnwrappedAnyPointer = true; 3085 3086 Qualifiers FromQuals = FromType.getQualifiers(); 3087 Qualifiers ToQuals = ToType.getQualifiers(); 3088 3089 // Ignore __unaligned qualifier if this type is void. 3090 if (ToType.getUnqualifiedType()->isVoidType()) 3091 FromQuals.removeUnaligned(); 3092 3093 // Objective-C ARC: 3094 // Check Objective-C lifetime conversions. 3095 if (FromQuals.getObjCLifetime() != ToQuals.getObjCLifetime() && 3096 UnwrappedAnyPointer) { 3097 if (ToQuals.compatiblyIncludesObjCLifetime(FromQuals)) { 3098 if (isNonTrivialObjCLifetimeConversion(FromQuals, ToQuals)) 3099 ObjCLifetimeConversion = true; 3100 FromQuals.removeObjCLifetime(); 3101 ToQuals.removeObjCLifetime(); 3102 } else { 3103 // Qualification conversions cannot cast between different 3104 // Objective-C lifetime qualifiers. 3105 return false; 3106 } 3107 } 3108 3109 // Allow addition/removal of GC attributes but not changing GC attributes. 3110 if (FromQuals.getObjCGCAttr() != ToQuals.getObjCGCAttr() && 3111 (!FromQuals.hasObjCGCAttr() || !ToQuals.hasObjCGCAttr())) { 3112 FromQuals.removeObjCGCAttr(); 3113 ToQuals.removeObjCGCAttr(); 3114 } 3115 3116 // -- for every j > 0, if const is in cv 1,j then const is in cv 3117 // 2,j, and similarly for volatile. 3118 if (!CStyle && !ToQuals.compatiblyIncludes(FromQuals)) 3119 return false; 3120 3121 // -- if the cv 1,j and cv 2,j are different, then const is in 3122 // every cv for 0 < k < j. 3123 if (!CStyle && FromQuals.getCVRQualifiers() != ToQuals.getCVRQualifiers() 3124 && !PreviousToQualsIncludeConst) 3125 return false; 3126 3127 // Keep track of whether all prior cv-qualifiers in the "to" type 3128 // include const. 3129 PreviousToQualsIncludeConst 3130 = PreviousToQualsIncludeConst && ToQuals.hasConst(); 3131 } 3132 3133 // We are left with FromType and ToType being the pointee types 3134 // after unwrapping the original FromType and ToType the same number 3135 // of types. If we unwrapped any pointers, and if FromType and 3136 // ToType have the same unqualified type (since we checked 3137 // qualifiers above), then this is a qualification conversion. 3138 return UnwrappedAnyPointer && Context.hasSameUnqualifiedType(FromType,ToType); 3139 } 3140 3141 /// - Determine whether this is a conversion from a scalar type to an 3142 /// atomic type. 3143 /// 3144 /// If successful, updates \c SCS's second and third steps in the conversion 3145 /// sequence to finish the conversion. 3146 static bool tryAtomicConversion(Sema &S, Expr *From, QualType ToType, 3147 bool InOverloadResolution, 3148 StandardConversionSequence &SCS, 3149 bool CStyle) { 3150 const AtomicType *ToAtomic = ToType->getAs<AtomicType>(); 3151 if (!ToAtomic) 3152 return false; 3153 3154 StandardConversionSequence InnerSCS; 3155 if (!IsStandardConversion(S, From, ToAtomic->getValueType(), 3156 InOverloadResolution, InnerSCS, 3157 CStyle, /*AllowObjCWritebackConversion=*/false)) 3158 return false; 3159 3160 SCS.Second = InnerSCS.Second; 3161 SCS.setToType(1, InnerSCS.getToType(1)); 3162 SCS.Third = InnerSCS.Third; 3163 SCS.QualificationIncludesObjCLifetime 3164 = InnerSCS.QualificationIncludesObjCLifetime; 3165 SCS.setToType(2, InnerSCS.getToType(2)); 3166 return true; 3167 } 3168 3169 static bool isFirstArgumentCompatibleWithType(ASTContext &Context, 3170 CXXConstructorDecl *Constructor, 3171 QualType Type) { 3172 const FunctionProtoType *CtorType = 3173 Constructor->getType()->getAs<FunctionProtoType>(); 3174 if (CtorType->getNumParams() > 0) { 3175 QualType FirstArg = CtorType->getParamType(0); 3176 if (Context.hasSameUnqualifiedType(Type, FirstArg.getNonReferenceType())) 3177 return true; 3178 } 3179 return false; 3180 } 3181 3182 static OverloadingResult 3183 IsInitializerListConstructorConversion(Sema &S, Expr *From, QualType ToType, 3184 CXXRecordDecl *To, 3185 UserDefinedConversionSequence &User, 3186 OverloadCandidateSet &CandidateSet, 3187 bool AllowExplicit) { 3188 CandidateSet.clear(OverloadCandidateSet::CSK_InitByUserDefinedConversion); 3189 for (auto *D : S.LookupConstructors(To)) { 3190 auto Info = getConstructorInfo(D); 3191 if (!Info) 3192 continue; 3193 3194 bool Usable = !Info.Constructor->isInvalidDecl() && 3195 S.isInitListConstructor(Info.Constructor) && 3196 (AllowExplicit || !Info.Constructor->isExplicit()); 3197 if (Usable) { 3198 // If the first argument is (a reference to) the target type, 3199 // suppress conversions. 3200 bool SuppressUserConversions = isFirstArgumentCompatibleWithType( 3201 S.Context, Info.Constructor, ToType); 3202 if (Info.ConstructorTmpl) 3203 S.AddTemplateOverloadCandidate(Info.ConstructorTmpl, Info.FoundDecl, 3204 /*ExplicitArgs*/ nullptr, From, 3205 CandidateSet, SuppressUserConversions); 3206 else 3207 S.AddOverloadCandidate(Info.Constructor, Info.FoundDecl, From, 3208 CandidateSet, SuppressUserConversions); 3209 } 3210 } 3211 3212 bool HadMultipleCandidates = (CandidateSet.size() > 1); 3213 3214 OverloadCandidateSet::iterator Best; 3215 switch (auto Result = 3216 CandidateSet.BestViableFunction(S, From->getLocStart(), 3217 Best)) { 3218 case OR_Deleted: 3219 case OR_Success: { 3220 // Record the standard conversion we used and the conversion function. 3221 CXXConstructorDecl *Constructor = cast<CXXConstructorDecl>(Best->Function); 3222 QualType ThisType = Constructor->getThisType(S.Context); 3223 // Initializer lists don't have conversions as such. 3224 User.Before.setAsIdentityConversion(); 3225 User.HadMultipleCandidates = HadMultipleCandidates; 3226 User.ConversionFunction = Constructor; 3227 User.FoundConversionFunction = Best->FoundDecl; 3228 User.After.setAsIdentityConversion(); 3229 User.After.setFromType(ThisType->getAs<PointerType>()->getPointeeType()); 3230 User.After.setAllToTypes(ToType); 3231 return Result; 3232 } 3233 3234 case OR_No_Viable_Function: 3235 return OR_No_Viable_Function; 3236 case OR_Ambiguous: 3237 return OR_Ambiguous; 3238 } 3239 3240 llvm_unreachable("Invalid OverloadResult!"); 3241 } 3242 3243 /// Determines whether there is a user-defined conversion sequence 3244 /// (C++ [over.ics.user]) that converts expression From to the type 3245 /// ToType. If such a conversion exists, User will contain the 3246 /// user-defined conversion sequence that performs such a conversion 3247 /// and this routine will return true. Otherwise, this routine returns 3248 /// false and User is unspecified. 3249 /// 3250 /// \param AllowExplicit true if the conversion should consider C++0x 3251 /// "explicit" conversion functions as well as non-explicit conversion 3252 /// functions (C++0x [class.conv.fct]p2). 3253 /// 3254 /// \param AllowObjCConversionOnExplicit true if the conversion should 3255 /// allow an extra Objective-C pointer conversion on uses of explicit 3256 /// constructors. Requires \c AllowExplicit to also be set. 3257 static OverloadingResult 3258 IsUserDefinedConversion(Sema &S, Expr *From, QualType ToType, 3259 UserDefinedConversionSequence &User, 3260 OverloadCandidateSet &CandidateSet, 3261 bool AllowExplicit, 3262 bool AllowObjCConversionOnExplicit) { 3263 assert(AllowExplicit || !AllowObjCConversionOnExplicit); 3264 CandidateSet.clear(OverloadCandidateSet::CSK_InitByUserDefinedConversion); 3265 3266 // Whether we will only visit constructors. 3267 bool ConstructorsOnly = false; 3268 3269 // If the type we are conversion to is a class type, enumerate its 3270 // constructors. 3271 if (const RecordType *ToRecordType = ToType->getAs<RecordType>()) { 3272 // C++ [over.match.ctor]p1: 3273 // When objects of class type are direct-initialized (8.5), or 3274 // copy-initialized from an expression of the same or a 3275 // derived class type (8.5), overload resolution selects the 3276 // constructor. [...] For copy-initialization, the candidate 3277 // functions are all the converting constructors (12.3.1) of 3278 // that class. The argument list is the expression-list within 3279 // the parentheses of the initializer. 3280 if (S.Context.hasSameUnqualifiedType(ToType, From->getType()) || 3281 (From->getType()->getAs<RecordType>() && 3282 S.IsDerivedFrom(From->getLocStart(), From->getType(), ToType))) 3283 ConstructorsOnly = true; 3284 3285 if (!S.isCompleteType(From->getExprLoc(), ToType)) { 3286 // We're not going to find any constructors. 3287 } else if (CXXRecordDecl *ToRecordDecl 3288 = dyn_cast<CXXRecordDecl>(ToRecordType->getDecl())) { 3289 3290 Expr **Args = &From; 3291 unsigned NumArgs = 1; 3292 bool ListInitializing = false; 3293 if (InitListExpr *InitList = dyn_cast<InitListExpr>(From)) { 3294 // But first, see if there is an init-list-constructor that will work. 3295 OverloadingResult Result = IsInitializerListConstructorConversion( 3296 S, From, ToType, ToRecordDecl, User, CandidateSet, AllowExplicit); 3297 if (Result != OR_No_Viable_Function) 3298 return Result; 3299 // Never mind. 3300 CandidateSet.clear( 3301 OverloadCandidateSet::CSK_InitByUserDefinedConversion); 3302 3303 // If we're list-initializing, we pass the individual elements as 3304 // arguments, not the entire list. 3305 Args = InitList->getInits(); 3306 NumArgs = InitList->getNumInits(); 3307 ListInitializing = true; 3308 } 3309 3310 for (auto *D : S.LookupConstructors(ToRecordDecl)) { 3311 auto Info = getConstructorInfo(D); 3312 if (!Info) 3313 continue; 3314 3315 bool Usable = !Info.Constructor->isInvalidDecl(); 3316 if (ListInitializing) 3317 Usable = Usable && (AllowExplicit || !Info.Constructor->isExplicit()); 3318 else 3319 Usable = Usable && 3320 Info.Constructor->isConvertingConstructor(AllowExplicit); 3321 if (Usable) { 3322 bool SuppressUserConversions = !ConstructorsOnly; 3323 if (SuppressUserConversions && ListInitializing) { 3324 SuppressUserConversions = false; 3325 if (NumArgs == 1) { 3326 // If the first argument is (a reference to) the target type, 3327 // suppress conversions. 3328 SuppressUserConversions = isFirstArgumentCompatibleWithType( 3329 S.Context, Info.Constructor, ToType); 3330 } 3331 } 3332 if (Info.ConstructorTmpl) 3333 S.AddTemplateOverloadCandidate( 3334 Info.ConstructorTmpl, Info.FoundDecl, 3335 /*ExplicitArgs*/ nullptr, llvm::makeArrayRef(Args, NumArgs), 3336 CandidateSet, SuppressUserConversions); 3337 else 3338 // Allow one user-defined conversion when user specifies a 3339 // From->ToType conversion via an static cast (c-style, etc). 3340 S.AddOverloadCandidate(Info.Constructor, Info.FoundDecl, 3341 llvm::makeArrayRef(Args, NumArgs), 3342 CandidateSet, SuppressUserConversions); 3343 } 3344 } 3345 } 3346 } 3347 3348 // Enumerate conversion functions, if we're allowed to. 3349 if (ConstructorsOnly || isa<InitListExpr>(From)) { 3350 } else if (!S.isCompleteType(From->getLocStart(), From->getType())) { 3351 // No conversion functions from incomplete types. 3352 } else if (const RecordType *FromRecordType 3353 = From->getType()->getAs<RecordType>()) { 3354 if (CXXRecordDecl *FromRecordDecl 3355 = dyn_cast<CXXRecordDecl>(FromRecordType->getDecl())) { 3356 // Add all of the conversion functions as candidates. 3357 const auto &Conversions = FromRecordDecl->getVisibleConversionFunctions(); 3358 for (auto I = Conversions.begin(), E = Conversions.end(); I != E; ++I) { 3359 DeclAccessPair FoundDecl = I.getPair(); 3360 NamedDecl *D = FoundDecl.getDecl(); 3361 CXXRecordDecl *ActingContext = cast<CXXRecordDecl>(D->getDeclContext()); 3362 if (isa<UsingShadowDecl>(D)) 3363 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 3364 3365 CXXConversionDecl *Conv; 3366 FunctionTemplateDecl *ConvTemplate; 3367 if ((ConvTemplate = dyn_cast<FunctionTemplateDecl>(D))) 3368 Conv = cast<CXXConversionDecl>(ConvTemplate->getTemplatedDecl()); 3369 else 3370 Conv = cast<CXXConversionDecl>(D); 3371 3372 if (AllowExplicit || !Conv->isExplicit()) { 3373 if (ConvTemplate) 3374 S.AddTemplateConversionCandidate(ConvTemplate, FoundDecl, 3375 ActingContext, From, ToType, 3376 CandidateSet, 3377 AllowObjCConversionOnExplicit); 3378 else 3379 S.AddConversionCandidate(Conv, FoundDecl, ActingContext, 3380 From, ToType, CandidateSet, 3381 AllowObjCConversionOnExplicit); 3382 } 3383 } 3384 } 3385 } 3386 3387 bool HadMultipleCandidates = (CandidateSet.size() > 1); 3388 3389 OverloadCandidateSet::iterator Best; 3390 switch (auto Result = CandidateSet.BestViableFunction(S, From->getLocStart(), 3391 Best)) { 3392 case OR_Success: 3393 case OR_Deleted: 3394 // Record the standard conversion we used and the conversion function. 3395 if (CXXConstructorDecl *Constructor 3396 = dyn_cast<CXXConstructorDecl>(Best->Function)) { 3397 // C++ [over.ics.user]p1: 3398 // If the user-defined conversion is specified by a 3399 // constructor (12.3.1), the initial standard conversion 3400 // sequence converts the source type to the type required by 3401 // the argument of the constructor. 3402 // 3403 QualType ThisType = Constructor->getThisType(S.Context); 3404 if (isa<InitListExpr>(From)) { 3405 // Initializer lists don't have conversions as such. 3406 User.Before.setAsIdentityConversion(); 3407 } else { 3408 if (Best->Conversions[0].isEllipsis()) 3409 User.EllipsisConversion = true; 3410 else { 3411 User.Before = Best->Conversions[0].Standard; 3412 User.EllipsisConversion = false; 3413 } 3414 } 3415 User.HadMultipleCandidates = HadMultipleCandidates; 3416 User.ConversionFunction = Constructor; 3417 User.FoundConversionFunction = Best->FoundDecl; 3418 User.After.setAsIdentityConversion(); 3419 User.After.setFromType(ThisType->getAs<PointerType>()->getPointeeType()); 3420 User.After.setAllToTypes(ToType); 3421 return Result; 3422 } 3423 if (CXXConversionDecl *Conversion 3424 = dyn_cast<CXXConversionDecl>(Best->Function)) { 3425 // C++ [over.ics.user]p1: 3426 // 3427 // [...] If the user-defined conversion is specified by a 3428 // conversion function (12.3.2), the initial standard 3429 // conversion sequence converts the source type to the 3430 // implicit object parameter of the conversion function. 3431 User.Before = Best->Conversions[0].Standard; 3432 User.HadMultipleCandidates = HadMultipleCandidates; 3433 User.ConversionFunction = Conversion; 3434 User.FoundConversionFunction = Best->FoundDecl; 3435 User.EllipsisConversion = false; 3436 3437 // C++ [over.ics.user]p2: 3438 // The second standard conversion sequence converts the 3439 // result of the user-defined conversion to the target type 3440 // for the sequence. Since an implicit conversion sequence 3441 // is an initialization, the special rules for 3442 // initialization by user-defined conversion apply when 3443 // selecting the best user-defined conversion for a 3444 // user-defined conversion sequence (see 13.3.3 and 3445 // 13.3.3.1). 3446 User.After = Best->FinalConversion; 3447 return Result; 3448 } 3449 llvm_unreachable("Not a constructor or conversion function?"); 3450 3451 case OR_No_Viable_Function: 3452 return OR_No_Viable_Function; 3453 3454 case OR_Ambiguous: 3455 return OR_Ambiguous; 3456 } 3457 3458 llvm_unreachable("Invalid OverloadResult!"); 3459 } 3460 3461 bool 3462 Sema::DiagnoseMultipleUserDefinedConversion(Expr *From, QualType ToType) { 3463 ImplicitConversionSequence ICS; 3464 OverloadCandidateSet CandidateSet(From->getExprLoc(), 3465 OverloadCandidateSet::CSK_Normal); 3466 OverloadingResult OvResult = 3467 IsUserDefinedConversion(*this, From, ToType, ICS.UserDefined, 3468 CandidateSet, false, false); 3469 if (OvResult == OR_Ambiguous) 3470 Diag(From->getLocStart(), diag::err_typecheck_ambiguous_condition) 3471 << From->getType() << ToType << From->getSourceRange(); 3472 else if (OvResult == OR_No_Viable_Function && !CandidateSet.empty()) { 3473 if (!RequireCompleteType(From->getLocStart(), ToType, 3474 diag::err_typecheck_nonviable_condition_incomplete, 3475 From->getType(), From->getSourceRange())) 3476 Diag(From->getLocStart(), diag::err_typecheck_nonviable_condition) 3477 << false << From->getType() << From->getSourceRange() << ToType; 3478 } else 3479 return false; 3480 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, From); 3481 return true; 3482 } 3483 3484 /// Compare the user-defined conversion functions or constructors 3485 /// of two user-defined conversion sequences to determine whether any ordering 3486 /// is possible. 3487 static ImplicitConversionSequence::CompareKind 3488 compareConversionFunctions(Sema &S, FunctionDecl *Function1, 3489 FunctionDecl *Function2) { 3490 if (!S.getLangOpts().ObjC1 || !S.getLangOpts().CPlusPlus11) 3491 return ImplicitConversionSequence::Indistinguishable; 3492 3493 // Objective-C++: 3494 // If both conversion functions are implicitly-declared conversions from 3495 // a lambda closure type to a function pointer and a block pointer, 3496 // respectively, always prefer the conversion to a function pointer, 3497 // because the function pointer is more lightweight and is more likely 3498 // to keep code working. 3499 CXXConversionDecl *Conv1 = dyn_cast_or_null<CXXConversionDecl>(Function1); 3500 if (!Conv1) 3501 return ImplicitConversionSequence::Indistinguishable; 3502 3503 CXXConversionDecl *Conv2 = dyn_cast<CXXConversionDecl>(Function2); 3504 if (!Conv2) 3505 return ImplicitConversionSequence::Indistinguishable; 3506 3507 if (Conv1->getParent()->isLambda() && Conv2->getParent()->isLambda()) { 3508 bool Block1 = Conv1->getConversionType()->isBlockPointerType(); 3509 bool Block2 = Conv2->getConversionType()->isBlockPointerType(); 3510 if (Block1 != Block2) 3511 return Block1 ? ImplicitConversionSequence::Worse 3512 : ImplicitConversionSequence::Better; 3513 } 3514 3515 return ImplicitConversionSequence::Indistinguishable; 3516 } 3517 3518 static bool hasDeprecatedStringLiteralToCharPtrConversion( 3519 const ImplicitConversionSequence &ICS) { 3520 return (ICS.isStandard() && ICS.Standard.DeprecatedStringLiteralToCharPtr) || 3521 (ICS.isUserDefined() && 3522 ICS.UserDefined.Before.DeprecatedStringLiteralToCharPtr); 3523 } 3524 3525 /// CompareImplicitConversionSequences - Compare two implicit 3526 /// conversion sequences to determine whether one is better than the 3527 /// other or if they are indistinguishable (C++ 13.3.3.2). 3528 static ImplicitConversionSequence::CompareKind 3529 CompareImplicitConversionSequences(Sema &S, SourceLocation Loc, 3530 const ImplicitConversionSequence& ICS1, 3531 const ImplicitConversionSequence& ICS2) 3532 { 3533 // (C++ 13.3.3.2p2): When comparing the basic forms of implicit 3534 // conversion sequences (as defined in 13.3.3.1) 3535 // -- a standard conversion sequence (13.3.3.1.1) is a better 3536 // conversion sequence than a user-defined conversion sequence or 3537 // an ellipsis conversion sequence, and 3538 // -- a user-defined conversion sequence (13.3.3.1.2) is a better 3539 // conversion sequence than an ellipsis conversion sequence 3540 // (13.3.3.1.3). 3541 // 3542 // C++0x [over.best.ics]p10: 3543 // For the purpose of ranking implicit conversion sequences as 3544 // described in 13.3.3.2, the ambiguous conversion sequence is 3545 // treated as a user-defined sequence that is indistinguishable 3546 // from any other user-defined conversion sequence. 3547 3548 // String literal to 'char *' conversion has been deprecated in C++03. It has 3549 // been removed from C++11. We still accept this conversion, if it happens at 3550 // the best viable function. Otherwise, this conversion is considered worse 3551 // than ellipsis conversion. Consider this as an extension; this is not in the 3552 // standard. For example: 3553 // 3554 // int &f(...); // #1 3555 // void f(char*); // #2 3556 // void g() { int &r = f("foo"); } 3557 // 3558 // In C++03, we pick #2 as the best viable function. 3559 // In C++11, we pick #1 as the best viable function, because ellipsis 3560 // conversion is better than string-literal to char* conversion (since there 3561 // is no such conversion in C++11). If there was no #1 at all or #1 couldn't 3562 // convert arguments, #2 would be the best viable function in C++11. 3563 // If the best viable function has this conversion, a warning will be issued 3564 // in C++03, or an ExtWarn (+SFINAE failure) will be issued in C++11. 3565 3566 if (S.getLangOpts().CPlusPlus11 && !S.getLangOpts().WritableStrings && 3567 hasDeprecatedStringLiteralToCharPtrConversion(ICS1) != 3568 hasDeprecatedStringLiteralToCharPtrConversion(ICS2)) 3569 return hasDeprecatedStringLiteralToCharPtrConversion(ICS1) 3570 ? ImplicitConversionSequence::Worse 3571 : ImplicitConversionSequence::Better; 3572 3573 if (ICS1.getKindRank() < ICS2.getKindRank()) 3574 return ImplicitConversionSequence::Better; 3575 if (ICS2.getKindRank() < ICS1.getKindRank()) 3576 return ImplicitConversionSequence::Worse; 3577 3578 // The following checks require both conversion sequences to be of 3579 // the same kind. 3580 if (ICS1.getKind() != ICS2.getKind()) 3581 return ImplicitConversionSequence::Indistinguishable; 3582 3583 ImplicitConversionSequence::CompareKind Result = 3584 ImplicitConversionSequence::Indistinguishable; 3585 3586 // Two implicit conversion sequences of the same form are 3587 // indistinguishable conversion sequences unless one of the 3588 // following rules apply: (C++ 13.3.3.2p3): 3589 3590 // List-initialization sequence L1 is a better conversion sequence than 3591 // list-initialization sequence L2 if: 3592 // - L1 converts to std::initializer_list<X> for some X and L2 does not, or, 3593 // if not that, 3594 // - L1 converts to type "array of N1 T", L2 converts to type "array of N2 T", 3595 // and N1 is smaller than N2., 3596 // even if one of the other rules in this paragraph would otherwise apply. 3597 if (!ICS1.isBad()) { 3598 if (ICS1.isStdInitializerListElement() && 3599 !ICS2.isStdInitializerListElement()) 3600 return ImplicitConversionSequence::Better; 3601 if (!ICS1.isStdInitializerListElement() && 3602 ICS2.isStdInitializerListElement()) 3603 return ImplicitConversionSequence::Worse; 3604 } 3605 3606 if (ICS1.isStandard()) 3607 // Standard conversion sequence S1 is a better conversion sequence than 3608 // standard conversion sequence S2 if [...] 3609 Result = CompareStandardConversionSequences(S, Loc, 3610 ICS1.Standard, ICS2.Standard); 3611 else if (ICS1.isUserDefined()) { 3612 // User-defined conversion sequence U1 is a better conversion 3613 // sequence than another user-defined conversion sequence U2 if 3614 // they contain the same user-defined conversion function or 3615 // constructor and if the second standard conversion sequence of 3616 // U1 is better than the second standard conversion sequence of 3617 // U2 (C++ 13.3.3.2p3). 3618 if (ICS1.UserDefined.ConversionFunction == 3619 ICS2.UserDefined.ConversionFunction) 3620 Result = CompareStandardConversionSequences(S, Loc, 3621 ICS1.UserDefined.After, 3622 ICS2.UserDefined.After); 3623 else 3624 Result = compareConversionFunctions(S, 3625 ICS1.UserDefined.ConversionFunction, 3626 ICS2.UserDefined.ConversionFunction); 3627 } 3628 3629 return Result; 3630 } 3631 3632 static bool hasSimilarType(ASTContext &Context, QualType T1, QualType T2) { 3633 while (Context.UnwrapSimilarPointerTypes(T1, T2)) { 3634 Qualifiers Quals; 3635 T1 = Context.getUnqualifiedArrayType(T1, Quals); 3636 T2 = Context.getUnqualifiedArrayType(T2, Quals); 3637 } 3638 3639 return Context.hasSameUnqualifiedType(T1, T2); 3640 } 3641 3642 // Per 13.3.3.2p3, compare the given standard conversion sequences to 3643 // determine if one is a proper subset of the other. 3644 static ImplicitConversionSequence::CompareKind 3645 compareStandardConversionSubsets(ASTContext &Context, 3646 const StandardConversionSequence& SCS1, 3647 const StandardConversionSequence& SCS2) { 3648 ImplicitConversionSequence::CompareKind Result 3649 = ImplicitConversionSequence::Indistinguishable; 3650 3651 // the identity conversion sequence is considered to be a subsequence of 3652 // any non-identity conversion sequence 3653 if (SCS1.isIdentityConversion() && !SCS2.isIdentityConversion()) 3654 return ImplicitConversionSequence::Better; 3655 else if (!SCS1.isIdentityConversion() && SCS2.isIdentityConversion()) 3656 return ImplicitConversionSequence::Worse; 3657 3658 if (SCS1.Second != SCS2.Second) { 3659 if (SCS1.Second == ICK_Identity) 3660 Result = ImplicitConversionSequence::Better; 3661 else if (SCS2.Second == ICK_Identity) 3662 Result = ImplicitConversionSequence::Worse; 3663 else 3664 return ImplicitConversionSequence::Indistinguishable; 3665 } else if (!hasSimilarType(Context, SCS1.getToType(1), SCS2.getToType(1))) 3666 return ImplicitConversionSequence::Indistinguishable; 3667 3668 if (SCS1.Third == SCS2.Third) { 3669 return Context.hasSameType(SCS1.getToType(2), SCS2.getToType(2))? Result 3670 : ImplicitConversionSequence::Indistinguishable; 3671 } 3672 3673 if (SCS1.Third == ICK_Identity) 3674 return Result == ImplicitConversionSequence::Worse 3675 ? ImplicitConversionSequence::Indistinguishable 3676 : ImplicitConversionSequence::Better; 3677 3678 if (SCS2.Third == ICK_Identity) 3679 return Result == ImplicitConversionSequence::Better 3680 ? ImplicitConversionSequence::Indistinguishable 3681 : ImplicitConversionSequence::Worse; 3682 3683 return ImplicitConversionSequence::Indistinguishable; 3684 } 3685 3686 /// Determine whether one of the given reference bindings is better 3687 /// than the other based on what kind of bindings they are. 3688 static bool 3689 isBetterReferenceBindingKind(const StandardConversionSequence &SCS1, 3690 const StandardConversionSequence &SCS2) { 3691 // C++0x [over.ics.rank]p3b4: 3692 // -- S1 and S2 are reference bindings (8.5.3) and neither refers to an 3693 // implicit object parameter of a non-static member function declared 3694 // without a ref-qualifier, and *either* S1 binds an rvalue reference 3695 // to an rvalue and S2 binds an lvalue reference *or S1 binds an 3696 // lvalue reference to a function lvalue and S2 binds an rvalue 3697 // reference*. 3698 // 3699 // FIXME: Rvalue references. We're going rogue with the above edits, 3700 // because the semantics in the current C++0x working paper (N3225 at the 3701 // time of this writing) break the standard definition of std::forward 3702 // and std::reference_wrapper when dealing with references to functions. 3703 // Proposed wording changes submitted to CWG for consideration. 3704 if (SCS1.BindsImplicitObjectArgumentWithoutRefQualifier || 3705 SCS2.BindsImplicitObjectArgumentWithoutRefQualifier) 3706 return false; 3707 3708 return (!SCS1.IsLvalueReference && SCS1.BindsToRvalue && 3709 SCS2.IsLvalueReference) || 3710 (SCS1.IsLvalueReference && SCS1.BindsToFunctionLvalue && 3711 !SCS2.IsLvalueReference && SCS2.BindsToFunctionLvalue); 3712 } 3713 3714 /// CompareStandardConversionSequences - Compare two standard 3715 /// conversion sequences to determine whether one is better than the 3716 /// other or if they are indistinguishable (C++ 13.3.3.2p3). 3717 static ImplicitConversionSequence::CompareKind 3718 CompareStandardConversionSequences(Sema &S, SourceLocation Loc, 3719 const StandardConversionSequence& SCS1, 3720 const StandardConversionSequence& SCS2) 3721 { 3722 // Standard conversion sequence S1 is a better conversion sequence 3723 // than standard conversion sequence S2 if (C++ 13.3.3.2p3): 3724 3725 // -- S1 is a proper subsequence of S2 (comparing the conversion 3726 // sequences in the canonical form defined by 13.3.3.1.1, 3727 // excluding any Lvalue Transformation; the identity conversion 3728 // sequence is considered to be a subsequence of any 3729 // non-identity conversion sequence) or, if not that, 3730 if (ImplicitConversionSequence::CompareKind CK 3731 = compareStandardConversionSubsets(S.Context, SCS1, SCS2)) 3732 return CK; 3733 3734 // -- the rank of S1 is better than the rank of S2 (by the rules 3735 // defined below), or, if not that, 3736 ImplicitConversionRank Rank1 = SCS1.getRank(); 3737 ImplicitConversionRank Rank2 = SCS2.getRank(); 3738 if (Rank1 < Rank2) 3739 return ImplicitConversionSequence::Better; 3740 else if (Rank2 < Rank1) 3741 return ImplicitConversionSequence::Worse; 3742 3743 // (C++ 13.3.3.2p4): Two conversion sequences with the same rank 3744 // are indistinguishable unless one of the following rules 3745 // applies: 3746 3747 // A conversion that is not a conversion of a pointer, or 3748 // pointer to member, to bool is better than another conversion 3749 // that is such a conversion. 3750 if (SCS1.isPointerConversionToBool() != SCS2.isPointerConversionToBool()) 3751 return SCS2.isPointerConversionToBool() 3752 ? ImplicitConversionSequence::Better 3753 : ImplicitConversionSequence::Worse; 3754 3755 // C++ [over.ics.rank]p4b2: 3756 // 3757 // If class B is derived directly or indirectly from class A, 3758 // conversion of B* to A* is better than conversion of B* to 3759 // void*, and conversion of A* to void* is better than conversion 3760 // of B* to void*. 3761 bool SCS1ConvertsToVoid 3762 = SCS1.isPointerConversionToVoidPointer(S.Context); 3763 bool SCS2ConvertsToVoid 3764 = SCS2.isPointerConversionToVoidPointer(S.Context); 3765 if (SCS1ConvertsToVoid != SCS2ConvertsToVoid) { 3766 // Exactly one of the conversion sequences is a conversion to 3767 // a void pointer; it's the worse conversion. 3768 return SCS2ConvertsToVoid ? ImplicitConversionSequence::Better 3769 : ImplicitConversionSequence::Worse; 3770 } else if (!SCS1ConvertsToVoid && !SCS2ConvertsToVoid) { 3771 // Neither conversion sequence converts to a void pointer; compare 3772 // their derived-to-base conversions. 3773 if (ImplicitConversionSequence::CompareKind DerivedCK 3774 = CompareDerivedToBaseConversions(S, Loc, SCS1, SCS2)) 3775 return DerivedCK; 3776 } else if (SCS1ConvertsToVoid && SCS2ConvertsToVoid && 3777 !S.Context.hasSameType(SCS1.getFromType(), SCS2.getFromType())) { 3778 // Both conversion sequences are conversions to void 3779 // pointers. Compare the source types to determine if there's an 3780 // inheritance relationship in their sources. 3781 QualType FromType1 = SCS1.getFromType(); 3782 QualType FromType2 = SCS2.getFromType(); 3783 3784 // Adjust the types we're converting from via the array-to-pointer 3785 // conversion, if we need to. 3786 if (SCS1.First == ICK_Array_To_Pointer) 3787 FromType1 = S.Context.getArrayDecayedType(FromType1); 3788 if (SCS2.First == ICK_Array_To_Pointer) 3789 FromType2 = S.Context.getArrayDecayedType(FromType2); 3790 3791 QualType FromPointee1 = FromType1->getPointeeType().getUnqualifiedType(); 3792 QualType FromPointee2 = FromType2->getPointeeType().getUnqualifiedType(); 3793 3794 if (S.IsDerivedFrom(Loc, FromPointee2, FromPointee1)) 3795 return ImplicitConversionSequence::Better; 3796 else if (S.IsDerivedFrom(Loc, FromPointee1, FromPointee2)) 3797 return ImplicitConversionSequence::Worse; 3798 3799 // Objective-C++: If one interface is more specific than the 3800 // other, it is the better one. 3801 const ObjCObjectPointerType* FromObjCPtr1 3802 = FromType1->getAs<ObjCObjectPointerType>(); 3803 const ObjCObjectPointerType* FromObjCPtr2 3804 = FromType2->getAs<ObjCObjectPointerType>(); 3805 if (FromObjCPtr1 && FromObjCPtr2) { 3806 bool AssignLeft = S.Context.canAssignObjCInterfaces(FromObjCPtr1, 3807 FromObjCPtr2); 3808 bool AssignRight = S.Context.canAssignObjCInterfaces(FromObjCPtr2, 3809 FromObjCPtr1); 3810 if (AssignLeft != AssignRight) { 3811 return AssignLeft? ImplicitConversionSequence::Better 3812 : ImplicitConversionSequence::Worse; 3813 } 3814 } 3815 } 3816 3817 // Compare based on qualification conversions (C++ 13.3.3.2p3, 3818 // bullet 3). 3819 if (ImplicitConversionSequence::CompareKind QualCK 3820 = CompareQualificationConversions(S, SCS1, SCS2)) 3821 return QualCK; 3822 3823 if (SCS1.ReferenceBinding && SCS2.ReferenceBinding) { 3824 // Check for a better reference binding based on the kind of bindings. 3825 if (isBetterReferenceBindingKind(SCS1, SCS2)) 3826 return ImplicitConversionSequence::Better; 3827 else if (isBetterReferenceBindingKind(SCS2, SCS1)) 3828 return ImplicitConversionSequence::Worse; 3829 3830 // C++ [over.ics.rank]p3b4: 3831 // -- S1 and S2 are reference bindings (8.5.3), and the types to 3832 // which the references refer are the same type except for 3833 // top-level cv-qualifiers, and the type to which the reference 3834 // initialized by S2 refers is more cv-qualified than the type 3835 // to which the reference initialized by S1 refers. 3836 QualType T1 = SCS1.getToType(2); 3837 QualType T2 = SCS2.getToType(2); 3838 T1 = S.Context.getCanonicalType(T1); 3839 T2 = S.Context.getCanonicalType(T2); 3840 Qualifiers T1Quals, T2Quals; 3841 QualType UnqualT1 = S.Context.getUnqualifiedArrayType(T1, T1Quals); 3842 QualType UnqualT2 = S.Context.getUnqualifiedArrayType(T2, T2Quals); 3843 if (UnqualT1 == UnqualT2) { 3844 // Objective-C++ ARC: If the references refer to objects with different 3845 // lifetimes, prefer bindings that don't change lifetime. 3846 if (SCS1.ObjCLifetimeConversionBinding != 3847 SCS2.ObjCLifetimeConversionBinding) { 3848 return SCS1.ObjCLifetimeConversionBinding 3849 ? ImplicitConversionSequence::Worse 3850 : ImplicitConversionSequence::Better; 3851 } 3852 3853 // If the type is an array type, promote the element qualifiers to the 3854 // type for comparison. 3855 if (isa<ArrayType>(T1) && T1Quals) 3856 T1 = S.Context.getQualifiedType(UnqualT1, T1Quals); 3857 if (isa<ArrayType>(T2) && T2Quals) 3858 T2 = S.Context.getQualifiedType(UnqualT2, T2Quals); 3859 if (T2.isMoreQualifiedThan(T1)) 3860 return ImplicitConversionSequence::Better; 3861 else if (T1.isMoreQualifiedThan(T2)) 3862 return ImplicitConversionSequence::Worse; 3863 } 3864 } 3865 3866 // In Microsoft mode, prefer an integral conversion to a 3867 // floating-to-integral conversion if the integral conversion 3868 // is between types of the same size. 3869 // For example: 3870 // void f(float); 3871 // void f(int); 3872 // int main { 3873 // long a; 3874 // f(a); 3875 // } 3876 // Here, MSVC will call f(int) instead of generating a compile error 3877 // as clang will do in standard mode. 3878 if (S.getLangOpts().MSVCCompat && SCS1.Second == ICK_Integral_Conversion && 3879 SCS2.Second == ICK_Floating_Integral && 3880 S.Context.getTypeSize(SCS1.getFromType()) == 3881 S.Context.getTypeSize(SCS1.getToType(2))) 3882 return ImplicitConversionSequence::Better; 3883 3884 return ImplicitConversionSequence::Indistinguishable; 3885 } 3886 3887 /// CompareQualificationConversions - Compares two standard conversion 3888 /// sequences to determine whether they can be ranked based on their 3889 /// qualification conversions (C++ 13.3.3.2p3 bullet 3). 3890 static ImplicitConversionSequence::CompareKind 3891 CompareQualificationConversions(Sema &S, 3892 const StandardConversionSequence& SCS1, 3893 const StandardConversionSequence& SCS2) { 3894 // C++ 13.3.3.2p3: 3895 // -- S1 and S2 differ only in their qualification conversion and 3896 // yield similar types T1 and T2 (C++ 4.4), respectively, and the 3897 // cv-qualification signature of type T1 is a proper subset of 3898 // the cv-qualification signature of type T2, and S1 is not the 3899 // deprecated string literal array-to-pointer conversion (4.2). 3900 if (SCS1.First != SCS2.First || SCS1.Second != SCS2.Second || 3901 SCS1.Third != SCS2.Third || SCS1.Third != ICK_Qualification) 3902 return ImplicitConversionSequence::Indistinguishable; 3903 3904 // FIXME: the example in the standard doesn't use a qualification 3905 // conversion (!) 3906 QualType T1 = SCS1.getToType(2); 3907 QualType T2 = SCS2.getToType(2); 3908 T1 = S.Context.getCanonicalType(T1); 3909 T2 = S.Context.getCanonicalType(T2); 3910 Qualifiers T1Quals, T2Quals; 3911 QualType UnqualT1 = S.Context.getUnqualifiedArrayType(T1, T1Quals); 3912 QualType UnqualT2 = S.Context.getUnqualifiedArrayType(T2, T2Quals); 3913 3914 // If the types are the same, we won't learn anything by unwrapped 3915 // them. 3916 if (UnqualT1 == UnqualT2) 3917 return ImplicitConversionSequence::Indistinguishable; 3918 3919 // If the type is an array type, promote the element qualifiers to the type 3920 // for comparison. 3921 if (isa<ArrayType>(T1) && T1Quals) 3922 T1 = S.Context.getQualifiedType(UnqualT1, T1Quals); 3923 if (isa<ArrayType>(T2) && T2Quals) 3924 T2 = S.Context.getQualifiedType(UnqualT2, T2Quals); 3925 3926 ImplicitConversionSequence::CompareKind Result 3927 = ImplicitConversionSequence::Indistinguishable; 3928 3929 // Objective-C++ ARC: 3930 // Prefer qualification conversions not involving a change in lifetime 3931 // to qualification conversions that do not change lifetime. 3932 if (SCS1.QualificationIncludesObjCLifetime != 3933 SCS2.QualificationIncludesObjCLifetime) { 3934 Result = SCS1.QualificationIncludesObjCLifetime 3935 ? ImplicitConversionSequence::Worse 3936 : ImplicitConversionSequence::Better; 3937 } 3938 3939 while (S.Context.UnwrapSimilarPointerTypes(T1, T2)) { 3940 // Within each iteration of the loop, we check the qualifiers to 3941 // determine if this still looks like a qualification 3942 // conversion. Then, if all is well, we unwrap one more level of 3943 // pointers or pointers-to-members and do it all again 3944 // until there are no more pointers or pointers-to-members left 3945 // to unwrap. This essentially mimics what 3946 // IsQualificationConversion does, but here we're checking for a 3947 // strict subset of qualifiers. 3948 if (T1.getCVRQualifiers() == T2.getCVRQualifiers()) 3949 // The qualifiers are the same, so this doesn't tell us anything 3950 // about how the sequences rank. 3951 ; 3952 else if (T2.isMoreQualifiedThan(T1)) { 3953 // T1 has fewer qualifiers, so it could be the better sequence. 3954 if (Result == ImplicitConversionSequence::Worse) 3955 // Neither has qualifiers that are a subset of the other's 3956 // qualifiers. 3957 return ImplicitConversionSequence::Indistinguishable; 3958 3959 Result = ImplicitConversionSequence::Better; 3960 } else if (T1.isMoreQualifiedThan(T2)) { 3961 // T2 has fewer qualifiers, so it could be the better sequence. 3962 if (Result == ImplicitConversionSequence::Better) 3963 // Neither has qualifiers that are a subset of the other's 3964 // qualifiers. 3965 return ImplicitConversionSequence::Indistinguishable; 3966 3967 Result = ImplicitConversionSequence::Worse; 3968 } else { 3969 // Qualifiers are disjoint. 3970 return ImplicitConversionSequence::Indistinguishable; 3971 } 3972 3973 // If the types after this point are equivalent, we're done. 3974 if (S.Context.hasSameUnqualifiedType(T1, T2)) 3975 break; 3976 } 3977 3978 // Check that the winning standard conversion sequence isn't using 3979 // the deprecated string literal array to pointer conversion. 3980 switch (Result) { 3981 case ImplicitConversionSequence::Better: 3982 if (SCS1.DeprecatedStringLiteralToCharPtr) 3983 Result = ImplicitConversionSequence::Indistinguishable; 3984 break; 3985 3986 case ImplicitConversionSequence::Indistinguishable: 3987 break; 3988 3989 case ImplicitConversionSequence::Worse: 3990 if (SCS2.DeprecatedStringLiteralToCharPtr) 3991 Result = ImplicitConversionSequence::Indistinguishable; 3992 break; 3993 } 3994 3995 return Result; 3996 } 3997 3998 /// CompareDerivedToBaseConversions - Compares two standard conversion 3999 /// sequences to determine whether they can be ranked based on their 4000 /// various kinds of derived-to-base conversions (C++ 4001 /// [over.ics.rank]p4b3). As part of these checks, we also look at 4002 /// conversions between Objective-C interface types. 4003 static ImplicitConversionSequence::CompareKind 4004 CompareDerivedToBaseConversions(Sema &S, SourceLocation Loc, 4005 const StandardConversionSequence& SCS1, 4006 const StandardConversionSequence& SCS2) { 4007 QualType FromType1 = SCS1.getFromType(); 4008 QualType ToType1 = SCS1.getToType(1); 4009 QualType FromType2 = SCS2.getFromType(); 4010 QualType ToType2 = SCS2.getToType(1); 4011 4012 // Adjust the types we're converting from via the array-to-pointer 4013 // conversion, if we need to. 4014 if (SCS1.First == ICK_Array_To_Pointer) 4015 FromType1 = S.Context.getArrayDecayedType(FromType1); 4016 if (SCS2.First == ICK_Array_To_Pointer) 4017 FromType2 = S.Context.getArrayDecayedType(FromType2); 4018 4019 // Canonicalize all of the types. 4020 FromType1 = S.Context.getCanonicalType(FromType1); 4021 ToType1 = S.Context.getCanonicalType(ToType1); 4022 FromType2 = S.Context.getCanonicalType(FromType2); 4023 ToType2 = S.Context.getCanonicalType(ToType2); 4024 4025 // C++ [over.ics.rank]p4b3: 4026 // 4027 // If class B is derived directly or indirectly from class A and 4028 // class C is derived directly or indirectly from B, 4029 // 4030 // Compare based on pointer conversions. 4031 if (SCS1.Second == ICK_Pointer_Conversion && 4032 SCS2.Second == ICK_Pointer_Conversion && 4033 /*FIXME: Remove if Objective-C id conversions get their own rank*/ 4034 FromType1->isPointerType() && FromType2->isPointerType() && 4035 ToType1->isPointerType() && ToType2->isPointerType()) { 4036 QualType FromPointee1 4037 = FromType1->getAs<PointerType>()->getPointeeType().getUnqualifiedType(); 4038 QualType ToPointee1 4039 = ToType1->getAs<PointerType>()->getPointeeType().getUnqualifiedType(); 4040 QualType FromPointee2 4041 = FromType2->getAs<PointerType>()->getPointeeType().getUnqualifiedType(); 4042 QualType ToPointee2 4043 = ToType2->getAs<PointerType>()->getPointeeType().getUnqualifiedType(); 4044 4045 // -- conversion of C* to B* is better than conversion of C* to A*, 4046 if (FromPointee1 == FromPointee2 && ToPointee1 != ToPointee2) { 4047 if (S.IsDerivedFrom(Loc, ToPointee1, ToPointee2)) 4048 return ImplicitConversionSequence::Better; 4049 else if (S.IsDerivedFrom(Loc, ToPointee2, ToPointee1)) 4050 return ImplicitConversionSequence::Worse; 4051 } 4052 4053 // -- conversion of B* to A* is better than conversion of C* to A*, 4054 if (FromPointee1 != FromPointee2 && ToPointee1 == ToPointee2) { 4055 if (S.IsDerivedFrom(Loc, FromPointee2, FromPointee1)) 4056 return ImplicitConversionSequence::Better; 4057 else if (S.IsDerivedFrom(Loc, FromPointee1, FromPointee2)) 4058 return ImplicitConversionSequence::Worse; 4059 } 4060 } else if (SCS1.Second == ICK_Pointer_Conversion && 4061 SCS2.Second == ICK_Pointer_Conversion) { 4062 const ObjCObjectPointerType *FromPtr1 4063 = FromType1->getAs<ObjCObjectPointerType>(); 4064 const ObjCObjectPointerType *FromPtr2 4065 = FromType2->getAs<ObjCObjectPointerType>(); 4066 const ObjCObjectPointerType *ToPtr1 4067 = ToType1->getAs<ObjCObjectPointerType>(); 4068 const ObjCObjectPointerType *ToPtr2 4069 = ToType2->getAs<ObjCObjectPointerType>(); 4070 4071 if (FromPtr1 && FromPtr2 && ToPtr1 && ToPtr2) { 4072 // Apply the same conversion ranking rules for Objective-C pointer types 4073 // that we do for C++ pointers to class types. However, we employ the 4074 // Objective-C pseudo-subtyping relationship used for assignment of 4075 // Objective-C pointer types. 4076 bool FromAssignLeft 4077 = S.Context.canAssignObjCInterfaces(FromPtr1, FromPtr2); 4078 bool FromAssignRight 4079 = S.Context.canAssignObjCInterfaces(FromPtr2, FromPtr1); 4080 bool ToAssignLeft 4081 = S.Context.canAssignObjCInterfaces(ToPtr1, ToPtr2); 4082 bool ToAssignRight 4083 = S.Context.canAssignObjCInterfaces(ToPtr2, ToPtr1); 4084 4085 // A conversion to an a non-id object pointer type or qualified 'id' 4086 // type is better than a conversion to 'id'. 4087 if (ToPtr1->isObjCIdType() && 4088 (ToPtr2->isObjCQualifiedIdType() || ToPtr2->getInterfaceDecl())) 4089 return ImplicitConversionSequence::Worse; 4090 if (ToPtr2->isObjCIdType() && 4091 (ToPtr1->isObjCQualifiedIdType() || ToPtr1->getInterfaceDecl())) 4092 return ImplicitConversionSequence::Better; 4093 4094 // A conversion to a non-id object pointer type is better than a 4095 // conversion to a qualified 'id' type 4096 if (ToPtr1->isObjCQualifiedIdType() && ToPtr2->getInterfaceDecl()) 4097 return ImplicitConversionSequence::Worse; 4098 if (ToPtr2->isObjCQualifiedIdType() && ToPtr1->getInterfaceDecl()) 4099 return ImplicitConversionSequence::Better; 4100 4101 // A conversion to an a non-Class object pointer type or qualified 'Class' 4102 // type is better than a conversion to 'Class'. 4103 if (ToPtr1->isObjCClassType() && 4104 (ToPtr2->isObjCQualifiedClassType() || ToPtr2->getInterfaceDecl())) 4105 return ImplicitConversionSequence::Worse; 4106 if (ToPtr2->isObjCClassType() && 4107 (ToPtr1->isObjCQualifiedClassType() || ToPtr1->getInterfaceDecl())) 4108 return ImplicitConversionSequence::Better; 4109 4110 // A conversion to a non-Class object pointer type is better than a 4111 // conversion to a qualified 'Class' type. 4112 if (ToPtr1->isObjCQualifiedClassType() && ToPtr2->getInterfaceDecl()) 4113 return ImplicitConversionSequence::Worse; 4114 if (ToPtr2->isObjCQualifiedClassType() && ToPtr1->getInterfaceDecl()) 4115 return ImplicitConversionSequence::Better; 4116 4117 // -- "conversion of C* to B* is better than conversion of C* to A*," 4118 if (S.Context.hasSameType(FromType1, FromType2) && 4119 !FromPtr1->isObjCIdType() && !FromPtr1->isObjCClassType() && 4120 (ToAssignLeft != ToAssignRight)) { 4121 if (FromPtr1->isSpecialized()) { 4122 // "conversion of B<A> * to B * is better than conversion of B * to 4123 // C *. 4124 bool IsFirstSame = 4125 FromPtr1->getInterfaceDecl() == ToPtr1->getInterfaceDecl(); 4126 bool IsSecondSame = 4127 FromPtr1->getInterfaceDecl() == ToPtr2->getInterfaceDecl(); 4128 if (IsFirstSame) { 4129 if (!IsSecondSame) 4130 return ImplicitConversionSequence::Better; 4131 } else if (IsSecondSame) 4132 return ImplicitConversionSequence::Worse; 4133 } 4134 return ToAssignLeft? ImplicitConversionSequence::Worse 4135 : ImplicitConversionSequence::Better; 4136 } 4137 4138 // -- "conversion of B* to A* is better than conversion of C* to A*," 4139 if (S.Context.hasSameUnqualifiedType(ToType1, ToType2) && 4140 (FromAssignLeft != FromAssignRight)) 4141 return FromAssignLeft? ImplicitConversionSequence::Better 4142 : ImplicitConversionSequence::Worse; 4143 } 4144 } 4145 4146 // Ranking of member-pointer types. 4147 if (SCS1.Second == ICK_Pointer_Member && SCS2.Second == ICK_Pointer_Member && 4148 FromType1->isMemberPointerType() && FromType2->isMemberPointerType() && 4149 ToType1->isMemberPointerType() && ToType2->isMemberPointerType()) { 4150 const MemberPointerType * FromMemPointer1 = 4151 FromType1->getAs<MemberPointerType>(); 4152 const MemberPointerType * ToMemPointer1 = 4153 ToType1->getAs<MemberPointerType>(); 4154 const MemberPointerType * FromMemPointer2 = 4155 FromType2->getAs<MemberPointerType>(); 4156 const MemberPointerType * ToMemPointer2 = 4157 ToType2->getAs<MemberPointerType>(); 4158 const Type *FromPointeeType1 = FromMemPointer1->getClass(); 4159 const Type *ToPointeeType1 = ToMemPointer1->getClass(); 4160 const Type *FromPointeeType2 = FromMemPointer2->getClass(); 4161 const Type *ToPointeeType2 = ToMemPointer2->getClass(); 4162 QualType FromPointee1 = QualType(FromPointeeType1, 0).getUnqualifiedType(); 4163 QualType ToPointee1 = QualType(ToPointeeType1, 0).getUnqualifiedType(); 4164 QualType FromPointee2 = QualType(FromPointeeType2, 0).getUnqualifiedType(); 4165 QualType ToPointee2 = QualType(ToPointeeType2, 0).getUnqualifiedType(); 4166 // conversion of A::* to B::* is better than conversion of A::* to C::*, 4167 if (FromPointee1 == FromPointee2 && ToPointee1 != ToPointee2) { 4168 if (S.IsDerivedFrom(Loc, ToPointee1, ToPointee2)) 4169 return ImplicitConversionSequence::Worse; 4170 else if (S.IsDerivedFrom(Loc, ToPointee2, ToPointee1)) 4171 return ImplicitConversionSequence::Better; 4172 } 4173 // conversion of B::* to C::* is better than conversion of A::* to C::* 4174 if (ToPointee1 == ToPointee2 && FromPointee1 != FromPointee2) { 4175 if (S.IsDerivedFrom(Loc, FromPointee1, FromPointee2)) 4176 return ImplicitConversionSequence::Better; 4177 else if (S.IsDerivedFrom(Loc, FromPointee2, FromPointee1)) 4178 return ImplicitConversionSequence::Worse; 4179 } 4180 } 4181 4182 if (SCS1.Second == ICK_Derived_To_Base) { 4183 // -- conversion of C to B is better than conversion of C to A, 4184 // -- binding of an expression of type C to a reference of type 4185 // B& is better than binding an expression of type C to a 4186 // reference of type A&, 4187 if (S.Context.hasSameUnqualifiedType(FromType1, FromType2) && 4188 !S.Context.hasSameUnqualifiedType(ToType1, ToType2)) { 4189 if (S.IsDerivedFrom(Loc, ToType1, ToType2)) 4190 return ImplicitConversionSequence::Better; 4191 else if (S.IsDerivedFrom(Loc, ToType2, ToType1)) 4192 return ImplicitConversionSequence::Worse; 4193 } 4194 4195 // -- conversion of B to A is better than conversion of C to A. 4196 // -- binding of an expression of type B to a reference of type 4197 // A& is better than binding an expression of type C to a 4198 // reference of type A&, 4199 if (!S.Context.hasSameUnqualifiedType(FromType1, FromType2) && 4200 S.Context.hasSameUnqualifiedType(ToType1, ToType2)) { 4201 if (S.IsDerivedFrom(Loc, FromType2, FromType1)) 4202 return ImplicitConversionSequence::Better; 4203 else if (S.IsDerivedFrom(Loc, FromType1, FromType2)) 4204 return ImplicitConversionSequence::Worse; 4205 } 4206 } 4207 4208 return ImplicitConversionSequence::Indistinguishable; 4209 } 4210 4211 /// Determine whether the given type is valid, e.g., it is not an invalid 4212 /// C++ class. 4213 static bool isTypeValid(QualType T) { 4214 if (CXXRecordDecl *Record = T->getAsCXXRecordDecl()) 4215 return !Record->isInvalidDecl(); 4216 4217 return true; 4218 } 4219 4220 /// CompareReferenceRelationship - Compare the two types T1 and T2 to 4221 /// determine whether they are reference-related, 4222 /// reference-compatible, reference-compatible with added 4223 /// qualification, or incompatible, for use in C++ initialization by 4224 /// reference (C++ [dcl.ref.init]p4). Neither type can be a reference 4225 /// type, and the first type (T1) is the pointee type of the reference 4226 /// type being initialized. 4227 Sema::ReferenceCompareResult 4228 Sema::CompareReferenceRelationship(SourceLocation Loc, 4229 QualType OrigT1, QualType OrigT2, 4230 bool &DerivedToBase, 4231 bool &ObjCConversion, 4232 bool &ObjCLifetimeConversion) { 4233 assert(!OrigT1->isReferenceType() && 4234 "T1 must be the pointee type of the reference type"); 4235 assert(!OrigT2->isReferenceType() && "T2 cannot be a reference type"); 4236 4237 QualType T1 = Context.getCanonicalType(OrigT1); 4238 QualType T2 = Context.getCanonicalType(OrigT2); 4239 Qualifiers T1Quals, T2Quals; 4240 QualType UnqualT1 = Context.getUnqualifiedArrayType(T1, T1Quals); 4241 QualType UnqualT2 = Context.getUnqualifiedArrayType(T2, T2Quals); 4242 4243 // C++ [dcl.init.ref]p4: 4244 // Given types "cv1 T1" and "cv2 T2," "cv1 T1" is 4245 // reference-related to "cv2 T2" if T1 is the same type as T2, or 4246 // T1 is a base class of T2. 4247 DerivedToBase = false; 4248 ObjCConversion = false; 4249 ObjCLifetimeConversion = false; 4250 QualType ConvertedT2; 4251 if (UnqualT1 == UnqualT2) { 4252 // Nothing to do. 4253 } else if (isCompleteType(Loc, OrigT2) && 4254 isTypeValid(UnqualT1) && isTypeValid(UnqualT2) && 4255 IsDerivedFrom(Loc, UnqualT2, UnqualT1)) 4256 DerivedToBase = true; 4257 else if (UnqualT1->isObjCObjectOrInterfaceType() && 4258 UnqualT2->isObjCObjectOrInterfaceType() && 4259 Context.canBindObjCObjectType(UnqualT1, UnqualT2)) 4260 ObjCConversion = true; 4261 else if (UnqualT2->isFunctionType() && 4262 IsFunctionConversion(UnqualT2, UnqualT1, ConvertedT2)) 4263 // C++1z [dcl.init.ref]p4: 4264 // cv1 T1" is reference-compatible with "cv2 T2" if [...] T2 is "noexcept 4265 // function" and T1 is "function" 4266 // 4267 // We extend this to also apply to 'noreturn', so allow any function 4268 // conversion between function types. 4269 return Ref_Compatible; 4270 else 4271 return Ref_Incompatible; 4272 4273 // At this point, we know that T1 and T2 are reference-related (at 4274 // least). 4275 4276 // If the type is an array type, promote the element qualifiers to the type 4277 // for comparison. 4278 if (isa<ArrayType>(T1) && T1Quals) 4279 T1 = Context.getQualifiedType(UnqualT1, T1Quals); 4280 if (isa<ArrayType>(T2) && T2Quals) 4281 T2 = Context.getQualifiedType(UnqualT2, T2Quals); 4282 4283 // C++ [dcl.init.ref]p4: 4284 // "cv1 T1" is reference-compatible with "cv2 T2" if T1 is 4285 // reference-related to T2 and cv1 is the same cv-qualification 4286 // as, or greater cv-qualification than, cv2. For purposes of 4287 // overload resolution, cases for which cv1 is greater 4288 // cv-qualification than cv2 are identified as 4289 // reference-compatible with added qualification (see 13.3.3.2). 4290 // 4291 // Note that we also require equivalence of Objective-C GC and address-space 4292 // qualifiers when performing these computations, so that e.g., an int in 4293 // address space 1 is not reference-compatible with an int in address 4294 // space 2. 