1 //===------- SemaTemplateDeduction.cpp - Template Argument Deduction ------===/ 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 // This file implements C++ template argument deduction. 10 // 11 //===----------------------------------------------------------------------===/ 12 13 #include "clang/Sema/TemplateDeduction.h" 14 #include "TreeTransform.h" 15 #include "clang/AST/ASTContext.h" 16 #include "clang/AST/ASTLambda.h" 17 #include "clang/AST/DeclObjC.h" 18 #include "clang/AST/DeclTemplate.h" 19 #include "clang/AST/Expr.h" 20 #include "clang/AST/ExprCXX.h" 21 #include "clang/AST/StmtVisitor.h" 22 #include "clang/Sema/DeclSpec.h" 23 #include "clang/Sema/Sema.h" 24 #include "clang/Sema/Template.h" 25 #include "llvm/ADT/SmallBitVector.h" 26 #include <algorithm> 27 28 namespace clang { 29 using namespace sema; 30 /// \brief Various flags that control template argument deduction. 31 /// 32 /// These flags can be bitwise-OR'd together. 33 enum TemplateDeductionFlags { 34 /// \brief No template argument deduction flags, which indicates the 35 /// strictest results for template argument deduction (as used for, e.g., 36 /// matching class template partial specializations). 37 TDF_None = 0, 38 /// \brief Within template argument deduction from a function call, we are 39 /// matching with a parameter type for which the original parameter was 40 /// a reference. 41 TDF_ParamWithReferenceType = 0x1, 42 /// \brief Within template argument deduction from a function call, we 43 /// are matching in a case where we ignore cv-qualifiers. 44 TDF_IgnoreQualifiers = 0x02, 45 /// \brief Within template argument deduction from a function call, 46 /// we are matching in a case where we can perform template argument 47 /// deduction from a template-id of a derived class of the argument type. 48 TDF_DerivedClass = 0x04, 49 /// \brief Allow non-dependent types to differ, e.g., when performing 50 /// template argument deduction from a function call where conversions 51 /// may apply. 52 TDF_SkipNonDependent = 0x08, 53 /// \brief Whether we are performing template argument deduction for 54 /// parameters and arguments in a top-level template argument 55 TDF_TopLevelParameterTypeList = 0x10, 56 /// \brief Within template argument deduction from overload resolution per 57 /// C++ [over.over] allow matching function types that are compatible in 58 /// terms of noreturn and default calling convention adjustments. 59 TDF_InOverloadResolution = 0x20 60 }; 61 } 62 63 using namespace clang; 64 65 /// \brief Compare two APSInts, extending and switching the sign as 66 /// necessary to compare their values regardless of underlying type. 67 static bool hasSameExtendedValue(llvm::APSInt X, llvm::APSInt Y) { 68 if (Y.getBitWidth() > X.getBitWidth()) 69 X = X.extend(Y.getBitWidth()); 70 else if (Y.getBitWidth() < X.getBitWidth()) 71 Y = Y.extend(X.getBitWidth()); 72 73 // If there is a signedness mismatch, correct it. 74 if (X.isSigned() != Y.isSigned()) { 75 // If the signed value is negative, then the values cannot be the same. 76 if ((Y.isSigned() && Y.isNegative()) || (X.isSigned() && X.isNegative())) 77 return false; 78 79 Y.setIsSigned(true); 80 X.setIsSigned(true); 81 } 82 83 return X == Y; 84 } 85 86 static Sema::TemplateDeductionResult 87 DeduceTemplateArguments(Sema &S, 88 TemplateParameterList *TemplateParams, 89 const TemplateArgument &Param, 90 TemplateArgument Arg, 91 TemplateDeductionInfo &Info, 92 SmallVectorImpl<DeducedTemplateArgument> &Deduced); 93 94 /// \brief Whether template argument deduction for two reference parameters 95 /// resulted in the argument type, parameter type, or neither type being more 96 /// qualified than the other. 97 enum DeductionQualifierComparison { 98 NeitherMoreQualified = 0, 99 ParamMoreQualified, 100 ArgMoreQualified 101 }; 102 103 /// \brief Stores the result of comparing two reference parameters while 104 /// performing template argument deduction for partial ordering of function 105 /// templates. 106 struct RefParamPartialOrderingComparison { 107 /// \brief Whether the parameter type is an rvalue reference type. 108 bool ParamIsRvalueRef; 109 /// \brief Whether the argument type is an rvalue reference type. 110 bool ArgIsRvalueRef; 111 112 /// \brief Whether the parameter or argument (or neither) is more qualified. 113 DeductionQualifierComparison Qualifiers; 114 }; 115 116 117 118 static Sema::TemplateDeductionResult 119 DeduceTemplateArgumentsByTypeMatch(Sema &S, 120 TemplateParameterList *TemplateParams, 121 QualType Param, 122 QualType Arg, 123 TemplateDeductionInfo &Info, 124 SmallVectorImpl<DeducedTemplateArgument> & 125 Deduced, 126 unsigned TDF, 127 bool PartialOrdering = false, 128 SmallVectorImpl<RefParamPartialOrderingComparison> * 129 RefParamComparisons = 0); 130 131 static Sema::TemplateDeductionResult 132 DeduceTemplateArguments(Sema &S, 133 TemplateParameterList *TemplateParams, 134 const TemplateArgument *Params, unsigned NumParams, 135 const TemplateArgument *Args, unsigned NumArgs, 136 TemplateDeductionInfo &Info, 137 SmallVectorImpl<DeducedTemplateArgument> &Deduced); 138 139 /// \brief If the given expression is of a form that permits the deduction 140 /// of a non-type template parameter, return the declaration of that 141 /// non-type template parameter. 142 static NonTypeTemplateParmDecl *getDeducedParameterFromExpr(Expr *E) { 143 // If we are within an alias template, the expression may have undergone 144 // any number of parameter substitutions already. 145 while (1) { 146 if (ImplicitCastExpr *IC = dyn_cast<ImplicitCastExpr>(E)) 147 E = IC->getSubExpr(); 148 else if (SubstNonTypeTemplateParmExpr *Subst = 149 dyn_cast<SubstNonTypeTemplateParmExpr>(E)) 150 E = Subst->getReplacement(); 151 else 152 break; 153 } 154 155 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) 156 return dyn_cast<NonTypeTemplateParmDecl>(DRE->getDecl()); 157 158 return 0; 159 } 160 161 /// \brief Determine whether two declaration pointers refer to the same 162 /// declaration. 163 static bool isSameDeclaration(Decl *X, Decl *Y) { 164 if (NamedDecl *NX = dyn_cast<NamedDecl>(X)) 165 X = NX->getUnderlyingDecl(); 166 if (NamedDecl *NY = dyn_cast<NamedDecl>(Y)) 167 Y = NY->getUnderlyingDecl(); 168 169 return X->getCanonicalDecl() == Y->getCanonicalDecl(); 170 } 171 172 /// \brief Verify that the given, deduced template arguments are compatible. 173 /// 174 /// \returns The deduced template argument, or a NULL template argument if 175 /// the deduced template arguments were incompatible. 176 static DeducedTemplateArgument 177 checkDeducedTemplateArguments(ASTContext &Context, 178 const DeducedTemplateArgument &X, 179 const DeducedTemplateArgument &Y) { 180 // We have no deduction for one or both of the arguments; they're compatible. 181 if (X.isNull()) 182 return Y; 183 if (Y.isNull()) 184 return X; 185 186 switch (X.getKind()) { 187 case TemplateArgument::Null: 188 llvm_unreachable("Non-deduced template arguments handled above"); 189 190 case TemplateArgument::Type: 191 // If two template type arguments have the same type, they're compatible. 192 if (Y.getKind() == TemplateArgument::Type && 193 Context.hasSameType(X.getAsType(), Y.getAsType())) 194 return X; 195 196 return DeducedTemplateArgument(); 197 198 case TemplateArgument::Integral: 199 // If we deduced a constant in one case and either a dependent expression or 200 // declaration in another case, keep the integral constant. 201 // If both are integral constants with the same value, keep that value. 202 if (Y.getKind() == TemplateArgument::Expression || 203 Y.getKind() == TemplateArgument::Declaration || 204 (Y.getKind() == TemplateArgument::Integral && 205 hasSameExtendedValue(X.getAsIntegral(), Y.getAsIntegral()))) 206 return DeducedTemplateArgument(X, 207 X.wasDeducedFromArrayBound() && 208 Y.wasDeducedFromArrayBound()); 209 210 // All other combinations are incompatible. 211 return DeducedTemplateArgument(); 212 213 case TemplateArgument::Template: 214 if (Y.getKind() == TemplateArgument::Template && 215 Context.hasSameTemplateName(X.getAsTemplate(), Y.getAsTemplate())) 216 return X; 217 218 // All other combinations are incompatible. 219 return DeducedTemplateArgument(); 220 221 case TemplateArgument::TemplateExpansion: 222 if (Y.getKind() == TemplateArgument::TemplateExpansion && 223 Context.hasSameTemplateName(X.getAsTemplateOrTemplatePattern(), 224 Y.getAsTemplateOrTemplatePattern())) 225 return X; 226 227 // All other combinations are incompatible. 228 return DeducedTemplateArgument(); 229 230 case TemplateArgument::Expression: 231 // If we deduced a dependent expression in one case and either an integral 232 // constant or a declaration in another case, keep the integral constant 233 // or declaration. 234 if (Y.getKind() == TemplateArgument::Integral || 235 Y.getKind() == TemplateArgument::Declaration) 236 return DeducedTemplateArgument(Y, X.wasDeducedFromArrayBound() && 237 Y.wasDeducedFromArrayBound()); 238 239 if (Y.getKind() == TemplateArgument::Expression) { 240 // Compare the expressions for equality 241 llvm::FoldingSetNodeID ID1, ID2; 242 X.getAsExpr()->Profile(ID1, Context, true); 243 Y.getAsExpr()->Profile(ID2, Context, true); 244 if (ID1 == ID2) 245 return X; 246 } 247 248 // All other combinations are incompatible. 249 return DeducedTemplateArgument(); 250 251 case TemplateArgument::Declaration: 252 // If we deduced a declaration and a dependent expression, keep the 253 // declaration. 254 if (Y.getKind() == TemplateArgument::Expression) 255 return X; 256 257 // If we deduced a declaration and an integral constant, keep the 258 // integral constant. 259 if (Y.getKind() == TemplateArgument::Integral) 260 return Y; 261 262 // If we deduced two declarations, make sure they they refer to the 263 // same declaration. 264 if (Y.getKind() == TemplateArgument::Declaration && 265 isSameDeclaration(X.getAsDecl(), Y.getAsDecl()) && 266 X.isDeclForReferenceParam() == Y.isDeclForReferenceParam()) 267 return X; 268 269 // All other combinations are incompatible. 270 return DeducedTemplateArgument(); 271 272 case TemplateArgument::NullPtr: 273 // If we deduced a null pointer and a dependent expression, keep the 274 // null pointer. 275 if (Y.getKind() == TemplateArgument::Expression) 276 return X; 277 278 // If we deduced a null pointer and an integral constant, keep the 279 // integral constant. 280 if (Y.getKind() == TemplateArgument::Integral) 281 return Y; 282 283 // If we deduced two null pointers, make sure they have the same type. 284 if (Y.getKind() == TemplateArgument::NullPtr && 285 Context.hasSameType(X.getNullPtrType(), Y.getNullPtrType())) 286 return X; 287 288 // All other combinations are incompatible. 289 return DeducedTemplateArgument(); 290 291 case TemplateArgument::Pack: 292 if (Y.getKind() != TemplateArgument::Pack || 293 X.pack_size() != Y.pack_size()) 294 return DeducedTemplateArgument(); 295 296 for (TemplateArgument::pack_iterator XA = X.pack_begin(), 297 XAEnd = X.pack_end(), 298 YA = Y.pack_begin(); 299 XA != XAEnd; ++XA, ++YA) { 300 if (checkDeducedTemplateArguments(Context, 301 DeducedTemplateArgument(*XA, X.wasDeducedFromArrayBound()), 302 DeducedTemplateArgument(*YA, Y.wasDeducedFromArrayBound())) 303 .isNull()) 304 return DeducedTemplateArgument(); 305 } 306 307 return X; 308 } 309 310 llvm_unreachable("Invalid TemplateArgument Kind!"); 311 } 312 313 /// \brief Deduce the value of the given non-type template parameter 314 /// from the given constant. 315 static Sema::TemplateDeductionResult 316 DeduceNonTypeTemplateArgument(Sema &S, 317 NonTypeTemplateParmDecl *NTTP, 318 llvm::APSInt Value, QualType ValueType, 319 bool DeducedFromArrayBound, 320 TemplateDeductionInfo &Info, 321 SmallVectorImpl<DeducedTemplateArgument> &Deduced) { 322 assert(NTTP->getDepth() == 0 && 323 "Cannot deduce non-type template argument with depth > 0"); 324 325 DeducedTemplateArgument NewDeduced(S.Context, Value, ValueType, 326 DeducedFromArrayBound); 327 DeducedTemplateArgument Result = checkDeducedTemplateArguments(S.Context, 328 Deduced[NTTP->getIndex()], 329 NewDeduced); 330 if (Result.isNull()) { 331 Info.Param = NTTP; 332 Info.FirstArg = Deduced[NTTP->getIndex()]; 333 Info.SecondArg = NewDeduced; 334 return Sema::TDK_Inconsistent; 335 } 336 337 Deduced[NTTP->getIndex()] = Result; 338 return Sema::TDK_Success; 339 } 340 341 /// \brief Deduce the value of the given non-type template parameter 342 /// from the given type- or value-dependent expression. 343 /// 344 /// \returns true if deduction succeeded, false otherwise. 345 static Sema::TemplateDeductionResult 346 DeduceNonTypeTemplateArgument(Sema &S, 347 NonTypeTemplateParmDecl *NTTP, 348 Expr *Value, 349 TemplateDeductionInfo &Info, 350 SmallVectorImpl<DeducedTemplateArgument> &Deduced) { 351 assert(NTTP->getDepth() == 0 && 352 "Cannot deduce non-type template argument with depth > 0"); 353 assert((Value->isTypeDependent() || Value->isValueDependent()) && 354 "Expression template argument must be type- or value-dependent."); 355 356 DeducedTemplateArgument NewDeduced(Value); 357 DeducedTemplateArgument Result = checkDeducedTemplateArguments(S.Context, 358 Deduced[NTTP->getIndex()], 359 NewDeduced); 360 361 if (Result.isNull()) { 362 Info.Param = NTTP; 363 Info.FirstArg = Deduced[NTTP->getIndex()]; 364 Info.SecondArg = NewDeduced; 365 return Sema::TDK_Inconsistent; 366 } 367 368 Deduced[NTTP->getIndex()] = Result; 369 return Sema::TDK_Success; 370 } 371 372 /// \brief Deduce the value of the given non-type template parameter 373 /// from the given declaration. 374 /// 375 /// \returns true if deduction succeeded, false otherwise. 376 static Sema::TemplateDeductionResult 377 DeduceNonTypeTemplateArgument(Sema &S, 378 NonTypeTemplateParmDecl *NTTP, 379 ValueDecl *D, 380 TemplateDeductionInfo &Info, 381 SmallVectorImpl<DeducedTemplateArgument> &Deduced) { 382 assert(NTTP->getDepth() == 0 && 383 "Cannot deduce non-type template argument with depth > 0"); 384 385 D = D ? cast<ValueDecl>(D->getCanonicalDecl()) : 0; 386 TemplateArgument New(D, NTTP->getType()->isReferenceType()); 387 DeducedTemplateArgument NewDeduced(New); 388 DeducedTemplateArgument Result = checkDeducedTemplateArguments(S.Context, 389 Deduced[NTTP->getIndex()], 390 NewDeduced); 391 if (Result.isNull()) { 392 Info.Param = NTTP; 393 Info.FirstArg = Deduced[NTTP->getIndex()]; 394 Info.SecondArg = NewDeduced; 395 return Sema::TDK_Inconsistent; 396 } 397 398 Deduced[NTTP->getIndex()] = Result; 399 return Sema::TDK_Success; 400 } 401 402 static Sema::TemplateDeductionResult 403 DeduceTemplateArguments(Sema &S, 404 TemplateParameterList *TemplateParams, 405 TemplateName Param, 406 TemplateName Arg, 407 TemplateDeductionInfo &Info, 408 SmallVectorImpl<DeducedTemplateArgument> &Deduced) { 409 TemplateDecl *ParamDecl = Param.getAsTemplateDecl(); 410 if (!ParamDecl) { 411 // The parameter type is dependent and is not a template template parameter, 412 // so there is nothing that we can deduce. 413 return Sema::TDK_Success; 414 } 415 416 if (TemplateTemplateParmDecl *TempParam 417 = dyn_cast<TemplateTemplateParmDecl>(ParamDecl)) { 418 DeducedTemplateArgument NewDeduced(S.Context.getCanonicalTemplateName(Arg)); 419 DeducedTemplateArgument Result = checkDeducedTemplateArguments(S.Context, 420 Deduced[TempParam->getIndex()], 421 NewDeduced); 422 if (Result.isNull()) { 423 Info.Param = TempParam; 424 Info.FirstArg = Deduced[TempParam->getIndex()]; 425 Info.SecondArg = NewDeduced; 426 return Sema::TDK_Inconsistent; 427 } 428 429 Deduced[TempParam->getIndex()] = Result; 430 return Sema::TDK_Success; 431 } 432 433 // Verify that the two template names are equivalent. 434 if (S.Context.hasSameTemplateName(Param, Arg)) 435 return Sema::TDK_Success; 436 437 // Mismatch of non-dependent template parameter to argument. 438 Info.FirstArg = TemplateArgument(Param); 439 Info.SecondArg = TemplateArgument(Arg); 440 return Sema::TDK_NonDeducedMismatch; 441 } 442 443 /// \brief Deduce the template arguments by comparing the template parameter 444 /// type (which is a template-id) with the template argument type. 445 /// 446 /// \param S the Sema 447 /// 448 /// \param TemplateParams the template parameters that we are deducing 449 /// 450 /// \param Param the parameter type 451 /// 452 /// \param Arg the argument type 453 /// 454 /// \param Info information about the template argument deduction itself 455 /// 456 /// \param Deduced the deduced template arguments 457 /// 458 /// \returns the result of template argument deduction so far. Note that a 459 /// "success" result means that template argument deduction has not yet failed, 460 /// but it may still fail, later, for other reasons. 461 static Sema::TemplateDeductionResult 462 DeduceTemplateArguments(Sema &S, 463 TemplateParameterList *TemplateParams, 464 const TemplateSpecializationType *Param, 465 QualType Arg, 466 TemplateDeductionInfo &Info, 467 SmallVectorImpl<DeducedTemplateArgument> &Deduced) { 468 assert(Arg.isCanonical() && "Argument type must be canonical"); 469 470 // Check whether the template argument is a dependent template-id. 471 if (const TemplateSpecializationType *SpecArg 472 = dyn_cast<TemplateSpecializationType>(Arg)) { 473 // Perform template argument deduction for the template name. 474 if (Sema::TemplateDeductionResult Result 475 = DeduceTemplateArguments(S, TemplateParams, 476 Param->getTemplateName(), 477 SpecArg->getTemplateName(), 478 Info, Deduced)) 479 return Result; 480 481 482 // Perform template argument deduction on each template 483 // argument. Ignore any missing/extra arguments, since they could be 484 // filled in by default arguments. 485 return DeduceTemplateArguments(S, TemplateParams, 486 Param->getArgs(), Param->getNumArgs(), 487 SpecArg->getArgs(), SpecArg->getNumArgs(), 488 Info, Deduced); 489 } 490 491 // If the argument type is a class template specialization, we 492 // perform template argument deduction using its template 493 // arguments. 494 const RecordType *RecordArg = dyn_cast<RecordType>(Arg); 495 if (!RecordArg) { 496 Info.FirstArg = TemplateArgument(QualType(Param, 0)); 497 Info.SecondArg = TemplateArgument(Arg); 498 return Sema::TDK_NonDeducedMismatch; 499 } 500 501 ClassTemplateSpecializationDecl *SpecArg 502 = dyn_cast<ClassTemplateSpecializationDecl>(RecordArg->getDecl()); 503 if (!SpecArg) { 504 Info.FirstArg = TemplateArgument(QualType(Param, 0)); 505 Info.SecondArg = TemplateArgument(Arg); 506 return Sema::TDK_NonDeducedMismatch; 507 } 508 509 // Perform template argument deduction for the template name. 510 if (Sema::TemplateDeductionResult Result 511 = DeduceTemplateArguments(S, 512 TemplateParams, 513 Param->getTemplateName(), 514 TemplateName(SpecArg->getSpecializedTemplate()), 515 Info, Deduced)) 516 return Result; 517 518 // Perform template argument deduction for the template arguments. 519 return DeduceTemplateArguments(S, TemplateParams, 520 Param->getArgs(), Param->getNumArgs(), 521 SpecArg->getTemplateArgs().data(), 522 SpecArg->getTemplateArgs().size(), 523 Info, Deduced); 524 } 525 526 /// \brief Determines whether the given type is an opaque type that 527 /// might be more qualified when instantiated. 528 static bool IsPossiblyOpaquelyQualifiedType(QualType T) { 529 switch (T->getTypeClass()) { 530 case Type::TypeOfExpr: 531 case Type::TypeOf: 532 case Type::DependentName: 533 case Type::Decltype: 534 case Type::UnresolvedUsing: 535 case Type::TemplateTypeParm: 536 return true; 537 538 case Type::ConstantArray: 539 case Type::IncompleteArray: 540 case Type::VariableArray: 541 case Type::DependentSizedArray: 542 return IsPossiblyOpaquelyQualifiedType( 543 cast<ArrayType>(T)->getElementType()); 544 545 default: 546 return false; 547 } 548 } 549 550 /// \brief Retrieve the depth and index of a template parameter. 551 static std::pair<unsigned, unsigned> 552 getDepthAndIndex(NamedDecl *ND) { 553 if (TemplateTypeParmDecl *TTP = dyn_cast<TemplateTypeParmDecl>(ND)) 554 return std::make_pair(TTP->getDepth(), TTP->getIndex()); 555 556 if (NonTypeTemplateParmDecl *NTTP = dyn_cast<NonTypeTemplateParmDecl>(ND)) 557 return std::make_pair(NTTP->getDepth(), NTTP->getIndex()); 558 559 TemplateTemplateParmDecl *TTP = cast<TemplateTemplateParmDecl>(ND); 560 return std::make_pair(TTP->getDepth(), TTP->getIndex()); 561 } 562 563 /// \brief Retrieve the depth and index of an unexpanded parameter pack. 564 static std::pair<unsigned, unsigned> 565 getDepthAndIndex(UnexpandedParameterPack UPP) { 566 if (const TemplateTypeParmType *TTP 567 = UPP.first.dyn_cast<const TemplateTypeParmType *>()) 568 return std::make_pair(TTP->getDepth(), TTP->getIndex()); 569 570 return getDepthAndIndex(UPP.first.get<NamedDecl *>()); 571 } 572 573 /// \brief Helper function to build a TemplateParameter when we don't 574 /// know its type statically. 575 static TemplateParameter makeTemplateParameter(Decl *D) { 576 if (TemplateTypeParmDecl *TTP = dyn_cast<TemplateTypeParmDecl>(D)) 577 return TemplateParameter(TTP); 578 if (NonTypeTemplateParmDecl *NTTP = dyn_cast<NonTypeTemplateParmDecl>(D)) 579 return TemplateParameter(NTTP); 580 581 return TemplateParameter(cast<TemplateTemplateParmDecl>(D)); 582 } 583 584 typedef SmallVector<SmallVector<DeducedTemplateArgument, 4>, 2> 585 NewlyDeducedPacksType; 586 587 /// \brief Prepare to perform template argument deduction for all of the 588 /// arguments in a set of argument packs. 589 static void 590 PrepareArgumentPackDeduction(Sema &S, 591 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 592 ArrayRef<unsigned> PackIndices, 593 SmallVectorImpl<DeducedTemplateArgument> &SavedPacks, 594 NewlyDeducedPacksType &NewlyDeducedPacks) { 595 // Save the deduced template arguments for each parameter pack expanded 596 // by this pack expansion, then clear out the deduction. 597 for (unsigned I = 0, N = PackIndices.size(); I != N; ++I) { 598 // Save the previously-deduced argument pack, then clear it out so that we 599 // can deduce a new argument pack. 600 SavedPacks[I] = Deduced[PackIndices[I]]; 601 Deduced[PackIndices[I]] = TemplateArgument(); 602 603 if (!S.CurrentInstantiationScope) 604 continue; 605 606 // If the template argument pack was explicitly specified, add that to 607 // the set of deduced arguments. 608 const TemplateArgument *ExplicitArgs; 609 unsigned NumExplicitArgs; 610 if (NamedDecl *PartiallySubstitutedPack 611 = S.CurrentInstantiationScope->getPartiallySubstitutedPack( 612 &ExplicitArgs, 613 &NumExplicitArgs)) { 614 if (getDepthAndIndex(PartiallySubstitutedPack).second == PackIndices[I]) 615 NewlyDeducedPacks[I].append(ExplicitArgs, 616 ExplicitArgs + NumExplicitArgs); 617 } 618 } 619 } 620 621 /// \brief Finish template argument deduction for a set of argument packs, 622 /// producing the argument packs and checking for consistency with prior 623 /// deductions. 624 static Sema::TemplateDeductionResult 625 FinishArgumentPackDeduction(Sema &S, 626 TemplateParameterList *TemplateParams, 627 bool HasAnyArguments, 628 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 629 ArrayRef<unsigned> PackIndices, 630 SmallVectorImpl<DeducedTemplateArgument> &SavedPacks, 631 NewlyDeducedPacksType &NewlyDeducedPacks, 632 TemplateDeductionInfo &Info) { 633 // Build argument packs for each of the parameter packs expanded by this 634 // pack expansion. 635 for (unsigned I = 0, N = PackIndices.size(); I != N; ++I) { 636 if (HasAnyArguments && NewlyDeducedPacks[I].empty()) { 637 // We were not able to deduce anything for this parameter pack, 638 // so just restore the saved argument pack. 639 Deduced[PackIndices[I]] = SavedPacks[I]; 640 continue; 641 } 642 643 DeducedTemplateArgument NewPack; 644 645 if (NewlyDeducedPacks[I].empty()) { 646 // If we deduced an empty argument pack, create it now. 647 NewPack = DeducedTemplateArgument(TemplateArgument::getEmptyPack()); 648 } else { 649 TemplateArgument *ArgumentPack 650 = new (S.Context) TemplateArgument [NewlyDeducedPacks[I].size()]; 651 std::copy(NewlyDeducedPacks[I].begin(), NewlyDeducedPacks[I].end(), 652 ArgumentPack); 653 NewPack 654 = DeducedTemplateArgument(TemplateArgument(ArgumentPack, 655 NewlyDeducedPacks[I].size()), 656 NewlyDeducedPacks[I][0].wasDeducedFromArrayBound()); 657 } 658 659 DeducedTemplateArgument Result 660 = checkDeducedTemplateArguments(S.Context, SavedPacks[I], NewPack); 661 if (Result.isNull()) { 662 Info.Param 663 = makeTemplateParameter(TemplateParams->getParam(PackIndices[I])); 664 Info.FirstArg = SavedPacks[I]; 665 Info.SecondArg = NewPack; 666 return Sema::TDK_Inconsistent; 667 } 668 669 Deduced[PackIndices[I]] = Result; 670 } 671 672 return Sema::TDK_Success; 673 } 674 675 /// \brief Deduce the template arguments by comparing the list of parameter 676 /// types to the list of argument types, as in the parameter-type-lists of 677 /// function types (C++ [temp.deduct.type]p10). 