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         std::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       else if (ArgQuals.getObjCLifetime() != ParamQuals.getObjCLifetime() &&
985                ArgQuals.withoutObjCLifetime()
986                  == ParamQuals.withoutObjCLifetime()) {
987         // Prefer binding to non-__unsafe_autoretained parameters.
988         if (ArgQuals.getObjCLifetime() == Qualifiers::OCL_ExplicitNone &&
989             ParamQuals.getObjCLifetime())
990           Comparison.Qualifiers = ParamMoreQualified;
991         else if (ParamQuals.getObjCLifetime() == Qualifiers::OCL_ExplicitNone &&
992                  ArgQuals.getObjCLifetime())
993           Comparison.Qualifiers = ArgMoreQualified;
994       }
995       RefParamComparisons->push_back(Comparison);
996     }
997 
998     // C++0x [temp.deduct.partial]p7:
999     //   Remove any top-level cv-qualifiers:
1000     //     - If P is a cv-qualified type, P is replaced by the cv-unqualified
1001     //       version of P.
1002     Param = Param.getUnqualifiedType();
1003     //     - If A is a cv-qualified type, A is replaced by the cv-unqualified
1004     //       version of A.
1005     Arg = Arg.getUnqualifiedType();
1006   } else {
1007     // C++0x [temp.deduct.call]p4 bullet 1:
1008     //   - If the original P is a reference type, the deduced A (i.e., the type
1009     //     referred to by the reference) can be more cv-qualified than the
1010     //     transformed A.
1011     if (TDF & TDF_ParamWithReferenceType) {
1012       Qualifiers Quals;
1013       QualType UnqualParam = S.Context.getUnqualifiedArrayType(Param, Quals);
1014       Quals.setCVRQualifiers(Quals.getCVRQualifiers() &
1015                              Arg.getCVRQualifiers());
1016       Param = S.Context.getQualifiedType(UnqualParam, Quals);
1017     }
1018 
1019     if ((TDF & TDF_TopLevelParameterTypeList) && !Param->isFunctionType()) {
1020       // C++0x [temp.deduct.type]p10:
1021       //   If P and A are function types that originated from deduction when
1022       //   taking the address of a function template (14.8.2.2) or when deducing
1023       //   template arguments from a function declaration (14.8.2.6) and Pi and
1024       //   Ai are parameters of the top-level parameter-type-list of P and A,
1025       //   respectively, Pi is adjusted if it is an rvalue reference to a
1026       //   cv-unqualified template parameter and Ai is an lvalue reference, in
1027       //   which case the type of Pi is changed to be the template parameter
1028       //   type (i.e., T&& is changed to simply T). [ Note: As a result, when
1029       //   Pi is T&& and Ai is X&, the adjusted Pi will be T, causing T to be
1030       //   deduced as X&. - end note ]
1031       TDF &= ~TDF_TopLevelParameterTypeList;
1032 
1033       if (const RValueReferenceType *ParamRef
1034                                         = Param->getAs<RValueReferenceType>()) {
1035         if (isa<TemplateTypeParmType>(ParamRef->getPointeeType()) &&
1036             !ParamRef->getPointeeType().getQualifiers())
1037           if (Arg->isLValueReferenceType())
1038             Param = ParamRef->getPointeeType();
1039       }
1040     }
1041   }
1042 
1043   // C++ [temp.deduct.type]p9:
1044   //   A template type argument T, a template template argument TT or a
1045   //   template non-type argument i can be deduced if P and A have one of
1046   //   the following forms:
1047   //
1048   //     T
1049   //     cv-list T
1050   if (const TemplateTypeParmType *TemplateTypeParm
1051         = Param->getAs<TemplateTypeParmType>()) {
1052     // Just skip any attempts to deduce from a placeholder type.
1053     if (Arg->isPlaceholderType())
1054       return Sema::TDK_Success;
1055 
1056     unsigned Index = TemplateTypeParm->getIndex();
1057     bool RecanonicalizeArg = false;
1058 
1059     // If the argument type is an array type, move the qualifiers up to the
1060     // top level, so they can be matched with the qualifiers on the parameter.
1061     if (isa<ArrayType>(Arg)) {
1062       Qualifiers Quals;
1063       Arg = S.Context.getUnqualifiedArrayType(Arg, Quals);
1064       if (Quals) {
1065         Arg = S.Context.getQualifiedType(Arg, Quals);
1066         RecanonicalizeArg = true;
1067       }
1068     }
1069 
1070     // The argument type can not be less qualified than the parameter
1071     // type.
1072     if (!(TDF & TDF_IgnoreQualifiers) &&
1073         hasInconsistentOrSupersetQualifiersOf(Param, Arg)) {
1074       Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index));
1075       Info.FirstArg = TemplateArgument(Param);
1076       Info.SecondArg = TemplateArgument(Arg);
1077       return Sema::TDK_Underqualified;
1078     }
1079 
1080     assert(TemplateTypeParm->getDepth() == 0 && "Can't deduce with depth > 0");
1081     assert(Arg != S.Context.OverloadTy && "Unresolved overloaded function");
1082     QualType DeducedType = Arg;
1083 
1084     // Remove any qualifiers on the parameter from the deduced type.
1085     // We checked the qualifiers for consistency above.
1086     Qualifiers DeducedQs = DeducedType.getQualifiers();
1087     Qualifiers ParamQs = Param.getQualifiers();
1088     DeducedQs.removeCVRQualifiers(ParamQs.getCVRQualifiers());
1089     if (ParamQs.hasObjCGCAttr())
1090       DeducedQs.removeObjCGCAttr();
1091     if (ParamQs.hasAddressSpace())
1092       DeducedQs.removeAddressSpace();
1093     if (ParamQs.hasObjCLifetime())
1094       DeducedQs.removeObjCLifetime();
1095 
1096     // Objective-C ARC:
1097     //   If template deduction would produce a lifetime qualifier on a type
1098     //   that is not a lifetime type, template argument deduction fails.
1099     if (ParamQs.hasObjCLifetime() && !DeducedType->isObjCLifetimeType() &&
1100         !DeducedType->isDependentType()) {
1101       Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index));
1102       Info.FirstArg = TemplateArgument(Param);
1103       Info.SecondArg = TemplateArgument(Arg);
1104       return Sema::TDK_Underqualified;
1105     }
1106 
1107     // Objective-C ARC:
1108     //   If template deduction would produce an argument type with lifetime type
1109     //   but no lifetime qualifier, the __strong lifetime qualifier is inferred.
1110     if (S.getLangOpts().ObjCAutoRefCount &&
1111         DeducedType->isObjCLifetimeType() &&
1112         !DeducedQs.hasObjCLifetime())
1113       DeducedQs.setObjCLifetime(Qualifiers::OCL_Strong);
1114 
1115     DeducedType = S.Context.getQualifiedType(DeducedType.getUnqualifiedType(),
1116                                              DeducedQs);
1117 
1118     if (RecanonicalizeArg)
1119       DeducedType = S.Context.getCanonicalType(DeducedType);
1120 
1121     DeducedTemplateArgument NewDeduced(DeducedType);
1122     DeducedTemplateArgument Result = checkDeducedTemplateArguments(S.Context,
1123                                                                  Deduced[Index],
1124                                                                    NewDeduced);
1125     if (Result.isNull()) {
1126       Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index));
1127       Info.FirstArg = Deduced[Index];
1128       Info.SecondArg = NewDeduced;
1129       return Sema::TDK_Inconsistent;
1130     }
1131 
1132     Deduced[Index] = Result;
1133     return Sema::TDK_Success;
1134   }
1135 
1136   // Set up the template argument deduction information for a failure.
1137   Info.FirstArg = TemplateArgument(ParamIn);
1138   Info.SecondArg = TemplateArgument(ArgIn);
1139 
1140   // If the parameter is an already-substituted template parameter
1141   // pack, do nothing: we don't know which of its arguments to look
1142   // at, so we have to wait until all of the parameter packs in this
1143   // expansion have arguments.
1144   if (isa<SubstTemplateTypeParmPackType>(Param))
1145     return Sema::TDK_Success;
1146 
1147   // Check the cv-qualifiers on the parameter and argument types.
1148   CanQualType CanParam = S.Context.getCanonicalType(Param);
1149   CanQualType CanArg = S.Context.getCanonicalType(Arg);
1150   if (!(TDF & TDF_IgnoreQualifiers)) {
1151     if (TDF & TDF_ParamWithReferenceType) {
1152       if (hasInconsistentOrSupersetQualifiersOf(Param, Arg))
1153         return Sema::TDK_NonDeducedMismatch;
1154     } else if (!IsPossiblyOpaquelyQualifiedType(Param)) {
1155       if (Param.getCVRQualifiers() != Arg.getCVRQualifiers())
1156         return Sema::TDK_NonDeducedMismatch;
1157     }
1158 
1159     // If the parameter type is not dependent, there is nothing to deduce.
1160     if (!Param->isDependentType()) {
1161       if (!(TDF & TDF_SkipNonDependent)) {
1162         bool NonDeduced = (TDF & TDF_InOverloadResolution)?
1163                           !S.isSameOrCompatibleFunctionType(CanParam, CanArg) :
1164                           Param != Arg;
1165         if (NonDeduced) {
1166           return Sema::TDK_NonDeducedMismatch;
1167         }
1168       }
1169       return Sema::TDK_Success;
1170     }
1171   } else if (!Param->isDependentType()) {
1172     CanQualType ParamUnqualType = CanParam.getUnqualifiedType(),
1173                 ArgUnqualType = CanArg.getUnqualifiedType();
1174     bool Success = (TDF & TDF_InOverloadResolution)?
1175                    S.isSameOrCompatibleFunctionType(ParamUnqualType,
1176                                                     ArgUnqualType) :
1177                    ParamUnqualType == ArgUnqualType;
1178     if (Success)
1179       return Sema::TDK_Success;
1180   }
1181 
1182   switch (Param->getTypeClass()) {
1183     // Non-canonical types cannot appear here.
1184 #define NON_CANONICAL_TYPE(Class, Base) \
1185   case Type::Class: llvm_unreachable("deducing non-canonical type: " #Class);
1186 #define TYPE(Class, Base)
1187 #include "clang/AST/TypeNodes.def"
1188 
1189     case Type::TemplateTypeParm:
1190     case Type::SubstTemplateTypeParmPack:
1191       llvm_unreachable("Type nodes handled above");
1192 
1193     // These types cannot be dependent, so simply check whether the types are
1194     // the same.