4295 if (T1Quals.getObjCLifetime() != T2Quals.getObjCLifetime() && 4296 T1Quals.compatiblyIncludesObjCLifetime(T2Quals)) { 4297 if (isNonTrivialObjCLifetimeConversion(T2Quals, T1Quals)) 4298 ObjCLifetimeConversion = true; 4299 4300 T1Quals.removeObjCLifetime(); 4301 T2Quals.removeObjCLifetime(); 4302 } 4303 4304 // MS compiler ignores __unaligned qualifier for references; do the same. 4305 T1Quals.removeUnaligned(); 4306 T2Quals.removeUnaligned(); 4307 4308 if (T1Quals.compatiblyIncludes(T2Quals)) 4309 return Ref_Compatible; 4310 else 4311 return Ref_Related; 4312 } 4313 4314 /// Look for a user-defined conversion to a value reference-compatible 4315 /// with DeclType. Return true if something definite is found. 4316 static bool 4317 FindConversionForRefInit(Sema &S, ImplicitConversionSequence &ICS, 4318 QualType DeclType, SourceLocation DeclLoc, 4319 Expr *Init, QualType T2, bool AllowRvalues, 4320 bool AllowExplicit) { 4321 assert(T2->isRecordType() && "Can only find conversions of record types."); 4322 CXXRecordDecl *T2RecordDecl 4323 = dyn_cast<CXXRecordDecl>(T2->getAs<RecordType>()->getDecl()); 4324 4325 OverloadCandidateSet CandidateSet( 4326 DeclLoc, OverloadCandidateSet::CSK_InitByUserDefinedConversion); 4327 const auto &Conversions = T2RecordDecl->getVisibleConversionFunctions(); 4328 for (auto I = Conversions.begin(), E = Conversions.end(); I != E; ++I) { 4329 NamedDecl *D = *I; 4330 CXXRecordDecl *ActingDC = cast<CXXRecordDecl>(D->getDeclContext()); 4331 if (isa<UsingShadowDecl>(D)) 4332 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 4333 4334 FunctionTemplateDecl *ConvTemplate 4335 = dyn_cast<FunctionTemplateDecl>(D); 4336 CXXConversionDecl *Conv; 4337 if (ConvTemplate) 4338 Conv = cast<CXXConversionDecl>(ConvTemplate->getTemplatedDecl()); 4339 else 4340 Conv = cast<CXXConversionDecl>(D); 4341 4342 // If this is an explicit conversion, and we're not allowed to consider 4343 // explicit conversions, skip it. 4344 if (!AllowExplicit && Conv->isExplicit()) 4345 continue; 4346 4347 if (AllowRvalues) { 4348 bool DerivedToBase = false; 4349 bool ObjCConversion = false; 4350 bool ObjCLifetimeConversion = false; 4351 4352 // If we are initializing an rvalue reference, don't permit conversion 4353 // functions that return lvalues. 4354 if (!ConvTemplate && DeclType->isRValueReferenceType()) { 4355 const ReferenceType *RefType 4356 = Conv->getConversionType()->getAs<LValueReferenceType>(); 4357 if (RefType && !RefType->getPointeeType()->isFunctionType()) 4358 continue; 4359 } 4360 4361 if (!ConvTemplate && 4362 S.CompareReferenceRelationship( 4363 DeclLoc, 4364 Conv->getConversionType().getNonReferenceType() 4365 .getUnqualifiedType(), 4366 DeclType.getNonReferenceType().getUnqualifiedType(), 4367 DerivedToBase, ObjCConversion, ObjCLifetimeConversion) == 4368 Sema::Ref_Incompatible) 4369 continue; 4370 } else { 4371 // If the conversion function doesn't return a reference type, 4372 // it can't be considered for this conversion. An rvalue reference 4373 // is only acceptable if its referencee is a function type. 4374 4375 const ReferenceType *RefType = 4376 Conv->getConversionType()->getAs<ReferenceType>(); 4377 if (!RefType || 4378 (!RefType->isLValueReferenceType() && 4379 !RefType->getPointeeType()->isFunctionType())) 4380 continue; 4381 } 4382 4383 if (ConvTemplate) 4384 S.AddTemplateConversionCandidate(ConvTemplate, I.getPair(), ActingDC, 4385 Init, DeclType, CandidateSet, 4386 /*AllowObjCConversionOnExplicit=*/false); 4387 else 4388 S.AddConversionCandidate(Conv, I.getPair(), ActingDC, Init, 4389 DeclType, CandidateSet, 4390 /*AllowObjCConversionOnExplicit=*/false); 4391 } 4392 4393 bool HadMultipleCandidates = (CandidateSet.size() > 1); 4394 4395 OverloadCandidateSet::iterator Best; 4396 switch (CandidateSet.BestViableFunction(S, DeclLoc, Best)) { 4397 case OR_Success: 4398 // C++ [over.ics.ref]p1: 4399 // 4400 // [...] If the parameter binds directly to the result of 4401 // applying a conversion function to the argument 4402 // expression, the implicit conversion sequence is a 4403 // user-defined conversion sequence (13.3.3.1.2), with the 4404 // second standard conversion sequence either an identity 4405 // conversion or, if the conversion function returns an 4406 // entity of a type that is a derived class of the parameter 4407 // type, a derived-to-base Conversion. 4408 if (!Best->FinalConversion.DirectBinding) 4409 return false; 4410 4411 ICS.setUserDefined(); 4412 ICS.UserDefined.Before = Best->Conversions[0].Standard; 4413 ICS.UserDefined.After = Best->FinalConversion; 4414 ICS.UserDefined.HadMultipleCandidates = HadMultipleCandidates; 4415 ICS.UserDefined.ConversionFunction = Best->Function; 4416 ICS.UserDefined.FoundConversionFunction = Best->FoundDecl; 4417 ICS.UserDefined.EllipsisConversion = false; 4418 assert(ICS.UserDefined.After.ReferenceBinding && 4419 ICS.UserDefined.After.DirectBinding && 4420 "Expected a direct reference binding!"); 4421 return true; 4422 4423 case OR_Ambiguous: 4424 ICS.setAmbiguous(); 4425 for (OverloadCandidateSet::iterator Cand = CandidateSet.begin(); 4426 Cand != CandidateSet.end(); ++Cand) 4427 if (Cand->Viable) 4428 ICS.Ambiguous.addConversion(Cand->FoundDecl, Cand->Function); 4429 return true; 4430 4431 case OR_No_Viable_Function: 4432 case OR_Deleted: 4433 // There was no suitable conversion, or we found a deleted 4434 // conversion; continue with other checks. 4435 return false; 4436 } 4437 4438 llvm_unreachable("Invalid OverloadResult!"); 4439 } 4440 4441 /// Compute an implicit conversion sequence for reference 4442 /// initialization. 4443 static ImplicitConversionSequence 4444 TryReferenceInit(Sema &S, Expr *Init, QualType DeclType, 4445 SourceLocation DeclLoc, 4446 bool SuppressUserConversions, 4447 bool AllowExplicit) { 4448 assert(DeclType->isReferenceType() && "Reference init needs a reference"); 4449 4450 // Most paths end in a failed conversion. 4451 ImplicitConversionSequence ICS; 4452 ICS.setBad(BadConversionSequence::no_conversion, Init, DeclType); 4453 4454 QualType T1 = DeclType->getAs<ReferenceType>()->getPointeeType(); 4455 QualType T2 = Init->getType(); 4456 4457 // If the initializer is the address of an overloaded function, try 4458 // to resolve the overloaded function. If all goes well, T2 is the 4459 // type of the resulting function. 4460 if (S.Context.getCanonicalType(T2) == S.Context.OverloadTy) { 4461 DeclAccessPair Found; 4462 if (FunctionDecl *Fn = S.ResolveAddressOfOverloadedFunction(Init, DeclType, 4463 false, Found)) 4464 T2 = Fn->getType(); 4465 } 4466 4467 // Compute some basic properties of the types and the initializer. 4468 bool isRValRef = DeclType->isRValueReferenceType(); 4469 bool DerivedToBase = false; 4470 bool ObjCConversion = false; 4471 bool ObjCLifetimeConversion = false; 4472 Expr::Classification InitCategory = Init->Classify(S.Context); 4473 Sema::ReferenceCompareResult RefRelationship 4474 = S.CompareReferenceRelationship(DeclLoc, T1, T2, DerivedToBase, 4475 ObjCConversion, ObjCLifetimeConversion); 4476 4477 4478 // C++0x [dcl.init.ref]p5: 4479 // A reference to type "cv1 T1" is initialized by an expression 4480 // of type "cv2 T2" as follows: 4481 4482 // -- If reference is an lvalue reference and the initializer expression 4483 if (!isRValRef) { 4484 // -- is an lvalue (but is not a bit-field), and "cv1 T1" is 4485 // reference-compatible with "cv2 T2," or 4486 // 4487 // Per C++ [over.ics.ref]p4, we don't check the bit-field property here. 4488 if (InitCategory.isLValue() && RefRelationship == Sema::Ref_Compatible) { 4489 // C++ [over.ics.ref]p1: 4490 // When a parameter of reference type binds directly (8.5.3) 4491 // to an argument expression, the implicit conversion sequence 4492 // is the identity conversion, unless the argument expression 4493 // has a type that is a derived class of the parameter type, 4494 // in which case the implicit conversion sequence is a 4495 // derived-to-base Conversion (13.3.3.1). 4496 ICS.setStandard(); 4497 ICS.Standard.First = ICK_Identity; 4498 ICS.Standard.Second = DerivedToBase? ICK_Derived_To_Base 4499 : ObjCConversion? ICK_Compatible_Conversion 4500 : ICK_Identity; 4501 ICS.Standard.Third = ICK_Identity; 4502 ICS.Standard.FromTypePtr = T2.getAsOpaquePtr(); 4503 ICS.Standard.setToType(0, T2); 4504 ICS.Standard.setToType(1, T1); 4505 ICS.Standard.setToType(2, T1); 4506 ICS.Standard.ReferenceBinding = true; 4507 ICS.Standard.DirectBinding = true; 4508 ICS.Standard.IsLvalueReference = !isRValRef; 4509 ICS.Standard.BindsToFunctionLvalue = T2->isFunctionType(); 4510 ICS.Standard.BindsToRvalue = false; 4511 ICS.Standard.BindsImplicitObjectArgumentWithoutRefQualifier = false; 4512 ICS.Standard.ObjCLifetimeConversionBinding = ObjCLifetimeConversion; 4513 ICS.Standard.CopyConstructor = nullptr; 4514 ICS.Standard.DeprecatedStringLiteralToCharPtr = false; 4515 4516 // Nothing more to do: the inaccessibility/ambiguity check for 4517 // derived-to-base conversions is suppressed when we're 4518 // computing the implicit conversion sequence (C++ 4519 // [over.best.ics]p2). 4520 return ICS; 4521 } 4522 4523 // -- has a class type (i.e., T2 is a class type), where T1 is 4524 // not reference-related to T2, and can be implicitly 4525 // converted to an lvalue of type "cv3 T3," where "cv1 T1" 4526 // is reference-compatible with "cv3 T3" 92) (this 4527 // conversion is selected by enumerating the applicable 4528 // conversion functions (13.3.1.6) and choosing the best 4529 // one through overload resolution (13.3)), 4530 if (!SuppressUserConversions && T2->isRecordType() && 4531 S.isCompleteType(DeclLoc, T2) && 4532 RefRelationship == Sema::Ref_Incompatible) { 4533 if (FindConversionForRefInit(S, ICS, DeclType, DeclLoc, 4534 Init, T2, /*AllowRvalues=*/false, 4535 AllowExplicit)) 4536 return ICS; 4537 } 4538 } 4539 4540 // -- Otherwise, the reference shall be an lvalue reference to a 4541 // non-volatile const type (i.e., cv1 shall be const), or the reference 4542 // shall be an rvalue reference. 4543 if (!isRValRef && (!T1.isConstQualified() || T1.isVolatileQualified())) 4544 return ICS; 4545 4546 // -- If the initializer expression 4547 // 4548 // -- is an xvalue, class prvalue, array prvalue or function 4549 // lvalue and "cv1 T1" is reference-compatible with "cv2 T2", or 4550 if (RefRelationship == Sema::Ref_Compatible && 4551 (InitCategory.isXValue() || 4552 (InitCategory.isPRValue() && (T2->isRecordType() || T2->isArrayType())) || 4553 (InitCategory.isLValue() && T2->isFunctionType()))) { 4554 ICS.setStandard(); 4555 ICS.Standard.First = ICK_Identity; 4556 ICS.Standard.Second = DerivedToBase? ICK_Derived_To_Base 4557 : ObjCConversion? ICK_Compatible_Conversion 4558 : ICK_Identity; 4559 ICS.Standard.Third = ICK_Identity; 4560 ICS.Standard.FromTypePtr = T2.getAsOpaquePtr(); 4561 ICS.Standard.setToType(0, T2); 4562 ICS.Standard.setToType(1, T1); 4563 ICS.Standard.setToType(2, T1); 4564 ICS.Standard.ReferenceBinding = true; 4565 // In C++0x, this is always a direct binding. In C++98/03, it's a direct 4566 // binding unless we're binding to a class prvalue. 4567 // Note: Although xvalues wouldn't normally show up in C++98/03 code, we 4568 // allow the use of rvalue references in C++98/03 for the benefit of 4569 // standard library implementors; therefore, we need the xvalue check here. 4570 ICS.Standard.DirectBinding = 4571 S.getLangOpts().CPlusPlus11 || 4572 !(InitCategory.isPRValue() || T2->isRecordType()); 4573 ICS.Standard.IsLvalueReference = !isRValRef; 4574 ICS.Standard.BindsToFunctionLvalue = T2->isFunctionType(); 4575 ICS.Standard.BindsToRvalue = InitCategory.isRValue(); 4576 ICS.Standard.BindsImplicitObjectArgumentWithoutRefQualifier = false; 4577 ICS.Standard.ObjCLifetimeConversionBinding = ObjCLifetimeConversion; 4578 ICS.Standard.CopyConstructor = nullptr; 4579 ICS.Standard.DeprecatedStringLiteralToCharPtr = false; 4580 return ICS; 4581 } 4582 4583 // -- has a class type (i.e., T2 is a class type), where T1 is not 4584 // reference-related to T2, and can be implicitly converted to 4585 // an xvalue, class prvalue, or function lvalue of type 4586 // "cv3 T3", where "cv1 T1" is reference-compatible with 4587 // "cv3 T3", 4588 // 4589 // then the reference is bound to the value of the initializer 4590 // expression in the first case and to the result of the conversion 4591 // in the second case (or, in either case, to an appropriate base 4592 // class subobject). 4593 if (!SuppressUserConversions && RefRelationship == Sema::Ref_Incompatible && 4594 T2->isRecordType() && S.isCompleteType(DeclLoc, T2) && 4595 FindConversionForRefInit(S, ICS, DeclType, DeclLoc, 4596 Init, T2, /*AllowRvalues=*/true, 4597 AllowExplicit)) { 4598 // In the second case, if the reference is an rvalue reference 4599 // and the second standard conversion sequence of the 4600 // user-defined conversion sequence includes an lvalue-to-rvalue 4601 // conversion, the program is ill-formed. 4602 if (ICS.isUserDefined() && isRValRef && 4603 ICS.UserDefined.After.First == ICK_Lvalue_To_Rvalue) 4604 ICS.setBad(BadConversionSequence::no_conversion, Init, DeclType); 4605 4606 return ICS; 4607 } 4608 4609 // A temporary of function type cannot be created; don't even try. 4610 if (T1->isFunctionType()) 4611 return ICS; 4612 4613 // -- Otherwise, a temporary of type "cv1 T1" is created and 4614 // initialized from the initializer expression using the 4615 // rules for a non-reference copy initialization (8.5). The 4616 // reference is then bound to the temporary. If T1 is 4617 // reference-related to T2, cv1 must be the same 4618 // cv-qualification as, or greater cv-qualification than, 4619 // cv2; otherwise, the program is ill-formed. 4620 if (RefRelationship == Sema::Ref_Related) { 4621 // If cv1 == cv2 or cv1 is a greater cv-qualified than cv2, then 4622 // we would be reference-compatible or reference-compatible with 4623 // added qualification. But that wasn't the case, so the reference 4624 // initialization fails. 4625 // 4626 // Note that we only want to check address spaces and cvr-qualifiers here. 4627 // ObjC GC, lifetime and unaligned qualifiers aren't important. 4628 Qualifiers T1Quals = T1.getQualifiers(); 4629 Qualifiers T2Quals = T2.getQualifiers(); 4630 T1Quals.removeObjCGCAttr(); 4631 T1Quals.removeObjCLifetime(); 4632 T2Quals.removeObjCGCAttr(); 4633 T2Quals.removeObjCLifetime(); 4634 // MS compiler ignores __unaligned qualifier for references; do the same. 4635 T1Quals.removeUnaligned(); 4636 T2Quals.removeUnaligned(); 4637 if (!T1Quals.compatiblyIncludes(T2Quals)) 4638 return ICS; 4639 } 4640 4641 // If at least one of the types is a class type, the types are not 4642 // related, and we aren't allowed any user conversions, the 4643 // reference binding fails. This case is important for breaking 4644 // recursion, since TryImplicitConversion below will attempt to 4645 // create a temporary through the use of a copy constructor. 4646 if (SuppressUserConversions && RefRelationship == Sema::Ref_Incompatible && 4647 (T1->isRecordType() || T2->isRecordType())) 4648 return ICS; 4649 4650 // If T1 is reference-related to T2 and the reference is an rvalue 4651 // reference, the initializer expression shall not be an lvalue. 4652 if (RefRelationship >= Sema::Ref_Related && 4653 isRValRef && Init->Classify(S.Context).isLValue()) 4654 return ICS; 4655 4656 // C++ [over.ics.ref]p2: 4657 // When a parameter of reference type is not bound directly to 4658 // an argument expression, the conversion sequence is the one 4659 // required to convert the argument expression to the 4660 // underlying type of the reference according to 4661 // 13.3.3.1. Conceptually, this conversion sequence corresponds 4662 // to copy-initializing a temporary of the underlying type with 4663 // the argument expression. Any difference in top-level 4664 // cv-qualification is subsumed by the initialization itself 4665 // and does not constitute a conversion. 4666 ICS = TryImplicitConversion(S, Init, T1, SuppressUserConversions, 4667 /*AllowExplicit=*/false, 4668 /*InOverloadResolution=*/false, 4669 /*CStyle=*/false, 4670 /*AllowObjCWritebackConversion=*/false, 4671 /*AllowObjCConversionOnExplicit=*/false); 4672 4673 // Of course, that's still a reference binding. 4674 if (ICS.isStandard()) { 4675 ICS.Standard.ReferenceBinding = true; 4676 ICS.Standard.IsLvalueReference = !isRValRef; 4677 ICS.Standard.BindsToFunctionLvalue = false; 4678 ICS.Standard.BindsToRvalue = true; 4679 ICS.Standard.BindsImplicitObjectArgumentWithoutRefQualifier = false; 4680 ICS.Standard.ObjCLifetimeConversionBinding = false; 4681 } else if (ICS.isUserDefined()) { 4682 const ReferenceType *LValRefType = 4683 ICS.UserDefined.ConversionFunction->getReturnType() 4684 ->getAs<LValueReferenceType>(); 4685 4686 // C++ [over.ics.ref]p3: 4687 // Except for an implicit object parameter, for which see 13.3.1, a 4688 // standard conversion sequence cannot be formed if it requires [...] 4689 // binding an rvalue reference to an lvalue other than a function 4690 // lvalue. 4691 // Note that the function case is not possible here. 4692 if (DeclType->isRValueReferenceType() && LValRefType) { 4693 // FIXME: This is the wrong BadConversionSequence. The problem is binding 4694 // an rvalue reference to a (non-function) lvalue, not binding an lvalue 4695 // reference to an rvalue! 4696 ICS.setBad(BadConversionSequence::lvalue_ref_to_rvalue, Init, DeclType); 4697 return ICS; 4698 } 4699 4700 ICS.UserDefined.After.ReferenceBinding = true; 4701 ICS.UserDefined.After.IsLvalueReference = !isRValRef; 4702 ICS.UserDefined.After.BindsToFunctionLvalue = false; 4703 ICS.UserDefined.After.BindsToRvalue = !LValRefType; 4704 ICS.UserDefined.After.BindsImplicitObjectArgumentWithoutRefQualifier = false; 4705 ICS.UserDefined.After.ObjCLifetimeConversionBinding = false; 4706 } 4707 4708 return ICS; 4709 } 4710 4711 static ImplicitConversionSequence 4712 TryCopyInitialization(Sema &S, Expr *From, QualType ToType, 4713 bool SuppressUserConversions, 4714 bool InOverloadResolution, 4715 bool AllowObjCWritebackConversion, 4716 bool AllowExplicit = false); 4717 4718 /// TryListConversion - Try to copy-initialize a value of type ToType from the 4719 /// initializer list From. 4720 static ImplicitConversionSequence 4721 TryListConversion(Sema &S, InitListExpr *From, QualType ToType, 4722 bool SuppressUserConversions, 4723 bool InOverloadResolution, 4724 bool AllowObjCWritebackConversion) { 4725 // C++11 [over.ics.list]p1: 4726 // When an argument is an initializer list, it is not an expression and 4727 // special rules apply for converting it to a parameter type. 4728 4729 ImplicitConversionSequence Result; 4730 Result.setBad(BadConversionSequence::no_conversion, From, ToType); 4731 4732 // We need a complete type for what follows. Incomplete types can never be 4733 // initialized from init lists. 4734 if (!S.isCompleteType(From->getLocStart(), ToType)) 4735 return Result; 4736 4737 // Per DR1467: 4738 // If the parameter type is a class X and the initializer list has a single 4739 // element of type cv U, where U is X or a class derived from X, the 4740 // implicit conversion sequence is the one required to convert the element 4741 // to the parameter type. 4742 // 4743 // Otherwise, if the parameter type is a character array [... ] 4744 // and the initializer list has a single element that is an 4745 // appropriately-typed string literal (8.5.2 [dcl.init.string]), the 4746 // implicit conversion sequence is the identity conversion. 4747 if (From->getNumInits() == 1) { 4748 if (ToType->isRecordType()) { 4749 QualType InitType = From->getInit(0)->getType(); 4750 if (S.Context.hasSameUnqualifiedType(InitType, ToType) || 4751 S.IsDerivedFrom(From->getLocStart(), InitType, ToType)) 4752 return TryCopyInitialization(S, From->getInit(0), ToType, 4753 SuppressUserConversions, 4754 InOverloadResolution, 4755 AllowObjCWritebackConversion); 4756 } 4757 // FIXME: Check the other conditions here: array of character type, 4758 // initializer is a string literal. 4759 if (ToType->isArrayType()) { 4760 InitializedEntity Entity = 4761 InitializedEntity::InitializeParameter(S.Context, ToType, 4762 /*Consumed=*/false); 4763 if (S.CanPerformCopyInitialization(Entity, From)) { 4764 Result.setStandard(); 4765 Result.Standard.setAsIdentityConversion(); 4766 Result.Standard.setFromType(ToType); 4767 Result.Standard.setAllToTypes(ToType); 4768 return Result; 4769 } 4770 } 4771 } 4772 4773 // C++14 [over.ics.list]p2: Otherwise, if the parameter type [...] (below). 4774 // C++11 [over.ics.list]p2: 4775 // If the parameter type is std::initializer_list<X> or "array of X" and 4776 // all the elements can be implicitly converted to X, the implicit 4777 // conversion sequence is the worst conversion necessary to convert an 4778 // element of the list to X. 4779 // 4780 // C++14 [over.ics.list]p3: 4781 // Otherwise, if the parameter type is "array of N X", if the initializer 4782 // list has exactly N elements or if it has fewer than N elements and X is 4783 // default-constructible, and if all the elements of the initializer list 4784 // can be implicitly converted to X, the implicit conversion sequence is 4785 // the worst conversion necessary to convert an element of the list to X. 4786 // 4787 // FIXME: We're missing a lot of these checks. 4788 bool toStdInitializerList = false; 4789 QualType X; 4790 if (ToType->isArrayType()) 4791 X = S.Context.getAsArrayType(ToType)->getElementType(); 4792 else 4793 toStdInitializerList = S.isStdInitializerList(ToType, &X); 4794 if (!X.isNull()) { 4795 for (unsigned i = 0, e = From->getNumInits(); i < e; ++i) { 4796 Expr *Init = From->getInit(i); 4797 ImplicitConversionSequence ICS = 4798 TryCopyInitialization(S, Init, X, SuppressUserConversions, 4799 InOverloadResolution, 4800 AllowObjCWritebackConversion); 4801 // If a single element isn't convertible, fail. 4802 if (ICS.isBad()) { 4803 Result = ICS; 4804 break; 4805 } 4806 // Otherwise, look for the worst conversion. 4807 if (Result.isBad() || 4808 CompareImplicitConversionSequences(S, From->getLocStart(), ICS, 4809 Result) == 4810 ImplicitConversionSequence::Worse) 4811 Result = ICS; 4812 } 4813 4814 // For an empty list, we won't have computed any conversion sequence. 4815 // Introduce the identity conversion sequence. 4816 if (From->getNumInits() == 0) { 4817 Result.setStandard(); 4818 Result.Standard.setAsIdentityConversion(); 4819 Result.Standard.setFromType(ToType); 4820 Result.Standard.setAllToTypes(ToType); 4821 } 4822 4823 Result.setStdInitializerListElement(toStdInitializerList); 4824 return Result; 4825 } 4826 4827 // C++14 [over.ics.list]p4: 4828 // C++11 [over.ics.list]p3: 4829 // Otherwise, if the parameter is a non-aggregate class X and overload 4830 // resolution chooses a single best constructor [...] the implicit 4831 // conversion sequence is a user-defined conversion sequence. If multiple 4832 // constructors are viable but none is better than the others, the 4833 // implicit conversion sequence is a user-defined conversion sequence. 4834 if (ToType->isRecordType() && !ToType->isAggregateType()) { 4835 // This function can deal with initializer lists. 4836 return TryUserDefinedConversion(S, From, ToType, SuppressUserConversions, 4837 /*AllowExplicit=*/false, 4838 InOverloadResolution, /*CStyle=*/false, 4839 AllowObjCWritebackConversion, 4840 /*AllowObjCConversionOnExplicit=*/false); 4841 } 4842 4843 // C++14 [over.ics.list]p5: 4844 // C++11 [over.ics.list]p4: 4845 // Otherwise, if the parameter has an aggregate type which can be 4846 // initialized from the initializer list [...] the implicit conversion 4847 // sequence is a user-defined conversion sequence. 4848 if (ToType->isAggregateType()) { 4849 // Type is an aggregate, argument is an init list. At this point it comes 4850 // down to checking whether the initialization works. 4851 // FIXME: Find out whether this parameter is consumed or not. 4852 // FIXME: Expose SemaInit's aggregate initialization code so that we don't 4853 // need to call into the initialization code here; overload resolution 4854 // should not be doing that. 4855 InitializedEntity Entity = 4856 InitializedEntity::InitializeParameter(S.Context, ToType, 4857 /*Consumed=*/false); 4858 if (S.CanPerformCopyInitialization(Entity, From)) { 4859 Result.setUserDefined(); 4860 Result.UserDefined.Before.setAsIdentityConversion(); 4861 // Initializer lists don't have a type. 4862 Result.UserDefined.Before.setFromType(QualType()); 4863 Result.UserDefined.Before.setAllToTypes(QualType()); 4864 4865 Result.UserDefined.After.setAsIdentityConversion(); 4866 Result.UserDefined.After.setFromType(ToType); 4867 Result.UserDefined.After.setAllToTypes(ToType); 4868 Result.UserDefined.ConversionFunction = nullptr; 4869 } 4870 return Result; 4871 } 4872 4873 // C++14 [over.ics.list]p6: 4874 // C++11 [over.ics.list]p5: 4875 // Otherwise, if the parameter is a reference, see 13.3.3.1.4. 4876 if (ToType->isReferenceType()) { 4877 // The standard is notoriously unclear here, since 13.3.3.1.4 doesn't 4878 // mention initializer lists in any way. So we go by what list- 4879 // initialization would do and try to extrapolate from that. 4880 4881 QualType T1 = ToType->getAs<ReferenceType>()->getPointeeType(); 4882 4883 // If the initializer list has a single element that is reference-related 4884 // to the parameter type, we initialize the reference from that. 4885 if (From->getNumInits() == 1) { 4886 Expr *Init = From->getInit(0); 4887 4888 QualType T2 = Init->getType(); 4889 4890 // If the initializer is the address of an overloaded function, try 4891 // to resolve the overloaded function. If all goes well, T2 is the 4892 // type of the resulting function. 4893 if (S.Context.getCanonicalType(T2) == S.Context.OverloadTy) { 4894 DeclAccessPair Found; 4895 if (FunctionDecl *Fn = S.ResolveAddressOfOverloadedFunction( 4896 Init, ToType, false, Found)) 4897 T2 = Fn->getType(); 4898 } 4899 4900 // Compute some basic properties of the types and the initializer. 4901 bool dummy1 = false; 4902 bool dummy2 = false; 4903 bool dummy3 = false; 4904 Sema::ReferenceCompareResult RefRelationship 4905 = S.CompareReferenceRelationship(From->getLocStart(), T1, T2, dummy1, 4906 dummy2, dummy3); 4907 4908 if (RefRelationship >= Sema::Ref_Related) { 4909 return TryReferenceInit(S, Init, ToType, /*FIXME*/From->getLocStart(), 4910 SuppressUserConversions, 4911 /*AllowExplicit=*/false); 4912 } 4913 } 4914 4915 // Otherwise, we bind the reference to a temporary created from the 4916 // initializer list. 4917 Result = TryListConversion(S, From, T1, SuppressUserConversions, 4918 InOverloadResolution, 4919 AllowObjCWritebackConversion); 4920 if (Result.isFailure()) 4921 return Result; 4922 assert(!Result.isEllipsis() && 4923 "Sub-initialization cannot result in ellipsis conversion."); 4924 4925 // Can we even bind to a temporary? 4926 if (ToType->isRValueReferenceType() || 4927 (T1.isConstQualified() && !T1.isVolatileQualified())) { 4928 StandardConversionSequence &SCS = Result.isStandard() ? Result.Standard : 4929 Result.UserDefined.After; 4930 SCS.ReferenceBinding = true; 4931 SCS.IsLvalueReference = ToType->isLValueReferenceType(); 4932 SCS.BindsToRvalue = true; 4933 SCS.BindsToFunctionLvalue = false; 4934 SCS.BindsImplicitObjectArgumentWithoutRefQualifier = false; 4935 SCS.ObjCLifetimeConversionBinding = false; 4936 } else 4937 Result.setBad(BadConversionSequence::lvalue_ref_to_rvalue, 4938 From, ToType); 4939 return Result; 4940 } 4941 4942 // C++14 [over.ics.list]p7: 4943 // C++11 [over.ics.list]p6: 4944 // Otherwise, if the parameter type is not a class: 4945 if (!ToType->isRecordType()) { 4946 // - if the initializer list has one element that is not itself an 4947 // initializer list, the implicit conversion sequence is the one 4948 // required to convert the element to the parameter type. 4949 unsigned NumInits = From->getNumInits(); 4950 if (NumInits == 1 && !isa<InitListExpr>(From->getInit(0))) 4951 Result = TryCopyInitialization(S, From->getInit(0), ToType, 4952 SuppressUserConversions, 4953 InOverloadResolution, 4954 AllowObjCWritebackConversion); 4955 // - if the initializer list has no elements, the implicit conversion 4956 // sequence is the identity conversion. 4957 else if (NumInits == 0) { 4958 Result.setStandard(); 4959 Result.Standard.setAsIdentityConversion(); 4960 Result.Standard.setFromType(ToType); 4961 Result.Standard.setAllToTypes(ToType); 4962 } 4963 return Result; 4964 } 4965 4966 // C++14 [over.ics.list]p8: 4967 // C++11 [over.ics.list]p7: 4968 // In all cases other than those enumerated above, no conversion is possible 4969 return Result; 4970 } 4971 4972 /// TryCopyInitialization - Try to copy-initialize a value of type 4973 /// ToType from the expression From. Return the implicit conversion 4974 /// sequence required to pass this argument, which may be a bad 4975 /// conversion sequence (meaning that the argument cannot be passed to 4976 /// a parameter of this type). If @p SuppressUserConversions, then we 4977 /// do not permit any user-defined conversion sequences. 4978 static ImplicitConversionSequence 4979 TryCopyInitialization(Sema &S, Expr *From, QualType ToType, 4980 bool SuppressUserConversions, 4981 bool InOverloadResolution, 4982 bool AllowObjCWritebackConversion, 4983 bool AllowExplicit) { 4984 if (InitListExpr *FromInitList = dyn_cast<InitListExpr>(From)) 4985 return TryListConversion(S, FromInitList, ToType, SuppressUserConversions, 4986 InOverloadResolution,AllowObjCWritebackConversion); 4987 4988 if (ToType->isReferenceType()) 4989 return TryReferenceInit(S, From, ToType, 4990 /*FIXME:*/From->getLocStart(), 4991 SuppressUserConversions, 4992 AllowExplicit); 4993 4994 return TryImplicitConversion(S, From, ToType, 4995 SuppressUserConversions, 4996 /*AllowExplicit=*/false, 4997 InOverloadResolution, 4998 /*CStyle=*/false, 4999 AllowObjCWritebackConversion, 5000 /*AllowObjCConversionOnExplicit=*/false); 5001 } 5002 5003 static bool TryCopyInitialization(const CanQualType FromQTy, 5004 const CanQualType ToQTy, 5005 Sema &S, 5006 SourceLocation Loc, 5007 ExprValueKind FromVK) { 5008 OpaqueValueExpr TmpExpr(Loc, FromQTy, FromVK); 5009 ImplicitConversionSequence ICS = 5010 TryCopyInitialization(S, &TmpExpr, ToQTy, true, true, false); 5011 5012 return !ICS.isBad(); 5013 } 5014 5015 /// TryObjectArgumentInitialization - Try to initialize the object 5016 /// parameter of the given member function (@c Method) from the 5017 /// expression @p From. 5018 static ImplicitConversionSequence 5019 TryObjectArgumentInitialization(Sema &S, SourceLocation Loc, QualType FromType, 5020 Expr::Classification FromClassification, 5021 CXXMethodDecl *Method, 5022 CXXRecordDecl *ActingContext) { 5023 QualType ClassType = S.Context.getTypeDeclType(ActingContext); 5024 // [class.dtor]p2: A destructor can be invoked for a const, volatile or 5025 // const volatile object. 5026 unsigned Quals = isa<CXXDestructorDecl>(Method) ? 5027 Qualifiers::Const | Qualifiers::Volatile : Method->getTypeQualifiers(); 5028 QualType ImplicitParamType = S.Context.getCVRQualifiedType(ClassType, Quals); 5029 5030 // Set up the conversion sequence as a "bad" conversion, to allow us 5031 // to exit early. 5032 ImplicitConversionSequence ICS; 5033 5034 // We need to have an object of class type. 5035 if (const PointerType *PT = FromType->getAs<PointerType>()) { 5036 FromType = PT->getPointeeType(); 5037 5038 // When we had a pointer, it's implicitly dereferenced, so we 5039 // better have an lvalue. 5040 assert(FromClassification.isLValue()); 5041 } 5042 5043 assert(FromType->isRecordType()); 5044 5045 // C++0x [over.match.funcs]p4: 5046 // For non-static member functions, the type of the implicit object 5047 // parameter is 5048 // 5049 // - "lvalue reference to cv X" for functions declared without a 5050 // ref-qualifier or with the & ref-qualifier 5051 // - "rvalue reference to cv X" for functions declared with the && 5052 // ref-qualifier 5053 // 5054 // where X is the class of which the function is a member and cv is the 5055 // cv-qualification on the member function declaration. 5056 // 5057 // However, when finding an implicit conversion sequence for the argument, we 5058 // are not allowed to perform user-defined conversions 5059 // (C++ [over.match.funcs]p5). We perform a simplified version of 5060 // reference binding here, that allows class rvalues to bind to 5061 // non-constant references. 5062 5063 // First check the qualifiers. 5064 QualType FromTypeCanon = S.Context.getCanonicalType(FromType); 5065 if (ImplicitParamType.getCVRQualifiers() 5066 != FromTypeCanon.getLocalCVRQualifiers() && 5067 !ImplicitParamType.isAtLeastAsQualifiedAs(FromTypeCanon)) { 5068 ICS.setBad(BadConversionSequence::bad_qualifiers, 5069 FromType, ImplicitParamType); 5070 return ICS; 5071 } 5072 5073 // Check that we have either the same type or a derived type. It 5074 // affects the conversion rank. 5075 QualType ClassTypeCanon = S.Context.getCanonicalType(ClassType); 5076 ImplicitConversionKind SecondKind; 5077 if (ClassTypeCanon == FromTypeCanon.getLocalUnqualifiedType()) { 5078 SecondKind = ICK_Identity; 5079 } else if (S.IsDerivedFrom(Loc, FromType, ClassType)) 5080 SecondKind = ICK_Derived_To_Base; 5081 else { 5082 ICS.setBad(BadConversionSequence::unrelated_class, 5083 FromType, ImplicitParamType); 5084 return ICS; 5085 } 5086 5087 // Check the ref-qualifier. 5088 switch (Method->getRefQualifier()) { 5089 case RQ_None: 5090 // Do nothing; we don't care about lvalueness or rvalueness. 5091 break; 5092 5093 case RQ_LValue: 5094 if (!FromClassification.isLValue() && Quals != Qualifiers::Const) { 5095 // non-const lvalue reference cannot bind to an rvalue 5096 ICS.setBad(BadConversionSequence::lvalue_ref_to_rvalue, FromType, 5097 ImplicitParamType); 5098 return ICS; 5099 } 5100 break; 5101 5102 case RQ_RValue: 5103 if (!FromClassification.isRValue()) { 5104 // rvalue reference cannot bind to an lvalue 5105 ICS.setBad(BadConversionSequence::rvalue_ref_to_lvalue, FromType, 5106 ImplicitParamType); 5107 return ICS; 5108 } 5109 break; 5110 } 5111 5112 // Success. Mark this as a reference binding. 5113 ICS.setStandard(); 5114 ICS.Standard.setAsIdentityConversion(); 5115 ICS.Standard.Second = SecondKind; 5116 ICS.Standard.setFromType(FromType); 5117 ICS.Standard.setAllToTypes(ImplicitParamType); 5118 ICS.Standard.ReferenceBinding = true; 5119 ICS.Standard.DirectBinding = true; 5120 ICS.Standard.IsLvalueReference = Method->getRefQualifier() != RQ_RValue; 5121 ICS.Standard.BindsToFunctionLvalue = false; 5122 ICS.Standard.BindsToRvalue = FromClassification.isRValue(); 5123 ICS.Standard.BindsImplicitObjectArgumentWithoutRefQualifier 5124 = (Method->getRefQualifier() == RQ_None); 5125 return ICS; 5126 } 5127 5128 /// PerformObjectArgumentInitialization - Perform initialization of 5129 /// the implicit object parameter for the given Method with the given 5130 /// expression. 5131 ExprResult 5132 Sema::PerformObjectArgumentInitialization(Expr *From, 5133 NestedNameSpecifier *Qualifier, 5134 NamedDecl *FoundDecl, 5135 CXXMethodDecl *Method) { 5136 QualType FromRecordType, DestType; 5137 QualType ImplicitParamRecordType = 5138 Method->getThisType(Context)->getAs<PointerType>()->getPointeeType(); 5139 5140 Expr::Classification FromClassification; 5141 if (const PointerType *PT = From->getType()->getAs<PointerType>()) { 5142 FromRecordType = PT->getPointeeType(); 5143 DestType = Method->getThisType(Context); 5144 FromClassification = Expr::Classification::makeSimpleLValue(); 5145 } else { 5146 FromRecordType = From->getType(); 5147 DestType = ImplicitParamRecordType; 5148 FromClassification = From->Classify(Context); 5149 } 5150 5151 // Note that we always use the true parent context when performing 5152 // the actual argument initialization. 5153 ImplicitConversionSequence ICS = TryObjectArgumentInitialization( 5154 *this, From->getLocStart(), From->getType(), FromClassification, Method, 5155 Method->getParent()); 5156 if (ICS.isBad()) { 5157 switch (ICS.Bad.Kind) { 5158 case BadConversionSequence::bad_qualifiers: { 5159 Qualifiers FromQs = FromRecordType.getQualifiers(); 5160 Qualifiers ToQs = DestType.getQualifiers(); 5161 unsigned CVR = FromQs.getCVRQualifiers() & ~ToQs.getCVRQualifiers(); 5162 if (CVR) { 5163 Diag(From->getLocStart(), 5164 diag::err_member_function_call_bad_cvr) 5165 << Method->getDeclName() << FromRecordType << (CVR - 1) 5166 << From->getSourceRange(); 5167 Diag(Method->getLocation(), diag::note_previous_decl) 5168 << Method->getDeclName(); 5169 return ExprError(); 5170 } 5171 break; 5172 } 5173 5174 case BadConversionSequence::lvalue_ref_to_rvalue: 5175 case BadConversionSequence::rvalue_ref_to_lvalue: { 5176 bool IsRValueQualified = 5177 Method->getRefQualifier() == RefQualifierKind::RQ_RValue; 5178 Diag(From->getLocStart(), diag::err_member_function_call_bad_ref) 5179 << Method->getDeclName() << FromClassification.isRValue() 5180 << IsRValueQualified; 5181 Diag(Method->getLocation(), diag::note_previous_decl) 5182 << Method->getDeclName(); 5183 return ExprError(); 5184 } 5185 5186 case BadConversionSequence::no_conversion: 5187 case BadConversionSequence::unrelated_class: 5188 break; 5189 } 5190 5191 return Diag(From->getLocStart(), 5192 diag::err_member_function_call_bad_type) 5193 << ImplicitParamRecordType << FromRecordType << From->getSourceRange(); 5194 } 5195 5196 if (ICS.Standard.Second == ICK_Derived_To_Base) { 5197 ExprResult FromRes = 5198 PerformObjectMemberConversion(From, Qualifier, FoundDecl, Method); 5199 if (FromRes.isInvalid()) 5200 return ExprError(); 5201 From = FromRes.get(); 5202 } 5203 5204 if (!Context.hasSameType(From->getType(), DestType)) 5205 From = ImpCastExprToType(From, DestType, CK_NoOp, 5206 From->getValueKind()).get(); 5207 return From; 5208 } 5209 5210 /// TryContextuallyConvertToBool - Attempt to contextually convert the 5211 /// expression From to bool (C++0x [conv]p3). 5212 static ImplicitConversionSequence 5213 TryContextuallyConvertToBool(Sema &S, Expr *From) { 5214 return TryImplicitConversion(S, From, S.Context.BoolTy, 5215 /*SuppressUserConversions=*/false, 5216 /*AllowExplicit=*/true, 5217 /*InOverloadResolution=*/false, 5218 /*CStyle=*/false, 5219 /*AllowObjCWritebackConversion=*/false, 5220 /*AllowObjCConversionOnExplicit=*/false); 5221 } 5222 5223 /// PerformContextuallyConvertToBool - Perform a contextual conversion 5224 /// of the expression From to bool (C++0x [conv]p3). 5225 ExprResult Sema::PerformContextuallyConvertToBool(Expr *From) { 5226 if (checkPlaceholderForOverload(*this, From)) 5227 return ExprError(); 5228 5229 ImplicitConversionSequence ICS = TryContextuallyConvertToBool(*this, From); 5230 if (!ICS.isBad()) 5231 return PerformImplicitConversion(From, Context.BoolTy, ICS, AA_Converting); 5232 5233 if (!DiagnoseMultipleUserDefinedConversion(From, Context.BoolTy)) 5234 return Diag(From->getLocStart(), 5235 diag::err_typecheck_bool_condition) 5236 << From->getType() << From->getSourceRange(); 5237 return ExprError(); 5238 } 5239 5240 /// Check that the specified conversion is permitted in a converted constant 5241 /// expression, according to C++11 [expr.const]p3. Return true if the conversion 5242 /// is acceptable. 5243 static bool CheckConvertedConstantConversions(Sema &S, 5244 StandardConversionSequence &SCS) { 5245 // Since we know that the target type is an integral or unscoped enumeration 5246 // type, most conversion kinds are impossible. All possible First and Third 5247 // conversions are fine. 5248 switch (SCS.Second) { 5249 case ICK_Identity: 5250 case ICK_Function_Conversion: 5251 case ICK_Integral_Promotion: 5252 case ICK_Integral_Conversion: // Narrowing conversions are checked elsewhere. 5253 case ICK_Zero_Queue_Conversion: 5254 return true; 5255 5256 case ICK_Boolean_Conversion: 5257 // Conversion from an integral or unscoped enumeration type to bool is 5258 // classified as ICK_Boolean_Conversion, but it's also arguably an integral 5259 // conversion, so we allow it in a converted constant expression. 5260 // 5261 // FIXME: Per core issue 1407, we should not allow this, but that breaks 5262 // a lot of popular code. We should at least add a warning for this 5263 // (non-conforming) extension. 5264 return SCS.getFromType()->isIntegralOrUnscopedEnumerationType() && 5265 SCS.getToType(2)->isBooleanType(); 5266 5267 case ICK_Pointer_Conversion: 5268 case ICK_Pointer_Member: 5269 // C++1z: null pointer conversions and null member pointer conversions are 5270 // only permitted if the source type is std::nullptr_t. 5271 return SCS.getFromType()->isNullPtrType(); 5272 5273 case ICK_Floating_Promotion: 5274 case ICK_Complex_Promotion: 5275 case ICK_Floating_Conversion: 5276 case ICK_Complex_Conversion: 5277 case ICK_Floating_Integral: 5278 case ICK_Compatible_Conversion: 5279 case ICK_Derived_To_Base: 5280 case ICK_Vector_Conversion: 5281 case ICK_Vector_Splat: 5282 case ICK_Complex_Real: 5283 case ICK_Block_Pointer_Conversion: 5284 case ICK_TransparentUnionConversion: 5285 case ICK_Writeback_Conversion: 5286 case ICK_Zero_Event_Conversion: 5287 case ICK_C_Only_Conversion: 5288 case ICK_Incompatible_Pointer_Conversion: 5289 return false; 5290 5291 case ICK_Lvalue_To_Rvalue: 5292 case ICK_Array_To_Pointer: 5293 case ICK_Function_To_Pointer: 5294 llvm_unreachable("found a first conversion kind in Second"); 5295 5296 case ICK_Qualification: 5297 llvm_unreachable("found a third conversion kind in Second"); 5298 5299 case ICK_Num_Conversion_Kinds: 5300 break; 5301 } 5302 5303 llvm_unreachable("unknown conversion kind"); 5304 } 5305 5306 /// CheckConvertedConstantExpression - Check that the expression From is a 5307 /// converted constant expression of type T, perform the conversion and produce 5308 /// the converted expression, per C++11 [expr.const]p3. 5309 static ExprResult CheckConvertedConstantExpression(Sema &S, Expr *From, 5310 QualType T, APValue &Value, 5311 Sema::CCEKind CCE, 5312 bool RequireInt) { 5313 assert(S.getLangOpts().CPlusPlus11 && 5314 "converted constant expression outside C++11"); 5315 5316 if (checkPlaceholderForOverload(S, From)) 5317 return ExprError(); 5318 5319 // C++1z [expr.const]p3: 5320 // A converted constant expression of type T is an expression, 5321 // implicitly converted to type T, where the converted 5322 // expression is a constant expression and the implicit conversion 5323 // sequence contains only [... list of conversions ...]. 5324 // C++1z [stmt.if]p2: 5325 // If the if statement is of the form if constexpr, the value of the 5326 // condition shall be a contextually converted constant expression of type 5327 // bool. 5328 ImplicitConversionSequence ICS = 5329 CCE == Sema::CCEK_ConstexprIf 5330 ? TryContextuallyConvertToBool(S, From) 5331 : TryCopyInitialization(S, From, T, 5332 /*SuppressUserConversions=*/false, 5333 /*InOverloadResolution=*/false, 5334 /*AllowObjcWritebackConversion=*/false, 5335 /*AllowExplicit=*/false); 5336 StandardConversionSequence *SCS = nullptr; 5337 switch (ICS.getKind()) { 5338 case ImplicitConversionSequence::StandardConversion: 5339 SCS = &ICS.Standard; 5340 break; 5341 case ImplicitConversionSequence::UserDefinedConversion: 5342 // We are converting to a non-class type, so the Before sequence 5343 // must be trivial. 5344 SCS = &ICS.UserDefined.After; 5345 break; 5346 case ImplicitConversionSequence::AmbiguousConversion: 5347 case ImplicitConversionSequence::BadConversion: 5348 if (!S.DiagnoseMultipleUserDefinedConversion(From, T)) 5349 return S.Diag(From->getLocStart(), 5350 diag::err_typecheck_converted_constant_expression) 5351 << From->getType() << From->getSourceRange() << T; 5352 return ExprError(); 5353 5354 case ImplicitConversionSequence::EllipsisConversion: 5355 llvm_unreachable("ellipsis conversion in converted constant expression"); 5356 } 5357 5358 // Check that we would only use permitted conversions. 5359 if (!CheckConvertedConstantConversions(S, *SCS)) { 5360 return S.Diag(From->getLocStart(), 5361 diag::err_typecheck_converted_constant_expression_disallowed) 5362 << From->getType() << From->getSourceRange() << T; 5363 } 5364 // [...] and where the reference binding (if any) binds directly. 5365 if (SCS->ReferenceBinding && !SCS->DirectBinding) { 5366 return S.Diag(From->getLocStart(), 5367 diag::err_typecheck_converted_constant_expression_indirect) 5368 << From->getType() << From->getSourceRange() << T; 5369 } 5370 5371 ExprResult Result = 5372 S.PerformImplicitConversion(From, T, ICS, Sema::AA_Converting); 5373 if (Result.isInvalid()) 5374 return Result; 5375 5376 // Check for a narrowing implicit conversion. 5377 APValue PreNarrowingValue; 5378 QualType PreNarrowingType; 5379 switch (SCS->getNarrowingKind(S.Context, Result.get(), PreNarrowingValue, 5380 PreNarrowingType)) { 5381 case NK_Dependent_Narrowing: 5382 // Implicit conversion to a narrower type, but the expression is 5383 // value-dependent so we can't tell whether it's actually narrowing. 5384 case NK_Variable_Narrowing: 5385 // Implicit conversion to a narrower type, and the value is not a constant 5386 // expression. We'll diagnose this in a moment. 5387 case NK_Not_Narrowing: 5388 break; 5389 5390 case NK_Constant_Narrowing: 5391 S.Diag(From->getLocStart(), diag::ext_cce_narrowing) 5392 << CCE << /*Constant*/1 5393 << PreNarrowingValue.getAsString(S.Context, PreNarrowingType) << T; 5394 break; 5395 5396 case NK_Type_Narrowing: 5397 S.Diag(From->getLocStart(), diag::ext_cce_narrowing) 5398 << CCE << /*Constant*/0 << From->getType() << T; 5399 break; 5400 } 5401 5402 if (Result.get()->isValueDependent()) { 5403 Value = APValue(); 5404 return Result; 5405 } 5406 5407 // Check the expression is a constant expression. 5408 SmallVector<PartialDiagnosticAt, 8> Notes; 5409 Expr::EvalResult Eval; 5410 Eval.Diag = &Notes; 5411 Expr::ConstExprUsage Usage = CCE == Sema::CCEK_TemplateArg 5412 ? Expr::EvaluateForMangling 5413 : Expr::EvaluateForCodeGen; 5414 5415 if (!Result.get()->EvaluateAsConstantExpr(Eval, Usage, S.Context) || 5416 (RequireInt && !Eval.Val.isInt())) { 5417 // The expression can't be folded, so we can't keep it at this position in 5418 // the AST. 5419 Result = ExprError(); 5420 } else { 5421 Value = Eval.Val; 5422 5423 if (Notes.empty()) { 5424 // It's a constant expression. 5425 return Result; 5426 } 5427 } 5428 5429 // It's not a constant expression. Produce an appropriate diagnostic. 5430 if (Notes.size() == 1 && 5431 Notes[0].second.getDiagID() == diag::note_invalid_subexpr_in_const_expr) 5432 S.Diag(Notes[0].first, diag::err_expr_not_cce) << CCE; 5433 else { 5434 S.Diag(From->getLocStart(), diag::err_expr_not_cce) 5435 << CCE << From->getSourceRange(); 5436 for (unsigned I = 0; I < Notes.size(); ++I) 5437 S.Diag(Notes[I].first, Notes[I].second); 5438 } 5439 return ExprError(); 5440 } 5441 5442 ExprResult Sema::CheckConvertedConstantExpression(Expr *From, QualType T, 5443 APValue &Value, CCEKind CCE) { 5444 return ::CheckConvertedConstantExpression(*this, From, T, Value, CCE, false); 5445 } 5446 5447 ExprResult Sema::CheckConvertedConstantExpression(Expr *From, QualType T, 5448 llvm::APSInt &Value, 5449 CCEKind CCE) { 5450 assert(T->isIntegralOrEnumerationType() && "unexpected converted const type"); 5451 5452 APValue V; 5453 auto R = ::CheckConvertedConstantExpression(*this, From, T, V, CCE, true); 5454 if (!R.isInvalid() && !R.get()->isValueDependent()) 5455 Value = V.getInt(); 5456 return R; 5457 } 5458 5459 5460 /// dropPointerConversions - If the given standard conversion sequence 5461 /// involves any pointer conversions, remove them. This may change 5462 /// the result type of the conversion sequence. 5463 static void dropPointerConversion(StandardConversionSequence &SCS) { 5464 if (SCS.Second == ICK_Pointer_Conversion) { 5465 SCS.Second = ICK_Identity; 5466 SCS.Third = ICK_Identity; 5467 SCS.ToTypePtrs[2] = SCS.ToTypePtrs[1] = SCS.ToTypePtrs[0]; 5468 } 5469 } 5470 5471 /// TryContextuallyConvertToObjCPointer - Attempt to contextually 5472 /// convert the expression From to an Objective-C pointer type. 5473 static ImplicitConversionSequence 5474 TryContextuallyConvertToObjCPointer(Sema &S, Expr *From) { 5475 // Do an implicit conversion to 'id'. 5476 QualType Ty = S.Context.getObjCIdType(); 5477 ImplicitConversionSequence ICS 5478 = TryImplicitConversion(S, From, Ty, 5479 // FIXME: Are these flags correct? 5480 /*SuppressUserConversions=*/false, 5481 /*AllowExplicit=*/true, 5482 /*InOverloadResolution=*/false, 5483 /*CStyle=*/false, 5484 /*AllowObjCWritebackConversion=*/false, 5485 /*AllowObjCConversionOnExplicit=*/true); 5486 5487 // Strip off any final conversions to 'id'. 5488 switch (ICS.getKind()) { 5489 case ImplicitConversionSequence::BadConversion: 5490 case ImplicitConversionSequence::AmbiguousConversion: 5491 case ImplicitConversionSequence::EllipsisConversion: 5492 break; 5493 5494 case ImplicitConversionSequence::UserDefinedConversion: 5495 dropPointerConversion(ICS.UserDefined.After); 5496 break; 5497 5498 case ImplicitConversionSequence::StandardConversion: 5499 dropPointerConversion(ICS.Standard); 5500 break; 5501 } 5502 5503 return ICS; 5504 } 5505 5506 /// PerformContextuallyConvertToObjCPointer - Perform a contextual 5507 /// conversion of the expression From to an Objective-C pointer type. 5508 /// Returns a valid but null ExprResult if no conversion sequence exists. 5509 ExprResult Sema::PerformContextuallyConvertToObjCPointer(Expr *From) { 5510 if (checkPlaceholderForOverload(*this, From)) 5511 return ExprError(); 5512 5513 QualType Ty = Context.getObjCIdType(); 5514 ImplicitConversionSequence ICS = 5515 TryContextuallyConvertToObjCPointer(*this, From); 5516 if (!ICS.isBad()) 5517 return PerformImplicitConversion(From, Ty, ICS, AA_Converting); 5518 return ExprResult(); 5519 } 5520 5521 /// Determine whether the provided type is an integral type, or an enumeration 5522 /// type of a permitted flavor. 5523 bool Sema::ICEConvertDiagnoser::match(QualType T) { 5524 return AllowScopedEnumerations ? T->isIntegralOrEnumerationType() 5525 : T->isIntegralOrUnscopedEnumerationType(); 5526 } 5527 5528 static ExprResult 5529 diagnoseAmbiguousConversion(Sema &SemaRef, SourceLocation Loc, Expr *From, 5530 Sema::ContextualImplicitConverter &Converter, 5531 QualType T, UnresolvedSetImpl &ViableConversions) { 5532 5533 if (Converter.Suppress) 5534 return ExprError(); 5535 5536 Converter.diagnoseAmbiguous(SemaRef, Loc, T) << From->getSourceRange(); 5537 for (unsigned I = 0, N = ViableConversions.size(); I != N; ++I) { 5538 CXXConversionDecl *Conv = 5539 cast<CXXConversionDecl>(ViableConversions[I]->getUnderlyingDecl()); 5540 QualType ConvTy = Conv->getConversionType().getNonReferenceType(); 5541 Converter.noteAmbiguous(SemaRef, Conv, ConvTy); 5542 } 5543 return From; 5544 } 5545 5546 static bool 5547 diagnoseNoViableConversion(Sema &SemaRef, SourceLocation Loc, Expr *&From, 5548 Sema::ContextualImplicitConverter &Converter, 5549 QualType T, bool HadMultipleCandidates, 5550 UnresolvedSetImpl &ExplicitConversions) { 5551 if (ExplicitConversions.size() == 1 && !Converter.Suppress) { 5552 DeclAccessPair Found = ExplicitConversions[0]; 5553 CXXConversionDecl *Conversion = 5554 cast<CXXConversionDecl>(Found->getUnderlyingDecl()); 5555 5556 // The user probably meant to invoke the given explicit 5557 // conversion; use it. 5558 QualType ConvTy = Conversion->getConversionType().getNonReferenceType(); 5559 std::string TypeStr; 5560 ConvTy.getAsStringInternal(TypeStr, SemaRef.getPrintingPolicy()); 5561 5562 Converter.diagnoseExplicitConv(SemaRef, Loc, T, ConvTy) 5563 << FixItHint::CreateInsertion(From->getLocStart(), 5564 "static_cast<" + TypeStr + ">(") 5565 << FixItHint::CreateInsertion( 5566 SemaRef.getLocForEndOfToken(From->getLocEnd()), ")"); 5567 Converter.noteExplicitConv(SemaRef, Conversion, ConvTy); 5568 5569 // If we aren't in a SFINAE context, build a call to the 5570 // explicit conversion function. 