678 /// 679 /// \param S The semantic analysis object within which we are deducing 680 /// 681 /// \param TemplateParams The template parameters that we are deducing 682 /// 683 /// \param Params The list of parameter types 684 /// 685 /// \param NumParams The number of types in \c Params 686 /// 687 /// \param Args The list of argument types 688 /// 689 /// \param NumArgs The number of types in \c Args 690 /// 691 /// \param Info information about the template argument deduction itself 692 /// 693 /// \param Deduced the deduced template arguments 694 /// 695 /// \param TDF bitwise OR of the TemplateDeductionFlags bits that describe 696 /// how template argument deduction is performed. 697 /// 698 /// \param PartialOrdering If true, we are performing template argument 699 /// deduction for during partial ordering for a call 700 /// (C++0x [temp.deduct.partial]). 701 /// 702 /// \param RefParamComparisons If we're performing template argument deduction 703 /// in the context of partial ordering, the set of qualifier comparisons. 704 /// 705 /// \returns the result of template argument deduction so far. Note that a 706 /// "success" result means that template argument deduction has not yet failed, 707 /// but it may still fail, later, for other reasons. 708 static Sema::TemplateDeductionResult 709 DeduceTemplateArguments(Sema &S, 710 TemplateParameterList *TemplateParams, 711 const QualType *Params, unsigned NumParams, 712 const QualType *Args, unsigned NumArgs, 713 TemplateDeductionInfo &Info, 714 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 715 unsigned TDF, 716 bool PartialOrdering = false, 717 SmallVectorImpl<RefParamPartialOrderingComparison> * 718 RefParamComparisons = 0) { 719 // Fast-path check to see if we have too many/too few arguments. 720 if (NumParams != NumArgs && 721 !(NumParams && isa<PackExpansionType>(Params[NumParams - 1])) && 722 !(NumArgs && isa<PackExpansionType>(Args[NumArgs - 1]))) 723 return Sema::TDK_MiscellaneousDeductionFailure; 724 725 // C++0x [temp.deduct.type]p10: 726 // Similarly, if P has a form that contains (T), then each parameter type 727 // Pi of the respective parameter-type- list of P is compared with the 728 // corresponding parameter type Ai of the corresponding parameter-type-list 729 // of A. [...] 730 unsigned ArgIdx = 0, ParamIdx = 0; 731 for (; ParamIdx != NumParams; ++ParamIdx) { 732 // Check argument types. 733 const PackExpansionType *Expansion 734 = dyn_cast<PackExpansionType>(Params[ParamIdx]); 735 if (!Expansion) { 736 // Simple case: compare the parameter and argument types at this point. 737 738 // Make sure we have an argument. 739 if (ArgIdx >= NumArgs) 740 return Sema::TDK_MiscellaneousDeductionFailure; 741 742 if (isa<PackExpansionType>(Args[ArgIdx])) { 743 // C++0x [temp.deduct.type]p22: 744 // If the original function parameter associated with A is a function 745 // parameter pack and the function parameter associated with P is not 746 // a function parameter pack, then template argument deduction fails. 747 return Sema::TDK_MiscellaneousDeductionFailure; 748 } 749 750 if (Sema::TemplateDeductionResult Result 751 = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 752 Params[ParamIdx], Args[ArgIdx], 753 Info, Deduced, TDF, 754 PartialOrdering, 755 RefParamComparisons)) 756 return Result; 757 758 ++ArgIdx; 759 continue; 760 } 761 762 // C++0x [temp.deduct.type]p5: 763 // The non-deduced contexts are: 764 // - A function parameter pack that does not occur at the end of the 765 // parameter-declaration-clause. 766 if (ParamIdx + 1 < NumParams) 767 return Sema::TDK_Success; 768 769 // C++0x [temp.deduct.type]p10: 770 // If the parameter-declaration corresponding to Pi is a function 771 // parameter pack, then the type of its declarator- id is compared with 772 // each remaining parameter type in the parameter-type-list of A. Each 773 // comparison deduces template arguments for subsequent positions in the 774 // template parameter packs expanded by the function parameter pack. 775 776 // Compute the set of template parameter indices that correspond to 777 // parameter packs expanded by the pack expansion. 778 SmallVector<unsigned, 2> PackIndices; 779 QualType Pattern = Expansion->getPattern(); 780 { 781 llvm::SmallBitVector SawIndices(TemplateParams->size()); 782 SmallVector<UnexpandedParameterPack, 2> Unexpanded; 783 S.collectUnexpandedParameterPacks(Pattern, Unexpanded); 784 for (unsigned I = 0, N = Unexpanded.size(); I != N; ++I) { 785 unsigned Depth, Index; 786 llvm::tie(Depth, Index) = getDepthAndIndex(Unexpanded[I]); 787 if (Depth == 0 && !SawIndices[Index]) { 788 SawIndices[Index] = true; 789 PackIndices.push_back(Index); 790 } 791 } 792 } 793 assert(!PackIndices.empty() && "Pack expansion without unexpanded packs?"); 794 795 // Keep track of the deduced template arguments for each parameter pack 796 // expanded by this pack expansion (the outer index) and for each 797 // template argument (the inner SmallVectors). 798 NewlyDeducedPacksType NewlyDeducedPacks(PackIndices.size()); 799 SmallVector<DeducedTemplateArgument, 2> 800 SavedPacks(PackIndices.size()); 801 PrepareArgumentPackDeduction(S, Deduced, PackIndices, SavedPacks, 802 NewlyDeducedPacks); 803 804 bool HasAnyArguments = false; 805 for (; ArgIdx < NumArgs; ++ArgIdx) { 806 HasAnyArguments = true; 807 808 // Deduce template arguments from the pattern. 809 if (Sema::TemplateDeductionResult Result 810 = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, Pattern, 811 Args[ArgIdx], Info, Deduced, 812 TDF, PartialOrdering, 813 RefParamComparisons)) 814 return Result; 815 816 // Capture the deduced template arguments for each parameter pack expanded 817 // by this pack expansion, add them to the list of arguments we've deduced 818 // for that pack, then clear out the deduced argument. 819 for (unsigned I = 0, N = PackIndices.size(); I != N; ++I) { 820 DeducedTemplateArgument &DeducedArg = Deduced[PackIndices[I]]; 821 if (!DeducedArg.isNull()) { 822 NewlyDeducedPacks[I].push_back(DeducedArg); 823 DeducedArg = DeducedTemplateArgument(); 824 } 825 } 826 } 827 828 // Build argument packs for each of the parameter packs expanded by this 829 // pack expansion. 830 if (Sema::TemplateDeductionResult Result 831 = FinishArgumentPackDeduction(S, TemplateParams, HasAnyArguments, 832 Deduced, PackIndices, SavedPacks, 833 NewlyDeducedPacks, Info)) 834 return Result; 835 } 836 837 // Make sure we don't have any extra arguments. 838 if (ArgIdx < NumArgs) 839 return Sema::TDK_MiscellaneousDeductionFailure; 840 841 return Sema::TDK_Success; 842 } 843 844 /// \brief Determine whether the parameter has qualifiers that are either 845 /// inconsistent with or a superset of the argument's qualifiers. 846 static bool hasInconsistentOrSupersetQualifiersOf(QualType ParamType, 847 QualType ArgType) { 848 Qualifiers ParamQs = ParamType.getQualifiers(); 849 Qualifiers ArgQs = ArgType.getQualifiers(); 850 851 if (ParamQs == ArgQs) 852 return false; 853 854 // Mismatched (but not missing) Objective-C GC attributes. 855 if (ParamQs.getObjCGCAttr() != ArgQs.getObjCGCAttr() && 856 ParamQs.hasObjCGCAttr()) 857 return true; 858 859 // Mismatched (but not missing) address spaces. 860 if (ParamQs.getAddressSpace() != ArgQs.getAddressSpace() && 861 ParamQs.hasAddressSpace()) 862 return true; 863 864 // Mismatched (but not missing) Objective-C lifetime qualifiers. 865 if (ParamQs.getObjCLifetime() != ArgQs.getObjCLifetime() && 866 ParamQs.hasObjCLifetime()) 867 return true; 868 869 // CVR qualifier superset. 870 return (ParamQs.getCVRQualifiers() != ArgQs.getCVRQualifiers()) && 871 ((ParamQs.getCVRQualifiers() | ArgQs.getCVRQualifiers()) 872 == ParamQs.getCVRQualifiers()); 873 } 874 875 /// \brief Compare types for equality with respect to possibly compatible 876 /// function types (noreturn adjustment, implicit calling conventions). If any 877 /// of parameter and argument is not a function, just perform type comparison. 878 /// 879 /// \param Param the template parameter type. 880 /// 881 /// \param Arg the argument type. 882 bool Sema::isSameOrCompatibleFunctionType(CanQualType Param, 883 CanQualType Arg) { 884 const FunctionType *ParamFunction = Param->getAs<FunctionType>(), 885 *ArgFunction = Arg->getAs<FunctionType>(); 886 887 // Just compare if not functions. 888 if (!ParamFunction || !ArgFunction) 889 return Param == Arg; 890 891 // Noreturn adjustment. 892 QualType AdjustedParam; 893 if (IsNoReturnConversion(Param, Arg, AdjustedParam)) 894 return Arg == Context.getCanonicalType(AdjustedParam); 895 896 // FIXME: Compatible calling conventions. 897 898 return Param == Arg; 899 } 900 901 /// \brief Deduce the template arguments by comparing the parameter type and 902 /// the argument type (C++ [temp.deduct.type]). 903 /// 904 /// \param S the semantic analysis object within which we are deducing 905 /// 906 /// \param TemplateParams the template parameters that we are deducing 907 /// 908 /// \param ParamIn the parameter type 909 /// 910 /// \param ArgIn the argument type 911 /// 912 /// \param Info information about the template argument deduction itself 913 /// 914 /// \param Deduced the deduced template arguments 915 /// 916 /// \param TDF bitwise OR of the TemplateDeductionFlags bits that describe 917 /// how template argument deduction is performed. 918 /// 919 /// \param PartialOrdering Whether we're performing template argument deduction 920 /// in the context of partial ordering (C++0x [temp.deduct.partial]). 921 /// 922 /// \param RefParamComparisons If we're performing template argument deduction 923 /// in the context of partial ordering, the set of qualifier comparisons. 924 /// 925 /// \returns the result of template argument deduction so far. Note that a 926 /// "success" result means that template argument deduction has not yet failed, 927 /// but it may still fail, later, for other reasons. 928 static Sema::TemplateDeductionResult 929 DeduceTemplateArgumentsByTypeMatch(Sema &S, 930 TemplateParameterList *TemplateParams, 931 QualType ParamIn, QualType ArgIn, 932 TemplateDeductionInfo &Info, 933 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 934 unsigned TDF, 935 bool PartialOrdering, 936 SmallVectorImpl<RefParamPartialOrderingComparison> * 937 RefParamComparisons) { 938 // We only want to look at the canonical types, since typedefs and 939 // sugar are not part of template argument deduction. 940 QualType Param = S.Context.getCanonicalType(ParamIn); 941 QualType Arg = S.Context.getCanonicalType(ArgIn); 942 943 // If the argument type is a pack expansion, look at its pattern. 944 // This isn't explicitly called out 945 if (const PackExpansionType *ArgExpansion 946 = dyn_cast<PackExpansionType>(Arg)) 947 Arg = ArgExpansion->getPattern(); 948 949 if (PartialOrdering) { 950 // C++0x [temp.deduct.partial]p5: 951 // Before the partial ordering is done, certain transformations are 952 // performed on the types used for partial ordering: 953 // - If P is a reference type, P is replaced by the type referred to. 954 const ReferenceType *ParamRef = Param->getAs<ReferenceType>(); 955 if (ParamRef) 956 Param = ParamRef->getPointeeType(); 957 958 // - If A is a reference type, A is replaced by the type referred to. 959 const ReferenceType *ArgRef = Arg->getAs<ReferenceType>(); 960 if (ArgRef) 961 Arg = ArgRef->getPointeeType(); 962 963 if (RefParamComparisons && ParamRef && ArgRef) { 964 // C++0x [temp.deduct.partial]p6: 965 // If both P and A were reference types (before being replaced with the 966 // type referred to above), determine which of the two types (if any) is 967 // more cv-qualified than the other; otherwise the types are considered 968 // to be equally cv-qualified for partial ordering purposes. The result 969 // of this determination will be used below. 970 // 971 // We save this information for later, using it only when deduction 972 // succeeds in both directions. 973 RefParamPartialOrderingComparison Comparison; 974 Comparison.ParamIsRvalueRef = ParamRef->getAs<RValueReferenceType>(); 975 Comparison.ArgIsRvalueRef = ArgRef->getAs<RValueReferenceType>(); 976 Comparison.Qualifiers = NeitherMoreQualified; 977 978 Qualifiers ParamQuals = Param.getQualifiers(); 979 Qualifiers ArgQuals = Arg.getQualifiers(); 980 if (ParamQuals.isStrictSupersetOf(ArgQuals)) 981 Comparison.Qualifiers = ParamMoreQualified; 982 else if (ArgQuals.isStrictSupersetOf(ParamQuals)) 983 Comparison.Qualifiers = ArgMoreQualified; 984 RefParamComparisons->push_back(Comparison); 985 } 986 987 // C++0x [temp.deduct.partial]p7: 988 // Remove any top-level cv-qualifiers: 989 // - If P is a cv-qualified type, P is replaced by the cv-unqualified 990 // version of P. 991 Param = Param.getUnqualifiedType(); 992 // - If A is a cv-qualified type, A is replaced by the cv-unqualified 993 // version of A. 994 Arg = Arg.getUnqualifiedType(); 995 } else { 996 // C++0x [temp.deduct.call]p4 bullet 1: 997 // - If the original P is a reference type, the deduced A (i.e., the type 998 // referred to by the reference) can be more cv-qualified than the 999 // transformed A. 1000 if (TDF & TDF_ParamWithReferenceType) { 1001 Qualifiers Quals; 1002 QualType UnqualParam = S.Context.getUnqualifiedArrayType(Param, Quals); 1003 Quals.setCVRQualifiers(Quals.getCVRQualifiers() & 1004 Arg.getCVRQualifiers()); 1005 Param = S.Context.getQualifiedType(UnqualParam, Quals); 1006 } 1007 1008 if ((TDF & TDF_TopLevelParameterTypeList) && !Param->isFunctionType()) { 1009 // C++0x [temp.deduct.type]p10: 1010 // If P and A are function types that originated from deduction when 1011 // taking the address of a function template (14.8.2.2) or when deducing 1012 // template arguments from a function declaration (14.8.2.6) and Pi and 1013 // Ai are parameters of the top-level parameter-type-list of P and A, 1014 // respectively, Pi is adjusted if it is an rvalue reference to a 1015 // cv-unqualified template parameter and Ai is an lvalue reference, in 1016 // which case the type of Pi is changed to be the template parameter 1017 // type (i.e., T&& is changed to simply T). [ Note: As a result, when 1018 // Pi is T&& and Ai is X&, the adjusted Pi will be T, causing T to be 1019 // deduced as X&. - end note ] 1020 TDF &= ~TDF_TopLevelParameterTypeList; 1021 1022 if (const RValueReferenceType *ParamRef 1023 = Param->getAs<RValueReferenceType>()) { 1024 if (isa<TemplateTypeParmType>(ParamRef->getPointeeType()) && 1025 !ParamRef->getPointeeType().getQualifiers()) 1026 if (Arg->isLValueReferenceType()) 1027 Param = ParamRef->getPointeeType(); 1028 } 1029 } 1030 } 1031 1032 // C++ [temp.deduct.type]p9: 1033 // A template type argument T, a template template argument TT or a 1034 // template non-type argument i can be deduced if P and A have one of 1035 // the following forms: 1036 // 1037 // T 1038 // cv-list T 1039 if (const TemplateTypeParmType *TemplateTypeParm 1040 = Param->getAs<TemplateTypeParmType>()) { 1041 // Just skip any attempts to deduce from a placeholder type. 1042 if (Arg->isPlaceholderType()) 1043 return Sema::TDK_Success; 1044 1045 unsigned Index = TemplateTypeParm->getIndex(); 1046 bool RecanonicalizeArg = false; 1047 1048 // If the argument type is an array type, move the qualifiers up to the 1049 // top level, so they can be matched with the qualifiers on the parameter. 1050 if (isa<ArrayType>(Arg)) { 1051 Qualifiers Quals; 1052 Arg = S.Context.getUnqualifiedArrayType(Arg, Quals); 1053 if (Quals) { 1054 Arg = S.Context.getQualifiedType(Arg, Quals); 1055 RecanonicalizeArg = true; 1056 } 1057 } 1058 1059 // The argument type can not be less qualified than the parameter 1060 // type. 1061 if (!(TDF & TDF_IgnoreQualifiers) && 1062 hasInconsistentOrSupersetQualifiersOf(Param, Arg)) { 1063 Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index)); 1064 Info.FirstArg = TemplateArgument(Param); 1065 Info.SecondArg = TemplateArgument(Arg); 1066 return Sema::TDK_Underqualified; 1067 } 1068 1069 assert(TemplateTypeParm->getDepth() == 0 && "Can't deduce with depth > 0"); 1070 assert(Arg != S.Context.OverloadTy && "Unresolved overloaded function"); 1071 QualType DeducedType = Arg; 1072 1073 // Remove any qualifiers on the parameter from the deduced type. 1074 // We checked the qualifiers for consistency above. 1075 Qualifiers DeducedQs = DeducedType.getQualifiers(); 1076 Qualifiers ParamQs = Param.getQualifiers(); 1077 DeducedQs.removeCVRQualifiers(ParamQs.getCVRQualifiers()); 1078 if (ParamQs.hasObjCGCAttr()) 1079 DeducedQs.removeObjCGCAttr(); 1080 if (ParamQs.hasAddressSpace()) 1081 DeducedQs.removeAddressSpace(); 1082 if (ParamQs.hasObjCLifetime()) 1083 DeducedQs.removeObjCLifetime(); 1084 1085 // Objective-C ARC: 1086 // If template deduction would produce a lifetime qualifier on a type 1087 // that is not a lifetime type, template argument deduction fails. 1088 if (ParamQs.hasObjCLifetime() && !DeducedType->isObjCLifetimeType() && 1089 !DeducedType->isDependentType()) { 1090 Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index)); 1091 Info.FirstArg = TemplateArgument(Param); 1092 Info.SecondArg = TemplateArgument(Arg); 1093 return Sema::TDK_Underqualified; 1094 } 1095 1096 // Objective-C ARC: 1097 // If template deduction would produce an argument type with lifetime type 1098 // but no lifetime qualifier, the __strong lifetime qualifier is inferred. 1099 if (S.getLangOpts().ObjCAutoRefCount && 1100 DeducedType->isObjCLifetimeType() && 1101 !DeducedQs.hasObjCLifetime()) 1102 DeducedQs.setObjCLifetime(Qualifiers::OCL_Strong); 1103 1104 DeducedType = S.Context.getQualifiedType(DeducedType.getUnqualifiedType(), 1105 DeducedQs); 1106 1107 if (RecanonicalizeArg) 1108 DeducedType = S.Context.getCanonicalType(DeducedType); 1109 1110 DeducedTemplateArgument NewDeduced(DeducedType); 1111 DeducedTemplateArgument Result = checkDeducedTemplateArguments(S.Context, 1112 Deduced[Index], 1113 NewDeduced); 1114 if (Result.isNull()) { 1115 Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index)); 1116 Info.FirstArg = Deduced[Index]; 1117 Info.SecondArg = NewDeduced; 1118 return Sema::TDK_Inconsistent; 1119 } 1120 1121 Deduced[Index] = Result; 1122 return Sema::TDK_Success; 1123 } 1124 1125 // Set up the template argument deduction information for a failure. 1126 Info.FirstArg = TemplateArgument(ParamIn); 1127 Info.SecondArg = TemplateArgument(ArgIn); 1128 1129 // If the parameter is an already-substituted template parameter 1130 // pack, do nothing: we don't know which of its arguments to look 1131 // at, so we have to wait until all of the parameter packs in this 1132 // expansion have arguments. 1133 if (isa<SubstTemplateTypeParmPackType>(Param)) 1134 return Sema::TDK_Success; 1135 1136 // Check the cv-qualifiers on the parameter and argument types. 1137 CanQualType CanParam = S.Context.getCanonicalType(Param); 1138 CanQualType CanArg = S.Context.getCanonicalType(Arg); 1139 if (!(TDF & TDF_IgnoreQualifiers)) { 1140 if (TDF & TDF_ParamWithReferenceType) { 1141 if (hasInconsistentOrSupersetQualifiersOf(Param, Arg)) 1142 return Sema::TDK_NonDeducedMismatch; 1143 } else if (!IsPossiblyOpaquelyQualifiedType(Param)) { 1144 if (Param.getCVRQualifiers() != Arg.getCVRQualifiers()) 1145 return Sema::TDK_NonDeducedMismatch; 1146 } 1147 1148 // If the parameter type is not dependent, there is nothing to deduce. 1149 if (!Param->isDependentType()) { 1150 if (!(TDF & TDF_SkipNonDependent)) { 1151 bool NonDeduced = (TDF & TDF_InOverloadResolution)? 1152 !S.isSameOrCompatibleFunctionType(CanParam, CanArg) : 1153 Param != Arg; 1154 if (NonDeduced) { 1155 return Sema::TDK_NonDeducedMismatch; 1156 } 1157 } 1158 return Sema::TDK_Success; 1159 } 1160 } else if (!Param->isDependentType()) { 1161 CanQualType ParamUnqualType = CanParam.getUnqualifiedType(), 1162 ArgUnqualType = CanArg.getUnqualifiedType(); 1163 bool Success = (TDF & TDF_InOverloadResolution)? 1164 S.isSameOrCompatibleFunctionType(ParamUnqualType, 1165 ArgUnqualType) : 1166 ParamUnqualType == ArgUnqualType; 1167 if (Success) 1168 return Sema::TDK_Success; 1169 } 1170 1171 switch (Param->getTypeClass()) { 1172 // Non-canonical types cannot appear here. 1173 #define NON_CANONICAL_TYPE(Class, Base) \ 1174 case Type::Class: llvm_unreachable("deducing non-canonical type: " #Class); 1175 #define TYPE(Class, Base) 1176 #include "clang/AST/TypeNodes.def" 1177 1178 case Type::TemplateTypeParm: 1179 case Type::SubstTemplateTypeParmPack: 1180 llvm_unreachable("Type nodes handled above"); 1181 1182 // These types cannot be dependent, so simply check whether the types are 1183 // the same. 1184 case Type::Builtin: 1185 case Type::VariableArray: 1186 case Type::Vector: 1187 case Type::FunctionNoProto: 1188 case Type::Record: 1189 case Type::Enum: 1190 case Type::ObjCObject: 1191 case Type::ObjCInterface: 1192 case Type::ObjCObjectPointer: { 1193 if (TDF & TDF_SkipNonDependent) 1194 return Sema::TDK_Success; 1195 1196 if (TDF & TDF_IgnoreQualifiers) { 1197 Param = Param.getUnqualifiedType(); 1198 Arg = Arg.getUnqualifiedType(); 1199 } 1200 1201 return Param == Arg? Sema::TDK_Success : Sema::TDK_NonDeducedMismatch; 1202 } 1203 1204 // _Complex T [placeholder extension] 1205 case Type::Complex: 1206 if (const ComplexType *ComplexArg = Arg->getAs<ComplexType>()) 1207 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1208 cast<ComplexType>(Param)->getElementType(), 1209 ComplexArg->getElementType(), 1210 Info, Deduced, TDF); 1211 1212 return Sema::TDK_NonDeducedMismatch; 1213 1214 // _Atomic T [extension] 1215 case Type::Atomic: 1216 if (const AtomicType *AtomicArg = Arg->getAs<AtomicType>()) 1217 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1218 cast<AtomicType>(Param)->getValueType(), 1219 AtomicArg->getValueType(), 1220 Info, Deduced, TDF); 1221 1222 return Sema::TDK_NonDeducedMismatch; 1223 1224 // T * 1225 case Type::Pointer: { 1226 QualType PointeeType; 1227 if (const PointerType *PointerArg = Arg->getAs<PointerType>()) { 1228 PointeeType = PointerArg->getPointeeType(); 1229 } else if (const ObjCObjectPointerType *PointerArg 1230 = Arg->getAs<ObjCObjectPointerType>()) { 1231 PointeeType = PointerArg->getPointeeType(); 1232 } else { 1233 return Sema::TDK_NonDeducedMismatch; 1234 } 1235 1236 unsigned SubTDF = TDF & (TDF_IgnoreQualifiers | TDF_DerivedClass); 1237 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1238 cast<PointerType>(Param)->getPointeeType(), 1239 PointeeType, 1240 Info, Deduced, SubTDF); 1241 } 1242 1243 // T & 1244 case Type::LValueReference: { 1245 const LValueReferenceType *ReferenceArg = Arg->getAs<LValueReferenceType>(); 1246 if (!ReferenceArg) 1247 return Sema::TDK_NonDeducedMismatch; 1248 1249 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1250 cast<LValueReferenceType>(Param)->getPointeeType(), 1251 ReferenceArg->getPointeeType(), Info, Deduced, 0); 1252 } 1253 1254 // T && [C++0x] 1255 case Type::RValueReference: { 1256 const RValueReferenceType *ReferenceArg = Arg->getAs<RValueReferenceType>(); 1257 if (!ReferenceArg) 1258 return Sema::TDK_NonDeducedMismatch; 1259 1260 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1261 cast<RValueReferenceType>(Param)->getPointeeType(), 1262 ReferenceArg->getPointeeType(), 1263 Info, Deduced, 0); 1264 } 1265 1266 // T [] (implied, but not stated explicitly) 1267 case Type::IncompleteArray: { 1268 const IncompleteArrayType *IncompleteArrayArg = 1269 S.Context.getAsIncompleteArrayType(Arg); 1270 if (!IncompleteArrayArg) 1271 return Sema::TDK_NonDeducedMismatch; 1272 1273 unsigned SubTDF = TDF & TDF_IgnoreQualifiers; 1274 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1275 S.Context.getAsIncompleteArrayType(Param)->getElementType(), 1276 IncompleteArrayArg->getElementType(), 1277 Info, Deduced, SubTDF); 1278 } 1279 1280 // T [integer-constant] 1281 case Type::ConstantArray: { 1282 const ConstantArrayType *ConstantArrayArg = 1283 S.Context.getAsConstantArrayType(Arg); 1284 if (!ConstantArrayArg) 1285 return Sema::TDK_NonDeducedMismatch; 1286 1287 const ConstantArrayType *ConstantArrayParm = 1288 S.Context.getAsConstantArrayType(Param); 1289 if (ConstantArrayArg->getSize() != ConstantArrayParm->getSize()) 1290 return Sema::TDK_NonDeducedMismatch; 1291 1292 unsigned SubTDF = TDF & TDF_IgnoreQualifiers; 1293 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1294 ConstantArrayParm->getElementType(), 1295 ConstantArrayArg->getElementType(), 1296 Info, Deduced, SubTDF); 1297 } 1298 1299 // type [i] 1300 case Type::DependentSizedArray: { 1301 const ArrayType *ArrayArg = S.Context.getAsArrayType(Arg); 1302 if (!ArrayArg) 1303 return Sema::TDK_NonDeducedMismatch; 1304 1305 unsigned SubTDF = TDF & TDF_IgnoreQualifiers; 1306 1307 // Check the element type of the arrays 1308 const DependentSizedArrayType *DependentArrayParm 1309 = S.Context.getAsDependentSizedArrayType(Param); 1310 if (Sema::TemplateDeductionResult Result 1311 = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1312 DependentArrayParm->getElementType(), 1313 ArrayArg->getElementType(), 1314 Info, Deduced, SubTDF)) 1315 return Result; 1316 1317 // Determine the array bound is something we can deduce. 