1195     case Type::Builtin:
1196     case Type::VariableArray:
1197     case Type::Vector:
1198     case Type::FunctionNoProto:
1199     case Type::Record:
1200     case Type::Enum:
1201     case Type::ObjCObject:
1202     case Type::ObjCInterface:
1203     case Type::ObjCObjectPointer: {
1204       if (TDF & TDF_SkipNonDependent)
1205         return Sema::TDK_Success;
1206 
1207       if (TDF & TDF_IgnoreQualifiers) {
1208         Param = Param.getUnqualifiedType();
1209         Arg = Arg.getUnqualifiedType();
1210       }
1211 
1212       return Param == Arg? Sema::TDK_Success : Sema::TDK_NonDeducedMismatch;
1213     }
1214 
1215     //     _Complex T   [placeholder extension]
1216     case Type::Complex:
1217       if (const ComplexType *ComplexArg = Arg->getAs<ComplexType>())
1218         return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1219                                     cast<ComplexType>(Param)->getElementType(),
1220                                     ComplexArg->getElementType(),
1221                                     Info, Deduced, TDF);
1222 
1223       return Sema::TDK_NonDeducedMismatch;
1224 
1225     //     _Atomic T   [extension]
1226     case Type::Atomic:
1227       if (const AtomicType *AtomicArg = Arg->getAs<AtomicType>())
1228         return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1229                                        cast<AtomicType>(Param)->getValueType(),
1230                                        AtomicArg->getValueType(),
1231                                        Info, Deduced, TDF);
1232 
1233       return Sema::TDK_NonDeducedMismatch;
1234 
1235     //     T *
1236     case Type::Pointer: {
1237       QualType PointeeType;
1238       if (const PointerType *PointerArg = Arg->getAs<PointerType>()) {
1239         PointeeType = PointerArg->getPointeeType();
1240       } else if (const ObjCObjectPointerType *PointerArg
1241                    = Arg->getAs<ObjCObjectPointerType>()) {
1242         PointeeType = PointerArg->getPointeeType();
1243       } else {
1244         return Sema::TDK_NonDeducedMismatch;
1245       }
1246 
1247       unsigned SubTDF = TDF & (TDF_IgnoreQualifiers | TDF_DerivedClass);
1248       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1249                                      cast<PointerType>(Param)->getPointeeType(),
1250                                      PointeeType,
1251                                      Info, Deduced, SubTDF);
1252     }
1253 
1254     //     T &
1255     case Type::LValueReference: {
1256       const LValueReferenceType *ReferenceArg = Arg->getAs<LValueReferenceType>();
1257       if (!ReferenceArg)
1258         return Sema::TDK_NonDeducedMismatch;
1259 
1260       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1261                            cast<LValueReferenceType>(Param)->getPointeeType(),
1262                            ReferenceArg->getPointeeType(), Info, Deduced, 0);
1263     }
1264 
1265     //     T && [C++0x]
1266     case Type::RValueReference: {
1267       const RValueReferenceType *ReferenceArg = Arg->getAs<RValueReferenceType>();
1268       if (!ReferenceArg)
1269         return Sema::TDK_NonDeducedMismatch;
1270 
1271       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1272                              cast<RValueReferenceType>(Param)->getPointeeType(),
1273                              ReferenceArg->getPointeeType(),
1274                              Info, Deduced, 0);
1275     }
1276 
1277     //     T [] (implied, but not stated explicitly)
1278     case Type::IncompleteArray: {
1279       const IncompleteArrayType *IncompleteArrayArg =
1280         S.Context.getAsIncompleteArrayType(Arg);
1281       if (!IncompleteArrayArg)
1282         return Sema::TDK_NonDeducedMismatch;
1283 
1284       unsigned SubTDF = TDF & TDF_IgnoreQualifiers;
1285       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1286                     S.Context.getAsIncompleteArrayType(Param)->getElementType(),
1287                     IncompleteArrayArg->getElementType(),
1288                     Info, Deduced, SubTDF);
1289     }
1290 
1291     //     T [integer-constant]
1292     case Type::ConstantArray: {
1293       const ConstantArrayType *ConstantArrayArg =
1294         S.Context.getAsConstantArrayType(Arg);
1295       if (!ConstantArrayArg)
1296         return Sema::TDK_NonDeducedMismatch;
1297 
1298       const ConstantArrayType *ConstantArrayParm =
1299         S.Context.getAsConstantArrayType(Param);
1300       if (ConstantArrayArg->getSize() != ConstantArrayParm->getSize())
1301         return Sema::TDK_NonDeducedMismatch;
1302 
1303       unsigned SubTDF = TDF & TDF_IgnoreQualifiers;
1304       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1305                                            ConstantArrayParm->getElementType(),
1306                                            ConstantArrayArg->getElementType(),
1307                                            Info, Deduced, SubTDF);
1308     }
1309 
1310     //     type [i]
1311     case Type::DependentSizedArray: {
1312       const ArrayType *ArrayArg = S.Context.getAsArrayType(Arg);
1313       if (!ArrayArg)
1314         return Sema::TDK_NonDeducedMismatch;
1315 
1316       unsigned SubTDF = TDF & TDF_IgnoreQualifiers;
1317 
1318       // Check the element type of the arrays
1319       const DependentSizedArrayType *DependentArrayParm
1320         = S.Context.getAsDependentSizedArrayType(Param);
1321       if (Sema::TemplateDeductionResult Result
1322             = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1323                                           DependentArrayParm->getElementType(),
1324                                           ArrayArg->getElementType(),
1325                                           Info, Deduced, SubTDF))
1326         return Result;
1327 
1328       // Determine the array bound is something we can deduce.
1329       NonTypeTemplateParmDecl *NTTP
1330         = getDeducedParameterFromExpr(DependentArrayParm->getSizeExpr());
1331       if (!NTTP)
1332         return Sema::TDK_Success;
1333 
1334       // We can perform template argument deduction for the given non-type
1335       // template parameter.
1336       assert(NTTP->getDepth() == 0 &&
1337              "Cannot deduce non-type template argument at depth > 0");
1338       if (const ConstantArrayType *ConstantArrayArg
1339             = dyn_cast<ConstantArrayType>(ArrayArg)) {
1340         llvm::APSInt Size(ConstantArrayArg->getSize());
1341         return DeduceNonTypeTemplateArgument(S, NTTP, Size,
1342                                              S.Context.getSizeType(),
1343                                              /*ArrayBound=*/true,
1344                                              Info, Deduced);
1345       }
1346       if (const DependentSizedArrayType *DependentArrayArg
1347             = dyn_cast<DependentSizedArrayType>(ArrayArg))
1348         if (DependentArrayArg->getSizeExpr())
1349           return DeduceNonTypeTemplateArgument(S, NTTP,
1350                                                DependentArrayArg->getSizeExpr(),
1351                                                Info, Deduced);
1352 
1353       // Incomplete type does not match a dependently-sized array type
1354       return Sema::TDK_NonDeducedMismatch;
1355     }
1356 
1357     //     type(*)(T)
1358     //     T(*)()
1359     //     T(*)(T)
1360     case Type::FunctionProto: {
1361       unsigned SubTDF = TDF & TDF_TopLevelParameterTypeList;
1362       const FunctionProtoType *FunctionProtoArg =
1363         dyn_cast<FunctionProtoType>(Arg);
1364       if (!FunctionProtoArg)
1365         return Sema::TDK_NonDeducedMismatch;
1366 
1367       const FunctionProtoType *FunctionProtoParam =
1368         cast<FunctionProtoType>(Param);
1369 
1370       if (FunctionProtoParam->getTypeQuals()
1371             != FunctionProtoArg->getTypeQuals() ||
1372           FunctionProtoParam->getRefQualifier()
1373             != FunctionProtoArg->getRefQualifier() ||
1374           FunctionProtoParam->isVariadic() != FunctionProtoArg->isVariadic())
1375         return Sema::TDK_NonDeducedMismatch;
1376 
1377       // Check return types.
1378       if (Sema::TemplateDeductionResult Result =
1379               DeduceTemplateArgumentsByTypeMatch(
1380                   S, TemplateParams, FunctionProtoParam->getReturnType(),
1381                   FunctionProtoArg->getReturnType(), Info, Deduced, 0))
1382         return Result;
1383 
1384       return DeduceTemplateArguments(
1385           S, TemplateParams, FunctionProtoParam->param_type_begin(),
1386           FunctionProtoParam->getNumParams(),
1387           FunctionProtoArg->param_type_begin(),
1388           FunctionProtoArg->getNumParams(), Info, Deduced, SubTDF);
1389     }
1390 
1391     case Type::InjectedClassName: {
1392       // Treat a template's injected-class-name as if the template
1393       // specialization type had been used.
1394       Param = cast<InjectedClassNameType>(Param)
1395         ->getInjectedSpecializationType();
1396       assert(isa<TemplateSpecializationType>(Param) &&
1397              "injected class name is not a template specialization type");
1398       // fall through
1399     }
1400 
1401     //     template-name<T> (where template-name refers to a class template)
1402     //     template-name<i>
1403     //     TT<T>
1404     //     TT<i>
1405     //     TT<>
1406     case Type::TemplateSpecialization: {
1407       const TemplateSpecializationType *SpecParam
1408         = cast<TemplateSpecializationType>(Param);
1409 
1410       // Try to deduce template arguments from the template-id.
1411       Sema::TemplateDeductionResult Result
1412         = DeduceTemplateArguments(S, TemplateParams, SpecParam, Arg,
1413                                   Info, Deduced);
1414 
1415       if (Result && (TDF & TDF_DerivedClass)) {
1416         // C++ [temp.deduct.call]p3b3:
1417         //   If P is a class, and P has the form template-id, then A can be a
1418         //   derived class of the deduced A. Likewise, if P is a pointer to a
1419         //   class of the form template-id, A can be a pointer to a derived
1420         //   class pointed to by the deduced A.
1421         //
1422         // More importantly:
1423         //   These alternatives are considered only if type deduction would
1424         //   otherwise fail.
1425         if (const RecordType *RecordT = Arg->getAs<RecordType>()) {
1426           // We cannot inspect base classes as part of deduction when the type
1427           // is incomplete, so either instantiate any templates necessary to
1428           // complete the type, or skip over it if it cannot be completed.
1429           if (S.RequireCompleteType(Info.getLocation(), Arg, 0))
1430             return Result;
1431 
1432           // Use data recursion to crawl through the list of base classes.
1433           // Visited contains the set of nodes we have already visited, while
1434           // ToVisit is our stack of records that we still need to visit.
1435           llvm::SmallPtrSet<const RecordType *, 8> Visited;
1436           SmallVector<const RecordType *, 8> ToVisit;
1437           ToVisit.push_back(RecordT);
1438           bool Successful = false;
1439           SmallVector<DeducedTemplateArgument, 8> DeducedOrig(Deduced.begin(),
1440                                                               Deduced.end());
1441           while (!ToVisit.empty()) {
1442             // Retrieve the next class in the inheritance hierarchy.
1443             const RecordType *NextT = ToVisit.pop_back_val();
1444 
1445             // If we have already seen this type, skip it.
1446             if (!Visited.insert(NextT))
1447               continue;
1448 
1449             // If this is a base class, try to perform template argument
1450             // deduction from it.
1451             if (NextT != RecordT) {
1452               TemplateDeductionInfo BaseInfo(Info.getLocation());
1453               Sema::TemplateDeductionResult BaseResult
1454                 = DeduceTemplateArguments(S, TemplateParams, SpecParam,
1455                                           QualType(NextT, 0), BaseInfo,
1456                                           Deduced);
1457 
1458               // If template argument deduction for this base was successful,
1459               // note that we had some success. Otherwise, ignore any deductions
1460               // from this base class.
1461               if (BaseResult == Sema::TDK_Success) {
1462                 Successful = true;
1463                 DeducedOrig.clear();
1464                 DeducedOrig.append(Deduced.begin(), Deduced.end());
1465                 Info.Param = BaseInfo.Param;
1466                 Info.FirstArg = BaseInfo.FirstArg;
1467                 Info.SecondArg = BaseInfo.SecondArg;
1468               }
1469               else
1470                 Deduced = DeducedOrig;
1471             }
1472 
1473             // Visit base classes
1474             CXXRecordDecl *Next = cast<CXXRecordDecl>(NextT->getDecl());
1475             for (CXXRecordDecl::base_class_iterator Base = Next->bases_begin(),
1476                                                  BaseEnd = Next->bases_end();
1477                  Base != BaseEnd; ++Base) {
1478               assert(Base->getType()->isRecordType() &&
1479                      "Base class that isn't a record?");
1480               ToVisit.push_back(Base->getType()->getAs<RecordType>());
1481             }
1482           }
1483 
1484           if (Successful)
1485             return Sema::TDK_Success;
1486         }
1487 
1488       }
1489 
1490       return Result;
1491     }
1492 
1493     //     T type::*
1494     //     T T::*
1495     //     T (type::*)()
1496     //     type (T::*)()
1497     //     type (type::*)(T)
1498     //     type (T::*)(T)
1499     //     T (type::*)(T)
1500     //     T (T::*)()
1501     //     T (T::*)(T)
1502     case Type::MemberPointer: {
1503       const MemberPointerType *MemPtrParam = cast<MemberPointerType>(Param);
1504       const MemberPointerType *MemPtrArg = dyn_cast<MemberPointerType>(Arg);
1505       if (!MemPtrArg)
1506         return Sema::TDK_NonDeducedMismatch;
1507 
1508       if (Sema::TemplateDeductionResult Result
1509             = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1510                                                  MemPtrParam->getPointeeType(),
1511                                                  MemPtrArg->getPointeeType(),
1512                                                  Info, Deduced,
1513                                                  TDF & TDF_IgnoreQualifiers))
1514         return Result;
1515 
1516       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1517                                            QualType(MemPtrParam->getClass(), 0),
1518                                            QualType(MemPtrArg->getClass(), 0),
1519                                            Info, Deduced,
1520                                            TDF & TDF_IgnoreQualifiers);
1521     }
1522 
1523     //     (clang extension)
1524     //
1525     //     type(^)(T)
1526     //     T(^)()
1527     //     T(^)(T)
1528     case Type::BlockPointer: {
1529       const BlockPointerType *BlockPtrParam = cast<BlockPointerType>(Param);
1530       const BlockPointerType *BlockPtrArg = dyn_cast<BlockPointerType>(Arg);
1531 
1532       if (!BlockPtrArg)
1533         return Sema::TDK_NonDeducedMismatch;
1534 
1535       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1536                                                 BlockPtrParam->getPointeeType(),
1537                                                 BlockPtrArg->getPointeeType(),
1538                                                 Info, Deduced, 0);
1539     }
1540 
1541     //     (clang extension)
1542     //
1543     //     T __attribute__(((ext_vector_type(<integral constant>))))
1544     case Type::ExtVector: {
1545       const ExtVectorType *VectorParam = cast<ExtVectorType>(Param);
1546       if (const ExtVectorType *VectorArg = dyn_cast<ExtVectorType>(Arg)) {
1547         // Make sure that the vectors have the same number of elements.