5571 if (SemaRef.isSFINAEContext()) 5572 return true; 5573 5574 SemaRef.CheckMemberOperatorAccess(From->getExprLoc(), From, nullptr, Found); 5575 ExprResult Result = SemaRef.BuildCXXMemberCallExpr(From, Found, Conversion, 5576 HadMultipleCandidates); 5577 if (Result.isInvalid()) 5578 return true; 5579 // Record usage of conversion in an implicit cast. 5580 From = ImplicitCastExpr::Create(SemaRef.Context, Result.get()->getType(), 5581 CK_UserDefinedConversion, Result.get(), 5582 nullptr, Result.get()->getValueKind()); 5583 } 5584 return false; 5585 } 5586 5587 static bool recordConversion(Sema &SemaRef, SourceLocation Loc, Expr *&From, 5588 Sema::ContextualImplicitConverter &Converter, 5589 QualType T, bool HadMultipleCandidates, 5590 DeclAccessPair &Found) { 5591 CXXConversionDecl *Conversion = 5592 cast<CXXConversionDecl>(Found->getUnderlyingDecl()); 5593 SemaRef.CheckMemberOperatorAccess(From->getExprLoc(), From, nullptr, Found); 5594 5595 QualType ToType = Conversion->getConversionType().getNonReferenceType(); 5596 if (!Converter.SuppressConversion) { 5597 if (SemaRef.isSFINAEContext()) 5598 return true; 5599 5600 Converter.diagnoseConversion(SemaRef, Loc, T, ToType) 5601 << From->getSourceRange(); 5602 } 5603 5604 ExprResult Result = SemaRef.BuildCXXMemberCallExpr(From, Found, Conversion, 5605 HadMultipleCandidates); 5606 if (Result.isInvalid()) 5607 return true; 5608 // Record usage of conversion in an implicit cast. 5609 From = ImplicitCastExpr::Create(SemaRef.Context, Result.get()->getType(), 5610 CK_UserDefinedConversion, Result.get(), 5611 nullptr, Result.get()->getValueKind()); 5612 return false; 5613 } 5614 5615 static ExprResult finishContextualImplicitConversion( 5616 Sema &SemaRef, SourceLocation Loc, Expr *From, 5617 Sema::ContextualImplicitConverter &Converter) { 5618 if (!Converter.match(From->getType()) && !Converter.Suppress) 5619 Converter.diagnoseNoMatch(SemaRef, Loc, From->getType()) 5620 << From->getSourceRange(); 5621 5622 return SemaRef.DefaultLvalueConversion(From); 5623 } 5624 5625 static void 5626 collectViableConversionCandidates(Sema &SemaRef, Expr *From, QualType ToType, 5627 UnresolvedSetImpl &ViableConversions, 5628 OverloadCandidateSet &CandidateSet) { 5629 for (unsigned I = 0, N = ViableConversions.size(); I != N; ++I) { 5630 DeclAccessPair FoundDecl = ViableConversions[I]; 5631 NamedDecl *D = FoundDecl.getDecl(); 5632 CXXRecordDecl *ActingContext = cast<CXXRecordDecl>(D->getDeclContext()); 5633 if (isa<UsingShadowDecl>(D)) 5634 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 5635 5636 CXXConversionDecl *Conv; 5637 FunctionTemplateDecl *ConvTemplate; 5638 if ((ConvTemplate = dyn_cast<FunctionTemplateDecl>(D))) 5639 Conv = cast<CXXConversionDecl>(ConvTemplate->getTemplatedDecl()); 5640 else 5641 Conv = cast<CXXConversionDecl>(D); 5642 5643 if (ConvTemplate) 5644 SemaRef.AddTemplateConversionCandidate( 5645 ConvTemplate, FoundDecl, ActingContext, From, ToType, CandidateSet, 5646 /*AllowObjCConversionOnExplicit=*/false); 5647 else 5648 SemaRef.AddConversionCandidate(Conv, FoundDecl, ActingContext, From, 5649 ToType, CandidateSet, 5650 /*AllowObjCConversionOnExplicit=*/false); 5651 } 5652 } 5653 5654 /// Attempt to convert the given expression to a type which is accepted 5655 /// by the given converter. 5656 /// 5657 /// This routine will attempt to convert an expression of class type to a 5658 /// type accepted by the specified converter. In C++11 and before, the class 5659 /// must have a single non-explicit conversion function converting to a matching 5660 /// type. In C++1y, there can be multiple such conversion functions, but only 5661 /// one target type. 5662 /// 5663 /// \param Loc The source location of the construct that requires the 5664 /// conversion. 5665 /// 5666 /// \param From The expression we're converting from. 5667 /// 5668 /// \param Converter Used to control and diagnose the conversion process. 5669 /// 5670 /// \returns The expression, converted to an integral or enumeration type if 5671 /// successful. 5672 ExprResult Sema::PerformContextualImplicitConversion( 5673 SourceLocation Loc, Expr *From, ContextualImplicitConverter &Converter) { 5674 // We can't perform any more checking for type-dependent expressions. 5675 if (From->isTypeDependent()) 5676 return From; 5677 5678 // Process placeholders immediately. 5679 if (From->hasPlaceholderType()) { 5680 ExprResult result = CheckPlaceholderExpr(From); 5681 if (result.isInvalid()) 5682 return result; 5683 From = result.get(); 5684 } 5685 5686 // If the expression already has a matching type, we're golden. 5687 QualType T = From->getType(); 5688 if (Converter.match(T)) 5689 return DefaultLvalueConversion(From); 5690 5691 // FIXME: Check for missing '()' if T is a function type? 5692 5693 // We can only perform contextual implicit conversions on objects of class 5694 // type. 5695 const RecordType *RecordTy = T->getAs<RecordType>(); 5696 if (!RecordTy || !getLangOpts().CPlusPlus) { 5697 if (!Converter.Suppress) 5698 Converter.diagnoseNoMatch(*this, Loc, T) << From->getSourceRange(); 5699 return From; 5700 } 5701 5702 // We must have a complete class type. 5703 struct TypeDiagnoserPartialDiag : TypeDiagnoser { 5704 ContextualImplicitConverter &Converter; 5705 Expr *From; 5706 5707 TypeDiagnoserPartialDiag(ContextualImplicitConverter &Converter, Expr *From) 5708 : Converter(Converter), From(From) {} 5709 5710 void diagnose(Sema &S, SourceLocation Loc, QualType T) override { 5711 Converter.diagnoseIncomplete(S, Loc, T) << From->getSourceRange(); 5712 } 5713 } IncompleteDiagnoser(Converter, From); 5714 5715 if (Converter.Suppress ? !isCompleteType(Loc, T) 5716 : RequireCompleteType(Loc, T, IncompleteDiagnoser)) 5717 return From; 5718 5719 // Look for a conversion to an integral or enumeration type. 5720 UnresolvedSet<4> 5721 ViableConversions; // These are *potentially* viable in C++1y. 5722 UnresolvedSet<4> ExplicitConversions; 5723 const auto &Conversions = 5724 cast<CXXRecordDecl>(RecordTy->getDecl())->getVisibleConversionFunctions(); 5725 5726 bool HadMultipleCandidates = 5727 (std::distance(Conversions.begin(), Conversions.end()) > 1); 5728 5729 // To check that there is only one target type, in C++1y: 5730 QualType ToType; 5731 bool HasUniqueTargetType = true; 5732 5733 // Collect explicit or viable (potentially in C++1y) conversions. 5734 for (auto I = Conversions.begin(), E = Conversions.end(); I != E; ++I) { 5735 NamedDecl *D = (*I)->getUnderlyingDecl(); 5736 CXXConversionDecl *Conversion; 5737 FunctionTemplateDecl *ConvTemplate = dyn_cast<FunctionTemplateDecl>(D); 5738 if (ConvTemplate) { 5739 if (getLangOpts().CPlusPlus14) 5740 Conversion = cast<CXXConversionDecl>(ConvTemplate->getTemplatedDecl()); 5741 else 5742 continue; // C++11 does not consider conversion operator templates(?). 5743 } else 5744 Conversion = cast<CXXConversionDecl>(D); 5745 5746 assert((!ConvTemplate || getLangOpts().CPlusPlus14) && 5747 "Conversion operator templates are considered potentially " 5748 "viable in C++1y"); 5749 5750 QualType CurToType = Conversion->getConversionType().getNonReferenceType(); 5751 if (Converter.match(CurToType) || ConvTemplate) { 5752 5753 if (Conversion->isExplicit()) { 5754 // FIXME: For C++1y, do we need this restriction? 5755 // cf. diagnoseNoViableConversion() 5756 if (!ConvTemplate) 5757 ExplicitConversions.addDecl(I.getDecl(), I.getAccess()); 5758 } else { 5759 if (!ConvTemplate && getLangOpts().CPlusPlus14) { 5760 if (ToType.isNull()) 5761 ToType = CurToType.getUnqualifiedType(); 5762 else if (HasUniqueTargetType && 5763 (CurToType.getUnqualifiedType() != ToType)) 5764 HasUniqueTargetType = false; 5765 } 5766 ViableConversions.addDecl(I.getDecl(), I.getAccess()); 5767 } 5768 } 5769 } 5770 5771 if (getLangOpts().CPlusPlus14) { 5772 // C++1y [conv]p6: 5773 // ... An expression e of class type E appearing in such a context 5774 // is said to be contextually implicitly converted to a specified 5775 // type T and is well-formed if and only if e can be implicitly 5776 // converted to a type T that is determined as follows: E is searched 5777 // for conversion functions whose return type is cv T or reference to 5778 // cv T such that T is allowed by the context. There shall be 5779 // exactly one such T. 5780 5781 // If no unique T is found: 5782 if (ToType.isNull()) { 5783 if (diagnoseNoViableConversion(*this, Loc, From, Converter, T, 5784 HadMultipleCandidates, 5785 ExplicitConversions)) 5786 return ExprError(); 5787 return finishContextualImplicitConversion(*this, Loc, From, Converter); 5788 } 5789 5790 // If more than one unique Ts are found: 5791 if (!HasUniqueTargetType) 5792 return diagnoseAmbiguousConversion(*this, Loc, From, Converter, T, 5793 ViableConversions); 5794 5795 // If one unique T is found: 5796 // First, build a candidate set from the previously recorded 5797 // potentially viable conversions. 5798 OverloadCandidateSet CandidateSet(Loc, OverloadCandidateSet::CSK_Normal); 5799 collectViableConversionCandidates(*this, From, ToType, ViableConversions, 5800 CandidateSet); 5801 5802 // Then, perform overload resolution over the candidate set. 5803 OverloadCandidateSet::iterator Best; 5804 switch (CandidateSet.BestViableFunction(*this, Loc, Best)) { 5805 case OR_Success: { 5806 // Apply this conversion. 5807 DeclAccessPair Found = 5808 DeclAccessPair::make(Best->Function, Best->FoundDecl.getAccess()); 5809 if (recordConversion(*this, Loc, From, Converter, T, 5810 HadMultipleCandidates, Found)) 5811 return ExprError(); 5812 break; 5813 } 5814 case OR_Ambiguous: 5815 return diagnoseAmbiguousConversion(*this, Loc, From, Converter, T, 5816 ViableConversions); 5817 case OR_No_Viable_Function: 5818 if (diagnoseNoViableConversion(*this, Loc, From, Converter, T, 5819 HadMultipleCandidates, 5820 ExplicitConversions)) 5821 return ExprError(); 5822 LLVM_FALLTHROUGH; 5823 case OR_Deleted: 5824 // We'll complain below about a non-integral condition type. 5825 break; 5826 } 5827 } else { 5828 switch (ViableConversions.size()) { 5829 case 0: { 5830 if (diagnoseNoViableConversion(*this, Loc, From, Converter, T, 5831 HadMultipleCandidates, 5832 ExplicitConversions)) 5833 return ExprError(); 5834 5835 // We'll complain below about a non-integral condition type. 5836 break; 5837 } 5838 case 1: { 5839 // Apply this conversion. 5840 DeclAccessPair Found = ViableConversions[0]; 5841 if (recordConversion(*this, Loc, From, Converter, T, 5842 HadMultipleCandidates, Found)) 5843 return ExprError(); 5844 break; 5845 } 5846 default: 5847 return diagnoseAmbiguousConversion(*this, Loc, From, Converter, T, 5848 ViableConversions); 5849 } 5850 } 5851 5852 return finishContextualImplicitConversion(*this, Loc, From, Converter); 5853 } 5854 5855 /// IsAcceptableNonMemberOperatorCandidate - Determine whether Fn is 5856 /// an acceptable non-member overloaded operator for a call whose 5857 /// arguments have types T1 (and, if non-empty, T2). This routine 5858 /// implements the check in C++ [over.match.oper]p3b2 concerning 5859 /// enumeration types. 5860 static bool IsAcceptableNonMemberOperatorCandidate(ASTContext &Context, 5861 FunctionDecl *Fn, 5862 ArrayRef<Expr *> Args) { 5863 QualType T1 = Args[0]->getType(); 5864 QualType T2 = Args.size() > 1 ? Args[1]->getType() : QualType(); 5865 5866 if (T1->isDependentType() || (!T2.isNull() && T2->isDependentType())) 5867 return true; 5868 5869 if (T1->isRecordType() || (!T2.isNull() && T2->isRecordType())) 5870 return true; 5871 5872 const FunctionProtoType *Proto = Fn->getType()->getAs<FunctionProtoType>(); 5873 if (Proto->getNumParams() < 1) 5874 return false; 5875 5876 if (T1->isEnumeralType()) { 5877 QualType ArgType = Proto->getParamType(0).getNonReferenceType(); 5878 if (Context.hasSameUnqualifiedType(T1, ArgType)) 5879 return true; 5880 } 5881 5882 if (Proto->getNumParams() < 2) 5883 return false; 5884 5885 if (!T2.isNull() && T2->isEnumeralType()) { 5886 QualType ArgType = Proto->getParamType(1).getNonReferenceType(); 5887 if (Context.hasSameUnqualifiedType(T2, ArgType)) 5888 return true; 5889 } 5890 5891 return false; 5892 } 5893 5894 /// AddOverloadCandidate - Adds the given function to the set of 5895 /// candidate functions, using the given function call arguments. If 5896 /// @p SuppressUserConversions, then don't allow user-defined 5897 /// conversions via constructors or conversion operators. 5898 /// 5899 /// \param PartialOverloading true if we are performing "partial" overloading 5900 /// based on an incomplete set of function arguments. This feature is used by 5901 /// code completion. 5902 void 5903 Sema::AddOverloadCandidate(FunctionDecl *Function, 5904 DeclAccessPair FoundDecl, 5905 ArrayRef<Expr *> Args, 5906 OverloadCandidateSet &CandidateSet, 5907 bool SuppressUserConversions, 5908 bool PartialOverloading, 5909 bool AllowExplicit, 5910 ConversionSequenceList EarlyConversions) { 5911 const FunctionProtoType *Proto 5912 = dyn_cast<FunctionProtoType>(Function->getType()->getAs<FunctionType>()); 5913 assert(Proto && "Functions without a prototype cannot be overloaded"); 5914 assert(!Function->getDescribedFunctionTemplate() && 5915 "Use AddTemplateOverloadCandidate for function templates"); 5916 5917 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Function)) { 5918 if (!isa<CXXConstructorDecl>(Method)) { 5919 // If we get here, it's because we're calling a member function 5920 // that is named without a member access expression (e.g., 5921 // "this->f") that was either written explicitly or created 5922 // implicitly. This can happen with a qualified call to a member 5923 // function, e.g., X::f(). We use an empty type for the implied 5924 // object argument (C++ [over.call.func]p3), and the acting context 5925 // is irrelevant. 5926 AddMethodCandidate(Method, FoundDecl, Method->getParent(), QualType(), 5927 Expr::Classification::makeSimpleLValue(), Args, 5928 CandidateSet, SuppressUserConversions, 5929 PartialOverloading, EarlyConversions); 5930 return; 5931 } 5932 // We treat a constructor like a non-member function, since its object 5933 // argument doesn't participate in overload resolution. 5934 } 5935 5936 if (!CandidateSet.isNewCandidate(Function)) 5937 return; 5938 5939 // C++ [over.match.oper]p3: 5940 // if no operand has a class type, only those non-member functions in the 5941 // lookup set that have a first parameter of type T1 or "reference to 5942 // (possibly cv-qualified) T1", when T1 is an enumeration type, or (if there 5943 // is a right operand) a second parameter of type T2 or "reference to 5944 // (possibly cv-qualified) T2", when T2 is an enumeration type, are 5945 // candidate functions. 5946 if (CandidateSet.getKind() == OverloadCandidateSet::CSK_Operator && 5947 !IsAcceptableNonMemberOperatorCandidate(Context, Function, Args)) 5948 return; 5949 5950 // C++11 [class.copy]p11: [DR1402] 5951 // A defaulted move constructor that is defined as deleted is ignored by 5952 // overload resolution. 5953 CXXConstructorDecl *Constructor = dyn_cast<CXXConstructorDecl>(Function); 5954 if (Constructor && Constructor->isDefaulted() && Constructor->isDeleted() && 5955 Constructor->isMoveConstructor()) 5956 return; 5957 5958 // Overload resolution is always an unevaluated context. 5959 EnterExpressionEvaluationContext Unevaluated( 5960 *this, Sema::ExpressionEvaluationContext::Unevaluated); 5961 5962 // Add this candidate 5963 OverloadCandidate &Candidate = 5964 CandidateSet.addCandidate(Args.size(), EarlyConversions); 5965 Candidate.FoundDecl = FoundDecl; 5966 Candidate.Function = Function; 5967 Candidate.Viable = true; 5968 Candidate.IsSurrogate = false; 5969 Candidate.IgnoreObjectArgument = false; 5970 Candidate.ExplicitCallArguments = Args.size(); 5971 5972 if (Function->isMultiVersion() && 5973 !Function->getAttr<TargetAttr>()->isDefaultVersion()) { 5974 Candidate.Viable = false; 5975 Candidate.FailureKind = ovl_non_default_multiversion_function; 5976 return; 5977 } 5978 5979 if (Constructor) { 5980 // C++ [class.copy]p3: 5981 // A member function template is never instantiated to perform the copy 5982 // of a class object to an object of its class type. 5983 QualType ClassType = Context.getTypeDeclType(Constructor->getParent()); 5984 if (Args.size() == 1 && Constructor->isSpecializationCopyingObject() && 5985 (Context.hasSameUnqualifiedType(ClassType, Args[0]->getType()) || 5986 IsDerivedFrom(Args[0]->getLocStart(), Args[0]->getType(), 5987 ClassType))) { 5988 Candidate.Viable = false; 5989 Candidate.FailureKind = ovl_fail_illegal_constructor; 5990 return; 5991 } 5992 5993 // C++ [over.match.funcs]p8: (proposed DR resolution) 5994 // A constructor inherited from class type C that has a first parameter 5995 // of type "reference to P" (including such a constructor instantiated 5996 // from a template) is excluded from the set of candidate functions when 5997 // constructing an object of type cv D if the argument list has exactly 5998 // one argument and D is reference-related to P and P is reference-related 5999 // to C. 6000 auto *Shadow = dyn_cast<ConstructorUsingShadowDecl>(FoundDecl.getDecl()); 6001 if (Shadow && Args.size() == 1 && Constructor->getNumParams() >= 1 && 6002 Constructor->getParamDecl(0)->getType()->isReferenceType()) { 6003 QualType P = Constructor->getParamDecl(0)->getType()->getPointeeType(); 6004 QualType C = Context.getRecordType(Constructor->getParent()); 6005 QualType D = Context.getRecordType(Shadow->getParent()); 6006 SourceLocation Loc = Args.front()->getExprLoc(); 6007 if ((Context.hasSameUnqualifiedType(P, C) || IsDerivedFrom(Loc, P, C)) && 6008 (Context.hasSameUnqualifiedType(D, P) || IsDerivedFrom(Loc, D, P))) { 6009 Candidate.Viable = false; 6010 Candidate.FailureKind = ovl_fail_inhctor_slice; 6011 return; 6012 } 6013 } 6014 } 6015 6016 unsigned NumParams = Proto->getNumParams(); 6017 6018 // (C++ 13.3.2p2): A candidate function having fewer than m 6019 // parameters is viable only if it has an ellipsis in its parameter 6020 // list (8.3.5). 6021 if (TooManyArguments(NumParams, Args.size(), PartialOverloading) && 6022 !Proto->isVariadic()) { 6023 Candidate.Viable = false; 6024 Candidate.FailureKind = ovl_fail_too_many_arguments; 6025 return; 6026 } 6027 6028 // (C++ 13.3.2p2): A candidate function having more than m parameters 6029 // is viable only if the (m+1)st parameter has a default argument 6030 // (8.3.6). For the purposes of overload resolution, the 6031 // parameter list is truncated on the right, so that there are 6032 // exactly m parameters. 6033 unsigned MinRequiredArgs = Function->getMinRequiredArguments(); 6034 if (Args.size() < MinRequiredArgs && !PartialOverloading) { 6035 // Not enough arguments. 6036 Candidate.Viable = false; 6037 Candidate.FailureKind = ovl_fail_too_few_arguments; 6038 return; 6039 } 6040 6041 // (CUDA B.1): Check for invalid calls between targets. 6042 if (getLangOpts().CUDA) 6043 if (const FunctionDecl *Caller = dyn_cast<FunctionDecl>(CurContext)) 6044 // Skip the check for callers that are implicit members, because in this 6045 // case we may not yet know what the member's target is; the target is 6046 // inferred for the member automatically, based on the bases and fields of 6047 // the class. 6048 if (!Caller->isImplicit() && !IsAllowedCUDACall(Caller, Function)) { 6049 Candidate.Viable = false; 6050 Candidate.FailureKind = ovl_fail_bad_target; 6051 return; 6052 } 6053 6054 // Determine the implicit conversion sequences for each of the 6055 // arguments. 6056 for (unsigned ArgIdx = 0; ArgIdx < Args.size(); ++ArgIdx) { 6057 if (Candidate.Conversions[ArgIdx].isInitialized()) { 6058 // We already formed a conversion sequence for this parameter during 6059 // template argument deduction. 6060 } else if (ArgIdx < NumParams) { 6061 // (C++ 13.3.2p3): for F to be a viable function, there shall 6062 // exist for each argument an implicit conversion sequence 6063 // (13.3.3.1) that converts that argument to the corresponding 6064 // parameter of F. 6065 QualType ParamType = Proto->getParamType(ArgIdx); 6066 Candidate.Conversions[ArgIdx] 6067 = TryCopyInitialization(*this, Args[ArgIdx], ParamType, 6068 SuppressUserConversions, 6069 /*InOverloadResolution=*/true, 6070 /*AllowObjCWritebackConversion=*/ 6071 getLangOpts().ObjCAutoRefCount, 6072 AllowExplicit); 6073 if (Candidate.Conversions[ArgIdx].isBad()) { 6074 Candidate.Viable = false; 6075 Candidate.FailureKind = ovl_fail_bad_conversion; 6076 return; 6077 } 6078 } else { 6079 // (C++ 13.3.2p2): For the purposes of overload resolution, any 6080 // argument for which there is no corresponding parameter is 6081 // considered to ""match the ellipsis" (C+ 13.3.3.1.3). 6082 Candidate.Conversions[ArgIdx].setEllipsis(); 6083 } 6084 } 6085 6086 if (EnableIfAttr *FailedAttr = CheckEnableIf(Function, Args)) { 6087 Candidate.Viable = false; 6088 Candidate.FailureKind = ovl_fail_enable_if; 6089 Candidate.DeductionFailure.Data = FailedAttr; 6090 return; 6091 } 6092 6093 if (LangOpts.OpenCL && isOpenCLDisabledDecl(Function)) { 6094 Candidate.Viable = false; 6095 Candidate.FailureKind = ovl_fail_ext_disabled; 6096 return; 6097 } 6098 } 6099 6100 ObjCMethodDecl * 6101 Sema::SelectBestMethod(Selector Sel, MultiExprArg Args, bool IsInstance, 6102 SmallVectorImpl<ObjCMethodDecl *> &Methods) { 6103 if (Methods.size() <= 1) 6104 return nullptr; 6105 6106 for (unsigned b = 0, e = Methods.size(); b < e; b++) { 6107 bool Match = true; 6108 ObjCMethodDecl *Method = Methods[b]; 6109 unsigned NumNamedArgs = Sel.getNumArgs(); 6110 // Method might have more arguments than selector indicates. This is due 6111 // to addition of c-style arguments in method. 6112 if (Method->param_size() > NumNamedArgs) 6113 NumNamedArgs = Method->param_size(); 6114 if (Args.size() < NumNamedArgs) 6115 continue; 6116 6117 for (unsigned i = 0; i < NumNamedArgs; i++) { 6118 // We can't do any type-checking on a type-dependent argument. 6119 if (Args[i]->isTypeDependent()) { 6120 Match = false; 6121 break; 6122 } 6123 6124 ParmVarDecl *param = Method->parameters()[i]; 6125 Expr *argExpr = Args[i]; 6126 assert(argExpr && "SelectBestMethod(): missing expression"); 6127 6128 // Strip the unbridged-cast placeholder expression off unless it's 6129 // a consumed argument. 6130 if (argExpr->hasPlaceholderType(BuiltinType::ARCUnbridgedCast) && 6131 !param->hasAttr<CFConsumedAttr>()) 6132 argExpr = stripARCUnbridgedCast(argExpr); 6133 6134 // If the parameter is __unknown_anytype, move on to the next method. 6135 if (param->getType() == Context.UnknownAnyTy) { 6136 Match = false; 6137 break; 6138 } 6139 6140 ImplicitConversionSequence ConversionState 6141 = TryCopyInitialization(*this, argExpr, param->getType(), 6142 /*SuppressUserConversions*/false, 6143 /*InOverloadResolution=*/true, 6144 /*AllowObjCWritebackConversion=*/ 6145 getLangOpts().ObjCAutoRefCount, 6146 /*AllowExplicit*/false); 6147 // This function looks for a reasonably-exact match, so we consider 6148 // incompatible pointer conversions to be a failure here. 6149 if (ConversionState.isBad() || 6150 (ConversionState.isStandard() && 6151 ConversionState.Standard.Second == 6152 ICK_Incompatible_Pointer_Conversion)) { 6153 Match = false; 6154 break; 6155 } 6156 } 6157 // Promote additional arguments to variadic methods. 6158 if (Match && Method->isVariadic()) { 6159 for (unsigned i = NumNamedArgs, e = Args.size(); i < e; ++i) { 6160 if (Args[i]->isTypeDependent()) { 6161 Match = false; 6162 break; 6163 } 6164 ExprResult Arg = DefaultVariadicArgumentPromotion(Args[i], VariadicMethod, 6165 nullptr); 6166 if (Arg.isInvalid()) { 6167 Match = false; 6168 break; 6169 } 6170 } 6171 } else { 6172 // Check for extra arguments to non-variadic methods. 6173 if (Args.size() != NumNamedArgs) 6174 Match = false; 6175 else if (Match && NumNamedArgs == 0 && Methods.size() > 1) { 6176 // Special case when selectors have no argument. In this case, select 6177 // one with the most general result type of 'id'. 6178 for (unsigned b = 0, e = Methods.size(); b < e; b++) { 6179 QualType ReturnT = Methods[b]->getReturnType(); 6180 if (ReturnT->isObjCIdType()) 6181 return Methods[b]; 6182 } 6183 } 6184 } 6185 6186 if (Match) 6187 return Method; 6188 } 6189 return nullptr; 6190 } 6191 6192 static bool 6193 convertArgsForAvailabilityChecks(Sema &S, FunctionDecl *Function, Expr *ThisArg, 6194 ArrayRef<Expr *> Args, Sema::SFINAETrap &Trap, 6195 bool MissingImplicitThis, Expr *&ConvertedThis, 6196 SmallVectorImpl<Expr *> &ConvertedArgs) { 6197 if (ThisArg) { 6198 CXXMethodDecl *Method = cast<CXXMethodDecl>(Function); 6199 assert(!isa<CXXConstructorDecl>(Method) && 6200 "Shouldn't have `this` for ctors!"); 6201 assert(!Method->isStatic() && "Shouldn't have `this` for static methods!"); 6202 ExprResult R = S.PerformObjectArgumentInitialization( 6203 ThisArg, /*Qualifier=*/nullptr, Method, Method); 6204 if (R.isInvalid()) 6205 return false; 6206 ConvertedThis = R.get(); 6207 } else { 6208 if (auto *MD = dyn_cast<CXXMethodDecl>(Function)) { 6209 (void)MD; 6210 assert((MissingImplicitThis || MD->isStatic() || 6211 isa<CXXConstructorDecl>(MD)) && 6212 "Expected `this` for non-ctor instance methods"); 6213 } 6214 ConvertedThis = nullptr; 6215 } 6216 6217 // Ignore any variadic arguments. Converting them is pointless, since the 6218 // user can't refer to them in the function condition. 6219 unsigned ArgSizeNoVarargs = std::min(Function->param_size(), Args.size()); 6220 6221 // Convert the arguments. 6222 for (unsigned I = 0; I != ArgSizeNoVarargs; ++I) { 6223 ExprResult R; 6224 R = S.PerformCopyInitialization(InitializedEntity::InitializeParameter( 6225 S.Context, Function->getParamDecl(I)), 6226 SourceLocation(), Args[I]); 6227 6228 if (R.isInvalid()) 6229 return false; 6230 6231 ConvertedArgs.push_back(R.get()); 6232 } 6233 6234 if (Trap.hasErrorOccurred()) 6235 return false; 6236 6237 // Push default arguments if needed. 6238 if (!Function->isVariadic() && Args.size() < Function->getNumParams()) { 6239 for (unsigned i = Args.size(), e = Function->getNumParams(); i != e; ++i) { 6240 ParmVarDecl *P = Function->getParamDecl(i); 6241 Expr *DefArg = P->hasUninstantiatedDefaultArg() 6242 ? P->getUninstantiatedDefaultArg() 6243 : P->getDefaultArg(); 6244 // This can only happen in code completion, i.e. when PartialOverloading 6245 // is true. 6246 if (!DefArg) 6247 return false; 6248 ExprResult R = 6249 S.PerformCopyInitialization(InitializedEntity::InitializeParameter( 6250 S.Context, Function->getParamDecl(i)), 6251 SourceLocation(), DefArg); 6252 if (R.isInvalid()) 6253 return false; 6254 ConvertedArgs.push_back(R.get()); 6255 } 6256 6257 if (Trap.hasErrorOccurred()) 6258 return false; 6259 } 6260 return true; 6261 } 6262 6263 EnableIfAttr *Sema::CheckEnableIf(FunctionDecl *Function, ArrayRef<Expr *> Args, 6264 bool MissingImplicitThis) { 6265 auto EnableIfAttrs = Function->specific_attrs<EnableIfAttr>(); 6266 6267 if (EnableIfAttrs.begin() == EnableIfAttrs.end()) 6268 return nullptr; 6269 6270 SFINAETrap Trap(*this); 6271 SmallVector<Expr *, 16> ConvertedArgs; 6272 // FIXME: We should look into making enable_if late-parsed. 6273 Expr *DiscardedThis; 6274 if (!convertArgsForAvailabilityChecks( 6275 *this, Function, /*ThisArg=*/nullptr, Args, Trap, 6276 /*MissingImplicitThis=*/true, DiscardedThis, ConvertedArgs)) 6277 return *EnableIfAttrs.begin(); 6278 6279 for (auto *EIA : EnableIfAttrs) { 6280 APValue Result; 6281 // FIXME: This doesn't consider value-dependent cases, because doing so is 6282 // very difficult. Ideally, we should handle them more gracefully. 6283 if (!EIA->getCond()->EvaluateWithSubstitution( 6284 Result, Context, Function, llvm::makeArrayRef(ConvertedArgs))) 6285 return EIA; 6286 6287 if (!Result.isInt() || !Result.getInt().getBoolValue()) 6288 return EIA; 6289 } 6290 return nullptr; 6291 } 6292 6293 template <typename CheckFn> 6294 static bool diagnoseDiagnoseIfAttrsWith(Sema &S, const NamedDecl *ND, 6295 bool ArgDependent, SourceLocation Loc, 6296 CheckFn &&IsSuccessful) { 6297 SmallVector<const DiagnoseIfAttr *, 8> Attrs; 6298 for (const auto *DIA : ND->specific_attrs<DiagnoseIfAttr>()) { 6299 if (ArgDependent == DIA->getArgDependent()) 6300 Attrs.push_back(DIA); 6301 } 6302 6303 // Common case: No diagnose_if attributes, so we can quit early. 6304 if (Attrs.empty()) 6305 return false; 6306 6307 auto WarningBegin = std::stable_partition( 6308 Attrs.begin(), Attrs.end(), 6309 [](const DiagnoseIfAttr *DIA) { return DIA->isError(); }); 6310 6311 // Note that diagnose_if attributes are late-parsed, so they appear in the 6312 // correct order (unlike enable_if attributes). 6313 auto ErrAttr = llvm::find_if(llvm::make_range(Attrs.begin(), WarningBegin), 6314 IsSuccessful); 6315 if (ErrAttr != WarningBegin) { 6316 const DiagnoseIfAttr *DIA = *ErrAttr; 6317 S.Diag(Loc, diag::err_diagnose_if_succeeded) << DIA->getMessage(); 6318 S.Diag(DIA->getLocation(), diag::note_from_diagnose_if) 6319 << DIA->getParent() << DIA->getCond()->getSourceRange(); 6320 return true; 6321 } 6322 6323 for (const auto *DIA : llvm::make_range(WarningBegin, Attrs.end())) 6324 if (IsSuccessful(DIA)) { 6325 S.Diag(Loc, diag::warn_diagnose_if_succeeded) << DIA->getMessage(); 6326 S.Diag(DIA->getLocation(), diag::note_from_diagnose_if) 6327 << DIA->getParent() << DIA->getCond()->getSourceRange(); 6328 } 6329 6330 return false; 6331 } 6332 6333 bool Sema::diagnoseArgDependentDiagnoseIfAttrs(const FunctionDecl *Function, 6334 const Expr *ThisArg, 6335 ArrayRef<const Expr *> Args, 6336 SourceLocation Loc) { 6337 return diagnoseDiagnoseIfAttrsWith( 6338 *this, Function, /*ArgDependent=*/true, Loc, 6339 [&](const DiagnoseIfAttr *DIA) { 6340 APValue Result; 6341 // It's sane to use the same Args for any redecl of this function, since 6342 // EvaluateWithSubstitution only cares about the position of each 6343 // argument in the arg list, not the ParmVarDecl* it maps to. 6344 if (!DIA->getCond()->EvaluateWithSubstitution( 6345 Result, Context, cast<FunctionDecl>(DIA->getParent()), Args, ThisArg)) 6346 return false; 6347 return Result.isInt() && Result.getInt().getBoolValue(); 6348 }); 6349 } 6350 6351 bool Sema::diagnoseArgIndependentDiagnoseIfAttrs(const NamedDecl *ND, 6352 SourceLocation Loc) { 6353 return diagnoseDiagnoseIfAttrsWith( 6354 *this, ND, /*ArgDependent=*/false, Loc, 6355 [&](const DiagnoseIfAttr *DIA) { 6356 bool Result; 6357 return DIA->getCond()->EvaluateAsBooleanCondition(Result, Context) && 6358 Result; 6359 }); 6360 } 6361 6362 /// Add all of the function declarations in the given function set to 6363 /// the overload candidate set. 6364 void Sema::AddFunctionCandidates(const UnresolvedSetImpl &Fns, 6365 ArrayRef<Expr *> Args, 6366 OverloadCandidateSet& CandidateSet, 6367 TemplateArgumentListInfo *ExplicitTemplateArgs, 6368 bool SuppressUserConversions, 6369 bool PartialOverloading, 6370 bool FirstArgumentIsBase) { 6371 for (UnresolvedSetIterator F = Fns.begin(), E = Fns.end(); F != E; ++F) { 6372 NamedDecl *D = F.getDecl()->getUnderlyingDecl(); 6373 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) { 6374 ArrayRef<Expr *> FunctionArgs = Args; 6375 if (isa<CXXMethodDecl>(FD) && !cast<CXXMethodDecl>(FD)->isStatic()) { 6376 QualType ObjectType; 6377 Expr::Classification ObjectClassification; 6378 if (Args.size() > 0) { 6379 if (Expr *E = Args[0]) { 6380 // Use the explicit base to restrict the lookup: 6381 ObjectType = E->getType(); 6382 ObjectClassification = E->Classify(Context); 6383 } // .. else there is an implit base. 6384 FunctionArgs = Args.slice(1); 6385 } 6386 AddMethodCandidate(cast<CXXMethodDecl>(FD), F.getPair(), 6387 cast<CXXMethodDecl>(FD)->getParent(), ObjectType, 6388 ObjectClassification, FunctionArgs, CandidateSet, 6389 SuppressUserConversions, PartialOverloading); 6390 } else { 6391 // Slice the first argument (which is the base) when we access 6392 // static method as non-static 6393 if (Args.size() > 0 && (!Args[0] || (FirstArgumentIsBase && isa<CXXMethodDecl>(FD) && 6394 !isa<CXXConstructorDecl>(FD)))) { 6395 assert(cast<CXXMethodDecl>(FD)->isStatic()); 6396 FunctionArgs = Args.slice(1); 6397 } 6398 AddOverloadCandidate(FD, F.getPair(), FunctionArgs, CandidateSet, 6399 SuppressUserConversions, PartialOverloading); 6400 } 6401 } else { 6402 FunctionTemplateDecl *FunTmpl = cast<FunctionTemplateDecl>(D); 6403 if (isa<CXXMethodDecl>(FunTmpl->getTemplatedDecl()) && 6404 !cast<CXXMethodDecl>(FunTmpl->getTemplatedDecl())->isStatic()) { 6405 QualType ObjectType; 6406 Expr::Classification ObjectClassification; 6407 if (Expr *E = Args[0]) { 6408 // Use the explicit base to restrict the lookup: 6409 ObjectType = E->getType(); 6410 ObjectClassification = E->Classify(Context); 6411 } // .. else there is an implit base. 6412 AddMethodTemplateCandidate( 6413 FunTmpl, F.getPair(), 6414 cast<CXXRecordDecl>(FunTmpl->getDeclContext()), 6415 ExplicitTemplateArgs, ObjectType, ObjectClassification, 6416 Args.slice(1), CandidateSet, SuppressUserConversions, 6417 PartialOverloading); 6418 } else { 6419 AddTemplateOverloadCandidate(FunTmpl, F.getPair(), 6420 ExplicitTemplateArgs, Args, 6421 CandidateSet, SuppressUserConversions, 6422 PartialOverloading); 6423 } 6424 } 6425 } 6426 } 6427 6428 /// AddMethodCandidate - Adds a named decl (which is some kind of 6429 /// method) as a method candidate to the given overload set. 6430 void Sema::AddMethodCandidate(DeclAccessPair FoundDecl, 6431 QualType ObjectType, 6432 Expr::Classification ObjectClassification, 6433 ArrayRef<Expr *> Args, 6434 OverloadCandidateSet& CandidateSet, 6435 bool SuppressUserConversions) { 6436 NamedDecl *Decl = FoundDecl.getDecl(); 6437 CXXRecordDecl *ActingContext = cast<CXXRecordDecl>(Decl->getDeclContext()); 6438 6439 if (isa<UsingShadowDecl>(Decl)) 6440 Decl = cast<UsingShadowDecl>(Decl)->getTargetDecl(); 6441 6442 if (FunctionTemplateDecl *TD = dyn_cast<FunctionTemplateDecl>(Decl)) { 6443 assert(isa<CXXMethodDecl>(TD->getTemplatedDecl()) && 6444 "Expected a member function template"); 6445 AddMethodTemplateCandidate(TD, FoundDecl, ActingContext, 6446 /*ExplicitArgs*/ nullptr, ObjectType, 6447 ObjectClassification, Args, CandidateSet, 6448 SuppressUserConversions); 6449 } else { 6450 AddMethodCandidate(cast<CXXMethodDecl>(Decl), FoundDecl, ActingContext, 6451 ObjectType, ObjectClassification, Args, CandidateSet, 6452 SuppressUserConversions); 6453 } 6454 } 6455 6456 /// AddMethodCandidate - Adds the given C++ member function to the set 6457 /// of candidate functions, using the given function call arguments 6458 /// and the object argument (@c Object). For example, in a call 6459 /// @c o.f(a1,a2), @c Object will contain @c o and @c Args will contain 6460 /// both @c a1 and @c a2. If @p SuppressUserConversions, then don't 6461 /// allow user-defined conversions via constructors or conversion 6462 /// operators. 6463 void 6464 Sema::AddMethodCandidate(CXXMethodDecl *Method, DeclAccessPair FoundDecl, 6465 CXXRecordDecl *ActingContext, QualType ObjectType, 6466 Expr::Classification ObjectClassification, 6467 ArrayRef<Expr *> Args, 6468 OverloadCandidateSet &CandidateSet, 6469 bool SuppressUserConversions, 6470 bool PartialOverloading, 6471 ConversionSequenceList EarlyConversions) { 6472 const FunctionProtoType *Proto 6473 = dyn_cast<FunctionProtoType>(Method->getType()->getAs<FunctionType>()); 6474 assert(Proto && "Methods without a prototype cannot be overloaded"); 6475 assert(!isa<CXXConstructorDecl>(Method) && 6476 "Use AddOverloadCandidate for constructors"); 6477 6478 if (!CandidateSet.isNewCandidate(Method)) 6479 return; 6480 6481 // C++11 [class.copy]p23: [DR1402] 6482 // A defaulted move assignment operator that is defined as deleted is 6483 // ignored by overload resolution. 6484 if (Method->isDefaulted() && Method->isDeleted() && 6485 Method->isMoveAssignmentOperator()) 6486 return; 6487 6488 // Overload resolution is always an unevaluated context. 6489 EnterExpressionEvaluationContext Unevaluated( 6490 *this, Sema::ExpressionEvaluationContext::Unevaluated); 6491 6492 // Add this candidate 6493 OverloadCandidate &Candidate = 6494 CandidateSet.addCandidate(Args.size() + 1, EarlyConversions); 6495 Candidate.FoundDecl = FoundDecl; 6496 Candidate.Function = Method; 6497 Candidate.IsSurrogate = false; 6498 Candidate.IgnoreObjectArgument = false; 6499 Candidate.ExplicitCallArguments = Args.size(); 6500 6501 unsigned NumParams = Proto->getNumParams(); 6502 6503 // (C++ 13.3.2p2): A candidate function having fewer than m 6504 // parameters is viable only if it has an ellipsis in its parameter 6505 // list (8.3.5). 6506 if (TooManyArguments(NumParams, Args.size(), PartialOverloading) && 6507 !Proto->isVariadic()) { 6508 Candidate.Viable = false; 6509 Candidate.FailureKind = ovl_fail_too_many_arguments; 6510 return; 6511 } 6512 6513 // (C++ 13.3.2p2): A candidate function having more than m parameters 6514 // is viable only if the (m+1)st parameter has a default argument 6515 // (8.3.6). For the purposes of overload resolution, the 6516 // parameter list is truncated on the right, so that there are 6517 // exactly m parameters. 6518 unsigned MinRequiredArgs = Method->getMinRequiredArguments(); 6519 if (Args.size() < MinRequiredArgs && !PartialOverloading) { 6520 // Not enough arguments. 6521 Candidate.Viable = false; 6522 Candidate.FailureKind = ovl_fail_too_few_arguments; 6523 return; 6524 } 6525 6526 Candidate.Viable = true; 6527 6528 if (Method->isStatic() || ObjectType.isNull()) 6529 // The implicit object argument is ignored. 6530 Candidate.IgnoreObjectArgument = true; 6531 else { 6532 // Determine the implicit conversion sequence for the object 6533 // parameter. 6534 Candidate.Conversions[0] = TryObjectArgumentInitialization( 6535 *this, CandidateSet.getLocation(), ObjectType, ObjectClassification, 6536 Method, ActingContext); 6537 if (Candidate.Conversions[0].isBad()) { 6538 Candidate.Viable = false; 6539 Candidate.FailureKind = ovl_fail_bad_conversion; 6540 return; 6541 } 6542 } 6543 6544 // (CUDA B.1): Check for invalid calls between targets. 6545 if (getLangOpts().CUDA) 6546 if (const FunctionDecl *Caller = dyn_cast<FunctionDecl>(CurContext)) 6547 if (!IsAllowedCUDACall(Caller, Method)) { 6548 Candidate.Viable = false; 6549 Candidate.FailureKind = ovl_fail_bad_target; 6550 return; 6551 } 6552 6553 // Determine the implicit conversion sequences for each of the 6554 // arguments. 6555 for (unsigned ArgIdx = 0; ArgIdx < Args.size(); ++ArgIdx) { 6556 if (Candidate.Conversions[ArgIdx + 1].isInitialized()) { 6557 // We already formed a conversion sequence for this parameter during 6558 // template argument deduction. 6559 } else if (ArgIdx < NumParams) { 6560 // (C++ 13.3.2p3): for F to be a viable function, there shall 6561 // exist for each argument an implicit conversion sequence 6562 // (13.3.3.1) that converts that argument to the corresponding 6563 // parameter of F. 6564 QualType ParamType = Proto->getParamType(ArgIdx); 6565 Candidate.Conversions[ArgIdx + 1] 6566 = TryCopyInitialization(*this, Args[ArgIdx], ParamType, 6567 SuppressUserConversions, 6568 /*InOverloadResolution=*/true, 6569 /*AllowObjCWritebackConversion=*/ 6570 getLangOpts().ObjCAutoRefCount); 6571 if (Candidate.Conversions[ArgIdx + 1].isBad()) { 6572 Candidate.Viable = false; 6573 Candidate.FailureKind = ovl_fail_bad_conversion; 6574 return; 6575 } 6576 } else { 6577 // (C++ 13.3.2p2): For the purposes of overload resolution, any 6578 // argument for which there is no corresponding parameter is 6579 // considered to "match the ellipsis" (C+ 13.3.3.1.3). 6580 Candidate.Conversions[ArgIdx + 1].setEllipsis(); 6581 } 6582 } 6583 6584 if (EnableIfAttr *FailedAttr = CheckEnableIf(Method, Args, true)) { 6585 Candidate.Viable = false; 6586 Candidate.FailureKind = ovl_fail_enable_if; 6587 Candidate.DeductionFailure.Data = FailedAttr; 6588 return; 6589 } 6590 6591 if (Method->isMultiVersion() && 6592 !Method->getAttr<TargetAttr>()->isDefaultVersion()) { 6593 Candidate.Viable = false; 6594 Candidate.FailureKind = ovl_non_default_multiversion_function; 6595 } 6596 } 6597 6598 /// Add a C++ member function template as a candidate to the candidate 6599 /// set, using template argument deduction to produce an appropriate member 6600 /// function template specialization. 6601 void 6602 Sema::AddMethodTemplateCandidate(FunctionTemplateDecl *MethodTmpl, 6603 DeclAccessPair FoundDecl, 6604 CXXRecordDecl *ActingContext, 6605 TemplateArgumentListInfo *ExplicitTemplateArgs, 6606 QualType ObjectType, 6607 Expr::Classification ObjectClassification, 6608 ArrayRef<Expr *> Args, 6609 OverloadCandidateSet& CandidateSet, 6610 bool SuppressUserConversions, 6611 bool PartialOverloading) { 6612 if (!CandidateSet.isNewCandidate(MethodTmpl)) 6613 return; 6614 6615 // C++ [over.match.funcs]p7: 6616 // In each case where a candidate is a function template, candidate 6617 // function template specializations are generated using template argument 6618 // deduction (14.8.3, 14.8.2). Those candidates are then handled as 6619 // candidate functions in the usual way.113) A given name can refer to one 6620 // or more function templates and also to a set of overloaded non-template 6621 // functions. In such a case, the candidate functions generated from each 6622 // function template are combined with the set of non-template candidate 6623 // functions. 6624 TemplateDeductionInfo Info(CandidateSet.getLocation()); 6625 FunctionDecl *Specialization = nullptr; 6626 ConversionSequenceList Conversions; 6627 if (TemplateDeductionResult Result = DeduceTemplateArguments( 6628 MethodTmpl, ExplicitTemplateArgs, Args, Specialization, Info, 6629 PartialOverloading, [&](ArrayRef<QualType> ParamTypes) { 6630 return CheckNonDependentConversions( 6631 MethodTmpl, ParamTypes, Args, CandidateSet, Conversions, 6632 SuppressUserConversions, ActingContext, ObjectType, 6633 ObjectClassification); 6634 })) { 6635 OverloadCandidate &Candidate = 6636 CandidateSet.addCandidate(Conversions.size(), Conversions); 6637 Candidate.FoundDecl = FoundDecl; 6638 Candidate.Function = MethodTmpl->getTemplatedDecl(); 6639 Candidate.Viable = false; 6640 Candidate.IsSurrogate = false; 6641 Candidate.IgnoreObjectArgument = 6642 cast<CXXMethodDecl>(Candidate.Function)->isStatic() || 6643 ObjectType.isNull(); 6644 Candidate.ExplicitCallArguments = Args.size(); 6645 if (Result == TDK_NonDependentConversionFailure) 6646 Candidate.FailureKind = ovl_fail_bad_conversion; 6647 else { 6648 Candidate.FailureKind = ovl_fail_bad_deduction; 6649 Candidate.DeductionFailure = MakeDeductionFailureInfo(Context, Result, 6650 Info); 6651 } 6652 return; 6653 } 6654 6655 // Add the function template specialization produced by template argument 6656 // deduction as a candidate. 6657 assert(Specialization && "Missing member function template specialization?"); 6658 assert(isa<CXXMethodDecl>(Specialization) && 6659 "Specialization is not a member function?"); 6660 AddMethodCandidate(cast<CXXMethodDecl>(Specialization), FoundDecl, 6661 ActingContext, ObjectType, ObjectClassification, Args, 6662 CandidateSet, SuppressUserConversions, PartialOverloading, 6663 Conversions); 6664 } 6665 6666 /// Add a C++ function template specialization as a candidate 6667 /// in the candidate set, using template argument deduction to produce 6668 /// an appropriate function template specialization. 6669 void 6670 Sema::AddTemplateOverloadCandidate(FunctionTemplateDecl *FunctionTemplate, 6671 DeclAccessPair FoundDecl, 6672 TemplateArgumentListInfo *ExplicitTemplateArgs, 6673 ArrayRef<Expr *> Args, 6674 OverloadCandidateSet& CandidateSet, 6675 bool SuppressUserConversions, 6676 bool PartialOverloading) { 6677 if (!CandidateSet.isNewCandidate(FunctionTemplate)) 6678 return; 6679 6680 // C++ [over.match.funcs]p7: 6681 // In each case where a candidate is a function template, candidate 6682 // function template specializations are generated using template argument 6683 // deduction (14.8.3, 14.8.2). Those candidates are then handled as 6684 // candidate functions in the usual way.113) A given name can refer to one 6685 // or more function templates and also to a set of overloaded non-template 6686 // functions. In such a case, the candidate functions generated from each 6687 // function template are combined with the set of non-template candidate 6688 // functions. 6689 TemplateDeductionInfo Info(CandidateSet.getLocation()); 6690 FunctionDecl *Specialization = nullptr; 6691 ConversionSequenceList Conversions; 6692 if (TemplateDeductionResult Result = DeduceTemplateArguments( 6693 FunctionTemplate, ExplicitTemplateArgs, Args, Specialization, Info, 6694 PartialOverloading, [&](ArrayRef<QualType> ParamTypes) { 6695 return CheckNonDependentConversions(FunctionTemplate, ParamTypes, 6696 Args, CandidateSet, Conversions, 6697 SuppressUserConversions); 6698 })) { 6699 OverloadCandidate &Candidate = 6700 CandidateSet.addCandidate(Conversions.size(), Conversions); 6701 Candidate.FoundDecl = FoundDecl; 6702 Candidate.Function = FunctionTemplate->getTemplatedDecl(); 6703 Candidate.Viable = false; 6704 Candidate.IsSurrogate = false; 6705 // Ignore the object argument if there is one, since we don't have an object 6706 // type. 6707 Candidate.IgnoreObjectArgument = 6708 isa<CXXMethodDecl>(Candidate.Function) && 6709 !isa<CXXConstructorDecl>(Candidate.Function); 6710 Candidate.ExplicitCallArguments = Args.size(); 6711 if (Result == TDK_NonDependentConversionFailure) 6712 Candidate.FailureKind = ovl_fail_bad_conversion; 6713 else { 6714 Candidate.FailureKind = ovl_fail_bad_deduction; 6715 Candidate.DeductionFailure = MakeDeductionFailureInfo(Context, Result, 6716 Info); 6717 } 6718 return; 6719 } 6720 6721 // Add the function template specialization produced by template argument 6722 // deduction as a candidate. 6723 assert(Specialization && "Missing function template specialization?"); 6724 AddOverloadCandidate(Specialization, FoundDecl, Args, CandidateSet, 6725 SuppressUserConversions, PartialOverloading, 6726 /*AllowExplicit*/false, Conversions); 6727 } 6728 6729 /// Check that implicit conversion sequences can be formed for each argument 6730 /// whose corresponding parameter has a non-dependent type, per DR1391's 6731 /// [temp.deduct.call]p10. 6732 bool Sema::CheckNonDependentConversions( 6733 FunctionTemplateDecl *FunctionTemplate, ArrayRef<QualType> ParamTypes, 6734 ArrayRef<Expr *> Args, OverloadCandidateSet &CandidateSet, 6735 ConversionSequenceList &Conversions, bool SuppressUserConversions, 6736 CXXRecordDecl *ActingContext, QualType ObjectType, 6737 Expr::Classification ObjectClassification) { 6738 // FIXME: The cases in which we allow explicit conversions for constructor 6739 // arguments never consider calling a constructor template. It's not clear 6740 // that is correct. 6741 const bool AllowExplicit = false; 6742 6743 auto *FD = FunctionTemplate->getTemplatedDecl(); 6744 auto *Method = dyn_cast<CXXMethodDecl>(FD); 6745 bool HasThisConversion = Method && !isa<CXXConstructorDecl>(Method); 6746 unsigned ThisConversions = HasThisConversion ? 1 : 0; 6747 6748 Conversions = 6749 CandidateSet.allocateConversionSequences(ThisConversions + Args.size()); 6750 6751 // Overload resolution is always an unevaluated context. 6752 EnterExpressionEvaluationContext Unevaluated( 6753 *this, Sema::ExpressionEvaluationContext::Unevaluated); 6754 6755 // For a method call, check the 'this' conversion here too. DR1391 doesn't 6756 // require that, but this check should never result in a hard error, and 6757 // overload resolution is permitted to sidestep instantiations. 6758 if (HasThisConversion && !cast<CXXMethodDecl>(FD)->isStatic() && 6759 !ObjectType.isNull()) { 6760 Conversions[0] = TryObjectArgumentInitialization( 6761 *this, CandidateSet.getLocation(), ObjectType, ObjectClassification, 6762 Method, ActingContext); 6763 if (Conversions[0].isBad()) 6764 return true; 6765 } 6766 6767 for (unsigned I = 0, N = std::min(ParamTypes.size(), Args.size()); I != N; 6768 ++I) { 6769 QualType ParamType = ParamTypes[I]; 6770 if (!ParamType->isDependentType()) { 6771 Conversions[ThisConversions + I] 6772 = TryCopyInitialization(*this, Args[I], ParamType, 6773 SuppressUserConversions, 6774 /*InOverloadResolution=*/true, 6775 /*AllowObjCWritebackConversion=*/ 6776 getLangOpts().ObjCAutoRefCount, 6777 AllowExplicit); 6778 if (Conversions[ThisConversions + I].isBad()) 6779 return true; 6780 } 6781 } 6782 6783 return false; 6784 } 6785 6786 /// Determine whether this is an allowable conversion from the result 6787 /// of an explicit conversion operator to the expected type, per C++ 6788 /// [over.match.conv]p1 and [over.match.ref]p1. 6789 /// 6790 /// \param ConvType The return type of the conversion function. 6791 /// 6792 /// \param ToType The type we are converting to. 6793 /// 6794 /// \param AllowObjCPointerConversion Allow a conversion from one 6795 /// Objective-C pointer to another. 6796 /// 6797 /// \returns true if the conversion is allowable, false otherwise. 6798 static bool isAllowableExplicitConversion(Sema &S, 6799 QualType ConvType, QualType ToType, 6800 bool AllowObjCPointerConversion) { 6801 QualType ToNonRefType = ToType.getNonReferenceType(); 6802 6803 // Easy case: the types are the same. 6804 if (S.Context.hasSameUnqualifiedType(ConvType, ToNonRefType)) 6805 return true; 6806 6807 // Allow qualification conversions. 6808 bool ObjCLifetimeConversion; 6809 if (S.IsQualificationConversion(ConvType, ToNonRefType, /*CStyle*/false, 6810 ObjCLifetimeConversion)) 6811 return true; 6812 6813 // If we're not allowed to consider Objective-C pointer conversions, 6814 // we're done. 6815 if (!AllowObjCPointerConversion) 6816 return false; 6817 6818 // Is this an Objective-C pointer conversion? 6819 bool IncompatibleObjC = false; 6820 QualType ConvertedType; 6821 return S.isObjCPointerConversion(ConvType, ToNonRefType, ConvertedType, 6822 IncompatibleObjC); 6823 } 6824 6825 /// AddConversionCandidate - Add a C++ conversion function as a 6826 /// candidate in the candidate set (C++ [over.match.conv], 6827 /// C++ [over.match.copy]). From is the expression we're converting from, 6828 /// and ToType is the type that we're eventually trying to convert to 6829 /// (which may or may not be the same type as the type that the 6830 /// conversion function produces). 6831 void 6832 Sema::AddConversionCandidate(CXXConversionDecl *Conversion, 6833 DeclAccessPair FoundDecl, 6834 CXXRecordDecl *ActingContext, 6835 Expr *From, QualType ToType, 6836 OverloadCandidateSet& CandidateSet, 6837 bool AllowObjCConversionOnExplicit, 6838 bool AllowResultConversion) { 6839 assert(!Conversion->getDescribedFunctionTemplate() && 6840 "Conversion function templates use AddTemplateConversionCandidate"); 6841 QualType ConvType = Conversion->getConversionType().getNonReferenceType(); 6842 if (!CandidateSet.isNewCandidate(Conversion)) 6843 return; 6844 6845 // If the conversion function has an undeduced return type, trigger its 6846 // deduction now. 6847 if (getLangOpts().CPlusPlus14 && ConvType->isUndeducedType()) { 6848 if (DeduceReturnType(Conversion, From->getExprLoc())) 6849 return; 6850 ConvType = Conversion->getConversionType().getNonReferenceType(); 6851 } 6852 6853 // If we don't allow any conversion of the result type, ignore conversion 6854 // functions that don't convert to exactly (possibly cv-qualified) T. 6855 if (!AllowResultConversion && 6856 !Context.hasSameUnqualifiedType(Conversion->getConversionType(), ToType)) 6857 return; 6858 6859 // Per C++ [over.match.conv]p1, [over.match.ref]p1, an explicit conversion 6860 // operator is only a candidate if its return type is the target type or 6861 // can be converted to the target type with a qualification conversion. 6862 if (Conversion->isExplicit() && 6863 !isAllowableExplicitConversion(*this, ConvType, ToType, 6864 AllowObjCConversionOnExplicit)) 6865 return; 6866 6867 // Overload resolution is always an unevaluated context. 6868 EnterExpressionEvaluationContext Unevaluated( 6869 *this, Sema::ExpressionEvaluationContext::Unevaluated); 6870 6871 // Add this candidate 6872 OverloadCandidate &Candidate = CandidateSet.addCandidate(1); 6873 Candidate.FoundDecl = FoundDecl; 6874 Candidate.Function = Conversion; 6875 Candidate.IsSurrogate = false; 6876 Candidate.IgnoreObjectArgument = false; 6877 Candidate.FinalConversion.setAsIdentityConversion(); 6878 Candidate.FinalConversion.setFromType(ConvType); 6879 Candidate.FinalConversion.setAllToTypes(ToType); 6880 Candidate.Viable = true; 6881 Candidate.ExplicitCallArguments = 1; 6882 6883 // C++ [over.match.funcs]p4: 6884 // For conversion functions, the function is considered to be a member of 6885 // the class of the implicit implied object argument for the purpose of 6886 // defining the type of the implicit object parameter. 6887 // 6888 // Determine the implicit conversion sequence for the implicit 6889 // object parameter. 6890 QualType ImplicitParamType = From->getType(); 6891 if (const PointerType *FromPtrType = ImplicitParamType->getAs<PointerType>()) 6892 ImplicitParamType = FromPtrType->getPointeeType(); 6893 CXXRecordDecl *ConversionContext 6894 = cast<CXXRecordDecl>(ImplicitParamType->getAs<RecordType>()->getDecl()); 6895 6896 Candidate.Conversions[0] = TryObjectArgumentInitialization( 6897 *this, CandidateSet.getLocation(), From->getType(), 6898 From->Classify(Context), Conversion, ConversionContext); 6899 6900 if (Candidate.Conversions[0].isBad()) { 6901 Candidate.Viable = false; 6902 Candidate.FailureKind = ovl_fail_bad_conversion; 6903 return; 6904 } 6905 6906 // We won't go through a user-defined type conversion function to convert a 6907 // derived to base as such conversions are given Conversion Rank. They only 6908 // go through a copy constructor. 