1318 NonTypeTemplateParmDecl *NTTP 1319 = getDeducedParameterFromExpr(DependentArrayParm->getSizeExpr()); 1320 if (!NTTP) 1321 return Sema::TDK_Success; 1322 1323 // We can perform template argument deduction for the given non-type 1324 // template parameter. 1325 assert(NTTP->getDepth() == 0 && 1326 "Cannot deduce non-type template argument at depth > 0"); 1327 if (const ConstantArrayType *ConstantArrayArg 1328 = dyn_cast<ConstantArrayType>(ArrayArg)) { 1329 llvm::APSInt Size(ConstantArrayArg->getSize()); 1330 return DeduceNonTypeTemplateArgument(S, NTTP, Size, 1331 S.Context.getSizeType(), 1332 /*ArrayBound=*/true, 1333 Info, Deduced); 1334 } 1335 if (const DependentSizedArrayType *DependentArrayArg 1336 = dyn_cast<DependentSizedArrayType>(ArrayArg)) 1337 if (DependentArrayArg->getSizeExpr()) 1338 return DeduceNonTypeTemplateArgument(S, NTTP, 1339 DependentArrayArg->getSizeExpr(), 1340 Info, Deduced); 1341 1342 // Incomplete type does not match a dependently-sized array type 1343 return Sema::TDK_NonDeducedMismatch; 1344 } 1345 1346 // type(*)(T) 1347 // T(*)() 1348 // T(*)(T) 1349 case Type::FunctionProto: { 1350 unsigned SubTDF = TDF & TDF_TopLevelParameterTypeList; 1351 const FunctionProtoType *FunctionProtoArg = 1352 dyn_cast<FunctionProtoType>(Arg); 1353 if (!FunctionProtoArg) 1354 return Sema::TDK_NonDeducedMismatch; 1355 1356 const FunctionProtoType *FunctionProtoParam = 1357 cast<FunctionProtoType>(Param); 1358 1359 if (FunctionProtoParam->getTypeQuals() 1360 != FunctionProtoArg->getTypeQuals() || 1361 FunctionProtoParam->getRefQualifier() 1362 != FunctionProtoArg->getRefQualifier() || 1363 FunctionProtoParam->isVariadic() != FunctionProtoArg->isVariadic()) 1364 return Sema::TDK_NonDeducedMismatch; 1365 1366 // Check return types. 1367 if (Sema::TemplateDeductionResult Result 1368 = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1369 FunctionProtoParam->getResultType(), 1370 FunctionProtoArg->getResultType(), 1371 Info, Deduced, 0)) 1372 return Result; 1373 1374 return DeduceTemplateArguments(S, TemplateParams, 1375 FunctionProtoParam->arg_type_begin(), 1376 FunctionProtoParam->getNumArgs(), 1377 FunctionProtoArg->arg_type_begin(), 1378 FunctionProtoArg->getNumArgs(), 1379 Info, Deduced, SubTDF); 1380 } 1381 1382 case Type::InjectedClassName: { 1383 // Treat a template's injected-class-name as if the template 1384 // specialization type had been used. 1385 Param = cast<InjectedClassNameType>(Param) 1386 ->getInjectedSpecializationType(); 1387 assert(isa<TemplateSpecializationType>(Param) && 1388 "injected class name is not a template specialization type"); 1389 // fall through 1390 } 1391 1392 // template-name<T> (where template-name refers to a class template) 1393 // template-name<i> 1394 // TT<T> 1395 // TT<i> 1396 // TT<> 1397 case Type::TemplateSpecialization: { 1398 const TemplateSpecializationType *SpecParam 1399 = cast<TemplateSpecializationType>(Param); 1400 1401 // Try to deduce template arguments from the template-id. 1402 Sema::TemplateDeductionResult Result 1403 = DeduceTemplateArguments(S, TemplateParams, SpecParam, Arg, 1404 Info, Deduced); 1405 1406 if (Result && (TDF & TDF_DerivedClass)) { 1407 // C++ [temp.deduct.call]p3b3: 1408 // If P is a class, and P has the form template-id, then A can be a 1409 // derived class of the deduced A. Likewise, if P is a pointer to a 1410 // class of the form template-id, A can be a pointer to a derived 1411 // class pointed to by the deduced A. 1412 // 1413 // More importantly: 1414 // These alternatives are considered only if type deduction would 1415 // otherwise fail. 1416 if (const RecordType *RecordT = Arg->getAs<RecordType>()) { 1417 // We cannot inspect base classes as part of deduction when the type 1418 // is incomplete, so either instantiate any templates necessary to 1419 // complete the type, or skip over it if it cannot be completed. 1420 if (S.RequireCompleteType(Info.getLocation(), Arg, 0)) 1421 return Result; 1422 1423 // Use data recursion to crawl through the list of base classes. 1424 // Visited contains the set of nodes we have already visited, while 1425 // ToVisit is our stack of records that we still need to visit. 1426 llvm::SmallPtrSet<const RecordType *, 8> Visited; 1427 SmallVector<const RecordType *, 8> ToVisit; 1428 ToVisit.push_back(RecordT); 1429 bool Successful = false; 1430 SmallVector<DeducedTemplateArgument, 8> DeducedOrig(Deduced.begin(), 1431 Deduced.end()); 1432 while (!ToVisit.empty()) { 1433 // Retrieve the next class in the inheritance hierarchy. 1434 const RecordType *NextT = ToVisit.pop_back_val(); 1435 1436 // If we have already seen this type, skip it. 1437 if (!Visited.insert(NextT)) 1438 continue; 1439 1440 // If this is a base class, try to perform template argument 1441 // deduction from it. 1442 if (NextT != RecordT) { 1443 TemplateDeductionInfo BaseInfo(Info.getLocation()); 1444 Sema::TemplateDeductionResult BaseResult 1445 = DeduceTemplateArguments(S, TemplateParams, SpecParam, 1446 QualType(NextT, 0), BaseInfo, 1447 Deduced); 1448 1449 // If template argument deduction for this base was successful, 1450 // note that we had some success. Otherwise, ignore any deductions 1451 // from this base class. 1452 if (BaseResult == Sema::TDK_Success) { 1453 Successful = true; 1454 DeducedOrig.clear(); 1455 DeducedOrig.append(Deduced.begin(), Deduced.end()); 1456 Info.Param = BaseInfo.Param; 1457 Info.FirstArg = BaseInfo.FirstArg; 1458 Info.SecondArg = BaseInfo.SecondArg; 1459 } 1460 else 1461 Deduced = DeducedOrig; 1462 } 1463 1464 // Visit base classes 1465 CXXRecordDecl *Next = cast<CXXRecordDecl>(NextT->getDecl()); 1466 for (CXXRecordDecl::base_class_iterator Base = Next->bases_begin(), 1467 BaseEnd = Next->bases_end(); 1468 Base != BaseEnd; ++Base) { 1469 assert(Base->getType()->isRecordType() && 1470 "Base class that isn't a record?"); 1471 ToVisit.push_back(Base->getType()->getAs<RecordType>()); 1472 } 1473 } 1474 1475 if (Successful) 1476 return Sema::TDK_Success; 1477 } 1478 1479 } 1480 1481 return Result; 1482 } 1483 1484 // T type::* 1485 // T T::* 1486 // T (type::*)() 1487 // type (T::*)() 1488 // type (type::*)(T) 1489 // type (T::*)(T) 1490 // T (type::*)(T) 1491 // T (T::*)() 1492 // T (T::*)(T) 1493 case Type::MemberPointer: { 1494 const MemberPointerType *MemPtrParam = cast<MemberPointerType>(Param); 1495 const MemberPointerType *MemPtrArg = dyn_cast<MemberPointerType>(Arg); 1496 if (!MemPtrArg) 1497 return Sema::TDK_NonDeducedMismatch; 1498 1499 if (Sema::TemplateDeductionResult Result 1500 = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1501 MemPtrParam->getPointeeType(), 1502 MemPtrArg->getPointeeType(), 1503 Info, Deduced, 1504 TDF & TDF_IgnoreQualifiers)) 1505 return Result; 1506 1507 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1508 QualType(MemPtrParam->getClass(), 0), 1509 QualType(MemPtrArg->getClass(), 0), 1510 Info, Deduced, 1511 TDF & TDF_IgnoreQualifiers); 1512 } 1513 1514 // (clang extension) 1515 // 1516 // type(^)(T) 1517 // T(^)() 1518 // T(^)(T) 1519 case Type::BlockPointer: { 1520 const BlockPointerType *BlockPtrParam = cast<BlockPointerType>(Param); 1521 const BlockPointerType *BlockPtrArg = dyn_cast<BlockPointerType>(Arg); 1522 1523 if (!BlockPtrArg) 1524 return Sema::TDK_NonDeducedMismatch; 1525 1526 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1527 BlockPtrParam->getPointeeType(), 1528 BlockPtrArg->getPointeeType(), 1529 Info, Deduced, 0); 1530 } 1531 1532 // (clang extension) 1533 // 1534 // T __attribute__(((ext_vector_type(<integral constant>)))) 1535 case Type::ExtVector: { 1536 const ExtVectorType *VectorParam = cast<ExtVectorType>(Param); 1537 if (const ExtVectorType *VectorArg = dyn_cast<ExtVectorType>(Arg)) { 1538 // Make sure that the vectors have the same number of elements. 1539 if (VectorParam->getNumElements() != VectorArg->getNumElements()) 1540 return Sema::TDK_NonDeducedMismatch; 1541 1542 // Perform deduction on the element types. 1543 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1544 VectorParam->getElementType(), 1545 VectorArg->getElementType(), 1546 Info, Deduced, TDF); 1547 } 1548 1549 if (const DependentSizedExtVectorType *VectorArg 1550 = dyn_cast<DependentSizedExtVectorType>(Arg)) { 1551 // We can't check the number of elements, since the argument has a 1552 // dependent number of elements. This can only occur during partial 1553 // ordering. 1554 1555 // Perform deduction on the element types. 1556 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1557 VectorParam->getElementType(), 1558 VectorArg->getElementType(), 1559 Info, Deduced, TDF); 1560 } 1561 1562 return Sema::TDK_NonDeducedMismatch; 1563 } 1564 1565 // (clang extension) 1566 // 1567 // T __attribute__(((ext_vector_type(N)))) 1568 case Type::DependentSizedExtVector: { 1569 const DependentSizedExtVectorType *VectorParam 1570 = cast<DependentSizedExtVectorType>(Param); 1571 1572 if (const ExtVectorType *VectorArg = dyn_cast<ExtVectorType>(Arg)) { 1573 // Perform deduction on the element types. 1574 if (Sema::TemplateDeductionResult Result 1575 = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1576 VectorParam->getElementType(), 1577 VectorArg->getElementType(), 1578 Info, Deduced, TDF)) 1579 return Result; 1580 1581 // Perform deduction on the vector size, if we can. 1582 NonTypeTemplateParmDecl *NTTP 1583 = getDeducedParameterFromExpr(VectorParam->getSizeExpr()); 1584 if (!NTTP) 1585 return Sema::TDK_Success; 1586 1587 llvm::APSInt ArgSize(S.Context.getTypeSize(S.Context.IntTy), false); 1588 ArgSize = VectorArg->getNumElements(); 1589 return DeduceNonTypeTemplateArgument(S, NTTP, ArgSize, S.Context.IntTy, 1590 false, Info, Deduced); 1591 } 1592 1593 if (const DependentSizedExtVectorType *VectorArg 1594 = dyn_cast<DependentSizedExtVectorType>(Arg)) { 1595 // Perform deduction on the element types. 1596 if (Sema::TemplateDeductionResult Result 1597 = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1598 VectorParam->getElementType(), 1599 VectorArg->getElementType(), 1600 Info, Deduced, TDF)) 1601 return Result; 1602 1603 // Perform deduction on the vector size, if we can. 1604 NonTypeTemplateParmDecl *NTTP 1605 = getDeducedParameterFromExpr(VectorParam->getSizeExpr()); 1606 if (!NTTP) 1607 return Sema::TDK_Success; 1608 1609 return DeduceNonTypeTemplateArgument(S, NTTP, VectorArg->getSizeExpr(), 1610 Info, Deduced); 1611 } 1612 1613 return Sema::TDK_NonDeducedMismatch; 1614 } 1615 1616 case Type::TypeOfExpr: 1617 case Type::TypeOf: 1618 case Type::DependentName: 1619 case Type::UnresolvedUsing: 1620 case Type::Decltype: 1621 case Type::UnaryTransform: 1622 case Type::Auto: 1623 case Type::DependentTemplateSpecialization: 1624 case Type::PackExpansion: 1625 // No template argument deduction for these types 1626 return Sema::TDK_Success; 1627 } 1628 1629 llvm_unreachable("Invalid Type Class!"); 1630 } 1631 1632 static Sema::TemplateDeductionResult 1633 DeduceTemplateArguments(Sema &S, 1634 TemplateParameterList *TemplateParams, 1635 const TemplateArgument &Param, 1636 TemplateArgument Arg, 1637 TemplateDeductionInfo &Info, 1638 SmallVectorImpl<DeducedTemplateArgument> &Deduced) { 1639 // If the template argument is a pack expansion, perform template argument 1640 // deduction against the pattern of that expansion. This only occurs during 1641 // partial ordering. 1642 if (Arg.isPackExpansion()) 1643 Arg = Arg.getPackExpansionPattern(); 1644 1645 switch (Param.getKind()) { 1646 case TemplateArgument::Null: 1647 llvm_unreachable("Null template argument in parameter list"); 1648 1649 case TemplateArgument::Type: 1650 if (Arg.getKind() == TemplateArgument::Type) 1651 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 1652 Param.getAsType(), 1653 Arg.getAsType(), 1654 Info, Deduced, 0); 1655 Info.FirstArg = Param; 1656 Info.SecondArg = Arg; 1657 return Sema::TDK_NonDeducedMismatch; 1658 1659 case TemplateArgument::Template: 1660 if (Arg.getKind() == TemplateArgument::Template) 1661 return DeduceTemplateArguments(S, TemplateParams, 1662 Param.getAsTemplate(), 1663 Arg.getAsTemplate(), Info, Deduced); 1664 Info.FirstArg = Param; 1665 Info.SecondArg = Arg; 1666 return Sema::TDK_NonDeducedMismatch; 1667 1668 case TemplateArgument::TemplateExpansion: 1669 llvm_unreachable("caller should handle pack expansions"); 1670 1671 case TemplateArgument::Declaration: 1672 if (Arg.getKind() == TemplateArgument::Declaration && 1673 isSameDeclaration(Param.getAsDecl(), Arg.getAsDecl()) && 1674 Param.isDeclForReferenceParam() == Arg.isDeclForReferenceParam()) 1675 return Sema::TDK_Success; 1676 1677 Info.FirstArg = Param; 1678 Info.SecondArg = Arg; 1679 return Sema::TDK_NonDeducedMismatch; 1680 1681 case TemplateArgument::NullPtr: 1682 if (Arg.getKind() == TemplateArgument::NullPtr && 1683 S.Context.hasSameType(Param.getNullPtrType(), Arg.getNullPtrType())) 1684 return Sema::TDK_Success; 1685 1686 Info.FirstArg = Param; 1687 Info.SecondArg = Arg; 1688 return Sema::TDK_NonDeducedMismatch; 1689 1690 case TemplateArgument::Integral: 1691 if (Arg.getKind() == TemplateArgument::Integral) { 1692 if (hasSameExtendedValue(Param.getAsIntegral(), Arg.getAsIntegral())) 1693 return Sema::TDK_Success; 1694 1695 Info.FirstArg = Param; 1696 Info.SecondArg = Arg; 1697 return Sema::TDK_NonDeducedMismatch; 1698 } 1699 1700 if (Arg.getKind() == TemplateArgument::Expression) { 1701 Info.FirstArg = Param; 1702 Info.SecondArg = Arg; 1703 return Sema::TDK_NonDeducedMismatch; 1704 } 1705 1706 Info.FirstArg = Param; 1707 Info.SecondArg = Arg; 1708 return Sema::TDK_NonDeducedMismatch; 1709 1710 case TemplateArgument::Expression: { 1711 if (NonTypeTemplateParmDecl *NTTP 1712 = getDeducedParameterFromExpr(Param.getAsExpr())) { 1713 if (Arg.getKind() == TemplateArgument::Integral) 1714 return DeduceNonTypeTemplateArgument(S, NTTP, 1715 Arg.getAsIntegral(), 1716 Arg.getIntegralType(), 1717 /*ArrayBound=*/false, 1718 Info, Deduced); 1719 if (Arg.getKind() == TemplateArgument::Expression) 1720 return DeduceNonTypeTemplateArgument(S, NTTP, Arg.getAsExpr(), 1721 Info, Deduced); 1722 if (Arg.getKind() == TemplateArgument::Declaration) 1723 return DeduceNonTypeTemplateArgument(S, NTTP, Arg.getAsDecl(), 1724 Info, Deduced); 1725 1726 Info.FirstArg = Param; 1727 Info.SecondArg = Arg; 1728 return Sema::TDK_NonDeducedMismatch; 1729 } 1730 1731 // Can't deduce anything, but that's okay. 1732 return Sema::TDK_Success; 1733 } 1734 case TemplateArgument::Pack: 1735 llvm_unreachable("Argument packs should be expanded by the caller!"); 1736 } 1737 1738 llvm_unreachable("Invalid TemplateArgument Kind!"); 1739 } 1740 1741 /// \brief Determine whether there is a template argument to be used for 1742 /// deduction. 1743 /// 1744 /// This routine "expands" argument packs in-place, overriding its input 1745 /// parameters so that \c Args[ArgIdx] will be the available template argument. 1746 /// 1747 /// \returns true if there is another template argument (which will be at 1748 /// \c Args[ArgIdx]), false otherwise. 1749 static bool hasTemplateArgumentForDeduction(const TemplateArgument *&Args, 1750 unsigned &ArgIdx, 1751 unsigned &NumArgs) { 1752 if (ArgIdx == NumArgs) 1753 return false; 1754 1755 const TemplateArgument &Arg = Args[ArgIdx]; 1756 if (Arg.getKind() != TemplateArgument::Pack) 1757 return true; 1758 1759 assert(ArgIdx == NumArgs - 1 && "Pack not at the end of argument list?"); 1760 Args = Arg.pack_begin(); 1761 NumArgs = Arg.pack_size(); 1762 ArgIdx = 0; 1763 return ArgIdx < NumArgs; 1764 } 1765 1766 /// \brief Determine whether the given set of template arguments has a pack 1767 /// expansion that is not the last template argument. 1768 static bool hasPackExpansionBeforeEnd(const TemplateArgument *Args, 1769 unsigned NumArgs) { 1770 unsigned ArgIdx = 0; 1771 while (ArgIdx < NumArgs) { 1772 const TemplateArgument &Arg = Args[ArgIdx]; 1773 1774 // Unwrap argument packs. 1775 if (Args[ArgIdx].getKind() == TemplateArgument::Pack) { 1776 Args = Arg.pack_begin(); 1777 NumArgs = Arg.pack_size(); 1778 ArgIdx = 0; 1779 continue; 1780 } 1781 1782 ++ArgIdx; 1783 if (ArgIdx == NumArgs) 1784 return false; 1785 1786 if (Arg.isPackExpansion()) 1787 return true; 1788 } 1789 1790 return false; 1791 } 1792 1793 static Sema::TemplateDeductionResult 1794 DeduceTemplateArguments(Sema &S, 1795 TemplateParameterList *TemplateParams, 1796 const TemplateArgument *Params, unsigned NumParams, 1797 const TemplateArgument *Args, unsigned NumArgs, 1798 TemplateDeductionInfo &Info, 1799 SmallVectorImpl<DeducedTemplateArgument> &Deduced) { 1800 // C++0x [temp.deduct.type]p9: 1801 // If the template argument list of P contains a pack expansion that is not 1802 // the last template argument, the entire template argument list is a 1803 // non-deduced context. 1804 if (hasPackExpansionBeforeEnd(Params, NumParams)) 1805 return Sema::TDK_Success; 1806 1807 // C++0x [temp.deduct.type]p9: 1808 // If P has a form that contains <T> or <i>, then each argument Pi of the 1809 // respective template argument list P is compared with the corresponding 1810 // argument Ai of the corresponding template argument list of A. 1811 unsigned ArgIdx = 0, ParamIdx = 0; 1812 for (; hasTemplateArgumentForDeduction(Params, ParamIdx, NumParams); 1813 ++ParamIdx) { 1814 if (!Params[ParamIdx].isPackExpansion()) { 1815 // The simple case: deduce template arguments by matching Pi and Ai. 1816 1817 // Check whether we have enough arguments. 1818 if (!hasTemplateArgumentForDeduction(Args, ArgIdx, NumArgs)) 1819 return Sema::TDK_Success; 1820 1821 if (Args[ArgIdx].isPackExpansion()) { 1822 // FIXME: We follow the logic of C++0x [temp.deduct.type]p22 here, 1823 // but applied to pack expansions that are template arguments. 1824 return Sema::TDK_MiscellaneousDeductionFailure; 1825 } 1826 1827 // Perform deduction for this Pi/Ai pair. 1828 if (Sema::TemplateDeductionResult Result 1829 = DeduceTemplateArguments(S, TemplateParams, 1830 Params[ParamIdx], Args[ArgIdx], 1831 Info, Deduced)) 1832 return Result; 1833 1834 // Move to the next argument. 1835 ++ArgIdx; 1836 continue; 1837 } 1838 1839 // The parameter is a pack expansion. 1840 1841 // C++0x [temp.deduct.type]p9: 1842 // If Pi is a pack expansion, then the pattern of Pi is compared with 1843 // each remaining argument in the template argument list of A. Each 1844 // comparison deduces template arguments for subsequent positions in the 1845 // template parameter packs expanded by Pi. 1846 TemplateArgument Pattern = Params[ParamIdx].getPackExpansionPattern(); 1847 1848 // Compute the set of template parameter indices that correspond to 1849 // parameter packs expanded by the pack expansion. 1850 SmallVector<unsigned, 2> PackIndices; 1851 { 1852 llvm::SmallBitVector SawIndices(TemplateParams->size()); 1853 SmallVector<UnexpandedParameterPack, 2> Unexpanded; 1854 S.collectUnexpandedParameterPacks(Pattern, Unexpanded); 1855 for (unsigned I = 0, N = Unexpanded.size(); I != N; ++I) { 1856 unsigned Depth, Index; 1857 llvm::tie(Depth, Index) = getDepthAndIndex(Unexpanded[I]); 1858 if (Depth == 0 && !SawIndices[Index]) { 1859 SawIndices[Index] = true; 1860 PackIndices.push_back(Index); 1861 } 1862 } 1863 } 1864 assert(!PackIndices.empty() && "Pack expansion without unexpanded packs?"); 1865 1866 // FIXME: If there are no remaining arguments, we can bail out early 1867 // and set any deduced parameter packs to an empty argument pack. 1868 // The latter part of this is a (minor) correctness issue. 1869 1870 // Save the deduced template arguments for each parameter pack expanded 1871 // by this pack expansion, then clear out the deduction. 1872 SmallVector<DeducedTemplateArgument, 2> 1873 SavedPacks(PackIndices.size()); 1874 NewlyDeducedPacksType NewlyDeducedPacks(PackIndices.size()); 1875 PrepareArgumentPackDeduction(S, Deduced, PackIndices, SavedPacks, 1876 NewlyDeducedPacks); 1877 1878 // Keep track of the deduced template arguments for each parameter pack 1879 // expanded by this pack expansion (the outer index) and for each 1880 // template argument (the inner SmallVectors). 1881 bool HasAnyArguments = false; 1882 while (hasTemplateArgumentForDeduction(Args, ArgIdx, NumArgs)) { 1883 HasAnyArguments = true; 1884 1885 // Deduce template arguments from the pattern. 1886 if (Sema::TemplateDeductionResult Result 1887 = DeduceTemplateArguments(S, TemplateParams, Pattern, Args[ArgIdx], 1888 Info, Deduced)) 1889 return Result; 1890 1891 // Capture the deduced template arguments for each parameter pack expanded 1892 // by this pack expansion, add them to the list of arguments we've deduced 1893 // for that pack, then clear out the deduced argument. 1894 for (unsigned I = 0, N = PackIndices.size(); I != N; ++I) { 1895 DeducedTemplateArgument &DeducedArg = Deduced[PackIndices[I]]; 1896 if (!DeducedArg.isNull()) { 1897 NewlyDeducedPacks[I].push_back(DeducedArg); 1898 DeducedArg = DeducedTemplateArgument(); 1899 } 1900 } 1901 1902 ++ArgIdx; 1903 } 1904 1905 // Build argument packs for each of the parameter packs expanded by this 1906 // pack expansion. 1907 if (Sema::TemplateDeductionResult Result 1908 = FinishArgumentPackDeduction(S, TemplateParams, HasAnyArguments, 1909 Deduced, PackIndices, SavedPacks, 1910 NewlyDeducedPacks, Info)) 1911 return Result; 1912 } 1913 1914 return Sema::TDK_Success; 1915 } 1916 1917 static Sema::TemplateDeductionResult 1918 DeduceTemplateArguments(Sema &S, 1919 TemplateParameterList *TemplateParams, 1920 const TemplateArgumentList &ParamList, 1921 const TemplateArgumentList &ArgList, 1922 TemplateDeductionInfo &Info, 1923 SmallVectorImpl<DeducedTemplateArgument> &Deduced) { 1924 return DeduceTemplateArguments(S, TemplateParams, 1925 ParamList.data(), ParamList.size(), 1926 ArgList.data(), ArgList.size(), 1927 Info, Deduced); 1928 } 1929 1930 /// \brief Determine whether two template arguments are the same. 1931 static bool isSameTemplateArg(ASTContext &Context, 1932 const TemplateArgument &X, 1933 const TemplateArgument &Y) { 1934 if (X.getKind() != Y.getKind()) 1935 return false; 1936 1937 switch (X.getKind()) { 1938 case TemplateArgument::Null: 1939 llvm_unreachable("Comparing NULL template argument"); 1940 1941 case TemplateArgument::Type: 1942 return Context.getCanonicalType(X.getAsType()) == 1943 Context.getCanonicalType(Y.getAsType()); 1944 1945 case TemplateArgument::Declaration: 1946 return isSameDeclaration(X.getAsDecl(), Y.getAsDecl()) && 1947 X.isDeclForReferenceParam() == Y.isDeclForReferenceParam(); 1948 1949 case TemplateArgument::NullPtr: 1950 return Context.hasSameType(X.getNullPtrType(), Y.getNullPtrType()); 1951 1952 case TemplateArgument::Template: 1953 case TemplateArgument::TemplateExpansion: 1954 return Context.getCanonicalTemplateName( 1955 X.getAsTemplateOrTemplatePattern()).getAsVoidPointer() == 1956 Context.getCanonicalTemplateName( 1957 Y.getAsTemplateOrTemplatePattern()).getAsVoidPointer(); 1958 1959 case TemplateArgument::Integral: 1960 return X.getAsIntegral() == Y.getAsIntegral(); 1961 1962 case TemplateArgument::Expression: { 1963 llvm::FoldingSetNodeID XID, YID; 1964 X.getAsExpr()->Profile(XID, Context, true); 1965 Y.getAsExpr()->Profile(YID, Context, true); 1966 return XID == YID; 1967 } 1968 1969 case TemplateArgument::Pack: 1970 if (X.pack_size() != Y.pack_size()) 1971 return false; 1972 1973 for (TemplateArgument::pack_iterator XP = X.pack_begin(), 1974 XPEnd = X.pack_end(), 1975 YP = Y.pack_begin(); 1976 XP != XPEnd; ++XP, ++YP) 1977 if (!isSameTemplateArg(Context, *XP, *YP)) 1978 return false; 1979 1980 return true; 1981 } 1982 1983 llvm_unreachable("Invalid TemplateArgument Kind!"); 1984 } 1985 1986 /// \brief Allocate a TemplateArgumentLoc where all locations have 1987 /// been initialized to the given location. 1988 /// 1989 /// \param S The semantic analysis object. 