1548         if (VectorParam->getNumElements() != VectorArg->getNumElements())
1549           return Sema::TDK_NonDeducedMismatch;
1550 
1551         // Perform deduction on the element types.
1552         return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1553                                                   VectorParam->getElementType(),
1554                                                   VectorArg->getElementType(),
1555                                                   Info, Deduced, TDF);
1556       }
1557 
1558       if (const DependentSizedExtVectorType *VectorArg
1559                                 = dyn_cast<DependentSizedExtVectorType>(Arg)) {
1560         // We can't check the number of elements, since the argument has a
1561         // dependent number of elements. This can only occur during partial
1562         // ordering.
1563 
1564         // Perform deduction on the element types.
1565         return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1566                                                   VectorParam->getElementType(),
1567                                                   VectorArg->getElementType(),
1568                                                   Info, Deduced, TDF);
1569       }
1570 
1571       return Sema::TDK_NonDeducedMismatch;
1572     }
1573 
1574     //     (clang extension)
1575     //
1576     //     T __attribute__(((ext_vector_type(N))))
1577     case Type::DependentSizedExtVector: {
1578       const DependentSizedExtVectorType *VectorParam
1579         = cast<DependentSizedExtVectorType>(Param);
1580 
1581       if (const ExtVectorType *VectorArg = dyn_cast<ExtVectorType>(Arg)) {
1582         // Perform deduction on the element types.
1583         if (Sema::TemplateDeductionResult Result
1584               = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1585                                                   VectorParam->getElementType(),
1586                                                    VectorArg->getElementType(),
1587                                                    Info, Deduced, TDF))
1588           return Result;
1589 
1590         // Perform deduction on the vector size, if we can.
1591         NonTypeTemplateParmDecl *NTTP
1592           = getDeducedParameterFromExpr(VectorParam->getSizeExpr());
1593         if (!NTTP)
1594           return Sema::TDK_Success;
1595 
1596         llvm::APSInt ArgSize(S.Context.getTypeSize(S.Context.IntTy), false);
1597         ArgSize = VectorArg->getNumElements();
1598         return DeduceNonTypeTemplateArgument(S, NTTP, ArgSize, S.Context.IntTy,
1599                                              false, Info, Deduced);
1600       }
1601 
1602       if (const DependentSizedExtVectorType *VectorArg
1603                                 = dyn_cast<DependentSizedExtVectorType>(Arg)) {
1604         // Perform deduction on the element types.
1605         if (Sema::TemplateDeductionResult Result
1606             = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1607                                                  VectorParam->getElementType(),
1608                                                  VectorArg->getElementType(),
1609                                                  Info, Deduced, TDF))
1610           return Result;
1611 
1612         // Perform deduction on the vector size, if we can.
1613         NonTypeTemplateParmDecl *NTTP
1614           = getDeducedParameterFromExpr(VectorParam->getSizeExpr());
1615         if (!NTTP)
1616           return Sema::TDK_Success;
1617 
1618         return DeduceNonTypeTemplateArgument(S, NTTP, VectorArg->getSizeExpr(),
1619                                              Info, Deduced);
1620       }
1621 
1622       return Sema::TDK_NonDeducedMismatch;
1623     }
1624 
1625     case Type::TypeOfExpr:
1626     case Type::TypeOf:
1627     case Type::DependentName:
1628     case Type::UnresolvedUsing:
1629     case Type::Decltype:
1630     case Type::UnaryTransform:
1631     case Type::Auto:
1632     case Type::DependentTemplateSpecialization:
1633     case Type::PackExpansion:
1634       // No template argument deduction for these types
1635       return Sema::TDK_Success;
1636   }
1637 
1638   llvm_unreachable("Invalid Type Class!");
1639 }
1640 
1641 static Sema::TemplateDeductionResult
1642 DeduceTemplateArguments(Sema &S,
1643                         TemplateParameterList *TemplateParams,
1644                         const TemplateArgument &Param,
1645                         TemplateArgument Arg,
1646                         TemplateDeductionInfo &Info,
1647                         SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
1648   // If the template argument is a pack expansion, perform template argument
1649   // deduction against the pattern of that expansion. This only occurs during
1650   // partial ordering.
1651   if (Arg.isPackExpansion())
1652     Arg = Arg.getPackExpansionPattern();
1653 
1654   switch (Param.getKind()) {
1655   case TemplateArgument::Null:
1656     llvm_unreachable("Null template argument in parameter list");
1657 
1658   case TemplateArgument::Type:
1659     if (Arg.getKind() == TemplateArgument::Type)
1660       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1661                                                 Param.getAsType(),
1662                                                 Arg.getAsType(),
1663                                                 Info, Deduced, 0);
1664     Info.FirstArg = Param;
1665     Info.SecondArg = Arg;
1666     return Sema::TDK_NonDeducedMismatch;
1667 
1668   case TemplateArgument::Template:
1669     if (Arg.getKind() == TemplateArgument::Template)
1670       return DeduceTemplateArguments(S, TemplateParams,
1671                                      Param.getAsTemplate(),
1672                                      Arg.getAsTemplate(), Info, Deduced);
1673     Info.FirstArg = Param;
1674     Info.SecondArg = Arg;
1675     return Sema::TDK_NonDeducedMismatch;
1676 
1677   case TemplateArgument::TemplateExpansion:
1678     llvm_unreachable("caller should handle pack expansions");
1679 
1680   case TemplateArgument::Declaration:
1681     if (Arg.getKind() == TemplateArgument::Declaration &&
1682         isSameDeclaration(Param.getAsDecl(), Arg.getAsDecl()) &&
1683         Param.isDeclForReferenceParam() == Arg.isDeclForReferenceParam())
1684       return Sema::TDK_Success;
1685 
1686     Info.FirstArg = Param;
1687     Info.SecondArg = Arg;
1688     return Sema::TDK_NonDeducedMismatch;
1689 
1690   case TemplateArgument::NullPtr:
1691     if (Arg.getKind() == TemplateArgument::NullPtr &&
1692         S.Context.hasSameType(Param.getNullPtrType(), Arg.getNullPtrType()))
1693       return Sema::TDK_Success;
1694 
1695     Info.FirstArg = Param;
1696     Info.SecondArg = Arg;
1697     return Sema::TDK_NonDeducedMismatch;
1698 
1699   case TemplateArgument::Integral:
1700     if (Arg.getKind() == TemplateArgument::Integral) {
1701       if (hasSameExtendedValue(Param.getAsIntegral(), Arg.getAsIntegral()))
1702         return Sema::TDK_Success;
1703 
1704       Info.FirstArg = Param;
1705       Info.SecondArg = Arg;
1706       return Sema::TDK_NonDeducedMismatch;
1707     }
1708 
1709     if (Arg.getKind() == TemplateArgument::Expression) {
1710       Info.FirstArg = Param;
1711       Info.SecondArg = Arg;
1712       return Sema::TDK_NonDeducedMismatch;
1713     }
1714 
1715     Info.FirstArg = Param;
1716     Info.SecondArg = Arg;
1717     return Sema::TDK_NonDeducedMismatch;
1718 
1719   case TemplateArgument::Expression: {
1720     if (NonTypeTemplateParmDecl *NTTP
1721           = getDeducedParameterFromExpr(Param.getAsExpr())) {
1722       if (Arg.getKind() == TemplateArgument::Integral)
1723         return DeduceNonTypeTemplateArgument(S, NTTP,
1724                                              Arg.getAsIntegral(),
1725                                              Arg.getIntegralType(),
1726                                              /*ArrayBound=*/false,
1727                                              Info, Deduced);
1728       if (Arg.getKind() == TemplateArgument::Expression)
1729         return DeduceNonTypeTemplateArgument(S, NTTP, Arg.getAsExpr(),
1730                                              Info, Deduced);
1731       if (Arg.getKind() == TemplateArgument::Declaration)
1732         return DeduceNonTypeTemplateArgument(S, NTTP, Arg.getAsDecl(),
1733                                              Info, Deduced);
1734 
1735       Info.FirstArg = Param;
1736       Info.SecondArg = Arg;
1737       return Sema::TDK_NonDeducedMismatch;
1738     }
1739 
1740     // Can't deduce anything, but that's okay.
1741     return Sema::TDK_Success;
1742   }
1743   case TemplateArgument::Pack:
1744     llvm_unreachable("Argument packs should be expanded by the caller!");
1745   }
1746 
1747   llvm_unreachable("Invalid TemplateArgument Kind!");
1748 }
1749 
1750 /// \brief Determine whether there is a template argument to be used for
1751 /// deduction.
1752 ///
1753 /// This routine "expands" argument packs in-place, overriding its input
1754 /// parameters so that \c Args[ArgIdx] will be the available template argument.
1755 ///
1756 /// \returns true if there is another template argument (which will be at
1757 /// \c Args[ArgIdx]), false otherwise.
1758 static bool hasTemplateArgumentForDeduction(const TemplateArgument *&Args,
1759                                             unsigned &ArgIdx,
1760                                             unsigned &NumArgs) {
1761   if (ArgIdx == NumArgs)
1762     return false;
1763 
1764   const TemplateArgument &Arg = Args[ArgIdx];
1765   if (Arg.getKind() != TemplateArgument::Pack)
1766     return true;
1767 
1768   assert(ArgIdx == NumArgs - 1 && "Pack not at the end of argument list?");
1769   Args = Arg.pack_begin();
1770   NumArgs = Arg.pack_size();
1771   ArgIdx = 0;
1772   return ArgIdx < NumArgs;
1773 }
1774 
1775 /// \brief Determine whether the given set of template arguments has a pack
1776 /// expansion that is not the last template argument.
1777 static bool hasPackExpansionBeforeEnd(const TemplateArgument *Args,
1778                                       unsigned NumArgs) {
1779   unsigned ArgIdx = 0;
1780   while (ArgIdx < NumArgs) {
1781     const TemplateArgument &Arg = Args[ArgIdx];
1782 
1783     // Unwrap argument packs.
1784     if (Args[ArgIdx].getKind() == TemplateArgument::Pack) {
1785       Args = Arg.pack_begin();
1786       NumArgs = Arg.pack_size();
1787       ArgIdx = 0;
1788       continue;
1789     }
1790 
1791     ++ArgIdx;
1792     if (ArgIdx == NumArgs)
1793       return false;
1794 
1795     if (Arg.isPackExpansion())
1796       return true;
1797   }
1798 
1799   return false;
1800 }
1801 
1802 static Sema::TemplateDeductionResult
1803 DeduceTemplateArguments(Sema &S,
1804                         TemplateParameterList *TemplateParams,
1805                         const TemplateArgument *Params, unsigned NumParams,
1806                         const TemplateArgument *Args, unsigned NumArgs,
1807                         TemplateDeductionInfo &Info,
1808                         SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
1809   // C++0x [temp.deduct.type]p9:
1810   //   If the template argument list of P contains a pack expansion that is not
1811   //   the last template argument, the entire template argument list is a
1812   //   non-deduced context.