13.3.3.1.2-p4 [over.ics.user] 6909 QualType FromCanon 6910 = Context.getCanonicalType(From->getType().getUnqualifiedType()); 6911 QualType ToCanon = Context.getCanonicalType(ToType).getUnqualifiedType(); 6912 if (FromCanon == ToCanon || 6913 IsDerivedFrom(CandidateSet.getLocation(), FromCanon, ToCanon)) { 6914 Candidate.Viable = false; 6915 Candidate.FailureKind = ovl_fail_trivial_conversion; 6916 return; 6917 } 6918 6919 // To determine what the conversion from the result of calling the 6920 // conversion function to the type we're eventually trying to 6921 // convert to (ToType), we need to synthesize a call to the 6922 // conversion function and attempt copy initialization from it. This 6923 // makes sure that we get the right semantics with respect to 6924 // lvalues/rvalues and the type. Fortunately, we can allocate this 6925 // call on the stack and we don't need its arguments to be 6926 // well-formed. 6927 DeclRefExpr ConversionRef(Conversion, false, Conversion->getType(), 6928 VK_LValue, From->getLocStart()); 6929 ImplicitCastExpr ConversionFn(ImplicitCastExpr::OnStack, 6930 Context.getPointerType(Conversion->getType()), 6931 CK_FunctionToPointerDecay, 6932 &ConversionRef, VK_RValue); 6933 6934 QualType ConversionType = Conversion->getConversionType(); 6935 if (!isCompleteType(From->getLocStart(), ConversionType)) { 6936 Candidate.Viable = false; 6937 Candidate.FailureKind = ovl_fail_bad_final_conversion; 6938 return; 6939 } 6940 6941 ExprValueKind VK = Expr::getValueKindForType(ConversionType); 6942 6943 // Note that it is safe to allocate CallExpr on the stack here because 6944 // there are 0 arguments (i.e., nothing is allocated using ASTContext's 6945 // allocator). 6946 QualType CallResultType = ConversionType.getNonLValueExprType(Context); 6947 CallExpr Call(Context, &ConversionFn, None, CallResultType, VK, 6948 From->getLocStart()); 6949 ImplicitConversionSequence ICS = 6950 TryCopyInitialization(*this, &Call, ToType, 6951 /*SuppressUserConversions=*/true, 6952 /*InOverloadResolution=*/false, 6953 /*AllowObjCWritebackConversion=*/false); 6954 6955 switch (ICS.getKind()) { 6956 case ImplicitConversionSequence::StandardConversion: 6957 Candidate.FinalConversion = ICS.Standard; 6958 6959 // C++ [over.ics.user]p3: 6960 // If the user-defined conversion is specified by a specialization of a 6961 // conversion function template, the second standard conversion sequence 6962 // shall have exact match rank. 6963 if (Conversion->getPrimaryTemplate() && 6964 GetConversionRank(ICS.Standard.Second) != ICR_Exact_Match) { 6965 Candidate.Viable = false; 6966 Candidate.FailureKind = ovl_fail_final_conversion_not_exact; 6967 return; 6968 } 6969 6970 // C++0x [dcl.init.ref]p5: 6971 // In the second case, if the reference is an rvalue reference and 6972 // the second standard conversion sequence of the user-defined 6973 // conversion sequence includes an lvalue-to-rvalue conversion, the 6974 // program is ill-formed. 6975 if (ToType->isRValueReferenceType() && 6976 ICS.Standard.First == ICK_Lvalue_To_Rvalue) { 6977 Candidate.Viable = false; 6978 Candidate.FailureKind = ovl_fail_bad_final_conversion; 6979 return; 6980 } 6981 break; 6982 6983 case ImplicitConversionSequence::BadConversion: 6984 Candidate.Viable = false; 6985 Candidate.FailureKind = ovl_fail_bad_final_conversion; 6986 return; 6987 6988 default: 6989 llvm_unreachable( 6990 "Can only end up with a standard conversion sequence or failure"); 6991 } 6992 6993 if (EnableIfAttr *FailedAttr = CheckEnableIf(Conversion, None)) { 6994 Candidate.Viable = false; 6995 Candidate.FailureKind = ovl_fail_enable_if; 6996 Candidate.DeductionFailure.Data = FailedAttr; 6997 return; 6998 } 6999 7000 if (Conversion->isMultiVersion() && 7001 !Conversion->getAttr<TargetAttr>()->isDefaultVersion()) { 7002 Candidate.Viable = false; 7003 Candidate.FailureKind = ovl_non_default_multiversion_function; 7004 } 7005 } 7006 7007 /// Adds a conversion function template specialization 7008 /// candidate to the overload set, using template argument deduction 7009 /// to deduce the template arguments of the conversion function 7010 /// template from the type that we are converting to (C++ 7011 /// [temp.deduct.conv]). 7012 void 7013 Sema::AddTemplateConversionCandidate(FunctionTemplateDecl *FunctionTemplate, 7014 DeclAccessPair FoundDecl, 7015 CXXRecordDecl *ActingDC, 7016 Expr *From, QualType ToType, 7017 OverloadCandidateSet &CandidateSet, 7018 bool AllowObjCConversionOnExplicit, 7019 bool AllowResultConversion) { 7020 assert(isa<CXXConversionDecl>(FunctionTemplate->getTemplatedDecl()) && 7021 "Only conversion function templates permitted here"); 7022 7023 if (!CandidateSet.isNewCandidate(FunctionTemplate)) 7024 return; 7025 7026 TemplateDeductionInfo Info(CandidateSet.getLocation()); 7027 CXXConversionDecl *Specialization = nullptr; 7028 if (TemplateDeductionResult Result 7029 = DeduceTemplateArguments(FunctionTemplate, ToType, 7030 Specialization, Info)) { 7031 OverloadCandidate &Candidate = CandidateSet.addCandidate(); 7032 Candidate.FoundDecl = FoundDecl; 7033 Candidate.Function = FunctionTemplate->getTemplatedDecl(); 7034 Candidate.Viable = false; 7035 Candidate.FailureKind = ovl_fail_bad_deduction; 7036 Candidate.IsSurrogate = false; 7037 Candidate.IgnoreObjectArgument = false; 7038 Candidate.ExplicitCallArguments = 1; 7039 Candidate.DeductionFailure = MakeDeductionFailureInfo(Context, Result, 7040 Info); 7041 return; 7042 } 7043 7044 // Add the conversion function template specialization produced by 7045 // template argument deduction as a candidate. 7046 assert(Specialization && "Missing function template specialization?"); 7047 AddConversionCandidate(Specialization, FoundDecl, ActingDC, From, ToType, 7048 CandidateSet, AllowObjCConversionOnExplicit, 7049 AllowResultConversion); 7050 } 7051 7052 /// AddSurrogateCandidate - Adds a "surrogate" candidate function that 7053 /// converts the given @c Object to a function pointer via the 7054 /// conversion function @c Conversion, and then attempts to call it 7055 /// with the given arguments (C++ [over.call.object]p2-4). Proto is 7056 /// the type of function that we'll eventually be calling. 7057 void Sema::AddSurrogateCandidate(CXXConversionDecl *Conversion, 7058 DeclAccessPair FoundDecl, 7059 CXXRecordDecl *ActingContext, 7060 const FunctionProtoType *Proto, 7061 Expr *Object, 7062 ArrayRef<Expr *> Args, 7063 OverloadCandidateSet& CandidateSet) { 7064 if (!CandidateSet.isNewCandidate(Conversion)) 7065 return; 7066 7067 // Overload resolution is always an unevaluated context. 7068 EnterExpressionEvaluationContext Unevaluated( 7069 *this, Sema::ExpressionEvaluationContext::Unevaluated); 7070 7071 OverloadCandidate &Candidate = CandidateSet.addCandidate(Args.size() + 1); 7072 Candidate.FoundDecl = FoundDecl; 7073 Candidate.Function = nullptr; 7074 Candidate.Surrogate = Conversion; 7075 Candidate.Viable = true; 7076 Candidate.IsSurrogate = true; 7077 Candidate.IgnoreObjectArgument = false; 7078 Candidate.ExplicitCallArguments = Args.size(); 7079 7080 // Determine the implicit conversion sequence for the implicit 7081 // object parameter. 7082 ImplicitConversionSequence ObjectInit = TryObjectArgumentInitialization( 7083 *this, CandidateSet.getLocation(), Object->getType(), 7084 Object->Classify(Context), Conversion, ActingContext); 7085 if (ObjectInit.isBad()) { 7086 Candidate.Viable = false; 7087 Candidate.FailureKind = ovl_fail_bad_conversion; 7088 Candidate.Conversions[0] = ObjectInit; 7089 return; 7090 } 7091 7092 // The first conversion is actually a user-defined conversion whose 7093 // first conversion is ObjectInit's standard conversion (which is 7094 // effectively a reference binding). Record it as such. 7095 Candidate.Conversions[0].setUserDefined(); 7096 Candidate.Conversions[0].UserDefined.Before = ObjectInit.Standard; 7097 Candidate.Conversions[0].UserDefined.EllipsisConversion = false; 7098 Candidate.Conversions[0].UserDefined.HadMultipleCandidates = false; 7099 Candidate.Conversions[0].UserDefined.ConversionFunction = Conversion; 7100 Candidate.Conversions[0].UserDefined.FoundConversionFunction = FoundDecl; 7101 Candidate.Conversions[0].UserDefined.After 7102 = Candidate.Conversions[0].UserDefined.Before; 7103 Candidate.Conversions[0].UserDefined.After.setAsIdentityConversion(); 7104 7105 // Find the 7106 unsigned NumParams = Proto->getNumParams(); 7107 7108 // (C++ 13.3.2p2): A candidate function having fewer than m 7109 // parameters is viable only if it has an ellipsis in its parameter 7110 // list (8.3.5). 7111 if (Args.size() > NumParams && !Proto->isVariadic()) { 7112 Candidate.Viable = false; 7113 Candidate.FailureKind = ovl_fail_too_many_arguments; 7114 return; 7115 } 7116 7117 // Function types don't have any default arguments, so just check if 7118 // we have enough arguments. 7119 if (Args.size() < NumParams) { 7120 // Not enough arguments. 7121 Candidate.Viable = false; 7122 Candidate.FailureKind = ovl_fail_too_few_arguments; 7123 return; 7124 } 7125 7126 // Determine the implicit conversion sequences for each of the 7127 // arguments. 7128 for (unsigned ArgIdx = 0, N = Args.size(); ArgIdx != N; ++ArgIdx) { 7129 if (ArgIdx < NumParams) { 7130 // (C++ 13.3.2p3): for F to be a viable function, there shall 7131 // exist for each argument an implicit conversion sequence 7132 // (13.3.3.1) that converts that argument to the corresponding 7133 // parameter of F. 7134 QualType ParamType = Proto->getParamType(ArgIdx); 7135 Candidate.Conversions[ArgIdx + 1] 7136 = TryCopyInitialization(*this, Args[ArgIdx], ParamType, 7137 /*SuppressUserConversions=*/false, 7138 /*InOverloadResolution=*/false, 7139 /*AllowObjCWritebackConversion=*/ 7140 getLangOpts().ObjCAutoRefCount); 7141 if (Candidate.Conversions[ArgIdx + 1].isBad()) { 7142 Candidate.Viable = false; 7143 Candidate.FailureKind = ovl_fail_bad_conversion; 7144 return; 7145 } 7146 } else { 7147 // (C++ 13.3.2p2): For the purposes of overload resolution, any 7148 // argument for which there is no corresponding parameter is 7149 // considered to ""match the ellipsis" (C+ 13.3.3.1.3). 7150 Candidate.Conversions[ArgIdx + 1].setEllipsis(); 7151 } 7152 } 7153 7154 if (EnableIfAttr *FailedAttr = CheckEnableIf(Conversion, None)) { 7155 Candidate.Viable = false; 7156 Candidate.FailureKind = ovl_fail_enable_if; 7157 Candidate.DeductionFailure.Data = FailedAttr; 7158 return; 7159 } 7160 } 7161 7162 /// Add overload candidates for overloaded operators that are 7163 /// member functions. 7164 /// 7165 /// Add the overloaded operator candidates that are member functions 7166 /// for the operator Op that was used in an operator expression such 7167 /// as "x Op y". , Args/NumArgs provides the operator arguments, and 7168 /// CandidateSet will store the added overload candidates. (C++ 7169 /// [over.match.oper]). 7170 void Sema::AddMemberOperatorCandidates(OverloadedOperatorKind Op, 7171 SourceLocation OpLoc, 7172 ArrayRef<Expr *> Args, 7173 OverloadCandidateSet& CandidateSet, 7174 SourceRange OpRange) { 7175 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(Op); 7176 7177 // C++ [over.match.oper]p3: 7178 // For a unary operator @ with an operand of a type whose 7179 // cv-unqualified version is T1, and for a binary operator @ with 7180 // a left operand of a type whose cv-unqualified version is T1 and 7181 // a right operand of a type whose cv-unqualified version is T2, 7182 // three sets of candidate functions, designated member 7183 // candidates, non-member candidates and built-in candidates, are 7184 // constructed as follows: 7185 QualType T1 = Args[0]->getType(); 7186 7187 // -- If T1 is a complete class type or a class currently being 7188 // defined, the set of member candidates is the result of the 7189 // qualified lookup of T1::operator@ (13.3.1.1.1); otherwise, 7190 // the set of member candidates is empty. 7191 if (const RecordType *T1Rec = T1->getAs<RecordType>()) { 7192 // Complete the type if it can be completed. 7193 if (!isCompleteType(OpLoc, T1) && !T1Rec->isBeingDefined()) 7194 return; 7195 // If the type is neither complete nor being defined, bail out now. 7196 if (!T1Rec->getDecl()->getDefinition()) 7197 return; 7198 7199 LookupResult Operators(*this, OpName, OpLoc, LookupOrdinaryName); 7200 LookupQualifiedName(Operators, T1Rec->getDecl()); 7201 Operators.suppressDiagnostics(); 7202 7203 for (LookupResult::iterator Oper = Operators.begin(), 7204 OperEnd = Operators.end(); 7205 Oper != OperEnd; 7206 ++Oper) 7207 AddMethodCandidate(Oper.getPair(), Args[0]->getType(), 7208 Args[0]->Classify(Context), Args.slice(1), 7209 CandidateSet, /*SuppressUserConversions=*/false); 7210 } 7211 } 7212 7213 /// AddBuiltinCandidate - Add a candidate for a built-in 7214 /// operator. ResultTy and ParamTys are the result and parameter types 7215 /// of the built-in candidate, respectively. Args and NumArgs are the 7216 /// arguments being passed to the candidate. IsAssignmentOperator 7217 /// should be true when this built-in candidate is an assignment 7218 /// operator. NumContextualBoolArguments is the number of arguments 7219 /// (at the beginning of the argument list) that will be contextually 7220 /// converted to bool. 7221 void Sema::AddBuiltinCandidate(QualType *ParamTys, ArrayRef<Expr *> Args, 7222 OverloadCandidateSet& CandidateSet, 7223 bool IsAssignmentOperator, 7224 unsigned NumContextualBoolArguments) { 7225 // Overload resolution is always an unevaluated context. 7226 EnterExpressionEvaluationContext Unevaluated( 7227 *this, Sema::ExpressionEvaluationContext::Unevaluated); 7228 7229 // Add this candidate 7230 OverloadCandidate &Candidate = CandidateSet.addCandidate(Args.size()); 7231 Candidate.FoundDecl = DeclAccessPair::make(nullptr, AS_none); 7232 Candidate.Function = nullptr; 7233 Candidate.IsSurrogate = false; 7234 Candidate.IgnoreObjectArgument = false; 7235 std::copy(ParamTys, ParamTys + Args.size(), Candidate.BuiltinParamTypes); 7236 7237 // Determine the implicit conversion sequences for each of the 7238 // arguments. 7239 Candidate.Viable = true; 7240 Candidate.ExplicitCallArguments = Args.size(); 7241 for (unsigned ArgIdx = 0, N = Args.size(); ArgIdx != N; ++ArgIdx) { 7242 // C++ [over.match.oper]p4: 7243 // For the built-in assignment operators, conversions of the 7244 // left operand are restricted as follows: 7245 // -- no temporaries are introduced to hold the left operand, and 7246 // -- no user-defined conversions are applied to the left 7247 // operand to achieve a type match with the left-most 7248 // parameter of a built-in candidate. 7249 // 7250 // We block these conversions by turning off user-defined 7251 // conversions, since that is the only way that initialization of 7252 // a reference to a non-class type can occur from something that 7253 // is not of the same type. 7254 if (ArgIdx < NumContextualBoolArguments) { 7255 assert(ParamTys[ArgIdx] == Context.BoolTy && 7256 "Contextual conversion to bool requires bool type"); 7257 Candidate.Conversions[ArgIdx] 7258 = TryContextuallyConvertToBool(*this, Args[ArgIdx]); 7259 } else { 7260 Candidate.Conversions[ArgIdx] 7261 = TryCopyInitialization(*this, Args[ArgIdx], ParamTys[ArgIdx], 7262 ArgIdx == 0 && IsAssignmentOperator, 7263 /*InOverloadResolution=*/false, 7264 /*AllowObjCWritebackConversion=*/ 7265 getLangOpts().ObjCAutoRefCount); 7266 } 7267 if (Candidate.Conversions[ArgIdx].isBad()) { 7268 Candidate.Viable = false; 7269 Candidate.FailureKind = ovl_fail_bad_conversion; 7270 break; 7271 } 7272 } 7273 } 7274 7275 namespace { 7276 7277 /// BuiltinCandidateTypeSet - A set of types that will be used for the 7278 /// candidate operator functions for built-in operators (C++ 7279 /// [over.built]). The types are separated into pointer types and 7280 /// enumeration types. 7281 class BuiltinCandidateTypeSet { 7282 /// TypeSet - A set of types. 7283 typedef llvm::SetVector<QualType, SmallVector<QualType, 8>, 7284 llvm::SmallPtrSet<QualType, 8>> TypeSet; 7285 7286 /// PointerTypes - The set of pointer types that will be used in the 7287 /// built-in candidates. 7288 TypeSet PointerTypes; 7289 7290 /// MemberPointerTypes - The set of member pointer types that will be 7291 /// used in the built-in candidates. 7292 TypeSet MemberPointerTypes; 7293 7294 /// EnumerationTypes - The set of enumeration types that will be 7295 /// used in the built-in candidates. 7296 TypeSet EnumerationTypes; 7297 7298 /// The set of vector types that will be used in the built-in 7299 /// candidates. 7300 TypeSet VectorTypes; 7301 7302 /// A flag indicating non-record types are viable candidates 7303 bool HasNonRecordTypes; 7304 7305 /// A flag indicating whether either arithmetic or enumeration types 7306 /// were present in the candidate set. 7307 bool HasArithmeticOrEnumeralTypes; 7308 7309 /// A flag indicating whether the nullptr type was present in the 7310 /// candidate set. 7311 bool HasNullPtrType; 7312 7313 /// Sema - The semantic analysis instance where we are building the 7314 /// candidate type set. 7315 Sema &SemaRef; 7316 7317 /// Context - The AST context in which we will build the type sets. 7318 ASTContext &Context; 7319 7320 bool AddPointerWithMoreQualifiedTypeVariants(QualType Ty, 7321 const Qualifiers &VisibleQuals); 7322 bool AddMemberPointerWithMoreQualifiedTypeVariants(QualType Ty); 7323 7324 public: 7325 /// iterator - Iterates through the types that are part of the set. 7326 typedef TypeSet::iterator iterator; 7327 7328 BuiltinCandidateTypeSet(Sema &SemaRef) 7329 : HasNonRecordTypes(false), 7330 HasArithmeticOrEnumeralTypes(false), 7331 HasNullPtrType(false), 7332 SemaRef(SemaRef), 7333 Context(SemaRef.Context) { } 7334 7335 void AddTypesConvertedFrom(QualType Ty, 7336 SourceLocation Loc, 7337 bool AllowUserConversions, 7338 bool AllowExplicitConversions, 7339 const Qualifiers &VisibleTypeConversionsQuals); 7340 7341 /// pointer_begin - First pointer type found; 7342 iterator pointer_begin() { return PointerTypes.begin(); } 7343 7344 /// pointer_end - Past the last pointer type found; 7345 iterator pointer_end() { return PointerTypes.end(); } 7346 7347 /// member_pointer_begin - First member pointer type found; 7348 iterator member_pointer_begin() { return MemberPointerTypes.begin(); } 7349 7350 /// member_pointer_end - Past the last member pointer type found; 7351 iterator member_pointer_end() { return MemberPointerTypes.end(); } 7352 7353 /// enumeration_begin - First enumeration type found; 7354 iterator enumeration_begin() { return EnumerationTypes.begin(); } 7355 7356 /// enumeration_end - Past the last enumeration type found; 7357 iterator enumeration_end() { return EnumerationTypes.end(); } 7358 7359 iterator vector_begin() { return VectorTypes.begin(); } 7360 iterator vector_end() { return VectorTypes.end(); } 7361 7362 bool hasNonRecordTypes() { return HasNonRecordTypes; } 7363 bool hasArithmeticOrEnumeralTypes() { return HasArithmeticOrEnumeralTypes; } 7364 bool hasNullPtrType() const { return HasNullPtrType; } 7365 }; 7366 7367 } // end anonymous namespace 7368 7369 /// AddPointerWithMoreQualifiedTypeVariants - Add the pointer type @p Ty to 7370 /// the set of pointer types along with any more-qualified variants of 7371 /// that type. For example, if @p Ty is "int const *", this routine 7372 /// will add "int const *", "int const volatile *", "int const 7373 /// restrict *", and "int const volatile restrict *" to the set of 7374 /// pointer types. Returns true if the add of @p Ty itself succeeded, 7375 /// false otherwise. 7376 /// 7377 /// FIXME: what to do about extended qualifiers? 7378 bool 7379 BuiltinCandidateTypeSet::AddPointerWithMoreQualifiedTypeVariants(QualType Ty, 7380 const Qualifiers &VisibleQuals) { 7381 7382 // Insert this type. 7383 if (!PointerTypes.insert(Ty)) 7384 return false; 7385 7386 QualType PointeeTy; 7387 const PointerType *PointerTy = Ty->getAs<PointerType>(); 7388 bool buildObjCPtr = false; 7389 if (!PointerTy) { 7390 const ObjCObjectPointerType *PTy = Ty->castAs<ObjCObjectPointerType>(); 7391 PointeeTy = PTy->getPointeeType(); 7392 buildObjCPtr = true; 7393 } else { 7394 PointeeTy = PointerTy->getPointeeType(); 7395 } 7396 7397 // Don't add qualified variants of arrays. For one, they're not allowed 7398 // (the qualifier would sink to the element type), and for another, the 7399 // only overload situation where it matters is subscript or pointer +- int, 7400 // and those shouldn't have qualifier variants anyway. 7401 if (PointeeTy->isArrayType()) 7402 return true; 7403 7404 unsigned BaseCVR = PointeeTy.getCVRQualifiers(); 7405 bool hasVolatile = VisibleQuals.hasVolatile(); 7406 bool hasRestrict = VisibleQuals.hasRestrict(); 7407 7408 // Iterate through all strict supersets of BaseCVR. 7409 for (unsigned CVR = BaseCVR+1; CVR <= Qualifiers::CVRMask; ++CVR) { 7410 if ((CVR | BaseCVR) != CVR) continue; 7411 // Skip over volatile if no volatile found anywhere in the types. 7412 if ((CVR & Qualifiers::Volatile) && !hasVolatile) continue; 7413 7414 // Skip over restrict if no restrict found anywhere in the types, or if 7415 // the type cannot be restrict-qualified. 7416 if ((CVR & Qualifiers::Restrict) && 7417 (!hasRestrict || 7418 (!(PointeeTy->isAnyPointerType() || PointeeTy->isReferenceType())))) 7419 continue; 7420 7421 // Build qualified pointee type. 7422 QualType QPointeeTy = Context.getCVRQualifiedType(PointeeTy, CVR); 7423 7424 // Build qualified pointer type. 7425 QualType QPointerTy; 7426 if (!buildObjCPtr) 7427 QPointerTy = Context.getPointerType(QPointeeTy); 7428 else 7429 QPointerTy = Context.getObjCObjectPointerType(QPointeeTy); 7430 7431 // Insert qualified pointer type. 7432 PointerTypes.insert(QPointerTy); 7433 } 7434 7435 return true; 7436 } 7437 7438 /// AddMemberPointerWithMoreQualifiedTypeVariants - Add the pointer type @p Ty 7439 /// to the set of pointer types along with any more-qualified variants of 7440 /// that type. For example, if @p Ty is "int const *", this routine 7441 /// will add "int const *", "int const volatile *", "int const 7442 /// restrict *", and "int const volatile restrict *" to the set of 7443 /// pointer types. Returns true if the add of @p Ty itself succeeded, 7444 /// false otherwise. 7445 /// 7446 /// FIXME: what to do about extended qualifiers? 7447 bool 7448 BuiltinCandidateTypeSet::AddMemberPointerWithMoreQualifiedTypeVariants( 7449 QualType Ty) { 7450 // Insert this type. 7451 if (!MemberPointerTypes.insert(Ty)) 7452 return false; 7453 7454 const MemberPointerType *PointerTy = Ty->getAs<MemberPointerType>(); 7455 assert(PointerTy && "type was not a member pointer type!"); 7456 7457 QualType PointeeTy = PointerTy->getPointeeType(); 7458 // Don't add qualified variants of arrays. For one, they're not allowed 7459 // (the qualifier would sink to the element type), and for another, the 7460 // only overload situation where it matters is subscript or pointer +- int, 7461 // and those shouldn't have qualifier variants anyway. 7462 if (PointeeTy->isArrayType()) 7463 return true; 7464 const Type *ClassTy = PointerTy->getClass(); 7465 7466 // Iterate through all strict supersets of the pointee type's CVR 7467 // qualifiers. 7468 unsigned BaseCVR = PointeeTy.getCVRQualifiers(); 7469 for (unsigned CVR = BaseCVR+1; CVR <= Qualifiers::CVRMask; ++CVR) { 7470 if ((CVR | BaseCVR) != CVR) continue; 7471 7472 QualType QPointeeTy = Context.getCVRQualifiedType(PointeeTy, CVR); 7473 MemberPointerTypes.insert( 7474 Context.getMemberPointerType(QPointeeTy, ClassTy)); 7475 } 7476 7477 return true; 7478 } 7479 7480 /// AddTypesConvertedFrom - Add each of the types to which the type @p 7481 /// Ty can be implicit converted to the given set of @p Types. We're 7482 /// primarily interested in pointer types and enumeration types. We also 7483 /// take member pointer types, for the conditional operator. 7484 /// AllowUserConversions is true if we should look at the conversion 7485 /// functions of a class type, and AllowExplicitConversions if we 7486 /// should also include the explicit conversion functions of a class 7487 /// type. 7488 void 7489 BuiltinCandidateTypeSet::AddTypesConvertedFrom(QualType Ty, 7490 SourceLocation Loc, 7491 bool AllowUserConversions, 7492 bool AllowExplicitConversions, 7493 const Qualifiers &VisibleQuals) { 7494 // Only deal with canonical types. 7495 Ty = Context.getCanonicalType(Ty); 7496 7497 // Look through reference types; they aren't part of the type of an 7498 // expression for the purposes of conversions. 7499 if (const ReferenceType *RefTy = Ty->getAs<ReferenceType>()) 7500 Ty = RefTy->getPointeeType(); 7501 7502 // If we're dealing with an array type, decay to the pointer. 7503 if (Ty->isArrayType()) 7504 Ty = SemaRef.Context.getArrayDecayedType(Ty); 7505 7506 // Otherwise, we don't care about qualifiers on the type. 7507 Ty = Ty.getLocalUnqualifiedType(); 7508 7509 // Flag if we ever add a non-record type. 7510 const RecordType *TyRec = Ty->getAs<RecordType>(); 7511 HasNonRecordTypes = HasNonRecordTypes || !TyRec; 7512 7513 // Flag if we encounter an arithmetic type. 7514 HasArithmeticOrEnumeralTypes = 7515 HasArithmeticOrEnumeralTypes || Ty->isArithmeticType(); 7516 7517 if (Ty->isObjCIdType() || Ty->isObjCClassType()) 7518 PointerTypes.insert(Ty); 7519 else if (Ty->getAs<PointerType>() || Ty->getAs<ObjCObjectPointerType>()) { 7520 // Insert our type, and its more-qualified variants, into the set 7521 // of types. 7522 if (!AddPointerWithMoreQualifiedTypeVariants(Ty, VisibleQuals)) 7523 return; 7524 } else if (Ty->isMemberPointerType()) { 7525 // Member pointers are far easier, since the pointee can't be converted. 7526 if (!AddMemberPointerWithMoreQualifiedTypeVariants(Ty)) 7527 return; 7528 } else if (Ty->isEnumeralType()) { 7529 HasArithmeticOrEnumeralTypes = true; 7530 EnumerationTypes.insert(Ty); 7531 } else if (Ty->isVectorType()) { 7532 // We treat vector types as arithmetic types in many contexts as an 7533 // extension. 7534 HasArithmeticOrEnumeralTypes = true; 7535 VectorTypes.insert(Ty); 7536 } else if (Ty->isNullPtrType()) { 7537 HasNullPtrType = true; 7538 } else if (AllowUserConversions && TyRec) { 7539 // No conversion functions in incomplete types. 7540 if (!SemaRef.isCompleteType(Loc, Ty)) 7541 return; 7542 7543 CXXRecordDecl *ClassDecl = cast<CXXRecordDecl>(TyRec->getDecl()); 7544 for (NamedDecl *D : ClassDecl->getVisibleConversionFunctions()) { 7545 if (isa<UsingShadowDecl>(D)) 7546 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 7547 7548 // Skip conversion function templates; they don't tell us anything 7549 // about which builtin types we can convert to. 7550 if (isa<FunctionTemplateDecl>(D)) 7551 continue; 7552 7553 CXXConversionDecl *Conv = cast<CXXConversionDecl>(D); 7554 if (AllowExplicitConversions || !Conv->isExplicit()) { 7555 AddTypesConvertedFrom(Conv->getConversionType(), Loc, false, false, 7556 VisibleQuals); 7557 } 7558 } 7559 } 7560 } 7561 7562 /// Helper function for AddBuiltinOperatorCandidates() that adds 7563 /// the volatile- and non-volatile-qualified assignment operators for the 7564 /// given type to the candidate set. 7565 static void AddBuiltinAssignmentOperatorCandidates(Sema &S, 7566 QualType T, 7567 ArrayRef<Expr *> Args, 7568 OverloadCandidateSet &CandidateSet) { 7569 QualType ParamTypes[2]; 7570 7571 // T& operator=(T&, T) 7572 ParamTypes[0] = S.Context.getLValueReferenceType(T); 7573 ParamTypes[1] = T; 7574 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 7575 /*IsAssignmentOperator=*/true); 7576 7577 if (!S.Context.getCanonicalType(T).isVolatileQualified()) { 7578 // volatile T& operator=(volatile T&, T) 7579 ParamTypes[0] 7580 = S.Context.getLValueReferenceType(S.Context.getVolatileType(T)); 7581 ParamTypes[1] = T; 7582 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 7583 /*IsAssignmentOperator=*/true); 7584 } 7585 } 7586 7587 /// CollectVRQualifiers - This routine returns Volatile/Restrict qualifiers, 7588 /// if any, found in visible type conversion functions found in ArgExpr's type. 7589 static Qualifiers CollectVRQualifiers(ASTContext &Context, Expr* ArgExpr) { 7590 Qualifiers VRQuals; 7591 const RecordType *TyRec; 7592 if (const MemberPointerType *RHSMPType = 7593 ArgExpr->getType()->getAs<MemberPointerType>()) 7594 TyRec = RHSMPType->getClass()->getAs<RecordType>(); 7595 else 7596 TyRec = ArgExpr->getType()->getAs<RecordType>(); 7597 if (!TyRec) { 7598 // Just to be safe, assume the worst case. 7599 VRQuals.addVolatile(); 7600 VRQuals.addRestrict(); 7601 return VRQuals; 7602 } 7603 7604 CXXRecordDecl *ClassDecl = cast<CXXRecordDecl>(TyRec->getDecl()); 7605 if (!ClassDecl->hasDefinition()) 7606 return VRQuals; 7607 7608 for (NamedDecl *D : ClassDecl->getVisibleConversionFunctions()) { 7609 if (isa<UsingShadowDecl>(D)) 7610 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 7611 if (CXXConversionDecl *Conv = dyn_cast<CXXConversionDecl>(D)) { 7612 QualType CanTy = Context.getCanonicalType(Conv->getConversionType()); 7613 if (const ReferenceType *ResTypeRef = CanTy->getAs<ReferenceType>()) 7614 CanTy = ResTypeRef->getPointeeType(); 7615 // Need to go down the pointer/mempointer chain and add qualifiers 7616 // as see them. 7617 bool done = false; 7618 while (!done) { 7619 if (CanTy.isRestrictQualified()) 7620 VRQuals.addRestrict(); 7621 if (const PointerType *ResTypePtr = CanTy->getAs<PointerType>()) 7622 CanTy = ResTypePtr->getPointeeType(); 7623 else if (const MemberPointerType *ResTypeMPtr = 7624 CanTy->getAs<MemberPointerType>()) 7625 CanTy = ResTypeMPtr->getPointeeType(); 7626 else 7627 done = true; 7628 if (CanTy.isVolatileQualified()) 7629 VRQuals.addVolatile(); 7630 if (VRQuals.hasRestrict() && VRQuals.hasVolatile()) 7631 return VRQuals; 7632 } 7633 } 7634 } 7635 return VRQuals; 7636 } 7637 7638 namespace { 7639 7640 /// Helper class to manage the addition of builtin operator overload 7641 /// candidates. It provides shared state and utility methods used throughout 7642 /// the process, as well as a helper method to add each group of builtin 7643 /// operator overloads from the standard to a candidate set. 7644 class BuiltinOperatorOverloadBuilder { 7645 // Common instance state available to all overload candidate addition methods. 7646 Sema &S; 7647 ArrayRef<Expr *> Args; 7648 Qualifiers VisibleTypeConversionsQuals; 7649 bool HasArithmeticOrEnumeralCandidateType; 7650 SmallVectorImpl<BuiltinCandidateTypeSet> &CandidateTypes; 7651 OverloadCandidateSet &CandidateSet; 7652 7653 static constexpr int ArithmeticTypesCap = 24; 7654 SmallVector<CanQualType, ArithmeticTypesCap> ArithmeticTypes; 7655 7656 // Define some indices used to iterate over the arithemetic types in 7657 // ArithmeticTypes. The "promoted arithmetic types" are the arithmetic 7658 // types are that preserved by promotion (C++ [over.built]p2). 7659 unsigned FirstIntegralType, 7660 LastIntegralType; 7661 unsigned FirstPromotedIntegralType, 7662 LastPromotedIntegralType; 7663 unsigned FirstPromotedArithmeticType, 7664 LastPromotedArithmeticType; 7665 unsigned NumArithmeticTypes; 7666 7667 void InitArithmeticTypes() { 7668 // Start of promoted types. 7669 FirstPromotedArithmeticType = 0; 7670 ArithmeticTypes.push_back(S.Context.FloatTy); 7671 ArithmeticTypes.push_back(S.Context.DoubleTy); 7672 ArithmeticTypes.push_back(S.Context.LongDoubleTy); 7673 if (S.Context.getTargetInfo().hasFloat128Type()) 7674 ArithmeticTypes.push_back(S.Context.Float128Ty); 7675 7676 // Start of integral types. 7677 FirstIntegralType = ArithmeticTypes.size(); 7678 FirstPromotedIntegralType = ArithmeticTypes.size(); 7679 ArithmeticTypes.push_back(S.Context.IntTy); 7680 ArithmeticTypes.push_back(S.Context.LongTy); 7681 ArithmeticTypes.push_back(S.Context.LongLongTy); 7682 if (S.Context.getTargetInfo().hasInt128Type()) 7683 ArithmeticTypes.push_back(S.Context.Int128Ty); 7684 ArithmeticTypes.push_back(S.Context.UnsignedIntTy); 7685 ArithmeticTypes.push_back(S.Context.UnsignedLongTy); 7686 ArithmeticTypes.push_back(S.Context.UnsignedLongLongTy); 7687 if (S.Context.getTargetInfo().hasInt128Type()) 7688 ArithmeticTypes.push_back(S.Context.UnsignedInt128Ty); 7689 LastPromotedIntegralType = ArithmeticTypes.size(); 7690 LastPromotedArithmeticType = ArithmeticTypes.size(); 7691 // End of promoted types. 7692 7693 ArithmeticTypes.push_back(S.Context.BoolTy); 7694 ArithmeticTypes.push_back(S.Context.CharTy); 7695 ArithmeticTypes.push_back(S.Context.WCharTy); 7696 if (S.Context.getLangOpts().Char8) 7697 ArithmeticTypes.push_back(S.Context.Char8Ty); 7698 ArithmeticTypes.push_back(S.Context.Char16Ty); 7699 ArithmeticTypes.push_back(S.Context.Char32Ty); 7700 ArithmeticTypes.push_back(S.Context.SignedCharTy); 7701 ArithmeticTypes.push_back(S.Context.ShortTy); 7702 ArithmeticTypes.push_back(S.Context.UnsignedCharTy); 7703 ArithmeticTypes.push_back(S.Context.UnsignedShortTy); 7704 LastIntegralType = ArithmeticTypes.size(); 7705 NumArithmeticTypes = ArithmeticTypes.size(); 7706 // End of integral types. 7707 // FIXME: What about complex? What about half? 7708 7709 assert(ArithmeticTypes.size() <= ArithmeticTypesCap && 7710 "Enough inline storage for all arithmetic types."); 7711 } 7712 7713 /// Helper method to factor out the common pattern of adding overloads 7714 /// for '++' and '--' builtin operators. 7715 void addPlusPlusMinusMinusStyleOverloads(QualType CandidateTy, 7716 bool HasVolatile, 7717 bool HasRestrict) { 7718 QualType ParamTypes[2] = { 7719 S.Context.getLValueReferenceType(CandidateTy), 7720 S.Context.IntTy 7721 }; 7722 7723 // Non-volatile version. 7724 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 7725 7726 // Use a heuristic to reduce number of builtin candidates in the set: 7727 // add volatile version only if there are conversions to a volatile type. 7728 if (HasVolatile) { 7729 ParamTypes[0] = 7730 S.Context.getLValueReferenceType( 7731 S.Context.getVolatileType(CandidateTy)); 7732 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 7733 } 7734 7735 // Add restrict version only if there are conversions to a restrict type 7736 // and our candidate type is a non-restrict-qualified pointer. 7737 if (HasRestrict && CandidateTy->isAnyPointerType() && 7738 !CandidateTy.isRestrictQualified()) { 7739 ParamTypes[0] 7740 = S.Context.getLValueReferenceType( 7741 S.Context.getCVRQualifiedType(CandidateTy, Qualifiers::Restrict)); 7742 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 7743 7744 if (HasVolatile) { 7745 ParamTypes[0] 7746 = S.Context.getLValueReferenceType( 7747 S.Context.getCVRQualifiedType(CandidateTy, 7748 (Qualifiers::Volatile | 7749 Qualifiers::Restrict))); 7750 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 7751 } 7752 } 7753 7754 } 7755 7756 public: 7757 BuiltinOperatorOverloadBuilder( 7758 Sema &S, ArrayRef<Expr *> Args, 7759 Qualifiers VisibleTypeConversionsQuals, 7760 bool HasArithmeticOrEnumeralCandidateType, 7761 SmallVectorImpl<BuiltinCandidateTypeSet> &CandidateTypes, 7762 OverloadCandidateSet &CandidateSet) 7763 : S(S), Args(Args), 7764 VisibleTypeConversionsQuals(VisibleTypeConversionsQuals), 7765 HasArithmeticOrEnumeralCandidateType( 7766 HasArithmeticOrEnumeralCandidateType), 7767 CandidateTypes(CandidateTypes), 7768 CandidateSet(CandidateSet) { 7769 7770 InitArithmeticTypes(); 7771 } 7772 7773 // Increment is deprecated for bool since C++17. 7774 // 7775 // C++ [over.built]p3: 7776 // 7777 // For every pair (T, VQ), where T is an arithmetic type other 7778 // than bool, and VQ is either volatile or empty, there exist 7779 // candidate operator functions of the form 7780 // 7781 // VQ T& operator++(VQ T&); 7782 // T operator++(VQ T&, int); 7783 // 7784 // C++ [over.built]p4: 7785 // 7786 // For every pair (T, VQ), where T is an arithmetic type other 7787 // than bool, and VQ is either volatile or empty, there exist 7788 // candidate operator functions of the form 7789 // 7790 // VQ T& operator--(VQ T&); 7791 // T operator--(VQ T&, int); 7792 void addPlusPlusMinusMinusArithmeticOverloads(OverloadedOperatorKind Op) { 7793 if (!HasArithmeticOrEnumeralCandidateType) 7794 return; 7795 7796 for (unsigned Arith = 0; Arith < NumArithmeticTypes; ++Arith) { 7797 const auto TypeOfT = ArithmeticTypes[Arith]; 7798 if (TypeOfT == S.Context.BoolTy) { 7799 if (Op == OO_MinusMinus) 7800 continue; 7801 if (Op == OO_PlusPlus && S.getLangOpts().CPlusPlus17) 7802 continue; 7803 } 7804 addPlusPlusMinusMinusStyleOverloads( 7805 TypeOfT, 7806 VisibleTypeConversionsQuals.hasVolatile(), 7807 VisibleTypeConversionsQuals.hasRestrict()); 7808 } 7809 } 7810 7811 // C++ [over.built]p5: 7812 // 7813 // For every pair (T, VQ), where T is a cv-qualified or 7814 // cv-unqualified object type, and VQ is either volatile or 7815 // empty, there exist candidate operator functions of the form 7816 // 7817 // T*VQ& operator++(T*VQ&); 7818 // T*VQ& operator--(T*VQ&); 7819 // T* operator++(T*VQ&, int); 7820 // T* operator--(T*VQ&, int); 7821 void addPlusPlusMinusMinusPointerOverloads() { 7822 for (BuiltinCandidateTypeSet::iterator 7823 Ptr = CandidateTypes[0].pointer_begin(), 7824 PtrEnd = CandidateTypes[0].pointer_end(); 7825 Ptr != PtrEnd; ++Ptr) { 7826 // Skip pointer types that aren't pointers to object types. 7827 if (!(*Ptr)->getPointeeType()->isObjectType()) 7828 continue; 7829 7830 addPlusPlusMinusMinusStyleOverloads(*Ptr, 7831 (!(*Ptr).isVolatileQualified() && 7832 VisibleTypeConversionsQuals.hasVolatile()), 7833 (!(*Ptr).isRestrictQualified() && 7834 VisibleTypeConversionsQuals.hasRestrict())); 7835 } 7836 } 7837 7838 // C++ [over.built]p6: 7839 // For every cv-qualified or cv-unqualified object type T, there 7840 // exist candidate operator functions of the form 7841 // 7842 // T& operator*(T*); 7843 // 7844 // C++ [over.built]p7: 7845 // For every function type T that does not have cv-qualifiers or a 7846 // ref-qualifier, there exist candidate operator functions of the form 7847 // T& operator*(T*); 7848 void addUnaryStarPointerOverloads() { 7849 for (BuiltinCandidateTypeSet::iterator 7850 Ptr = CandidateTypes[0].pointer_begin(), 7851 PtrEnd = CandidateTypes[0].pointer_end(); 7852 Ptr != PtrEnd; ++Ptr) { 7853 QualType ParamTy = *Ptr; 7854 QualType PointeeTy = ParamTy->getPointeeType(); 7855 if (!PointeeTy->isObjectType() && !PointeeTy->isFunctionType()) 7856 continue; 7857 7858 if (const FunctionProtoType *Proto =PointeeTy->getAs<FunctionProtoType>()) 7859 if (Proto->getTypeQuals() || Proto->getRefQualifier()) 7860 continue; 7861 7862 S.AddBuiltinCandidate(&ParamTy, Args, CandidateSet); 7863 } 7864 } 7865 7866 // C++ [over.built]p9: 7867 // For every promoted arithmetic type T, there exist candidate 7868 // operator functions of the form 7869 // 7870 // T operator+(T); 7871 // T operator-(T); 7872 void addUnaryPlusOrMinusArithmeticOverloads() { 7873 if (!HasArithmeticOrEnumeralCandidateType) 7874 return; 7875 7876 for (unsigned Arith = FirstPromotedArithmeticType; 7877 Arith < LastPromotedArithmeticType; ++Arith) { 7878 QualType ArithTy = ArithmeticTypes[Arith]; 7879 S.AddBuiltinCandidate(&ArithTy, Args, CandidateSet); 7880 } 7881 7882 // Extension: We also add these operators for vector types. 7883 for (BuiltinCandidateTypeSet::iterator 7884 Vec = CandidateTypes[0].vector_begin(), 7885 VecEnd = CandidateTypes[0].vector_end(); 7886 Vec != VecEnd; ++Vec) { 7887 QualType VecTy = *Vec; 7888 S.AddBuiltinCandidate(&VecTy, Args, CandidateSet); 7889 } 7890 } 7891 7892 // C++ [over.built]p8: 7893 // For every type T, there exist candidate operator functions of 7894 // the form 7895 // 7896 // T* operator+(T*); 7897 void addUnaryPlusPointerOverloads() { 7898 for (BuiltinCandidateTypeSet::iterator 7899 Ptr = CandidateTypes[0].pointer_begin(), 7900 PtrEnd = CandidateTypes[0].pointer_end(); 7901 Ptr != PtrEnd; ++Ptr) { 7902 QualType ParamTy = *Ptr; 7903 S.AddBuiltinCandidate(&ParamTy, Args, CandidateSet); 7904 } 7905 } 7906 7907 // C++ [over.built]p10: 7908 // For every promoted integral type T, there exist candidate 7909 // operator functions of the form 7910 // 7911 // T operator~(T); 7912 void addUnaryTildePromotedIntegralOverloads() { 7913 if (!HasArithmeticOrEnumeralCandidateType) 7914 return; 7915 7916 for (unsigned Int = FirstPromotedIntegralType; 7917 Int < LastPromotedIntegralType; ++Int) { 7918 QualType IntTy = ArithmeticTypes[Int]; 7919 S.AddBuiltinCandidate(&IntTy, Args, CandidateSet); 7920 } 7921 7922 // Extension: We also add this operator for vector types. 7923 for (BuiltinCandidateTypeSet::iterator 7924 Vec = CandidateTypes[0].vector_begin(), 7925 VecEnd = CandidateTypes[0].vector_end(); 7926 Vec != VecEnd; ++Vec) { 7927 QualType VecTy = *Vec; 7928 S.AddBuiltinCandidate(&VecTy, Args, CandidateSet); 7929 } 7930 } 7931 7932 // C++ [over.match.oper]p16: 7933 // For every pointer to member type T or type std::nullptr_t, there 7934 // exist candidate operator functions of the form 7935 // 7936 // bool operator==(T,T); 7937 // bool operator!=(T,T); 7938 void addEqualEqualOrNotEqualMemberPointerOrNullptrOverloads() { 7939 /// Set of (canonical) types that we've already handled. 7940 llvm::SmallPtrSet<QualType, 8> AddedTypes; 7941 7942 for (unsigned ArgIdx = 0, N = Args.size(); ArgIdx != N; ++ArgIdx) { 7943 for (BuiltinCandidateTypeSet::iterator 7944 MemPtr = CandidateTypes[ArgIdx].member_pointer_begin(), 7945 MemPtrEnd = CandidateTypes[ArgIdx].member_pointer_end(); 7946 MemPtr != MemPtrEnd; 7947 ++MemPtr) { 7948 // Don't add the same builtin candidate twice. 7949 if (!AddedTypes.insert(S.Context.getCanonicalType(*MemPtr)).second) 7950 continue; 7951 7952 QualType ParamTypes[2] = { *MemPtr, *MemPtr }; 7953 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 7954 } 7955 7956 if (CandidateTypes[ArgIdx].hasNullPtrType()) { 7957 CanQualType NullPtrTy = S.Context.getCanonicalType(S.Context.NullPtrTy); 7958 if (AddedTypes.insert(NullPtrTy).second) { 7959 QualType ParamTypes[2] = { NullPtrTy, NullPtrTy }; 7960 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 7961 } 7962 } 7963 } 7964 } 7965 7966 // C++ [over.built]p15: 7967 // 7968 // For every T, where T is an enumeration type or a pointer type, 7969 // there exist candidate operator functions of the form 7970 // 7971 // bool operator<(T, T); 7972 // bool operator>(T, T); 7973 // bool operator<=(T, T); 7974 // bool operator>=(T, T); 7975 // bool operator==(T, T); 7976 // bool operator!=(T, T); 7977 // R operator<=>(T, T) 7978 void addGenericBinaryPointerOrEnumeralOverloads() { 7979 // C++ [over.match.oper]p3: 7980 // [...]the built-in candidates include all of the candidate operator 7981 // functions defined in 13.6 that, compared to the given operator, [...] 7982 // do not have the same parameter-type-list as any non-template non-member 7983 // candidate. 7984 // 7985 // Note that in practice, this only affects enumeration types because there 7986 // aren't any built-in candidates of record type, and a user-defined operator 7987 // must have an operand of record or enumeration type. Also, the only other 7988 // overloaded operator with enumeration arguments, operator=, 7989 // cannot be overloaded for enumeration types, so this is the only place 7990 // where we must suppress candidates like this. 7991 llvm::DenseSet<std::pair<CanQualType, CanQualType> > 7992 UserDefinedBinaryOperators; 7993 7994 for (unsigned ArgIdx = 0, N = Args.size(); ArgIdx != N; ++ArgIdx) { 7995 if (CandidateTypes[ArgIdx].enumeration_begin() != 7996 CandidateTypes[ArgIdx].enumeration_end()) { 7997 for (OverloadCandidateSet::iterator C = CandidateSet.begin(), 7998 CEnd = CandidateSet.end(); 7999 C != CEnd; ++C) { 8000 if (!C->Viable || !C->Function || C->Function->getNumParams() != 2) 8001 continue; 8002 8003 if (C->Function->isFunctionTemplateSpecialization()) 8004 continue; 8005 8006 QualType FirstParamType = 8007 C->Function->getParamDecl(0)->getType().getUnqualifiedType(); 8008 QualType SecondParamType = 8009 C->Function->getParamDecl(1)->getType().getUnqualifiedType(); 8010 8011 // Skip if either parameter isn't of enumeral type. 8012 if (!FirstParamType->isEnumeralType() || 8013 !SecondParamType->isEnumeralType()) 8014 continue; 8015 8016 // Add this operator to the set of known user-defined operators. 8017 UserDefinedBinaryOperators.insert( 8018 std::make_pair(S.Context.getCanonicalType(FirstParamType), 8019 S.Context.getCanonicalType(SecondParamType))); 8020 } 8021 } 8022 } 8023 8024 /// Set of (canonical) types that we've already handled. 8025 llvm::SmallPtrSet<QualType, 8> AddedTypes; 8026 8027 for (unsigned ArgIdx = 0, N = Args.size(); ArgIdx != N; ++ArgIdx) { 8028 for (BuiltinCandidateTypeSet::iterator 8029 Ptr = CandidateTypes[ArgIdx].pointer_begin(), 8030 PtrEnd = CandidateTypes[ArgIdx].pointer_end(); 8031 Ptr != PtrEnd; ++Ptr) { 8032 // Don't add the same builtin candidate twice. 8033 if (!AddedTypes.insert(S.Context.getCanonicalType(*Ptr)).second) 8034 continue; 8035 8036 QualType ParamTypes[2] = { *Ptr, *Ptr }; 8037 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8038 } 8039 for (BuiltinCandidateTypeSet::iterator 8040 Enum = CandidateTypes[ArgIdx].enumeration_begin(), 8041 EnumEnd = CandidateTypes[ArgIdx].enumeration_end(); 8042 Enum != EnumEnd; ++Enum) { 8043 CanQualType CanonType = S.Context.getCanonicalType(*Enum); 8044 8045 // Don't add the same builtin candidate twice, or if a user defined 8046 // candidate exists. 8047 if (!AddedTypes.insert(CanonType).second || 8048 UserDefinedBinaryOperators.count(std::make_pair(CanonType, 8049 CanonType))) 8050 continue; 8051 QualType ParamTypes[2] = { *Enum, *Enum }; 8052 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8053 } 8054 } 8055 } 8056 8057 // C++ [over.built]p13: 8058 // 8059 // For every cv-qualified or cv-unqualified object type T 8060 // there exist candidate operator functions of the form 8061 // 8062 // T* operator+(T*, ptrdiff_t); 8063 // T& operator[](T*, ptrdiff_t); [BELOW] 8064 // T* operator-(T*, ptrdiff_t); 8065 // T* operator+(ptrdiff_t, T*); 8066 // T& operator[](ptrdiff_t, T*); [BELOW] 8067 // 8068 // C++ [over.built]p14: 8069 // 8070 // For every T, where T is a pointer to object type, there 8071 // exist candidate operator functions of the form 8072 // 8073 // ptrdiff_t operator-(T, T); 8074 void addBinaryPlusOrMinusPointerOverloads(OverloadedOperatorKind Op) { 8075 /// Set of (canonical) types that we've already handled. 8076 llvm::SmallPtrSet<QualType, 8> AddedTypes; 8077 8078 for (int Arg = 0; Arg < 2; ++Arg) { 8079 QualType AsymmetricParamTypes[2] = { 8080 S.Context.getPointerDiffType(), 8081 S.Context.getPointerDiffType(), 8082 }; 8083 for (BuiltinCandidateTypeSet::iterator 8084 Ptr = CandidateTypes[Arg].pointer_begin(), 8085 PtrEnd = CandidateTypes[Arg].pointer_end(); 8086 Ptr != PtrEnd; ++Ptr) { 8087 QualType PointeeTy = (*Ptr)->getPointeeType(); 8088 if (!PointeeTy->isObjectType()) 8089 continue; 8090 8091 AsymmetricParamTypes[Arg] = *Ptr; 8092 if (Arg == 0 || Op == OO_Plus) { 8093 // operator+(T*, ptrdiff_t) or operator-(T*, ptrdiff_t) 8094 // T* operator+(ptrdiff_t, T*); 8095 S.AddBuiltinCandidate(AsymmetricParamTypes, Args, CandidateSet); 8096 } 8097 if (Op == OO_Minus) { 8098 // ptrdiff_t operator-(T, T); 8099 if (!AddedTypes.insert(S.Context.getCanonicalType(*Ptr)).second) 8100 continue; 8101 8102 QualType ParamTypes[2] = { *Ptr, *Ptr }; 8103 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8104 } 8105 } 8106 } 8107 } 8108 8109 // C++ [over.built]p12: 8110 // 8111 // For every pair of promoted arithmetic types L and R, there 8112 // exist candidate operator functions of the form 8113 // 8114 // LR operator*(L, R); 8115 // LR operator/(L, R); 8116 // LR operator+(L, R); 8117 // LR operator-(L, R); 8118 // bool operator<(L, R); 8119 // bool operator>(L, R); 8120 // bool operator<=(L, R); 8121 // bool operator>=(L, R); 8122 // bool operator==(L, R); 8123 // bool operator!=(L, R); 8124 // 8125 // where LR is the result of the usual arithmetic conversions 8126 // between types L and R. 8127 // 8128 // C++ [over.built]p24: 8129 // 8130 // For every pair of promoted arithmetic types L and R, there exist 8131 // candidate operator functions of the form 8132 // 8133 // LR operator?(bool, L, R); 8134 // 8135 // where LR is the result of the usual arithmetic conversions 8136 // between types L and R. 8137 // Our candidates ignore the first parameter. 8138 void addGenericBinaryArithmeticOverloads() { 8139 if (!HasArithmeticOrEnumeralCandidateType) 8140 return; 8141 8142 for (unsigned Left = FirstPromotedArithmeticType; 8143 Left < LastPromotedArithmeticType; ++Left) { 8144 for (unsigned Right = FirstPromotedArithmeticType; 8145 Right < LastPromotedArithmeticType; ++Right) { 8146 QualType LandR[2] = { ArithmeticTypes[Left], 8147 ArithmeticTypes[Right] }; 8148 S.AddBuiltinCandidate(LandR, Args, CandidateSet); 8149 } 8150 } 8151 8152 // Extension: Add the binary operators ==, !=, <, <=, >=, >, *, /, and the 8153 // conditional operator for vector types. 8154 for (BuiltinCandidateTypeSet::iterator 8155 Vec1 = CandidateTypes[0].vector_begin(), 8156 Vec1End = CandidateTypes[0].vector_end(); 8157 Vec1 != Vec1End; ++Vec1) { 8158 for (BuiltinCandidateTypeSet::iterator 8159 Vec2 = CandidateTypes[1].vector_begin(), 8160 Vec2End = CandidateTypes[1].vector_end(); 8161 Vec2 != Vec2End; ++Vec2) { 8162 QualType LandR[2] = { *Vec1, *Vec2 }; 8163 S.AddBuiltinCandidate(LandR, Args, CandidateSet); 8164 } 8165 } 8166 } 8167 8168 // C++2a [over.built]p14: 8169 // 8170 // For every integral type T there exists a candidate operator function 8171 // of the form 8172 // 8173 // std::strong_ordering operator<=>(T, T) 8174 // 8175 // C++2a [over.built]p15: 8176 // 8177 // For every pair of floating-point types L and R, there exists a candidate 8178 // operator function of the form 8179 // 8180 // std::partial_ordering operator<=>(L, R); 8181 // 8182 // FIXME: The current specification for integral types doesn't play nice with 8183 // the direction of p0946r0, which allows mixed integral and unscoped-enum 8184 // comparisons. Under the current spec this can lead to ambiguity during 8185 // overload resolution. For example: 8186 // 8187 // enum A : int {a}; 8188 // auto x = (a <=> (long)42); 8189 // 8190 // error: call is ambiguous for arguments 'A' and 'long'. 8191 // note: candidate operator<=>(int, int) 8192 // note: candidate operator<=>(long, long) 8193 // 8194 // To avoid this error, this function deviates from the specification and adds 8195 // the mixed overloads `operator<=>(L, R)` where L and R are promoted 8196 // arithmetic types (the same as the generic relational overloads). 8197 // 8198 // For now this function acts as a placeholder. 8199 void addThreeWayArithmeticOverloads() { 8200 addGenericBinaryArithmeticOverloads(); 8201 } 8202 8203 // C++ [over.built]p17: 8204 // 8205 // For every pair of promoted integral types L and R, there 8206 // exist candidate operator functions of the form 8207 // 8208 // LR operator%(L, R); 8209 // LR operator&(L, R); 8210 // LR operator^(L, R); 8211 // LR operator|(L, R); 8212 // L operator<<(L, R); 8213 // L operator>>(L, R); 8214 // 8215 // where LR is the result of the usual arithmetic conversions 8216 // between types L and R. 8217 void addBinaryBitwiseArithmeticOverloads(OverloadedOperatorKind Op) { 8218 if (!HasArithmeticOrEnumeralCandidateType) 8219 return; 8220 8221 for (unsigned Left = FirstPromotedIntegralType; 8222 Left < LastPromotedIntegralType; ++Left) { 8223 for (unsigned Right = FirstPromotedIntegralType; 8224 Right < LastPromotedIntegralType; ++Right) { 8225 QualType LandR[2] = { ArithmeticTypes[Left], 8226 ArithmeticTypes[Right] }; 8227 S.AddBuiltinCandidate(LandR, Args, CandidateSet); 8228 } 8229 } 8230 } 8231 8232 // C++ [over.built]p20: 8233 // 8234 // For every pair (T, VQ), where T is an enumeration or 8235 // pointer to member type and VQ is either volatile or 8236 // empty, there exist candidate operator functions of the form 8237 // 8238 // VQ T& operator=(VQ T&, T); 8239 void addAssignmentMemberPointerOrEnumeralOverloads() { 8240 /// Set of (canonical) types that we've already handled. 8241 llvm::SmallPtrSet<QualType, 8> AddedTypes; 8242 8243 for (unsigned ArgIdx = 0; ArgIdx < 2; ++ArgIdx) { 8244 for (BuiltinCandidateTypeSet::iterator 8245 Enum = CandidateTypes[ArgIdx].enumeration_begin(), 8246 EnumEnd = CandidateTypes[ArgIdx].enumeration_end(); 8247 Enum != EnumEnd; ++Enum) { 8248 if (!AddedTypes.insert(S.Context.getCanonicalType(*Enum)).second) 8249 continue; 8250 8251 AddBuiltinAssignmentOperatorCandidates(S, *Enum, Args, CandidateSet); 8252 } 8253 8254 for (BuiltinCandidateTypeSet::iterator 8255 MemPtr = CandidateTypes[ArgIdx].member_pointer_begin(), 8256 MemPtrEnd = CandidateTypes[ArgIdx].member_pointer_end(); 8257 MemPtr != MemPtrEnd; ++MemPtr) { 8258 if (!AddedTypes.insert(S.Context.getCanonicalType(*MemPtr)).second) 8259 continue; 8260 8261 AddBuiltinAssignmentOperatorCandidates(S, *MemPtr, Args, CandidateSet); 8262 } 8263 } 8264 } 8265 8266 // C++ [over.built]p19: 8267 // 8268 // For every pair (T, VQ), where T is any type and VQ is either 8269 // volatile or empty, there exist candidate operator functions 8270 // of the form 8271 // 8272 // T*VQ& operator=(T*VQ&, T*); 8273 // 8274 // C++ [over.built]p21: 8275 // 8276 // For every pair (T, VQ), where T is a cv-qualified or 8277 // cv-unqualified object type and VQ is either volatile or 8278 // empty, there exist candidate operator functions of the form 8279 // 8280 // T*VQ& operator+=(T*VQ&, ptrdiff_t); 8281 // T*VQ& operator-=(T*VQ&, ptrdiff_t); 8282 void addAssignmentPointerOverloads(bool isEqualOp) { 8283 /// Set of (canonical) types that we've already handled. 