1990 /// 1991 /// \param Arg The template argument we are producing template argument 1992 /// location information for. 1993 /// 1994 /// \param NTTPType For a declaration template argument, the type of 1995 /// the non-type template parameter that corresponds to this template 1996 /// argument. 1997 /// 1998 /// \param Loc The source location to use for the resulting template 1999 /// argument. 2000 static TemplateArgumentLoc 2001 getTrivialTemplateArgumentLoc(Sema &S, 2002 const TemplateArgument &Arg, 2003 QualType NTTPType, 2004 SourceLocation Loc) { 2005 switch (Arg.getKind()) { 2006 case TemplateArgument::Null: 2007 llvm_unreachable("Can't get a NULL template argument here"); 2008 2009 case TemplateArgument::Type: 2010 return TemplateArgumentLoc(Arg, 2011 S.Context.getTrivialTypeSourceInfo(Arg.getAsType(), Loc)); 2012 2013 case TemplateArgument::Declaration: { 2014 Expr *E 2015 = S.BuildExpressionFromDeclTemplateArgument(Arg, NTTPType, Loc) 2016 .takeAs<Expr>(); 2017 return TemplateArgumentLoc(TemplateArgument(E), E); 2018 } 2019 2020 case TemplateArgument::NullPtr: { 2021 Expr *E 2022 = S.BuildExpressionFromDeclTemplateArgument(Arg, NTTPType, Loc) 2023 .takeAs<Expr>(); 2024 return TemplateArgumentLoc(TemplateArgument(NTTPType, /*isNullPtr*/true), 2025 E); 2026 } 2027 2028 case TemplateArgument::Integral: { 2029 Expr *E 2030 = S.BuildExpressionFromIntegralTemplateArgument(Arg, Loc).takeAs<Expr>(); 2031 return TemplateArgumentLoc(TemplateArgument(E), E); 2032 } 2033 2034 case TemplateArgument::Template: 2035 case TemplateArgument::TemplateExpansion: { 2036 NestedNameSpecifierLocBuilder Builder; 2037 TemplateName Template = Arg.getAsTemplate(); 2038 if (DependentTemplateName *DTN = Template.getAsDependentTemplateName()) 2039 Builder.MakeTrivial(S.Context, DTN->getQualifier(), Loc); 2040 else if (QualifiedTemplateName *QTN = Template.getAsQualifiedTemplateName()) 2041 Builder.MakeTrivial(S.Context, QTN->getQualifier(), Loc); 2042 2043 if (Arg.getKind() == TemplateArgument::Template) 2044 return TemplateArgumentLoc(Arg, 2045 Builder.getWithLocInContext(S.Context), 2046 Loc); 2047 2048 2049 return TemplateArgumentLoc(Arg, Builder.getWithLocInContext(S.Context), 2050 Loc, Loc); 2051 } 2052 2053 case TemplateArgument::Expression: 2054 return TemplateArgumentLoc(Arg, Arg.getAsExpr()); 2055 2056 case TemplateArgument::Pack: 2057 return TemplateArgumentLoc(Arg, TemplateArgumentLocInfo()); 2058 } 2059 2060 llvm_unreachable("Invalid TemplateArgument Kind!"); 2061 } 2062 2063 2064 /// \brief Convert the given deduced template argument and add it to the set of 2065 /// fully-converted template arguments. 2066 static bool 2067 ConvertDeducedTemplateArgument(Sema &S, NamedDecl *Param, 2068 DeducedTemplateArgument Arg, 2069 NamedDecl *Template, 2070 QualType NTTPType, 2071 unsigned ArgumentPackIndex, 2072 TemplateDeductionInfo &Info, 2073 bool InFunctionTemplate, 2074 SmallVectorImpl<TemplateArgument> &Output) { 2075 if (Arg.getKind() == TemplateArgument::Pack) { 2076 // This is a template argument pack, so check each of its arguments against 2077 // the template parameter. 2078 SmallVector<TemplateArgument, 2> PackedArgsBuilder; 2079 for (TemplateArgument::pack_iterator PA = Arg.pack_begin(), 2080 PAEnd = Arg.pack_end(); 2081 PA != PAEnd; ++PA) { 2082 // When converting the deduced template argument, append it to the 2083 // general output list. We need to do this so that the template argument 2084 // checking logic has all of the prior template arguments available. 2085 DeducedTemplateArgument InnerArg(*PA); 2086 InnerArg.setDeducedFromArrayBound(Arg.wasDeducedFromArrayBound()); 2087 if (ConvertDeducedTemplateArgument(S, Param, InnerArg, Template, 2088 NTTPType, PackedArgsBuilder.size(), 2089 Info, InFunctionTemplate, Output)) 2090 return true; 2091 2092 // Move the converted template argument into our argument pack. 2093 PackedArgsBuilder.push_back(Output.pop_back_val()); 2094 } 2095 2096 // Create the resulting argument pack. 2097 Output.push_back(TemplateArgument::CreatePackCopy(S.Context, 2098 PackedArgsBuilder.data(), 2099 PackedArgsBuilder.size())); 2100 return false; 2101 } 2102 2103 // Convert the deduced template argument into a template 2104 // argument that we can check, almost as if the user had written 2105 // the template argument explicitly. 2106 TemplateArgumentLoc ArgLoc = getTrivialTemplateArgumentLoc(S, Arg, NTTPType, 2107 Info.getLocation()); 2108 2109 // Check the template argument, converting it as necessary. 2110 return S.CheckTemplateArgument(Param, ArgLoc, 2111 Template, 2112 Template->getLocation(), 2113 Template->getSourceRange().getEnd(), 2114 ArgumentPackIndex, 2115 Output, 2116 InFunctionTemplate 2117 ? (Arg.wasDeducedFromArrayBound() 2118 ? Sema::CTAK_DeducedFromArrayBound 2119 : Sema::CTAK_Deduced) 2120 : Sema::CTAK_Specified); 2121 } 2122 2123 /// Complete template argument deduction for a class template partial 2124 /// specialization. 2125 static Sema::TemplateDeductionResult 2126 FinishTemplateArgumentDeduction(Sema &S, 2127 ClassTemplatePartialSpecializationDecl *Partial, 2128 const TemplateArgumentList &TemplateArgs, 2129 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 2130 TemplateDeductionInfo &Info) { 2131 // Unevaluated SFINAE context. 2132 EnterExpressionEvaluationContext Unevaluated(S, Sema::Unevaluated); 2133 Sema::SFINAETrap Trap(S); 2134 2135 Sema::ContextRAII SavedContext(S, Partial); 2136 2137 // C++ [temp.deduct.type]p2: 2138 // [...] or if any template argument remains neither deduced nor 2139 // explicitly specified, template argument deduction fails. 2140 SmallVector<TemplateArgument, 4> Builder; 2141 TemplateParameterList *PartialParams = Partial->getTemplateParameters(); 2142 for (unsigned I = 0, N = PartialParams->size(); I != N; ++I) { 2143 NamedDecl *Param = PartialParams->getParam(I); 2144 if (Deduced[I].isNull()) { 2145 Info.Param = makeTemplateParameter(Param); 2146 return Sema::TDK_Incomplete; 2147 } 2148 2149 // We have deduced this argument, so it still needs to be 2150 // checked and converted. 2151 2152 // First, for a non-type template parameter type that is 2153 // initialized by a declaration, we need the type of the 2154 // corresponding non-type template parameter. 2155 QualType NTTPType; 2156 if (NonTypeTemplateParmDecl *NTTP 2157 = dyn_cast<NonTypeTemplateParmDecl>(Param)) { 2158 NTTPType = NTTP->getType(); 2159 if (NTTPType->isDependentType()) { 2160 TemplateArgumentList TemplateArgs(TemplateArgumentList::OnStack, 2161 Builder.data(), Builder.size()); 2162 NTTPType = S.SubstType(NTTPType, 2163 MultiLevelTemplateArgumentList(TemplateArgs), 2164 NTTP->getLocation(), 2165 NTTP->getDeclName()); 2166 if (NTTPType.isNull()) { 2167 Info.Param = makeTemplateParameter(Param); 2168 // FIXME: These template arguments are temporary. Free them! 2169 Info.reset(TemplateArgumentList::CreateCopy(S.Context, 2170 Builder.data(), 2171 Builder.size())); 2172 return Sema::TDK_SubstitutionFailure; 2173 } 2174 } 2175 } 2176 2177 if (ConvertDeducedTemplateArgument(S, Param, Deduced[I], 2178 Partial, NTTPType, 0, Info, false, 2179 Builder)) { 2180 Info.Param = makeTemplateParameter(Param); 2181 // FIXME: These template arguments are temporary. Free them! 2182 Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder.data(), 2183 Builder.size())); 2184 return Sema::TDK_SubstitutionFailure; 2185 } 2186 } 2187 2188 // Form the template argument list from the deduced template arguments. 2189 TemplateArgumentList *DeducedArgumentList 2190 = TemplateArgumentList::CreateCopy(S.Context, Builder.data(), 2191 Builder.size()); 2192 2193 Info.reset(DeducedArgumentList); 2194 2195 // Substitute the deduced template arguments into the template 2196 // arguments of the class template partial specialization, and 2197 // verify that the instantiated template arguments are both valid 2198 // and are equivalent to the template arguments originally provided 2199 // to the class template. 2200 LocalInstantiationScope InstScope(S); 2201 ClassTemplateDecl *ClassTemplate = Partial->getSpecializedTemplate(); 2202 const ASTTemplateArgumentListInfo *PartialTemplArgInfo 2203 = Partial->getTemplateArgsAsWritten(); 2204 const TemplateArgumentLoc *PartialTemplateArgs 2205 = PartialTemplArgInfo->getTemplateArgs(); 2206 2207 TemplateArgumentListInfo InstArgs(PartialTemplArgInfo->LAngleLoc, 2208 PartialTemplArgInfo->RAngleLoc); 2209 2210 if (S.Subst(PartialTemplateArgs, PartialTemplArgInfo->NumTemplateArgs, 2211 InstArgs, MultiLevelTemplateArgumentList(*DeducedArgumentList))) { 2212 unsigned ArgIdx = InstArgs.size(), ParamIdx = ArgIdx; 2213 if (ParamIdx >= Partial->getTemplateParameters()->size()) 2214 ParamIdx = Partial->getTemplateParameters()->size() - 1; 2215 2216 Decl *Param 2217 = const_cast<NamedDecl *>( 2218 Partial->getTemplateParameters()->getParam(ParamIdx)); 2219 Info.Param = makeTemplateParameter(Param); 2220 Info.FirstArg = PartialTemplateArgs[ArgIdx].getArgument(); 2221 return Sema::TDK_SubstitutionFailure; 2222 } 2223 2224 SmallVector<TemplateArgument, 4> ConvertedInstArgs; 2225 if (S.CheckTemplateArgumentList(ClassTemplate, Partial->getLocation(), 2226 InstArgs, false, ConvertedInstArgs)) 2227 return Sema::TDK_SubstitutionFailure; 2228 2229 TemplateParameterList *TemplateParams 2230 = ClassTemplate->getTemplateParameters(); 2231 for (unsigned I = 0, E = TemplateParams->size(); I != E; ++I) { 2232 TemplateArgument InstArg = ConvertedInstArgs.data()[I]; 2233 if (!isSameTemplateArg(S.Context, TemplateArgs[I], InstArg)) { 2234 Info.Param = makeTemplateParameter(TemplateParams->getParam(I)); 2235 Info.FirstArg = TemplateArgs[I]; 2236 Info.SecondArg = InstArg; 2237 return Sema::TDK_NonDeducedMismatch; 2238 } 2239 } 2240 2241 if (Trap.hasErrorOccurred()) 2242 return Sema::TDK_SubstitutionFailure; 2243 2244 return Sema::TDK_Success; 2245 } 2246 2247 /// \brief Perform template argument deduction to determine whether 2248 /// the given template arguments match the given class template 2249 /// partial specialization per C++ [temp.class.spec.match]. 2250 Sema::TemplateDeductionResult 2251 Sema::DeduceTemplateArguments(ClassTemplatePartialSpecializationDecl *Partial, 2252 const TemplateArgumentList &TemplateArgs, 2253 TemplateDeductionInfo &Info) { 2254 if (Partial->isInvalidDecl()) 2255 return TDK_Invalid; 2256 2257 // C++ [temp.class.spec.match]p2: 2258 // A partial specialization matches a given actual template 2259 // argument list if the template arguments of the partial 2260 // specialization can be deduced from the actual template argument 2261 // list (14.8.2). 2262 2263 // Unevaluated SFINAE context. 2264 EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated); 2265 SFINAETrap Trap(*this); 2266 2267 SmallVector<DeducedTemplateArgument, 4> Deduced; 2268 Deduced.resize(Partial->getTemplateParameters()->size()); 2269 if (TemplateDeductionResult Result 2270 = ::DeduceTemplateArguments(*this, 2271 Partial->getTemplateParameters(), 2272 Partial->getTemplateArgs(), 2273 TemplateArgs, Info, Deduced)) 2274 return Result; 2275 2276 SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end()); 2277 InstantiatingTemplate Inst(*this, Partial->getLocation(), Partial, 2278 DeducedArgs, Info); 2279 if (Inst.isInvalid()) 2280 return TDK_InstantiationDepth; 2281 2282 if (Trap.hasErrorOccurred()) 2283 return Sema::TDK_SubstitutionFailure; 2284 2285 return ::FinishTemplateArgumentDeduction(*this, Partial, TemplateArgs, 2286 Deduced, Info); 2287 } 2288 2289 /// Complete template argument deduction for a variable template partial 2290 /// specialization. 2291 /// TODO: Unify with ClassTemplatePartialSpecializationDecl version? 2292 /// May require unifying ClassTemplate(Partial)SpecializationDecl and 2293 /// VarTemplate(Partial)SpecializationDecl with a new data 2294 /// structure Template(Partial)SpecializationDecl, and 2295 /// using Template(Partial)SpecializationDecl as input type. 2296 static Sema::TemplateDeductionResult FinishTemplateArgumentDeduction( 2297 Sema &S, VarTemplatePartialSpecializationDecl *Partial, 2298 const TemplateArgumentList &TemplateArgs, 2299 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 2300 TemplateDeductionInfo &Info) { 2301 // Unevaluated SFINAE context. 2302 EnterExpressionEvaluationContext Unevaluated(S, Sema::Unevaluated); 2303 Sema::SFINAETrap Trap(S); 2304 2305 // C++ [temp.deduct.type]p2: 2306 // [...] or if any template argument remains neither deduced nor 2307 // explicitly specified, template argument deduction fails. 2308 SmallVector<TemplateArgument, 4> Builder; 2309 TemplateParameterList *PartialParams = Partial->getTemplateParameters(); 2310 for (unsigned I = 0, N = PartialParams->size(); I != N; ++I) { 2311 NamedDecl *Param = PartialParams->getParam(I); 2312 if (Deduced[I].isNull()) { 2313 Info.Param = makeTemplateParameter(Param); 2314 return Sema::TDK_Incomplete; 2315 } 2316 2317 // We have deduced this argument, so it still needs to be 2318 // checked and converted. 2319 2320 // First, for a non-type template parameter type that is 2321 // initialized by a declaration, we need the type of the 2322 // corresponding non-type template parameter. 2323 QualType NTTPType; 2324 if (NonTypeTemplateParmDecl *NTTP = 2325 dyn_cast<NonTypeTemplateParmDecl>(Param)) { 2326 NTTPType = NTTP->getType(); 2327 if (NTTPType->isDependentType()) { 2328 TemplateArgumentList TemplateArgs(TemplateArgumentList::OnStack, 2329 Builder.data(), Builder.size()); 2330 NTTPType = 2331 S.SubstType(NTTPType, MultiLevelTemplateArgumentList(TemplateArgs), 2332 NTTP->getLocation(), NTTP->getDeclName()); 2333 if (NTTPType.isNull()) { 2334 Info.Param = makeTemplateParameter(Param); 2335 // FIXME: These template arguments are temporary. Free them! 2336 Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder.data(), 2337 Builder.size())); 2338 return Sema::TDK_SubstitutionFailure; 2339 } 2340 } 2341 } 2342 2343 if (ConvertDeducedTemplateArgument(S, Param, Deduced[I], Partial, NTTPType, 2344 0, Info, false, Builder)) { 2345 Info.Param = makeTemplateParameter(Param); 2346 // FIXME: These template arguments are temporary. Free them! 2347 Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder.data(), 2348 Builder.size())); 2349 return Sema::TDK_SubstitutionFailure; 2350 } 2351 } 2352 2353 // Form the template argument list from the deduced template arguments. 2354 TemplateArgumentList *DeducedArgumentList = TemplateArgumentList::CreateCopy( 2355 S.Context, Builder.data(), Builder.size()); 2356 2357 Info.reset(DeducedArgumentList); 2358 2359 // Substitute the deduced template arguments into the template 2360 // arguments of the class template partial specialization, and 2361 // verify that the instantiated template arguments are both valid 2362 // and are equivalent to the template arguments originally provided 2363 // to the class template. 2364 LocalInstantiationScope InstScope(S); 2365 VarTemplateDecl *VarTemplate = Partial->getSpecializedTemplate(); 2366 const ASTTemplateArgumentListInfo *PartialTemplArgInfo 2367 = Partial->getTemplateArgsAsWritten(); 2368 const TemplateArgumentLoc *PartialTemplateArgs 2369 = PartialTemplArgInfo->getTemplateArgs(); 2370 2371 TemplateArgumentListInfo InstArgs(PartialTemplArgInfo->LAngleLoc, 2372 PartialTemplArgInfo->RAngleLoc); 2373 2374 if (S.Subst(PartialTemplateArgs, PartialTemplArgInfo->NumTemplateArgs, 2375 InstArgs, MultiLevelTemplateArgumentList(*DeducedArgumentList))) { 2376 unsigned ArgIdx = InstArgs.size(), ParamIdx = ArgIdx; 2377 if (ParamIdx >= Partial->getTemplateParameters()->size()) 2378 ParamIdx = Partial->getTemplateParameters()->size() - 1; 2379 2380 Decl *Param = const_cast<NamedDecl *>( 2381 Partial->getTemplateParameters()->getParam(ParamIdx)); 2382 Info.Param = makeTemplateParameter(Param); 2383 Info.FirstArg = PartialTemplateArgs[ArgIdx].getArgument(); 2384 return Sema::TDK_SubstitutionFailure; 2385 } 2386 SmallVector<TemplateArgument, 4> ConvertedInstArgs; 2387 if (S.CheckTemplateArgumentList(VarTemplate, Partial->getLocation(), InstArgs, 2388 false, ConvertedInstArgs)) 2389 return Sema::TDK_SubstitutionFailure; 2390 2391 TemplateParameterList *TemplateParams = VarTemplate->getTemplateParameters(); 2392 for (unsigned I = 0, E = TemplateParams->size(); I != E; ++I) { 2393 TemplateArgument InstArg = ConvertedInstArgs.data()[I]; 2394 if (!isSameTemplateArg(S.Context, TemplateArgs[I], InstArg)) { 2395 Info.Param = makeTemplateParameter(TemplateParams->getParam(I)); 2396 Info.FirstArg = TemplateArgs[I]; 2397 Info.SecondArg = InstArg; 2398 return Sema::TDK_NonDeducedMismatch; 2399 } 2400 } 2401 2402 if (Trap.hasErrorOccurred()) 2403 return Sema::TDK_SubstitutionFailure; 2404 2405 return Sema::TDK_Success; 2406 } 2407 2408 /// \brief Perform template argument deduction to determine whether 2409 /// the given template arguments match the given variable template 2410 /// partial specialization per C++ [temp.class.spec.match]. 2411 /// TODO: Unify with ClassTemplatePartialSpecializationDecl version? 2412 /// May require unifying ClassTemplate(Partial)SpecializationDecl and 2413 /// VarTemplate(Partial)SpecializationDecl with a new data 2414 /// structure Template(Partial)SpecializationDecl, and 2415 /// using Template(Partial)SpecializationDecl as input type. 2416 Sema::TemplateDeductionResult 2417 Sema::DeduceTemplateArguments(VarTemplatePartialSpecializationDecl *Partial, 2418 const TemplateArgumentList &TemplateArgs, 2419 TemplateDeductionInfo &Info) { 2420 if (Partial->isInvalidDecl()) 2421 return TDK_Invalid; 2422 2423 // C++ [temp.class.spec.match]p2: 2424 // A partial specialization matches a given actual template 2425 // argument list if the template arguments of the partial 2426 // specialization can be deduced from the actual template argument 2427 // list (14.8.2). 2428 2429 // Unevaluated SFINAE context. 2430 EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated); 2431 SFINAETrap Trap(*this); 2432 2433 SmallVector<DeducedTemplateArgument, 4> Deduced; 2434 Deduced.resize(Partial->getTemplateParameters()->size()); 2435 if (TemplateDeductionResult Result = ::DeduceTemplateArguments( 2436 *this, Partial->getTemplateParameters(), Partial->getTemplateArgs(), 2437 TemplateArgs, Info, Deduced)) 2438 return Result; 2439 2440 SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end()); 2441 InstantiatingTemplate Inst(*this, Partial->getLocation(), Partial, 2442 DeducedArgs, Info); 2443 if (Inst.isInvalid()) 2444 return TDK_InstantiationDepth; 2445 2446 if (Trap.hasErrorOccurred()) 2447 return Sema::TDK_SubstitutionFailure; 2448 2449 return ::FinishTemplateArgumentDeduction(*this, Partial, TemplateArgs, 2450 Deduced, Info); 2451 } 2452 2453 /// \brief Determine whether the given type T is a simple-template-id type. 2454 static bool isSimpleTemplateIdType(QualType T) { 2455 if (const TemplateSpecializationType *Spec 2456 = T->getAs<TemplateSpecializationType>()) 2457 return Spec->getTemplateName().getAsTemplateDecl() != 0; 2458 2459 return false; 2460 } 2461 2462 /// \brief Substitute the explicitly-provided template arguments into the 2463 /// given function template according to C++ [temp.arg.explicit]. 2464 /// 2465 /// \param FunctionTemplate the function template into which the explicit 2466 /// template arguments will be substituted. 2467 /// 2468 /// \param ExplicitTemplateArgs the explicitly-specified template 2469 /// arguments. 2470 /// 2471 /// \param Deduced the deduced template arguments, which will be populated 2472 /// with the converted and checked explicit template arguments. 2473 /// 2474 /// \param ParamTypes will be populated with the instantiated function 2475 /// parameters. 2476 /// 2477 /// \param FunctionType if non-NULL, the result type of the function template 2478 /// will also be instantiated and the pointed-to value will be updated with 2479 /// the instantiated function type. 2480 /// 2481 /// \param Info if substitution fails for any reason, this object will be 2482 /// populated with more information about the failure. 2483 /// 2484 /// \returns TDK_Success if substitution was successful, or some failure 2485 /// condition. 2486 Sema::TemplateDeductionResult 2487 Sema::SubstituteExplicitTemplateArguments( 2488 FunctionTemplateDecl *FunctionTemplate, 2489 TemplateArgumentListInfo &ExplicitTemplateArgs, 2490 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 2491 SmallVectorImpl<QualType> &ParamTypes, 2492 QualType *FunctionType, 2493 TemplateDeductionInfo &Info) { 2494 FunctionDecl *Function = FunctionTemplate->getTemplatedDecl(); 2495 TemplateParameterList *TemplateParams 2496 = FunctionTemplate->getTemplateParameters(); 2497 2498 if (ExplicitTemplateArgs.size() == 0) { 2499 // No arguments to substitute; just copy over the parameter types and 2500 // fill in the function type. 2501 for (FunctionDecl::param_iterator P = Function->param_begin(), 2502 PEnd = Function->param_end(); 2503 P != PEnd; 2504 ++P) 2505 ParamTypes.push_back((*P)->getType()); 2506 2507 if (FunctionType) 2508 *FunctionType = Function->getType(); 2509 return TDK_Success; 2510 } 2511 2512 // Unevaluated SFINAE context. 2513 EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated); 2514 SFINAETrap Trap(*this); 2515 2516 // C++ [temp.arg.explicit]p3: 2517 // Template arguments that are present shall be specified in the 2518 // declaration order of their corresponding template-parameters. The 2519 // template argument list shall not specify more template-arguments than 2520 // there are corresponding template-parameters. 2521 SmallVector<TemplateArgument, 4> Builder; 2522 2523 // Enter a new template instantiation context where we check the 2524 // explicitly-specified template arguments against this function template, 2525 // and then substitute them into the function parameter types. 2526 SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end()); 2527 InstantiatingTemplate Inst(*this, FunctionTemplate->getLocation(), 2528 FunctionTemplate, DeducedArgs, 2529 ActiveTemplateInstantiation::ExplicitTemplateArgumentSubstitution, 2530 Info); 2531 if (Inst.isInvalid()) 2532 return TDK_InstantiationDepth; 2533 2534 if (CheckTemplateArgumentList(FunctionTemplate, 2535 SourceLocation(), 2536 ExplicitTemplateArgs, 2537 true, 2538 Builder) || Trap.hasErrorOccurred()) { 2539 unsigned Index = Builder.size(); 2540 if (Index >= TemplateParams->size()) 2541 Index = TemplateParams->size() - 1; 2542 Info.Param = makeTemplateParameter(TemplateParams->getParam(Index)); 2543 return TDK_InvalidExplicitArguments; 2544 } 2545 2546 // Form the template argument list from the explicitly-specified 2547 // template arguments. 2548 TemplateArgumentList *ExplicitArgumentList 2549 = TemplateArgumentList::CreateCopy(Context, Builder.data(), Builder.size()); 2550 Info.reset(ExplicitArgumentList); 2551 2552 // Template argument deduction and the final substitution should be 2553 // done in the context of the templated declaration. Explicit 2554 // argument substitution, on the other hand, needs to happen in the 2555 // calling context. 2556 ContextRAII SavedContext(*this, FunctionTemplate->getTemplatedDecl()); 2557 2558 // If we deduced template arguments for a template parameter pack, 2559 // note that the template argument pack is partially substituted and record 2560 // the explicit template arguments. They'll be used as part of deduction 2561 // for this template parameter pack. 2562 for (unsigned I = 0, N = Builder.size(); I != N; ++I) { 2563 const TemplateArgument &Arg = Builder[I]; 2564 if (Arg.getKind() == TemplateArgument::Pack) { 2565 CurrentInstantiationScope->SetPartiallySubstitutedPack( 2566 TemplateParams->getParam(I), 2567 Arg.pack_begin(), 2568 Arg.pack_size()); 2569 break; 2570 } 2571 } 2572 2573 const FunctionProtoType *Proto 2574 = Function->getType()->getAs<FunctionProtoType>(); 2575 assert(Proto && "Function template does not have a prototype?"); 2576 2577 // Instantiate the types of each of the function parameters given the 2578 // explicitly-specified template arguments. If the function has a trailing 2579 // return type, substitute it after the arguments to ensure we substitute 2580 // in lexical order. 2581 if (Proto->hasTrailingReturn()) { 2582 if (SubstParmTypes(Function->getLocation(), 2583 Function->param_begin(), Function->getNumParams(), 2584 MultiLevelTemplateArgumentList(*ExplicitArgumentList), 2585 ParamTypes)) 2586 return TDK_SubstitutionFailure; 2587 } 2588 2589 // Instantiate the return type. 2590 QualType ResultType; 2591 { 2592 // C++11 [expr.prim.general]p3: 2593 // If a declaration declares a member function or member function 2594 // template of a class X, the expression this is a prvalue of type 2595 // "pointer to cv-qualifier-seq X" between the optional cv-qualifer-seq 2596 // and the end of the function-definition, member-declarator, or 2597 // declarator. 