1813   if (hasPackExpansionBeforeEnd(Params, NumParams))
1814     return Sema::TDK_Success;
1815 
1816   // C++0x [temp.deduct.type]p9:
1817   //   If P has a form that contains <T> or <i>, then each argument Pi of the
1818   //   respective template argument list P is compared with the corresponding
1819   //   argument Ai of the corresponding template argument list of A.
1820   unsigned ArgIdx = 0, ParamIdx = 0;
1821   for (; hasTemplateArgumentForDeduction(Params, ParamIdx, NumParams);
1822        ++ParamIdx) {
1823     if (!Params[ParamIdx].isPackExpansion()) {
1824       // The simple case: deduce template arguments by matching Pi and Ai.
1825 
1826       // Check whether we have enough arguments.
1827       if (!hasTemplateArgumentForDeduction(Args, ArgIdx, NumArgs))
1828         return Sema::TDK_Success;
1829 
1830       if (Args[ArgIdx].isPackExpansion()) {
1831         // FIXME: We follow the logic of C++0x [temp.deduct.type]p22 here,
1832         // but applied to pack expansions that are template arguments.
1833         return Sema::TDK_MiscellaneousDeductionFailure;
1834       }
1835 
1836       // Perform deduction for this Pi/Ai pair.
1837       if (Sema::TemplateDeductionResult Result
1838             = DeduceTemplateArguments(S, TemplateParams,
1839                                       Params[ParamIdx], Args[ArgIdx],
1840                                       Info, Deduced))
1841         return Result;
1842 
1843       // Move to the next argument.
1844       ++ArgIdx;
1845       continue;
1846     }
1847 
1848     // The parameter is a pack expansion.
1849 
1850     // C++0x [temp.deduct.type]p9:
1851     //   If Pi is a pack expansion, then the pattern of Pi is compared with
1852     //   each remaining argument in the template argument list of A. Each
1853     //   comparison deduces template arguments for subsequent positions in the
1854     //   template parameter packs expanded by Pi.
1855     TemplateArgument Pattern = Params[ParamIdx].getPackExpansionPattern();
1856 
1857     // Compute the set of template parameter indices that correspond to
1858     // parameter packs expanded by the pack expansion.
1859     SmallVector<unsigned, 2> PackIndices;
1860     {
1861       llvm::SmallBitVector SawIndices(TemplateParams->size());
1862       SmallVector<UnexpandedParameterPack, 2> Unexpanded;
1863       S.collectUnexpandedParameterPacks(Pattern, Unexpanded);
1864       for (unsigned I = 0, N = Unexpanded.size(); I != N; ++I) {
1865         unsigned Depth, Index;
1866         std::tie(Depth, Index) = getDepthAndIndex(Unexpanded[I]);
1867         if (Depth == 0 && !SawIndices[Index]) {
1868           SawIndices[Index] = true;
1869           PackIndices.push_back(Index);
1870         }
1871       }
1872     }
1873     assert(!PackIndices.empty() && "Pack expansion without unexpanded packs?");
1874 
1875     // FIXME: If there are no remaining arguments, we can bail out early
1876     // and set any deduced parameter packs to an empty argument pack.
1877     // The latter part of this is a (minor) correctness issue.
1878 
1879     // Save the deduced template arguments for each parameter pack expanded
1880     // by this pack expansion, then clear out the deduction.
1881     SmallVector<DeducedTemplateArgument, 2>
1882       SavedPacks(PackIndices.size());
1883     NewlyDeducedPacksType NewlyDeducedPacks(PackIndices.size());
1884     PrepareArgumentPackDeduction(S, Deduced, PackIndices, SavedPacks,
1885                                  NewlyDeducedPacks);
1886 
1887     // Keep track of the deduced template arguments for each parameter pack
1888     // expanded by this pack expansion (the outer index) and for each
1889     // template argument (the inner SmallVectors).
1890     bool HasAnyArguments = false;
1891     while (hasTemplateArgumentForDeduction(Args, ArgIdx, NumArgs)) {
1892       HasAnyArguments = true;
1893 
1894       // Deduce template arguments from the pattern.
1895       if (Sema::TemplateDeductionResult Result
1896             = DeduceTemplateArguments(S, TemplateParams, Pattern, Args[ArgIdx],
1897                                       Info, Deduced))
1898         return Result;
1899 
1900       // Capture the deduced template arguments for each parameter pack expanded
1901       // by this pack expansion, add them to the list of arguments we've deduced
1902       // for that pack, then clear out the deduced argument.
1903       for (unsigned I = 0, N = PackIndices.size(); I != N; ++I) {
1904         DeducedTemplateArgument &DeducedArg = Deduced[PackIndices[I]];
1905         if (!DeducedArg.isNull()) {
1906           NewlyDeducedPacks[I].push_back(DeducedArg);
1907           DeducedArg = DeducedTemplateArgument();
1908         }
1909       }
1910 
1911       ++ArgIdx;
1912     }
1913 
1914     // Build argument packs for each of the parameter packs expanded by this
1915     // pack expansion.
1916     if (Sema::TemplateDeductionResult Result
1917           = FinishArgumentPackDeduction(S, TemplateParams, HasAnyArguments,
1918                                         Deduced, PackIndices, SavedPacks,
1919                                         NewlyDeducedPacks, Info))
1920       return Result;
1921   }
1922 
1923   return Sema::TDK_Success;
1924 }
1925 
1926 static Sema::TemplateDeductionResult
1927 DeduceTemplateArguments(Sema &S,
1928                         TemplateParameterList *TemplateParams,
1929                         const TemplateArgumentList &ParamList,
1930                         const TemplateArgumentList &ArgList,
1931                         TemplateDeductionInfo &Info,
1932                         SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
1933   return DeduceTemplateArguments(S, TemplateParams,
1934                                  ParamList.data(), ParamList.size(),
1935                                  ArgList.data(), ArgList.size(),
1936                                  Info, Deduced);
1937 }
1938 
1939 /// \brief Determine whether two template arguments are the same.
1940 static bool isSameTemplateArg(ASTContext &Context,
1941                               const TemplateArgument &X,
1942                               const TemplateArgument &Y) {
1943   if (X.getKind() != Y.getKind())
1944     return false;
1945 
1946   switch (X.getKind()) {
1947     case TemplateArgument::Null:
1948       llvm_unreachable("Comparing NULL template argument");
1949 
1950     case TemplateArgument::Type:
1951       return Context.getCanonicalType(X.getAsType()) ==
1952              Context.getCanonicalType(Y.getAsType());
1953 
1954     case TemplateArgument::Declaration:
1955       return isSameDeclaration(X.getAsDecl(), Y.getAsDecl()) &&
1956              X.isDeclForReferenceParam() == Y.isDeclForReferenceParam();
1957 
1958     case TemplateArgument::NullPtr:
1959       return Context.hasSameType(X.getNullPtrType(), Y.getNullPtrType());
1960 
1961     case TemplateArgument::Template:
1962     case TemplateArgument::TemplateExpansion:
1963       return Context.getCanonicalTemplateName(
1964                     X.getAsTemplateOrTemplatePattern()).getAsVoidPointer() ==
1965              Context.getCanonicalTemplateName(
1966                     Y.getAsTemplateOrTemplatePattern()).getAsVoidPointer();
1967 
1968     case TemplateArgument::Integral:
1969       return X.getAsIntegral() == Y.getAsIntegral();
1970 
1971     case TemplateArgument::Expression: {
1972       llvm::FoldingSetNodeID XID, YID;
1973       X.getAsExpr()->Profile(XID, Context, true);
1974       Y.getAsExpr()->Profile(YID, Context, true);
1975       return XID == YID;
1976     }
1977 
1978     case TemplateArgument::Pack:
1979       if (X.pack_size() != Y.pack_size())
1980         return false;
1981 
1982       for (TemplateArgument::pack_iterator XP = X.pack_begin(),
1983                                         XPEnd = X.pack_end(),
1984                                            YP = Y.pack_begin();
1985            XP != XPEnd; ++XP, ++YP)
1986         if (!isSameTemplateArg(Context, *XP, *YP))
1987           return false;
1988 
1989       return true;
1990   }
1991 
1992   llvm_unreachable("Invalid TemplateArgument Kind!");
1993 }
1994 
1995 /// \brief Allocate a TemplateArgumentLoc where all locations have
1996 /// been initialized to the given location.
1997 ///
1998 /// \param S The semantic analysis object.
1999 ///
2000 /// \param Arg The template argument we are producing template argument
2001 /// location information for.
2002 ///
2003 /// \param NTTPType For a declaration template argument, the type of
2004 /// the non-type template parameter that corresponds to this template
2005 /// argument.
2006 ///
2007 /// \param Loc The source location to use for the resulting template
2008 /// argument.
2009 static TemplateArgumentLoc
2010 getTrivialTemplateArgumentLoc(Sema &S,
2011                               const TemplateArgument &Arg,
2012                               QualType NTTPType,
2013                               SourceLocation Loc) {
2014   switch (Arg.getKind()) {
2015   case TemplateArgument::Null:
2016     llvm_unreachable("Can't get a NULL template argument here");
2017 
2018   case TemplateArgument::Type:
2019     return TemplateArgumentLoc(Arg,
2020                      S.Context.getTrivialTypeSourceInfo(Arg.getAsType(), Loc));
2021 
2022   case TemplateArgument::Declaration: {
2023     Expr *E
2024       = S.BuildExpressionFromDeclTemplateArgument(Arg, NTTPType, Loc)
2025           .takeAs<Expr>();
2026     return TemplateArgumentLoc(TemplateArgument(E), E);
2027   }
2028 
2029   case TemplateArgument::NullPtr: {
2030     Expr *E
2031       = S.BuildExpressionFromDeclTemplateArgument(Arg, NTTPType, Loc)
2032           .takeAs<Expr>();
2033     return TemplateArgumentLoc(TemplateArgument(NTTPType, /*isNullPtr*/true),
2034                                E);
2035   }
2036 
2037   case TemplateArgument::Integral: {
2038     Expr *E
2039       = S.BuildExpressionFromIntegralTemplateArgument(Arg, Loc).takeAs<Expr>();
2040     return TemplateArgumentLoc(TemplateArgument(E), E);
2041   }
2042 
2043     case TemplateArgument::Template:
2044     case TemplateArgument::TemplateExpansion: {
2045       NestedNameSpecifierLocBuilder Builder;
2046       TemplateName Template = Arg.getAsTemplate();
2047       if (DependentTemplateName *DTN = Template.getAsDependentTemplateName())
2048         Builder.MakeTrivial(S.Context, DTN->getQualifier(), Loc);
2049       else if (QualifiedTemplateName *QTN = Template.getAsQualifiedTemplateName())
2050         Builder.MakeTrivial(S.Context, QTN->getQualifier(), Loc);
2051 
2052       if (Arg.getKind() == TemplateArgument::Template)
2053         return TemplateArgumentLoc(Arg,
2054                                    Builder.getWithLocInContext(S.Context),
2055                                    Loc);
2056 
2057 
2058       return TemplateArgumentLoc(Arg, Builder.getWithLocInContext(S.Context),
2059                                  Loc, Loc);
2060     }
2061 
2062   case TemplateArgument::Expression:
2063     return TemplateArgumentLoc(Arg, Arg.getAsExpr());
2064 
2065   case TemplateArgument::Pack:
2066     return TemplateArgumentLoc(Arg, TemplateArgumentLocInfo());
2067   }
2068 
2069   llvm_unreachable("Invalid TemplateArgument Kind!");
2070 }
2071 
2072 
2073 /// \brief Convert the given deduced template argument and add it to the set of
2074 /// fully-converted template arguments.
2075 static bool
2076 ConvertDeducedTemplateArgument(Sema &S, NamedDecl *Param,
2077                                DeducedTemplateArgument Arg,
2078                                NamedDecl *Template,
2079                                QualType NTTPType,
2080                                unsigned ArgumentPackIndex,
2081                                TemplateDeductionInfo &Info,
2082                                bool InFunctionTemplate,
2083                                SmallVectorImpl<TemplateArgument> &Output) {
2084   if (Arg.getKind() == TemplateArgument::Pack) {
2085     // This is a template argument pack, so check each of its arguments against
2086     // the template parameter.