8284 llvm::SmallPtrSet<QualType, 8> AddedTypes; 8285 8286 for (BuiltinCandidateTypeSet::iterator 8287 Ptr = CandidateTypes[0].pointer_begin(), 8288 PtrEnd = CandidateTypes[0].pointer_end(); 8289 Ptr != PtrEnd; ++Ptr) { 8290 // If this is operator=, keep track of the builtin candidates we added. 8291 if (isEqualOp) 8292 AddedTypes.insert(S.Context.getCanonicalType(*Ptr)); 8293 else if (!(*Ptr)->getPointeeType()->isObjectType()) 8294 continue; 8295 8296 // non-volatile version 8297 QualType ParamTypes[2] = { 8298 S.Context.getLValueReferenceType(*Ptr), 8299 isEqualOp ? *Ptr : S.Context.getPointerDiffType(), 8300 }; 8301 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8302 /*IsAssigmentOperator=*/ isEqualOp); 8303 8304 bool NeedVolatile = !(*Ptr).isVolatileQualified() && 8305 VisibleTypeConversionsQuals.hasVolatile(); 8306 if (NeedVolatile) { 8307 // volatile version 8308 ParamTypes[0] = 8309 S.Context.getLValueReferenceType(S.Context.getVolatileType(*Ptr)); 8310 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8311 /*IsAssigmentOperator=*/isEqualOp); 8312 } 8313 8314 if (!(*Ptr).isRestrictQualified() && 8315 VisibleTypeConversionsQuals.hasRestrict()) { 8316 // restrict version 8317 ParamTypes[0] 8318 = S.Context.getLValueReferenceType(S.Context.getRestrictType(*Ptr)); 8319 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8320 /*IsAssigmentOperator=*/isEqualOp); 8321 8322 if (NeedVolatile) { 8323 // volatile restrict version 8324 ParamTypes[0] 8325 = S.Context.getLValueReferenceType( 8326 S.Context.getCVRQualifiedType(*Ptr, 8327 (Qualifiers::Volatile | 8328 Qualifiers::Restrict))); 8329 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8330 /*IsAssigmentOperator=*/isEqualOp); 8331 } 8332 } 8333 } 8334 8335 if (isEqualOp) { 8336 for (BuiltinCandidateTypeSet::iterator 8337 Ptr = CandidateTypes[1].pointer_begin(), 8338 PtrEnd = CandidateTypes[1].pointer_end(); 8339 Ptr != PtrEnd; ++Ptr) { 8340 // Make sure we don't add the same candidate twice. 8341 if (!AddedTypes.insert(S.Context.getCanonicalType(*Ptr)).second) 8342 continue; 8343 8344 QualType ParamTypes[2] = { 8345 S.Context.getLValueReferenceType(*Ptr), 8346 *Ptr, 8347 }; 8348 8349 // non-volatile version 8350 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8351 /*IsAssigmentOperator=*/true); 8352 8353 bool NeedVolatile = !(*Ptr).isVolatileQualified() && 8354 VisibleTypeConversionsQuals.hasVolatile(); 8355 if (NeedVolatile) { 8356 // volatile version 8357 ParamTypes[0] = 8358 S.Context.getLValueReferenceType(S.Context.getVolatileType(*Ptr)); 8359 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8360 /*IsAssigmentOperator=*/true); 8361 } 8362 8363 if (!(*Ptr).isRestrictQualified() && 8364 VisibleTypeConversionsQuals.hasRestrict()) { 8365 // restrict version 8366 ParamTypes[0] 8367 = S.Context.getLValueReferenceType(S.Context.getRestrictType(*Ptr)); 8368 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8369 /*IsAssigmentOperator=*/true); 8370 8371 if (NeedVolatile) { 8372 // volatile restrict version 8373 ParamTypes[0] 8374 = S.Context.getLValueReferenceType( 8375 S.Context.getCVRQualifiedType(*Ptr, 8376 (Qualifiers::Volatile | 8377 Qualifiers::Restrict))); 8378 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8379 /*IsAssigmentOperator=*/true); 8380 } 8381 } 8382 } 8383 } 8384 } 8385 8386 // C++ [over.built]p18: 8387 // 8388 // For every triple (L, VQ, R), where L is an arithmetic type, 8389 // VQ is either volatile or empty, and R is a promoted 8390 // arithmetic type, there exist candidate operator functions of 8391 // the form 8392 // 8393 // VQ L& operator=(VQ L&, R); 8394 // VQ L& operator*=(VQ L&, R); 8395 // VQ L& operator/=(VQ L&, R); 8396 // VQ L& operator+=(VQ L&, R); 8397 // VQ L& operator-=(VQ L&, R); 8398 void addAssignmentArithmeticOverloads(bool isEqualOp) { 8399 if (!HasArithmeticOrEnumeralCandidateType) 8400 return; 8401 8402 for (unsigned Left = 0; Left < NumArithmeticTypes; ++Left) { 8403 for (unsigned Right = FirstPromotedArithmeticType; 8404 Right < LastPromotedArithmeticType; ++Right) { 8405 QualType ParamTypes[2]; 8406 ParamTypes[1] = ArithmeticTypes[Right]; 8407 8408 // Add this built-in operator as a candidate (VQ is empty). 8409 ParamTypes[0] = 8410 S.Context.getLValueReferenceType(ArithmeticTypes[Left]); 8411 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8412 /*IsAssigmentOperator=*/isEqualOp); 8413 8414 // Add this built-in operator as a candidate (VQ is 'volatile'). 8415 if (VisibleTypeConversionsQuals.hasVolatile()) { 8416 ParamTypes[0] = 8417 S.Context.getVolatileType(ArithmeticTypes[Left]); 8418 ParamTypes[0] = S.Context.getLValueReferenceType(ParamTypes[0]); 8419 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8420 /*IsAssigmentOperator=*/isEqualOp); 8421 } 8422 } 8423 } 8424 8425 // Extension: Add the binary operators =, +=, -=, *=, /= for vector types. 8426 for (BuiltinCandidateTypeSet::iterator 8427 Vec1 = CandidateTypes[0].vector_begin(), 8428 Vec1End = CandidateTypes[0].vector_end(); 8429 Vec1 != Vec1End; ++Vec1) { 8430 for (BuiltinCandidateTypeSet::iterator 8431 Vec2 = CandidateTypes[1].vector_begin(), 8432 Vec2End = CandidateTypes[1].vector_end(); 8433 Vec2 != Vec2End; ++Vec2) { 8434 QualType ParamTypes[2]; 8435 ParamTypes[1] = *Vec2; 8436 // Add this built-in operator as a candidate (VQ is empty). 8437 ParamTypes[0] = S.Context.getLValueReferenceType(*Vec1); 8438 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8439 /*IsAssigmentOperator=*/isEqualOp); 8440 8441 // Add this built-in operator as a candidate (VQ is 'volatile'). 8442 if (VisibleTypeConversionsQuals.hasVolatile()) { 8443 ParamTypes[0] = S.Context.getVolatileType(*Vec1); 8444 ParamTypes[0] = S.Context.getLValueReferenceType(ParamTypes[0]); 8445 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8446 /*IsAssigmentOperator=*/isEqualOp); 8447 } 8448 } 8449 } 8450 } 8451 8452 // C++ [over.built]p22: 8453 // 8454 // For every triple (L, VQ, R), where L is an integral type, VQ 8455 // is either volatile or empty, and R is a promoted integral 8456 // type, there exist candidate operator functions of the form 8457 // 8458 // VQ L& operator%=(VQ L&, R); 8459 // VQ L& operator<<=(VQ L&, R); 8460 // VQ L& operator>>=(VQ L&, R); 8461 // VQ L& operator&=(VQ L&, R); 8462 // VQ L& operator^=(VQ L&, R); 8463 // VQ L& operator|=(VQ L&, R); 8464 void addAssignmentIntegralOverloads() { 8465 if (!HasArithmeticOrEnumeralCandidateType) 8466 return; 8467 8468 for (unsigned Left = FirstIntegralType; Left < LastIntegralType; ++Left) { 8469 for (unsigned Right = FirstPromotedIntegralType; 8470 Right < LastPromotedIntegralType; ++Right) { 8471 QualType ParamTypes[2]; 8472 ParamTypes[1] = ArithmeticTypes[Right]; 8473 8474 // Add this built-in operator as a candidate (VQ is empty). 8475 ParamTypes[0] = 8476 S.Context.getLValueReferenceType(ArithmeticTypes[Left]); 8477 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8478 if (VisibleTypeConversionsQuals.hasVolatile()) { 8479 // Add this built-in operator as a candidate (VQ is 'volatile'). 8480 ParamTypes[0] = ArithmeticTypes[Left]; 8481 ParamTypes[0] = S.Context.getVolatileType(ParamTypes[0]); 8482 ParamTypes[0] = S.Context.getLValueReferenceType(ParamTypes[0]); 8483 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8484 } 8485 } 8486 } 8487 } 8488 8489 // C++ [over.operator]p23: 8490 // 8491 // There also exist candidate operator functions of the form 8492 // 8493 // bool operator!(bool); 8494 // bool operator&&(bool, bool); 8495 // bool operator||(bool, bool); 8496 void addExclaimOverload() { 8497 QualType ParamTy = S.Context.BoolTy; 8498 S.AddBuiltinCandidate(&ParamTy, Args, CandidateSet, 8499 /*IsAssignmentOperator=*/false, 8500 /*NumContextualBoolArguments=*/1); 8501 } 8502 void addAmpAmpOrPipePipeOverload() { 8503 QualType ParamTypes[2] = { S.Context.BoolTy, S.Context.BoolTy }; 8504 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet, 8505 /*IsAssignmentOperator=*/false, 8506 /*NumContextualBoolArguments=*/2); 8507 } 8508 8509 // C++ [over.built]p13: 8510 // 8511 // For every cv-qualified or cv-unqualified object type T there 8512 // exist candidate operator functions of the form 8513 // 8514 // T* operator+(T*, ptrdiff_t); [ABOVE] 8515 // T& operator[](T*, ptrdiff_t); 8516 // T* operator-(T*, ptrdiff_t); [ABOVE] 8517 // T* operator+(ptrdiff_t, T*); [ABOVE] 8518 // T& operator[](ptrdiff_t, T*); 8519 void addSubscriptOverloads() { 8520 for (BuiltinCandidateTypeSet::iterator 8521 Ptr = CandidateTypes[0].pointer_begin(), 8522 PtrEnd = CandidateTypes[0].pointer_end(); 8523 Ptr != PtrEnd; ++Ptr) { 8524 QualType ParamTypes[2] = { *Ptr, S.Context.getPointerDiffType() }; 8525 QualType PointeeType = (*Ptr)->getPointeeType(); 8526 if (!PointeeType->isObjectType()) 8527 continue; 8528 8529 // T& operator[](T*, ptrdiff_t) 8530 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8531 } 8532 8533 for (BuiltinCandidateTypeSet::iterator 8534 Ptr = CandidateTypes[1].pointer_begin(), 8535 PtrEnd = CandidateTypes[1].pointer_end(); 8536 Ptr != PtrEnd; ++Ptr) { 8537 QualType ParamTypes[2] = { S.Context.getPointerDiffType(), *Ptr }; 8538 QualType PointeeType = (*Ptr)->getPointeeType(); 8539 if (!PointeeType->isObjectType()) 8540 continue; 8541 8542 // T& operator[](ptrdiff_t, T*) 8543 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8544 } 8545 } 8546 8547 // C++ [over.built]p11: 8548 // For every quintuple (C1, C2, T, CV1, CV2), where C2 is a class type, 8549 // C1 is the same type as C2 or is a derived class of C2, T is an object 8550 // type or a function type, and CV1 and CV2 are cv-qualifier-seqs, 8551 // there exist candidate operator functions of the form 8552 // 8553 // CV12 T& operator->*(CV1 C1*, CV2 T C2::*); 8554 // 8555 // where CV12 is the union of CV1 and CV2. 8556 void addArrowStarOverloads() { 8557 for (BuiltinCandidateTypeSet::iterator 8558 Ptr = CandidateTypes[0].pointer_begin(), 8559 PtrEnd = CandidateTypes[0].pointer_end(); 8560 Ptr != PtrEnd; ++Ptr) { 8561 QualType C1Ty = (*Ptr); 8562 QualType C1; 8563 QualifierCollector Q1; 8564 C1 = QualType(Q1.strip(C1Ty->getPointeeType()), 0); 8565 if (!isa<RecordType>(C1)) 8566 continue; 8567 // heuristic to reduce number of builtin candidates in the set. 8568 // Add volatile/restrict version only if there are conversions to a 8569 // volatile/restrict type. 8570 if (!VisibleTypeConversionsQuals.hasVolatile() && Q1.hasVolatile()) 8571 continue; 8572 if (!VisibleTypeConversionsQuals.hasRestrict() && Q1.hasRestrict()) 8573 continue; 8574 for (BuiltinCandidateTypeSet::iterator 8575 MemPtr = CandidateTypes[1].member_pointer_begin(), 8576 MemPtrEnd = CandidateTypes[1].member_pointer_end(); 8577 MemPtr != MemPtrEnd; ++MemPtr) { 8578 const MemberPointerType *mptr = cast<MemberPointerType>(*MemPtr); 8579 QualType C2 = QualType(mptr->getClass(), 0); 8580 C2 = C2.getUnqualifiedType(); 8581 if (C1 != C2 && !S.IsDerivedFrom(CandidateSet.getLocation(), C1, C2)) 8582 break; 8583 QualType ParamTypes[2] = { *Ptr, *MemPtr }; 8584 // build CV12 T& 8585 QualType T = mptr->getPointeeType(); 8586 if (!VisibleTypeConversionsQuals.hasVolatile() && 8587 T.isVolatileQualified()) 8588 continue; 8589 if (!VisibleTypeConversionsQuals.hasRestrict() && 8590 T.isRestrictQualified()) 8591 continue; 8592 T = Q1.apply(S.Context, T); 8593 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8594 } 8595 } 8596 } 8597 8598 // Note that we don't consider the first argument, since it has been 8599 // contextually converted to bool long ago. The candidates below are 8600 // therefore added as binary. 8601 // 8602 // C++ [over.built]p25: 8603 // For every type T, where T is a pointer, pointer-to-member, or scoped 8604 // enumeration type, there exist candidate operator functions of the form 8605 // 8606 // T operator?(bool, T, T); 8607 // 8608 void addConditionalOperatorOverloads() { 8609 /// Set of (canonical) types that we've already handled. 8610 llvm::SmallPtrSet<QualType, 8> AddedTypes; 8611 8612 for (unsigned ArgIdx = 0; ArgIdx < 2; ++ArgIdx) { 8613 for (BuiltinCandidateTypeSet::iterator 8614 Ptr = CandidateTypes[ArgIdx].pointer_begin(), 8615 PtrEnd = CandidateTypes[ArgIdx].pointer_end(); 8616 Ptr != PtrEnd; ++Ptr) { 8617 if (!AddedTypes.insert(S.Context.getCanonicalType(*Ptr)).second) 8618 continue; 8619 8620 QualType ParamTypes[2] = { *Ptr, *Ptr }; 8621 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8622 } 8623 8624 for (BuiltinCandidateTypeSet::iterator 8625 MemPtr = CandidateTypes[ArgIdx].member_pointer_begin(), 8626 MemPtrEnd = CandidateTypes[ArgIdx].member_pointer_end(); 8627 MemPtr != MemPtrEnd; ++MemPtr) { 8628 if (!AddedTypes.insert(S.Context.getCanonicalType(*MemPtr)).second) 8629 continue; 8630 8631 QualType ParamTypes[2] = { *MemPtr, *MemPtr }; 8632 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8633 } 8634 8635 if (S.getLangOpts().CPlusPlus11) { 8636 for (BuiltinCandidateTypeSet::iterator 8637 Enum = CandidateTypes[ArgIdx].enumeration_begin(), 8638 EnumEnd = CandidateTypes[ArgIdx].enumeration_end(); 8639 Enum != EnumEnd; ++Enum) { 8640 if (!(*Enum)->getAs<EnumType>()->getDecl()->isScoped()) 8641 continue; 8642 8643 if (!AddedTypes.insert(S.Context.getCanonicalType(*Enum)).second) 8644 continue; 8645 8646 QualType ParamTypes[2] = { *Enum, *Enum }; 8647 S.AddBuiltinCandidate(ParamTypes, Args, CandidateSet); 8648 } 8649 } 8650 } 8651 } 8652 }; 8653 8654 } // end anonymous namespace 8655 8656 /// AddBuiltinOperatorCandidates - Add the appropriate built-in 8657 /// operator overloads to the candidate set (C++ [over.built]), based 8658 /// on the operator @p Op and the arguments given. For example, if the 8659 /// operator is a binary '+', this routine might add "int 8660 /// operator+(int, int)" to cover integer addition. 8661 void Sema::AddBuiltinOperatorCandidates(OverloadedOperatorKind Op, 8662 SourceLocation OpLoc, 8663 ArrayRef<Expr *> Args, 8664 OverloadCandidateSet &CandidateSet) { 8665 // Find all of the types that the arguments can convert to, but only 8666 // if the operator we're looking at has built-in operator candidates 8667 // that make use of these types. Also record whether we encounter non-record 8668 // candidate types or either arithmetic or enumeral candidate types. 8669 Qualifiers VisibleTypeConversionsQuals; 8670 VisibleTypeConversionsQuals.addConst(); 8671 for (unsigned ArgIdx = 0, N = Args.size(); ArgIdx != N; ++ArgIdx) 8672 VisibleTypeConversionsQuals += CollectVRQualifiers(Context, Args[ArgIdx]); 8673 8674 bool HasNonRecordCandidateType = false; 8675 bool HasArithmeticOrEnumeralCandidateType = false; 8676 SmallVector<BuiltinCandidateTypeSet, 2> CandidateTypes; 8677 for (unsigned ArgIdx = 0, N = Args.size(); ArgIdx != N; ++ArgIdx) { 8678 CandidateTypes.emplace_back(*this); 8679 CandidateTypes[ArgIdx].AddTypesConvertedFrom(Args[ArgIdx]->getType(), 8680 OpLoc, 8681 true, 8682 (Op == OO_Exclaim || 8683 Op == OO_AmpAmp || 8684 Op == OO_PipePipe), 8685 VisibleTypeConversionsQuals); 8686 HasNonRecordCandidateType = HasNonRecordCandidateType || 8687 CandidateTypes[ArgIdx].hasNonRecordTypes(); 8688 HasArithmeticOrEnumeralCandidateType = 8689 HasArithmeticOrEnumeralCandidateType || 8690 CandidateTypes[ArgIdx].hasArithmeticOrEnumeralTypes(); 8691 } 8692 8693 // Exit early when no non-record types have been added to the candidate set 8694 // for any of the arguments to the operator. 8695 // 8696 // We can't exit early for !, ||, or &&, since there we have always have 8697 // 'bool' overloads. 8698 if (!HasNonRecordCandidateType && 8699 !(Op == OO_Exclaim || Op == OO_AmpAmp || Op == OO_PipePipe)) 8700 return; 8701 8702 // Setup an object to manage the common state for building overloads. 8703 BuiltinOperatorOverloadBuilder OpBuilder(*this, Args, 8704 VisibleTypeConversionsQuals, 8705 HasArithmeticOrEnumeralCandidateType, 8706 CandidateTypes, CandidateSet); 8707 8708 // Dispatch over the operation to add in only those overloads which apply. 8709 switch (Op) { 8710 case OO_None: 8711 case NUM_OVERLOADED_OPERATORS: 8712 llvm_unreachable("Expected an overloaded operator"); 8713 8714 case OO_New: 8715 case OO_Delete: 8716 case OO_Array_New: 8717 case OO_Array_Delete: 8718 case OO_Call: 8719 llvm_unreachable( 8720 "Special operators don't use AddBuiltinOperatorCandidates"); 8721 8722 case OO_Comma: 8723 case OO_Arrow: 8724 case OO_Coawait: 8725 // C++ [over.match.oper]p3: 8726 // -- For the operator ',', the unary operator '&', the 8727 // operator '->', or the operator 'co_await', the 8728 // built-in candidates set is empty. 8729 break; 8730 8731 case OO_Plus: // '+' is either unary or binary 8732 if (Args.size() == 1) 8733 OpBuilder.addUnaryPlusPointerOverloads(); 8734 LLVM_FALLTHROUGH; 8735 8736 case OO_Minus: // '-' is either unary or binary 8737 if (Args.size() == 1) { 8738 OpBuilder.addUnaryPlusOrMinusArithmeticOverloads(); 8739 } else { 8740 OpBuilder.addBinaryPlusOrMinusPointerOverloads(Op); 8741 OpBuilder.addGenericBinaryArithmeticOverloads(); 8742 } 8743 break; 8744 8745 case OO_Star: // '*' is either unary or binary 8746 if (Args.size() == 1) 8747 OpBuilder.addUnaryStarPointerOverloads(); 8748 else 8749 OpBuilder.addGenericBinaryArithmeticOverloads(); 8750 break; 8751 8752 case OO_Slash: 8753 OpBuilder.addGenericBinaryArithmeticOverloads(); 8754 break; 8755 8756 case OO_PlusPlus: 8757 case OO_MinusMinus: 8758 OpBuilder.addPlusPlusMinusMinusArithmeticOverloads(Op); 8759 OpBuilder.addPlusPlusMinusMinusPointerOverloads(); 8760 break; 8761 8762 case OO_EqualEqual: 8763 case OO_ExclaimEqual: 8764 OpBuilder.addEqualEqualOrNotEqualMemberPointerOrNullptrOverloads(); 8765 LLVM_FALLTHROUGH; 8766 8767 case OO_Less: 8768 case OO_Greater: 8769 case OO_LessEqual: 8770 case OO_GreaterEqual: 8771 OpBuilder.addGenericBinaryPointerOrEnumeralOverloads(); 8772 OpBuilder.addGenericBinaryArithmeticOverloads(); 8773 break; 8774 8775 case OO_Spaceship: 8776 OpBuilder.addGenericBinaryPointerOrEnumeralOverloads(); 8777 OpBuilder.addThreeWayArithmeticOverloads(); 8778 break; 8779 8780 case OO_Percent: 8781 case OO_Caret: 8782 case OO_Pipe: 8783 case OO_LessLess: 8784 case OO_GreaterGreater: 8785 OpBuilder.addBinaryBitwiseArithmeticOverloads(Op); 8786 break; 8787 8788 case OO_Amp: // '&' is either unary or binary 8789 if (Args.size() == 1) 8790 // C++ [over.match.oper]p3: 8791 // -- For the operator ',', the unary operator '&', or the 8792 // operator '->', the built-in candidates set is empty. 8793 break; 8794 8795 OpBuilder.addBinaryBitwiseArithmeticOverloads(Op); 8796 break; 8797 8798 case OO_Tilde: 8799 OpBuilder.addUnaryTildePromotedIntegralOverloads(); 8800 break; 8801 8802 case OO_Equal: 8803 OpBuilder.addAssignmentMemberPointerOrEnumeralOverloads(); 8804 LLVM_FALLTHROUGH; 8805 8806 case OO_PlusEqual: 8807 case OO_MinusEqual: 8808 OpBuilder.addAssignmentPointerOverloads(Op == OO_Equal); 8809 LLVM_FALLTHROUGH; 8810 8811 case OO_StarEqual: 8812 case OO_SlashEqual: 8813 OpBuilder.addAssignmentArithmeticOverloads(Op == OO_Equal); 8814 break; 8815 8816 case OO_PercentEqual: 8817 case OO_LessLessEqual: 8818 case OO_GreaterGreaterEqual: 8819 case OO_AmpEqual: 8820 case OO_CaretEqual: 8821 case OO_PipeEqual: 8822 OpBuilder.addAssignmentIntegralOverloads(); 8823 break; 8824 8825 case OO_Exclaim: 8826 OpBuilder.addExclaimOverload(); 8827 break; 8828 8829 case OO_AmpAmp: 8830 case OO_PipePipe: 8831 OpBuilder.addAmpAmpOrPipePipeOverload(); 8832 break; 8833 8834 case OO_Subscript: 8835 OpBuilder.addSubscriptOverloads(); 8836 break; 8837 8838 case OO_ArrowStar: 8839 OpBuilder.addArrowStarOverloads(); 8840 break; 8841 8842 case OO_Conditional: 8843 OpBuilder.addConditionalOperatorOverloads(); 8844 OpBuilder.addGenericBinaryArithmeticOverloads(); 8845 break; 8846 } 8847 } 8848 8849 /// Add function candidates found via argument-dependent lookup 8850 /// to the set of overloading candidates. 8851 /// 8852 /// This routine performs argument-dependent name lookup based on the 8853 /// given function name (which may also be an operator name) and adds 8854 /// all of the overload candidates found by ADL to the overload 8855 /// candidate set (C++ [basic.lookup.argdep]). 8856 void 8857 Sema::AddArgumentDependentLookupCandidates(DeclarationName Name, 8858 SourceLocation Loc, 8859 ArrayRef<Expr *> Args, 8860 TemplateArgumentListInfo *ExplicitTemplateArgs, 8861 OverloadCandidateSet& CandidateSet, 8862 bool PartialOverloading) { 8863 ADLResult Fns; 8864 8865 // FIXME: This approach for uniquing ADL results (and removing 8866 // redundant candidates from the set) relies on pointer-equality, 8867 // which means we need to key off the canonical decl. However, 8868 // always going back to the canonical decl might not get us the 8869 // right set of default arguments. What default arguments are 8870 // we supposed to consider on ADL candidates, anyway? 8871 8872 // FIXME: Pass in the explicit template arguments? 8873 ArgumentDependentLookup(Name, Loc, Args, Fns); 8874 8875 // Erase all of the candidates we already knew about. 8876 for (OverloadCandidateSet::iterator Cand = CandidateSet.begin(), 8877 CandEnd = CandidateSet.end(); 8878 Cand != CandEnd; ++Cand) 8879 if (Cand->Function) { 8880 Fns.erase(Cand->Function); 8881 if (FunctionTemplateDecl *FunTmpl = Cand->Function->getPrimaryTemplate()) 8882 Fns.erase(FunTmpl); 8883 } 8884 8885 // For each of the ADL candidates we found, add it to the overload 8886 // set. 8887 for (ADLResult::iterator I = Fns.begin(), E = Fns.end(); I != E; ++I) { 8888 DeclAccessPair FoundDecl = DeclAccessPair::make(*I, AS_none); 8889 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(*I)) { 8890 if (ExplicitTemplateArgs) 8891 continue; 8892 8893 AddOverloadCandidate(FD, FoundDecl, Args, CandidateSet, false, 8894 PartialOverloading); 8895 } else 8896 AddTemplateOverloadCandidate(cast<FunctionTemplateDecl>(*I), 8897 FoundDecl, ExplicitTemplateArgs, 8898 Args, CandidateSet, PartialOverloading); 8899 } 8900 } 8901 8902 namespace { 8903 enum class Comparison { Equal, Better, Worse }; 8904 } 8905 8906 /// Compares the enable_if attributes of two FunctionDecls, for the purposes of 8907 /// overload resolution. 8908 /// 8909 /// Cand1's set of enable_if attributes are said to be "better" than Cand2's iff 8910 /// Cand1's first N enable_if attributes have precisely the same conditions as 8911 /// Cand2's first N enable_if attributes (where N = the number of enable_if 8912 /// attributes on Cand2), and Cand1 has more than N enable_if attributes. 8913 /// 8914 /// Note that you can have a pair of candidates such that Cand1's enable_if 8915 /// attributes are worse than Cand2's, and Cand2's enable_if attributes are 8916 /// worse than Cand1's. 8917 static Comparison compareEnableIfAttrs(const Sema &S, const FunctionDecl *Cand1, 8918 const FunctionDecl *Cand2) { 8919 // Common case: One (or both) decls don't have enable_if attrs. 8920 bool Cand1Attr = Cand1->hasAttr<EnableIfAttr>(); 8921 bool Cand2Attr = Cand2->hasAttr<EnableIfAttr>(); 8922 if (!Cand1Attr || !Cand2Attr) { 8923 if (Cand1Attr == Cand2Attr) 8924 return Comparison::Equal; 8925 return Cand1Attr ? Comparison::Better : Comparison::Worse; 8926 } 8927 8928 auto Cand1Attrs = Cand1->specific_attrs<EnableIfAttr>(); 8929 auto Cand2Attrs = Cand2->specific_attrs<EnableIfAttr>(); 8930 8931 auto Cand1I = Cand1Attrs.begin(); 8932 llvm::FoldingSetNodeID Cand1ID, Cand2ID; 8933 for (auto Cand2A : Cand2Attrs) { 8934 Cand1ID.clear(); 8935 Cand2ID.clear(); 8936 8937 // It's impossible for Cand1 to be better than (or equal to) Cand2 if Cand1 8938 // has fewer enable_if attributes than Cand2. 8939 if (Cand1I == Cand1Attrs.end()) 8940 return Comparison::Worse; 8941 auto Cand1A = Cand1I++; 8942 8943 Cand1A->getCond()->Profile(Cand1ID, S.getASTContext(), true); 8944 Cand2A->getCond()->Profile(Cand2ID, S.getASTContext(), true); 8945 if (Cand1ID != Cand2ID) 8946 return Comparison::Worse; 8947 } 8948 8949 return Cand1I == Cand1Attrs.end() ? Comparison::Equal : Comparison::Better; 8950 } 8951 8952 /// isBetterOverloadCandidate - Determines whether the first overload 8953 /// candidate is a better candidate than the second (C++ 13.3.3p1). 8954 bool clang::isBetterOverloadCandidate( 8955 Sema &S, const OverloadCandidate &Cand1, const OverloadCandidate &Cand2, 8956 SourceLocation Loc, OverloadCandidateSet::CandidateSetKind Kind) { 8957 // Define viable functions to be better candidates than non-viable 8958 // functions. 8959 if (!Cand2.Viable) 8960 return Cand1.Viable; 8961 else if (!Cand1.Viable) 8962 return false; 8963 8964 // C++ [over.match.best]p1: 8965 // 8966 // -- if F is a static member function, ICS1(F) is defined such 8967 // that ICS1(F) is neither better nor worse than ICS1(G) for 8968 // any function G, and, symmetrically, ICS1(G) is neither 8969 // better nor worse than ICS1(F). 8970 unsigned StartArg = 0; 8971 if (Cand1.IgnoreObjectArgument || Cand2.IgnoreObjectArgument) 8972 StartArg = 1; 8973 8974 auto IsIllFormedConversion = [&](const ImplicitConversionSequence &ICS) { 8975 // We don't allow incompatible pointer conversions in C++. 8976 if (!S.getLangOpts().CPlusPlus) 8977 return ICS.isStandard() && 8978 ICS.Standard.Second == ICK_Incompatible_Pointer_Conversion; 8979 8980 // The only ill-formed conversion we allow in C++ is the string literal to 8981 // char* conversion, which is only considered ill-formed after C++11. 8982 return S.getLangOpts().CPlusPlus11 && !S.getLangOpts().WritableStrings && 8983 hasDeprecatedStringLiteralToCharPtrConversion(ICS); 8984 }; 8985 8986 // Define functions that don't require ill-formed conversions for a given 8987 // argument to be better candidates than functions that do. 8988 unsigned NumArgs = Cand1.Conversions.size(); 8989 assert(Cand2.Conversions.size() == NumArgs && "Overload candidate mismatch"); 8990 bool HasBetterConversion = false; 8991 for (unsigned ArgIdx = StartArg; ArgIdx < NumArgs; ++ArgIdx) { 8992 bool Cand1Bad = IsIllFormedConversion(Cand1.Conversions[ArgIdx]); 8993 bool Cand2Bad = IsIllFormedConversion(Cand2.Conversions[ArgIdx]); 8994 if (Cand1Bad != Cand2Bad) { 8995 if (Cand1Bad) 8996 return false; 8997 HasBetterConversion = true; 8998 } 8999 } 9000 9001 if (HasBetterConversion) 9002 return true; 9003 9004 // C++ [over.match.best]p1: 9005 // A viable function F1 is defined to be a better function than another 9006 // viable function F2 if for all arguments i, ICSi(F1) is not a worse 9007 // conversion sequence than ICSi(F2), and then... 9008 for (unsigned ArgIdx = StartArg; ArgIdx < NumArgs; ++ArgIdx) { 9009 switch (CompareImplicitConversionSequences(S, Loc, 9010 Cand1.Conversions[ArgIdx], 9011 Cand2.Conversions[ArgIdx])) { 9012 case ImplicitConversionSequence::Better: 9013 // Cand1 has a better conversion sequence. 9014 HasBetterConversion = true; 9015 break; 9016 9017 case ImplicitConversionSequence::Worse: 9018 // Cand1 can't be better than Cand2. 9019 return false; 9020 9021 case ImplicitConversionSequence::Indistinguishable: 9022 // Do nothing. 9023 break; 9024 } 9025 } 9026 9027 // -- for some argument j, ICSj(F1) is a better conversion sequence than 9028 // ICSj(F2), or, if not that, 9029 if (HasBetterConversion) 9030 return true; 9031 9032 // -- the context is an initialization by user-defined conversion 9033 // (see 8.5, 13.3.1.5) and the standard conversion sequence 9034 // from the return type of F1 to the destination type (i.e., 9035 // the type of the entity being initialized) is a better 9036 // conversion sequence than the standard conversion sequence 9037 // from the return type of F2 to the destination type. 9038 if (Kind == OverloadCandidateSet::CSK_InitByUserDefinedConversion && 9039 Cand1.Function && Cand2.Function && 9040 isa<CXXConversionDecl>(Cand1.Function) && 9041 isa<CXXConversionDecl>(Cand2.Function)) { 9042 // First check whether we prefer one of the conversion functions over the 9043 // other. This only distinguishes the results in non-standard, extension 9044 // cases such as the conversion from a lambda closure type to a function 9045 // pointer or block. 9046 ImplicitConversionSequence::CompareKind Result = 9047 compareConversionFunctions(S, Cand1.Function, Cand2.Function); 9048 if (Result == ImplicitConversionSequence::Indistinguishable) 9049 Result = CompareStandardConversionSequences(S, Loc, 9050 Cand1.FinalConversion, 9051 Cand2.FinalConversion); 9052 9053 if (Result != ImplicitConversionSequence::Indistinguishable) 9054 return Result == ImplicitConversionSequence::Better; 9055 9056 // FIXME: Compare kind of reference binding if conversion functions 9057 // convert to a reference type used in direct reference binding, per 9058 // C++14 [over.match.best]p1 section 2 bullet 3. 9059 } 9060 9061 // FIXME: Work around a defect in the C++17 guaranteed copy elision wording, 9062 // as combined with the resolution to CWG issue 243. 9063 // 9064 // When the context is initialization by constructor ([over.match.ctor] or 9065 // either phase of [over.match.list]), a constructor is preferred over 9066 // a conversion function. 9067 if (Kind == OverloadCandidateSet::CSK_InitByConstructor && NumArgs == 1 && 9068 Cand1.Function && Cand2.Function && 9069 isa<CXXConstructorDecl>(Cand1.Function) != 9070 isa<CXXConstructorDecl>(Cand2.Function)) 9071 return isa<CXXConstructorDecl>(Cand1.Function); 9072 9073 // -- F1 is a non-template function and F2 is a function template 9074 // specialization, or, if not that, 9075 bool Cand1IsSpecialization = Cand1.Function && 9076 Cand1.Function->getPrimaryTemplate(); 9077 bool Cand2IsSpecialization = Cand2.Function && 9078 Cand2.Function->getPrimaryTemplate(); 9079 if (Cand1IsSpecialization != Cand2IsSpecialization) 9080 return Cand2IsSpecialization; 9081 9082 // -- F1 and F2 are function template specializations, and the function 9083 // template for F1 is more specialized than the template for F2 9084 // according to the partial ordering rules described in 14.5.5.2, or, 9085 // if not that, 9086 if (Cand1IsSpecialization && Cand2IsSpecialization) { 9087 if (FunctionTemplateDecl *BetterTemplate 9088 = S.getMoreSpecializedTemplate(Cand1.Function->getPrimaryTemplate(), 9089 Cand2.Function->getPrimaryTemplate(), 9090 Loc, 9091 isa<CXXConversionDecl>(Cand1.Function)? TPOC_Conversion 9092 : TPOC_Call, 9093 Cand1.ExplicitCallArguments, 9094 Cand2.ExplicitCallArguments)) 9095 return BetterTemplate == Cand1.Function->getPrimaryTemplate(); 9096 } 9097 9098 // FIXME: Work around a defect in the C++17 inheriting constructor wording. 9099 // A derived-class constructor beats an (inherited) base class constructor. 9100 bool Cand1IsInherited = 9101 dyn_cast_or_null<ConstructorUsingShadowDecl>(Cand1.FoundDecl.getDecl()); 9102 bool Cand2IsInherited = 9103 dyn_cast_or_null<ConstructorUsingShadowDecl>(Cand2.FoundDecl.getDecl()); 9104 if (Cand1IsInherited != Cand2IsInherited) 9105 return Cand2IsInherited; 9106 else if (Cand1IsInherited) { 9107 assert(Cand2IsInherited); 9108 auto *Cand1Class = cast<CXXRecordDecl>(Cand1.Function->getDeclContext()); 9109 auto *Cand2Class = cast<CXXRecordDecl>(Cand2.Function->getDeclContext()); 9110 if (Cand1Class->isDerivedFrom(Cand2Class)) 9111 return true; 9112 if (Cand2Class->isDerivedFrom(Cand1Class)) 9113 return false; 9114 // Inherited from sibling base classes: still ambiguous. 9115 } 9116 9117 // Check C++17 tie-breakers for deduction guides. 9118 { 9119 auto *Guide1 = dyn_cast_or_null<CXXDeductionGuideDecl>(Cand1.Function); 9120 auto *Guide2 = dyn_cast_or_null<CXXDeductionGuideDecl>(Cand2.Function); 9121 if (Guide1 && Guide2) { 9122 // -- F1 is generated from a deduction-guide and F2 is not 9123 if (Guide1->isImplicit() != Guide2->isImplicit()) 9124 return Guide2->isImplicit(); 9125 9126 // -- F1 is the copy deduction candidate(16.3.1.8) and F2 is not 9127 if (Guide1->isCopyDeductionCandidate()) 9128 return true; 9129 } 9130 } 9131 9132 // Check for enable_if value-based overload resolution. 9133 if (Cand1.Function && Cand2.Function) { 9134 Comparison Cmp = compareEnableIfAttrs(S, Cand1.Function, Cand2.Function); 9135 if (Cmp != Comparison::Equal) 9136 return Cmp == Comparison::Better; 9137 } 9138 9139 if (S.getLangOpts().CUDA && Cand1.Function && Cand2.Function) { 9140 FunctionDecl *Caller = dyn_cast<FunctionDecl>(S.CurContext); 9141 return S.IdentifyCUDAPreference(Caller, Cand1.Function) > 9142 S.IdentifyCUDAPreference(Caller, Cand2.Function); 9143 } 9144 9145 bool HasPS1 = Cand1.Function != nullptr && 9146 functionHasPassObjectSizeParams(Cand1.Function); 9147 bool HasPS2 = Cand2.Function != nullptr && 9148 functionHasPassObjectSizeParams(Cand2.Function); 9149 return HasPS1 != HasPS2 && HasPS1; 9150 } 9151 9152 /// Determine whether two declarations are "equivalent" for the purposes of 9153 /// name lookup and overload resolution. This applies when the same internal/no 9154 /// linkage entity is defined by two modules (probably by textually including 9155 /// the same header). In such a case, we don't consider the declarations to 9156 /// declare the same entity, but we also don't want lookups with both 9157 /// declarations visible to be ambiguous in some cases (this happens when using 9158 /// a modularized libstdc++). 9159 bool Sema::isEquivalentInternalLinkageDeclaration(const NamedDecl *A, 9160 const NamedDecl *B) { 9161 auto *VA = dyn_cast_or_null<ValueDecl>(A); 9162 auto *VB = dyn_cast_or_null<ValueDecl>(B); 9163 if (!VA || !VB) 9164 return false; 9165 9166 // The declarations must be declaring the same name as an internal linkage 9167 // entity in different modules. 9168 if (!VA->getDeclContext()->getRedeclContext()->Equals( 9169 VB->getDeclContext()->getRedeclContext()) || 9170 getOwningModule(const_cast<ValueDecl *>(VA)) == 9171 getOwningModule(const_cast<ValueDecl *>(VB)) || 9172 VA->isExternallyVisible() || VB->isExternallyVisible()) 9173 return false; 9174 9175 // Check that the declarations appear to be equivalent. 9176 // 9177 // FIXME: Checking the type isn't really enough to resolve the ambiguity. 9178 // For constants and functions, we should check the initializer or body is 9179 // the same. For non-constant variables, we shouldn't allow it at all. 9180 if (Context.hasSameType(VA->getType(), VB->getType())) 9181 return true; 9182 9183 // Enum constants within unnamed enumerations will have different types, but 9184 // may still be similar enough to be interchangeable for our purposes. 9185 if (auto *EA = dyn_cast<EnumConstantDecl>(VA)) { 9186 if (auto *EB = dyn_cast<EnumConstantDecl>(VB)) { 9187 // Only handle anonymous enums. If the enumerations were named and 9188 // equivalent, they would have been merged to the same type. 9189 auto *EnumA = cast<EnumDecl>(EA->getDeclContext()); 9190 auto *EnumB = cast<EnumDecl>(EB->getDeclContext()); 9191 if (EnumA->hasNameForLinkage() || EnumB->hasNameForLinkage() || 9192 !Context.hasSameType(EnumA->getIntegerType(), 9193 EnumB->getIntegerType())) 9194 return false; 9195 // Allow this only if the value is the same for both enumerators. 9196 return llvm::APSInt::isSameValue(EA->getInitVal(), EB->getInitVal()); 9197 } 9198 } 9199 9200 // Nothing else is sufficiently similar. 9201 return false; 9202 } 9203 9204 void Sema::diagnoseEquivalentInternalLinkageDeclarations( 9205 SourceLocation Loc, const NamedDecl *D, ArrayRef<const NamedDecl *> Equiv) { 9206 Diag(Loc, diag::ext_equivalent_internal_linkage_decl_in_modules) << D; 9207 9208 Module *M = getOwningModule(const_cast<NamedDecl*>(D)); 9209 Diag(D->getLocation(), diag::note_equivalent_internal_linkage_decl) 9210 << !M << (M ? M->getFullModuleName() : ""); 9211 9212 for (auto *E : Equiv) { 9213 Module *M = getOwningModule(const_cast<NamedDecl*>(E)); 9214 Diag(E->getLocation(), diag::note_equivalent_internal_linkage_decl) 9215 << !M << (M ? M->getFullModuleName() : ""); 9216 } 9217 } 9218 9219 /// Computes the best viable function (C++ 13.3.3) 9220 /// within an overload candidate set. 9221 /// 9222 /// \param Loc The location of the function name (or operator symbol) for 9223 /// which overload resolution occurs. 9224 /// 9225 /// \param Best If overload resolution was successful or found a deleted 9226 /// function, \p Best points to the candidate function found. 9227 /// 9228 /// \returns The result of overload resolution. 9229 OverloadingResult 9230 OverloadCandidateSet::BestViableFunction(Sema &S, SourceLocation Loc, 9231 iterator &Best) { 9232 llvm::SmallVector<OverloadCandidate *, 16> Candidates; 9233 std::transform(begin(), end(), std::back_inserter(Candidates), 9234 [](OverloadCandidate &Cand) { return &Cand; }); 9235 9236 // [CUDA] HD->H or HD->D calls are technically not allowed by CUDA but 9237 // are accepted by both clang and NVCC. However, during a particular 9238 // compilation mode only one call variant is viable. We need to 9239 // exclude non-viable overload candidates from consideration based 9240 // only on their host/device attributes. Specifically, if one 9241 // candidate call is WrongSide and the other is SameSide, we ignore 9242 // the WrongSide candidate. 9243 if (S.getLangOpts().CUDA) { 9244 const FunctionDecl *Caller = dyn_cast<FunctionDecl>(S.CurContext); 9245 bool ContainsSameSideCandidate = 9246 llvm::any_of(Candidates, [&](OverloadCandidate *Cand) { 9247 return Cand->Function && 9248 S.IdentifyCUDAPreference(Caller, Cand->Function) == 9249 Sema::CFP_SameSide; 9250 }); 9251 if (ContainsSameSideCandidate) { 9252 auto IsWrongSideCandidate = [&](OverloadCandidate *Cand) { 9253 return Cand->Function && 9254 S.IdentifyCUDAPreference(Caller, Cand->Function) == 9255 Sema::CFP_WrongSide; 9256 }; 9257 llvm::erase_if(Candidates, IsWrongSideCandidate); 9258 } 9259 } 9260 9261 // Find the best viable function. 9262 Best = end(); 9263 for (auto *Cand : Candidates) 9264 if (Cand->Viable) 9265 if (Best == end() || 9266 isBetterOverloadCandidate(S, *Cand, *Best, Loc, Kind)) 9267 Best = Cand; 9268 9269 // If we didn't find any viable functions, abort. 9270 if (Best == end()) 9271 return OR_No_Viable_Function; 9272 9273 llvm::SmallVector<const NamedDecl *, 4> EquivalentCands; 9274 9275 // Make sure that this function is better than every other viable 9276 // function. If not, we have an ambiguity. 9277 for (auto *Cand : Candidates) { 9278 if (Cand->Viable && Cand != Best && 9279 !isBetterOverloadCandidate(S, *Best, *Cand, Loc, Kind)) { 9280 if (S.isEquivalentInternalLinkageDeclaration(Best->Function, 9281 Cand->Function)) { 9282 EquivalentCands.push_back(Cand->Function); 9283 continue; 9284 } 9285 9286 Best = end(); 9287 return OR_Ambiguous; 9288 } 9289 } 9290 9291 // Best is the best viable function. 9292 if (Best->Function && 9293 (Best->Function->isDeleted() || 9294 S.isFunctionConsideredUnavailable(Best->Function))) 9295 return OR_Deleted; 9296 9297 if (!EquivalentCands.empty()) 9298 S.diagnoseEquivalentInternalLinkageDeclarations(Loc, Best->Function, 9299 EquivalentCands); 9300 9301 return OR_Success; 9302 } 9303 9304 namespace { 9305 9306 enum OverloadCandidateKind { 9307 oc_function, 9308 oc_method, 9309 oc_constructor, 9310 oc_implicit_default_constructor, 9311 oc_implicit_copy_constructor, 9312 oc_implicit_move_constructor, 9313 oc_implicit_copy_assignment, 9314 oc_implicit_move_assignment, 9315 oc_inherited_constructor 9316 }; 9317 9318 enum OverloadCandidateSelect { 9319 ocs_non_template, 9320 ocs_template, 9321 ocs_described_template, 9322 }; 9323 9324 static std::pair<OverloadCandidateKind, OverloadCandidateSelect> 9325 ClassifyOverloadCandidate(Sema &S, NamedDecl *Found, FunctionDecl *Fn, 9326 std::string &Description) { 9327 9328 bool isTemplate = Fn->isTemplateDecl() || Found->isTemplateDecl(); 9329 if (FunctionTemplateDecl *FunTmpl = Fn->getPrimaryTemplate()) { 9330 isTemplate = true; 9331 Description = S.getTemplateArgumentBindingsText( 9332 FunTmpl->getTemplateParameters(), *Fn->getTemplateSpecializationArgs()); 9333 } 9334 9335 OverloadCandidateSelect Select = [&]() { 9336 if (!Description.empty()) 9337 return ocs_described_template; 9338 return isTemplate ? ocs_template : ocs_non_template; 9339 }(); 9340 9341 OverloadCandidateKind Kind = [&]() { 9342 if (CXXConstructorDecl *Ctor = dyn_cast<CXXConstructorDecl>(Fn)) { 9343 if (!Ctor->isImplicit()) { 9344 if (isa<ConstructorUsingShadowDecl>(Found)) 9345 return oc_inherited_constructor; 9346 else 9347 return oc_constructor; 9348 } 9349 9350 if (Ctor->isDefaultConstructor()) 9351 return oc_implicit_default_constructor; 9352 9353 if (Ctor->isMoveConstructor()) 9354 return oc_implicit_move_constructor; 9355 9356 assert(Ctor->isCopyConstructor() && 9357 "unexpected sort of implicit constructor"); 9358 return oc_implicit_copy_constructor; 9359 } 9360 9361 if (CXXMethodDecl *Meth = dyn_cast<CXXMethodDecl>(Fn)) { 9362 // This actually gets spelled 'candidate function' for now, but 9363 // it doesn't hurt to split it out. 9364 if (!Meth->isImplicit()) 9365 return oc_method; 9366 9367 if (Meth->isMoveAssignmentOperator()) 9368 return oc_implicit_move_assignment; 9369 9370 if (Meth->isCopyAssignmentOperator()) 9371 return oc_implicit_copy_assignment; 9372 9373 assert(isa<CXXConversionDecl>(Meth) && "expected conversion"); 9374 return oc_method; 9375 } 9376 9377 return oc_function; 9378 }(); 9379 9380 return std::make_pair(Kind, Select); 9381 } 9382 9383 void MaybeEmitInheritedConstructorNote(Sema &S, Decl *FoundDecl) { 9384 // FIXME: It'd be nice to only emit a note once per using-decl per overload 9385 // set. 9386 if (auto *Shadow = dyn_cast<ConstructorUsingShadowDecl>(FoundDecl)) 9387 S.Diag(FoundDecl->getLocation(), 9388 diag::note_ovl_candidate_inherited_constructor) 9389 << Shadow->getNominatedBaseClass(); 9390 } 9391 9392 } // end anonymous namespace 9393 9394 static bool isFunctionAlwaysEnabled(const ASTContext &Ctx, 9395 const FunctionDecl *FD) { 9396 for (auto *EnableIf : FD->specific_attrs<EnableIfAttr>()) { 9397 bool AlwaysTrue; 9398 if (!EnableIf->getCond()->EvaluateAsBooleanCondition(AlwaysTrue, Ctx)) 9399 return false; 9400 if (!AlwaysTrue) 9401 return false; 9402 } 9403 return true; 9404 } 9405 9406 /// Returns true if we can take the address of the function. 9407 /// 9408 /// \param Complain - If true, we'll emit a diagnostic 9409 /// \param InOverloadResolution - For the purposes of emitting a diagnostic, are 9410 /// we in overload resolution? 9411 /// \param Loc - The location of the statement we're complaining about. Ignored 9412 /// if we're not complaining, or if we're in overload resolution. 9413 static bool checkAddressOfFunctionIsAvailable(Sema &S, const FunctionDecl *FD, 9414 bool Complain, 9415 bool InOverloadResolution, 9416 SourceLocation Loc) { 9417 if (!isFunctionAlwaysEnabled(S.Context, FD)) { 9418 if (Complain) { 9419 if (InOverloadResolution) 9420 S.Diag(FD->getLocStart(), 9421 diag::note_addrof_ovl_candidate_disabled_by_enable_if_attr); 9422 else 9423 S.Diag(Loc, diag::err_addrof_function_disabled_by_enable_if_attr) << FD; 9424 } 9425 return false; 9426 } 9427 9428 auto I = llvm::find_if(FD->parameters(), [](const ParmVarDecl *P) { 9429 return P->hasAttr<PassObjectSizeAttr>(); 9430 }); 9431 if (I == FD->param_end()) 9432 return true; 9433 9434 if (Complain) { 9435 // Add one to ParamNo because it's user-facing 9436 unsigned ParamNo = std::distance(FD->param_begin(), I) + 1; 9437 if (InOverloadResolution) 9438 S.Diag(FD->getLocation(), 9439 diag::note_ovl_candidate_has_pass_object_size_params) 9440 << ParamNo; 9441 else 9442 S.Diag(Loc, diag::err_address_of_function_with_pass_object_size_params) 9443 << FD << ParamNo; 9444 } 9445 return false; 9446 } 9447 9448 static bool checkAddressOfCandidateIsAvailable(Sema &S, 9449 const FunctionDecl *FD) { 9450 return checkAddressOfFunctionIsAvailable(S, FD, /*Complain=*/true, 9451 /*InOverloadResolution=*/true, 9452 /*Loc=*/SourceLocation()); 9453 } 9454 9455 bool Sema::checkAddressOfFunctionIsAvailable(const FunctionDecl *Function, 9456 bool Complain, 9457 SourceLocation Loc) { 9458 return ::checkAddressOfFunctionIsAvailable(*this, Function, Complain, 9459 /*InOverloadResolution=*/false, 9460 Loc); 9461 } 9462 9463 // Notes the location of an overload candidate. 9464 void Sema::NoteOverloadCandidate(NamedDecl *Found, FunctionDecl *Fn, 9465 QualType DestType, bool TakingAddress) { 9466 if (TakingAddress && !checkAddressOfCandidateIsAvailable(*this, Fn)) 9467 return; 9468 if (Fn->isMultiVersion() && !Fn->getAttr<TargetAttr>()->isDefaultVersion()) 9469 return; 9470 9471 std::string FnDesc; 9472 std::pair<OverloadCandidateKind, OverloadCandidateSelect> KSPair = 9473 ClassifyOverloadCandidate(*this, Found, Fn, FnDesc); 9474 PartialDiagnostic PD = PDiag(diag::note_ovl_candidate) 9475 << (unsigned)KSPair.first << (unsigned)KSPair.second 9476 << Fn << FnDesc; 9477 9478 HandleFunctionTypeMismatch(PD, Fn->getType(), DestType); 9479 Diag(Fn->getLocation(), PD); 9480 MaybeEmitInheritedConstructorNote(*this, Found); 9481 } 9482 9483 // Notes the location of all overload candidates designated through 9484 // OverloadedExpr 9485 void Sema::NoteAllOverloadCandidates(Expr *OverloadedExpr, QualType DestType, 9486 bool TakingAddress) { 9487 assert(OverloadedExpr->getType() == Context.OverloadTy); 9488 9489 OverloadExpr::FindResult Ovl = OverloadExpr::find(OverloadedExpr); 9490 OverloadExpr *OvlExpr = Ovl.Expression; 9491 9492 for (UnresolvedSetIterator I = OvlExpr->decls_begin(), 9493 IEnd = OvlExpr->decls_end(); 9494 I != IEnd; ++I) { 9495 if (FunctionTemplateDecl *FunTmpl = 9496 dyn_cast<FunctionTemplateDecl>((*I)->getUnderlyingDecl()) ) { 9497 NoteOverloadCandidate(*I, FunTmpl->getTemplatedDecl(), DestType, 9498 TakingAddress); 9499 } else if (FunctionDecl *Fun 9500 = dyn_cast<FunctionDecl>((*I)->getUnderlyingDecl()) ) { 9501 NoteOverloadCandidate(*I, Fun, DestType, TakingAddress); 9502 } 9503 } 9504 } 9505 9506 /// Diagnoses an ambiguous conversion. The partial diagnostic is the 9507 /// "lead" diagnostic; it will be given two arguments, the source and 9508 /// target types of the conversion. 9509 void ImplicitConversionSequence::DiagnoseAmbiguousConversion( 9510 Sema &S, 9511 SourceLocation CaretLoc, 9512 const PartialDiagnostic &PDiag) const { 9513 S.Diag(CaretLoc, PDiag) 9514 << Ambiguous.getFromType() << Ambiguous.getToType(); 9515 // FIXME: The note limiting machinery is borrowed from 9516 // OverloadCandidateSet::NoteCandidates; there's an opportunity for 9517 // refactoring here. 9518 const OverloadsShown ShowOverloads = S.Diags.getShowOverloads(); 9519 unsigned CandsShown = 0; 9520 AmbiguousConversionSequence::const_iterator I, E; 9521 for (I = Ambiguous.begin(), E = Ambiguous.end(); I != E; ++I) { 9522 if (CandsShown >= 4 && ShowOverloads == Ovl_Best) 9523 break; 9524 ++CandsShown; 9525 S.NoteOverloadCandidate(I->first, I->second); 9526 } 9527 if (I != E) 9528 S.Diag(SourceLocation(), diag::note_ovl_too_many_candidates) << int(E - I); 9529 } 9530 9531 static void DiagnoseBadConversion(Sema &S, OverloadCandidate *Cand, 9532 unsigned I, bool TakingCandidateAddress) { 9533 const ImplicitConversionSequence &Conv = Cand->Conversions[I]; 9534 assert(Conv.isBad()); 9535 assert(Cand->Function && "for now, candidate must be a function"); 9536 FunctionDecl *Fn = Cand->Function; 9537 9538 // There's a conversion slot for the object argument if this is a 9539 // non-constructor method. Note that 'I' corresponds the 9540 // conversion-slot index. 9541 bool isObjectArgument = false; 9542 if (isa<CXXMethodDecl>(Fn) && !isa<CXXConstructorDecl>(Fn)) { 9543 if (I == 0) 9544 isObjectArgument = true; 9545 else 9546 I--; 9547 } 9548 9549 std::string FnDesc; 9550 std::pair<OverloadCandidateKind, OverloadCandidateSelect> FnKindPair = 9551 ClassifyOverloadCandidate(S, Cand->FoundDecl, Fn, FnDesc); 9552 9553 Expr *FromExpr = Conv.Bad.FromExpr; 9554 QualType FromTy = Conv.Bad.getFromType(); 9555 QualType ToTy = Conv.Bad.getToType(); 9556 9557 if (FromTy == S.Context.OverloadTy) { 9558 assert(FromExpr && "overload set argument came from implicit argument?"); 9559 Expr *E = FromExpr->IgnoreParens(); 9560 if (isa<UnaryOperator>(E)) 9561 E = cast<UnaryOperator>(E)->getSubExpr()->IgnoreParens(); 9562 DeclarationName Name = cast<OverloadExpr>(E)->getName(); 9563 9564 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_overload) 9565 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9566 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << ToTy 9567 << Name << I + 1; 9568 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9569 return; 9570 } 9571 9572 // Do some hand-waving analysis to see if the non-viability is due 9573 // to a qualifier mismatch. 9574 CanQualType CFromTy = S.Context.getCanonicalType(FromTy); 9575 CanQualType CToTy = S.Context.getCanonicalType(ToTy); 9576 if (CanQual<ReferenceType> RT = CToTy->getAs<ReferenceType>()) 9577 CToTy = RT->getPointeeType(); 9578 else { 9579 // TODO: detect and diagnose the full richness of const mismatches. 9580 if (CanQual<PointerType> FromPT = CFromTy->getAs<PointerType>()) 9581 if (CanQual<PointerType> ToPT = CToTy->getAs<PointerType>()) { 9582 CFromTy = FromPT->getPointeeType(); 9583 CToTy = ToPT->getPointeeType(); 9584 } 9585 } 9586 9587 if (CToTy.getUnqualifiedType() == CFromTy.getUnqualifiedType() && 9588 !CToTy.isAtLeastAsQualifiedAs(CFromTy)) { 9589 Qualifiers FromQs = CFromTy.getQualifiers(); 9590 Qualifiers ToQs = CToTy.getQualifiers(); 9591 9592 if (FromQs.getAddressSpace() != ToQs.getAddressSpace()) { 9593 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_addrspace) 9594 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9595 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9596 << FromQs.getAddressSpaceAttributePrintValue() 9597 << ToQs.getAddressSpaceAttributePrintValue() 9598 << (unsigned)isObjectArgument << I + 1; 9599 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9600 return; 9601 } 9602 9603 if (FromQs.getObjCLifetime() != ToQs.getObjCLifetime()) { 9604 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_ownership) 9605 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9606 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9607 << FromQs.getObjCLifetime() << ToQs.getObjCLifetime() 9608 << (unsigned)isObjectArgument << I + 1; 9609 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9610 return; 9611 } 9612 9613 if (FromQs.getObjCGCAttr() != ToQs.getObjCGCAttr()) { 9614 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_gc) 9615 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9616 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9617 << FromQs.getObjCGCAttr() << ToQs.getObjCGCAttr() 9618 << (unsigned)isObjectArgument << I + 1; 9619 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9620 return; 9621 } 9622 9623 if (FromQs.hasUnaligned() != ToQs.hasUnaligned()) { 9624 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_unaligned) 9625 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9626 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9627 << FromQs.hasUnaligned() << I + 1; 9628 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9629 return; 9630 } 9631 9632 unsigned CVR = FromQs.getCVRQualifiers() & ~ToQs.getCVRQualifiers(); 9633 assert(CVR && "unexpected qualifiers mismatch"); 9634 9635 if (isObjectArgument) { 9636 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_cvr_this) 9637 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9638 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9639 << (CVR - 1); 9640 } else { 9641 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_cvr) 9642 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9643 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9644 << (CVR - 1) << I + 1; 9645 } 9646 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9647 return; 9648 } 9649 9650 // Special diagnostic for failure to convert an initializer list, since 9651 // telling the user that it has type void is not useful. 9652 if (FromExpr && isa<InitListExpr>(FromExpr)) { 9653 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_list_argument) 9654 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9655 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9656 << ToTy << (unsigned)isObjectArgument << I + 1; 9657 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9658 return; 9659 } 9660 9661 // Diagnose references or pointers to incomplete types differently, 9662 // since it's far from impossible that the incompleteness triggered 9663 // the failure. 