2598 unsigned ThisTypeQuals = 0; 2599 CXXRecordDecl *ThisContext = 0; 2600 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Function)) { 2601 ThisContext = Method->getParent(); 2602 ThisTypeQuals = Method->getTypeQualifiers(); 2603 } 2604 2605 CXXThisScopeRAII ThisScope(*this, ThisContext, ThisTypeQuals, 2606 getLangOpts().CPlusPlus11); 2607 2608 ResultType = SubstType(Proto->getResultType(), 2609 MultiLevelTemplateArgumentList(*ExplicitArgumentList), 2610 Function->getTypeSpecStartLoc(), 2611 Function->getDeclName()); 2612 if (ResultType.isNull() || Trap.hasErrorOccurred()) 2613 return TDK_SubstitutionFailure; 2614 } 2615 2616 // Instantiate the types of each of the function parameters given the 2617 // explicitly-specified template arguments if we didn't do so earlier. 2618 if (!Proto->hasTrailingReturn() && 2619 SubstParmTypes(Function->getLocation(), 2620 Function->param_begin(), Function->getNumParams(), 2621 MultiLevelTemplateArgumentList(*ExplicitArgumentList), 2622 ParamTypes)) 2623 return TDK_SubstitutionFailure; 2624 2625 if (FunctionType) { 2626 *FunctionType = BuildFunctionType(ResultType, ParamTypes, 2627 Function->getLocation(), 2628 Function->getDeclName(), 2629 Proto->getExtProtoInfo()); 2630 if (FunctionType->isNull() || Trap.hasErrorOccurred()) 2631 return TDK_SubstitutionFailure; 2632 } 2633 2634 // C++ [temp.arg.explicit]p2: 2635 // Trailing template arguments that can be deduced (14.8.2) may be 2636 // omitted from the list of explicit template-arguments. If all of the 2637 // template arguments can be deduced, they may all be omitted; in this 2638 // case, the empty template argument list <> itself may also be omitted. 2639 // 2640 // Take all of the explicitly-specified arguments and put them into 2641 // the set of deduced template arguments. Explicitly-specified 2642 // parameter packs, however, will be set to NULL since the deduction 2643 // mechanisms handle explicitly-specified argument packs directly. 2644 Deduced.reserve(TemplateParams->size()); 2645 for (unsigned I = 0, N = ExplicitArgumentList->size(); I != N; ++I) { 2646 const TemplateArgument &Arg = ExplicitArgumentList->get(I); 2647 if (Arg.getKind() == TemplateArgument::Pack) 2648 Deduced.push_back(DeducedTemplateArgument()); 2649 else 2650 Deduced.push_back(Arg); 2651 } 2652 2653 return TDK_Success; 2654 } 2655 2656 /// \brief Check whether the deduced argument type for a call to a function 2657 /// template matches the actual argument type per C++ [temp.deduct.call]p4. 2658 static bool 2659 CheckOriginalCallArgDeduction(Sema &S, Sema::OriginalCallArg OriginalArg, 2660 QualType DeducedA) { 2661 ASTContext &Context = S.Context; 2662 2663 QualType A = OriginalArg.OriginalArgType; 2664 QualType OriginalParamType = OriginalArg.OriginalParamType; 2665 2666 // Check for type equality (top-level cv-qualifiers are ignored). 2667 if (Context.hasSameUnqualifiedType(A, DeducedA)) 2668 return false; 2669 2670 // Strip off references on the argument types; they aren't needed for 2671 // the following checks. 2672 if (const ReferenceType *DeducedARef = DeducedA->getAs<ReferenceType>()) 2673 DeducedA = DeducedARef->getPointeeType(); 2674 if (const ReferenceType *ARef = A->getAs<ReferenceType>()) 2675 A = ARef->getPointeeType(); 2676 2677 // C++ [temp.deduct.call]p4: 2678 // [...] However, there are three cases that allow a difference: 2679 // - If the original P is a reference type, the deduced A (i.e., the 2680 // type referred to by the reference) can be more cv-qualified than 2681 // the transformed A. 2682 if (const ReferenceType *OriginalParamRef 2683 = OriginalParamType->getAs<ReferenceType>()) { 2684 // We don't want to keep the reference around any more. 2685 OriginalParamType = OriginalParamRef->getPointeeType(); 2686 2687 Qualifiers AQuals = A.getQualifiers(); 2688 Qualifiers DeducedAQuals = DeducedA.getQualifiers(); 2689 2690 // Under Objective-C++ ARC, the deduced type may have implicitly been 2691 // given strong lifetime. If so, update the original qualifiers to 2692 // include this strong lifetime. 2693 if (S.getLangOpts().ObjCAutoRefCount && 2694 DeducedAQuals.getObjCLifetime() == Qualifiers::OCL_Strong && 2695 AQuals.getObjCLifetime() == Qualifiers::OCL_None) { 2696 AQuals.setObjCLifetime(Qualifiers::OCL_Strong); 2697 } 2698 2699 if (AQuals == DeducedAQuals) { 2700 // Qualifiers match; there's nothing to do. 2701 } else if (!DeducedAQuals.compatiblyIncludes(AQuals)) { 2702 return true; 2703 } else { 2704 // Qualifiers are compatible, so have the argument type adopt the 2705 // deduced argument type's qualifiers as if we had performed the 2706 // qualification conversion. 2707 A = Context.getQualifiedType(A.getUnqualifiedType(), DeducedAQuals); 2708 } 2709 } 2710 2711 // - The transformed A can be another pointer or pointer to member 2712 // type that can be converted to the deduced A via a qualification 2713 // conversion. 2714 // 2715 // Also allow conversions which merely strip [[noreturn]] from function types 2716 // (recursively) as an extension. 2717 // FIXME: Currently, this doesn't place nicely with qualfication conversions. 2718 bool ObjCLifetimeConversion = false; 2719 QualType ResultTy; 2720 if ((A->isAnyPointerType() || A->isMemberPointerType()) && 2721 (S.IsQualificationConversion(A, DeducedA, false, 2722 ObjCLifetimeConversion) || 2723 S.IsNoReturnConversion(A, DeducedA, ResultTy))) 2724 return false; 2725 2726 2727 // - If P is a class and P has the form simple-template-id, then the 2728 // transformed A can be a derived class of the deduced A. [...] 2729 // [...] Likewise, if P is a pointer to a class of the form 2730 // simple-template-id, the transformed A can be a pointer to a 2731 // derived class pointed to by the deduced A. 2732 if (const PointerType *OriginalParamPtr 2733 = OriginalParamType->getAs<PointerType>()) { 2734 if (const PointerType *DeducedAPtr = DeducedA->getAs<PointerType>()) { 2735 if (const PointerType *APtr = A->getAs<PointerType>()) { 2736 if (A->getPointeeType()->isRecordType()) { 2737 OriginalParamType = OriginalParamPtr->getPointeeType(); 2738 DeducedA = DeducedAPtr->getPointeeType(); 2739 A = APtr->getPointeeType(); 2740 } 2741 } 2742 } 2743 } 2744 2745 if (Context.hasSameUnqualifiedType(A, DeducedA)) 2746 return false; 2747 2748 if (A->isRecordType() && isSimpleTemplateIdType(OriginalParamType) && 2749 S.IsDerivedFrom(A, DeducedA)) 2750 return false; 2751 2752 return true; 2753 } 2754 2755 /// \brief Finish template argument deduction for a function template, 2756 /// checking the deduced template arguments for completeness and forming 2757 /// the function template specialization. 2758 /// 2759 /// \param OriginalCallArgs If non-NULL, the original call arguments against 2760 /// which the deduced argument types should be compared. 2761 Sema::TemplateDeductionResult 2762 Sema::FinishTemplateArgumentDeduction(FunctionTemplateDecl *FunctionTemplate, 2763 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 2764 unsigned NumExplicitlySpecified, 2765 FunctionDecl *&Specialization, 2766 TemplateDeductionInfo &Info, 2767 SmallVectorImpl<OriginalCallArg> const *OriginalCallArgs) { 2768 TemplateParameterList *TemplateParams 2769 = FunctionTemplate->getTemplateParameters(); 2770 2771 // Unevaluated SFINAE context. 2772 EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated); 2773 SFINAETrap Trap(*this); 2774 2775 // Enter a new template instantiation context while we instantiate the 2776 // actual function declaration. 2777 SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end()); 2778 InstantiatingTemplate Inst(*this, FunctionTemplate->getLocation(), 2779 FunctionTemplate, DeducedArgs, 2780 ActiveTemplateInstantiation::DeducedTemplateArgumentSubstitution, 2781 Info); 2782 if (Inst.isInvalid()) 2783 return TDK_InstantiationDepth; 2784 2785 ContextRAII SavedContext(*this, FunctionTemplate->getTemplatedDecl()); 2786 2787 // C++ [temp.deduct.type]p2: 2788 // [...] or if any template argument remains neither deduced nor 2789 // explicitly specified, template argument deduction fails. 2790 SmallVector<TemplateArgument, 4> Builder; 2791 for (unsigned I = 0, N = TemplateParams->size(); I != N; ++I) { 2792 NamedDecl *Param = TemplateParams->getParam(I); 2793 2794 if (!Deduced[I].isNull()) { 2795 if (I < NumExplicitlySpecified) { 2796 // We have already fully type-checked and converted this 2797 // argument, because it was explicitly-specified. Just record the 2798 // presence of this argument. 2799 Builder.push_back(Deduced[I]); 2800 continue; 2801 } 2802 2803 // We have deduced this argument, so it still needs to be 2804 // checked and converted. 2805 2806 // First, for a non-type template parameter type that is 2807 // initialized by a declaration, we need the type of the 2808 // corresponding non-type template parameter. 2809 QualType NTTPType; 2810 if (NonTypeTemplateParmDecl *NTTP 2811 = dyn_cast<NonTypeTemplateParmDecl>(Param)) { 2812 NTTPType = NTTP->getType(); 2813 if (NTTPType->isDependentType()) { 2814 TemplateArgumentList TemplateArgs(TemplateArgumentList::OnStack, 2815 Builder.data(), Builder.size()); 2816 NTTPType = SubstType(NTTPType, 2817 MultiLevelTemplateArgumentList(TemplateArgs), 2818 NTTP->getLocation(), 2819 NTTP->getDeclName()); 2820 if (NTTPType.isNull()) { 2821 Info.Param = makeTemplateParameter(Param); 2822 // FIXME: These template arguments are temporary. Free them! 2823 Info.reset(TemplateArgumentList::CreateCopy(Context, 2824 Builder.data(), 2825 Builder.size())); 2826 return TDK_SubstitutionFailure; 2827 } 2828 } 2829 } 2830 2831 if (ConvertDeducedTemplateArgument(*this, Param, Deduced[I], 2832 FunctionTemplate, NTTPType, 0, Info, 2833 true, Builder)) { 2834 Info.Param = makeTemplateParameter(Param); 2835 // FIXME: These template arguments are temporary. Free them! 2836 Info.reset(TemplateArgumentList::CreateCopy(Context, Builder.data(), 2837 Builder.size())); 2838 return TDK_SubstitutionFailure; 2839 } 2840 2841 continue; 2842 } 2843 2844 // C++0x [temp.arg.explicit]p3: 2845 // A trailing template parameter pack (14.5.3) not otherwise deduced will 2846 // be deduced to an empty sequence of template arguments. 2847 // FIXME: Where did the word "trailing" come from? 2848 if (Param->isTemplateParameterPack()) { 2849 // We may have had explicitly-specified template arguments for this 2850 // template parameter pack. If so, our empty deduction extends the 2851 // explicitly-specified set (C++0x [temp.arg.explicit]p9). 2852 const TemplateArgument *ExplicitArgs; 2853 unsigned NumExplicitArgs; 2854 if (CurrentInstantiationScope && 2855 CurrentInstantiationScope->getPartiallySubstitutedPack(&ExplicitArgs, 2856 &NumExplicitArgs) 2857 == Param) { 2858 Builder.push_back(TemplateArgument(ExplicitArgs, NumExplicitArgs)); 2859 2860 // Forget the partially-substituted pack; it's substitution is now 2861 // complete. 2862 CurrentInstantiationScope->ResetPartiallySubstitutedPack(); 2863 } else { 2864 Builder.push_back(TemplateArgument::getEmptyPack()); 2865 } 2866 continue; 2867 } 2868 2869 // Substitute into the default template argument, if available. 2870 bool HasDefaultArg = false; 2871 TemplateArgumentLoc DefArg 2872 = SubstDefaultTemplateArgumentIfAvailable(FunctionTemplate, 2873 FunctionTemplate->getLocation(), 2874 FunctionTemplate->getSourceRange().getEnd(), 2875 Param, 2876 Builder, HasDefaultArg); 2877 2878 // If there was no default argument, deduction is incomplete. 2879 if (DefArg.getArgument().isNull()) { 2880 Info.Param = makeTemplateParameter( 2881 const_cast<NamedDecl *>(TemplateParams->getParam(I))); 2882 Info.reset(TemplateArgumentList::CreateCopy(Context, Builder.data(), 2883 Builder.size())); 2884 return HasDefaultArg ? TDK_SubstitutionFailure : TDK_Incomplete; 2885 } 2886 2887 // Check whether we can actually use the default argument. 2888 if (CheckTemplateArgument(Param, DefArg, 2889 FunctionTemplate, 2890 FunctionTemplate->getLocation(), 2891 FunctionTemplate->getSourceRange().getEnd(), 2892 0, Builder, 2893 CTAK_Specified)) { 2894 Info.Param = makeTemplateParameter( 2895 const_cast<NamedDecl *>(TemplateParams->getParam(I))); 2896 // FIXME: These template arguments are temporary. Free them! 2897 Info.reset(TemplateArgumentList::CreateCopy(Context, Builder.data(), 2898 Builder.size())); 2899 return TDK_SubstitutionFailure; 2900 } 2901 2902 // If we get here, we successfully used the default template argument. 2903 } 2904 2905 // Form the template argument list from the deduced template arguments. 2906 TemplateArgumentList *DeducedArgumentList 2907 = TemplateArgumentList::CreateCopy(Context, Builder.data(), Builder.size()); 2908 Info.reset(DeducedArgumentList); 2909 2910 // Substitute the deduced template arguments into the function template 2911 // declaration to produce the function template specialization. 2912 DeclContext *Owner = FunctionTemplate->getDeclContext(); 2913 if (FunctionTemplate->getFriendObjectKind()) 2914 Owner = FunctionTemplate->getLexicalDeclContext(); 2915 Specialization = cast_or_null<FunctionDecl>( 2916 SubstDecl(FunctionTemplate->getTemplatedDecl(), Owner, 2917 MultiLevelTemplateArgumentList(*DeducedArgumentList))); 2918 if (!Specialization || Specialization->isInvalidDecl()) 2919 return TDK_SubstitutionFailure; 2920 2921 assert(Specialization->getPrimaryTemplate()->getCanonicalDecl() == 2922 FunctionTemplate->getCanonicalDecl()); 2923 2924 // If the template argument list is owned by the function template 2925 // specialization, release it. 2926 if (Specialization->getTemplateSpecializationArgs() == DeducedArgumentList && 2927 !Trap.hasErrorOccurred()) 2928 Info.take(); 2929 2930 // There may have been an error that did not prevent us from constructing a 2931 // declaration. Mark the declaration invalid and return with a substitution 2932 // failure. 2933 if (Trap.hasErrorOccurred()) { 2934 Specialization->setInvalidDecl(true); 2935 return TDK_SubstitutionFailure; 2936 } 2937 2938 if (OriginalCallArgs) { 2939 // C++ [temp.deduct.call]p4: 2940 // In general, the deduction process attempts to find template argument 2941 // values that will make the deduced A identical to A (after the type A 2942 // is transformed as described above). [...] 2943 for (unsigned I = 0, N = OriginalCallArgs->size(); I != N; ++I) { 2944 OriginalCallArg OriginalArg = (*OriginalCallArgs)[I]; 2945 unsigned ParamIdx = OriginalArg.ArgIdx; 2946 2947 if (ParamIdx >= Specialization->getNumParams()) 2948 continue; 2949 2950 QualType DeducedA = Specialization->getParamDecl(ParamIdx)->getType(); 2951 if (CheckOriginalCallArgDeduction(*this, OriginalArg, DeducedA)) 2952 return Sema::TDK_SubstitutionFailure; 2953 } 2954 } 2955 2956 // If we suppressed any diagnostics while performing template argument 2957 // deduction, and if we haven't already instantiated this declaration, 2958 // keep track of these diagnostics. They'll be emitted if this specialization 2959 // is actually used. 2960 if (Info.diag_begin() != Info.diag_end()) { 2961 SuppressedDiagnosticsMap::iterator 2962 Pos = SuppressedDiagnostics.find(Specialization->getCanonicalDecl()); 2963 if (Pos == SuppressedDiagnostics.end()) 2964 SuppressedDiagnostics[Specialization->getCanonicalDecl()] 2965 .append(Info.diag_begin(), Info.diag_end()); 2966 } 2967 2968 return TDK_Success; 2969 } 2970 2971 /// Gets the type of a function for template-argument-deducton 2972 /// purposes when it's considered as part of an overload set. 2973 static QualType GetTypeOfFunction(Sema &S, const OverloadExpr::FindResult &R, 2974 FunctionDecl *Fn) { 2975 // We may need to deduce the return type of the function now. 2976 if (S.getLangOpts().CPlusPlus1y && Fn->getResultType()->isUndeducedType() && 2977 S.DeduceReturnType(Fn, R.Expression->getExprLoc(), /*Diagnose*/false)) 2978 return QualType(); 2979 2980 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Fn)) 2981 if (Method->isInstance()) { 2982 // An instance method that's referenced in a form that doesn't 2983 // look like a member pointer is just invalid. 2984 if (!R.HasFormOfMemberPointer) return QualType(); 2985 2986 return S.Context.getMemberPointerType(Fn->getType(), 2987 S.Context.getTypeDeclType(Method->getParent()).getTypePtr()); 2988 } 2989 2990 if (!R.IsAddressOfOperand) return Fn->getType(); 2991 return S.Context.getPointerType(Fn->getType()); 2992 } 2993 2994 /// Apply the deduction rules for overload sets. 2995 /// 2996 /// \return the null type if this argument should be treated as an 2997 /// undeduced context 2998 static QualType 2999 ResolveOverloadForDeduction(Sema &S, TemplateParameterList *TemplateParams, 3000 Expr *Arg, QualType ParamType, 3001 bool ParamWasReference) { 3002 3003 OverloadExpr::FindResult R = OverloadExpr::find(Arg); 3004 3005 OverloadExpr *Ovl = R.Expression; 3006 3007 // C++0x [temp.deduct.call]p4 3008 unsigned TDF = 0; 3009 if (ParamWasReference) 3010 TDF |= TDF_ParamWithReferenceType; 3011 if (R.IsAddressOfOperand) 3012 TDF |= TDF_IgnoreQualifiers; 3013 3014 // C++0x [temp.deduct.call]p6: 3015 // When P is a function type, pointer to function type, or pointer 3016 // to member function type: 3017 3018 if (!ParamType->isFunctionType() && 3019 !ParamType->isFunctionPointerType() && 3020 !ParamType->isMemberFunctionPointerType()) { 3021 if (Ovl->hasExplicitTemplateArgs()) { 3022 // But we can still look for an explicit specialization. 3023 if (FunctionDecl *ExplicitSpec 3024 = S.ResolveSingleFunctionTemplateSpecialization(Ovl)) 3025 return GetTypeOfFunction(S, R, ExplicitSpec); 3026 } 3027 3028 return QualType(); 3029 } 3030 3031 // Gather the explicit template arguments, if any. 3032 TemplateArgumentListInfo ExplicitTemplateArgs; 3033 if (Ovl->hasExplicitTemplateArgs()) 3034 Ovl->getExplicitTemplateArgs().copyInto(ExplicitTemplateArgs); 3035 QualType Match; 3036 for (UnresolvedSetIterator I = Ovl->decls_begin(), 3037 E = Ovl->decls_end(); I != E; ++I) { 3038 NamedDecl *D = (*I)->getUnderlyingDecl(); 3039 3040 if (FunctionTemplateDecl *FunTmpl = dyn_cast<FunctionTemplateDecl>(D)) { 3041 // - If the argument is an overload set containing one or more 3042 // function templates, the parameter is treated as a 3043 // non-deduced context. 3044 if (!Ovl->hasExplicitTemplateArgs()) 3045 return QualType(); 3046 3047 // Otherwise, see if we can resolve a function type 3048 FunctionDecl *Specialization = 0; 3049 TemplateDeductionInfo Info(Ovl->getNameLoc()); 3050 if (S.DeduceTemplateArguments(FunTmpl, &ExplicitTemplateArgs, 3051 Specialization, Info)) 3052 continue; 3053 3054 D = Specialization; 3055 } 3056 3057 FunctionDecl *Fn = cast<FunctionDecl>(D); 3058 QualType ArgType = GetTypeOfFunction(S, R, Fn); 3059 if (ArgType.isNull()) continue; 3060 3061 // Function-to-pointer conversion. 3062 if (!ParamWasReference && ParamType->isPointerType() && 3063 ArgType->isFunctionType()) 3064 ArgType = S.Context.getPointerType(ArgType); 3065 3066 // - If the argument is an overload set (not containing function 3067 // templates), trial argument deduction is attempted using each 3068 // of the members of the set. If deduction succeeds for only one 3069 // of the overload set members, that member is used as the 3070 // argument value for the deduction. If deduction succeeds for 3071 // more than one member of the overload set the parameter is 3072 // treated as a non-deduced context. 3073 3074 // We do all of this in a fresh context per C++0x [temp.deduct.type]p2: 3075 // Type deduction is done independently for each P/A pair, and 3076 // the deduced template argument values are then combined. 3077 // So we do not reject deductions which were made elsewhere. 3078 SmallVector<DeducedTemplateArgument, 8> 3079 Deduced(TemplateParams->size()); 3080 TemplateDeductionInfo Info(Ovl->getNameLoc()); 3081 Sema::TemplateDeductionResult Result 3082 = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, ParamType, 3083 ArgType, Info, Deduced, TDF); 3084 if (Result) continue; 3085 if (!Match.isNull()) return QualType(); 3086 Match = ArgType; 3087 } 3088 3089 return Match; 3090 } 3091 3092 /// \brief Perform the adjustments to the parameter and argument types 3093 /// described in C++ [temp.deduct.call]. 3094 /// 3095 /// \returns true if the caller should not attempt to perform any template 3096 /// argument deduction based on this P/A pair because the argument is an 3097 /// overloaded function set that could not be resolved. 3098 static bool AdjustFunctionParmAndArgTypesForDeduction(Sema &S, 3099 TemplateParameterList *TemplateParams, 3100 QualType &ParamType, 3101 QualType &ArgType, 3102 Expr *Arg, 3103 unsigned &TDF) { 3104 // C++0x [temp.deduct.call]p3: 3105 // If P is a cv-qualified type, the top level cv-qualifiers of P's type 3106 // are ignored for type deduction. 3107 if (ParamType.hasQualifiers()) 3108 ParamType = ParamType.getUnqualifiedType(); 3109 const ReferenceType *ParamRefType = ParamType->getAs<ReferenceType>(); 3110 if (ParamRefType) { 3111 QualType PointeeType = ParamRefType->getPointeeType(); 3112 3113 // If the argument has incomplete array type, try to complete its type. 3114 if (ArgType->isIncompleteArrayType() && !S.RequireCompleteExprType(Arg, 0)) 3115 ArgType = Arg->getType(); 3116 3117 // [C++0x] If P is an rvalue reference to a cv-unqualified 3118 // template parameter and the argument is an lvalue, the type 3119 // "lvalue reference to A" is used in place of A for type 3120 // deduction. 3121 if (isa<RValueReferenceType>(ParamType)) { 3122 if (!PointeeType.getQualifiers() && 3123 isa<TemplateTypeParmType>(PointeeType) && 3124 Arg->Classify(S.Context).isLValue() && 3125 Arg->getType() != S.Context.OverloadTy && 3126 Arg->getType() != S.Context.BoundMemberTy) 3127 ArgType = S.Context.getLValueReferenceType(ArgType); 3128 } 3129 3130 // [...] If P is a reference type, the type referred to by P is used 3131 // for type deduction. 3132 ParamType = PointeeType; 3133 } 3134 3135 // Overload sets usually make this parameter an undeduced 3136 // context, but there are sometimes special circumstances. 3137 if (ArgType == S.Context.OverloadTy) { 3138 ArgType = ResolveOverloadForDeduction(S, TemplateParams, 3139 Arg, ParamType, 3140 ParamRefType != 0); 3141 if (ArgType.isNull()) 3142 return true; 3143 } 3144 3145 if (ParamRefType) { 3146 // C++0x [temp.deduct.call]p3: 3147 // [...] If P is of the form T&&, where T is a template parameter, and 3148 // the argument is an lvalue, the type A& is used in place of A for 3149 // type deduction. 3150 if (ParamRefType->isRValueReferenceType() && 3151 ParamRefType->getAs<TemplateTypeParmType>() && 3152 Arg->isLValue()) 3153 ArgType = S.Context.getLValueReferenceType(ArgType); 3154 } else { 3155 // C++ [temp.deduct.call]p2: 3156 // If P is not a reference type: 3157 // - If A is an array type, the pointer type produced by the 3158 // array-to-pointer standard conversion (4.2) is used in place of 3159 // A for type deduction; otherwise, 3160 if (ArgType->isArrayType()) 3161 ArgType = S.Context.getArrayDecayedType(ArgType); 3162 // - If A is a function type, the pointer type produced by the 3163 // function-to-pointer standard conversion (4.3) is used in place 3164 // of A for type deduction; otherwise, 3165 else if (ArgType->isFunctionType()) 3166 ArgType = S.Context.getPointerType(ArgType); 3167 else { 3168 // - If A is a cv-qualified type, the top level cv-qualifiers of A's 3169 // type are ignored for type deduction. 3170 ArgType = ArgType.getUnqualifiedType(); 3171 } 3172 } 3173 3174 // C++0x [temp.deduct.call]p4: 3175 // In general, the deduction process attempts to find template argument 3176 // values that will make the deduced A identical to A (after the type A 3177 // is transformed as described above). [...] 3178 TDF = TDF_SkipNonDependent; 3179 3180 // - If the original P is a reference type, the deduced A (i.e., the 3181 // type referred to by the reference) can be more cv-qualified than 3182 // the transformed A. 3183 if (ParamRefType) 3184 TDF |= TDF_ParamWithReferenceType; 3185 // - The transformed A can be another pointer or pointer to member 3186 // type that can be converted to the deduced A via a qualification 3187 // conversion (4.4). 