2087     SmallVector<TemplateArgument, 2> PackedArgsBuilder;
2088     for (TemplateArgument::pack_iterator PA = Arg.pack_begin(),
2089                                       PAEnd = Arg.pack_end();
2090          PA != PAEnd; ++PA) {
2091       // When converting the deduced template argument, append it to the
2092       // general output list. We need to do this so that the template argument
2093       // checking logic has all of the prior template arguments available.
2094       DeducedTemplateArgument InnerArg(*PA);
2095       InnerArg.setDeducedFromArrayBound(Arg.wasDeducedFromArrayBound());
2096       if (ConvertDeducedTemplateArgument(S, Param, InnerArg, Template,
2097                                          NTTPType, PackedArgsBuilder.size(),
2098                                          Info, InFunctionTemplate, Output))
2099         return true;
2100 
2101       // Move the converted template argument into our argument pack.
2102       PackedArgsBuilder.push_back(Output.pop_back_val());
2103     }
2104 
2105     // Create the resulting argument pack.
2106     Output.push_back(TemplateArgument::CreatePackCopy(S.Context,
2107                                                       PackedArgsBuilder.data(),
2108                                                      PackedArgsBuilder.size()));
2109     return false;
2110   }
2111 
2112   // Convert the deduced template argument into a template
2113   // argument that we can check, almost as if the user had written
2114   // the template argument explicitly.
2115   TemplateArgumentLoc ArgLoc = getTrivialTemplateArgumentLoc(S, Arg, NTTPType,
2116                                                              Info.getLocation());
2117 
2118   // Check the template argument, converting it as necessary.
2119   return S.CheckTemplateArgument(Param, ArgLoc,
2120                                  Template,
2121                                  Template->getLocation(),
2122                                  Template->getSourceRange().getEnd(),
2123                                  ArgumentPackIndex,
2124                                  Output,
2125                                  InFunctionTemplate
2126                                   ? (Arg.wasDeducedFromArrayBound()
2127                                        ? Sema::CTAK_DeducedFromArrayBound
2128                                        : Sema::CTAK_Deduced)
2129                                  : Sema::CTAK_Specified);
2130 }
2131 
2132 /// Complete template argument deduction for a class template partial
2133 /// specialization.
2134 static Sema::TemplateDeductionResult
2135 FinishTemplateArgumentDeduction(Sema &S,
2136                                 ClassTemplatePartialSpecializationDecl *Partial,
2137                                 const TemplateArgumentList &TemplateArgs,
2138                       SmallVectorImpl<DeducedTemplateArgument> &Deduced,
2139                                 TemplateDeductionInfo &Info) {
2140   // Unevaluated SFINAE context.
2141   EnterExpressionEvaluationContext Unevaluated(S, Sema::Unevaluated);
2142   Sema::SFINAETrap Trap(S);
2143 
2144   Sema::ContextRAII SavedContext(S, Partial);
2145 
2146   // C++ [temp.deduct.type]p2:
2147   //   [...] or if any template argument remains neither deduced nor
2148   //   explicitly specified, template argument deduction fails.
2149   SmallVector<TemplateArgument, 4> Builder;
2150   TemplateParameterList *PartialParams = Partial->getTemplateParameters();
2151   for (unsigned I = 0, N = PartialParams->size(); I != N; ++I) {
2152     NamedDecl *Param = PartialParams->getParam(I);
2153     if (Deduced[I].isNull()) {
2154       Info.Param = makeTemplateParameter(Param);
2155       return Sema::TDK_Incomplete;
2156     }
2157 
2158     // We have deduced this argument, so it still needs to be
2159     // checked and converted.
2160 
2161     // First, for a non-type template parameter type that is
2162     // initialized by a declaration, we need the type of the
2163     // corresponding non-type template parameter.
2164     QualType NTTPType;
2165     if (NonTypeTemplateParmDecl *NTTP
2166                                   = dyn_cast<NonTypeTemplateParmDecl>(Param)) {
2167       NTTPType = NTTP->getType();
2168       if (NTTPType->isDependentType()) {
2169         TemplateArgumentList TemplateArgs(TemplateArgumentList::OnStack,
2170                                           Builder.data(), Builder.size());
2171         NTTPType = S.SubstType(NTTPType,
2172                                MultiLevelTemplateArgumentList(TemplateArgs),
2173                                NTTP->getLocation(),
2174                                NTTP->getDeclName());
2175         if (NTTPType.isNull()) {
2176           Info.Param = makeTemplateParameter(Param);
2177           // FIXME: These template arguments are temporary. Free them!
2178           Info.reset(TemplateArgumentList::CreateCopy(S.Context,
2179                                                       Builder.data(),
2180                                                       Builder.size()));
2181           return Sema::TDK_SubstitutionFailure;
2182         }
2183       }
2184     }
2185 
2186     if (ConvertDeducedTemplateArgument(S, Param, Deduced[I],
2187                                        Partial, NTTPType, 0, Info, false,
2188                                        Builder)) {
2189       Info.Param = makeTemplateParameter(Param);
2190       // FIXME: These template arguments are temporary. Free them!
2191       Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder.data(),
2192                                                   Builder.size()));
2193       return Sema::TDK_SubstitutionFailure;
2194     }
2195   }
2196 
2197   // Form the template argument list from the deduced template arguments.
2198   TemplateArgumentList *DeducedArgumentList
2199     = TemplateArgumentList::CreateCopy(S.Context, Builder.data(),
2200                                        Builder.size());
2201 
2202   Info.reset(DeducedArgumentList);
2203 
2204   // Substitute the deduced template arguments into the template
2205   // arguments of the class template partial specialization, and
2206   // verify that the instantiated template arguments are both valid
2207   // and are equivalent to the template arguments originally provided
2208   // to the class template.
2209   LocalInstantiationScope InstScope(S);
2210   ClassTemplateDecl *ClassTemplate = Partial->getSpecializedTemplate();
2211   const ASTTemplateArgumentListInfo *PartialTemplArgInfo
2212     = Partial->getTemplateArgsAsWritten();
2213   const TemplateArgumentLoc *PartialTemplateArgs
2214     = PartialTemplArgInfo->getTemplateArgs();
2215 
2216   TemplateArgumentListInfo InstArgs(PartialTemplArgInfo->LAngleLoc,
2217                                     PartialTemplArgInfo->RAngleLoc);
2218 
2219   if (S.Subst(PartialTemplateArgs, PartialTemplArgInfo->NumTemplateArgs,
2220               InstArgs, MultiLevelTemplateArgumentList(*DeducedArgumentList))) {
2221     unsigned ArgIdx = InstArgs.size(), ParamIdx = ArgIdx;
2222     if (ParamIdx >= Partial->getTemplateParameters()->size())
2223       ParamIdx = Partial->getTemplateParameters()->size() - 1;
2224 
2225     Decl *Param
2226       = const_cast<NamedDecl *>(
2227                           Partial->getTemplateParameters()->getParam(ParamIdx));
2228     Info.Param = makeTemplateParameter(Param);
2229     Info.FirstArg = PartialTemplateArgs[ArgIdx].getArgument();
2230     return Sema::TDK_SubstitutionFailure;
2231   }
2232 
2233   SmallVector<TemplateArgument, 4> ConvertedInstArgs;
2234   if (S.CheckTemplateArgumentList(ClassTemplate, Partial->getLocation(),
2235                                   InstArgs, false, ConvertedInstArgs))
2236     return Sema::TDK_SubstitutionFailure;
2237 
2238   TemplateParameterList *TemplateParams
2239     = ClassTemplate->getTemplateParameters();
2240   for (unsigned I = 0, E = TemplateParams->size(); I != E; ++I) {
2241     TemplateArgument InstArg = ConvertedInstArgs.data()[I];
2242     if (!isSameTemplateArg(S.Context, TemplateArgs[I], InstArg)) {
2243       Info.Param = makeTemplateParameter(TemplateParams->getParam(I));
2244       Info.FirstArg = TemplateArgs[I];
2245       Info.SecondArg = InstArg;
2246       return Sema::TDK_NonDeducedMismatch;
2247     }
2248   }
2249 
2250   if (Trap.hasErrorOccurred())
2251     return Sema::TDK_SubstitutionFailure;
2252 
2253   return Sema::TDK_Success;
2254 }
2255 
2256 /// \brief Perform template argument deduction to determine whether
2257 /// the given template arguments match the given class template
2258 /// partial specialization per C++ [temp.class.spec.match].
2259 Sema::TemplateDeductionResult
2260 Sema::DeduceTemplateArguments(ClassTemplatePartialSpecializationDecl *Partial,
2261                               const TemplateArgumentList &TemplateArgs,
2262                               TemplateDeductionInfo &Info) {
2263   if (Partial->isInvalidDecl())
2264     return TDK_Invalid;
2265 
2266   // C++ [temp.class.spec.match]p2:
2267   //   A partial specialization matches a given actual template
2268   //   argument list if the template arguments of the partial
2269   //   specialization can be deduced from the actual template argument
2270   //   list (14.8.2).
2271 
2272   // Unevaluated SFINAE context.
2273   EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated);
2274   SFINAETrap Trap(*this);
2275 
2276   SmallVector<DeducedTemplateArgument, 4> Deduced;
2277   Deduced.resize(Partial->getTemplateParameters()->size());
2278   if (TemplateDeductionResult Result
2279         = ::DeduceTemplateArguments(*this,
2280                                     Partial->getTemplateParameters(),
2281                                     Partial->getTemplateArgs(),
2282                                     TemplateArgs, Info, Deduced))
2283     return Result;
2284 
2285   SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end());
2286   InstantiatingTemplate Inst(*this, Info.getLocation(), Partial, DeducedArgs,
2287                              Info);
2288   if (Inst.isInvalid())
2289     return TDK_InstantiationDepth;
2290 
2291   if (Trap.hasErrorOccurred())
2292     return Sema::TDK_SubstitutionFailure;
2293 
2294   return ::FinishTemplateArgumentDeduction(*this, Partial, TemplateArgs,
2295                                            Deduced, Info);
2296 }
2297 
2298 /// Complete template argument deduction for a variable template partial
2299 /// specialization.
2300 /// TODO: Unify with ClassTemplatePartialSpecializationDecl version?
2301 ///       May require unifying ClassTemplate(Partial)SpecializationDecl and
2302 ///        VarTemplate(Partial)SpecializationDecl with a new data
2303 ///        structure Template(Partial)SpecializationDecl, and
2304 ///        using Template(Partial)SpecializationDecl as input type.
2305 static Sema::TemplateDeductionResult FinishTemplateArgumentDeduction(
2306     Sema &S, VarTemplatePartialSpecializationDecl *Partial,
2307     const TemplateArgumentList &TemplateArgs,
2308     SmallVectorImpl<DeducedTemplateArgument> &Deduced,
2309     TemplateDeductionInfo &Info) {
2310   // Unevaluated SFINAE context.
2311   EnterExpressionEvaluationContext Unevaluated(S, Sema::Unevaluated);
2312   Sema::SFINAETrap Trap(S);
2313 
2314   // C++ [temp.deduct.type]p2:
2315   //   [...] or if any template argument remains neither deduced nor
2316   //   explicitly specified, template argument deduction fails.
2317   SmallVector<TemplateArgument, 4> Builder;
2318   TemplateParameterList *PartialParams = Partial->getTemplateParameters();
2319   for (unsigned I = 0, N = PartialParams->size(); I != N; ++I) {
2320     NamedDecl *Param = PartialParams->getParam(I);
2321     if (Deduced[I].isNull()) {
2322       Info.Param = makeTemplateParameter(Param);
2323       return Sema::TDK_Incomplete;
2324     }
2325 
2326     // We have deduced this argument, so it still needs to be
2327     // checked and converted.
2328 
2329     // First, for a non-type template parameter type that is
2330     // initialized by a declaration, we need the type of the
2331     // corresponding non-type template parameter.
2332     QualType NTTPType;
2333     if (NonTypeTemplateParmDecl *NTTP =
2334             dyn_cast<NonTypeTemplateParmDecl>(Param)) {
2335       NTTPType = NTTP->getType();
2336       if (NTTPType->isDependentType()) {
2337         TemplateArgumentList TemplateArgs(TemplateArgumentList::OnStack,
2338                                           Builder.data(), Builder.size());
2339         NTTPType =
2340             S.SubstType(NTTPType, MultiLevelTemplateArgumentList(TemplateArgs),
2341                         NTTP->getLocation(), NTTP->getDeclName());
2342         if (NTTPType.isNull()) {
2343           Info.Param = makeTemplateParameter(Param);
2344           // FIXME: These template arguments are temporary. Free them!