9664 QualType TempFromTy = FromTy.getNonReferenceType(); 9665 if (const PointerType *PTy = TempFromTy->getAs<PointerType>()) 9666 TempFromTy = PTy->getPointeeType(); 9667 if (TempFromTy->isIncompleteType()) { 9668 // Emit the generic diagnostic and, optionally, add the hints to it. 9669 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_conv_incomplete) 9670 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9671 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9672 << ToTy << (unsigned)isObjectArgument << I + 1 9673 << (unsigned)(Cand->Fix.Kind); 9674 9675 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9676 return; 9677 } 9678 9679 // Diagnose base -> derived pointer conversions. 9680 unsigned BaseToDerivedConversion = 0; 9681 if (const PointerType *FromPtrTy = FromTy->getAs<PointerType>()) { 9682 if (const PointerType *ToPtrTy = ToTy->getAs<PointerType>()) { 9683 if (ToPtrTy->getPointeeType().isAtLeastAsQualifiedAs( 9684 FromPtrTy->getPointeeType()) && 9685 !FromPtrTy->getPointeeType()->isIncompleteType() && 9686 !ToPtrTy->getPointeeType()->isIncompleteType() && 9687 S.IsDerivedFrom(SourceLocation(), ToPtrTy->getPointeeType(), 9688 FromPtrTy->getPointeeType())) 9689 BaseToDerivedConversion = 1; 9690 } 9691 } else if (const ObjCObjectPointerType *FromPtrTy 9692 = FromTy->getAs<ObjCObjectPointerType>()) { 9693 if (const ObjCObjectPointerType *ToPtrTy 9694 = ToTy->getAs<ObjCObjectPointerType>()) 9695 if (const ObjCInterfaceDecl *FromIface = FromPtrTy->getInterfaceDecl()) 9696 if (const ObjCInterfaceDecl *ToIface = ToPtrTy->getInterfaceDecl()) 9697 if (ToPtrTy->getPointeeType().isAtLeastAsQualifiedAs( 9698 FromPtrTy->getPointeeType()) && 9699 FromIface->isSuperClassOf(ToIface)) 9700 BaseToDerivedConversion = 2; 9701 } else if (const ReferenceType *ToRefTy = ToTy->getAs<ReferenceType>()) { 9702 if (ToRefTy->getPointeeType().isAtLeastAsQualifiedAs(FromTy) && 9703 !FromTy->isIncompleteType() && 9704 !ToRefTy->getPointeeType()->isIncompleteType() && 9705 S.IsDerivedFrom(SourceLocation(), ToRefTy->getPointeeType(), FromTy)) { 9706 BaseToDerivedConversion = 3; 9707 } else if (ToTy->isLValueReferenceType() && !FromExpr->isLValue() && 9708 ToTy.getNonReferenceType().getCanonicalType() == 9709 FromTy.getNonReferenceType().getCanonicalType()) { 9710 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_lvalue) 9711 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9712 << (unsigned)isObjectArgument << I + 1 9713 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()); 9714 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9715 return; 9716 } 9717 } 9718 9719 if (BaseToDerivedConversion) { 9720 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_base_to_derived_conv) 9721 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9722 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) 9723 << (BaseToDerivedConversion - 1) << FromTy << ToTy << I + 1; 9724 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9725 return; 9726 } 9727 9728 if (isa<ObjCObjectPointerType>(CFromTy) && 9729 isa<PointerType>(CToTy)) { 9730 Qualifiers FromQs = CFromTy.getQualifiers(); 9731 Qualifiers ToQs = CToTy.getQualifiers(); 9732 if (FromQs.getObjCLifetime() != ToQs.getObjCLifetime()) { 9733 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_bad_arc_conv) 9734 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second 9735 << FnDesc << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) 9736 << FromTy << ToTy << (unsigned)isObjectArgument << I + 1; 9737 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9738 return; 9739 } 9740 } 9741 9742 if (TakingCandidateAddress && 9743 !checkAddressOfCandidateIsAvailable(S, Cand->Function)) 9744 return; 9745 9746 // Emit the generic diagnostic and, optionally, add the hints to it. 9747 PartialDiagnostic FDiag = S.PDiag(diag::note_ovl_candidate_bad_conv); 9748 FDiag << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 9749 << (FromExpr ? FromExpr->getSourceRange() : SourceRange()) << FromTy 9750 << ToTy << (unsigned)isObjectArgument << I + 1 9751 << (unsigned)(Cand->Fix.Kind); 9752 9753 // If we can fix the conversion, suggest the FixIts. 9754 for (std::vector<FixItHint>::iterator HI = Cand->Fix.Hints.begin(), 9755 HE = Cand->Fix.Hints.end(); HI != HE; ++HI) 9756 FDiag << *HI; 9757 S.Diag(Fn->getLocation(), FDiag); 9758 9759 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 9760 } 9761 9762 /// Additional arity mismatch diagnosis specific to a function overload 9763 /// candidates. This is not covered by the more general DiagnoseArityMismatch() 9764 /// over a candidate in any candidate set. 9765 static bool CheckArityMismatch(Sema &S, OverloadCandidate *Cand, 9766 unsigned NumArgs) { 9767 FunctionDecl *Fn = Cand->Function; 9768 unsigned MinParams = Fn->getMinRequiredArguments(); 9769 9770 // With invalid overloaded operators, it's possible that we think we 9771 // have an arity mismatch when in fact it looks like we have the 9772 // right number of arguments, because only overloaded operators have 9773 // the weird behavior of overloading member and non-member functions. 9774 // Just don't report anything. 9775 if (Fn->isInvalidDecl() && 9776 Fn->getDeclName().getNameKind() == DeclarationName::CXXOperatorName) 9777 return true; 9778 9779 if (NumArgs < MinParams) { 9780 assert((Cand->FailureKind == ovl_fail_too_few_arguments) || 9781 (Cand->FailureKind == ovl_fail_bad_deduction && 9782 Cand->DeductionFailure.Result == Sema::TDK_TooFewArguments)); 9783 } else { 9784 assert((Cand->FailureKind == ovl_fail_too_many_arguments) || 9785 (Cand->FailureKind == ovl_fail_bad_deduction && 9786 Cand->DeductionFailure.Result == Sema::TDK_TooManyArguments)); 9787 } 9788 9789 return false; 9790 } 9791 9792 /// General arity mismatch diagnosis over a candidate in a candidate set. 9793 static void DiagnoseArityMismatch(Sema &S, NamedDecl *Found, Decl *D, 9794 unsigned NumFormalArgs) { 9795 assert(isa<FunctionDecl>(D) && 9796 "The templated declaration should at least be a function" 9797 " when diagnosing bad template argument deduction due to too many" 9798 " or too few arguments"); 9799 9800 FunctionDecl *Fn = cast<FunctionDecl>(D); 9801 9802 // TODO: treat calls to a missing default constructor as a special case 9803 const FunctionProtoType *FnTy = Fn->getType()->getAs<FunctionProtoType>(); 9804 unsigned MinParams = Fn->getMinRequiredArguments(); 9805 9806 // at least / at most / exactly 9807 unsigned mode, modeCount; 9808 if (NumFormalArgs < MinParams) { 9809 if (MinParams != FnTy->getNumParams() || FnTy->isVariadic() || 9810 FnTy->isTemplateVariadic()) 9811 mode = 0; // "at least" 9812 else 9813 mode = 2; // "exactly" 9814 modeCount = MinParams; 9815 } else { 9816 if (MinParams != FnTy->getNumParams()) 9817 mode = 1; // "at most" 9818 else 9819 mode = 2; // "exactly" 9820 modeCount = FnTy->getNumParams(); 9821 } 9822 9823 std::string Description; 9824 std::pair<OverloadCandidateKind, OverloadCandidateSelect> FnKindPair = 9825 ClassifyOverloadCandidate(S, Found, Fn, Description); 9826 9827 if (modeCount == 1 && Fn->getParamDecl(0)->getDeclName()) 9828 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_arity_one) 9829 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second 9830 << Description << mode << Fn->getParamDecl(0) << NumFormalArgs; 9831 else 9832 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_arity) 9833 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second 9834 << Description << mode << modeCount << NumFormalArgs; 9835 9836 MaybeEmitInheritedConstructorNote(S, Found); 9837 } 9838 9839 /// Arity mismatch diagnosis specific to a function overload candidate. 9840 static void DiagnoseArityMismatch(Sema &S, OverloadCandidate *Cand, 9841 unsigned NumFormalArgs) { 9842 if (!CheckArityMismatch(S, Cand, NumFormalArgs)) 9843 DiagnoseArityMismatch(S, Cand->FoundDecl, Cand->Function, NumFormalArgs); 9844 } 9845 9846 static TemplateDecl *getDescribedTemplate(Decl *Templated) { 9847 if (TemplateDecl *TD = Templated->getDescribedTemplate()) 9848 return TD; 9849 llvm_unreachable("Unsupported: Getting the described template declaration" 9850 " for bad deduction diagnosis"); 9851 } 9852 9853 /// Diagnose a failed template-argument deduction. 9854 static void DiagnoseBadDeduction(Sema &S, NamedDecl *Found, Decl *Templated, 9855 DeductionFailureInfo &DeductionFailure, 9856 unsigned NumArgs, 9857 bool TakingCandidateAddress) { 9858 TemplateParameter Param = DeductionFailure.getTemplateParameter(); 9859 NamedDecl *ParamD; 9860 (ParamD = Param.dyn_cast<TemplateTypeParmDecl*>()) || 9861 (ParamD = Param.dyn_cast<NonTypeTemplateParmDecl*>()) || 9862 (ParamD = Param.dyn_cast<TemplateTemplateParmDecl*>()); 9863 switch (DeductionFailure.Result) { 9864 case Sema::TDK_Success: 9865 llvm_unreachable("TDK_success while diagnosing bad deduction"); 9866 9867 case Sema::TDK_Incomplete: { 9868 assert(ParamD && "no parameter found for incomplete deduction result"); 9869 S.Diag(Templated->getLocation(), 9870 diag::note_ovl_candidate_incomplete_deduction) 9871 << ParamD->getDeclName(); 9872 MaybeEmitInheritedConstructorNote(S, Found); 9873 return; 9874 } 9875 9876 case Sema::TDK_Underqualified: { 9877 assert(ParamD && "no parameter found for bad qualifiers deduction result"); 9878 TemplateTypeParmDecl *TParam = cast<TemplateTypeParmDecl>(ParamD); 9879 9880 QualType Param = DeductionFailure.getFirstArg()->getAsType(); 9881 9882 // Param will have been canonicalized, but it should just be a 9883 // qualified version of ParamD, so move the qualifiers to that. 9884 QualifierCollector Qs; 9885 Qs.strip(Param); 9886 QualType NonCanonParam = Qs.apply(S.Context, TParam->getTypeForDecl()); 9887 assert(S.Context.hasSameType(Param, NonCanonParam)); 9888 9889 // Arg has also been canonicalized, but there's nothing we can do 9890 // about that. It also doesn't matter as much, because it won't 9891 // have any template parameters in it (because deduction isn't 9892 // done on dependent types). 9893 QualType Arg = DeductionFailure.getSecondArg()->getAsType(); 9894 9895 S.Diag(Templated->getLocation(), diag::note_ovl_candidate_underqualified) 9896 << ParamD->getDeclName() << Arg << NonCanonParam; 9897 MaybeEmitInheritedConstructorNote(S, Found); 9898 return; 9899 } 9900 9901 case Sema::TDK_Inconsistent: { 9902 assert(ParamD && "no parameter found for inconsistent deduction result"); 9903 int which = 0; 9904 if (isa<TemplateTypeParmDecl>(ParamD)) 9905 which = 0; 9906 else if (isa<NonTypeTemplateParmDecl>(ParamD)) { 9907 // Deduction might have failed because we deduced arguments of two 9908 // different types for a non-type template parameter. 9909 // FIXME: Use a different TDK value for this. 9910 QualType T1 = 9911 DeductionFailure.getFirstArg()->getNonTypeTemplateArgumentType(); 9912 QualType T2 = 9913 DeductionFailure.getSecondArg()->getNonTypeTemplateArgumentType(); 9914 if (!S.Context.hasSameType(T1, T2)) { 9915 S.Diag(Templated->getLocation(), 9916 diag::note_ovl_candidate_inconsistent_deduction_types) 9917 << ParamD->getDeclName() << *DeductionFailure.getFirstArg() << T1 9918 << *DeductionFailure.getSecondArg() << T2; 9919 MaybeEmitInheritedConstructorNote(S, Found); 9920 return; 9921 } 9922 9923 which = 1; 9924 } else { 9925 which = 2; 9926 } 9927 9928 S.Diag(Templated->getLocation(), 9929 diag::note_ovl_candidate_inconsistent_deduction) 9930 << which << ParamD->getDeclName() << *DeductionFailure.getFirstArg() 9931 << *DeductionFailure.getSecondArg(); 9932 MaybeEmitInheritedConstructorNote(S, Found); 9933 return; 9934 } 9935 9936 case Sema::TDK_InvalidExplicitArguments: 9937 assert(ParamD && "no parameter found for invalid explicit arguments"); 9938 if (ParamD->getDeclName()) 9939 S.Diag(Templated->getLocation(), 9940 diag::note_ovl_candidate_explicit_arg_mismatch_named) 9941 << ParamD->getDeclName(); 9942 else { 9943 int index = 0; 9944 if (TemplateTypeParmDecl *TTP = dyn_cast<TemplateTypeParmDecl>(ParamD)) 9945 index = TTP->getIndex(); 9946 else if (NonTypeTemplateParmDecl *NTTP 9947 = dyn_cast<NonTypeTemplateParmDecl>(ParamD)) 9948 index = NTTP->getIndex(); 9949 else 9950 index = cast<TemplateTemplateParmDecl>(ParamD)->getIndex(); 9951 S.Diag(Templated->getLocation(), 9952 diag::note_ovl_candidate_explicit_arg_mismatch_unnamed) 9953 << (index + 1); 9954 } 9955 MaybeEmitInheritedConstructorNote(S, Found); 9956 return; 9957 9958 case Sema::TDK_TooManyArguments: 9959 case Sema::TDK_TooFewArguments: 9960 DiagnoseArityMismatch(S, Found, Templated, NumArgs); 9961 return; 9962 9963 case Sema::TDK_InstantiationDepth: 9964 S.Diag(Templated->getLocation(), 9965 diag::note_ovl_candidate_instantiation_depth); 9966 MaybeEmitInheritedConstructorNote(S, Found); 9967 return; 9968 9969 case Sema::TDK_SubstitutionFailure: { 9970 // Format the template argument list into the argument string. 9971 SmallString<128> TemplateArgString; 9972 if (TemplateArgumentList *Args = 9973 DeductionFailure.getTemplateArgumentList()) { 9974 TemplateArgString = " "; 9975 TemplateArgString += S.getTemplateArgumentBindingsText( 9976 getDescribedTemplate(Templated)->getTemplateParameters(), *Args); 9977 } 9978 9979 // If this candidate was disabled by enable_if, say so. 9980 PartialDiagnosticAt *PDiag = DeductionFailure.getSFINAEDiagnostic(); 9981 if (PDiag && PDiag->second.getDiagID() == 9982 diag::err_typename_nested_not_found_enable_if) { 9983 // FIXME: Use the source range of the condition, and the fully-qualified 9984 // name of the enable_if template. These are both present in PDiag. 9985 S.Diag(PDiag->first, diag::note_ovl_candidate_disabled_by_enable_if) 9986 << "'enable_if'" << TemplateArgString; 9987 return; 9988 } 9989 9990 // We found a specific requirement that disabled the enable_if. 9991 if (PDiag && PDiag->second.getDiagID() == 9992 diag::err_typename_nested_not_found_requirement) { 9993 S.Diag(Templated->getLocation(), 9994 diag::note_ovl_candidate_disabled_by_requirement) 9995 << PDiag->second.getStringArg(0) << TemplateArgString; 9996 return; 9997 } 9998 9999 // Format the SFINAE diagnostic into the argument string. 10000 // FIXME: Add a general mechanism to include a PartialDiagnostic *'s 10001 // formatted message in another diagnostic. 10002 SmallString<128> SFINAEArgString; 10003 SourceRange R; 10004 if (PDiag) { 10005 SFINAEArgString = ": "; 10006 R = SourceRange(PDiag->first, PDiag->first); 10007 PDiag->second.EmitToString(S.getDiagnostics(), SFINAEArgString); 10008 } 10009 10010 S.Diag(Templated->getLocation(), 10011 diag::note_ovl_candidate_substitution_failure) 10012 << TemplateArgString << SFINAEArgString << R; 10013 MaybeEmitInheritedConstructorNote(S, Found); 10014 return; 10015 } 10016 10017 case Sema::TDK_DeducedMismatch: 10018 case Sema::TDK_DeducedMismatchNested: { 10019 // Format the template argument list into the argument string. 10020 SmallString<128> TemplateArgString; 10021 if (TemplateArgumentList *Args = 10022 DeductionFailure.getTemplateArgumentList()) { 10023 TemplateArgString = " "; 10024 TemplateArgString += S.getTemplateArgumentBindingsText( 10025 getDescribedTemplate(Templated)->getTemplateParameters(), *Args); 10026 } 10027 10028 S.Diag(Templated->getLocation(), diag::note_ovl_candidate_deduced_mismatch) 10029 << (*DeductionFailure.getCallArgIndex() + 1) 10030 << *DeductionFailure.getFirstArg() << *DeductionFailure.getSecondArg() 10031 << TemplateArgString 10032 << (DeductionFailure.Result == Sema::TDK_DeducedMismatchNested); 10033 break; 10034 } 10035 10036 case Sema::TDK_NonDeducedMismatch: { 10037 // FIXME: Provide a source location to indicate what we couldn't match. 10038 TemplateArgument FirstTA = *DeductionFailure.getFirstArg(); 10039 TemplateArgument SecondTA = *DeductionFailure.getSecondArg(); 10040 if (FirstTA.getKind() == TemplateArgument::Template && 10041 SecondTA.getKind() == TemplateArgument::Template) { 10042 TemplateName FirstTN = FirstTA.getAsTemplate(); 10043 TemplateName SecondTN = SecondTA.getAsTemplate(); 10044 if (FirstTN.getKind() == TemplateName::Template && 10045 SecondTN.getKind() == TemplateName::Template) { 10046 if (FirstTN.getAsTemplateDecl()->getName() == 10047 SecondTN.getAsTemplateDecl()->getName()) { 10048 // FIXME: This fixes a bad diagnostic where both templates are named 10049 // the same. This particular case is a bit difficult since: 10050 // 1) It is passed as a string to the diagnostic printer. 10051 // 2) The diagnostic printer only attempts to find a better 10052 // name for types, not decls. 10053 // Ideally, this should folded into the diagnostic printer. 10054 S.Diag(Templated->getLocation(), 10055 diag::note_ovl_candidate_non_deduced_mismatch_qualified) 10056 << FirstTN.getAsTemplateDecl() << SecondTN.getAsTemplateDecl(); 10057 return; 10058 } 10059 } 10060 } 10061 10062 if (TakingCandidateAddress && isa<FunctionDecl>(Templated) && 10063 !checkAddressOfCandidateIsAvailable(S, cast<FunctionDecl>(Templated))) 10064 return; 10065 10066 // FIXME: For generic lambda parameters, check if the function is a lambda 10067 // call operator, and if so, emit a prettier and more informative 10068 // diagnostic that mentions 'auto' and lambda in addition to 10069 // (or instead of?) the canonical template type parameters. 10070 S.Diag(Templated->getLocation(), 10071 diag::note_ovl_candidate_non_deduced_mismatch) 10072 << FirstTA << SecondTA; 10073 return; 10074 } 10075 // TODO: diagnose these individually, then kill off 10076 // note_ovl_candidate_bad_deduction, which is uselessly vague. 10077 case Sema::TDK_MiscellaneousDeductionFailure: 10078 S.Diag(Templated->getLocation(), diag::note_ovl_candidate_bad_deduction); 10079 MaybeEmitInheritedConstructorNote(S, Found); 10080 return; 10081 case Sema::TDK_CUDATargetMismatch: 10082 S.Diag(Templated->getLocation(), 10083 diag::note_cuda_ovl_candidate_target_mismatch); 10084 return; 10085 } 10086 } 10087 10088 /// Diagnose a failed template-argument deduction, for function calls. 10089 static void DiagnoseBadDeduction(Sema &S, OverloadCandidate *Cand, 10090 unsigned NumArgs, 10091 bool TakingCandidateAddress) { 10092 unsigned TDK = Cand->DeductionFailure.Result; 10093 if (TDK == Sema::TDK_TooFewArguments || TDK == Sema::TDK_TooManyArguments) { 10094 if (CheckArityMismatch(S, Cand, NumArgs)) 10095 return; 10096 } 10097 DiagnoseBadDeduction(S, Cand->FoundDecl, Cand->Function, // pattern 10098 Cand->DeductionFailure, NumArgs, TakingCandidateAddress); 10099 } 10100 10101 /// CUDA: diagnose an invalid call across targets. 10102 static void DiagnoseBadTarget(Sema &S, OverloadCandidate *Cand) { 10103 FunctionDecl *Caller = cast<FunctionDecl>(S.CurContext); 10104 FunctionDecl *Callee = Cand->Function; 10105 10106 Sema::CUDAFunctionTarget CallerTarget = S.IdentifyCUDATarget(Caller), 10107 CalleeTarget = S.IdentifyCUDATarget(Callee); 10108 10109 std::string FnDesc; 10110 std::pair<OverloadCandidateKind, OverloadCandidateSelect> FnKindPair = 10111 ClassifyOverloadCandidate(S, Cand->FoundDecl, Callee, FnDesc); 10112 10113 S.Diag(Callee->getLocation(), diag::note_ovl_candidate_bad_target) 10114 << (unsigned)FnKindPair.first << (unsigned)ocs_non_template 10115 << FnDesc /* Ignored */ 10116 << CalleeTarget << CallerTarget; 10117 10118 // This could be an implicit constructor for which we could not infer the 10119 // target due to a collsion. Diagnose that case. 10120 CXXMethodDecl *Meth = dyn_cast<CXXMethodDecl>(Callee); 10121 if (Meth != nullptr && Meth->isImplicit()) { 10122 CXXRecordDecl *ParentClass = Meth->getParent(); 10123 Sema::CXXSpecialMember CSM; 10124 10125 switch (FnKindPair.first) { 10126 default: 10127 return; 10128 case oc_implicit_default_constructor: 10129 CSM = Sema::CXXDefaultConstructor; 10130 break; 10131 case oc_implicit_copy_constructor: 10132 CSM = Sema::CXXCopyConstructor; 10133 break; 10134 case oc_implicit_move_constructor: 10135 CSM = Sema::CXXMoveConstructor; 10136 break; 10137 case oc_implicit_copy_assignment: 10138 CSM = Sema::CXXCopyAssignment; 10139 break; 10140 case oc_implicit_move_assignment: 10141 CSM = Sema::CXXMoveAssignment; 10142 break; 10143 }; 10144 10145 bool ConstRHS = false; 10146 if (Meth->getNumParams()) { 10147 if (const ReferenceType *RT = 10148 Meth->getParamDecl(0)->getType()->getAs<ReferenceType>()) { 10149 ConstRHS = RT->getPointeeType().isConstQualified(); 10150 } 10151 } 10152 10153 S.inferCUDATargetForImplicitSpecialMember(ParentClass, CSM, Meth, 10154 /* ConstRHS */ ConstRHS, 10155 /* Diagnose */ true); 10156 } 10157 } 10158 10159 static void DiagnoseFailedEnableIfAttr(Sema &S, OverloadCandidate *Cand) { 10160 FunctionDecl *Callee = Cand->Function; 10161 EnableIfAttr *Attr = static_cast<EnableIfAttr*>(Cand->DeductionFailure.Data); 10162 10163 S.Diag(Callee->getLocation(), 10164 diag::note_ovl_candidate_disabled_by_function_cond_attr) 10165 << Attr->getCond()->getSourceRange() << Attr->getMessage(); 10166 } 10167 10168 static void DiagnoseOpenCLExtensionDisabled(Sema &S, OverloadCandidate *Cand) { 10169 FunctionDecl *Callee = Cand->Function; 10170 10171 S.Diag(Callee->getLocation(), 10172 diag::note_ovl_candidate_disabled_by_extension); 10173 } 10174 10175 /// Generates a 'note' diagnostic for an overload candidate. We've 10176 /// already generated a primary error at the call site. 10177 /// 10178 /// It really does need to be a single diagnostic with its caret 10179 /// pointed at the candidate declaration. Yes, this creates some 10180 /// major challenges of technical writing. Yes, this makes pointing 10181 /// out problems with specific arguments quite awkward. It's still 10182 /// better than generating twenty screens of text for every failed 10183 /// overload. 10184 /// 10185 /// It would be great to be able to express per-candidate problems 10186 /// more richly for those diagnostic clients that cared, but we'd 10187 /// still have to be just as careful with the default diagnostics. 10188 static void NoteFunctionCandidate(Sema &S, OverloadCandidate *Cand, 10189 unsigned NumArgs, 10190 bool TakingCandidateAddress) { 10191 FunctionDecl *Fn = Cand->Function; 10192 10193 // Note deleted candidates, but only if they're viable. 10194 if (Cand->Viable) { 10195 if (Fn->isDeleted() || S.isFunctionConsideredUnavailable(Fn)) { 10196 std::string FnDesc; 10197 std::pair<OverloadCandidateKind, OverloadCandidateSelect> FnKindPair = 10198 ClassifyOverloadCandidate(S, Cand->FoundDecl, Fn, FnDesc); 10199 10200 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_deleted) 10201 << (unsigned)FnKindPair.first << (unsigned)FnKindPair.second << FnDesc 10202 << (Fn->isDeleted() ? (Fn->isDeletedAsWritten() ? 1 : 2) : 0); 10203 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 10204 return; 10205 } 10206 10207 // We don't really have anything else to say about viable candidates. 10208 S.NoteOverloadCandidate(Cand->FoundDecl, Fn); 10209 return; 10210 } 10211 10212 switch (Cand->FailureKind) { 10213 case ovl_fail_too_many_arguments: 10214 case ovl_fail_too_few_arguments: 10215 return DiagnoseArityMismatch(S, Cand, NumArgs); 10216 10217 case ovl_fail_bad_deduction: 10218 return DiagnoseBadDeduction(S, Cand, NumArgs, 10219 TakingCandidateAddress); 10220 10221 case ovl_fail_illegal_constructor: { 10222 S.Diag(Fn->getLocation(), diag::note_ovl_candidate_illegal_constructor) 10223 << (Fn->getPrimaryTemplate() ? 1 : 0); 10224 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 10225 return; 10226 } 10227 10228 case ovl_fail_trivial_conversion: 10229 case ovl_fail_bad_final_conversion: 10230 case ovl_fail_final_conversion_not_exact: 10231 return S.NoteOverloadCandidate(Cand->FoundDecl, Fn); 10232 10233 case ovl_fail_bad_conversion: { 10234 unsigned I = (Cand->IgnoreObjectArgument ? 1 : 0); 10235 for (unsigned N = Cand->Conversions.size(); I != N; ++I) 10236 if (Cand->Conversions[I].isBad()) 10237 return DiagnoseBadConversion(S, Cand, I, TakingCandidateAddress); 10238 10239 // FIXME: this currently happens when we're called from SemaInit 10240 // when user-conversion overload fails. Figure out how to handle 10241 // those conditions and diagnose them well. 10242 return S.NoteOverloadCandidate(Cand->FoundDecl, Fn); 10243 } 10244 10245 case ovl_fail_bad_target: 10246 return DiagnoseBadTarget(S, Cand); 10247 10248 case ovl_fail_enable_if: 10249 return DiagnoseFailedEnableIfAttr(S, Cand); 10250 10251 case ovl_fail_ext_disabled: 10252 return DiagnoseOpenCLExtensionDisabled(S, Cand); 10253 10254 case ovl_fail_inhctor_slice: 10255 // It's generally not interesting to note copy/move constructors here. 10256 if (cast<CXXConstructorDecl>(Fn)->isCopyOrMoveConstructor()) 10257 return; 10258 S.Diag(Fn->getLocation(), 10259 diag::note_ovl_candidate_inherited_constructor_slice) 10260 << (Fn->getPrimaryTemplate() ? 1 : 0) 10261 << Fn->getParamDecl(0)->getType()->isRValueReferenceType(); 10262 MaybeEmitInheritedConstructorNote(S, Cand->FoundDecl); 10263 return; 10264 10265 case ovl_fail_addr_not_available: { 10266 bool Available = checkAddressOfCandidateIsAvailable(S, Cand->Function); 10267 (void)Available; 10268 assert(!Available); 10269 break; 10270 } 10271 case ovl_non_default_multiversion_function: 10272 // Do nothing, these should simply be ignored. 10273 break; 10274 } 10275 } 10276 10277 static void NoteSurrogateCandidate(Sema &S, OverloadCandidate *Cand) { 10278 // Desugar the type of the surrogate down to a function type, 10279 // retaining as many typedefs as possible while still showing 10280 // the function type (and, therefore, its parameter types). 10281 QualType FnType = Cand->Surrogate->getConversionType(); 10282 bool isLValueReference = false; 10283 bool isRValueReference = false; 10284 bool isPointer = false; 10285 if (const LValueReferenceType *FnTypeRef = 10286 FnType->getAs<LValueReferenceType>()) { 10287 FnType = FnTypeRef->getPointeeType(); 10288 isLValueReference = true; 10289 } else if (const RValueReferenceType *FnTypeRef = 10290 FnType->getAs<RValueReferenceType>()) { 10291 FnType = FnTypeRef->getPointeeType(); 10292 isRValueReference = true; 10293 } 10294 if (const PointerType *FnTypePtr = FnType->getAs<PointerType>()) { 10295 FnType = FnTypePtr->getPointeeType(); 10296 isPointer = true; 10297 } 10298 // Desugar down to a function type. 10299 FnType = QualType(FnType->getAs<FunctionType>(), 0); 10300 // Reconstruct the pointer/reference as appropriate. 10301 if (isPointer) FnType = S.Context.getPointerType(FnType); 10302 if (isRValueReference) FnType = S.Context.getRValueReferenceType(FnType); 10303 if (isLValueReference) FnType = S.Context.getLValueReferenceType(FnType); 10304 10305 S.Diag(Cand->Surrogate->getLocation(), diag::note_ovl_surrogate_cand) 10306 << FnType; 10307 } 10308 10309 static void NoteBuiltinOperatorCandidate(Sema &S, StringRef Opc, 10310 SourceLocation OpLoc, 10311 OverloadCandidate *Cand) { 10312 assert(Cand->Conversions.size() <= 2 && "builtin operator is not binary"); 10313 std::string TypeStr("operator"); 10314 TypeStr += Opc; 10315 TypeStr += "("; 10316 TypeStr += Cand->BuiltinParamTypes[0].getAsString(); 10317 if (Cand->Conversions.size() == 1) { 10318 TypeStr += ")"; 10319 S.Diag(OpLoc, diag::note_ovl_builtin_unary_candidate) << TypeStr; 10320 } else { 10321 TypeStr += ", "; 10322 TypeStr += Cand->BuiltinParamTypes[1].getAsString(); 10323 TypeStr += ")"; 10324 S.Diag(OpLoc, diag::note_ovl_builtin_binary_candidate) << TypeStr; 10325 } 10326 } 10327 10328 static void NoteAmbiguousUserConversions(Sema &S, SourceLocation OpLoc, 10329 OverloadCandidate *Cand) { 10330 for (const ImplicitConversionSequence &ICS : Cand->Conversions) { 10331 if (ICS.isBad()) break; // all meaningless after first invalid 10332 if (!ICS.isAmbiguous()) continue; 10333 10334 ICS.DiagnoseAmbiguousConversion( 10335 S, OpLoc, S.PDiag(diag::note_ambiguous_type_conversion)); 10336 } 10337 } 10338 10339 static SourceLocation GetLocationForCandidate(const OverloadCandidate *Cand) { 10340 if (Cand->Function) 10341 return Cand->Function->getLocation(); 10342 if (Cand->IsSurrogate) 10343 return Cand->Surrogate->getLocation(); 10344 return SourceLocation(); 10345 } 10346 10347 static unsigned RankDeductionFailure(const DeductionFailureInfo &DFI) { 10348 switch ((Sema::TemplateDeductionResult)DFI.Result) { 10349 case Sema::TDK_Success: 10350 case Sema::TDK_NonDependentConversionFailure: 10351 llvm_unreachable("non-deduction failure while diagnosing bad deduction"); 10352 10353 case Sema::TDK_Invalid: 10354 case Sema::TDK_Incomplete: 10355 return 1; 10356 10357 case Sema::TDK_Underqualified: 10358 case Sema::TDK_Inconsistent: 10359 return 2; 10360 10361 case Sema::TDK_SubstitutionFailure: 10362 case Sema::TDK_DeducedMismatch: 10363 case Sema::TDK_DeducedMismatchNested: 10364 case Sema::TDK_NonDeducedMismatch: 10365 case Sema::TDK_MiscellaneousDeductionFailure: 10366 case Sema::TDK_CUDATargetMismatch: 10367 return 3; 10368 10369 case Sema::TDK_InstantiationDepth: 10370 return 4; 10371 10372 case Sema::TDK_InvalidExplicitArguments: 10373 return 5; 10374 10375 case Sema::TDK_TooManyArguments: 10376 case Sema::TDK_TooFewArguments: 10377 return 6; 10378 } 10379 llvm_unreachable("Unhandled deduction result"); 10380 } 10381 10382 namespace { 10383 struct CompareOverloadCandidatesForDisplay { 10384 Sema &S; 10385 SourceLocation Loc; 10386 size_t NumArgs; 10387 OverloadCandidateSet::CandidateSetKind CSK; 10388 10389 CompareOverloadCandidatesForDisplay( 10390 Sema &S, SourceLocation Loc, size_t NArgs, 10391 OverloadCandidateSet::CandidateSetKind CSK) 10392 : S(S), NumArgs(NArgs), CSK(CSK) {} 10393 10394 bool operator()(const OverloadCandidate *L, 10395 const OverloadCandidate *R) { 10396 // Fast-path this check. 10397 if (L == R) return false; 10398 10399 // Order first by viability. 10400 if (L->Viable) { 10401 if (!R->Viable) return true; 10402 10403 // TODO: introduce a tri-valued comparison for overload 10404 // candidates. Would be more worthwhile if we had a sort 10405 // that could exploit it. 10406 if (isBetterOverloadCandidate(S, *L, *R, SourceLocation(), CSK)) 10407 return true; 10408 if (isBetterOverloadCandidate(S, *R, *L, SourceLocation(), CSK)) 10409 return false; 10410 } else if (R->Viable) 10411 return false; 10412 10413 assert(L->Viable == R->Viable); 10414 10415 // Criteria by which we can sort non-viable candidates: 10416 if (!L->Viable) { 10417 // 1. Arity mismatches come after other candidates. 10418 if (L->FailureKind == ovl_fail_too_many_arguments || 10419 L->FailureKind == ovl_fail_too_few_arguments) { 10420 if (R->FailureKind == ovl_fail_too_many_arguments || 10421 R->FailureKind == ovl_fail_too_few_arguments) { 10422 int LDist = std::abs((int)L->getNumParams() - (int)NumArgs); 10423 int RDist = std::abs((int)R->getNumParams() - (int)NumArgs); 10424 if (LDist == RDist) { 10425 if (L->FailureKind == R->FailureKind) 10426 // Sort non-surrogates before surrogates. 10427 return !L->IsSurrogate && R->IsSurrogate; 10428 // Sort candidates requiring fewer parameters than there were 10429 // arguments given after candidates requiring more parameters 10430 // than there were arguments given. 10431 return L->FailureKind == ovl_fail_too_many_arguments; 10432 } 10433 return LDist < RDist; 10434 } 10435 return false; 10436 } 10437 if (R->FailureKind == ovl_fail_too_many_arguments || 10438 R->FailureKind == ovl_fail_too_few_arguments) 10439 return true; 10440 10441 // 2. Bad conversions come first and are ordered by the number 10442 // of bad conversions and quality of good conversions. 10443 if (L->FailureKind == ovl_fail_bad_conversion) { 10444 if (R->FailureKind != ovl_fail_bad_conversion) 10445 return true; 10446 10447 // The conversion that can be fixed with a smaller number of changes, 10448 // comes first. 10449 unsigned numLFixes = L->Fix.NumConversionsFixed; 10450 unsigned numRFixes = R->Fix.NumConversionsFixed; 10451 numLFixes = (numLFixes == 0) ? UINT_MAX : numLFixes; 10452 numRFixes = (numRFixes == 0) ? UINT_MAX : numRFixes; 10453 if (numLFixes != numRFixes) { 10454 return numLFixes < numRFixes; 10455 } 10456 10457 // If there's any ordering between the defined conversions... 10458 // FIXME: this might not be transitive. 10459 assert(L->Conversions.size() == R->Conversions.size()); 10460 10461 int leftBetter = 0; 10462 unsigned I = (L->IgnoreObjectArgument || R->IgnoreObjectArgument); 10463 for (unsigned E = L->Conversions.size(); I != E; ++I) { 10464 switch (CompareImplicitConversionSequences(S, Loc, 10465 L->Conversions[I], 10466 R->Conversions[I])) { 10467 case ImplicitConversionSequence::Better: 10468 leftBetter++; 10469 break; 10470 10471 case ImplicitConversionSequence::Worse: 10472 leftBetter--; 10473 break; 10474 10475 case ImplicitConversionSequence::Indistinguishable: 10476 break; 10477 } 10478 } 10479 if (leftBetter > 0) return true; 10480 if (leftBetter < 0) return false; 10481 10482 } else if (R->FailureKind == ovl_fail_bad_conversion) 10483 return false; 10484 10485 if (L->FailureKind == ovl_fail_bad_deduction) { 10486 if (R->FailureKind != ovl_fail_bad_deduction) 10487 return true; 10488 10489 if (L->DeductionFailure.Result != R->DeductionFailure.Result) 10490 return RankDeductionFailure(L->DeductionFailure) 10491 < RankDeductionFailure(R->DeductionFailure); 10492 } else if (R->FailureKind == ovl_fail_bad_deduction) 10493 return false; 10494 10495 // TODO: others? 10496 } 10497 10498 // Sort everything else by location. 10499 SourceLocation LLoc = GetLocationForCandidate(L); 10500 SourceLocation RLoc = GetLocationForCandidate(R); 10501 10502 // Put candidates without locations (e.g. builtins) at the end. 10503 if (LLoc.isInvalid()) return false; 10504 if (RLoc.isInvalid()) return true; 10505 10506 return S.SourceMgr.isBeforeInTranslationUnit(LLoc, RLoc); 10507 } 10508 }; 10509 } 10510 10511 /// CompleteNonViableCandidate - Normally, overload resolution only 10512 /// computes up to the first bad conversion. Produces the FixIt set if 10513 /// possible. 10514 static void CompleteNonViableCandidate(Sema &S, OverloadCandidate *Cand, 10515 ArrayRef<Expr *> Args) { 10516 assert(!Cand->Viable); 10517 10518 // Don't do anything on failures other than bad conversion. 10519 if (Cand->FailureKind != ovl_fail_bad_conversion) return; 10520 10521 // We only want the FixIts if all the arguments can be corrected. 10522 bool Unfixable = false; 10523 // Use a implicit copy initialization to check conversion fixes. 10524 Cand->Fix.setConversionChecker(TryCopyInitialization); 10525 10526 // Attempt to fix the bad conversion. 10527 unsigned ConvCount = Cand->Conversions.size(); 10528 for (unsigned ConvIdx = (Cand->IgnoreObjectArgument ? 1 : 0); /**/; 10529 ++ConvIdx) { 10530 assert(ConvIdx != ConvCount && "no bad conversion in candidate"); 10531 if (Cand->Conversions[ConvIdx].isInitialized() && 10532 Cand->Conversions[ConvIdx].isBad()) { 10533 Unfixable = !Cand->TryToFixBadConversion(ConvIdx, S); 10534 break; 10535 } 10536 } 10537 10538 // FIXME: this should probably be preserved from the overload 10539 // operation somehow. 10540 bool SuppressUserConversions = false; 10541 10542 unsigned ConvIdx = 0; 10543 ArrayRef<QualType> ParamTypes; 10544 10545 if (Cand->IsSurrogate) { 10546 QualType ConvType 10547 = Cand->Surrogate->getConversionType().getNonReferenceType(); 10548 if (const PointerType *ConvPtrType = ConvType->getAs<PointerType>()) 10549 ConvType = ConvPtrType->getPointeeType(); 10550 ParamTypes = ConvType->getAs<FunctionProtoType>()->getParamTypes(); 10551 // Conversion 0 is 'this', which doesn't have a corresponding argument. 10552 ConvIdx = 1; 10553 } else if (Cand->Function) { 10554 ParamTypes = 10555 Cand->Function->getType()->getAs<FunctionProtoType>()->getParamTypes(); 10556 if (isa<CXXMethodDecl>(Cand->Function) && 10557 !isa<CXXConstructorDecl>(Cand->Function)) { 10558 // Conversion 0 is 'this', which doesn't have a corresponding argument. 10559 ConvIdx = 1; 10560 } 10561 } else { 10562 // Builtin operator. 10563 assert(ConvCount <= 3); 10564 ParamTypes = Cand->BuiltinParamTypes; 10565 } 10566 10567 // Fill in the rest of the conversions. 10568 for (unsigned ArgIdx = 0; ConvIdx != ConvCount; ++ConvIdx, ++ArgIdx) { 10569 if (Cand->Conversions[ConvIdx].isInitialized()) { 10570 // We've already checked this conversion. 10571 } else if (ArgIdx < ParamTypes.size()) { 10572 if (ParamTypes[ArgIdx]->isDependentType()) 10573 Cand->Conversions[ConvIdx].setAsIdentityConversion( 10574 Args[ArgIdx]->getType()); 10575 else { 10576 Cand->Conversions[ConvIdx] = 10577 TryCopyInitialization(S, Args[ArgIdx], ParamTypes[ArgIdx], 10578 SuppressUserConversions, 10579 /*InOverloadResolution=*/true, 10580 /*AllowObjCWritebackConversion=*/ 10581 S.getLangOpts().ObjCAutoRefCount); 10582 // Store the FixIt in the candidate if it exists. 10583 if (!Unfixable && Cand->Conversions[ConvIdx].isBad()) 10584 Unfixable = !Cand->TryToFixBadConversion(ConvIdx, S); 10585 } 10586 } else 10587 Cand->Conversions[ConvIdx].setEllipsis(); 10588 } 10589 } 10590 10591 /// When overload resolution fails, prints diagnostic messages containing the 10592 /// candidates in the candidate set. 10593 void OverloadCandidateSet::NoteCandidates( 10594 Sema &S, OverloadCandidateDisplayKind OCD, ArrayRef<Expr *> Args, 10595 StringRef Opc, SourceLocation OpLoc, 10596 llvm::function_ref<bool(OverloadCandidate &)> Filter) { 10597 // Sort the candidates by viability and position. Sorting directly would 10598 // be prohibitive, so we make a set of pointers and sort those. 10599 SmallVector<OverloadCandidate*, 32> Cands; 10600 if (OCD == OCD_AllCandidates) Cands.reserve(size()); 10601 for (iterator Cand = begin(), LastCand = end(); Cand != LastCand; ++Cand) { 10602 if (!Filter(*Cand)) 10603 continue; 10604 if (Cand->Viable) 10605 Cands.push_back(Cand); 10606 else if (OCD == OCD_AllCandidates) { 10607 CompleteNonViableCandidate(S, Cand, Args); 10608 if (Cand->Function || Cand->IsSurrogate) 10609 Cands.push_back(Cand); 10610 // Otherwise, this a non-viable builtin candidate. We do not, in general, 10611 // want to list every possible builtin candidate. 10612 } 10613 } 10614 10615 std::stable_sort(Cands.begin(), Cands.end(), 10616 CompareOverloadCandidatesForDisplay(S, OpLoc, Args.size(), Kind)); 10617 10618 bool ReportedAmbiguousConversions = false; 10619 10620 SmallVectorImpl<OverloadCandidate*>::iterator I, E; 10621 const OverloadsShown ShowOverloads = S.Diags.getShowOverloads(); 10622 unsigned CandsShown = 0; 10623 for (I = Cands.begin(), E = Cands.end(); I != E; ++I) { 10624 OverloadCandidate *Cand = *I; 10625 10626 // Set an arbitrary limit on the number of candidate functions we'll spam 10627 // the user with. FIXME: This limit should depend on details of the 10628 // candidate list. 10629 if (CandsShown >= 4 && ShowOverloads == Ovl_Best) { 10630 break; 10631 } 10632 ++CandsShown; 10633 10634 if (Cand->Function) 10635 NoteFunctionCandidate(S, Cand, Args.size(), 10636 /*TakingCandidateAddress=*/false); 10637 else if (Cand->IsSurrogate) 10638 NoteSurrogateCandidate(S, Cand); 10639 else { 10640 assert(Cand->Viable && 10641 "Non-viable built-in candidates are not added to Cands."); 10642 // Generally we only see ambiguities including viable builtin 10643 // operators if overload resolution got screwed up by an 10644 // ambiguous user-defined conversion. 10645 // 10646 // FIXME: It's quite possible for different conversions to see 10647 // different ambiguities, though. 10648 if (!ReportedAmbiguousConversions) { 10649 NoteAmbiguousUserConversions(S, OpLoc, Cand); 10650 ReportedAmbiguousConversions = true; 10651 } 10652 10653 // If this is a viable builtin, print it. 10654 NoteBuiltinOperatorCandidate(S, Opc, OpLoc, Cand); 10655 } 10656 } 10657 10658 if (I != E) 10659 S.Diag(OpLoc, diag::note_ovl_too_many_candidates) << int(E - I); 10660 } 10661 10662 static SourceLocation 10663 GetLocationForCandidate(const TemplateSpecCandidate *Cand) { 10664 return Cand->Specialization ? Cand->Specialization->getLocation() 10665 : SourceLocation(); 10666 } 10667 10668 namespace { 10669 struct CompareTemplateSpecCandidatesForDisplay { 10670 Sema &S; 10671 CompareTemplateSpecCandidatesForDisplay(Sema &S) : S(S) {} 10672 10673 bool operator()(const TemplateSpecCandidate *L, 10674 const TemplateSpecCandidate *R) { 10675 // Fast-path this check. 10676 if (L == R) 10677 return false; 10678 10679 // Assuming that both candidates are not matches... 10680 10681 // Sort by the ranking of deduction failures. 10682 if (L->DeductionFailure.Result != R->DeductionFailure.Result) 10683 return RankDeductionFailure(L->DeductionFailure) < 10684 RankDeductionFailure(R->DeductionFailure); 10685 10686 // Sort everything else by location. 10687 SourceLocation LLoc = GetLocationForCandidate(L); 10688 SourceLocation RLoc = GetLocationForCandidate(R); 10689 10690 // Put candidates without locations (e.g. builtins) at the end. 10691 if (LLoc.isInvalid()) 10692 return false; 10693 if (RLoc.isInvalid()) 10694 return true; 10695 10696 return S.SourceMgr.isBeforeInTranslationUnit(LLoc, RLoc); 10697 } 10698 }; 10699 } 10700 10701 /// Diagnose a template argument deduction failure. 10702 /// We are treating these failures as overload failures due to bad 10703 /// deductions. 10704 void TemplateSpecCandidate::NoteDeductionFailure(Sema &S, 10705 bool ForTakingAddress) { 10706 DiagnoseBadDeduction(S, FoundDecl, Specialization, // pattern 10707 DeductionFailure, /*NumArgs=*/0, ForTakingAddress); 10708 } 10709 10710 void TemplateSpecCandidateSet::destroyCandidates() { 10711 for (iterator i = begin(), e = end(); i != e; ++i) { 10712 i->DeductionFailure.Destroy(); 10713 } 10714 } 10715 10716 void TemplateSpecCandidateSet::clear() { 10717 destroyCandidates(); 10718 Candidates.clear(); 10719 } 10720 10721 /// NoteCandidates - When no template specialization match is found, prints 10722 /// diagnostic messages containing the non-matching specializations that form 10723 /// the candidate set. 10724 /// This is analoguous to OverloadCandidateSet::NoteCandidates() with 10725 /// OCD == OCD_AllCandidates and Cand->Viable == false. 10726 void TemplateSpecCandidateSet::NoteCandidates(Sema &S, SourceLocation Loc) { 10727 // Sort the candidates by position (assuming no candidate is a match). 10728 // Sorting directly would be prohibitive, so we make a set of pointers 10729 // and sort those. 10730 SmallVector<TemplateSpecCandidate *, 32> Cands; 10731 Cands.reserve(size()); 10732 for (iterator Cand = begin(), LastCand = end(); Cand != LastCand; ++Cand) { 10733 if (Cand->Specialization) 10734 Cands.push_back(Cand); 10735 // Otherwise, this is a non-matching builtin candidate. We do not, 10736 // in general, want to list every possible builtin candidate. 10737 } 10738 10739 llvm::sort(Cands.begin(), Cands.end(), 10740 CompareTemplateSpecCandidatesForDisplay(S)); 10741 10742 // FIXME: Perhaps rename OverloadsShown and getShowOverloads() 10743 // for generalization purposes (?). 10744 const OverloadsShown ShowOverloads = S.Diags.getShowOverloads(); 10745 10746 SmallVectorImpl<TemplateSpecCandidate *>::iterator I, E; 10747 unsigned CandsShown = 0; 10748 for (I = Cands.begin(), E = Cands.end(); I != E; ++I) { 10749 TemplateSpecCandidate *Cand = *I; 10750 10751 // Set an arbitrary limit on the number of candidates we'll spam 10752 // the user with. FIXME: This limit should depend on details of the 10753 // candidate list. 10754 if (CandsShown >= 4 && ShowOverloads == Ovl_Best) 10755 break; 10756 ++CandsShown; 10757 10758 assert(Cand->Specialization && 10759 "Non-matching built-in candidates are not added to Cands."); 10760 Cand->NoteDeductionFailure(S, ForTakingAddress); 10761 } 10762 10763 if (I != E) 10764 S.Diag(Loc, diag::note_ovl_too_many_candidates) << int(E - I); 10765 } 10766 10767 // [PossiblyAFunctionType] --> [Return] 10768 // NonFunctionType --> NonFunctionType 10769 // R (A) --> R(A) 10770 // R (*)(A) --> R (A) 10771 // R (&)(A) --> R (A) 10772 // R (S::*)(A) --> R (A) 10773 QualType Sema::ExtractUnqualifiedFunctionType(QualType PossiblyAFunctionType) { 10774 QualType Ret = PossiblyAFunctionType; 10775 if (const PointerType *ToTypePtr = 10776 PossiblyAFunctionType->getAs<PointerType>()) 10777 Ret = ToTypePtr->getPointeeType(); 10778 else if (const ReferenceType *ToTypeRef = 10779 PossiblyAFunctionType->getAs<ReferenceType>()) 10780 Ret = ToTypeRef->getPointeeType(); 10781 else if (const MemberPointerType *MemTypePtr = 10782 PossiblyAFunctionType->getAs<MemberPointerType>()) 10783 Ret = MemTypePtr->getPointeeType(); 10784 Ret = 10785 Context.getCanonicalType(Ret).getUnqualifiedType(); 10786 return Ret; 10787 } 10788 10789 static bool completeFunctionType(Sema &S, FunctionDecl *FD, SourceLocation Loc, 10790 bool Complain = true) { 10791 if (S.getLangOpts().CPlusPlus14 && FD->getReturnType()->isUndeducedType() && 10792 S.DeduceReturnType(FD, Loc, Complain)) 10793 return true; 10794 10795 auto *FPT = FD->getType()->castAs<FunctionProtoType>(); 10796 if (S.getLangOpts().CPlusPlus17 && 10797 isUnresolvedExceptionSpec(FPT->getExceptionSpecType()) && 10798 !S.ResolveExceptionSpec(Loc, FPT)) 10799 return true; 10800 10801 return false; 10802 } 10803 10804 namespace { 10805 // A helper class to help with address of function resolution 10806 // - allows us to avoid passing around all those ugly parameters 10807 class AddressOfFunctionResolver { 10808 Sema& S; 10809 Expr* SourceExpr; 10810 const QualType& TargetType; 10811 QualType TargetFunctionType; // Extracted function type from target type 10812 10813 bool Complain; 10814 //DeclAccessPair& ResultFunctionAccessPair; 10815 ASTContext& Context; 10816 10817 bool TargetTypeIsNonStaticMemberFunction; 10818 bool FoundNonTemplateFunction; 10819 bool StaticMemberFunctionFromBoundPointer; 10820 bool HasComplained; 10821 10822 OverloadExpr::FindResult OvlExprInfo; 10823 OverloadExpr *OvlExpr; 10824 TemplateArgumentListInfo OvlExplicitTemplateArgs; 10825 SmallVector<std::pair<DeclAccessPair, FunctionDecl*>, 4> Matches; 10826 TemplateSpecCandidateSet FailedCandidates; 10827 10828 public: 10829 AddressOfFunctionResolver(Sema &S, Expr *SourceExpr, 10830 const QualType &TargetType, bool Complain) 10831 : S(S), SourceExpr(SourceExpr), TargetType(TargetType), 10832 Complain(Complain), Context(S.getASTContext()), 10833 TargetTypeIsNonStaticMemberFunction( 10834 !!TargetType->getAs<MemberPointerType>()), 10835 FoundNonTemplateFunction(false), 10836 StaticMemberFunctionFromBoundPointer(false), 10837 HasComplained(false), 10838 OvlExprInfo(OverloadExpr::find(SourceExpr)), 10839 OvlExpr(OvlExprInfo.Expression), 10840 FailedCandidates(OvlExpr->getNameLoc(), /*ForTakingAddress=*/true) { 10841 ExtractUnqualifiedFunctionTypeFromTargetType(); 10842 10843 if (TargetFunctionType->isFunctionType()) { 10844 if (UnresolvedMemberExpr *UME = dyn_cast<UnresolvedMemberExpr>(OvlExpr)) 10845 if (!UME->isImplicitAccess() && 10846 !S.ResolveSingleFunctionTemplateSpecialization(UME)) 10847 StaticMemberFunctionFromBoundPointer = true; 10848 } else if (OvlExpr->hasExplicitTemplateArgs()) { 10849 DeclAccessPair dap; 10850 if (FunctionDecl *Fn = S.ResolveSingleFunctionTemplateSpecialization( 10851 OvlExpr, false, &dap)) { 10852 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Fn)) 10853 if (!Method->isStatic()) { 10854 // If the target type is a non-function type and the function found 10855 // is a non-static member function, pretend as if that was the 10856 // target, it's the only possible type to end up with. 10857 TargetTypeIsNonStaticMemberFunction = true; 10858 10859 // And skip adding the function if its not in the proper form. 10860 // We'll diagnose this due to an empty set of functions. 10861 if (!OvlExprInfo.HasFormOfMemberPointer) 10862 return; 10863 } 10864 10865 Matches.push_back(std::make_pair(dap, Fn)); 10866 } 10867 return; 10868 } 10869 10870 if (OvlExpr->hasExplicitTemplateArgs()) 10871 OvlExpr->copyTemplateArgumentsInto(OvlExplicitTemplateArgs); 10872 10873 if (FindAllFunctionsThatMatchTargetTypeExactly()) { 10874 // C++ [over.over]p4: 10875 // If more than one function is selected, [...] 10876 if (Matches.size() > 1 && !eliminiateSuboptimalOverloadCandidates()) { 10877 if (FoundNonTemplateFunction) 10878 EliminateAllTemplateMatches(); 10879 else 10880 EliminateAllExceptMostSpecializedTemplate(); 10881 } 10882 } 10883 10884 if (S.getLangOpts().CUDA && Matches.size() > 1) 10885 EliminateSuboptimalCudaMatches(); 10886 } 10887 10888 bool hasComplained() const { return HasComplained; } 10889 10890 private: 10891 bool candidateHasExactlyCorrectType(const FunctionDecl *FD) { 10892 QualType Discard; 10893 return Context.hasSameUnqualifiedType(TargetFunctionType, FD->getType()) || 10894 S.IsFunctionConversion(FD->getType(), TargetFunctionType, Discard); 10895 } 10896 10897 /// \return true if A is considered a better overload candidate for the 10898 /// desired type than B. 10899 bool isBetterCandidate(const FunctionDecl *A, const FunctionDecl *B) { 10900 // If A doesn't have exactly the correct type, we don't want to classify it 10901 // as "better" than anything else. This way, the user is required to 10902 // disambiguate for us if there are multiple candidates and no exact match. 10903 return candidateHasExactlyCorrectType(A) && 10904 (!candidateHasExactlyCorrectType(B) || 10905 compareEnableIfAttrs(S, A, B) == Comparison::Better); 10906 } 10907 10908 /// \return true if we were able to eliminate all but one overload candidate, 10909 /// false otherwise. 10910 bool eliminiateSuboptimalOverloadCandidates() { 10911 // Same algorithm as overload resolution -- one pass to pick the "best", 10912 // another pass to be sure that nothing is better than the best. 10913 auto Best = Matches.begin(); 10914 for (auto I = Matches.begin()+1, E = Matches.end(); I != E; ++I) 10915 if (isBetterCandidate(I->second, Best->second)) 10916 Best = I; 10917 10918 const FunctionDecl *BestFn = Best->second; 10919 auto IsBestOrInferiorToBest = [this, BestFn]( 10920 const std::pair<DeclAccessPair, FunctionDecl *> &Pair) { 10921 return BestFn == Pair.second || isBetterCandidate(BestFn, Pair.second); 10922 }; 10923 10924 // Note: We explicitly leave Matches unmodified if there isn't a clear best 10925 // option, so we can potentially give the user a better error 10926 if (!std::all_of(Matches.begin(), Matches.end(), IsBestOrInferiorToBest)) 10927 return false; 10928 Matches[0] = *Best; 10929 Matches.resize(1); 10930 return true; 10931 } 10932 10933 bool isTargetTypeAFunction() const { 10934 return TargetFunctionType->isFunctionType(); 10935 } 10936 10937 // [ToType] [Return] 10938 10939 // R (*)(A) --> R (A), IsNonStaticMemberFunction = false 10940 // R (&)(A) --> R (A), IsNonStaticMemberFunction = false 10941 // R (S::*)(A) --> R (A), IsNonStaticMemberFunction = true 10942 void inline ExtractUnqualifiedFunctionTypeFromTargetType() { 10943 TargetFunctionType = S.ExtractUnqualifiedFunctionType(TargetType); 10944 } 10945 10946 // return true if any matching specializations were found 10947 bool AddMatchingTemplateFunction(FunctionTemplateDecl* FunctionTemplate, 10948 const DeclAccessPair& CurAccessFunPair) { 10949 if (CXXMethodDecl *Method 10950 = dyn_cast<CXXMethodDecl>(FunctionTemplate->getTemplatedDecl())) { 10951 // Skip non-static function templates when converting to pointer, and 10952 // static when converting to member pointer. 10953 if (Method->isStatic() == TargetTypeIsNonStaticMemberFunction) 10954 return false; 10955 } 10956 else if (TargetTypeIsNonStaticMemberFunction) 10957 return false; 10958 10959 // C++ [over.over]p2: 10960 // If the name is a function template, template argument deduction is 10961 // done (14.8.2.2), and if the argument deduction succeeds, the 10962 // resulting template argument list is used to generate a single 10963 // function template specialization, which is added to the set of 10964 // overloaded functions considered. 10965 FunctionDecl *Specialization = nullptr; 10966 TemplateDeductionInfo Info(FailedCandidates.getLocation()); 10967 if (Sema::TemplateDeductionResult Result 10968 = S.DeduceTemplateArguments(FunctionTemplate, 10969 &OvlExplicitTemplateArgs, 10970 TargetFunctionType, Specialization, 10971 Info, /*IsAddressOfFunction*/true)) { 10972 // Make a note of the failed deduction for diagnostics. 10973 FailedCandidates.addCandidate() 10974 .set(CurAccessFunPair, FunctionTemplate->getTemplatedDecl(), 10975 MakeDeductionFailureInfo(Context, Result, Info)); 10976 return false; 10977 } 10978 10979 // Template argument deduction ensures that we have an exact match or 10980 // compatible pointer-to-function arguments that would be adjusted by ICS. 10981 // This function template specicalization works. 10982 assert(S.isSameOrCompatibleFunctionType( 10983 Context.getCanonicalType(Specialization->getType()), 10984 Context.getCanonicalType(TargetFunctionType))); 10985 10986 if (!S.checkAddressOfFunctionIsAvailable(Specialization)) 10987 return false; 10988 10989 Matches.push_back(std::make_pair(CurAccessFunPair, Specialization)); 10990 return true; 10991 } 10992 10993 bool AddMatchingNonTemplateFunction(NamedDecl* Fn, 10994 const DeclAccessPair& CurAccessFunPair) { 10995 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Fn)) { 10996 // Skip non-static functions when converting to pointer, and static 10997 // when converting to member pointer. 