3188 if (ArgType->isPointerType() || ArgType->isMemberPointerType() || 3189 ArgType->isObjCObjectPointerType()) 3190 TDF |= TDF_IgnoreQualifiers; 3191 // - If P is a class and P has the form simple-template-id, then the 3192 // transformed A can be a derived class of the deduced A. Likewise, 3193 // if P is a pointer to a class of the form simple-template-id, the 3194 // transformed A can be a pointer to a derived class pointed to by 3195 // the deduced A. 3196 if (isSimpleTemplateIdType(ParamType) || 3197 (isa<PointerType>(ParamType) && 3198 isSimpleTemplateIdType( 3199 ParamType->getAs<PointerType>()->getPointeeType()))) 3200 TDF |= TDF_DerivedClass; 3201 3202 return false; 3203 } 3204 3205 static bool hasDeducibleTemplateParameters(Sema &S, 3206 FunctionTemplateDecl *FunctionTemplate, 3207 QualType T); 3208 3209 /// \brief Perform template argument deduction by matching a parameter type 3210 /// against a single expression, where the expression is an element of 3211 /// an initializer list that was originally matched against a parameter 3212 /// of type \c initializer_list\<ParamType\>. 3213 static Sema::TemplateDeductionResult 3214 DeduceTemplateArgumentByListElement(Sema &S, 3215 TemplateParameterList *TemplateParams, 3216 QualType ParamType, Expr *Arg, 3217 TemplateDeductionInfo &Info, 3218 SmallVectorImpl<DeducedTemplateArgument> &Deduced, 3219 unsigned TDF) { 3220 // Handle the case where an init list contains another init list as the 3221 // element. 3222 if (InitListExpr *ILE = dyn_cast<InitListExpr>(Arg)) { 3223 QualType X; 3224 if (!S.isStdInitializerList(ParamType.getNonReferenceType(), &X)) 3225 return Sema::TDK_Success; // Just ignore this expression. 3226 3227 // Recurse down into the init list. 3228 for (unsigned i = 0, e = ILE->getNumInits(); i < e; ++i) { 3229 if (Sema::TemplateDeductionResult Result = 3230 DeduceTemplateArgumentByListElement(S, TemplateParams, X, 3231 ILE->getInit(i), 3232 Info, Deduced, TDF)) 3233 return Result; 3234 } 3235 return Sema::TDK_Success; 3236 } 3237 3238 // For all other cases, just match by type. 3239 QualType ArgType = Arg->getType(); 3240 if (AdjustFunctionParmAndArgTypesForDeduction(S, TemplateParams, ParamType, 3241 ArgType, Arg, TDF)) { 3242 Info.Expression = Arg; 3243 return Sema::TDK_FailedOverloadResolution; 3244 } 3245 return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, ParamType, 3246 ArgType, Info, Deduced, TDF); 3247 } 3248 3249 /// \brief Perform template argument deduction from a function call 3250 /// (C++ [temp.deduct.call]). 3251 /// 3252 /// \param FunctionTemplate the function template for which we are performing 3253 /// template argument deduction. 3254 /// 3255 /// \param ExplicitTemplateArgs the explicit template arguments provided 3256 /// for this call. 3257 /// 3258 /// \param Args the function call arguments 3259 /// 3260 /// \param Specialization if template argument deduction was successful, 3261 /// this will be set to the function template specialization produced by 3262 /// template argument deduction. 3263 /// 3264 /// \param Info the argument will be updated to provide additional information 3265 /// about template argument deduction. 3266 /// 3267 /// \returns the result of template argument deduction. 3268 Sema::TemplateDeductionResult Sema::DeduceTemplateArguments( 3269 FunctionTemplateDecl *FunctionTemplate, 3270 TemplateArgumentListInfo *ExplicitTemplateArgs, ArrayRef<Expr *> Args, 3271 FunctionDecl *&Specialization, TemplateDeductionInfo &Info) { 3272 if (FunctionTemplate->isInvalidDecl()) 3273 return TDK_Invalid; 3274 3275 FunctionDecl *Function = FunctionTemplate->getTemplatedDecl(); 3276 3277 // C++ [temp.deduct.call]p1: 3278 // Template argument deduction is done by comparing each function template 3279 // parameter type (call it P) with the type of the corresponding argument 3280 // of the call (call it A) as described below. 3281 unsigned CheckArgs = Args.size(); 3282 if (Args.size() < Function->getMinRequiredArguments()) 3283 return TDK_TooFewArguments; 3284 else if (Args.size() > Function->getNumParams()) { 3285 const FunctionProtoType *Proto 3286 = Function->getType()->getAs<FunctionProtoType>(); 3287 if (Proto->isTemplateVariadic()) 3288 /* Do nothing */; 3289 else if (Proto->isVariadic()) 3290 CheckArgs = Function->getNumParams(); 3291 else 3292 return TDK_TooManyArguments; 3293 } 3294 3295 // The types of the parameters from which we will perform template argument 3296 // deduction. 3297 LocalInstantiationScope InstScope(*this); 3298 TemplateParameterList *TemplateParams 3299 = FunctionTemplate->getTemplateParameters(); 3300 SmallVector<DeducedTemplateArgument, 4> Deduced; 3301 SmallVector<QualType, 4> ParamTypes; 3302 unsigned NumExplicitlySpecified = 0; 3303 if (ExplicitTemplateArgs) { 3304 TemplateDeductionResult Result = 3305 SubstituteExplicitTemplateArguments(FunctionTemplate, 3306 *ExplicitTemplateArgs, 3307 Deduced, 3308 ParamTypes, 3309 0, 3310 Info); 3311 if (Result) 3312 return Result; 3313 3314 NumExplicitlySpecified = Deduced.size(); 3315 } else { 3316 // Just fill in the parameter types from the function declaration. 3317 for (unsigned I = 0, N = Function->getNumParams(); I != N; ++I) 3318 ParamTypes.push_back(Function->getParamDecl(I)->getType()); 3319 } 3320 3321 // Deduce template arguments from the function parameters. 3322 Deduced.resize(TemplateParams->size()); 3323 unsigned ArgIdx = 0; 3324 SmallVector<OriginalCallArg, 4> OriginalCallArgs; 3325 for (unsigned ParamIdx = 0, NumParams = ParamTypes.size(); 3326 ParamIdx != NumParams; ++ParamIdx) { 3327 QualType OrigParamType = ParamTypes[ParamIdx]; 3328 QualType ParamType = OrigParamType; 3329 3330 const PackExpansionType *ParamExpansion 3331 = dyn_cast<PackExpansionType>(ParamType); 3332 if (!ParamExpansion) { 3333 // Simple case: matching a function parameter to a function argument. 3334 if (ArgIdx >= CheckArgs) 3335 break; 3336 3337 Expr *Arg = Args[ArgIdx++]; 3338 QualType ArgType = Arg->getType(); 3339 3340 unsigned TDF = 0; 3341 if (AdjustFunctionParmAndArgTypesForDeduction(*this, TemplateParams, 3342 ParamType, ArgType, Arg, 3343 TDF)) 3344 continue; 3345 3346 // If we have nothing to deduce, we're done. 3347 if (!hasDeducibleTemplateParameters(*this, FunctionTemplate, ParamType)) 3348 continue; 3349 3350 // If the argument is an initializer list ... 3351 if (InitListExpr *ILE = dyn_cast<InitListExpr>(Arg)) { 3352 // ... then the parameter is an undeduced context, unless the parameter 3353 // type is (reference to cv) std::initializer_list<P'>, in which case 3354 // deduction is done for each element of the initializer list, and the 3355 // result is the deduced type if it's the same for all elements. 3356 QualType X; 3357 // Removing references was already done. 3358 if (!isStdInitializerList(ParamType, &X)) 3359 continue; 3360 3361 for (unsigned i = 0, e = ILE->getNumInits(); i < e; ++i) { 3362 if (TemplateDeductionResult Result = 3363 DeduceTemplateArgumentByListElement(*this, TemplateParams, X, 3364 ILE->getInit(i), 3365 Info, Deduced, TDF)) 3366 return Result; 3367 } 3368 // Don't track the argument type, since an initializer list has none. 3369 continue; 3370 } 3371 3372 // Keep track of the argument type and corresponding parameter index, 3373 // so we can check for compatibility between the deduced A and A. 3374 OriginalCallArgs.push_back(OriginalCallArg(OrigParamType, ArgIdx-1, 3375 ArgType)); 3376 3377 if (TemplateDeductionResult Result 3378 = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams, 3379 ParamType, ArgType, 3380 Info, Deduced, TDF)) 3381 return Result; 3382 3383 continue; 3384 } 3385 3386 // C++0x [temp.deduct.call]p1: 3387 // For a function parameter pack that occurs at the end of the 3388 // parameter-declaration-list, the type A of each remaining argument of 3389 // the call is compared with the type P of the declarator-id of the 3390 // function parameter pack. Each comparison deduces template arguments 3391 // for subsequent positions in the template parameter packs expanded by 3392 // the function parameter pack. For a function parameter pack that does 3393 // not occur at the end of the parameter-declaration-list, the type of 3394 // the parameter pack is a non-deduced context. 3395 if (ParamIdx + 1 < NumParams) 3396 break; 3397 3398 QualType ParamPattern = ParamExpansion->getPattern(); 3399 SmallVector<unsigned, 2> PackIndices; 3400 { 3401 llvm::SmallBitVector SawIndices(TemplateParams->size()); 3402 SmallVector<UnexpandedParameterPack, 2> Unexpanded; 3403 collectUnexpandedParameterPacks(ParamPattern, Unexpanded); 3404 for (unsigned I = 0, N = Unexpanded.size(); I != N; ++I) { 3405 unsigned Depth, Index; 3406 llvm::tie(Depth, Index) = getDepthAndIndex(Unexpanded[I]); 3407 if (Depth == 0 && !SawIndices[Index]) { 3408 SawIndices[Index] = true; 3409 PackIndices.push_back(Index); 3410 } 3411 } 3412 } 3413 assert(!PackIndices.empty() && "Pack expansion without unexpanded packs?"); 3414 3415 // Keep track of the deduced template arguments for each parameter pack 3416 // expanded by this pack expansion (the outer index) and for each 3417 // template argument (the inner SmallVectors). 3418 NewlyDeducedPacksType NewlyDeducedPacks(PackIndices.size()); 3419 SmallVector<DeducedTemplateArgument, 2> 3420 SavedPacks(PackIndices.size()); 3421 PrepareArgumentPackDeduction(*this, Deduced, PackIndices, SavedPacks, 3422 NewlyDeducedPacks); 3423 bool HasAnyArguments = false; 3424 for (; ArgIdx < Args.size(); ++ArgIdx) { 3425 HasAnyArguments = true; 3426 3427 QualType OrigParamType = ParamPattern; 3428 ParamType = OrigParamType; 3429 Expr *Arg = Args[ArgIdx]; 3430 QualType ArgType = Arg->getType(); 3431 3432 unsigned TDF = 0; 3433 if (AdjustFunctionParmAndArgTypesForDeduction(*this, TemplateParams, 3434 ParamType, ArgType, Arg, 3435 TDF)) { 3436 // We can't actually perform any deduction for this argument, so stop 3437 // deduction at this point. 3438 ++ArgIdx; 3439 break; 3440 } 3441 3442 // As above, initializer lists need special handling. 3443 if (InitListExpr *ILE = dyn_cast<InitListExpr>(Arg)) { 3444 QualType X; 3445 if (!isStdInitializerList(ParamType, &X)) { 3446 ++ArgIdx; 3447 break; 3448 } 3449 3450 for (unsigned i = 0, e = ILE->getNumInits(); i < e; ++i) { 3451 if (TemplateDeductionResult Result = 3452 DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams, X, 3453 ILE->getInit(i)->getType(), 3454 Info, Deduced, TDF)) 3455 return Result; 3456 } 3457 } else { 3458 3459 // Keep track of the argument type and corresponding argument index, 3460 // so we can check for compatibility between the deduced A and A. 3461 if (hasDeducibleTemplateParameters(*this, FunctionTemplate, ParamType)) 3462 OriginalCallArgs.push_back(OriginalCallArg(OrigParamType, ArgIdx, 3463 ArgType)); 3464 3465 if (TemplateDeductionResult Result 3466 = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams, 3467 ParamType, ArgType, Info, 3468 Deduced, TDF)) 3469 return Result; 3470 } 3471 3472 // Capture the deduced template arguments for each parameter pack expanded 3473 // by this pack expansion, add them to the list of arguments we've deduced 3474 // for that pack, then clear out the deduced argument. 3475 for (unsigned I = 0, N = PackIndices.size(); I != N; ++I) { 3476 DeducedTemplateArgument &DeducedArg = Deduced[PackIndices[I]]; 3477 if (!DeducedArg.isNull()) { 3478 NewlyDeducedPacks[I].push_back(DeducedArg); 3479 DeducedArg = DeducedTemplateArgument(); 3480 } 3481 } 3482 } 3483 3484 // Build argument packs for each of the parameter packs expanded by this 3485 // pack expansion. 3486 if (Sema::TemplateDeductionResult Result 3487 = FinishArgumentPackDeduction(*this, TemplateParams, HasAnyArguments, 3488 Deduced, PackIndices, SavedPacks, 3489 NewlyDeducedPacks, Info)) 3490 return Result; 3491 3492 // After we've matching against a parameter pack, we're done. 3493 break; 3494 } 3495 3496 return FinishTemplateArgumentDeduction(FunctionTemplate, Deduced, 3497 NumExplicitlySpecified, 3498 Specialization, Info, &OriginalCallArgs); 3499 } 3500 3501 /// \brief Deduce template arguments when taking the address of a function 3502 /// template (C++ [temp.deduct.funcaddr]) or matching a specialization to 3503 /// a template. 3504 /// 3505 /// \param FunctionTemplate the function template for which we are performing 3506 /// template argument deduction. 3507 /// 3508 /// \param ExplicitTemplateArgs the explicitly-specified template 3509 /// arguments. 3510 /// 3511 /// \param ArgFunctionType the function type that will be used as the 3512 /// "argument" type (A) when performing template argument deduction from the 3513 /// function template's function type. This type may be NULL, if there is no 3514 /// argument type to compare against, in C++0x [temp.arg.explicit]p3. 3515 /// 3516 /// \param Specialization if template argument deduction was successful, 3517 /// this will be set to the function template specialization produced by 3518 /// template argument deduction. 3519 /// 3520 /// \param Info the argument will be updated to provide additional information 3521 /// about template argument deduction. 3522 /// 3523 /// \returns the result of template argument deduction. 3524 Sema::TemplateDeductionResult 3525 Sema::DeduceTemplateArguments(FunctionTemplateDecl *FunctionTemplate, 3526 TemplateArgumentListInfo *ExplicitTemplateArgs, 3527 QualType ArgFunctionType, 3528 FunctionDecl *&Specialization, 3529 TemplateDeductionInfo &Info, 3530 bool InOverloadResolution) { 3531 if (FunctionTemplate->isInvalidDecl()) 3532 return TDK_Invalid; 3533 3534 FunctionDecl *Function = FunctionTemplate->getTemplatedDecl(); 3535 TemplateParameterList *TemplateParams 3536 = FunctionTemplate->getTemplateParameters(); 3537 QualType FunctionType = Function->getType(); 3538 3539 // Substitute any explicit template arguments. 3540 LocalInstantiationScope InstScope(*this); 3541 SmallVector<DeducedTemplateArgument, 4> Deduced; 3542 unsigned NumExplicitlySpecified = 0; 3543 SmallVector<QualType, 4> ParamTypes; 3544 if (ExplicitTemplateArgs) { 3545 if (TemplateDeductionResult Result 3546 = SubstituteExplicitTemplateArguments(FunctionTemplate, 3547 *ExplicitTemplateArgs, 3548 Deduced, ParamTypes, 3549 &FunctionType, Info)) 3550 return Result; 3551 3552 NumExplicitlySpecified = Deduced.size(); 3553 } 3554 3555 // Unevaluated SFINAE context. 3556 EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated); 3557 SFINAETrap Trap(*this); 3558 3559 Deduced.resize(TemplateParams->size()); 3560 3561 // If the function has a deduced return type, substitute it for a dependent 3562 // type so that we treat it as a non-deduced context in what follows. 3563 bool HasDeducedReturnType = false; 3564 if (getLangOpts().CPlusPlus1y && InOverloadResolution && 3565 Function->getResultType()->getContainedAutoType()) { 3566 FunctionType = SubstAutoType(FunctionType, Context.DependentTy); 3567 HasDeducedReturnType = true; 3568 } 3569 3570 if (!ArgFunctionType.isNull()) { 3571 unsigned TDF = TDF_TopLevelParameterTypeList; 3572 if (InOverloadResolution) TDF |= TDF_InOverloadResolution; 3573 // Deduce template arguments from the function type. 3574 if (TemplateDeductionResult Result 3575 = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams, 3576 FunctionType, ArgFunctionType, 3577 Info, Deduced, TDF)) 3578 return Result; 3579 } 3580 3581 if (TemplateDeductionResult Result 3582 = FinishTemplateArgumentDeduction(FunctionTemplate, Deduced, 3583 NumExplicitlySpecified, 3584 Specialization, Info)) 3585 return Result; 3586 3587 // If the function has a deduced return type, deduce it now, so we can check 3588 // that the deduced function type matches the requested type. 3589 if (HasDeducedReturnType && 3590 Specialization->getResultType()->isUndeducedType() && 3591 DeduceReturnType(Specialization, Info.getLocation(), false)) 3592 return TDK_MiscellaneousDeductionFailure; 3593 3594 // If the requested function type does not match the actual type of the 3595 // specialization with respect to arguments of compatible pointer to function 3596 // types, template argument deduction fails. 3597 if (!ArgFunctionType.isNull()) { 3598 if (InOverloadResolution && !isSameOrCompatibleFunctionType( 3599 Context.getCanonicalType(Specialization->getType()), 3600 Context.getCanonicalType(ArgFunctionType))) 3601 return TDK_MiscellaneousDeductionFailure; 3602 else if(!InOverloadResolution && 3603 !Context.hasSameType(Specialization->getType(), ArgFunctionType)) 3604 return TDK_MiscellaneousDeductionFailure; 3605 } 3606 3607 return TDK_Success; 3608 } 3609 3610 /// \brief Given a function declaration (e.g. a generic lambda conversion 3611 /// function) that contains an 'auto' in its result type, substitute it 3612 /// with the same Deduced type that the TypeToReplaceAutoWith was deduced 3613 /// with. 3614 static inline void 3615 ReplaceAutoWithinFunctionReturnType(FunctionDecl *F, 3616 QualType TypeToReplaceAutoWith, Sema &S) { 3617 if (TypeToReplaceAutoWith->getContainedAutoType()) 3618 TypeToReplaceAutoWith = TypeToReplaceAutoWith-> 3619 getContainedAutoType()->getDeducedType(); 3620 3621 QualType AutoResultType = F->getResultType(); 3622 assert(AutoResultType->getContainedAutoType()); 3623 QualType DeducedResultType = S.SubstAutoType(AutoResultType, 3624 TypeToReplaceAutoWith); 3625 S.Context.adjustDeducedFunctionResultType(F, DeducedResultType); 3626 } 3627 /// \brief Deduce template arguments for a templated conversion 3628 /// function (C++ [temp.deduct.conv]) and, if successful, produce a 3629 /// conversion function template specialization. 3630 Sema::TemplateDeductionResult 3631 Sema::DeduceTemplateArguments(FunctionTemplateDecl *ConversionTemplate, 3632 QualType ToType, 3633 CXXConversionDecl *&Specialization, 3634 TemplateDeductionInfo &Info) { 3635 if (ConversionTemplate->isInvalidDecl()) 3636 return TDK_Invalid; 3637 3638 CXXConversionDecl *Conv 3639 = cast<CXXConversionDecl>(ConversionTemplate->getTemplatedDecl()); 3640 3641 QualType FromType = Conv->getConversionType(); 3642 3643 // Canonicalize the types for deduction. 3644 QualType P = Context.getCanonicalType(FromType); 3645 QualType A = Context.getCanonicalType(ToType); 3646 3647 // C++0x [temp.deduct.conv]p2: 3648 // If P is a reference type, the type referred to by P is used for 3649 // type deduction. 3650 if (const ReferenceType *PRef = P->getAs<ReferenceType>()) 3651 P = PRef->getPointeeType(); 3652 3653 // C++0x [temp.deduct.conv]p4: 3654 // [...] If A is a reference type, the type referred to by A is used 3655 // for type deduction. 3656 if (const ReferenceType *ARef = A->getAs<ReferenceType>()) 3657 A = ARef->getPointeeType().getUnqualifiedType(); 3658 // C++ [temp.deduct.conv]p3: 3659 // 3660 // If A is not a reference type: 3661 else { 3662 assert(!A->isReferenceType() && "Reference types were handled above"); 3663 3664 // - If P is an array type, the pointer type produced by the 3665 // array-to-pointer standard conversion (4.2) is used in place 3666 // of P for type deduction; otherwise, 3667 if (P->isArrayType()) 3668 P = Context.getArrayDecayedType(P); 3669 // - If P is a function type, the pointer type produced by the 3670 // function-to-pointer standard conversion (4.3) is used in 3671 // place of P for type deduction; otherwise, 3672 else if (P->isFunctionType()) 3673 P = Context.getPointerType(P); 3674 // - If P is a cv-qualified type, the top level cv-qualifiers of 3675 // P's type are ignored for type deduction. 3676 else 3677 P = P.getUnqualifiedType(); 3678 3679 // C++0x [temp.deduct.conv]p4: 3680 // If A is a cv-qualified type, the top level cv-qualifiers of A's 3681 // type are ignored for type deduction. If A is a reference type, the type 3682 // referred to by A is used for type deduction. 3683 A = A.getUnqualifiedType(); 3684 } 3685 3686 // Unevaluated SFINAE context. 3687 EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated); 3688 SFINAETrap Trap(*this); 3689 3690 // C++ [temp.deduct.conv]p1: 3691 // Template argument deduction is done by comparing the return 3692 // type of the template conversion function (call it P) with the 3693 // type that is required as the result of the conversion (call it 3694 // A) as described in 14.8.2.4. 3695 TemplateParameterList *TemplateParams 3696 = ConversionTemplate->getTemplateParameters(); 3697 SmallVector<DeducedTemplateArgument, 4> Deduced; 3698 Deduced.resize(TemplateParams->size()); 3699 3700 // C++0x [temp.deduct.conv]p4: 3701 // In general, the deduction process attempts to find template 3702 // argument values that will make the deduced A identical to 3703 // A. However, there are two cases that allow a difference: 3704 unsigned TDF = 0; 3705 // - If the original A is a reference type, A can be more 3706 // cv-qualified than the deduced A (i.e., the type referred to 3707 // by the reference) 3708 if (ToType->isReferenceType()) 3709 TDF |= TDF_ParamWithReferenceType; 3710 // - The deduced A can be another pointer or pointer to member 3711 // type that can be converted to A via a qualification 3712 // conversion. 3713 // 3714 // (C++0x [temp.deduct.conv]p6 clarifies that this only happens when 3715 // both P and A are pointers or member pointers. In this case, we 3716 // just ignore cv-qualifiers completely). 3717 if ((P->isPointerType() && A->isPointerType()) || 3718 (P->isMemberPointerType() && A->isMemberPointerType())) 3719 TDF |= TDF_IgnoreQualifiers; 3720 if (TemplateDeductionResult Result 3721 = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams, 3722 P, A, Info, Deduced, TDF)) 3723 return Result; 3724 3725 // Create an Instantiation Scope for finalizing the operator. 3726 LocalInstantiationScope InstScope(*this); 3727 3728 CXXMethodDecl *LambdaCallOpSpec = 0; 3729 bool GenericLambdaCallOperatorHasDeducedReturnType = false; 3730 3731 // Having successfully deduced and matched the type of the conversion 3732 // function against the destination type, if the destination type 3733 // is a ptr-to-function and the source type is a generic lambda conversion 3734 // to ptr-to-function, we know that the parameters of the destination 3735 // ptr-to-function have matched successfully against those of our 3736 // lambda's conversion function. 3737 // For instance: 3738 // int (*fp)(int) = [](auto a) { return a; }; 3739 // [template<class T> operator id<auto(*)(T)>() const] 3740 // If it is indeed the conversion operator of a generic lambda then if 3741 // not already done, create the corresponding specializations of the call 3742 // operator and the static-invoker; and if the return type is auto, 3743 // deduce the return type, and then check and see if it matches the ToType. 3744 3745 const bool IsGenericLambdaConversionOperator = 3746 isLambdaConversionOperator(Conv); 3747 if (IsGenericLambdaConversionOperator) { 3748 const Type *ToTypePtr = A.getTypePtr(); 3749 3750 assert(A->isPointerType()); 3751 ToTypePtr = A->getPointeeType().getTypePtr(); 3752 3753 CXXRecordDecl *LambdaClass = Conv->getParent(); 3754 assert(LambdaClass && LambdaClass->isGenericLambda()); 3755 3756 const FunctionType *ToFunType = ToTypePtr->getAs<FunctionType>(); 3757 3758 // The specialization of the Generic Lambda Call Op, instantiated 3759 // using the deduced parameters from the conversion function 3760 // i.e. 3761 // auto L = [](auto a) { return f(a); }; 3762 // int (*fp)(int) = L; 3763 // 3764 3765 CXXMethodDecl *CallOp = LambdaClass->getLambdaCallOperator(); 3766 QualType CallOpResultType = CallOp->getResultType(); 3767 GenericLambdaCallOperatorHasDeducedReturnType = 3768 CallOpResultType->getContainedAutoType(); 3769 FunctionTemplateDecl *CallOpTemplate = 3770 CallOp->getDescribedFunctionTemplate(); 3771 3772 TemplateDeductionInfo OpInfo(Info.getLocation()); 3773 FunctionDecl *CallOpSpec = 0; 3774 // Use the deduced arguments so far, to specialize our generic 3775 // lambda's call operator. 3776 if (TemplateDeductionResult Result 3777 = FinishTemplateArgumentDeduction(CallOpTemplate, Deduced, 3778 0, CallOpSpec, OpInfo)) 3779 return Result; 3780 3781 // bool HadToDeduceReturnTypeDuringCurrentCall = false; 3782 // If we need to deduce the return type, do so (instantiates the callop). 3783 if (GenericLambdaCallOperatorHasDeducedReturnType && 3784 CallOpSpec->getResultType()->isUndeducedType()) { 3785 // HadToDeduceReturnTypeDuringCurrentCall = true; 3786 DeduceReturnType(CallOpSpec, CallOpSpec->getPointOfInstantiation(), 3787 /*Diagnose*/ true); 3788 } 3789 3790 LambdaCallOpSpec = cast<CXXMethodDecl>(CallOpSpec); 3791 3792 // Check to see if the return type of the destination ptr-to-function 3793 // matches the return type of the call operator. 