2345           Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder.data(),
2346                                                       Builder.size()));
2347           return Sema::TDK_SubstitutionFailure;
2348         }
2349       }
2350     }
2351 
2352     if (ConvertDeducedTemplateArgument(S, Param, Deduced[I], Partial, NTTPType,
2353                                        0, Info, false, Builder)) {
2354       Info.Param = makeTemplateParameter(Param);
2355       // FIXME: These template arguments are temporary. Free them!
2356       Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder.data(),
2357                                                   Builder.size()));
2358       return Sema::TDK_SubstitutionFailure;
2359     }
2360   }
2361 
2362   // Form the template argument list from the deduced template arguments.
2363   TemplateArgumentList *DeducedArgumentList = TemplateArgumentList::CreateCopy(
2364       S.Context, Builder.data(), Builder.size());
2365 
2366   Info.reset(DeducedArgumentList);
2367 
2368   // Substitute the deduced template arguments into the template
2369   // arguments of the class template partial specialization, and
2370   // verify that the instantiated template arguments are both valid
2371   // and are equivalent to the template arguments originally provided
2372   // to the class template.
2373   LocalInstantiationScope InstScope(S);
2374   VarTemplateDecl *VarTemplate = Partial->getSpecializedTemplate();
2375   const ASTTemplateArgumentListInfo *PartialTemplArgInfo
2376     = Partial->getTemplateArgsAsWritten();
2377   const TemplateArgumentLoc *PartialTemplateArgs
2378     = PartialTemplArgInfo->getTemplateArgs();
2379 
2380   TemplateArgumentListInfo InstArgs(PartialTemplArgInfo->LAngleLoc,
2381                                     PartialTemplArgInfo->RAngleLoc);
2382 
2383   if (S.Subst(PartialTemplateArgs, PartialTemplArgInfo->NumTemplateArgs,
2384               InstArgs, MultiLevelTemplateArgumentList(*DeducedArgumentList))) {
2385     unsigned ArgIdx = InstArgs.size(), ParamIdx = ArgIdx;
2386     if (ParamIdx >= Partial->getTemplateParameters()->size())
2387       ParamIdx = Partial->getTemplateParameters()->size() - 1;
2388 
2389     Decl *Param = const_cast<NamedDecl *>(
2390         Partial->getTemplateParameters()->getParam(ParamIdx));
2391     Info.Param = makeTemplateParameter(Param);
2392     Info.FirstArg = PartialTemplateArgs[ArgIdx].getArgument();
2393     return Sema::TDK_SubstitutionFailure;
2394   }
2395   SmallVector<TemplateArgument, 4> ConvertedInstArgs;
2396   if (S.CheckTemplateArgumentList(VarTemplate, Partial->getLocation(), InstArgs,
2397                                   false, ConvertedInstArgs))
2398     return Sema::TDK_SubstitutionFailure;
2399 
2400   TemplateParameterList *TemplateParams = VarTemplate->getTemplateParameters();
2401   for (unsigned I = 0, E = TemplateParams->size(); I != E; ++I) {
2402     TemplateArgument InstArg = ConvertedInstArgs.data()[I];
2403     if (!isSameTemplateArg(S.Context, TemplateArgs[I], InstArg)) {
2404       Info.Param = makeTemplateParameter(TemplateParams->getParam(I));
2405       Info.FirstArg = TemplateArgs[I];
2406       Info.SecondArg = InstArg;
2407       return Sema::TDK_NonDeducedMismatch;
2408     }
2409   }
2410 
2411   if (Trap.hasErrorOccurred())
2412     return Sema::TDK_SubstitutionFailure;
2413 
2414   return Sema::TDK_Success;
2415 }
2416 
2417 /// \brief Perform template argument deduction to determine whether
2418 /// the given template arguments match the given variable template
2419 /// partial specialization per C++ [temp.class.spec.match].
2420 /// TODO: Unify with ClassTemplatePartialSpecializationDecl version?
2421 ///       May require unifying ClassTemplate(Partial)SpecializationDecl and
2422 ///        VarTemplate(Partial)SpecializationDecl with a new data
2423 ///        structure Template(Partial)SpecializationDecl, and
2424 ///        using Template(Partial)SpecializationDecl as input type.
2425 Sema::TemplateDeductionResult
2426 Sema::DeduceTemplateArguments(VarTemplatePartialSpecializationDecl *Partial,
2427                               const TemplateArgumentList &TemplateArgs,
2428                               TemplateDeductionInfo &Info) {
2429   if (Partial->isInvalidDecl())
2430     return TDK_Invalid;
2431 
2432   // C++ [temp.class.spec.match]p2:
2433   //   A partial specialization matches a given actual template
2434   //   argument list if the template arguments of the partial
2435   //   specialization can be deduced from the actual template argument
2436   //   list (14.8.2).
2437 
2438   // Unevaluated SFINAE context.
2439   EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated);
2440   SFINAETrap Trap(*this);
2441 
2442   SmallVector<DeducedTemplateArgument, 4> Deduced;
2443   Deduced.resize(Partial->getTemplateParameters()->size());
2444   if (TemplateDeductionResult Result = ::DeduceTemplateArguments(
2445           *this, Partial->getTemplateParameters(), Partial->getTemplateArgs(),
2446           TemplateArgs, Info, Deduced))
2447     return Result;
2448 
2449   SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end());
2450   InstantiatingTemplate Inst(*this, Info.getLocation(), Partial, DeducedArgs,
2451                              Info);
2452   if (Inst.isInvalid())
2453     return TDK_InstantiationDepth;
2454 
2455   if (Trap.hasErrorOccurred())
2456     return Sema::TDK_SubstitutionFailure;
2457 
2458   return ::FinishTemplateArgumentDeduction(*this, Partial, TemplateArgs,
2459                                            Deduced, Info);
2460 }
2461 
2462 /// \brief Determine whether the given type T is a simple-template-id type.
2463 static bool isSimpleTemplateIdType(QualType T) {
2464   if (const TemplateSpecializationType *Spec
2465         = T->getAs<TemplateSpecializationType>())
2466     return Spec->getTemplateName().getAsTemplateDecl() != 0;
2467 
2468   return false;
2469 }
2470 
2471 /// \brief Substitute the explicitly-provided template arguments into the
2472 /// given function template according to C++ [temp.arg.explicit].
2473 ///
2474 /// \param FunctionTemplate the function template into which the explicit
2475 /// template arguments will be substituted.
2476 ///
2477 /// \param ExplicitTemplateArgs the explicitly-specified template
2478 /// arguments.
2479 ///
2480 /// \param Deduced the deduced template arguments, which will be populated
2481 /// with the converted and checked explicit template arguments.
2482 ///
2483 /// \param ParamTypes will be populated with the instantiated function
2484 /// parameters.
2485 ///
2486 /// \param FunctionType if non-NULL, the result type of the function template
2487 /// will also be instantiated and the pointed-to value will be updated with
2488 /// the instantiated function type.
2489 ///
2490 /// \param Info if substitution fails for any reason, this object will be
2491 /// populated with more information about the failure.
2492 ///
2493 /// \returns TDK_Success if substitution was successful, or some failure
2494 /// condition.
2495 Sema::TemplateDeductionResult
2496 Sema::SubstituteExplicitTemplateArguments(
2497                                       FunctionTemplateDecl *FunctionTemplate,
2498                                TemplateArgumentListInfo &ExplicitTemplateArgs,
2499                        SmallVectorImpl<DeducedTemplateArgument> &Deduced,
2500                                  SmallVectorImpl<QualType> &ParamTypes,
2501                                           QualType *FunctionType,
2502                                           TemplateDeductionInfo &Info) {
2503   FunctionDecl *Function = FunctionTemplate->getTemplatedDecl();
2504   TemplateParameterList *TemplateParams
2505     = FunctionTemplate->getTemplateParameters();
2506 
2507   if (ExplicitTemplateArgs.size() == 0) {
2508     // No arguments to substitute; just copy over the parameter types and
2509     // fill in the function type.
2510     for (auto P : Function->params())
2511       ParamTypes.push_back(P->getType());
2512 
2513     if (FunctionType)
2514       *FunctionType = Function->getType();
2515     return TDK_Success;
2516   }
2517 
2518   // Unevaluated SFINAE context.
2519   EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated);
2520   SFINAETrap Trap(*this);
2521 
2522   // C++ [temp.arg.explicit]p3:
2523   //   Template arguments that are present shall be specified in the
2524   //   declaration order of their corresponding template-parameters. The
2525   //   template argument list shall not specify more template-arguments than
2526   //   there are corresponding template-parameters.
2527   SmallVector<TemplateArgument, 4> Builder;
2528 
2529   // Enter a new template instantiation context where we check the
2530   // explicitly-specified template arguments against this function template,
2531   // and then substitute them into the function parameter types.
2532   SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end());
2533   InstantiatingTemplate Inst(*this, Info.getLocation(), FunctionTemplate,
2534                              DeducedArgs,
2535            ActiveTemplateInstantiation::ExplicitTemplateArgumentSubstitution,
2536                              Info);
2537   if (Inst.isInvalid())
2538     return TDK_InstantiationDepth;
2539 
2540   if (CheckTemplateArgumentList(FunctionTemplate,
2541                                 SourceLocation(),
2542                                 ExplicitTemplateArgs,
2543                                 true,
2544                                 Builder) || Trap.hasErrorOccurred()) {
2545     unsigned Index = Builder.size();
2546     if (Index >= TemplateParams->size())
2547       Index = TemplateParams->size() - 1;
2548     Info.Param = makeTemplateParameter(TemplateParams->getParam(Index));
2549     return TDK_InvalidExplicitArguments;
2550   }
2551 
2552   // Form the template argument list from the explicitly-specified
2553   // template arguments.
2554   TemplateArgumentList *ExplicitArgumentList
2555     = TemplateArgumentList::CreateCopy(Context, Builder.data(), Builder.size());
2556   Info.reset(ExplicitArgumentList);
2557 
2558   // Template argument deduction and the final substitution should be
2559   // done in the context of the templated declaration.  Explicit
2560   // argument substitution, on the other hand, needs to happen in the
2561   // calling context.
2562   ContextRAII SavedContext(*this, FunctionTemplate->getTemplatedDecl());
2563 
2564   // If we deduced template arguments for a template parameter pack,
2565   // note that the template argument pack is partially substituted and record
2566   // the explicit template arguments. They'll be used as part of deduction
2567   // for this template parameter pack.
2568   for (unsigned I = 0, N = Builder.size(); I != N; ++I) {
2569     const TemplateArgument &Arg = Builder[I];
2570     if (Arg.getKind() == TemplateArgument::Pack) {
2571       CurrentInstantiationScope->SetPartiallySubstitutedPack(
2572                                                  TemplateParams->getParam(I),
2573                                                              Arg.pack_begin(),
2574                                                              Arg.pack_size());
2575       break;
2576     }
2577   }
2578 
2579   const FunctionProtoType *Proto
2580     = Function->getType()->getAs<FunctionProtoType>();
2581   assert(Proto && "Function template does not have a prototype?");
2582 
2583   // Instantiate the types of each of the function parameters given the
2584   // explicitly-specified template arguments. If the function has a trailing
2585   // return type, substitute it after the arguments to ensure we substitute
2586   // in lexical order.
2587   if (Proto->hasTrailingReturn()) {
2588     if (SubstParmTypes(Function->getLocation(),
2589                        Function->param_begin(), Function->getNumParams(),
2590                        MultiLevelTemplateArgumentList(*ExplicitArgumentList),
2591                        ParamTypes))
2592       return TDK_SubstitutionFailure;
2593   }
2594 
2595   // Instantiate the return type.
2596   QualType ResultType;
2597   {
2598     // C++11 [expr.prim.general]p3:
2599     //   If a declaration declares a member function or member function
2600     //   template of a class X, the expression this is a prvalue of type
2601     //   "pointer to cv-qualifier-seq X" between the optional cv-qualifer-seq
2602     //   and the end of the function-definition, member-declarator, or
2603     //   declarator.