10998 if (Method->isStatic() == TargetTypeIsNonStaticMemberFunction) 10999 return false; 11000 } 11001 else if (TargetTypeIsNonStaticMemberFunction) 11002 return false; 11003 11004 if (FunctionDecl *FunDecl = dyn_cast<FunctionDecl>(Fn)) { 11005 if (S.getLangOpts().CUDA) 11006 if (FunctionDecl *Caller = dyn_cast<FunctionDecl>(S.CurContext)) 11007 if (!Caller->isImplicit() && !S.IsAllowedCUDACall(Caller, FunDecl)) 11008 return false; 11009 if (FunDecl->isMultiVersion()) { 11010 const auto *TA = FunDecl->getAttr<TargetAttr>(); 11011 assert(TA && "Multiversioned functions require a target attribute"); 11012 if (!TA->isDefaultVersion()) 11013 return false; 11014 } 11015 11016 // If any candidate has a placeholder return type, trigger its deduction 11017 // now. 11018 if (completeFunctionType(S, FunDecl, SourceExpr->getLocStart(), 11019 Complain)) { 11020 HasComplained |= Complain; 11021 return false; 11022 } 11023 11024 if (!S.checkAddressOfFunctionIsAvailable(FunDecl)) 11025 return false; 11026 11027 // If we're in C, we need to support types that aren't exactly identical. 11028 if (!S.getLangOpts().CPlusPlus || 11029 candidateHasExactlyCorrectType(FunDecl)) { 11030 Matches.push_back(std::make_pair( 11031 CurAccessFunPair, cast<FunctionDecl>(FunDecl->getCanonicalDecl()))); 11032 FoundNonTemplateFunction = true; 11033 return true; 11034 } 11035 } 11036 11037 return false; 11038 } 11039 11040 bool FindAllFunctionsThatMatchTargetTypeExactly() { 11041 bool Ret = false; 11042 11043 // If the overload expression doesn't have the form of a pointer to 11044 // member, don't try to convert it to a pointer-to-member type. 11045 if (IsInvalidFormOfPointerToMemberFunction()) 11046 return false; 11047 11048 for (UnresolvedSetIterator I = OvlExpr->decls_begin(), 11049 E = OvlExpr->decls_end(); 11050 I != E; ++I) { 11051 // Look through any using declarations to find the underlying function. 11052 NamedDecl *Fn = (*I)->getUnderlyingDecl(); 11053 11054 // C++ [over.over]p3: 11055 // Non-member functions and static member functions match 11056 // targets of type "pointer-to-function" or "reference-to-function." 11057 // Nonstatic member functions match targets of 11058 // type "pointer-to-member-function." 11059 // Note that according to DR 247, the containing class does not matter. 11060 if (FunctionTemplateDecl *FunctionTemplate 11061 = dyn_cast<FunctionTemplateDecl>(Fn)) { 11062 if (AddMatchingTemplateFunction(FunctionTemplate, I.getPair())) 11063 Ret = true; 11064 } 11065 // If we have explicit template arguments supplied, skip non-templates. 11066 else if (!OvlExpr->hasExplicitTemplateArgs() && 11067 AddMatchingNonTemplateFunction(Fn, I.getPair())) 11068 Ret = true; 11069 } 11070 assert(Ret || Matches.empty()); 11071 return Ret; 11072 } 11073 11074 void EliminateAllExceptMostSpecializedTemplate() { 11075 // [...] and any given function template specialization F1 is 11076 // eliminated if the set contains a second function template 11077 // specialization whose function template is more specialized 11078 // than the function template of F1 according to the partial 11079 // ordering rules of 14.5.5.2. 11080 11081 // The algorithm specified above is quadratic. We instead use a 11082 // two-pass algorithm (similar to the one used to identify the 11083 // best viable function in an overload set) that identifies the 11084 // best function template (if it exists). 11085 11086 UnresolvedSet<4> MatchesCopy; // TODO: avoid! 11087 for (unsigned I = 0, E = Matches.size(); I != E; ++I) 11088 MatchesCopy.addDecl(Matches[I].second, Matches[I].first.getAccess()); 11089 11090 // TODO: It looks like FailedCandidates does not serve much purpose 11091 // here, since the no_viable diagnostic has index 0. 11092 UnresolvedSetIterator Result = S.getMostSpecialized( 11093 MatchesCopy.begin(), MatchesCopy.end(), FailedCandidates, 11094 SourceExpr->getLocStart(), S.PDiag(), 11095 S.PDiag(diag::err_addr_ovl_ambiguous) 11096 << Matches[0].second->getDeclName(), 11097 S.PDiag(diag::note_ovl_candidate) 11098 << (unsigned)oc_function << (unsigned)ocs_described_template, 11099 Complain, TargetFunctionType); 11100 11101 if (Result != MatchesCopy.end()) { 11102 // Make it the first and only element 11103 Matches[0].first = Matches[Result - MatchesCopy.begin()].first; 11104 Matches[0].second = cast<FunctionDecl>(*Result); 11105 Matches.resize(1); 11106 } else 11107 HasComplained |= Complain; 11108 } 11109 11110 void EliminateAllTemplateMatches() { 11111 // [...] any function template specializations in the set are 11112 // eliminated if the set also contains a non-template function, [...] 11113 for (unsigned I = 0, N = Matches.size(); I != N; ) { 11114 if (Matches[I].second->getPrimaryTemplate() == nullptr) 11115 ++I; 11116 else { 11117 Matches[I] = Matches[--N]; 11118 Matches.resize(N); 11119 } 11120 } 11121 } 11122 11123 void EliminateSuboptimalCudaMatches() { 11124 S.EraseUnwantedCUDAMatches(dyn_cast<FunctionDecl>(S.CurContext), Matches); 11125 } 11126 11127 public: 11128 void ComplainNoMatchesFound() const { 11129 assert(Matches.empty()); 11130 S.Diag(OvlExpr->getLocStart(), diag::err_addr_ovl_no_viable) 11131 << OvlExpr->getName() << TargetFunctionType 11132 << OvlExpr->getSourceRange(); 11133 if (FailedCandidates.empty()) 11134 S.NoteAllOverloadCandidates(OvlExpr, TargetFunctionType, 11135 /*TakingAddress=*/true); 11136 else { 11137 // We have some deduction failure messages. Use them to diagnose 11138 // the function templates, and diagnose the non-template candidates 11139 // normally. 11140 for (UnresolvedSetIterator I = OvlExpr->decls_begin(), 11141 IEnd = OvlExpr->decls_end(); 11142 I != IEnd; ++I) 11143 if (FunctionDecl *Fun = 11144 dyn_cast<FunctionDecl>((*I)->getUnderlyingDecl())) 11145 if (!functionHasPassObjectSizeParams(Fun)) 11146 S.NoteOverloadCandidate(*I, Fun, TargetFunctionType, 11147 /*TakingAddress=*/true); 11148 FailedCandidates.NoteCandidates(S, OvlExpr->getLocStart()); 11149 } 11150 } 11151 11152 bool IsInvalidFormOfPointerToMemberFunction() const { 11153 return TargetTypeIsNonStaticMemberFunction && 11154 !OvlExprInfo.HasFormOfMemberPointer; 11155 } 11156 11157 void ComplainIsInvalidFormOfPointerToMemberFunction() const { 11158 // TODO: Should we condition this on whether any functions might 11159 // have matched, or is it more appropriate to do that in callers? 11160 // TODO: a fixit wouldn't hurt. 11161 S.Diag(OvlExpr->getNameLoc(), diag::err_addr_ovl_no_qualifier) 11162 << TargetType << OvlExpr->getSourceRange(); 11163 } 11164 11165 bool IsStaticMemberFunctionFromBoundPointer() const { 11166 return StaticMemberFunctionFromBoundPointer; 11167 } 11168 11169 void ComplainIsStaticMemberFunctionFromBoundPointer() const { 11170 S.Diag(OvlExpr->getLocStart(), 11171 diag::err_invalid_form_pointer_member_function) 11172 << OvlExpr->getSourceRange(); 11173 } 11174 11175 void ComplainOfInvalidConversion() const { 11176 S.Diag(OvlExpr->getLocStart(), diag::err_addr_ovl_not_func_ptrref) 11177 << OvlExpr->getName() << TargetType; 11178 } 11179 11180 void ComplainMultipleMatchesFound() const { 11181 assert(Matches.size() > 1); 11182 S.Diag(OvlExpr->getLocStart(), diag::err_addr_ovl_ambiguous) 11183 << OvlExpr->getName() 11184 << OvlExpr->getSourceRange(); 11185 S.NoteAllOverloadCandidates(OvlExpr, TargetFunctionType, 11186 /*TakingAddress=*/true); 11187 } 11188 11189 bool hadMultipleCandidates() const { return (OvlExpr->getNumDecls() > 1); } 11190 11191 int getNumMatches() const { return Matches.size(); } 11192 11193 FunctionDecl* getMatchingFunctionDecl() const { 11194 if (Matches.size() != 1) return nullptr; 11195 return Matches[0].second; 11196 } 11197 11198 const DeclAccessPair* getMatchingFunctionAccessPair() const { 11199 if (Matches.size() != 1) return nullptr; 11200 return &Matches[0].first; 11201 } 11202 }; 11203 } 11204 11205 /// ResolveAddressOfOverloadedFunction - Try to resolve the address of 11206 /// an overloaded function (C++ [over.over]), where @p From is an 11207 /// expression with overloaded function type and @p ToType is the type 11208 /// we're trying to resolve to. For example: 11209 /// 11210 /// @code 11211 /// int f(double); 11212 /// int f(int); 11213 /// 11214 /// int (*pfd)(double) = f; // selects f(double) 11215 /// @endcode 11216 /// 11217 /// This routine returns the resulting FunctionDecl if it could be 11218 /// resolved, and NULL otherwise. When @p Complain is true, this 11219 /// routine will emit diagnostics if there is an error. 11220 FunctionDecl * 11221 Sema::ResolveAddressOfOverloadedFunction(Expr *AddressOfExpr, 11222 QualType TargetType, 11223 bool Complain, 11224 DeclAccessPair &FoundResult, 11225 bool *pHadMultipleCandidates) { 11226 assert(AddressOfExpr->getType() == Context.OverloadTy); 11227 11228 AddressOfFunctionResolver Resolver(*this, AddressOfExpr, TargetType, 11229 Complain); 11230 int NumMatches = Resolver.getNumMatches(); 11231 FunctionDecl *Fn = nullptr; 11232 bool ShouldComplain = Complain && !Resolver.hasComplained(); 11233 if (NumMatches == 0 && ShouldComplain) { 11234 if (Resolver.IsInvalidFormOfPointerToMemberFunction()) 11235 Resolver.ComplainIsInvalidFormOfPointerToMemberFunction(); 11236 else 11237 Resolver.ComplainNoMatchesFound(); 11238 } 11239 else if (NumMatches > 1 && ShouldComplain) 11240 Resolver.ComplainMultipleMatchesFound(); 11241 else if (NumMatches == 1) { 11242 Fn = Resolver.getMatchingFunctionDecl(); 11243 assert(Fn); 11244 if (auto *FPT = Fn->getType()->getAs<FunctionProtoType>()) 11245 ResolveExceptionSpec(AddressOfExpr->getExprLoc(), FPT); 11246 FoundResult = *Resolver.getMatchingFunctionAccessPair(); 11247 if (Complain) { 11248 if (Resolver.IsStaticMemberFunctionFromBoundPointer()) 11249 Resolver.ComplainIsStaticMemberFunctionFromBoundPointer(); 11250 else 11251 CheckAddressOfMemberAccess(AddressOfExpr, FoundResult); 11252 } 11253 } 11254 11255 if (pHadMultipleCandidates) 11256 *pHadMultipleCandidates = Resolver.hadMultipleCandidates(); 11257 return Fn; 11258 } 11259 11260 /// Given an expression that refers to an overloaded function, try to 11261 /// resolve that function to a single function that can have its address taken. 11262 /// This will modify `Pair` iff it returns non-null. 11263 /// 11264 /// This routine can only realistically succeed if all but one candidates in the 11265 /// overload set for SrcExpr cannot have their addresses taken. 11266 FunctionDecl * 11267 Sema::resolveAddressOfOnlyViableOverloadCandidate(Expr *E, 11268 DeclAccessPair &Pair) { 11269 OverloadExpr::FindResult R = OverloadExpr::find(E); 11270 OverloadExpr *Ovl = R.Expression; 11271 FunctionDecl *Result = nullptr; 11272 DeclAccessPair DAP; 11273 // Don't use the AddressOfResolver because we're specifically looking for 11274 // cases where we have one overload candidate that lacks 11275 // enable_if/pass_object_size/... 11276 for (auto I = Ovl->decls_begin(), E = Ovl->decls_end(); I != E; ++I) { 11277 auto *FD = dyn_cast<FunctionDecl>(I->getUnderlyingDecl()); 11278 if (!FD) 11279 return nullptr; 11280 11281 if (!checkAddressOfFunctionIsAvailable(FD)) 11282 continue; 11283 11284 // We have more than one result; quit. 11285 if (Result) 11286 return nullptr; 11287 DAP = I.getPair(); 11288 Result = FD; 11289 } 11290 11291 if (Result) 11292 Pair = DAP; 11293 return Result; 11294 } 11295 11296 /// Given an overloaded function, tries to turn it into a non-overloaded 11297 /// function reference using resolveAddressOfOnlyViableOverloadCandidate. This 11298 /// will perform access checks, diagnose the use of the resultant decl, and, if 11299 /// requested, potentially perform a function-to-pointer decay. 11300 /// 11301 /// Returns false if resolveAddressOfOnlyViableOverloadCandidate fails. 11302 /// Otherwise, returns true. This may emit diagnostics and return true. 11303 bool Sema::resolveAndFixAddressOfOnlyViableOverloadCandidate( 11304 ExprResult &SrcExpr, bool DoFunctionPointerConverion) { 11305 Expr *E = SrcExpr.get(); 11306 assert(E->getType() == Context.OverloadTy && "SrcExpr must be an overload"); 11307 11308 DeclAccessPair DAP; 11309 FunctionDecl *Found = resolveAddressOfOnlyViableOverloadCandidate(E, DAP); 11310 if (!Found) 11311 return false; 11312 11313 // Emitting multiple diagnostics for a function that is both inaccessible and 11314 // unavailable is consistent with our behavior elsewhere. So, always check 11315 // for both. 11316 DiagnoseUseOfDecl(Found, E->getExprLoc()); 11317 CheckAddressOfMemberAccess(E, DAP); 11318 Expr *Fixed = FixOverloadedFunctionReference(E, DAP, Found); 11319 if (DoFunctionPointerConverion && Fixed->getType()->isFunctionType()) 11320 SrcExpr = DefaultFunctionArrayConversion(Fixed, /*Diagnose=*/false); 11321 else 11322 SrcExpr = Fixed; 11323 return true; 11324 } 11325 11326 /// Given an expression that refers to an overloaded function, try to 11327 /// resolve that overloaded function expression down to a single function. 11328 /// 11329 /// This routine can only resolve template-ids that refer to a single function 11330 /// template, where that template-id refers to a single template whose template 11331 /// arguments are either provided by the template-id or have defaults, 11332 /// as described in C++0x [temp.arg.explicit]p3. 11333 /// 11334 /// If no template-ids are found, no diagnostics are emitted and NULL is 11335 /// returned. 11336 FunctionDecl * 11337 Sema::ResolveSingleFunctionTemplateSpecialization(OverloadExpr *ovl, 11338 bool Complain, 11339 DeclAccessPair *FoundResult) { 11340 // C++ [over.over]p1: 11341 // [...] [Note: any redundant set of parentheses surrounding the 11342 // overloaded function name is ignored (5.1). ] 11343 // C++ [over.over]p1: 11344 // [...] The overloaded function name can be preceded by the & 11345 // operator. 11346 11347 // If we didn't actually find any template-ids, we're done. 11348 if (!ovl->hasExplicitTemplateArgs()) 11349 return nullptr; 11350 11351 TemplateArgumentListInfo ExplicitTemplateArgs; 11352 ovl->copyTemplateArgumentsInto(ExplicitTemplateArgs); 11353 TemplateSpecCandidateSet FailedCandidates(ovl->getNameLoc()); 11354 11355 // Look through all of the overloaded functions, searching for one 11356 // whose type matches exactly. 11357 FunctionDecl *Matched = nullptr; 11358 for (UnresolvedSetIterator I = ovl->decls_begin(), 11359 E = ovl->decls_end(); I != E; ++I) { 11360 // C++0x [temp.arg.explicit]p3: 11361 // [...] In contexts where deduction is done and fails, or in contexts 11362 // where deduction is not done, if a template argument list is 11363 // specified and it, along with any default template arguments, 11364 // identifies a single function template specialization, then the 11365 // template-id is an lvalue for the function template specialization. 11366 FunctionTemplateDecl *FunctionTemplate 11367 = cast<FunctionTemplateDecl>((*I)->getUnderlyingDecl()); 11368 11369 // C++ [over.over]p2: 11370 // If the name is a function template, template argument deduction is 11371 // done (14.8.2.2), and if the argument deduction succeeds, the 11372 // resulting template argument list is used to generate a single 11373 // function template specialization, which is added to the set of 11374 // overloaded functions considered. 11375 FunctionDecl *Specialization = nullptr; 11376 TemplateDeductionInfo Info(FailedCandidates.getLocation()); 11377 if (TemplateDeductionResult Result 11378 = DeduceTemplateArguments(FunctionTemplate, &ExplicitTemplateArgs, 11379 Specialization, Info, 11380 /*IsAddressOfFunction*/true)) { 11381 // Make a note of the failed deduction for diagnostics. 11382 // TODO: Actually use the failed-deduction info? 11383 FailedCandidates.addCandidate() 11384 .set(I.getPair(), FunctionTemplate->getTemplatedDecl(), 11385 MakeDeductionFailureInfo(Context, Result, Info)); 11386 continue; 11387 } 11388 11389 assert(Specialization && "no specialization and no error?"); 11390 11391 // Multiple matches; we can't resolve to a single declaration. 11392 if (Matched) { 11393 if (Complain) { 11394 Diag(ovl->getExprLoc(), diag::err_addr_ovl_ambiguous) 11395 << ovl->getName(); 11396 NoteAllOverloadCandidates(ovl); 11397 } 11398 return nullptr; 11399 } 11400 11401 Matched = Specialization; 11402 if (FoundResult) *FoundResult = I.getPair(); 11403 } 11404 11405 if (Matched && 11406 completeFunctionType(*this, Matched, ovl->getExprLoc(), Complain)) 11407 return nullptr; 11408 11409 return Matched; 11410 } 11411 11412 // Resolve and fix an overloaded expression that can be resolved 11413 // because it identifies a single function template specialization. 11414 // 11415 // Last three arguments should only be supplied if Complain = true 11416 // 11417 // Return true if it was logically possible to so resolve the 11418 // expression, regardless of whether or not it succeeded. Always 11419 // returns true if 'complain' is set. 11420 bool Sema::ResolveAndFixSingleFunctionTemplateSpecialization( 11421 ExprResult &SrcExpr, bool doFunctionPointerConverion, 11422 bool complain, SourceRange OpRangeForComplaining, 11423 QualType DestTypeForComplaining, 11424 unsigned DiagIDForComplaining) { 11425 assert(SrcExpr.get()->getType() == Context.OverloadTy); 11426 11427 OverloadExpr::FindResult ovl = OverloadExpr::find(SrcExpr.get()); 11428 11429 DeclAccessPair found; 11430 ExprResult SingleFunctionExpression; 11431 if (FunctionDecl *fn = ResolveSingleFunctionTemplateSpecialization( 11432 ovl.Expression, /*complain*/ false, &found)) { 11433 if (DiagnoseUseOfDecl(fn, SrcExpr.get()->getLocStart())) { 11434 SrcExpr = ExprError(); 11435 return true; 11436 } 11437 11438 // It is only correct to resolve to an instance method if we're 11439 // resolving a form that's permitted to be a pointer to member. 11440 // Otherwise we'll end up making a bound member expression, which 11441 // is illegal in all the contexts we resolve like this. 11442 if (!ovl.HasFormOfMemberPointer && 11443 isa<CXXMethodDecl>(fn) && 11444 cast<CXXMethodDecl>(fn)->isInstance()) { 11445 if (!complain) return false; 11446 11447 Diag(ovl.Expression->getExprLoc(), 11448 diag::err_bound_member_function) 11449 << 0 << ovl.Expression->getSourceRange(); 11450 11451 // TODO: I believe we only end up here if there's a mix of 11452 // static and non-static candidates (otherwise the expression 11453 // would have 'bound member' type, not 'overload' type). 11454 // Ideally we would note which candidate was chosen and why 11455 // the static candidates were rejected. 11456 SrcExpr = ExprError(); 11457 return true; 11458 } 11459 11460 // Fix the expression to refer to 'fn'. 11461 SingleFunctionExpression = 11462 FixOverloadedFunctionReference(SrcExpr.get(), found, fn); 11463 11464 // If desired, do function-to-pointer decay. 11465 if (doFunctionPointerConverion) { 11466 SingleFunctionExpression = 11467 DefaultFunctionArrayLvalueConversion(SingleFunctionExpression.get()); 11468 if (SingleFunctionExpression.isInvalid()) { 11469 SrcExpr = ExprError(); 11470 return true; 11471 } 11472 } 11473 } 11474 11475 if (!SingleFunctionExpression.isUsable()) { 11476 if (complain) { 11477 Diag(OpRangeForComplaining.getBegin(), DiagIDForComplaining) 11478 << ovl.Expression->getName() 11479 << DestTypeForComplaining 11480 << OpRangeForComplaining 11481 << ovl.Expression->getQualifierLoc().getSourceRange(); 11482 NoteAllOverloadCandidates(SrcExpr.get()); 11483 11484 SrcExpr = ExprError(); 11485 return true; 11486 } 11487 11488 return false; 11489 } 11490 11491 SrcExpr = SingleFunctionExpression; 11492 return true; 11493 } 11494 11495 /// Add a single candidate to the overload set. 11496 static void AddOverloadedCallCandidate(Sema &S, 11497 DeclAccessPair FoundDecl, 11498 TemplateArgumentListInfo *ExplicitTemplateArgs, 11499 ArrayRef<Expr *> Args, 11500 OverloadCandidateSet &CandidateSet, 11501 bool PartialOverloading, 11502 bool KnownValid) { 11503 NamedDecl *Callee = FoundDecl.getDecl(); 11504 if (isa<UsingShadowDecl>(Callee)) 11505 Callee = cast<UsingShadowDecl>(Callee)->getTargetDecl(); 11506 11507 if (FunctionDecl *Func = dyn_cast<FunctionDecl>(Callee)) { 11508 if (ExplicitTemplateArgs) { 11509 assert(!KnownValid && "Explicit template arguments?"); 11510 return; 11511 } 11512 // Prevent ill-formed function decls to be added as overload candidates. 11513 if (!dyn_cast<FunctionProtoType>(Func->getType()->getAs<FunctionType>())) 11514 return; 11515 11516 S.AddOverloadCandidate(Func, FoundDecl, Args, CandidateSet, 11517 /*SuppressUsedConversions=*/false, 11518 PartialOverloading); 11519 return; 11520 } 11521 11522 if (FunctionTemplateDecl *FuncTemplate 11523 = dyn_cast<FunctionTemplateDecl>(Callee)) { 11524 S.AddTemplateOverloadCandidate(FuncTemplate, FoundDecl, 11525 ExplicitTemplateArgs, Args, CandidateSet, 11526 /*SuppressUsedConversions=*/false, 11527 PartialOverloading); 11528 return; 11529 } 11530 11531 assert(!KnownValid && "unhandled case in overloaded call candidate"); 11532 } 11533 11534 /// Add the overload candidates named by callee and/or found by argument 11535 /// dependent lookup to the given overload set. 11536 void Sema::AddOverloadedCallCandidates(UnresolvedLookupExpr *ULE, 11537 ArrayRef<Expr *> Args, 11538 OverloadCandidateSet &CandidateSet, 11539 bool PartialOverloading) { 11540 11541 #ifndef NDEBUG 11542 // Verify that ArgumentDependentLookup is consistent with the rules 11543 // in C++0x [basic.lookup.argdep]p3: 11544 // 11545 // Let X be the lookup set produced by unqualified lookup (3.4.1) 11546 // and let Y be the lookup set produced by argument dependent 11547 // lookup (defined as follows). If X contains 11548 // 11549 // -- a declaration of a class member, or 11550 // 11551 // -- a block-scope function declaration that is not a 11552 // using-declaration, or 11553 // 11554 // -- a declaration that is neither a function or a function 11555 // template 11556 // 11557 // then Y is empty. 11558 11559 if (ULE->requiresADL()) { 11560 for (UnresolvedLookupExpr::decls_iterator I = ULE->decls_begin(), 11561 E = ULE->decls_end(); I != E; ++I) { 11562 assert(!(*I)->getDeclContext()->isRecord()); 11563 assert(isa<UsingShadowDecl>(*I) || 11564 !(*I)->getDeclContext()->isFunctionOrMethod()); 11565 assert((*I)->getUnderlyingDecl()->isFunctionOrFunctionTemplate()); 11566 } 11567 } 11568 #endif 11569 11570 // It would be nice to avoid this copy. 11571 TemplateArgumentListInfo TABuffer; 11572 TemplateArgumentListInfo *ExplicitTemplateArgs = nullptr; 11573 if (ULE->hasExplicitTemplateArgs()) { 11574 ULE->copyTemplateArgumentsInto(TABuffer); 11575 ExplicitTemplateArgs = &TABuffer; 11576 } 11577 11578 for (UnresolvedLookupExpr::decls_iterator I = ULE->decls_begin(), 11579 E = ULE->decls_end(); I != E; ++I) 11580 AddOverloadedCallCandidate(*this, I.getPair(), ExplicitTemplateArgs, Args, 11581 CandidateSet, PartialOverloading, 11582 /*KnownValid*/ true); 11583 11584 if (ULE->requiresADL()) 11585 AddArgumentDependentLookupCandidates(ULE->getName(), ULE->getExprLoc(), 11586 Args, ExplicitTemplateArgs, 11587 CandidateSet, PartialOverloading); 11588 } 11589 11590 /// Determine whether a declaration with the specified name could be moved into 11591 /// a different namespace. 11592 static bool canBeDeclaredInNamespace(const DeclarationName &Name) { 11593 switch (Name.getCXXOverloadedOperator()) { 11594 case OO_New: case OO_Array_New: 11595 case OO_Delete: case OO_Array_Delete: 11596 return false; 11597 11598 default: 11599 return true; 11600 } 11601 } 11602 11603 /// Attempt to recover from an ill-formed use of a non-dependent name in a 11604 /// template, where the non-dependent name was declared after the template 11605 /// was defined. This is common in code written for a compilers which do not 11606 /// correctly implement two-stage name lookup. 11607 /// 11608 /// Returns true if a viable candidate was found and a diagnostic was issued. 11609 static bool 11610 DiagnoseTwoPhaseLookup(Sema &SemaRef, SourceLocation FnLoc, 11611 const CXXScopeSpec &SS, LookupResult &R, 11612 OverloadCandidateSet::CandidateSetKind CSK, 11613 TemplateArgumentListInfo *ExplicitTemplateArgs, 11614 ArrayRef<Expr *> Args, 11615 bool *DoDiagnoseEmptyLookup = nullptr) { 11616 if (!SemaRef.inTemplateInstantiation() || !SS.isEmpty()) 11617 return false; 11618 11619 for (DeclContext *DC = SemaRef.CurContext; DC; DC = DC->getParent()) { 11620 if (DC->isTransparentContext()) 11621 continue; 11622 11623 SemaRef.LookupQualifiedName(R, DC); 11624 11625 if (!R.empty()) { 11626 R.suppressDiagnostics(); 11627 11628 if (isa<CXXRecordDecl>(DC)) { 11629 // Don't diagnose names we find in classes; we get much better 11630 // diagnostics for these from DiagnoseEmptyLookup. 11631 R.clear(); 11632 if (DoDiagnoseEmptyLookup) 11633 *DoDiagnoseEmptyLookup = true; 11634 return false; 11635 } 11636 11637 OverloadCandidateSet Candidates(FnLoc, CSK); 11638 for (LookupResult::iterator I = R.begin(), E = R.end(); I != E; ++I) 11639 AddOverloadedCallCandidate(SemaRef, I.getPair(), 11640 ExplicitTemplateArgs, Args, 11641 Candidates, false, /*KnownValid*/ false); 11642 11643 OverloadCandidateSet::iterator Best; 11644 if (Candidates.BestViableFunction(SemaRef, FnLoc, Best) != OR_Success) { 11645 // No viable functions. Don't bother the user with notes for functions 11646 // which don't work and shouldn't be found anyway. 11647 R.clear(); 11648 return false; 11649 } 11650 11651 // Find the namespaces where ADL would have looked, and suggest 11652 // declaring the function there instead. 11653 Sema::AssociatedNamespaceSet AssociatedNamespaces; 11654 Sema::AssociatedClassSet AssociatedClasses; 11655 SemaRef.FindAssociatedClassesAndNamespaces(FnLoc, Args, 11656 AssociatedNamespaces, 11657 AssociatedClasses); 11658 Sema::AssociatedNamespaceSet SuggestedNamespaces; 11659 if (canBeDeclaredInNamespace(R.getLookupName())) { 11660 DeclContext *Std = SemaRef.getStdNamespace(); 11661 for (Sema::AssociatedNamespaceSet::iterator 11662 it = AssociatedNamespaces.begin(), 11663 end = AssociatedNamespaces.end(); it != end; ++it) { 11664 // Never suggest declaring a function within namespace 'std'. 11665 if (Std && Std->Encloses(*it)) 11666 continue; 11667 11668 // Never suggest declaring a function within a namespace with a 11669 // reserved name, like __gnu_cxx. 11670 NamespaceDecl *NS = dyn_cast<NamespaceDecl>(*it); 11671 if (NS && 11672 NS->getQualifiedNameAsString().find("__") != std::string::npos) 11673 continue; 11674 11675 SuggestedNamespaces.insert(*it); 11676 } 11677 } 11678 11679 SemaRef.Diag(R.getNameLoc(), diag::err_not_found_by_two_phase_lookup) 11680 << R.getLookupName(); 11681 if (SuggestedNamespaces.empty()) { 11682 SemaRef.Diag(Best->Function->getLocation(), 11683 diag::note_not_found_by_two_phase_lookup) 11684 << R.getLookupName() << 0; 11685 } else if (SuggestedNamespaces.size() == 1) { 11686 SemaRef.Diag(Best->Function->getLocation(), 11687 diag::note_not_found_by_two_phase_lookup) 11688 << R.getLookupName() << 1 << *SuggestedNamespaces.begin(); 11689 } else { 11690 // FIXME: It would be useful to list the associated namespaces here, 11691 // but the diagnostics infrastructure doesn't provide a way to produce 11692 // a localized representation of a list of items. 11693 SemaRef.Diag(Best->Function->getLocation(), 11694 diag::note_not_found_by_two_phase_lookup) 11695 << R.getLookupName() << 2; 11696 } 11697 11698 // Try to recover by calling this function. 11699 return true; 11700 } 11701 11702 R.clear(); 11703 } 11704 11705 return false; 11706 } 11707 11708 /// Attempt to recover from ill-formed use of a non-dependent operator in a 11709 /// template, where the non-dependent operator was declared after the template 11710 /// was defined. 11711 /// 11712 /// Returns true if a viable candidate was found and a diagnostic was issued. 11713 static bool 11714 DiagnoseTwoPhaseOperatorLookup(Sema &SemaRef, OverloadedOperatorKind Op, 11715 SourceLocation OpLoc, 11716 ArrayRef<Expr *> Args) { 11717 DeclarationName OpName = 11718 SemaRef.Context.DeclarationNames.getCXXOperatorName(Op); 11719 LookupResult R(SemaRef, OpName, OpLoc, Sema::LookupOperatorName); 11720 return DiagnoseTwoPhaseLookup(SemaRef, OpLoc, CXXScopeSpec(), R, 11721 OverloadCandidateSet::CSK_Operator, 11722 /*ExplicitTemplateArgs=*/nullptr, Args); 11723 } 11724 11725 namespace { 11726 class BuildRecoveryCallExprRAII { 11727 Sema &SemaRef; 11728 public: 11729 BuildRecoveryCallExprRAII(Sema &S) : SemaRef(S) { 11730 assert(SemaRef.IsBuildingRecoveryCallExpr == false); 11731 SemaRef.IsBuildingRecoveryCallExpr = true; 11732 } 11733 11734 ~BuildRecoveryCallExprRAII() { 11735 SemaRef.IsBuildingRecoveryCallExpr = false; 11736 } 11737 }; 11738 11739 } 11740 11741 static std::unique_ptr<CorrectionCandidateCallback> 11742 MakeValidator(Sema &SemaRef, MemberExpr *ME, size_t NumArgs, 11743 bool HasTemplateArgs, bool AllowTypoCorrection) { 11744 if (!AllowTypoCorrection) 11745 return llvm::make_unique<NoTypoCorrectionCCC>(); 11746 return llvm::make_unique<FunctionCallFilterCCC>(SemaRef, NumArgs, 11747 HasTemplateArgs, ME); 11748 } 11749 11750 /// Attempts to recover from a call where no functions were found. 11751 /// 11752 /// Returns true if new candidates were found. 11753 static ExprResult 11754 BuildRecoveryCallExpr(Sema &SemaRef, Scope *S, Expr *Fn, 11755 UnresolvedLookupExpr *ULE, 11756 SourceLocation LParenLoc, 11757 MutableArrayRef<Expr *> Args, 11758 SourceLocation RParenLoc, 11759 bool EmptyLookup, bool AllowTypoCorrection) { 11760 // Do not try to recover if it is already building a recovery call. 11761 // This stops infinite loops for template instantiations like 11762 // 11763 // template <typename T> auto foo(T t) -> decltype(foo(t)) {} 11764 // template <typename T> auto foo(T t) -> decltype(foo(&t)) {} 11765 // 11766 if (SemaRef.IsBuildingRecoveryCallExpr) 11767 return ExprError(); 11768 BuildRecoveryCallExprRAII RCE(SemaRef); 11769 11770 CXXScopeSpec SS; 11771 SS.Adopt(ULE->getQualifierLoc()); 11772 SourceLocation TemplateKWLoc = ULE->getTemplateKeywordLoc(); 11773 11774 TemplateArgumentListInfo TABuffer; 11775 TemplateArgumentListInfo *ExplicitTemplateArgs = nullptr; 11776 if (ULE->hasExplicitTemplateArgs()) { 11777 ULE->copyTemplateArgumentsInto(TABuffer); 11778 ExplicitTemplateArgs = &TABuffer; 11779 } 11780 11781 LookupResult R(SemaRef, ULE->getName(), ULE->getNameLoc(), 11782 Sema::LookupOrdinaryName); 11783 bool DoDiagnoseEmptyLookup = EmptyLookup; 11784 if (!DiagnoseTwoPhaseLookup(SemaRef, Fn->getExprLoc(), SS, R, 11785 OverloadCandidateSet::CSK_Normal, 11786 ExplicitTemplateArgs, Args, 11787 &DoDiagnoseEmptyLookup) && 11788 (!DoDiagnoseEmptyLookup || SemaRef.DiagnoseEmptyLookup( 11789 S, SS, R, 11790 MakeValidator(SemaRef, dyn_cast<MemberExpr>(Fn), Args.size(), 11791 ExplicitTemplateArgs != nullptr, AllowTypoCorrection), 11792 ExplicitTemplateArgs, Args))) 11793 return ExprError(); 11794 11795 assert(!R.empty() && "lookup results empty despite recovery"); 11796 11797 // If recovery created an ambiguity, just bail out. 11798 if (R.isAmbiguous()) { 11799 R.suppressDiagnostics(); 11800 return ExprError(); 11801 } 11802 11803 // Build an implicit member call if appropriate. Just drop the 11804 // casts and such from the call, we don't really care. 11805 ExprResult NewFn = ExprError(); 11806 if ((*R.begin())->isCXXClassMember()) 11807 NewFn = SemaRef.BuildPossibleImplicitMemberExpr(SS, TemplateKWLoc, R, 11808 ExplicitTemplateArgs, S); 11809 else if (ExplicitTemplateArgs || TemplateKWLoc.isValid()) 11810 NewFn = SemaRef.BuildTemplateIdExpr(SS, TemplateKWLoc, R, false, 11811 ExplicitTemplateArgs); 11812 else 11813 NewFn = SemaRef.BuildDeclarationNameExpr(SS, R, false); 11814 11815 if (NewFn.isInvalid()) 11816 return ExprError(); 11817 11818 // This shouldn't cause an infinite loop because we're giving it 11819 // an expression with viable lookup results, which should never 11820 // end up here. 11821 return SemaRef.ActOnCallExpr(/*Scope*/ nullptr, NewFn.get(), LParenLoc, 11822 MultiExprArg(Args.data(), Args.size()), 11823 RParenLoc); 11824 } 11825 11826 /// Constructs and populates an OverloadedCandidateSet from 11827 /// the given function. 11828 /// \returns true when an the ExprResult output parameter has been set. 11829 bool Sema::buildOverloadedCallSet(Scope *S, Expr *Fn, 11830 UnresolvedLookupExpr *ULE, 11831 MultiExprArg Args, 11832 SourceLocation RParenLoc, 11833 OverloadCandidateSet *CandidateSet, 11834 ExprResult *Result) { 11835 #ifndef NDEBUG 11836 if (ULE->requiresADL()) { 11837 // To do ADL, we must have found an unqualified name. 11838 assert(!ULE->getQualifier() && "qualified name with ADL"); 11839 11840 // We don't perform ADL for implicit declarations of builtins. 11841 // Verify that this was correctly set up. 11842 FunctionDecl *F; 11843 if (ULE->decls_begin() + 1 == ULE->decls_end() && 11844 (F = dyn_cast<FunctionDecl>(*ULE->decls_begin())) && 11845 F->getBuiltinID() && F->isImplicit()) 11846 llvm_unreachable("performing ADL for builtin"); 11847 11848 // We don't perform ADL in C. 11849 assert(getLangOpts().CPlusPlus && "ADL enabled in C"); 11850 } 11851 #endif 11852 11853 UnbridgedCastsSet UnbridgedCasts; 11854 if (checkArgPlaceholdersForOverload(*this, Args, UnbridgedCasts)) { 11855 *Result = ExprError(); 11856 return true; 11857 } 11858 11859 // Add the functions denoted by the callee to the set of candidate 11860 // functions, including those from argument-dependent lookup. 11861 AddOverloadedCallCandidates(ULE, Args, *CandidateSet); 11862 11863 if (getLangOpts().MSVCCompat && 11864 CurContext->isDependentContext() && !isSFINAEContext() && 11865 (isa<FunctionDecl>(CurContext) || isa<CXXRecordDecl>(CurContext))) { 11866 11867 OverloadCandidateSet::iterator Best; 11868 if (CandidateSet->empty() || 11869 CandidateSet->BestViableFunction(*this, Fn->getLocStart(), Best) == 11870 OR_No_Viable_Function) { 11871 // In Microsoft mode, if we are inside a template class member function then 11872 // create a type dependent CallExpr. The goal is to postpone name lookup 11873 // to instantiation time to be able to search into type dependent base 11874 // classes. 11875 CallExpr *CE = new (Context) CallExpr( 11876 Context, Fn, Args, Context.DependentTy, VK_RValue, RParenLoc); 11877 CE->setTypeDependent(true); 11878 CE->setValueDependent(true); 11879 CE->setInstantiationDependent(true); 11880 *Result = CE; 11881 return true; 11882 } 11883 } 11884 11885 if (CandidateSet->empty()) 11886 return false; 11887 11888 UnbridgedCasts.restore(); 11889 return false; 11890 } 11891 11892 /// FinishOverloadedCallExpr - given an OverloadCandidateSet, builds and returns 11893 /// the completed call expression. If overload resolution fails, emits 11894 /// diagnostics and returns ExprError() 11895 static ExprResult FinishOverloadedCallExpr(Sema &SemaRef, Scope *S, Expr *Fn, 11896 UnresolvedLookupExpr *ULE, 11897 SourceLocation LParenLoc, 11898 MultiExprArg Args, 11899 SourceLocation RParenLoc, 11900 Expr *ExecConfig, 11901 OverloadCandidateSet *CandidateSet, 11902 OverloadCandidateSet::iterator *Best, 11903 OverloadingResult OverloadResult, 11904 bool AllowTypoCorrection) { 11905 if (CandidateSet->empty()) 11906 return BuildRecoveryCallExpr(SemaRef, S, Fn, ULE, LParenLoc, Args, 11907 RParenLoc, /*EmptyLookup=*/true, 11908 AllowTypoCorrection); 11909 11910 switch (OverloadResult) { 11911 case OR_Success: { 11912 FunctionDecl *FDecl = (*Best)->Function; 11913 SemaRef.CheckUnresolvedLookupAccess(ULE, (*Best)->FoundDecl); 11914 if (SemaRef.DiagnoseUseOfDecl(FDecl, ULE->getNameLoc())) 11915 return ExprError(); 11916 Fn = SemaRef.FixOverloadedFunctionReference(Fn, (*Best)->FoundDecl, FDecl); 11917 return SemaRef.BuildResolvedCallExpr(Fn, FDecl, LParenLoc, Args, RParenLoc, 11918 ExecConfig); 11919 } 11920 11921 case OR_No_Viable_Function: { 11922 // Try to recover by looking for viable functions which the user might 11923 // have meant to call. 11924 ExprResult Recovery = BuildRecoveryCallExpr(SemaRef, S, Fn, ULE, LParenLoc, 11925 Args, RParenLoc, 11926 /*EmptyLookup=*/false, 11927 AllowTypoCorrection); 11928 if (!Recovery.isInvalid()) 11929 return Recovery; 11930 11931 // If the user passes in a function that we can't take the address of, we 11932 // generally end up emitting really bad error messages. Here, we attempt to 11933 // emit better ones. 11934 for (const Expr *Arg : Args) { 11935 if (!Arg->getType()->isFunctionType()) 11936 continue; 11937 if (auto *DRE = dyn_cast<DeclRefExpr>(Arg->IgnoreParenImpCasts())) { 11938 auto *FD = dyn_cast<FunctionDecl>(DRE->getDecl()); 11939 if (FD && 11940 !SemaRef.checkAddressOfFunctionIsAvailable(FD, /*Complain=*/true, 11941 Arg->getExprLoc())) 11942 return ExprError(); 11943 } 11944 } 11945 11946 SemaRef.Diag(Fn->getLocStart(), diag::err_ovl_no_viable_function_in_call) 11947 << ULE->getName() << Fn->getSourceRange(); 11948 CandidateSet->NoteCandidates(SemaRef, OCD_AllCandidates, Args); 11949 break; 11950 } 11951 11952 case OR_Ambiguous: 11953 SemaRef.Diag(Fn->getLocStart(), diag::err_ovl_ambiguous_call) 11954 << ULE->getName() << Fn->getSourceRange(); 11955 CandidateSet->NoteCandidates(SemaRef, OCD_ViableCandidates, Args); 11956 break; 11957 11958 case OR_Deleted: { 11959 SemaRef.Diag(Fn->getLocStart(), diag::err_ovl_deleted_call) 11960 << (*Best)->Function->isDeleted() 11961 << ULE->getName() 11962 << SemaRef.getDeletedOrUnavailableSuffix((*Best)->Function) 11963 << Fn->getSourceRange(); 11964 CandidateSet->NoteCandidates(SemaRef, OCD_AllCandidates, Args); 11965 11966 // We emitted an error for the unavailable/deleted function call but keep 11967 // the call in the AST. 11968 FunctionDecl *FDecl = (*Best)->Function; 11969 Fn = SemaRef.FixOverloadedFunctionReference(Fn, (*Best)->FoundDecl, FDecl); 11970 return SemaRef.BuildResolvedCallExpr(Fn, FDecl, LParenLoc, Args, RParenLoc, 11971 ExecConfig); 11972 } 11973 } 11974 11975 // Overload resolution failed. 11976 return ExprError(); 11977 } 11978 11979 static void markUnaddressableCandidatesUnviable(Sema &S, 11980 OverloadCandidateSet &CS) { 11981 for (auto I = CS.begin(), E = CS.end(); I != E; ++I) { 11982 if (I->Viable && 11983 !S.checkAddressOfFunctionIsAvailable(I->Function, /*Complain=*/false)) { 11984 I->Viable = false; 11985 I->FailureKind = ovl_fail_addr_not_available; 11986 } 11987 } 11988 } 11989 11990 /// BuildOverloadedCallExpr - Given the call expression that calls Fn 11991 /// (which eventually refers to the declaration Func) and the call 11992 /// arguments Args/NumArgs, attempt to resolve the function call down 11993 /// to a specific function. If overload resolution succeeds, returns 11994 /// the call expression produced by overload resolution. 11995 /// Otherwise, emits diagnostics and returns ExprError. 11996 ExprResult Sema::BuildOverloadedCallExpr(Scope *S, Expr *Fn, 11997 UnresolvedLookupExpr *ULE, 11998 SourceLocation LParenLoc, 11999 MultiExprArg Args, 12000 SourceLocation RParenLoc, 12001 Expr *ExecConfig, 12002 bool AllowTypoCorrection, 12003 bool CalleesAddressIsTaken) { 12004 OverloadCandidateSet CandidateSet(Fn->getExprLoc(), 12005 OverloadCandidateSet::CSK_Normal); 12006 ExprResult result; 12007 12008 if (buildOverloadedCallSet(S, Fn, ULE, Args, LParenLoc, &CandidateSet, 12009 &result)) 12010 return result; 12011 12012 // If the user handed us something like `(&Foo)(Bar)`, we need to ensure that 12013 // functions that aren't addressible are considered unviable. 12014 if (CalleesAddressIsTaken) 12015 markUnaddressableCandidatesUnviable(*this, CandidateSet); 12016 12017 OverloadCandidateSet::iterator Best; 12018 OverloadingResult OverloadResult = 12019 CandidateSet.BestViableFunction(*this, Fn->getLocStart(), Best); 12020 12021 return FinishOverloadedCallExpr(*this, S, Fn, ULE, LParenLoc, Args, 12022 RParenLoc, ExecConfig, &CandidateSet, 12023 &Best, OverloadResult, 12024 AllowTypoCorrection); 12025 } 12026 12027 static bool IsOverloaded(const UnresolvedSetImpl &Functions) { 12028 return Functions.size() > 1 || 12029 (Functions.size() == 1 && isa<FunctionTemplateDecl>(*Functions.begin())); 12030 } 12031 12032 /// Create a unary operation that may resolve to an overloaded 12033 /// operator. 12034 /// 12035 /// \param OpLoc The location of the operator itself (e.g., '*'). 12036 /// 12037 /// \param Opc The UnaryOperatorKind that describes this operator. 12038 /// 12039 /// \param Fns The set of non-member functions that will be 12040 /// considered by overload resolution. The caller needs to build this 12041 /// set based on the context using, e.g., 12042 /// LookupOverloadedOperatorName() and ArgumentDependentLookup(). This 12043 /// set should not contain any member functions; those will be added 12044 /// by CreateOverloadedUnaryOp(). 12045 /// 12046 /// \param Input The input argument. 12047 ExprResult 12048 Sema::CreateOverloadedUnaryOp(SourceLocation OpLoc, UnaryOperatorKind Opc, 12049 const UnresolvedSetImpl &Fns, 12050 Expr *Input, bool PerformADL) { 12051 OverloadedOperatorKind Op = UnaryOperator::getOverloadedOperator(Opc); 12052 assert(Op != OO_None && "Invalid opcode for overloaded unary operator"); 12053 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(Op); 12054 // TODO: provide better source location info. 12055 DeclarationNameInfo OpNameInfo(OpName, OpLoc); 12056 12057 if (checkPlaceholderForOverload(*this, Input)) 12058 return ExprError(); 12059 12060 Expr *Args[2] = { Input, nullptr }; 12061 unsigned NumArgs = 1; 12062 12063 // For post-increment and post-decrement, add the implicit '0' as 12064 // the second argument, so that we know this is a post-increment or 12065 // post-decrement. 12066 if (Opc == UO_PostInc || Opc == UO_PostDec) { 12067 llvm::APSInt Zero(Context.getTypeSize(Context.IntTy), false); 12068 Args[1] = IntegerLiteral::Create(Context, Zero, Context.IntTy, 12069 SourceLocation()); 12070 NumArgs = 2; 12071 } 12072 12073 ArrayRef<Expr *> ArgsArray(Args, NumArgs); 12074 12075 if (Input->isTypeDependent()) { 12076 if (Fns.empty()) 12077 return new (Context) UnaryOperator(Input, Opc, Context.DependentTy, 12078 VK_RValue, OK_Ordinary, OpLoc, false); 12079 12080 CXXRecordDecl *NamingClass = nullptr; // lookup ignores member operators 12081 UnresolvedLookupExpr *Fn 12082 = UnresolvedLookupExpr::Create(Context, NamingClass, 12083 NestedNameSpecifierLoc(), OpNameInfo, 12084 /*ADL*/ true, IsOverloaded(Fns), 12085 Fns.begin(), Fns.end()); 12086 return new (Context) 12087 CXXOperatorCallExpr(Context, Op, Fn, ArgsArray, Context.DependentTy, 12088 VK_RValue, OpLoc, FPOptions()); 12089 } 12090 12091 // Build an empty overload set. 12092 OverloadCandidateSet CandidateSet(OpLoc, OverloadCandidateSet::CSK_Operator); 12093 12094 // Add the candidates from the given function set. 12095 AddFunctionCandidates(Fns, ArgsArray, CandidateSet); 12096 12097 // Add operator candidates that are member functions. 12098 AddMemberOperatorCandidates(Op, OpLoc, ArgsArray, CandidateSet); 12099 12100 // Add candidates from ADL. 12101 if (PerformADL) { 12102 AddArgumentDependentLookupCandidates(OpName, OpLoc, ArgsArray, 12103 /*ExplicitTemplateArgs*/nullptr, 12104 CandidateSet); 12105 } 12106 12107 // Add builtin operator candidates. 12108 AddBuiltinOperatorCandidates(Op, OpLoc, ArgsArray, CandidateSet); 12109 12110 bool HadMultipleCandidates = (CandidateSet.size() > 1); 12111 12112 // Perform overload resolution. 12113 OverloadCandidateSet::iterator Best; 12114 switch (CandidateSet.BestViableFunction(*this, OpLoc, Best)) { 12115 case OR_Success: { 12116 // We found a built-in operator or an overloaded operator. 12117 FunctionDecl *FnDecl = Best->Function; 12118 12119 if (FnDecl) { 12120 Expr *Base = nullptr; 12121 // We matched an overloaded operator. Build a call to that 12122 // operator. 12123 12124 // Convert the arguments. 12125 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(FnDecl)) { 12126 CheckMemberOperatorAccess(OpLoc, Args[0], nullptr, Best->FoundDecl); 12127 12128 ExprResult InputRes = 12129 PerformObjectArgumentInitialization(Input, /*Qualifier=*/nullptr, 12130 Best->FoundDecl, Method); 12131 if (InputRes.isInvalid()) 12132 return ExprError(); 12133 Base = Input = InputRes.get(); 12134 } else { 12135 // Convert the arguments. 12136 ExprResult InputInit 12137 = PerformCopyInitialization(InitializedEntity::InitializeParameter( 12138 Context, 12139 FnDecl->getParamDecl(0)), 12140 SourceLocation(), 12141 Input); 12142 if (InputInit.isInvalid()) 12143 return ExprError(); 12144 Input = InputInit.get(); 12145 } 12146 12147 // Build the actual expression node. 12148 ExprResult FnExpr = CreateFunctionRefExpr(*this, FnDecl, Best->FoundDecl, 12149 Base, HadMultipleCandidates, 12150 OpLoc); 12151 if (FnExpr.isInvalid()) 12152 return ExprError(); 12153 12154 // Determine the result type. 12155 QualType ResultTy = FnDecl->getReturnType(); 12156 ExprValueKind VK = Expr::getValueKindForType(ResultTy); 12157 ResultTy = ResultTy.getNonLValueExprType(Context); 12158 12159 Args[0] = Input; 12160 CallExpr *TheCall = 12161 new (Context) CXXOperatorCallExpr(Context, Op, FnExpr.get(), ArgsArray, 12162 ResultTy, VK, OpLoc, FPOptions()); 12163 12164 if (CheckCallReturnType(FnDecl->getReturnType(), OpLoc, TheCall, FnDecl)) 12165 return ExprError(); 12166 12167 if (CheckFunctionCall(FnDecl, TheCall, 12168 FnDecl->getType()->castAs<FunctionProtoType>())) 12169 return ExprError(); 12170 12171 return MaybeBindToTemporary(TheCall); 12172 } else { 12173 // We matched a built-in operator. Convert the arguments, then 12174 // break out so that we will build the appropriate built-in 12175 // operator node. 12176 ExprResult InputRes = PerformImplicitConversion( 12177 Input, Best->BuiltinParamTypes[0], Best->Conversions[0], AA_Passing); 12178 if (InputRes.isInvalid()) 12179 return ExprError(); 12180 Input = InputRes.get(); 12181 break; 12182 } 12183 } 12184 12185 case OR_No_Viable_Function: 12186 // This is an erroneous use of an operator which can be overloaded by 12187 // a non-member function. Check for non-member operators which were 12188 // defined too late to be candidates. 12189 if (DiagnoseTwoPhaseOperatorLookup(*this, Op, OpLoc, ArgsArray)) 12190 // FIXME: Recover by calling the found function. 12191 return ExprError(); 12192 12193 // No viable function; fall through to handling this as a 12194 // built-in operator, which will produce an error message for us. 12195 break; 12196 12197 case OR_Ambiguous: 12198 Diag(OpLoc, diag::err_ovl_ambiguous_oper_unary) 12199 << UnaryOperator::getOpcodeStr(Opc) 12200 << Input->getType() 12201 << Input->getSourceRange(); 12202 CandidateSet.NoteCandidates(*this, OCD_ViableCandidates, ArgsArray, 12203 UnaryOperator::getOpcodeStr(Opc), OpLoc); 12204 return ExprError(); 12205 12206 case OR_Deleted: 12207 Diag(OpLoc, diag::err_ovl_deleted_oper) 12208 << Best->Function->isDeleted() 12209 << UnaryOperator::getOpcodeStr(Opc) 12210 << getDeletedOrUnavailableSuffix(Best->Function) 12211 << Input->getSourceRange(); 12212 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, ArgsArray, 12213 UnaryOperator::getOpcodeStr(Opc), OpLoc); 12214 return ExprError(); 12215 } 12216 12217 // Either we found no viable overloaded operator or we matched a 12218 // built-in operator. In either case, fall through to trying to 12219 // build a built-in operation. 12220 return CreateBuiltinUnaryOp(OpLoc, Opc, Input); 12221 } 12222 12223 /// Create a binary operation that may resolve to an overloaded 12224 /// operator. 12225 /// 12226 /// \param OpLoc The location of the operator itself (e.g., '+'). 12227 /// 12228 /// \param Opc The BinaryOperatorKind that describes this operator. 12229 /// 12230 /// \param Fns The set of non-member functions that will be 12231 /// considered by overload resolution. The caller needs to build this 12232 /// set based on the context using, e.g., 12233 /// LookupOverloadedOperatorName() and ArgumentDependentLookup(). This 12234 /// set should not contain any member functions; those will be added 12235 /// by CreateOverloadedBinOp(). 12236 /// 12237 /// \param LHS Left-hand argument. 12238 /// \param RHS Right-hand argument. 12239 ExprResult 12240 Sema::CreateOverloadedBinOp(SourceLocation OpLoc, 12241 BinaryOperatorKind Opc, 12242 const UnresolvedSetImpl &Fns, 12243 Expr *LHS, Expr *RHS, bool PerformADL) { 12244 Expr *Args[2] = { LHS, RHS }; 12245 LHS=RHS=nullptr; // Please use only Args instead of LHS/RHS couple 12246 12247 OverloadedOperatorKind Op = BinaryOperator::getOverloadedOperator(Opc); 12248 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(Op); 12249 12250 // If either side is type-dependent, create an appropriate dependent 12251 // expression. 12252 if (Args[0]->isTypeDependent() || Args[1]->isTypeDependent()) { 12253 if (Fns.empty()) { 12254 // If there are no functions to store, just build a dependent 12255 // BinaryOperator or CompoundAssignment. 12256 if (Opc <= BO_Assign || Opc > BO_OrAssign) 12257 return new (Context) BinaryOperator( 12258 Args[0], Args[1], Opc, Context.DependentTy, VK_RValue, OK_Ordinary, 12259 OpLoc, FPFeatures); 12260 12261 return new (Context) CompoundAssignOperator( 12262 Args[0], Args[1], Opc, Context.DependentTy, VK_LValue, OK_Ordinary, 12263 Context.DependentTy, Context.DependentTy, OpLoc, 12264 FPFeatures); 12265 } 12266 12267 // FIXME: save results of ADL from here? 12268 CXXRecordDecl *NamingClass = nullptr; // lookup ignores member operators 12269 // TODO: provide better source location info in DNLoc component. 12270 DeclarationNameInfo OpNameInfo(OpName, OpLoc); 12271 UnresolvedLookupExpr *Fn 12272 = UnresolvedLookupExpr::Create(Context, NamingClass, 12273 NestedNameSpecifierLoc(), OpNameInfo, 12274 /*ADL*/PerformADL, IsOverloaded(Fns), 12275 Fns.begin(), Fns.end()); 12276 return new (Context) 12277 CXXOperatorCallExpr(Context, Op, Fn, Args, Context.DependentTy, 12278 VK_RValue, OpLoc, FPFeatures); 12279 } 12280 12281 // Always do placeholder-like conversions on the RHS. 12282 if (checkPlaceholderForOverload(*this, Args[1])) 12283 return ExprError(); 12284 12285 // Do placeholder-like conversion on the LHS; note that we should 12286 // not get here with a PseudoObject LHS. 12287 assert(Args[0]->getObjectKind() != OK_ObjCProperty); 12288 if (checkPlaceholderForOverload(*this, Args[0])) 12289 return ExprError(); 12290 12291 // If this is the assignment operator, we only perform overload resolution 12292 // if the left-hand side is a class or enumeration type. This is actually 12293 // a hack. The standard requires that we do overload resolution between the 12294 // various built-in candidates, but as DR507 points out, this can lead to 12295 // problems. So we do it this way, which pretty much follows what GCC does. 12296 // Note that we go the traditional code path for compound assignment forms. 12297 if (Opc == BO_Assign && !Args[0]->getType()->isOverloadableType()) 12298 return CreateBuiltinBinOp(OpLoc, Opc, Args[0], Args[1]); 12299 12300 // If this is the .* operator, which is not overloadable, just 12301 // create a built-in binary operator. 12302 if (Opc == BO_PtrMemD) 12303 return CreateBuiltinBinOp(OpLoc, Opc, Args[0], Args[1]); 12304 12305 // Build an empty overload set. 12306 OverloadCandidateSet CandidateSet(OpLoc, OverloadCandidateSet::CSK_Operator); 12307 12308 // Add the candidates from the given function set. 12309 AddFunctionCandidates(Fns, Args, CandidateSet); 12310 12311 // Add operator candidates that are member functions. 12312 AddMemberOperatorCandidates(Op, OpLoc, Args, CandidateSet); 12313 12314 // Add candidates from ADL. Per [over.match.oper]p2, this lookup is not 12315 // performed for an assignment operator (nor for operator[] nor operator->, 12316 // which don't get here). 12317 if (Opc != BO_Assign && PerformADL) 12318 AddArgumentDependentLookupCandidates(OpName, OpLoc, Args, 12319 /*ExplicitTemplateArgs*/ nullptr, 12320 CandidateSet); 12321 12322 // Add builtin operator candidates. 12323 AddBuiltinOperatorCandidates(Op, OpLoc, Args, CandidateSet); 12324 12325 bool HadMultipleCandidates = (CandidateSet.size() > 1); 12326 12327 // Perform overload resolution. 12328 OverloadCandidateSet::iterator Best; 12329 switch (CandidateSet.BestViableFunction(*this, OpLoc, Best)) { 12330 case OR_Success: { 12331 // We found a built-in operator or an overloaded operator. 12332 FunctionDecl *FnDecl = Best->Function; 12333 12334 if (FnDecl) { 12335 Expr *Base = nullptr; 12336 // We matched an overloaded operator. Build a call to that 12337 // operator. 12338 12339 // Convert the arguments. 12340 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(FnDecl)) { 12341 // Best->Access is only meaningful for class members. 