3794 if (!Context.hasSameType(LambdaCallOpSpec->getResultType(), 3795 ToFunType->getResultType())) 3796 return TDK_NonDeducedMismatch; 3797 // Since we have succeeded in matching the source and destination 3798 // ptr-to-functions (now including return type), and have successfully 3799 // specialized our corresponding call operator, we are ready to 3800 // specialize the static invoker with the deduced arguments of our 3801 // ptr-to-function. 3802 FunctionDecl *InvokerSpecialization = 0; 3803 FunctionTemplateDecl *InvokerTemplate = LambdaClass-> 3804 getLambdaStaticInvoker()->getDescribedFunctionTemplate(); 3805 3806 TemplateDeductionResult LLVM_ATTRIBUTE_UNUSED Result 3807 = FinishTemplateArgumentDeduction(InvokerTemplate, Deduced, 0, 3808 InvokerSpecialization, Info); 3809 assert(Result == TDK_Success); 3810 // Set the result type to match the corresponding call operator 3811 // specialization's result type. 3812 if (GenericLambdaCallOperatorHasDeducedReturnType && 3813 InvokerSpecialization->getResultType()->isUndeducedType()) 3814 ReplaceAutoWithinFunctionReturnType(InvokerSpecialization, 3815 LambdaCallOpSpec->getResultType(), *this); 3816 3817 // Ensure that static invoker doesn't have a const qualifier. 3818 // FIXME: When creating the InvokerTemplate in SemaLambda.cpp 3819 // do not use the CallOperator's TypeSourceInfo which allows 3820 // the const qualifier to leak through. 3821 const FunctionProtoType *InvokerFPT = InvokerSpecialization-> 3822 getType().getTypePtr()->castAs<FunctionProtoType>(); 3823 FunctionProtoType::ExtProtoInfo EPI = InvokerFPT->getExtProtoInfo(); 3824 EPI.TypeQuals = 0; 3825 InvokerSpecialization->setType(Context.getFunctionType( 3826 InvokerFPT->getResultType(), InvokerFPT->getArgTypes(),EPI)); 3827 3828 // Since the original conversion operator's parameters are the same 3829 // entities as the lambda's call operator's, we introduce a mapping 3830 // from the generic to the specialized parameters of the call operators. 3831 // This only needs to be done in the absence of return type deduction, 3832 // since deducing the return type entails instantiation which adds 3833 // the parameter mapping to the CurrentInstantiationScope. 3834 // This is necessary when transforming nested lambdas that do not 3835 // capture. 3836 // FIXME: This will be fixed once nested lambdas and capturing 3837 // is implemented since it does require handling parameter 3838 // packs correctly which might require careful calls to 3839 // SemaTemplateInstantiate::addInstantiatedParametersToScope. 3840 // if (!HadToDeduceReturnTypeDuringCurrentCall) { ... } 3841 } 3842 3843 3844 // Finish template argument deduction. 3845 FunctionDecl *ConversionSpec = 0; 3846 TemplateDeductionResult Result 3847 = FinishTemplateArgumentDeduction(ConversionTemplate, Deduced, 0, 3848 ConversionSpec, Info); 3849 Specialization = cast_or_null<CXXConversionDecl>(ConversionSpec); 3850 if (Result == TDK_Success && GenericLambdaCallOperatorHasDeducedReturnType) { 3851 // Set the return type of the conversion specialization, since even 3852 // though we have ensured that the return types are compatible, if 3853 // there is an auto in the return type of this conversion function, 3854 // replace it permanently with the return type of the deduced lambda 3855 // so we don't try and deduce against it. 3856 assert(LambdaCallOpSpec); 3857 if (ConversionSpec->getResultType()->isUndeducedType()) 3858 ReplaceAutoWithinFunctionReturnType(ConversionSpec, 3859 LambdaCallOpSpec->getResultType(), 3860 *this); 3861 } 3862 return Result; 3863 } 3864 3865 /// \brief Deduce template arguments for a function template when there is 3866 /// nothing to deduce against (C++0x [temp.arg.explicit]p3). 3867 /// 3868 /// \param FunctionTemplate the function template for which we are performing 3869 /// template argument deduction. 3870 /// 3871 /// \param ExplicitTemplateArgs the explicitly-specified template 3872 /// arguments. 3873 /// 3874 /// \param Specialization if template argument deduction was successful, 3875 /// this will be set to the function template specialization produced by 3876 /// template argument deduction. 3877 /// 3878 /// \param Info the argument will be updated to provide additional information 3879 /// about template argument deduction. 3880 /// 3881 /// \returns the result of template argument deduction. 3882 Sema::TemplateDeductionResult 3883 Sema::DeduceTemplateArguments(FunctionTemplateDecl *FunctionTemplate, 3884 TemplateArgumentListInfo *ExplicitTemplateArgs, 3885 FunctionDecl *&Specialization, 3886 TemplateDeductionInfo &Info, 3887 bool InOverloadResolution) { 3888 return DeduceTemplateArguments(FunctionTemplate, ExplicitTemplateArgs, 3889 QualType(), Specialization, Info, 3890 InOverloadResolution); 3891 } 3892 3893 namespace { 3894 /// Substitute the 'auto' type specifier within a type for a given replacement 3895 /// type. 3896 class SubstituteAutoTransform : 3897 public TreeTransform<SubstituteAutoTransform> { 3898 QualType Replacement; 3899 public: 3900 SubstituteAutoTransform(Sema &SemaRef, QualType Replacement) : 3901 TreeTransform<SubstituteAutoTransform>(SemaRef), Replacement(Replacement) { 3902 } 3903 QualType TransformAutoType(TypeLocBuilder &TLB, AutoTypeLoc TL) { 3904 // If we're building the type pattern to deduce against, don't wrap the 3905 // substituted type in an AutoType. Certain template deduction rules 3906 // apply only when a template type parameter appears directly (and not if 3907 // the parameter is found through desugaring). For instance: 3908 // auto &&lref = lvalue; 3909 // must transform into "rvalue reference to T" not "rvalue reference to 3910 // auto type deduced as T" in order for [temp.deduct.call]p3 to apply. 3911 if (!Replacement.isNull() && isa<TemplateTypeParmType>(Replacement)) { 3912 QualType Result = Replacement; 3913 TemplateTypeParmTypeLoc NewTL = 3914 TLB.push<TemplateTypeParmTypeLoc>(Result); 3915 NewTL.setNameLoc(TL.getNameLoc()); 3916 return Result; 3917 } else { 3918 bool Dependent = 3919 !Replacement.isNull() && Replacement->isDependentType(); 3920 QualType Result = 3921 SemaRef.Context.getAutoType(Dependent ? QualType() : Replacement, 3922 TL.getTypePtr()->isDecltypeAuto(), 3923 Dependent); 3924 AutoTypeLoc NewTL = TLB.push<AutoTypeLoc>(Result); 3925 NewTL.setNameLoc(TL.getNameLoc()); 3926 return Result; 3927 } 3928 } 3929 3930 ExprResult TransformLambdaExpr(LambdaExpr *E) { 3931 // Lambdas never need to be transformed. 3932 return E; 3933 } 3934 3935 QualType Apply(TypeLoc TL) { 3936 // Create some scratch storage for the transformed type locations. 3937 // FIXME: We're just going to throw this information away. Don't build it. 3938 TypeLocBuilder TLB; 3939 TLB.reserve(TL.getFullDataSize()); 3940 return TransformType(TLB, TL); 3941 } 3942 }; 3943 } 3944 3945 Sema::DeduceAutoResult 3946 Sema::DeduceAutoType(TypeSourceInfo *Type, Expr *&Init, QualType &Result) { 3947 return DeduceAutoType(Type->getTypeLoc(), Init, Result); 3948 } 3949 3950 /// \brief Deduce the type for an auto type-specifier (C++11 [dcl.spec.auto]p6) 3951 /// 3952 /// \param Type the type pattern using the auto type-specifier. 3953 /// \param Init the initializer for the variable whose type is to be deduced. 3954 /// \param Result if type deduction was successful, this will be set to the 3955 /// deduced type. 3956 Sema::DeduceAutoResult 3957 Sema::DeduceAutoType(TypeLoc Type, Expr *&Init, QualType &Result) { 3958 if (Init->getType()->isNonOverloadPlaceholderType()) { 3959 ExprResult NonPlaceholder = CheckPlaceholderExpr(Init); 3960 if (NonPlaceholder.isInvalid()) 3961 return DAR_FailedAlreadyDiagnosed; 3962 Init = NonPlaceholder.take(); 3963 } 3964 3965 if (Init->isTypeDependent() || Type.getType()->isDependentType()) { 3966 Result = SubstituteAutoTransform(*this, Context.DependentTy).Apply(Type); 3967 assert(!Result.isNull() && "substituting DependentTy can't fail"); 3968 return DAR_Succeeded; 3969 } 3970 3971 // If this is a 'decltype(auto)' specifier, do the decltype dance. 3972 // Since 'decltype(auto)' can only occur at the top of the type, we 3973 // don't need to go digging for it. 3974 if (const AutoType *AT = Type.getType()->getAs<AutoType>()) { 3975 if (AT->isDecltypeAuto()) { 3976 if (isa<InitListExpr>(Init)) { 3977 Diag(Init->getLocStart(), diag::err_decltype_auto_initializer_list); 3978 return DAR_FailedAlreadyDiagnosed; 3979 } 3980 3981 QualType Deduced = BuildDecltypeType(Init, Init->getLocStart()); 3982 // FIXME: Support a non-canonical deduced type for 'auto'. 3983 Deduced = Context.getCanonicalType(Deduced); 3984 Result = SubstituteAutoTransform(*this, Deduced).Apply(Type); 3985 if (Result.isNull()) 3986 return DAR_FailedAlreadyDiagnosed; 3987 return DAR_Succeeded; 3988 } 3989 } 3990 3991 SourceLocation Loc = Init->getExprLoc(); 3992 3993 LocalInstantiationScope InstScope(*this); 3994 3995 // Build template<class TemplParam> void Func(FuncParam); 3996 TemplateTypeParmDecl *TemplParam = 3997 TemplateTypeParmDecl::Create(Context, 0, SourceLocation(), Loc, 0, 0, 0, 3998 false, false); 3999 QualType TemplArg = QualType(TemplParam->getTypeForDecl(), 0); 4000 NamedDecl *TemplParamPtr = TemplParam; 4001 FixedSizeTemplateParameterList<1> TemplateParams(Loc, Loc, &TemplParamPtr, 4002 Loc); 4003 4004 QualType FuncParam = SubstituteAutoTransform(*this, TemplArg).Apply(Type); 4005 assert(!FuncParam.isNull() && 4006 "substituting template parameter for 'auto' failed"); 4007 4008 // Deduce type of TemplParam in Func(Init) 4009 SmallVector<DeducedTemplateArgument, 1> Deduced; 4010 Deduced.resize(1); 4011 QualType InitType = Init->getType(); 4012 unsigned TDF = 0; 4013 4014 TemplateDeductionInfo Info(Loc); 4015 4016 InitListExpr *InitList = dyn_cast<InitListExpr>(Init); 4017 if (InitList) { 4018 for (unsigned i = 0, e = InitList->getNumInits(); i < e; ++i) { 4019 if (DeduceTemplateArgumentByListElement(*this, &TemplateParams, 4020 TemplArg, 4021 InitList->getInit(i), 4022 Info, Deduced, TDF)) 4023 return DAR_Failed; 4024 } 4025 } else { 4026 if (AdjustFunctionParmAndArgTypesForDeduction(*this, &TemplateParams, 4027 FuncParam, InitType, Init, 4028 TDF)) 4029 return DAR_Failed; 4030 4031 if (DeduceTemplateArgumentsByTypeMatch(*this, &TemplateParams, FuncParam, 4032 InitType, Info, Deduced, TDF)) 4033 return DAR_Failed; 4034 } 4035 4036 if (Deduced[0].getKind() != TemplateArgument::Type) 4037 return DAR_Failed; 4038 4039 QualType DeducedType = Deduced[0].getAsType(); 4040 4041 if (InitList) { 4042 DeducedType = BuildStdInitializerList(DeducedType, Loc); 4043 if (DeducedType.isNull()) 4044 return DAR_FailedAlreadyDiagnosed; 4045 } 4046 4047 Result = SubstituteAutoTransform(*this, DeducedType).Apply(Type); 4048 if (Result.isNull()) 4049 return DAR_FailedAlreadyDiagnosed; 4050 4051 // Check that the deduced argument type is compatible with the original 4052 // argument type per C++ [temp.deduct.call]p4. 4053 if (!InitList && !Result.isNull() && 4054 CheckOriginalCallArgDeduction(*this, 4055 Sema::OriginalCallArg(FuncParam,0,InitType), 4056 Result)) { 4057 Result = QualType(); 4058 return DAR_Failed; 4059 } 4060 4061 return DAR_Succeeded; 4062 } 4063 4064 QualType Sema::SubstAutoType(QualType TypeWithAuto, 4065 QualType TypeToReplaceAuto) { 4066 return SubstituteAutoTransform(*this, TypeToReplaceAuto). 4067 TransformType(TypeWithAuto); 4068 } 4069 4070 TypeSourceInfo* Sema::SubstAutoTypeSourceInfo(TypeSourceInfo *TypeWithAuto, 4071 QualType TypeToReplaceAuto) { 4072 return SubstituteAutoTransform(*this, TypeToReplaceAuto). 4073 TransformType(TypeWithAuto); 4074 } 4075 4076 void Sema::DiagnoseAutoDeductionFailure(VarDecl *VDecl, Expr *Init) { 4077 if (isa<InitListExpr>(Init)) 4078 Diag(VDecl->getLocation(), 4079 VDecl->isInitCapture() 4080 ? diag::err_init_capture_deduction_failure_from_init_list 4081 : diag::err_auto_var_deduction_failure_from_init_list) 4082 << VDecl->getDeclName() << VDecl->getType() << Init->getSourceRange(); 4083 else 4084 Diag(VDecl->getLocation(), 4085 VDecl->isInitCapture() ? diag::err_init_capture_deduction_failure 4086 : diag::err_auto_var_deduction_failure) 4087 << VDecl->getDeclName() << VDecl->getType() << Init->getType() 4088 << Init->getSourceRange(); 4089 } 4090 4091 bool Sema::DeduceReturnType(FunctionDecl *FD, SourceLocation Loc, 4092 bool Diagnose) { 4093 assert(FD->getResultType()->isUndeducedType()); 4094 4095 if (FD->getTemplateInstantiationPattern()) 4096 InstantiateFunctionDefinition(Loc, FD); 4097 4098 bool StillUndeduced = FD->getResultType()->isUndeducedType(); 4099 if (StillUndeduced && Diagnose && !FD->isInvalidDecl()) { 4100 Diag(Loc, diag::err_auto_fn_used_before_defined) << FD; 4101 Diag(FD->getLocation(), diag::note_callee_decl) << FD; 4102 } 4103 4104 return StillUndeduced; 4105 } 4106 4107 static void 4108 MarkUsedTemplateParameters(ASTContext &Ctx, QualType T, 4109 bool OnlyDeduced, 4110 unsigned Level, 4111 llvm::SmallBitVector &Deduced); 4112 4113 /// \brief If this is a non-static member function, 4114 static void 4115 AddImplicitObjectParameterType(ASTContext &Context, 4116 CXXMethodDecl *Method, 4117 SmallVectorImpl<QualType> &ArgTypes) { 4118 // C++11 [temp.func.order]p3: 4119 // [...] The new parameter is of type "reference to cv A," where cv are 4120 // the cv-qualifiers of the function template (if any) and A is 4121 // the class of which the function template is a member. 4122 // 4123 // The standard doesn't say explicitly, but we pick the appropriate kind of 4124 // reference type based on [over.match.funcs]p4. 4125 QualType ArgTy = Context.getTypeDeclType(Method->getParent()); 4126 ArgTy = Context.getQualifiedType(ArgTy, 4127 Qualifiers::fromCVRMask(Method->getTypeQualifiers())); 4128 if (Method->getRefQualifier() == RQ_RValue) 4129 ArgTy = Context.getRValueReferenceType(ArgTy); 4130 else 4131 ArgTy = Context.getLValueReferenceType(ArgTy); 4132 ArgTypes.push_back(ArgTy); 4133 } 4134 4135 /// \brief Determine whether the function template \p FT1 is at least as 4136 /// specialized as \p FT2. 4137 static bool isAtLeastAsSpecializedAs(Sema &S, 4138 SourceLocation Loc, 4139 FunctionTemplateDecl *FT1, 4140 FunctionTemplateDecl *FT2, 4141 TemplatePartialOrderingContext TPOC, 4142 unsigned NumCallArguments1, 4143 SmallVectorImpl<RefParamPartialOrderingComparison> *RefParamComparisons) { 4144 FunctionDecl *FD1 = FT1->getTemplatedDecl(); 4145 FunctionDecl *FD2 = FT2->getTemplatedDecl(); 4146 const FunctionProtoType *Proto1 = FD1->getType()->getAs<FunctionProtoType>(); 4147 const FunctionProtoType *Proto2 = FD2->getType()->getAs<FunctionProtoType>(); 4148 4149 assert(Proto1 && Proto2 && "Function templates must have prototypes"); 4150 TemplateParameterList *TemplateParams = FT2->getTemplateParameters(); 4151 SmallVector<DeducedTemplateArgument, 4> Deduced; 4152 Deduced.resize(TemplateParams->size()); 4153 4154 // C++0x [temp.deduct.partial]p3: 4155 // The types used to determine the ordering depend on the context in which 4156 // the partial ordering is done: 4157 TemplateDeductionInfo Info(Loc); 4158 SmallVector<QualType, 4> Args2; 4159 switch (TPOC) { 4160 case TPOC_Call: { 4161 // - In the context of a function call, the function parameter types are 4162 // used. 4163 CXXMethodDecl *Method1 = dyn_cast<CXXMethodDecl>(FD1); 4164 CXXMethodDecl *Method2 = dyn_cast<CXXMethodDecl>(FD2); 4165 4166 // C++11 [temp.func.order]p3: 4167 // [...] If only one of the function templates is a non-static 4168 // member, that function template is considered to have a new 4169 // first parameter inserted in its function parameter list. The 4170 // new parameter is of type "reference to cv A," where cv are 4171 // the cv-qualifiers of the function template (if any) and A is 4172 // the class of which the function template is a member. 4173 // 4174 // Note that we interpret this to mean "if one of the function 4175 // templates is a non-static member and the other is a non-member"; 4176 // otherwise, the ordering rules for static functions against non-static 4177 // functions don't make any sense. 4178 // 4179 // C++98/03 doesn't have this provision, so instead we drop the 4180 // first argument of the free function, which seems to match 4181 // existing practice. 4182 SmallVector<QualType, 4> Args1; 4183 4184 unsigned Skip1 = 0, Skip2 = 0; 4185 unsigned NumComparedArguments = NumCallArguments1; 4186 4187 if (!Method2 && Method1 && !Method1->isStatic()) { 4188 if (S.getLangOpts().CPlusPlus11) { 4189 // Compare 'this' from Method1 against first parameter from Method2. 4190 AddImplicitObjectParameterType(S.Context, Method1, Args1); 4191 ++NumComparedArguments; 4192 } else 4193 // Ignore first parameter from Method2. 4194 ++Skip2; 4195 } else if (!Method1 && Method2 && !Method2->isStatic()) { 4196 if (S.getLangOpts().CPlusPlus11) 4197 // Compare 'this' from Method2 against first parameter from Method1. 4198 AddImplicitObjectParameterType(S.Context, Method2, Args2); 4199 else 4200 // Ignore first parameter from Method1. 4201 ++Skip1; 4202 } 4203 4204 Args1.insert(Args1.end(), 4205 Proto1->arg_type_begin() + Skip1, Proto1->arg_type_end()); 4206 Args2.insert(Args2.end(), 4207 Proto2->arg_type_begin() + Skip2, Proto2->arg_type_end()); 4208 4209 // C++ [temp.func.order]p5: 4210 // The presence of unused ellipsis and default arguments has no effect on 4211 // the partial ordering of function templates. 4212 if (Args1.size() > NumComparedArguments) 4213 Args1.resize(NumComparedArguments); 4214 if (Args2.size() > NumComparedArguments) 4215 Args2.resize(NumComparedArguments); 4216 if (DeduceTemplateArguments(S, TemplateParams, Args2.data(), Args2.size(), 4217 Args1.data(), Args1.size(), Info, Deduced, 4218 TDF_None, /*PartialOrdering=*/true, 4219 RefParamComparisons)) 4220 return false; 4221 4222 break; 4223 } 4224 4225 case TPOC_Conversion: 4226 // - In the context of a call to a conversion operator, the return types 4227 // of the conversion function templates are used. 4228 if (DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 4229 Proto2->getResultType(), 4230 Proto1->getResultType(), 4231 Info, Deduced, TDF_None, 4232 /*PartialOrdering=*/true, 4233 RefParamComparisons)) 4234 return false; 4235 break; 4236 4237 case TPOC_Other: 4238 // - In other contexts (14.6.6.2) the function template's function type 4239 // is used. 4240 if (DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, 4241 FD2->getType(), FD1->getType(), 4242 Info, Deduced, TDF_None, 4243 /*PartialOrdering=*/true, 4244 RefParamComparisons)) 4245 return false; 4246 break; 4247 } 4248 4249 // C++0x [temp.deduct.partial]p11: 4250 // In most cases, all template parameters must have values in order for 4251 // deduction to succeed, but for partial ordering purposes a template 4252 // parameter may remain without a value provided it is not used in the 4253 // types being used for partial ordering. [ Note: a template parameter used 4254 // in a non-deduced context is considered used. -end note] 4255 unsigned ArgIdx = 0, NumArgs = Deduced.size(); 4256 for (; ArgIdx != NumArgs; ++ArgIdx) 4257 if (Deduced[ArgIdx].isNull()) 4258 break; 4259 4260 if (ArgIdx == NumArgs) { 4261 // All template arguments were deduced. FT1 is at least as specialized 4262 // as FT2. 4263 return true; 4264 } 4265 4266 // Figure out which template parameters were used. 4267 llvm::SmallBitVector UsedParameters(TemplateParams->size()); 4268 switch (TPOC) { 4269 case TPOC_Call: 4270 for (unsigned I = 0, N = Args2.size(); I != N; ++I) 4271 ::MarkUsedTemplateParameters(S.Context, Args2[I], false, 4272 TemplateParams->getDepth(), 4273 UsedParameters); 4274 break; 4275 4276 case TPOC_Conversion: 4277 ::MarkUsedTemplateParameters(S.Context, Proto2->getResultType(), false, 4278 TemplateParams->getDepth(), 4279 UsedParameters); 4280 break; 4281 4282 case TPOC_Other: 4283 ::MarkUsedTemplateParameters(S.Context, FD2->getType(), false, 4284 TemplateParams->getDepth(), 4285 UsedParameters); 4286 break; 4287 } 4288 4289 for (; ArgIdx != NumArgs; ++ArgIdx) 4290 // If this argument had no value deduced but was used in one of the types 4291 // used for partial ordering, then deduction fails. 4292 if (Deduced[ArgIdx].isNull() && UsedParameters[ArgIdx]) 4293 return false; 4294 4295 return true; 4296 } 4297 4298 /// \brief Determine whether this a function template whose parameter-type-list 4299 /// ends with a function parameter pack. 4300 static bool isVariadicFunctionTemplate(FunctionTemplateDecl *FunTmpl) { 4301 FunctionDecl *Function = FunTmpl->getTemplatedDecl(); 4302 unsigned NumParams = Function->getNumParams(); 4303 if (NumParams == 0) 4304 return false; 4305 4306 ParmVarDecl *Last = Function->getParamDecl(NumParams - 1); 4307 if (!Last->isParameterPack()) 4308 return false; 4309 4310 // Make sure that no previous parameter is a parameter pack. 4311 while (--NumParams > 0) { 4312 if (Function->getParamDecl(NumParams - 1)->isParameterPack()) 4313 return false; 4314 } 4315 4316 return true; 4317 } 4318 4319 /// \brief Returns the more specialized function template according 4320 /// to the rules of function template partial ordering (C++ [temp.func.order]). 4321 /// 4322 /// \param FT1 the first function template 4323 /// 4324 /// \param FT2 the second function template 4325 /// 4326 /// \param TPOC the context in which we are performing partial ordering of 4327 /// function templates. 4328 /// 4329 /// \param NumCallArguments1 The number of arguments in the call to FT1, used 4330 /// only when \c TPOC is \c TPOC_Call. 4331 /// 4332 /// \param NumCallArguments2 The number of arguments in the call to FT2, used 4333 /// only when \c TPOC is \c TPOC_Call. 4334 /// 4335 /// \returns the more specialized function template. If neither 4336 /// template is more specialized, returns NULL. 4337 FunctionTemplateDecl * 4338 Sema::getMoreSpecializedTemplate(FunctionTemplateDecl *FT1, 4339 FunctionTemplateDecl *FT2, 4340 SourceLocation Loc, 4341 TemplatePartialOrderingContext TPOC, 4342 unsigned NumCallArguments1, 4343 unsigned NumCallArguments2) { 4344 SmallVector<RefParamPartialOrderingComparison, 4> RefParamComparisons; 4345 bool Better1 = isAtLeastAsSpecializedAs(*this, Loc, FT1, FT2, TPOC, 4346 NumCallArguments1, 0); 4347 bool Better2 = isAtLeastAsSpecializedAs(*this, Loc, FT2, FT1, TPOC, 4348 NumCallArguments2, 4349 &RefParamComparisons); 4350 4351 if (Better1 != Better2) // We have a clear winner 4352 return Better1? FT1 : FT2; 4353 4354 if (!Better1 && !Better2) // Neither is better than the other 4355 return 0; 4356 4357 // C++0x [temp.deduct.partial]p10: 4358 // If for each type being considered a given template is at least as 4359 // specialized for all types and more specialized for some set of types and 4360 // the other template is not more specialized for any types or is not at 4361 // least as specialized for any types, then the given template is more 4362 // specialized than the other template. Otherwise, neither template is more 4363 // specialized than the other. 4364 Better1 = false; 4365 Better2 = false; 4366 for (unsigned I = 0, N = RefParamComparisons.size(); I != N; ++I) { 4367 // C++0x [temp.deduct.partial]p9: 4368 // If, for a given type, deduction succeeds in both directions (i.e., the 4369 // types are identical after the transformations above) and both P and A 4370 // were reference types (before being replaced with the type referred to 4371 // above): 4372 4373 // -- if the type from the argument template was an lvalue reference 4374 // and the type from the parameter template was not, the argument 4375 // type is considered to be more specialized than the other; 4376 // otherwise, 4377 if (!RefParamComparisons[I].ArgIsRvalueRef && 4378 RefParamComparisons[I].ParamIsRvalueRef) { 4379 Better2 = true; 4380 if (Better1) 4381 return 0; 4382 continue; 4383 } else if (!RefParamComparisons[I].ParamIsRvalueRef && 4384 RefParamComparisons[I].ArgIsRvalueRef) { 4385 Better1 = true; 4386 if (Better2) 4387 return 0; 4388 continue; 4389 } 4390 4391 // -- if the type from the argument template is more cv-qualified than 4392 // the type from the parameter template (as described above), the 4393 // argument type is considered to be more specialized than the 4394 // other; otherwise, 4395 switch (RefParamComparisons[I].Qualifiers) { 4396 case NeitherMoreQualified: 4397 break; 4398 4399 case ParamMoreQualified: 4400 Better1 = true; 4401 if (Better2) 4402 return 0; 4403 continue; 4404 4405 case ArgMoreQualified: 4406 Better2 = true; 4407 if (Better1) 4408 return 0; 4409 continue; 4410 } 4411 4412 // -- neither type is more specialized than the other. 4413 } 4414 4415 assert(!