2604     unsigned ThisTypeQuals = 0;
2605     CXXRecordDecl *ThisContext = 0;
2606     if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Function)) {
2607       ThisContext = Method->getParent();
2608       ThisTypeQuals = Method->getTypeQualifiers();
2609     }
2610 
2611     CXXThisScopeRAII ThisScope(*this, ThisContext, ThisTypeQuals,
2612                                getLangOpts().CPlusPlus11);
2613 
2614     ResultType =
2615         SubstType(Proto->getReturnType(),
2616                   MultiLevelTemplateArgumentList(*ExplicitArgumentList),
2617                   Function->getTypeSpecStartLoc(), Function->getDeclName());
2618     if (ResultType.isNull() || Trap.hasErrorOccurred())
2619       return TDK_SubstitutionFailure;
2620   }
2621 
2622   // Instantiate the types of each of the function parameters given the
2623   // explicitly-specified template arguments if we didn't do so earlier.
2624   if (!Proto->hasTrailingReturn() &&
2625       SubstParmTypes(Function->getLocation(),
2626                      Function->param_begin(), Function->getNumParams(),
2627                      MultiLevelTemplateArgumentList(*ExplicitArgumentList),
2628                      ParamTypes))
2629     return TDK_SubstitutionFailure;
2630 
2631   if (FunctionType) {
2632     *FunctionType = BuildFunctionType(ResultType, ParamTypes,
2633                                       Function->getLocation(),
2634                                       Function->getDeclName(),
2635                                       Proto->getExtProtoInfo());
2636     if (FunctionType->isNull() || Trap.hasErrorOccurred())
2637       return TDK_SubstitutionFailure;
2638   }
2639 
2640   // C++ [temp.arg.explicit]p2:
2641   //   Trailing template arguments that can be deduced (14.8.2) may be
2642   //   omitted from the list of explicit template-arguments. If all of the
2643   //   template arguments can be deduced, they may all be omitted; in this
2644   //   case, the empty template argument list <> itself may also be omitted.
2645   //
2646   // Take all of the explicitly-specified arguments and put them into
2647   // the set of deduced template arguments. Explicitly-specified
2648   // parameter packs, however, will be set to NULL since the deduction
2649   // mechanisms handle explicitly-specified argument packs directly.
2650   Deduced.reserve(TemplateParams->size());
2651   for (unsigned I = 0, N = ExplicitArgumentList->size(); I != N; ++I) {
2652     const TemplateArgument &Arg = ExplicitArgumentList->get(I);
2653     if (Arg.getKind() == TemplateArgument::Pack)
2654       Deduced.push_back(DeducedTemplateArgument());
2655     else
2656       Deduced.push_back(Arg);
2657   }
2658 
2659   return TDK_Success;
2660 }
2661 
2662 /// \brief Check whether the deduced argument type for a call to a function
2663 /// template matches the actual argument type per C++ [temp.deduct.call]p4.
2664 static bool
2665 CheckOriginalCallArgDeduction(Sema &S, Sema::OriginalCallArg OriginalArg,
2666                               QualType DeducedA) {
2667   ASTContext &Context = S.Context;
2668 
2669   QualType A = OriginalArg.OriginalArgType;
2670   QualType OriginalParamType = OriginalArg.OriginalParamType;
2671 
2672   // Check for type equality (top-level cv-qualifiers are ignored).
2673   if (Context.hasSameUnqualifiedType(A, DeducedA))
2674     return false;
2675 
2676   // Strip off references on the argument types; they aren't needed for
2677   // the following checks.
2678   if (const ReferenceType *DeducedARef = DeducedA->getAs<ReferenceType>())
2679     DeducedA = DeducedARef->getPointeeType();
2680   if (const ReferenceType *ARef = A->getAs<ReferenceType>())
2681     A = ARef->getPointeeType();
2682 
2683   // C++ [temp.deduct.call]p4:
2684   //   [...] However, there are three cases that allow a difference:
2685   //     - If the original P is a reference type, the deduced A (i.e., the
2686   //       type referred to by the reference) can be more cv-qualified than
2687   //       the transformed A.
2688   if (const ReferenceType *OriginalParamRef
2689       = OriginalParamType->getAs<ReferenceType>()) {
2690     // We don't want to keep the reference around any more.
2691     OriginalParamType = OriginalParamRef->getPointeeType();
2692 
2693     Qualifiers AQuals = A.getQualifiers();
2694     Qualifiers DeducedAQuals = DeducedA.getQualifiers();
2695 
2696     // Under Objective-C++ ARC, the deduced type may have implicitly
2697     // been given strong or (when dealing with a const reference)
2698     // unsafe_unretained lifetime. If so, update the original
2699     // qualifiers to include this lifetime.
2700     if (S.getLangOpts().ObjCAutoRefCount &&
2701         ((DeducedAQuals.getObjCLifetime() == Qualifiers::OCL_Strong &&
2702           AQuals.getObjCLifetime() == Qualifiers::OCL_None) ||
2703          (DeducedAQuals.hasConst() &&
2704           DeducedAQuals.getObjCLifetime() == Qualifiers::OCL_ExplicitNone))) {
2705       AQuals.setObjCLifetime(DeducedAQuals.getObjCLifetime());
2706     }
2707 
2708     if (AQuals == DeducedAQuals) {
2709       // Qualifiers match; there's nothing to do.
2710     } else if (!DeducedAQuals.compatiblyIncludes(AQuals)) {
2711       return true;
2712     } else {
2713       // Qualifiers are compatible, so have the argument type adopt the
2714       // deduced argument type's qualifiers as if we had performed the
2715       // qualification conversion.
2716       A = Context.getQualifiedType(A.getUnqualifiedType(), DeducedAQuals);
2717     }
2718   }
2719 
2720   //    - The transformed A can be another pointer or pointer to member
2721   //      type that can be converted to the deduced A via a qualification
2722   //      conversion.
2723   //
2724   // Also allow conversions which merely strip [[noreturn]] from function types
2725   // (recursively) as an extension.
2726   // FIXME: Currently, this doesn't play nicely with qualification conversions.
2727   bool ObjCLifetimeConversion = false;
2728   QualType ResultTy;
2729   if ((A->isAnyPointerType() || A->isMemberPointerType()) &&
2730       (S.IsQualificationConversion(A, DeducedA, false,
2731                                    ObjCLifetimeConversion) ||
2732        S.IsNoReturnConversion(A, DeducedA, ResultTy)))
2733     return false;
2734 
2735 
2736   //    - If P is a class and P has the form simple-template-id, then the
2737   //      transformed A can be a derived class of the deduced A. [...]
2738   //     [...] Likewise, if P is a pointer to a class of the form
2739   //      simple-template-id, the transformed A can be a pointer to a
2740   //      derived class pointed to by the deduced A.
2741   if (const PointerType *OriginalParamPtr
2742       = OriginalParamType->getAs<PointerType>()) {
2743     if (const PointerType *DeducedAPtr = DeducedA->getAs<PointerType>()) {
2744       if (const PointerType *APtr = A->getAs<PointerType>()) {
2745         if (A->getPointeeType()->isRecordType()) {
2746           OriginalParamType = OriginalParamPtr->getPointeeType();
2747           DeducedA = DeducedAPtr->getPointeeType();
2748           A = APtr->getPointeeType();
2749         }
2750       }
2751     }
2752   }
2753 
2754   if (Context.hasSameUnqualifiedType(A, DeducedA))
2755     return false;
2756 
2757   if (A->isRecordType() && isSimpleTemplateIdType(OriginalParamType) &&
2758       S.IsDerivedFrom(A, DeducedA))
2759     return false;
2760 
2761   return true;
2762 }
2763 
2764 /// \brief Finish template argument deduction for a function template,
2765 /// checking the deduced template arguments for completeness and forming
2766 /// the function template specialization.
2767 ///
2768 /// \param OriginalCallArgs If non-NULL, the original call arguments against
2769 /// which the deduced argument types should be compared.
2770 Sema::TemplateDeductionResult
2771 Sema::FinishTemplateArgumentDeduction(FunctionTemplateDecl *FunctionTemplate,
2772                        SmallVectorImpl<DeducedTemplateArgument> &Deduced,
2773                                       unsigned NumExplicitlySpecified,
2774                                       FunctionDecl *&Specialization,
2775                                       TemplateDeductionInfo &Info,
2776         SmallVectorImpl<OriginalCallArg> const *OriginalCallArgs) {
2777   TemplateParameterList *TemplateParams
2778     = FunctionTemplate->getTemplateParameters();
2779 
2780   // Unevaluated SFINAE context.
2781   EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated);
2782   SFINAETrap Trap(*this);
2783 
2784   // Enter a new template instantiation context while we instantiate the
2785   // actual function declaration.
2786   SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end());
2787   InstantiatingTemplate Inst(*this, Info.getLocation(), FunctionTemplate,
2788                              DeducedArgs,
2789               ActiveTemplateInstantiation::DeducedTemplateArgumentSubstitution,
2790                              Info);
2791   if (Inst.isInvalid())
2792     return TDK_InstantiationDepth;
2793 
2794   ContextRAII SavedContext(*this, FunctionTemplate->getTemplatedDecl());
2795 
2796   // C++ [temp.deduct.type]p2:
2797   //   [...] or if any template argument remains neither deduced nor
2798   //   explicitly specified, template argument deduction fails.
2799   SmallVector<TemplateArgument, 4> Builder;
2800   for (unsigned I = 0, N = TemplateParams->size(); I != N; ++I) {
2801     NamedDecl *Param = TemplateParams->getParam(I);
2802 
2803     if (!Deduced[I].isNull()) {
2804       if (I < NumExplicitlySpecified) {
2805         // We have already fully type-checked and converted this
2806         // argument, because it was explicitly-specified. Just record the
2807         // presence of this argument.
2808         Builder.push_back(Deduced[I]);
2809         continue;
2810       }
2811 
2812       // We have deduced this argument, so it still needs to be
2813       // checked and converted.
2814 
2815       // First, for a non-type template parameter type that is
2816       // initialized by a declaration, we need the type of the
2817       // corresponding non-type template parameter.
2818       QualType NTTPType;
2819       if (NonTypeTemplateParmDecl *NTTP
2820                                 = dyn_cast<NonTypeTemplateParmDecl>(Param)) {
2821         NTTPType = NTTP->getType();
2822         if (NTTPType->isDependentType()) {
2823           TemplateArgumentList TemplateArgs(TemplateArgumentList::OnStack,
2824                                             Builder.data(), Builder.size());
2825           NTTPType = SubstType(NTTPType,
2826                                MultiLevelTemplateArgumentList(TemplateArgs),
2827                                NTTP->getLocation(),
2828                                NTTP->getDeclName());
2829           if (NTTPType.isNull()) {
2830             Info.Param = makeTemplateParameter(Param);
2831             // FIXME: These template arguments are temporary. Free them!
2832             Info.reset(TemplateArgumentList::CreateCopy(Context,
2833                                                         Builder.data(),
2834                                                         Builder.size()));
2835             return TDK_SubstitutionFailure;
2836           }
2837         }
2838       }
2839 
2840       if (ConvertDeducedTemplateArgument(*this, Param, Deduced[I],
2841                                          FunctionTemplate, NTTPType, 0, Info,
2842                                          true, Builder)) {
2843         Info.Param = makeTemplateParameter(Param);
2844         // FIXME: These template arguments are temporary. Free them!
2845         Info.reset(TemplateArgumentList::CreateCopy(Context, Builder.data(),
2846                                                     Builder.size()));
2847         return TDK_SubstitutionFailure;
2848       }
2849 
2850       continue;
2851     }
2852 
2853     // C++0x [temp.arg.explicit]p3:
2854     //    A trailing template parameter pack (14.5.3) not otherwise deduced will
2855     //    be deduced to an empty sequence of template arguments.
2856     // FIXME: Where did the word "trailing" come from?
2857     if (Param->isTemplateParameterPack()) {
2858       // We may have had explicitly-specified template arguments for this
2859       // template parameter pack. If so, our empty deduction extends the
2860       // explicitly-specified set (C++0x [temp.arg.explicit]p9).