12342 CheckMemberOperatorAccess(OpLoc, Args[0], Args[1], Best->FoundDecl); 12343 12344 ExprResult Arg1 = 12345 PerformCopyInitialization( 12346 InitializedEntity::InitializeParameter(Context, 12347 FnDecl->getParamDecl(0)), 12348 SourceLocation(), Args[1]); 12349 if (Arg1.isInvalid()) 12350 return ExprError(); 12351 12352 ExprResult Arg0 = 12353 PerformObjectArgumentInitialization(Args[0], /*Qualifier=*/nullptr, 12354 Best->FoundDecl, Method); 12355 if (Arg0.isInvalid()) 12356 return ExprError(); 12357 Base = Args[0] = Arg0.getAs<Expr>(); 12358 Args[1] = RHS = Arg1.getAs<Expr>(); 12359 } else { 12360 // Convert the arguments. 12361 ExprResult Arg0 = PerformCopyInitialization( 12362 InitializedEntity::InitializeParameter(Context, 12363 FnDecl->getParamDecl(0)), 12364 SourceLocation(), Args[0]); 12365 if (Arg0.isInvalid()) 12366 return ExprError(); 12367 12368 ExprResult Arg1 = 12369 PerformCopyInitialization( 12370 InitializedEntity::InitializeParameter(Context, 12371 FnDecl->getParamDecl(1)), 12372 SourceLocation(), Args[1]); 12373 if (Arg1.isInvalid()) 12374 return ExprError(); 12375 Args[0] = LHS = Arg0.getAs<Expr>(); 12376 Args[1] = RHS = Arg1.getAs<Expr>(); 12377 } 12378 12379 // Build the actual expression node. 12380 ExprResult FnExpr = CreateFunctionRefExpr(*this, FnDecl, 12381 Best->FoundDecl, Base, 12382 HadMultipleCandidates, OpLoc); 12383 if (FnExpr.isInvalid()) 12384 return ExprError(); 12385 12386 // Determine the result type. 12387 QualType ResultTy = FnDecl->getReturnType(); 12388 ExprValueKind VK = Expr::getValueKindForType(ResultTy); 12389 ResultTy = ResultTy.getNonLValueExprType(Context); 12390 12391 CXXOperatorCallExpr *TheCall = 12392 new (Context) CXXOperatorCallExpr(Context, Op, FnExpr.get(), 12393 Args, ResultTy, VK, OpLoc, 12394 FPFeatures); 12395 12396 if (CheckCallReturnType(FnDecl->getReturnType(), OpLoc, TheCall, 12397 FnDecl)) 12398 return ExprError(); 12399 12400 ArrayRef<const Expr *> ArgsArray(Args, 2); 12401 const Expr *ImplicitThis = nullptr; 12402 // Cut off the implicit 'this'. 12403 if (isa<CXXMethodDecl>(FnDecl)) { 12404 ImplicitThis = ArgsArray[0]; 12405 ArgsArray = ArgsArray.slice(1); 12406 } 12407 12408 // Check for a self move. 12409 if (Op == OO_Equal) 12410 DiagnoseSelfMove(Args[0], Args[1], OpLoc); 12411 12412 checkCall(FnDecl, nullptr, ImplicitThis, ArgsArray, 12413 isa<CXXMethodDecl>(FnDecl), OpLoc, TheCall->getSourceRange(), 12414 VariadicDoesNotApply); 12415 12416 return MaybeBindToTemporary(TheCall); 12417 } else { 12418 // We matched a built-in operator. Convert the arguments, then 12419 // break out so that we will build the appropriate built-in 12420 // operator node. 12421 ExprResult ArgsRes0 = 12422 PerformImplicitConversion(Args[0], Best->BuiltinParamTypes[0], 12423 Best->Conversions[0], AA_Passing); 12424 if (ArgsRes0.isInvalid()) 12425 return ExprError(); 12426 Args[0] = ArgsRes0.get(); 12427 12428 ExprResult ArgsRes1 = 12429 PerformImplicitConversion(Args[1], Best->BuiltinParamTypes[1], 12430 Best->Conversions[1], AA_Passing); 12431 if (ArgsRes1.isInvalid()) 12432 return ExprError(); 12433 Args[1] = ArgsRes1.get(); 12434 break; 12435 } 12436 } 12437 12438 case OR_No_Viable_Function: { 12439 // C++ [over.match.oper]p9: 12440 // If the operator is the operator , [...] and there are no 12441 // viable functions, then the operator is assumed to be the 12442 // built-in operator and interpreted according to clause 5. 12443 if (Opc == BO_Comma) 12444 break; 12445 12446 // For class as left operand for assignment or compound assignment 12447 // operator do not fall through to handling in built-in, but report that 12448 // no overloaded assignment operator found 12449 ExprResult Result = ExprError(); 12450 if (Args[0]->getType()->isRecordType() && 12451 Opc >= BO_Assign && Opc <= BO_OrAssign) { 12452 Diag(OpLoc, diag::err_ovl_no_viable_oper) 12453 << BinaryOperator::getOpcodeStr(Opc) 12454 << Args[0]->getSourceRange() << Args[1]->getSourceRange(); 12455 if (Args[0]->getType()->isIncompleteType()) { 12456 Diag(OpLoc, diag::note_assign_lhs_incomplete) 12457 << Args[0]->getType() 12458 << Args[0]->getSourceRange() << Args[1]->getSourceRange(); 12459 } 12460 } else { 12461 // This is an erroneous use of an operator which can be overloaded by 12462 // a non-member function. Check for non-member operators which were 12463 // defined too late to be candidates. 12464 if (DiagnoseTwoPhaseOperatorLookup(*this, Op, OpLoc, Args)) 12465 // FIXME: Recover by calling the found function. 12466 return ExprError(); 12467 12468 // No viable function; try to create a built-in operation, which will 12469 // produce an error. Then, show the non-viable candidates. 12470 Result = CreateBuiltinBinOp(OpLoc, Opc, Args[0], Args[1]); 12471 } 12472 assert(Result.isInvalid() && 12473 "C++ binary operator overloading is missing candidates!"); 12474 if (Result.isInvalid()) 12475 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args, 12476 BinaryOperator::getOpcodeStr(Opc), OpLoc); 12477 return Result; 12478 } 12479 12480 case OR_Ambiguous: 12481 Diag(OpLoc, diag::err_ovl_ambiguous_oper_binary) 12482 << BinaryOperator::getOpcodeStr(Opc) 12483 << Args[0]->getType() << Args[1]->getType() 12484 << Args[0]->getSourceRange() << Args[1]->getSourceRange(); 12485 CandidateSet.NoteCandidates(*this, OCD_ViableCandidates, Args, 12486 BinaryOperator::getOpcodeStr(Opc), OpLoc); 12487 return ExprError(); 12488 12489 case OR_Deleted: 12490 if (isImplicitlyDeleted(Best->Function)) { 12491 CXXMethodDecl *Method = cast<CXXMethodDecl>(Best->Function); 12492 Diag(OpLoc, diag::err_ovl_deleted_special_oper) 12493 << Context.getRecordType(Method->getParent()) 12494 << getSpecialMember(Method); 12495 12496 // The user probably meant to call this special member. Just 12497 // explain why it's deleted. 12498 NoteDeletedFunction(Method); 12499 return ExprError(); 12500 } else { 12501 Diag(OpLoc, diag::err_ovl_deleted_oper) 12502 << Best->Function->isDeleted() 12503 << BinaryOperator::getOpcodeStr(Opc) 12504 << getDeletedOrUnavailableSuffix(Best->Function) 12505 << Args[0]->getSourceRange() << Args[1]->getSourceRange(); 12506 } 12507 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args, 12508 BinaryOperator::getOpcodeStr(Opc), OpLoc); 12509 return ExprError(); 12510 } 12511 12512 // We matched a built-in operator; build it. 12513 return CreateBuiltinBinOp(OpLoc, Opc, Args[0], Args[1]); 12514 } 12515 12516 ExprResult 12517 Sema::CreateOverloadedArraySubscriptExpr(SourceLocation LLoc, 12518 SourceLocation RLoc, 12519 Expr *Base, Expr *Idx) { 12520 Expr *Args[2] = { Base, Idx }; 12521 DeclarationName OpName = 12522 Context.DeclarationNames.getCXXOperatorName(OO_Subscript); 12523 12524 // If either side is type-dependent, create an appropriate dependent 12525 // expression. 12526 if (Args[0]->isTypeDependent() || Args[1]->isTypeDependent()) { 12527 12528 CXXRecordDecl *NamingClass = nullptr; // lookup ignores member operators 12529 // CHECKME: no 'operator' keyword? 12530 DeclarationNameInfo OpNameInfo(OpName, LLoc); 12531 OpNameInfo.setCXXOperatorNameRange(SourceRange(LLoc, RLoc)); 12532 UnresolvedLookupExpr *Fn 12533 = UnresolvedLookupExpr::Create(Context, NamingClass, 12534 NestedNameSpecifierLoc(), OpNameInfo, 12535 /*ADL*/ true, /*Overloaded*/ false, 12536 UnresolvedSetIterator(), 12537 UnresolvedSetIterator()); 12538 // Can't add any actual overloads yet 12539 12540 return new (Context) 12541 CXXOperatorCallExpr(Context, OO_Subscript, Fn, Args, 12542 Context.DependentTy, VK_RValue, RLoc, FPOptions()); 12543 } 12544 12545 // Handle placeholders on both operands. 12546 if (checkPlaceholderForOverload(*this, Args[0])) 12547 return ExprError(); 12548 if (checkPlaceholderForOverload(*this, Args[1])) 12549 return ExprError(); 12550 12551 // Build an empty overload set. 12552 OverloadCandidateSet CandidateSet(LLoc, OverloadCandidateSet::CSK_Operator); 12553 12554 // Subscript can only be overloaded as a member function. 12555 12556 // Add operator candidates that are member functions. 12557 AddMemberOperatorCandidates(OO_Subscript, LLoc, Args, CandidateSet); 12558 12559 // Add builtin operator candidates. 12560 AddBuiltinOperatorCandidates(OO_Subscript, LLoc, Args, CandidateSet); 12561 12562 bool HadMultipleCandidates = (CandidateSet.size() > 1); 12563 12564 // Perform overload resolution. 12565 OverloadCandidateSet::iterator Best; 12566 switch (CandidateSet.BestViableFunction(*this, LLoc, Best)) { 12567 case OR_Success: { 12568 // We found a built-in operator or an overloaded operator. 12569 FunctionDecl *FnDecl = Best->Function; 12570 12571 if (FnDecl) { 12572 // We matched an overloaded operator. Build a call to that 12573 // operator. 12574 12575 CheckMemberOperatorAccess(LLoc, Args[0], Args[1], Best->FoundDecl); 12576 12577 // Convert the arguments. 12578 CXXMethodDecl *Method = cast<CXXMethodDecl>(FnDecl); 12579 ExprResult Arg0 = 12580 PerformObjectArgumentInitialization(Args[0], /*Qualifier=*/nullptr, 12581 Best->FoundDecl, Method); 12582 if (Arg0.isInvalid()) 12583 return ExprError(); 12584 Args[0] = Arg0.get(); 12585 12586 // Convert the arguments. 12587 ExprResult InputInit 12588 = PerformCopyInitialization(InitializedEntity::InitializeParameter( 12589 Context, 12590 FnDecl->getParamDecl(0)), 12591 SourceLocation(), 12592 Args[1]); 12593 if (InputInit.isInvalid()) 12594 return ExprError(); 12595 12596 Args[1] = InputInit.getAs<Expr>(); 12597 12598 // Build the actual expression node. 12599 DeclarationNameInfo OpLocInfo(OpName, LLoc); 12600 OpLocInfo.setCXXOperatorNameRange(SourceRange(LLoc, RLoc)); 12601 ExprResult FnExpr = CreateFunctionRefExpr(*this, FnDecl, 12602 Best->FoundDecl, 12603 Base, 12604 HadMultipleCandidates, 12605 OpLocInfo.getLoc(), 12606 OpLocInfo.getInfo()); 12607 if (FnExpr.isInvalid()) 12608 return ExprError(); 12609 12610 // Determine the result type 12611 QualType ResultTy = FnDecl->getReturnType(); 12612 ExprValueKind VK = Expr::getValueKindForType(ResultTy); 12613 ResultTy = ResultTy.getNonLValueExprType(Context); 12614 12615 CXXOperatorCallExpr *TheCall = 12616 new (Context) CXXOperatorCallExpr(Context, OO_Subscript, 12617 FnExpr.get(), Args, 12618 ResultTy, VK, RLoc, 12619 FPOptions()); 12620 12621 if (CheckCallReturnType(FnDecl->getReturnType(), LLoc, TheCall, FnDecl)) 12622 return ExprError(); 12623 12624 if (CheckFunctionCall(Method, TheCall, 12625 Method->getType()->castAs<FunctionProtoType>())) 12626 return ExprError(); 12627 12628 return MaybeBindToTemporary(TheCall); 12629 } else { 12630 // We matched a built-in operator. Convert the arguments, then 12631 // break out so that we will build the appropriate built-in 12632 // operator node. 12633 ExprResult ArgsRes0 = 12634 PerformImplicitConversion(Args[0], Best->BuiltinParamTypes[0], 12635 Best->Conversions[0], AA_Passing); 12636 if (ArgsRes0.isInvalid()) 12637 return ExprError(); 12638 Args[0] = ArgsRes0.get(); 12639 12640 ExprResult ArgsRes1 = 12641 PerformImplicitConversion(Args[1], Best->BuiltinParamTypes[1], 12642 Best->Conversions[1], AA_Passing); 12643 if (ArgsRes1.isInvalid()) 12644 return ExprError(); 12645 Args[1] = ArgsRes1.get(); 12646 12647 break; 12648 } 12649 } 12650 12651 case OR_No_Viable_Function: { 12652 if (CandidateSet.empty()) 12653 Diag(LLoc, diag::err_ovl_no_oper) 12654 << Args[0]->getType() << /*subscript*/ 0 12655 << Args[0]->getSourceRange() << Args[1]->getSourceRange(); 12656 else 12657 Diag(LLoc, diag::err_ovl_no_viable_subscript) 12658 << Args[0]->getType() 12659 << Args[0]->getSourceRange() << Args[1]->getSourceRange(); 12660 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args, 12661 "[]", LLoc); 12662 return ExprError(); 12663 } 12664 12665 case OR_Ambiguous: 12666 Diag(LLoc, diag::err_ovl_ambiguous_oper_binary) 12667 << "[]" 12668 << Args[0]->getType() << Args[1]->getType() 12669 << Args[0]->getSourceRange() << Args[1]->getSourceRange(); 12670 CandidateSet.NoteCandidates(*this, OCD_ViableCandidates, Args, 12671 "[]", LLoc); 12672 return ExprError(); 12673 12674 case OR_Deleted: 12675 Diag(LLoc, diag::err_ovl_deleted_oper) 12676 << Best->Function->isDeleted() << "[]" 12677 << getDeletedOrUnavailableSuffix(Best->Function) 12678 << Args[0]->getSourceRange() << Args[1]->getSourceRange(); 12679 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args, 12680 "[]", LLoc); 12681 return ExprError(); 12682 } 12683 12684 // We matched a built-in operator; build it. 12685 return CreateBuiltinArraySubscriptExpr(Args[0], LLoc, Args[1], RLoc); 12686 } 12687 12688 /// BuildCallToMemberFunction - Build a call to a member 12689 /// function. MemExpr is the expression that refers to the member 12690 /// function (and includes the object parameter), Args/NumArgs are the 12691 /// arguments to the function call (not including the object 12692 /// parameter). The caller needs to validate that the member 12693 /// expression refers to a non-static member function or an overloaded 12694 /// member function. 12695 ExprResult 12696 Sema::BuildCallToMemberFunction(Scope *S, Expr *MemExprE, 12697 SourceLocation LParenLoc, 12698 MultiExprArg Args, 12699 SourceLocation RParenLoc) { 12700 assert(MemExprE->getType() == Context.BoundMemberTy || 12701 MemExprE->getType() == Context.OverloadTy); 12702 12703 // Dig out the member expression. This holds both the object 12704 // argument and the member function we're referring to. 12705 Expr *NakedMemExpr = MemExprE->IgnoreParens(); 12706 12707 // Determine whether this is a call to a pointer-to-member function. 12708 if (BinaryOperator *op = dyn_cast<BinaryOperator>(NakedMemExpr)) { 12709 assert(op->getType() == Context.BoundMemberTy); 12710 assert(op->getOpcode() == BO_PtrMemD || op->getOpcode() == BO_PtrMemI); 12711 12712 QualType fnType = 12713 op->getRHS()->getType()->castAs<MemberPointerType>()->getPointeeType(); 12714 12715 const FunctionProtoType *proto = fnType->castAs<FunctionProtoType>(); 12716 QualType resultType = proto->getCallResultType(Context); 12717 ExprValueKind valueKind = Expr::getValueKindForType(proto->getReturnType()); 12718 12719 // Check that the object type isn't more qualified than the 12720 // member function we're calling. 12721 Qualifiers funcQuals = Qualifiers::fromCVRMask(proto->getTypeQuals()); 12722 12723 QualType objectType = op->getLHS()->getType(); 12724 if (op->getOpcode() == BO_PtrMemI) 12725 objectType = objectType->castAs<PointerType>()->getPointeeType(); 12726 Qualifiers objectQuals = objectType.getQualifiers(); 12727 12728 Qualifiers difference = objectQuals - funcQuals; 12729 difference.removeObjCGCAttr(); 12730 difference.removeAddressSpace(); 12731 if (difference) { 12732 std::string qualsString = difference.getAsString(); 12733 Diag(LParenLoc, diag::err_pointer_to_member_call_drops_quals) 12734 << fnType.getUnqualifiedType() 12735 << qualsString 12736 << (qualsString.find(' ') == std::string::npos ? 1 : 2); 12737 } 12738 12739 CXXMemberCallExpr *call 12740 = new (Context) CXXMemberCallExpr(Context, MemExprE, Args, 12741 resultType, valueKind, RParenLoc); 12742 12743 if (CheckCallReturnType(proto->getReturnType(), op->getRHS()->getLocStart(), 12744 call, nullptr)) 12745 return ExprError(); 12746 12747 if (ConvertArgumentsForCall(call, op, nullptr, proto, Args, RParenLoc)) 12748 return ExprError(); 12749 12750 if (CheckOtherCall(call, proto)) 12751 return ExprError(); 12752 12753 return MaybeBindToTemporary(call); 12754 } 12755 12756 if (isa<CXXPseudoDestructorExpr>(NakedMemExpr)) 12757 return new (Context) 12758 CallExpr(Context, MemExprE, Args, Context.VoidTy, VK_RValue, RParenLoc); 12759 12760 UnbridgedCastsSet UnbridgedCasts; 12761 if (checkArgPlaceholdersForOverload(*this, Args, UnbridgedCasts)) 12762 return ExprError(); 12763 12764 MemberExpr *MemExpr; 12765 CXXMethodDecl *Method = nullptr; 12766 DeclAccessPair FoundDecl = DeclAccessPair::make(nullptr, AS_public); 12767 NestedNameSpecifier *Qualifier = nullptr; 12768 if (isa<MemberExpr>(NakedMemExpr)) { 12769 MemExpr = cast<MemberExpr>(NakedMemExpr); 12770 Method = cast<CXXMethodDecl>(MemExpr->getMemberDecl()); 12771 FoundDecl = MemExpr->getFoundDecl(); 12772 Qualifier = MemExpr->getQualifier(); 12773 UnbridgedCasts.restore(); 12774 } else { 12775 UnresolvedMemberExpr *UnresExpr = cast<UnresolvedMemberExpr>(NakedMemExpr); 12776 Qualifier = UnresExpr->getQualifier(); 12777 12778 QualType ObjectType = UnresExpr->getBaseType(); 12779 Expr::Classification ObjectClassification 12780 = UnresExpr->isArrow()? Expr::Classification::makeSimpleLValue() 12781 : UnresExpr->getBase()->Classify(Context); 12782 12783 // Add overload candidates 12784 OverloadCandidateSet CandidateSet(UnresExpr->getMemberLoc(), 12785 OverloadCandidateSet::CSK_Normal); 12786 12787 // FIXME: avoid copy. 12788 TemplateArgumentListInfo TemplateArgsBuffer, *TemplateArgs = nullptr; 12789 if (UnresExpr->hasExplicitTemplateArgs()) { 12790 UnresExpr->copyTemplateArgumentsInto(TemplateArgsBuffer); 12791 TemplateArgs = &TemplateArgsBuffer; 12792 } 12793 12794 for (UnresolvedMemberExpr::decls_iterator I = UnresExpr->decls_begin(), 12795 E = UnresExpr->decls_end(); I != E; ++I) { 12796 12797 NamedDecl *Func = *I; 12798 CXXRecordDecl *ActingDC = cast<CXXRecordDecl>(Func->getDeclContext()); 12799 if (isa<UsingShadowDecl>(Func)) 12800 Func = cast<UsingShadowDecl>(Func)->getTargetDecl(); 12801 12802 12803 // Microsoft supports direct constructor calls. 12804 if (getLangOpts().MicrosoftExt && isa<CXXConstructorDecl>(Func)) { 12805 AddOverloadCandidate(cast<CXXConstructorDecl>(Func), I.getPair(), 12806 Args, CandidateSet); 12807 } else if ((Method = dyn_cast<CXXMethodDecl>(Func))) { 12808 // If explicit template arguments were provided, we can't call a 12809 // non-template member function. 12810 if (TemplateArgs) 12811 continue; 12812 12813 AddMethodCandidate(Method, I.getPair(), ActingDC, ObjectType, 12814 ObjectClassification, Args, CandidateSet, 12815 /*SuppressUserConversions=*/false); 12816 } else { 12817 AddMethodTemplateCandidate( 12818 cast<FunctionTemplateDecl>(Func), I.getPair(), ActingDC, 12819 TemplateArgs, ObjectType, ObjectClassification, Args, CandidateSet, 12820 /*SuppressUsedConversions=*/false); 12821 } 12822 } 12823 12824 DeclarationName DeclName = UnresExpr->getMemberName(); 12825 12826 UnbridgedCasts.restore(); 12827 12828 OverloadCandidateSet::iterator Best; 12829 switch (CandidateSet.BestViableFunction(*this, UnresExpr->getLocStart(), 12830 Best)) { 12831 case OR_Success: 12832 Method = cast<CXXMethodDecl>(Best->Function); 12833 FoundDecl = Best->FoundDecl; 12834 CheckUnresolvedMemberAccess(UnresExpr, Best->FoundDecl); 12835 if (DiagnoseUseOfDecl(Best->FoundDecl, UnresExpr->getNameLoc())) 12836 return ExprError(); 12837 // If FoundDecl is different from Method (such as if one is a template 12838 // and the other a specialization), make sure DiagnoseUseOfDecl is 12839 // called on both. 12840 // FIXME: This would be more comprehensively addressed by modifying 12841 // DiagnoseUseOfDecl to accept both the FoundDecl and the decl 12842 // being used. 12843 if (Method != FoundDecl.getDecl() && 12844 DiagnoseUseOfDecl(Method, UnresExpr->getNameLoc())) 12845 return ExprError(); 12846 break; 12847 12848 case OR_No_Viable_Function: 12849 Diag(UnresExpr->getMemberLoc(), 12850 diag::err_ovl_no_viable_member_function_in_call) 12851 << DeclName << MemExprE->getSourceRange(); 12852 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args); 12853 // FIXME: Leaking incoming expressions! 12854 return ExprError(); 12855 12856 case OR_Ambiguous: 12857 Diag(UnresExpr->getMemberLoc(), diag::err_ovl_ambiguous_member_call) 12858 << DeclName << MemExprE->getSourceRange(); 12859 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args); 12860 // FIXME: Leaking incoming expressions! 12861 return ExprError(); 12862 12863 case OR_Deleted: 12864 Diag(UnresExpr->getMemberLoc(), diag::err_ovl_deleted_member_call) 12865 << Best->Function->isDeleted() 12866 << DeclName 12867 << getDeletedOrUnavailableSuffix(Best->Function) 12868 << MemExprE->getSourceRange(); 12869 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args); 12870 // FIXME: Leaking incoming expressions! 12871 return ExprError(); 12872 } 12873 12874 MemExprE = FixOverloadedFunctionReference(MemExprE, FoundDecl, Method); 12875 12876 // If overload resolution picked a static member, build a 12877 // non-member call based on that function. 12878 if (Method->isStatic()) { 12879 return BuildResolvedCallExpr(MemExprE, Method, LParenLoc, Args, 12880 RParenLoc); 12881 } 12882 12883 MemExpr = cast<MemberExpr>(MemExprE->IgnoreParens()); 12884 } 12885 12886 QualType ResultType = Method->getReturnType(); 12887 ExprValueKind VK = Expr::getValueKindForType(ResultType); 12888 ResultType = ResultType.getNonLValueExprType(Context); 12889 12890 assert(Method && "Member call to something that isn't a method?"); 12891 CXXMemberCallExpr *TheCall = 12892 new (Context) CXXMemberCallExpr(Context, MemExprE, Args, 12893 ResultType, VK, RParenLoc); 12894 12895 // Check for a valid return type. 12896 if (CheckCallReturnType(Method->getReturnType(), MemExpr->getMemberLoc(), 12897 TheCall, Method)) 12898 return ExprError(); 12899 12900 // Convert the object argument (for a non-static member function call). 12901 // We only need to do this if there was actually an overload; otherwise 12902 // it was done at lookup. 12903 if (!Method->isStatic()) { 12904 ExprResult ObjectArg = 12905 PerformObjectArgumentInitialization(MemExpr->getBase(), Qualifier, 12906 FoundDecl, Method); 12907 if (ObjectArg.isInvalid()) 12908 return ExprError(); 12909 MemExpr->setBase(ObjectArg.get()); 12910 } 12911 12912 // Convert the rest of the arguments 12913 const FunctionProtoType *Proto = 12914 Method->getType()->getAs<FunctionProtoType>(); 12915 if (ConvertArgumentsForCall(TheCall, MemExpr, Method, Proto, Args, 12916 RParenLoc)) 12917 return ExprError(); 12918 12919 DiagnoseSentinelCalls(Method, LParenLoc, Args); 12920 12921 if (CheckFunctionCall(Method, TheCall, Proto)) 12922 return ExprError(); 12923 12924 // In the case the method to call was not selected by the overloading 12925 // resolution process, we still need to handle the enable_if attribute. Do 12926 // that here, so it will not hide previous -- and more relevant -- errors. 12927 if (auto *MemE = dyn_cast<MemberExpr>(NakedMemExpr)) { 12928 if (const EnableIfAttr *Attr = CheckEnableIf(Method, Args, true)) { 12929 Diag(MemE->getMemberLoc(), 12930 diag::err_ovl_no_viable_member_function_in_call) 12931 << Method << Method->getSourceRange(); 12932 Diag(Method->getLocation(), 12933 diag::note_ovl_candidate_disabled_by_function_cond_attr) 12934 << Attr->getCond()->getSourceRange() << Attr->getMessage(); 12935 return ExprError(); 12936 } 12937 } 12938 12939 if ((isa<CXXConstructorDecl>(CurContext) || 12940 isa<CXXDestructorDecl>(CurContext)) && 12941 TheCall->getMethodDecl()->isPure()) { 12942 const CXXMethodDecl *MD = TheCall->getMethodDecl(); 12943 12944 if (isa<CXXThisExpr>(MemExpr->getBase()->IgnoreParenCasts()) && 12945 MemExpr->performsVirtualDispatch(getLangOpts())) { 12946 Diag(MemExpr->getLocStart(), 12947 diag::warn_call_to_pure_virtual_member_function_from_ctor_dtor) 12948 << MD->getDeclName() << isa<CXXDestructorDecl>(CurContext) 12949 << MD->getParent()->getDeclName(); 12950 12951 Diag(MD->getLocStart(), diag::note_previous_decl) << MD->getDeclName(); 12952 if (getLangOpts().AppleKext) 12953 Diag(MemExpr->getLocStart(), 12954 diag::note_pure_qualified_call_kext) 12955 << MD->getParent()->getDeclName() 12956 << MD->getDeclName(); 12957 } 12958 } 12959 12960 if (CXXDestructorDecl *DD = 12961 dyn_cast<CXXDestructorDecl>(TheCall->getMethodDecl())) { 12962 // a->A::f() doesn't go through the vtable, except in AppleKext mode. 12963 bool CallCanBeVirtual = !MemExpr->hasQualifier() || getLangOpts().AppleKext; 12964 CheckVirtualDtorCall(DD, MemExpr->getLocStart(), /*IsDelete=*/false, 12965 CallCanBeVirtual, /*WarnOnNonAbstractTypes=*/true, 12966 MemExpr->getMemberLoc()); 12967 } 12968 12969 return MaybeBindToTemporary(TheCall); 12970 } 12971 12972 /// BuildCallToObjectOfClassType - Build a call to an object of class 12973 /// type (C++ [over.call.object]), which can end up invoking an 12974 /// overloaded function call operator (@c operator()) or performing a 12975 /// user-defined conversion on the object argument. 12976 ExprResult 12977 Sema::BuildCallToObjectOfClassType(Scope *S, Expr *Obj, 12978 SourceLocation LParenLoc, 12979 MultiExprArg Args, 12980 SourceLocation RParenLoc) { 12981 if (checkPlaceholderForOverload(*this, Obj)) 12982 return ExprError(); 12983 ExprResult Object = Obj; 12984 12985 UnbridgedCastsSet UnbridgedCasts; 12986 if (checkArgPlaceholdersForOverload(*this, Args, UnbridgedCasts)) 12987 return ExprError(); 12988 12989 assert(Object.get()->getType()->isRecordType() && 12990 "Requires object type argument"); 12991 const RecordType *Record = Object.get()->getType()->getAs<RecordType>(); 12992 12993 // C++ [over.call.object]p1: 12994 // If the primary-expression E in the function call syntax 12995 // evaluates to a class object of type "cv T", then the set of 12996 // candidate functions includes at least the function call 12997 // operators of T. The function call operators of T are obtained by 12998 // ordinary lookup of the name operator() in the context of 12999 // (E).operator(). 13000 OverloadCandidateSet CandidateSet(LParenLoc, 13001 OverloadCandidateSet::CSK_Operator); 13002 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(OO_Call); 13003 13004 if (RequireCompleteType(LParenLoc, Object.get()->getType(), 13005 diag::err_incomplete_object_call, Object.get())) 13006 return true; 13007 13008 LookupResult R(*this, OpName, LParenLoc, LookupOrdinaryName); 13009 LookupQualifiedName(R, Record->getDecl()); 13010 R.suppressDiagnostics(); 13011 13012 for (LookupResult::iterator Oper = R.begin(), OperEnd = R.end(); 13013 Oper != OperEnd; ++Oper) { 13014 AddMethodCandidate(Oper.getPair(), Object.get()->getType(), 13015 Object.get()->Classify(Context), Args, CandidateSet, 13016 /*SuppressUserConversions=*/false); 13017 } 13018 13019 // C++ [over.call.object]p2: 13020 // In addition, for each (non-explicit in C++0x) conversion function 13021 // declared in T of the form 13022 // 13023 // operator conversion-type-id () cv-qualifier; 13024 // 13025 // where cv-qualifier is the same cv-qualification as, or a 13026 // greater cv-qualification than, cv, and where conversion-type-id 13027 // denotes the type "pointer to function of (P1,...,Pn) returning 13028 // R", or the type "reference to pointer to function of 13029 // (P1,...,Pn) returning R", or the type "reference to function 13030 // of (P1,...,Pn) returning R", a surrogate call function [...] 13031 // is also considered as a candidate function. Similarly, 13032 // surrogate call functions are added to the set of candidate 13033 // functions for each conversion function declared in an 13034 // accessible base class provided the function is not hidden 13035 // within T by another intervening declaration. 13036 const auto &Conversions = 13037 cast<CXXRecordDecl>(Record->getDecl())->getVisibleConversionFunctions(); 13038 for (auto I = Conversions.begin(), E = Conversions.end(); I != E; ++I) { 13039 NamedDecl *D = *I; 13040 CXXRecordDecl *ActingContext = cast<CXXRecordDecl>(D->getDeclContext()); 13041 if (isa<UsingShadowDecl>(D)) 13042 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 13043 13044 // Skip over templated conversion functions; they aren't 13045 // surrogates. 13046 if (isa<FunctionTemplateDecl>(D)) 13047 continue; 13048 13049 CXXConversionDecl *Conv = cast<CXXConversionDecl>(D); 13050 if (!Conv->isExplicit()) { 13051 // Strip the reference type (if any) and then the pointer type (if 13052 // any) to get down to what might be a function type. 13053 QualType ConvType = Conv->getConversionType().getNonReferenceType(); 13054 if (const PointerType *ConvPtrType = ConvType->getAs<PointerType>()) 13055 ConvType = ConvPtrType->getPointeeType(); 13056 13057 if (const FunctionProtoType *Proto = ConvType->getAs<FunctionProtoType>()) 13058 { 13059 AddSurrogateCandidate(Conv, I.getPair(), ActingContext, Proto, 13060 Object.get(), Args, CandidateSet); 13061 } 13062 } 13063 } 13064 13065 bool HadMultipleCandidates = (CandidateSet.size() > 1); 13066 13067 // Perform overload resolution. 13068 OverloadCandidateSet::iterator Best; 13069 switch (CandidateSet.BestViableFunction(*this, Object.get()->getLocStart(), 13070 Best)) { 13071 case OR_Success: 13072 // Overload resolution succeeded; we'll build the appropriate call 13073 // below. 13074 break; 13075 13076 case OR_No_Viable_Function: 13077 if (CandidateSet.empty()) 13078 Diag(Object.get()->getLocStart(), diag::err_ovl_no_oper) 13079 << Object.get()->getType() << /*call*/ 1 13080 << Object.get()->getSourceRange(); 13081 else 13082 Diag(Object.get()->getLocStart(), 13083 diag::err_ovl_no_viable_object_call) 13084 << Object.get()->getType() << Object.get()->getSourceRange(); 13085 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args); 13086 break; 13087 13088 case OR_Ambiguous: 13089 Diag(Object.get()->getLocStart(), 13090 diag::err_ovl_ambiguous_object_call) 13091 << Object.get()->getType() << Object.get()->getSourceRange(); 13092 CandidateSet.NoteCandidates(*this, OCD_ViableCandidates, Args); 13093 break; 13094 13095 case OR_Deleted: 13096 Diag(Object.get()->getLocStart(), 13097 diag::err_ovl_deleted_object_call) 13098 << Best->Function->isDeleted() 13099 << Object.get()->getType() 13100 << getDeletedOrUnavailableSuffix(Best->Function) 13101 << Object.get()->getSourceRange(); 13102 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args); 13103 break; 13104 } 13105 13106 if (Best == CandidateSet.end()) 13107 return true; 13108 13109 UnbridgedCasts.restore(); 13110 13111 if (Best->Function == nullptr) { 13112 // Since there is no function declaration, this is one of the 13113 // surrogate candidates. Dig out the conversion function. 13114 CXXConversionDecl *Conv 13115 = cast<CXXConversionDecl>( 13116 Best->Conversions[0].UserDefined.ConversionFunction); 13117 13118 CheckMemberOperatorAccess(LParenLoc, Object.get(), nullptr, 13119 Best->FoundDecl); 13120 if (DiagnoseUseOfDecl(Best->FoundDecl, LParenLoc)) 13121 return ExprError(); 13122 assert(Conv == Best->FoundDecl.getDecl() && 13123 "Found Decl & conversion-to-functionptr should be same, right?!"); 13124 // We selected one of the surrogate functions that converts the 13125 // object parameter to a function pointer. Perform the conversion 13126 // on the object argument, then let ActOnCallExpr finish the job. 13127 13128 // Create an implicit member expr to refer to the conversion operator. 13129 // and then call it. 13130 ExprResult Call = BuildCXXMemberCallExpr(Object.get(), Best->FoundDecl, 13131 Conv, HadMultipleCandidates); 13132 if (Call.isInvalid()) 13133 return ExprError(); 13134 // Record usage of conversion in an implicit cast. 13135 Call = ImplicitCastExpr::Create(Context, Call.get()->getType(), 13136 CK_UserDefinedConversion, Call.get(), 13137 nullptr, VK_RValue); 13138 13139 return ActOnCallExpr(S, Call.get(), LParenLoc, Args, RParenLoc); 13140 } 13141 13142 CheckMemberOperatorAccess(LParenLoc, Object.get(), nullptr, Best->FoundDecl); 13143 13144 // We found an overloaded operator(). Build a CXXOperatorCallExpr 13145 // that calls this method, using Object for the implicit object 13146 // parameter and passing along the remaining arguments. 13147 CXXMethodDecl *Method = cast<CXXMethodDecl>(Best->Function); 13148 13149 // An error diagnostic has already been printed when parsing the declaration. 13150 if (Method->isInvalidDecl()) 13151 return ExprError(); 13152 13153 const FunctionProtoType *Proto = 13154 Method->getType()->getAs<FunctionProtoType>(); 13155 13156 unsigned NumParams = Proto->getNumParams(); 13157 13158 DeclarationNameInfo OpLocInfo( 13159 Context.DeclarationNames.getCXXOperatorName(OO_Call), LParenLoc); 13160 OpLocInfo.setCXXOperatorNameRange(SourceRange(LParenLoc, RParenLoc)); 13161 ExprResult NewFn = CreateFunctionRefExpr(*this, Method, Best->FoundDecl, 13162 Obj, HadMultipleCandidates, 13163 OpLocInfo.getLoc(), 13164 OpLocInfo.getInfo()); 13165 if (NewFn.isInvalid()) 13166 return true; 13167 13168 // Build the full argument list for the method call (the implicit object 13169 // parameter is placed at the beginning of the list). 13170 SmallVector<Expr *, 8> MethodArgs(Args.size() + 1); 13171 MethodArgs[0] = Object.get(); 13172 std::copy(Args.begin(), Args.end(), MethodArgs.begin() + 1); 13173 13174 // Once we've built TheCall, all of the expressions are properly 13175 // owned. 13176 QualType ResultTy = Method->getReturnType(); 13177 ExprValueKind VK = Expr::getValueKindForType(ResultTy); 13178 ResultTy = ResultTy.getNonLValueExprType(Context); 13179 13180 CXXOperatorCallExpr *TheCall = new (Context) 13181 CXXOperatorCallExpr(Context, OO_Call, NewFn.get(), MethodArgs, ResultTy, 13182 VK, RParenLoc, FPOptions()); 13183 13184 if (CheckCallReturnType(Method->getReturnType(), LParenLoc, TheCall, Method)) 13185 return true; 13186 13187 // We may have default arguments. If so, we need to allocate more 13188 // slots in the call for them. 13189 if (Args.size() < NumParams) 13190 TheCall->setNumArgs(Context, NumParams + 1); 13191 13192 bool IsError = false; 13193 13194 // Initialize the implicit object parameter. 13195 ExprResult ObjRes = 13196 PerformObjectArgumentInitialization(Object.get(), /*Qualifier=*/nullptr, 13197 Best->FoundDecl, Method); 13198 if (ObjRes.isInvalid()) 13199 IsError = true; 13200 else 13201 Object = ObjRes; 13202 TheCall->setArg(0, Object.get()); 13203 13204 // Check the argument types. 13205 for (unsigned i = 0; i != NumParams; i++) { 13206 Expr *Arg; 13207 if (i < Args.size()) { 13208 Arg = Args[i]; 13209 13210 // Pass the argument. 13211 13212 ExprResult InputInit 13213 = PerformCopyInitialization(InitializedEntity::InitializeParameter( 13214 Context, 13215 Method->getParamDecl(i)), 13216 SourceLocation(), Arg); 13217 13218 IsError |= InputInit.isInvalid(); 13219 Arg = InputInit.getAs<Expr>(); 13220 } else { 13221 ExprResult DefArg 13222 = BuildCXXDefaultArgExpr(LParenLoc, Method, Method->getParamDecl(i)); 13223 if (DefArg.isInvalid()) { 13224 IsError = true; 13225 break; 13226 } 13227 13228 Arg = DefArg.getAs<Expr>(); 13229 } 13230 13231 TheCall->setArg(i + 1, Arg); 13232 } 13233 13234 // If this is a variadic call, handle args passed through "...". 13235 if (Proto->isVariadic()) { 13236 // Promote the arguments (C99 6.5.2.2p7). 13237 for (unsigned i = NumParams, e = Args.size(); i < e; i++) { 13238 ExprResult Arg = DefaultVariadicArgumentPromotion(Args[i], VariadicMethod, 13239 nullptr); 13240 IsError |= Arg.isInvalid(); 13241 TheCall->setArg(i + 1, Arg.get()); 13242 } 13243 } 13244 13245 if (IsError) return true; 13246 13247 DiagnoseSentinelCalls(Method, LParenLoc, Args); 13248 13249 if (CheckFunctionCall(Method, TheCall, Proto)) 13250 return true; 13251 13252 return MaybeBindToTemporary(TheCall); 13253 } 13254 13255 /// BuildOverloadedArrowExpr - Build a call to an overloaded @c operator-> 13256 /// (if one exists), where @c Base is an expression of class type and 13257 /// @c Member is the name of the member we're trying to find. 13258 ExprResult 13259 Sema::BuildOverloadedArrowExpr(Scope *S, Expr *Base, SourceLocation OpLoc, 13260 bool *NoArrowOperatorFound) { 13261 assert(Base->getType()->isRecordType() && 13262 "left-hand side must have class type"); 13263 13264 if (checkPlaceholderForOverload(*this, Base)) 13265 return ExprError(); 13266 13267 SourceLocation Loc = Base->getExprLoc(); 13268 13269 // C++ [over.ref]p1: 13270 // 13271 // [...] An expression x->m is interpreted as (x.operator->())->m 13272 // for a class object x of type T if T::operator->() exists and if 13273 // the operator is selected as the best match function by the 13274 // overload resolution mechanism (13.3). 13275 DeclarationName OpName = 13276 Context.DeclarationNames.getCXXOperatorName(OO_Arrow); 13277 OverloadCandidateSet CandidateSet(Loc, OverloadCandidateSet::CSK_Operator); 13278 const RecordType *BaseRecord = Base->getType()->getAs<RecordType>(); 13279 13280 if (RequireCompleteType(Loc, Base->getType(), 13281 diag::err_typecheck_incomplete_tag, Base)) 13282 return ExprError(); 13283 13284 LookupResult R(*this, OpName, OpLoc, LookupOrdinaryName); 13285 LookupQualifiedName(R, BaseRecord->getDecl()); 13286 R.suppressDiagnostics(); 13287 13288 for (LookupResult::iterator Oper = R.begin(), OperEnd = R.end(); 13289 Oper != OperEnd; ++Oper) { 13290 AddMethodCandidate(Oper.getPair(), Base->getType(), Base->Classify(Context), 13291 None, CandidateSet, /*SuppressUserConversions=*/false); 13292 } 13293 13294 bool HadMultipleCandidates = (CandidateSet.size() > 1); 13295 13296 // Perform overload resolution. 13297 OverloadCandidateSet::iterator Best; 13298 switch (CandidateSet.BestViableFunction(*this, OpLoc, Best)) { 13299 case OR_Success: 13300 // Overload resolution succeeded; we'll build the call below. 13301 break; 13302 13303 case OR_No_Viable_Function: 13304 if (CandidateSet.empty()) { 13305 QualType BaseType = Base->getType(); 13306 if (NoArrowOperatorFound) { 13307 // Report this specific error to the caller instead of emitting a 13308 // diagnostic, as requested. 13309 *NoArrowOperatorFound = true; 13310 return ExprError(); 13311 } 13312 Diag(OpLoc, diag::err_typecheck_member_reference_arrow) 13313 << BaseType << Base->getSourceRange(); 13314 if (BaseType->isRecordType() && !BaseType->isPointerType()) { 13315 Diag(OpLoc, diag::note_typecheck_member_reference_suggestion) 13316 << FixItHint::CreateReplacement(OpLoc, "."); 13317 } 13318 } else 13319 Diag(OpLoc, diag::err_ovl_no_viable_oper) 13320 << "operator->" << Base->getSourceRange(); 13321 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Base); 13322 return ExprError(); 13323 13324 case OR_Ambiguous: 13325 Diag(OpLoc, diag::err_ovl_ambiguous_oper_unary) 13326 << "->" << Base->getType() << Base->getSourceRange(); 13327 CandidateSet.NoteCandidates(*this, OCD_ViableCandidates, Base); 13328 return ExprError(); 13329 13330 case OR_Deleted: 13331 Diag(OpLoc, diag::err_ovl_deleted_oper) 13332 << Best->Function->isDeleted() 13333 << "->" 13334 << getDeletedOrUnavailableSuffix(Best->Function) 13335 << Base->getSourceRange(); 13336 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Base); 13337 return ExprError(); 13338 } 13339 13340 CheckMemberOperatorAccess(OpLoc, Base, nullptr, Best->FoundDecl); 13341 13342 // Convert the object parameter. 13343 CXXMethodDecl *Method = cast<CXXMethodDecl>(Best->Function); 13344 ExprResult BaseResult = 13345 PerformObjectArgumentInitialization(Base, /*Qualifier=*/nullptr, 13346 Best->FoundDecl, Method); 13347 if (BaseResult.isInvalid()) 13348 return ExprError(); 13349 Base = BaseResult.get(); 13350 13351 // Build the operator call. 13352 ExprResult FnExpr = CreateFunctionRefExpr(*this, Method, Best->FoundDecl, 13353 Base, HadMultipleCandidates, OpLoc); 13354 if (FnExpr.isInvalid()) 13355 return ExprError(); 13356 13357 QualType ResultTy = Method->getReturnType(); 13358 ExprValueKind VK = Expr::getValueKindForType(ResultTy); 13359 ResultTy = ResultTy.getNonLValueExprType(Context); 13360 CXXOperatorCallExpr *TheCall = 13361 new (Context) CXXOperatorCallExpr(Context, OO_Arrow, FnExpr.get(), 13362 Base, ResultTy, VK, OpLoc, FPOptions()); 13363 13364 if (CheckCallReturnType(Method->getReturnType(), OpLoc, TheCall, Method)) 13365 return ExprError(); 13366 13367 if (CheckFunctionCall(Method, TheCall, 13368 Method->getType()->castAs<FunctionProtoType>())) 13369 return ExprError(); 13370 13371 return MaybeBindToTemporary(TheCall); 13372 } 13373 13374 /// BuildLiteralOperatorCall - Build a UserDefinedLiteral by creating a call to 13375 /// a literal operator described by the provided lookup results. 13376 ExprResult Sema::BuildLiteralOperatorCall(LookupResult &R, 13377 DeclarationNameInfo &SuffixInfo, 13378 ArrayRef<Expr*> Args, 13379 SourceLocation LitEndLoc, 13380 TemplateArgumentListInfo *TemplateArgs) { 13381 SourceLocation UDSuffixLoc = SuffixInfo.getCXXLiteralOperatorNameLoc(); 13382 13383 OverloadCandidateSet CandidateSet(UDSuffixLoc, 13384 OverloadCandidateSet::CSK_Normal); 13385 AddFunctionCandidates(R.asUnresolvedSet(), Args, CandidateSet, TemplateArgs, 13386 /*SuppressUserConversions=*/true); 13387 13388 bool HadMultipleCandidates = (CandidateSet.size() > 1); 13389 13390 // Perform overload resolution. This will usually be trivial, but might need 13391 // to perform substitutions for a literal operator template. 13392 OverloadCandidateSet::iterator Best; 13393 switch (CandidateSet.BestViableFunction(*this, UDSuffixLoc, Best)) { 13394 case OR_Success: 13395 case OR_Deleted: 13396 break; 13397 13398 case OR_No_Viable_Function: 13399 Diag(UDSuffixLoc, diag::err_ovl_no_viable_function_in_call) 13400 << R.getLookupName(); 13401 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Args); 13402 return ExprError(); 13403 13404 case OR_Ambiguous: 13405 Diag(R.getNameLoc(), diag::err_ovl_ambiguous_call) << R.getLookupName(); 13406 CandidateSet.NoteCandidates(*this, OCD_ViableCandidates, Args); 13407 return ExprError(); 13408 } 13409 13410 FunctionDecl *FD = Best->Function; 13411 ExprResult Fn = CreateFunctionRefExpr(*this, FD, Best->FoundDecl, 13412 nullptr, HadMultipleCandidates, 13413 SuffixInfo.getLoc(), 13414 SuffixInfo.getInfo()); 13415 if (Fn.isInvalid()) 13416 return true; 13417 13418 // Check the argument types. This should almost always be a no-op, except 13419 // that array-to-pointer decay is applied to string literals. 13420 Expr *ConvArgs[2]; 13421 for (unsigned ArgIdx = 0, N = Args.size(); ArgIdx != N; ++ArgIdx) { 13422 ExprResult InputInit = PerformCopyInitialization( 13423 InitializedEntity::InitializeParameter(Context, FD->getParamDecl(ArgIdx)), 13424 SourceLocation(), Args[ArgIdx]); 13425 if (InputInit.isInvalid()) 13426 return true; 13427 ConvArgs[ArgIdx] = InputInit.get(); 13428 } 13429 13430 QualType ResultTy = FD->getReturnType(); 13431 ExprValueKind VK = Expr::getValueKindForType(ResultTy); 13432 ResultTy = ResultTy.getNonLValueExprType(Context); 13433 13434 UserDefinedLiteral *UDL = 13435 new (Context) UserDefinedLiteral(Context, Fn.get(), 13436 llvm::makeArrayRef(ConvArgs, Args.size()), 13437 ResultTy, VK, LitEndLoc, UDSuffixLoc); 13438 13439 if (CheckCallReturnType(FD->getReturnType(), UDSuffixLoc, UDL, FD)) 13440 return ExprError(); 13441 13442 if (CheckFunctionCall(FD, UDL, nullptr)) 13443 return ExprError(); 13444 13445 return MaybeBindToTemporary(UDL); 13446 } 13447 13448 /// Build a call to 'begin' or 'end' for a C++11 for-range statement. If the 13449 /// given LookupResult is non-empty, it is assumed to describe a member which 13450 /// will be invoked. Otherwise, the function will be found via argument 13451 /// dependent lookup. 13452 /// CallExpr is set to a valid expression and FRS_Success returned on success, 13453 /// otherwise CallExpr is set to ExprError() and some non-success value 13454 /// is returned. 13455 Sema::ForRangeStatus 13456 Sema::BuildForRangeBeginEndCall(SourceLocation Loc, 13457 SourceLocation RangeLoc, 13458 const DeclarationNameInfo &NameInfo, 13459 LookupResult &MemberLookup, 13460 OverloadCandidateSet *CandidateSet, 13461 Expr *Range, ExprResult *CallExpr) { 13462 Scope *S = nullptr; 13463 13464 CandidateSet->clear(OverloadCandidateSet::CSK_Normal); 13465 if (!MemberLookup.empty()) { 13466 ExprResult MemberRef = 13467 BuildMemberReferenceExpr(Range, Range->getType(), Loc, 13468 /*IsPtr=*/false, CXXScopeSpec(), 13469 /*TemplateKWLoc=*/SourceLocation(), 13470 /*FirstQualifierInScope=*/nullptr, 13471 MemberLookup, 13472 /*TemplateArgs=*/nullptr, S); 13473 if (MemberRef.isInvalid()) { 13474 *CallExpr = ExprError(); 13475 return FRS_DiagnosticIssued; 13476 } 13477 *CallExpr = ActOnCallExpr(S, MemberRef.get(), Loc, None, Loc, nullptr); 13478 if (CallExpr->isInvalid()) { 13479 *CallExpr = ExprError(); 13480 return FRS_DiagnosticIssued; 13481 } 13482 } else { 13483 UnresolvedSet<0> FoundNames; 13484 UnresolvedLookupExpr *Fn = 13485 UnresolvedLookupExpr::Create(Context, /*NamingClass=*/nullptr, 13486 NestedNameSpecifierLoc(), NameInfo, 13487 /*NeedsADL=*/true, /*Overloaded=*/false, 13488 FoundNames.begin(), FoundNames.end()); 13489 13490 bool CandidateSetError = buildOverloadedCallSet(S, Fn, Fn, Range, Loc, 13491 CandidateSet, CallExpr); 13492 if (CandidateSet->empty() || CandidateSetError) { 13493 *CallExpr = ExprError(); 13494 return FRS_NoViableFunction; 13495 } 13496 OverloadCandidateSet::iterator Best; 13497 OverloadingResult OverloadResult = 13498 CandidateSet->BestViableFunction(*this, Fn->getLocStart(), Best); 13499 13500 if (OverloadResult == OR_No_Viable_Function) { 13501 *CallExpr = ExprError(); 13502 return FRS_NoViableFunction; 13503 } 13504 *CallExpr = FinishOverloadedCallExpr(*this, S, Fn, Fn, Loc, Range, 13505 Loc, nullptr, CandidateSet, &Best, 13506 OverloadResult, 13507 /*AllowTypoCorrection=*/false); 13508 if (CallExpr->isInvalid() || OverloadResult != OR_Success) { 13509 *CallExpr = ExprError(); 13510 return FRS_DiagnosticIssued; 13511 } 13512 } 13513 return FRS_Success; 13514 } 13515 13516 13517 /// FixOverloadedFunctionReference - E is an expression that refers to 13518 /// a C++ overloaded function (possibly with some parentheses and 13519 /// perhaps a '&' around it). We have resolved the overloaded function 13520 /// to the function declaration Fn, so patch up the expression E to 13521 /// refer (possibly indirectly) to Fn. Returns the new expr. 13522 Expr *Sema::FixOverloadedFunctionReference(Expr *E, DeclAccessPair Found, 13523 FunctionDecl *Fn) { 13524 if (ParenExpr *PE = dyn_cast<ParenExpr>(E)) { 13525 Expr *SubExpr = FixOverloadedFunctionReference(PE->getSubExpr(), 13526 Found, Fn); 13527 if (SubExpr == PE->getSubExpr()) 13528 return PE; 13529 13530 return new (Context) ParenExpr(PE->getLParen(), PE->getRParen(), SubExpr); 13531 } 13532 13533 if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) { 13534 Expr *SubExpr = FixOverloadedFunctionReference(ICE->getSubExpr(), 13535 Found, Fn); 13536 assert(Context.hasSameType(ICE->getSubExpr()->getType(), 13537 SubExpr->getType()) && 13538 "Implicit cast type cannot be determined from overload"); 13539 assert(ICE->path_empty() && "fixing up hierarchy conversion?"); 13540 if (SubExpr == ICE->getSubExpr()) 13541 return ICE; 13542 13543 return ImplicitCastExpr::Create(Context, ICE->getType(), 13544 ICE->getCastKind(), 13545 SubExpr, nullptr, 13546 ICE->getValueKind()); 13547 } 13548 13549 if (auto *GSE = dyn_cast<GenericSelectionExpr>(E)) { 13550 if (!GSE->isResultDependent()) { 13551 Expr *SubExpr = 13552 FixOverloadedFunctionReference(GSE->getResultExpr(), Found, Fn); 13553 if (SubExpr == GSE->getResultExpr()) 13554 return GSE; 13555 13556 // Replace the resulting type information before rebuilding the generic 13557 // selection expression. 13558 ArrayRef<Expr *> A = GSE->getAssocExprs(); 13559 SmallVector<Expr *, 4> AssocExprs(A.begin(), A.end()); 13560 unsigned ResultIdx = GSE->getResultIndex(); 13561 AssocExprs[ResultIdx] = SubExpr; 13562 13563 return new (Context) GenericSelectionExpr( 13564 Context, GSE->getGenericLoc(), GSE->getControllingExpr(), 13565 GSE->getAssocTypeSourceInfos(), AssocExprs, GSE->getDefaultLoc(), 13566 GSE->getRParenLoc(), GSE->containsUnexpandedParameterPack(), 13567 ResultIdx); 13568 } 13569 // Rather than fall through to the unreachable, return the original generic 13570 // selection expression. 13571 return GSE; 13572 } 13573 13574 if (UnaryOperator *UnOp = dyn_cast<UnaryOperator>(E)) { 13575 assert(UnOp->getOpcode() == UO_AddrOf && 13576 "Can only take the address of an overloaded function"); 13577 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Fn)) { 13578 if (Method->isStatic()) { 13579 // Do nothing: static member functions aren't any different 13580 // from non-member functions. 13581 } else { 13582 // Fix the subexpression, which really has to be an 13583 // UnresolvedLookupExpr holding an overloaded member function 13584 // or template. 13585 Expr *SubExpr = FixOverloadedFunctionReference(UnOp->getSubExpr(), 13586 Found, Fn); 13587 if (SubExpr == UnOp->getSubExpr()) 13588 return UnOp; 13589 13590 assert(isa<DeclRefExpr>(SubExpr) 13591 && "fixed to something other than a decl ref"); 13592 assert(cast<DeclRefExpr>(SubExpr)->getQualifier() 13593 && "fixed to a member ref with no nested name qualifier"); 13594 13595 // We have taken the address of a pointer to member 13596 // function. Perform the computation here so that we get the 13597 // appropriate pointer to member type. 13598 QualType ClassType 13599 = Context.getTypeDeclType(cast<RecordDecl>(Method->getDeclContext())); 13600 QualType MemPtrType 13601 = Context.getMemberPointerType(Fn->getType(), ClassType.getTypePtr()); 13602 // Under the MS ABI, lock down the inheritance model now. 13603 if (Context.getTargetInfo().getCXXABI().isMicrosoft()) 13604 (void)isCompleteType(UnOp->getOperatorLoc(), MemPtrType); 13605 13606 return new (Context) UnaryOperator(SubExpr, UO_AddrOf, MemPtrType, 13607 VK_RValue, OK_Ordinary, 13608 UnOp->getOperatorLoc(), false); 13609 } 13610 } 13611 Expr *SubExpr = FixOverloadedFunctionReference(UnOp->getSubExpr(), 13612 Found, Fn); 13613 if (SubExpr == UnOp->getSubExpr()) 13614 return UnOp; 13615 13616 return new (Context) UnaryOperator(SubExpr, UO_AddrOf, 13617 Context.getPointerType(SubExpr->getType()), 13618 VK_RValue, OK_Ordinary, 13619 UnOp->getOperatorLoc(), false); 13620 } 13621 13622 // C++ [except.spec]p17: 13623 // An exception-specification is considered to be needed when: 13624 // - in an expression the function is the unique lookup result or the 13625 // selected member of a set of overloaded functions 13626 if (auto *FPT = Fn->getType()->getAs<FunctionProtoType>()) 13627 ResolveExceptionSpec(E->getExprLoc(), FPT); 13628 13629 if (UnresolvedLookupExpr *ULE = dyn_cast<UnresolvedLookupExpr>(E)) { 13630 // FIXME: avoid copy. 13631 TemplateArgumentListInfo TemplateArgsBuffer, *TemplateArgs = nullptr; 13632 if (ULE->hasExplicitTemplateArgs()) { 13633 ULE->copyTemplateArgumentsInto(TemplateArgsBuffer); 13634 TemplateArgs = &TemplateArgsBuffer; 13635 } 13636 13637 DeclRefExpr *DRE = DeclRefExpr::Create(Context, 13638 ULE->getQualifierLoc(), 13639 ULE->getTemplateKeywordLoc(), 13640 Fn, 13641 /*enclosing*/ false, // FIXME? 13642 ULE->getNameLoc(), 13643 Fn->getType(), 13644 VK_LValue, 13645 Found.getDecl(), 13646 TemplateArgs); 13647 MarkDeclRefReferenced(DRE); 13648 DRE->setHadMultipleCandidates(ULE->getNumDecls() > 1); 13649 return DRE; 13650 } 13651 13652 if (UnresolvedMemberExpr *MemExpr = dyn_cast<UnresolvedMemberExpr>(E)) { 13653 // FIXME: avoid copy. 13654 TemplateArgumentListInfo TemplateArgsBuffer, *TemplateArgs = nullptr; 13655 if (MemExpr->hasExplicitTemplateArgs()) { 13656 MemExpr->copyTemplateArgumentsInto(TemplateArgsBuffer); 13657 TemplateArgs = &TemplateArgsBuffer; 13658 } 13659 13660 Expr *Base; 13661 13662 // If we're filling in a static method where we used to have an 13663 // implicit member access, rewrite to a simple decl ref. 13664 if (MemExpr->isImplicitAccess()) { 13665 if (cast<CXXMethodDecl>(Fn)->isStatic()) { 13666 DeclRefExpr *DRE = DeclRefExpr::Create(Context, 13667 MemExpr->getQualifierLoc(), 13668 MemExpr->getTemplateKeywordLoc(), 13669 Fn, 13670 /*enclosing*/ false, 13671 MemExpr->getMemberLoc(), 13672 Fn->getType(), 13673 VK_LValue, 13674 Found.getDecl(), 13675 TemplateArgs); 13676 MarkDeclRefReferenced(DRE); 13677 DRE->setHadMultipleCandidates(MemExpr->getNumDecls() > 1); 13678 return DRE; 13679 } else { 13680 SourceLocation Loc = MemExpr->getMemberLoc(); 13681 if (MemExpr->getQualifier()) 13682 Loc = MemExpr->getQualifierLoc().getBeginLoc(); 13683 CheckCXXThisCapture(Loc); 13684 Base = new (Context) CXXThisExpr(Loc, 13685 MemExpr->getBaseType(), 13686 /*isImplicit=*/true); 13687 } 13688 } else 13689 Base = MemExpr->getBase(); 13690 13691 ExprValueKind valueKind; 13692 QualType type; 13693 if (cast<CXXMethodDecl>(Fn)->isStatic()) { 13694 valueKind = VK_LValue; 13695 type = Fn->getType(); 13696 } else { 13697 valueKind = VK_RValue; 13698 type = Context.BoundMemberTy; 13699 } 13700 13701 MemberExpr *ME = MemberExpr::Create( 13702 Context, Base, MemExpr->isArrow(), MemExpr->getOperatorLoc(), 13703 MemExpr->getQualifierLoc(), MemExpr->getTemplateKeywordLoc(), Fn, Found, 13704 MemExpr->getMemberNameInfo(), TemplateArgs, type, valueKind, 13705 OK_Ordinary); 13706 ME->setHadMultipleCandidates(true); 13707 MarkMemberReferenced(ME); 13708 return ME; 13709 } 13710 13711 llvm_unreachable("Invalid reference to overloaded function"); 13712 } 13713 13714 ExprResult Sema::FixOverloadedFunctionReference(ExprResult E, 13715 DeclAccessPair Found, 13716 FunctionDecl *Fn) { 13717 return FixOverloadedFunctionReference(E.get(), Found, Fn); 13718 } 13719