(Better1 && Better2) && "Should have broken out in the loop above"); 4416 if (Better1) 4417 return FT1; 4418 else if (Better2) 4419 return FT2; 4420 4421 // FIXME: This mimics what GCC implements, but doesn't match up with the 4422 // proposed resolution for core issue 692. This area needs to be sorted out, 4423 // but for now we attempt to maintain compatibility. 4424 bool Variadic1 = isVariadicFunctionTemplate(FT1); 4425 bool Variadic2 = isVariadicFunctionTemplate(FT2); 4426 if (Variadic1 != Variadic2) 4427 return Variadic1? FT2 : FT1; 4428 4429 return 0; 4430 } 4431 4432 /// \brief Determine if the two templates are equivalent. 4433 static bool isSameTemplate(TemplateDecl *T1, TemplateDecl *T2) { 4434 if (T1 == T2) 4435 return true; 4436 4437 if (!T1 || !T2) 4438 return false; 4439 4440 return T1->getCanonicalDecl() == T2->getCanonicalDecl(); 4441 } 4442 4443 /// \brief Retrieve the most specialized of the given function template 4444 /// specializations. 4445 /// 4446 /// \param SpecBegin the start iterator of the function template 4447 /// specializations that we will be comparing. 4448 /// 4449 /// \param SpecEnd the end iterator of the function template 4450 /// specializations, paired with \p SpecBegin. 4451 /// 4452 /// \param Loc the location where the ambiguity or no-specializations 4453 /// diagnostic should occur. 4454 /// 4455 /// \param NoneDiag partial diagnostic used to diagnose cases where there are 4456 /// no matching candidates. 4457 /// 4458 /// \param AmbigDiag partial diagnostic used to diagnose an ambiguity, if one 4459 /// occurs. 4460 /// 4461 /// \param CandidateDiag partial diagnostic used for each function template 4462 /// specialization that is a candidate in the ambiguous ordering. One parameter 4463 /// in this diagnostic should be unbound, which will correspond to the string 4464 /// describing the template arguments for the function template specialization. 4465 /// 4466 /// \returns the most specialized function template specialization, if 4467 /// found. Otherwise, returns SpecEnd. 4468 UnresolvedSetIterator Sema::getMostSpecialized( 4469 UnresolvedSetIterator SpecBegin, UnresolvedSetIterator SpecEnd, 4470 TemplateSpecCandidateSet &FailedCandidates, 4471 SourceLocation Loc, const PartialDiagnostic &NoneDiag, 4472 const PartialDiagnostic &AmbigDiag, const PartialDiagnostic &CandidateDiag, 4473 bool Complain, QualType TargetType) { 4474 if (SpecBegin == SpecEnd) { 4475 if (Complain) { 4476 Diag(Loc, NoneDiag); 4477 FailedCandidates.NoteCandidates(*this, Loc); 4478 } 4479 return SpecEnd; 4480 } 4481 4482 if (SpecBegin + 1 == SpecEnd) 4483 return SpecBegin; 4484 4485 // Find the function template that is better than all of the templates it 4486 // has been compared to. 4487 UnresolvedSetIterator Best = SpecBegin; 4488 FunctionTemplateDecl *BestTemplate 4489 = cast<FunctionDecl>(*Best)->getPrimaryTemplate(); 4490 assert(BestTemplate && "Not a function template specialization?"); 4491 for (UnresolvedSetIterator I = SpecBegin + 1; I != SpecEnd; ++I) { 4492 FunctionTemplateDecl *Challenger 4493 = cast<FunctionDecl>(*I)->getPrimaryTemplate(); 4494 assert(Challenger && "Not a function template specialization?"); 4495 if (isSameTemplate(getMoreSpecializedTemplate(BestTemplate, Challenger, 4496 Loc, TPOC_Other, 0, 0), 4497 Challenger)) { 4498 Best = I; 4499 BestTemplate = Challenger; 4500 } 4501 } 4502 4503 // Make sure that the "best" function template is more specialized than all 4504 // of the others. 4505 bool Ambiguous = false; 4506 for (UnresolvedSetIterator I = SpecBegin; I != SpecEnd; ++I) { 4507 FunctionTemplateDecl *Challenger 4508 = cast<FunctionDecl>(*I)->getPrimaryTemplate(); 4509 if (I != Best && 4510 !isSameTemplate(getMoreSpecializedTemplate(BestTemplate, Challenger, 4511 Loc, TPOC_Other, 0, 0), 4512 BestTemplate)) { 4513 Ambiguous = true; 4514 break; 4515 } 4516 } 4517 4518 if (!Ambiguous) { 4519 // We found an answer. Return it. 4520 return Best; 4521 } 4522 4523 // Diagnose the ambiguity. 4524 if (Complain) { 4525 Diag(Loc, AmbigDiag); 4526 4527 // FIXME: Can we order the candidates in some sane way? 4528 for (UnresolvedSetIterator I = SpecBegin; I != SpecEnd; ++I) { 4529 PartialDiagnostic PD = CandidateDiag; 4530 PD << getTemplateArgumentBindingsText( 4531 cast<FunctionDecl>(*I)->getPrimaryTemplate()->getTemplateParameters(), 4532 *cast<FunctionDecl>(*I)->getTemplateSpecializationArgs()); 4533 if (!TargetType.isNull()) 4534 HandleFunctionTypeMismatch(PD, cast<FunctionDecl>(*I)->getType(), 4535 TargetType); 4536 Diag((*I)->getLocation(), PD); 4537 } 4538 } 4539 4540 return SpecEnd; 4541 } 4542 4543 /// \brief Returns the more specialized class template partial specialization 4544 /// according to the rules of partial ordering of class template partial 4545 /// specializations (C++ [temp.class.order]). 4546 /// 4547 /// \param PS1 the first class template partial specialization 4548 /// 4549 /// \param PS2 the second class template partial specialization 4550 /// 4551 /// \returns the more specialized class template partial specialization. If 4552 /// neither partial specialization is more specialized, returns NULL. 4553 ClassTemplatePartialSpecializationDecl * 4554 Sema::getMoreSpecializedPartialSpecialization( 4555 ClassTemplatePartialSpecializationDecl *PS1, 4556 ClassTemplatePartialSpecializationDecl *PS2, 4557 SourceLocation Loc) { 4558 // C++ [temp.class.order]p1: 4559 // For two class template partial specializations, the first is at least as 4560 // specialized as the second if, given the following rewrite to two 4561 // function templates, the first function template is at least as 4562 // specialized as the second according to the ordering rules for function 4563 // templates (14.6.6.2): 4564 // - the first function template has the same template parameters as the 4565 // first partial specialization and has a single function parameter 4566 // whose type is a class template specialization with the template 4567 // arguments of the first partial specialization, and 4568 // - the second function template has the same template parameters as the 4569 // second partial specialization and has a single function parameter 4570 // whose type is a class template specialization with the template 4571 // arguments of the second partial specialization. 4572 // 4573 // Rather than synthesize function templates, we merely perform the 4574 // equivalent partial ordering by performing deduction directly on 4575 // the template arguments of the class template partial 4576 // specializations. This computation is slightly simpler than the 4577 // general problem of function template partial ordering, because 4578 // class template partial specializations are more constrained. We 4579 // know that every template parameter is deducible from the class 4580 // template partial specialization's template arguments, for 4581 // example. 4582 SmallVector<DeducedTemplateArgument, 4> Deduced; 4583 TemplateDeductionInfo Info(Loc); 4584 4585 QualType PT1 = PS1->getInjectedSpecializationType(); 4586 QualType PT2 = PS2->getInjectedSpecializationType(); 4587 4588 // Determine whether PS1 is at least as specialized as PS2 4589 Deduced.resize(PS2->getTemplateParameters()->size()); 4590 bool Better1 = !DeduceTemplateArgumentsByTypeMatch(*this, 4591 PS2->getTemplateParameters(), 4592 PT2, PT1, Info, Deduced, TDF_None, 4593 /*PartialOrdering=*/true, 4594 /*RefParamComparisons=*/0); 4595 if (Better1) { 4596 SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(),Deduced.end()); 4597 InstantiatingTemplate Inst(*this, PS2->getLocation(), PS2, DeducedArgs, 4598 Info); 4599 Better1 = !::FinishTemplateArgumentDeduction( 4600 *this, PS2, PS1->getTemplateArgs(), Deduced, Info); 4601 } 4602 4603 // Determine whether PS2 is at least as specialized as PS1 4604 Deduced.clear(); 4605 Deduced.resize(PS1->getTemplateParameters()->size()); 4606 bool Better2 = !DeduceTemplateArgumentsByTypeMatch( 4607 *this, PS1->getTemplateParameters(), PT1, PT2, Info, Deduced, TDF_None, 4608 /*PartialOrdering=*/true, 4609 /*RefParamComparisons=*/0); 4610 if (Better2) { 4611 SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), 4612 Deduced.end()); 4613 InstantiatingTemplate Inst(*this, PS1->getLocation(), PS1, DeducedArgs, 4614 Info); 4615 Better2 = !::FinishTemplateArgumentDeduction( 4616 *this, PS1, PS2->getTemplateArgs(), Deduced, Info); 4617 } 4618 4619 if (Better1 == Better2) 4620 return 0; 4621 4622 return Better1 ? PS1 : PS2; 4623 } 4624 4625 /// TODO: Unify with ClassTemplatePartialSpecializationDecl version? 4626 /// May require unifying ClassTemplate(Partial)SpecializationDecl and 4627 /// VarTemplate(Partial)SpecializationDecl with a new data 4628 /// structure Template(Partial)SpecializationDecl, and 4629 /// using Template(Partial)SpecializationDecl as input type. 4630 VarTemplatePartialSpecializationDecl * 4631 Sema::getMoreSpecializedPartialSpecialization( 4632 VarTemplatePartialSpecializationDecl *PS1, 4633 VarTemplatePartialSpecializationDecl *PS2, SourceLocation Loc) { 4634 SmallVector<DeducedTemplateArgument, 4> Deduced; 4635 TemplateDeductionInfo Info(Loc); 4636 4637 assert(PS1->getSpecializedTemplate() == PS1->getSpecializedTemplate() && 4638 "the partial specializations being compared should specialize" 4639 " the same template."); 4640 TemplateName Name(PS1->getSpecializedTemplate()); 4641 TemplateName CanonTemplate = Context.getCanonicalTemplateName(Name); 4642 QualType PT1 = Context.getTemplateSpecializationType( 4643 CanonTemplate, PS1->getTemplateArgs().data(), 4644 PS1->getTemplateArgs().size()); 4645 QualType PT2 = Context.getTemplateSpecializationType( 4646 CanonTemplate, PS2->getTemplateArgs().data(), 4647 PS2->getTemplateArgs().size()); 4648 4649 // Determine whether PS1 is at least as specialized as PS2 4650 Deduced.resize(PS2->getTemplateParameters()->size()); 4651 bool Better1 = !DeduceTemplateArgumentsByTypeMatch( 4652 *this, PS2->getTemplateParameters(), PT2, PT1, Info, Deduced, TDF_None, 4653 /*PartialOrdering=*/true, 4654 /*RefParamComparisons=*/0); 4655 if (Better1) { 4656 SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), 4657 Deduced.end()); 4658 InstantiatingTemplate Inst(*this, PS2->getLocation(), PS2, 4659 DeducedArgs, Info); 4660 Better1 = !::FinishTemplateArgumentDeduction(*this, PS2, 4661 PS1->getTemplateArgs(), 4662 Deduced, Info); 4663 } 4664 4665 // Determine whether PS2 is at least as specialized as PS1 4666 Deduced.clear(); 4667 Deduced.resize(PS1->getTemplateParameters()->size()); 4668 bool Better2 = !DeduceTemplateArgumentsByTypeMatch(*this, 4669 PS1->getTemplateParameters(), 4670 PT1, PT2, Info, Deduced, TDF_None, 4671 /*PartialOrdering=*/true, 4672 /*RefParamComparisons=*/0); 4673 if (Better2) { 4674 SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(),Deduced.end()); 4675 InstantiatingTemplate Inst(*this, PS1->getLocation(), PS1, 4676 DeducedArgs, Info); 4677 Better2 = !::FinishTemplateArgumentDeduction(*this, PS1, 4678 PS2->getTemplateArgs(), 4679 Deduced, Info); 4680 } 4681 4682 if (Better1 == Better2) 4683 return 0; 4684 4685 return Better1? PS1 : PS2; 4686 } 4687 4688 static void 4689 MarkUsedTemplateParameters(ASTContext &Ctx, 4690 const TemplateArgument &TemplateArg, 4691 bool OnlyDeduced, 4692 unsigned Depth, 4693 llvm::SmallBitVector &Used); 4694 4695 /// \brief Mark the template parameters that are used by the given 4696 /// expression. 4697 static void 4698 MarkUsedTemplateParameters(ASTContext &Ctx, 4699 const Expr *E, 4700 bool OnlyDeduced, 4701 unsigned Depth, 4702 llvm::SmallBitVector &Used) { 4703 // We can deduce from a pack expansion. 4704 if (const PackExpansionExpr *Expansion = dyn_cast<PackExpansionExpr>(E)) 4705 E = Expansion->getPattern(); 4706 4707 // Skip through any implicit casts we added while type-checking, and any 4708 // substitutions performed by template alias expansion. 4709 while (1) { 4710 if (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) 4711 E = ICE->getSubExpr(); 4712 else if (const SubstNonTypeTemplateParmExpr *Subst = 4713 dyn_cast<SubstNonTypeTemplateParmExpr>(E)) 4714 E = Subst->getReplacement(); 4715 else 4716 break; 4717 } 4718 4719 // FIXME: if !OnlyDeduced, we have to walk the whole subexpression to 4720 // find other occurrences of template parameters. 4721 const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E); 4722 if (!DRE) 4723 return; 4724 4725 const NonTypeTemplateParmDecl *NTTP 4726 = dyn_cast<NonTypeTemplateParmDecl>(DRE->getDecl()); 4727 if (!NTTP) 4728 return; 4729 4730 if (NTTP->getDepth() == Depth) 4731 Used[NTTP->getIndex()] = true; 4732 } 4733 4734 /// \brief Mark the template parameters that are used by the given 4735 /// nested name specifier. 4736 static void 4737 MarkUsedTemplateParameters(ASTContext &Ctx, 4738 NestedNameSpecifier *NNS, 4739 bool OnlyDeduced, 4740 unsigned Depth, 4741 llvm::SmallBitVector &Used) { 4742 if (!NNS) 4743 return; 4744 4745 MarkUsedTemplateParameters(Ctx, NNS->getPrefix(), OnlyDeduced, Depth, 4746 Used); 4747 MarkUsedTemplateParameters(Ctx, QualType(NNS->getAsType(), 0), 4748 OnlyDeduced, Depth, Used); 4749 } 4750 4751 /// \brief Mark the template parameters that are used by the given 4752 /// template name. 4753 static void 4754 MarkUsedTemplateParameters(ASTContext &Ctx, 4755 TemplateName Name, 4756 bool OnlyDeduced, 4757 unsigned Depth, 4758 llvm::SmallBitVector &Used) { 4759 if (TemplateDecl *Template = Name.getAsTemplateDecl()) { 4760 if (TemplateTemplateParmDecl *TTP 4761 = dyn_cast<TemplateTemplateParmDecl>(Template)) { 4762 if (TTP->getDepth() == Depth) 4763 Used[TTP->getIndex()] = true; 4764 } 4765 return; 4766 } 4767 4768 if (QualifiedTemplateName *QTN = Name.getAsQualifiedTemplateName()) 4769 MarkUsedTemplateParameters(Ctx, QTN->getQualifier(), OnlyDeduced, 4770 Depth, Used); 4771 if (DependentTemplateName *DTN = Name.getAsDependentTemplateName()) 4772 MarkUsedTemplateParameters(Ctx, DTN->getQualifier(), OnlyDeduced, 4773 Depth, Used); 4774 } 4775 4776 /// \brief Mark the template parameters that are used by the given 4777 /// type. 4778 static void 4779 MarkUsedTemplateParameters(ASTContext &Ctx, QualType T, 4780 bool OnlyDeduced, 4781 unsigned Depth, 4782 llvm::SmallBitVector &Used) { 4783 if (T.isNull()) 4784 return; 4785 4786 // Non-dependent types have nothing deducible 4787 if (!T->isDependentType()) 4788 return; 4789 4790 T = Ctx.getCanonicalType(T); 4791 switch (T->getTypeClass()) { 4792 case Type::Pointer: 4793 MarkUsedTemplateParameters(Ctx, 4794 cast<PointerType>(T)->getPointeeType(), 4795 OnlyDeduced, 4796 Depth, 4797 Used); 4798 break; 4799 4800 case Type::BlockPointer: 4801 MarkUsedTemplateParameters(Ctx, 4802 cast<BlockPointerType>(T)->getPointeeType(), 4803 OnlyDeduced, 4804 Depth, 4805 Used); 4806 break; 4807 4808 case Type::LValueReference: 4809 case Type::RValueReference: 4810 MarkUsedTemplateParameters(Ctx, 4811 cast<ReferenceType>(T)->getPointeeType(), 4812 OnlyDeduced, 4813 Depth, 4814 Used); 4815 break; 4816 4817 case Type::MemberPointer: { 4818 const MemberPointerType *MemPtr = cast<MemberPointerType>(T.getTypePtr()); 4819 MarkUsedTemplateParameters(Ctx, MemPtr->getPointeeType(), OnlyDeduced, 4820 Depth, Used); 4821 MarkUsedTemplateParameters(Ctx, QualType(MemPtr->getClass(), 0), 4822 OnlyDeduced, Depth, Used); 4823 break; 4824 } 4825 4826 case Type::DependentSizedArray: 4827 MarkUsedTemplateParameters(Ctx, 4828 cast<DependentSizedArrayType>(T)->getSizeExpr(), 4829 OnlyDeduced, Depth, Used); 4830 // Fall through to check the element type 4831 4832 case Type::ConstantArray: 4833 case Type::IncompleteArray: 4834 MarkUsedTemplateParameters(Ctx, 4835 cast<ArrayType>(T)->getElementType(), 4836 OnlyDeduced, Depth, Used); 4837 break; 4838 4839 case Type::Vector: 4840 case Type::ExtVector: 4841 MarkUsedTemplateParameters(Ctx, 4842 cast<VectorType>(T)->getElementType(), 4843 OnlyDeduced, Depth, Used); 4844 break; 4845 4846 case Type::DependentSizedExtVector: { 4847 const DependentSizedExtVectorType *VecType 4848 = cast<DependentSizedExtVectorType>(T); 4849 MarkUsedTemplateParameters(Ctx, VecType->getElementType(), OnlyDeduced, 4850 Depth, Used); 4851 MarkUsedTemplateParameters(Ctx, VecType->getSizeExpr(), OnlyDeduced, 4852 Depth, Used); 4853 break; 4854 } 4855 4856 case Type::FunctionProto: { 4857 const FunctionProtoType *Proto = cast<FunctionProtoType>(T); 4858 MarkUsedTemplateParameters(Ctx, Proto->getResultType(), OnlyDeduced, 4859 Depth, Used); 4860 for (unsigned I = 0, N = Proto->getNumArgs(); I != N; ++I) 4861 MarkUsedTemplateParameters(Ctx, Proto->getArgType(I), OnlyDeduced, 4862 Depth, Used); 4863 break; 4864 } 4865 4866 case Type::TemplateTypeParm: { 4867 const TemplateTypeParmType *TTP = cast<TemplateTypeParmType>(T); 4868 if (TTP->getDepth() == Depth) 4869 Used[TTP->getIndex()] = true; 4870 break; 4871 } 4872 4873 case Type::SubstTemplateTypeParmPack: { 4874 const SubstTemplateTypeParmPackType *Subst 4875 = cast<SubstTemplateTypeParmPackType>(T); 4876 MarkUsedTemplateParameters(Ctx, 4877 QualType(Subst->getReplacedParameter(), 0), 4878 OnlyDeduced, Depth, Used); 4879 MarkUsedTemplateParameters(Ctx, Subst->getArgumentPack(), 4880 OnlyDeduced, Depth, Used); 4881 break; 4882 } 4883 4884 case Type::InjectedClassName: 4885 T = cast<InjectedClassNameType>(T)->getInjectedSpecializationType(); 4886 // fall through 4887 4888 case Type::TemplateSpecialization: { 4889 const TemplateSpecializationType *Spec 4890 = cast<TemplateSpecializationType>(T); 4891 MarkUsedTemplateParameters(Ctx, Spec->getTemplateName(), OnlyDeduced, 4892 Depth, Used); 4893 4894 // C++0x [temp.deduct.type]p9: 4895 // If the template argument list of P contains a pack expansion that is not 4896 // the last template argument, the entire template argument list is a 4897 // non-deduced context. 4898 if (OnlyDeduced && 4899 hasPackExpansionBeforeEnd(Spec->getArgs(), Spec->getNumArgs())) 4900 break; 4901 4902 for (unsigned I = 0, N = Spec->getNumArgs(); I != N; ++I) 4903 MarkUsedTemplateParameters(Ctx, Spec->getArg(I), OnlyDeduced, Depth, 4904 Used); 4905 break; 4906 } 4907 4908 case Type::Complex: 4909 if (!OnlyDeduced) 4910 MarkUsedTemplateParameters(Ctx, 4911 cast<ComplexType>(T)->getElementType(), 4912 OnlyDeduced, Depth, Used); 4913 break; 4914 4915 case Type::Atomic: 4916 if (!OnlyDeduced) 4917 MarkUsedTemplateParameters(Ctx, 4918 cast<AtomicType>(T)->getValueType(), 4919 OnlyDeduced, Depth, Used); 4920 break; 4921 4922 case Type::DependentName: 4923 if (!OnlyDeduced) 4924 MarkUsedTemplateParameters(Ctx, 4925 cast<DependentNameType>(T)->getQualifier(), 4926 OnlyDeduced, Depth, Used); 4927 break; 4928 4929 case Type::DependentTemplateSpecialization: { 4930 const DependentTemplateSpecializationType *Spec 4931 = cast<DependentTemplateSpecializationType>(T); 4932 if (!OnlyDeduced) 4933 MarkUsedTemplateParameters(Ctx, Spec->getQualifier(), 4934 OnlyDeduced, Depth, Used); 4935 4936 // C++0x [temp.deduct.type]p9: 4937 // If the template argument list of P contains a pack expansion that is not 4938 // the last template argument, the entire template argument list is a 4939 // non-deduced context. 4940 if (OnlyDeduced && 4941 hasPackExpansionBeforeEnd(Spec->getArgs(), Spec->getNumArgs())) 4942 break; 4943 4944 for (unsigned I = 0, N = Spec->getNumArgs(); I != N; ++I) 4945 MarkUsedTemplateParameters(Ctx, Spec->getArg(I), OnlyDeduced, Depth, 4946 Used); 4947 break; 4948 } 4949 4950 case Type::TypeOf: 4951 if (!OnlyDeduced) 4952 MarkUsedTemplateParameters(Ctx, 4953 cast<TypeOfType>(T)->getUnderlyingType(), 4954 OnlyDeduced, Depth, Used); 4955 break; 4956 4957 case Type::TypeOfExpr: 4958 if (!OnlyDeduced) 4959 MarkUsedTemplateParameters(Ctx, 4960 cast<TypeOfExprType>(T)->getUnderlyingExpr(), 4961 OnlyDeduced, Depth, Used); 4962 break; 4963 4964 case Type::Decltype: 4965 if (!OnlyDeduced) 4966 MarkUsedTemplateParameters(Ctx, 4967 cast<DecltypeType>(T)->getUnderlyingExpr(), 4968 OnlyDeduced, Depth, Used); 4969 break; 4970 4971 case Type::UnaryTransform: 4972 if (!OnlyDeduced) 4973 MarkUsedTemplateParameters(Ctx, 4974 cast<UnaryTransformType>(T)->getUnderlyingType(), 4975 OnlyDeduced, Depth, Used); 4976 break; 4977 4978 case Type::PackExpansion: 4979 MarkUsedTemplateParameters(Ctx, 4980 cast<PackExpansionType>(T)->getPattern(), 4981 OnlyDeduced, Depth, Used); 4982 break; 4983 4984 case Type::Auto: 4985 MarkUsedTemplateParameters(Ctx, 4986 cast<AutoType>(T)->getDeducedType(), 4987 OnlyDeduced, Depth, Used); 4988 4989 // None of these types have any template parameters in them. 4990 case Type::Builtin: 4991 case Type::VariableArray: 4992 case Type::FunctionNoProto: 4993 case Type::Record: 4994 case Type::Enum: 4995 case Type::ObjCInterface: 4996 case Type::ObjCObject: 4997 case Type::ObjCObjectPointer: 4998 case Type::UnresolvedUsing: 4999 #define TYPE(Class, Base) 5000 #define ABSTRACT_TYPE(Class, Base) 5001 #define DEPENDENT_TYPE(Class, Base) 5002 #define NON_CANONICAL_TYPE(Class, Base) case Type::Class: 5003 #include "clang/AST/TypeNodes.def" 5004 break; 5005 } 5006 } 5007 5008 /// \brief Mark the template parameters that are used by this 5009 /// template argument. 5010 static void 5011 MarkUsedTemplateParameters(ASTContext &Ctx, 5012 const TemplateArgument &TemplateArg, 5013 bool OnlyDeduced, 5014 unsigned Depth, 5015 llvm::SmallBitVector &Used) { 5016 switch (TemplateArg.getKind()) { 5017 case TemplateArgument::Null: 5018 case TemplateArgument::Integral: 5019 case TemplateArgument::Declaration: 5020 break; 5021 5022 case TemplateArgument::NullPtr: 5023 MarkUsedTemplateParameters(Ctx, TemplateArg.getNullPtrType(), OnlyDeduced, 5024 Depth, Used); 5025 break; 5026 5027 case TemplateArgument::Type: 5028 MarkUsedTemplateParameters(Ctx, TemplateArg.getAsType(), OnlyDeduced, 5029 Depth, Used); 5030 break; 5031 5032 case TemplateArgument::Template: 5033 case TemplateArgument::TemplateExpansion: 5034 MarkUsedTemplateParameters(Ctx, 5035 TemplateArg.getAsTemplateOrTemplatePattern(), 5036 OnlyDeduced, Depth, Used); 5037 break; 5038 5039 case TemplateArgument::Expression: 5040 MarkUsedTemplateParameters(Ctx, TemplateArg.getAsExpr(), OnlyDeduced, 5041 Depth, Used); 5042 break; 5043 5044 case TemplateArgument::Pack: 5045 for (TemplateArgument::pack_iterator P = TemplateArg.pack_begin(), 5046 PEnd = TemplateArg.pack_end(); 5047 P != PEnd; ++P) 5048 MarkUsedTemplateParameters(Ctx, *P, OnlyDeduced, Depth, Used); 5049 break; 5050 } 5051 } 5052 5053 /// \brief Mark which template parameters can be deduced from a given 5054 /// template argument list. 5055 /// 5056 /// \param TemplateArgs the template argument list from which template 5057 /// parameters will be deduced. 5058 /// 5059 /// \param Used a bit vector whose elements will be set to \c true 5060 /// to indicate when the corresponding template parameter will be 5061 /// deduced. 5062 void 5063 Sema::MarkUsedTemplateParameters(const TemplateArgumentList &TemplateArgs, 5064 bool OnlyDeduced, unsigned Depth, 5065 llvm::SmallBitVector &Used) { 5066 // C++0x [temp.deduct.type]p9: 5067 // If the template argument list of P contains a pack expansion that is not 5068 // the last template argument, the entire template argument list is a 5069 // non-deduced context. 5070 if (OnlyDeduced && 5071 hasPackExpansionBeforeEnd(TemplateArgs.data(), TemplateArgs.size())) 5072 return; 5073 5074 for (unsigned I = 0, N = TemplateArgs.size(); I != N; ++I) 5075 ::MarkUsedTemplateParameters(Context, TemplateArgs[I], OnlyDeduced, 5076 Depth, Used); 5077 } 5078 5079 /// \brief Marks all of the template parameters that will be deduced by a 5080 /// call to the given function template. 5081 void 5082 Sema::MarkDeducedTemplateParameters(ASTContext &Ctx, 5083 const FunctionTemplateDecl *FunctionTemplate, 5084 llvm::SmallBitVector &Deduced) { 5085 TemplateParameterList *TemplateParams 5086 = FunctionTemplate->getTemplateParameters(); 5087 Deduced.clear(); 5088 Deduced.resize(TemplateParams->size()); 5089 5090 FunctionDecl *Function = FunctionTemplate->getTemplatedDecl(); 5091 for (unsigned I = 0, N = Function->getNumParams(); I != N; ++I) 5092 ::MarkUsedTemplateParameters(Ctx, Function->getParamDecl(I)->getType(), 5093 true, TemplateParams->getDepth(), Deduced); 5094 } 5095 5096 bool hasDeducibleTemplateParameters(Sema &S, 5097 FunctionTemplateDecl *FunctionTemplate, 5098 QualType T) { 5099 if (!T->isDependentType()) 5100 return false; 5101 5102 TemplateParameterList *TemplateParams 5103 = FunctionTemplate->getTemplateParameters(); 5104 llvm::SmallBitVector Deduced(TemplateParams->size()); 5105 ::MarkUsedTemplateParameters(S.Context, T, true, TemplateParams->getDepth(), 5106 Deduced); 5107 5108 return Deduced.any(); 5109 } 5110