2861       const TemplateArgument *ExplicitArgs;
2862       unsigned NumExplicitArgs;
2863       if (CurrentInstantiationScope &&
2864           CurrentInstantiationScope->getPartiallySubstitutedPack(&ExplicitArgs,
2865                                                              &NumExplicitArgs)
2866             == Param) {
2867         Builder.push_back(TemplateArgument(ExplicitArgs, NumExplicitArgs));
2868 
2869         // Forget the partially-substituted pack; it's substitution is now
2870         // complete.
2871         CurrentInstantiationScope->ResetPartiallySubstitutedPack();
2872       } else {
2873         Builder.push_back(TemplateArgument::getEmptyPack());
2874       }
2875       continue;
2876     }
2877 
2878     // Substitute into the default template argument, if available.
2879     bool HasDefaultArg = false;
2880     TemplateArgumentLoc DefArg
2881       = SubstDefaultTemplateArgumentIfAvailable(FunctionTemplate,
2882                                               FunctionTemplate->getLocation(),
2883                                   FunctionTemplate->getSourceRange().getEnd(),
2884                                                 Param,
2885                                                 Builder, HasDefaultArg);
2886 
2887     // If there was no default argument, deduction is incomplete.
2888     if (DefArg.getArgument().isNull()) {
2889       Info.Param = makeTemplateParameter(
2890                          const_cast<NamedDecl *>(TemplateParams->getParam(I)));
2891       Info.reset(TemplateArgumentList::CreateCopy(Context, Builder.data(),
2892                                                   Builder.size()));
2893       return HasDefaultArg ? TDK_SubstitutionFailure : TDK_Incomplete;
2894     }
2895 
2896     // Check whether we can actually use the default argument.
2897     if (CheckTemplateArgument(Param, DefArg,
2898                               FunctionTemplate,
2899                               FunctionTemplate->getLocation(),
2900                               FunctionTemplate->getSourceRange().getEnd(),
2901                               0, Builder,
2902                               CTAK_Specified)) {
2903       Info.Param = makeTemplateParameter(
2904                          const_cast<NamedDecl *>(TemplateParams->getParam(I)));
2905       // FIXME: These template arguments are temporary. Free them!
2906       Info.reset(TemplateArgumentList::CreateCopy(Context, Builder.data(),
2907                                                   Builder.size()));
2908       return TDK_SubstitutionFailure;
2909     }
2910 
2911     // If we get here, we successfully used the default template argument.
2912   }
2913 
2914   // Form the template argument list from the deduced template arguments.
2915   TemplateArgumentList *DeducedArgumentList
2916     = TemplateArgumentList::CreateCopy(Context, Builder.data(), Builder.size());
2917   Info.reset(DeducedArgumentList);
2918 
2919   // Substitute the deduced template arguments into the function template
2920   // declaration to produce the function template specialization.
2921   DeclContext *Owner = FunctionTemplate->getDeclContext();
2922   if (FunctionTemplate->getFriendObjectKind())
2923     Owner = FunctionTemplate->getLexicalDeclContext();
2924   Specialization = cast_or_null<FunctionDecl>(
2925                       SubstDecl(FunctionTemplate->getTemplatedDecl(), Owner,
2926                          MultiLevelTemplateArgumentList(*DeducedArgumentList)));
2927   if (!Specialization || Specialization->isInvalidDecl())
2928     return TDK_SubstitutionFailure;
2929 
2930   assert(Specialization->getPrimaryTemplate()->getCanonicalDecl() ==
2931          FunctionTemplate->getCanonicalDecl());
2932 
2933   // If the template argument list is owned by the function template
2934   // specialization, release it.
2935   if (Specialization->getTemplateSpecializationArgs() == DeducedArgumentList &&
2936       !Trap.hasErrorOccurred())
2937     Info.take();
2938 
2939   // There may have been an error that did not prevent us from constructing a
2940   // declaration. Mark the declaration invalid and return with a substitution
2941   // failure.
2942   if (Trap.hasErrorOccurred()) {
2943     Specialization->setInvalidDecl(true);
2944     return TDK_SubstitutionFailure;
2945   }
2946 
2947   if (OriginalCallArgs) {
2948     // C++ [temp.deduct.call]p4:
2949     //   In general, the deduction process attempts to find template argument
2950     //   values that will make the deduced A identical to A (after the type A
2951     //   is transformed as described above). [...]
2952     for (unsigned I = 0, N = OriginalCallArgs->size(); I != N; ++I) {
2953       OriginalCallArg OriginalArg = (*OriginalCallArgs)[I];
2954       unsigned ParamIdx = OriginalArg.ArgIdx;
2955 
2956       if (ParamIdx >= Specialization->getNumParams())
2957         continue;
2958 
2959       QualType DeducedA = Specialization->getParamDecl(ParamIdx)->getType();
2960       if (CheckOriginalCallArgDeduction(*this, OriginalArg, DeducedA))
2961         return Sema::TDK_SubstitutionFailure;
2962     }
2963   }
2964 
2965   // If we suppressed any diagnostics while performing template argument
2966   // deduction, and if we haven't already instantiated this declaration,
2967   // keep track of these diagnostics. They'll be emitted if this specialization
2968   // is actually used.
2969   if (Info.diag_begin() != Info.diag_end()) {
2970     SuppressedDiagnosticsMap::iterator
2971       Pos = SuppressedDiagnostics.find(Specialization->getCanonicalDecl());
2972     if (Pos == SuppressedDiagnostics.end())
2973         SuppressedDiagnostics[Specialization->getCanonicalDecl()]
2974           .append(Info.diag_begin(), Info.diag_end());
2975   }
2976 
2977   return TDK_Success;
2978 }
2979 
2980 /// Gets the type of a function for template-argument-deducton
2981 /// purposes when it's considered as part of an overload set.
2982 static QualType GetTypeOfFunction(Sema &S, const OverloadExpr::FindResult &R,
2983                                   FunctionDecl *Fn) {
2984   // We may need to deduce the return type of the function now.
2985   if (S.getLangOpts().CPlusPlus1y && Fn->getReturnType()->isUndeducedType() &&
2986       S.DeduceReturnType(Fn, R.Expression->getExprLoc(), /*Diagnose*/ false))
2987     return QualType();
2988 
2989   if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Fn))
2990     if (Method->isInstance()) {
2991       // An instance method that's referenced in a form that doesn't
2992       // look like a member pointer is just invalid.
2993       if (!R.HasFormOfMemberPointer) return QualType();
2994 
2995       return S.Context.getMemberPointerType(Fn->getType(),
2996                S.Context.getTypeDeclType(Method->getParent()).getTypePtr());
2997     }
2998 
2999   if (!R.IsAddressOfOperand) return Fn->getType();
3000   return S.Context.getPointerType(Fn->getType());
3001 }
3002 
3003 /// Apply the deduction rules for overload sets.
3004 ///
3005 /// \return the null type if this argument should be treated as an
3006 /// undeduced context
3007 static QualType
3008 ResolveOverloadForDeduction(Sema &S, TemplateParameterList *TemplateParams,
3009                             Expr *Arg, QualType ParamType,
3010                             bool ParamWasReference) {
3011 
3012   OverloadExpr::FindResult R = OverloadExpr::find(Arg);
3013 
3014   OverloadExpr *Ovl = R.Expression;
3015 
3016   // C++0x [temp.deduct.call]p4
3017   unsigned TDF = 0;
3018   if (ParamWasReference)
3019     TDF |= TDF_ParamWithReferenceType;
3020   if (R.IsAddressOfOperand)
3021     TDF |= TDF_IgnoreQualifiers;
3022 
3023   // C++0x [temp.deduct.call]p6:
3024   //   When P is a function type, pointer to function type, or pointer
3025   //   to member function type:
3026 
3027   if (!ParamType->isFunctionType() &&
3028       !ParamType->isFunctionPointerType() &&
3029       !ParamType->isMemberFunctionPointerType()) {
3030     if (Ovl->hasExplicitTemplateArgs()) {
3031       // But we can still look for an explicit specialization.
3032       if (FunctionDecl *ExplicitSpec
3033             = S.ResolveSingleFunctionTemplateSpecialization(Ovl))
3034         return GetTypeOfFunction(S, R, ExplicitSpec);
3035     }
3036 
3037     return QualType();
3038   }
3039 
3040   // Gather the explicit template arguments, if any.
3041   TemplateArgumentListInfo ExplicitTemplateArgs;
3042   if (Ovl->hasExplicitTemplateArgs())
3043     Ovl->getExplicitTemplateArgs().copyInto(ExplicitTemplateArgs);
3044   QualType Match;
3045   for (UnresolvedSetIterator I = Ovl->decls_begin(),
3046          E = Ovl->decls_end(); I != E; ++I) {
3047     NamedDecl *D = (*I)->getUnderlyingDecl();
3048 
3049     if (FunctionTemplateDecl *FunTmpl = dyn_cast<FunctionTemplateDecl>(D)) {
3050       //   - If the argument is an overload set containing one or more
3051       //     function templates, the parameter is treated as a
3052       //     non-deduced context.
3053       if (!Ovl->hasExplicitTemplateArgs())
3054         return QualType();
3055 
3056       // Otherwise, see if we can resolve a function type
3057       FunctionDecl *Specialization = 0;
3058       TemplateDeductionInfo Info(Ovl->getNameLoc());
3059       if (S.DeduceTemplateArguments(FunTmpl, &ExplicitTemplateArgs,
3060                                     Specialization, Info))
3061         continue;
3062 
3063       D = Specialization;
3064     }
3065 
3066     FunctionDecl *Fn = cast<FunctionDecl>(D);
3067     QualType ArgType = GetTypeOfFunction(S, R, Fn);
3068     if (ArgType.isNull()) continue;
3069 
3070     // Function-to-pointer conversion.
3071     if (!ParamWasReference && ParamType->isPointerType() &&
3072         ArgType->isFunctionType())
3073       ArgType = S.Context.getPointerType(ArgType);
3074 
3075     //   - If the argument is an overload set (not containing function
3076     //     templates), trial argument deduction is attempted using each
3077     //     of the members of the set. If deduction succeeds for only one
3078     //     of the overload set members, that member is used as the
3079     //     argument value for the deduction. If deduction succeeds for
3080     //     more than one member of the overload set the parameter is
3081     //     treated as a non-deduced context.
3082 
3083     // We do all of this in a fresh context per C++0x [temp.deduct.type]p2:
3084     //   Type deduction is done independently for each P/A pair, and
3085     //   the deduced template argument values are then combined.
3086     // So we do not reject deductions which were made elsewhere.
3087     SmallVector<DeducedTemplateArgument, 8>
3088       Deduced(TemplateParams->size());
3089     TemplateDeductionInfo Info(Ovl->getNameLoc());
3090     Sema::TemplateDeductionResult Result
3091       = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, ParamType,
3092                                            ArgType, Info, Deduced, TDF);
3093     if (Result) continue;
3094     if (!Match.isNull()) return QualType();
3095     Match = ArgType;
3096   }
3097 
3098   return Match;
3099 }
3100 
3101 /// \brief Perform the adjustments to the parameter and argument types
3102 /// described in C++ [temp.deduct.call].
3103 ///
3104 /// \returns true if the caller should not attempt to perform any template
3105 /// argument deduction based on this P/A pair because the argument is an
3106 /// overloaded function set that could not be resolved.
3107 static bool AdjustFunctionParmAndArgTypesForDeduction(Sema &S,
3108                                           TemplateParameterList *TemplateParams,
3109                                                       QualType &ParamType,
3110                                                       QualType &ArgType,
3111                                                       Expr *Arg,
3112                                                       unsigned &TDF) {
3113   // C++0x [temp.deduct.call]p3:
3114   //   If P is a cv-qualified type, the top level cv-qualifiers of P's type
3115   //   are ignored for type deduction.
3116   if (ParamType.hasQualifiers())
3117     ParamType = ParamType.getUnqualifiedType();
3118   const ReferenceType *ParamRefType = ParamType->getAs<ReferenceType>();
3119   if (ParamRefType) {
3120     QualType PointeeType = ParamRefType->getPointeeType();
3121 
3122     // If the argument has incomplete array type, try to complete its type.
3123     if (ArgType->isIncompleteArrayType() && !S.RequireCompleteExprType(Arg, 0))
3124       ArgType = Arg->getType();
3125 
3126     //   [C++0x] If P is an rvalue reference to a cv-unqualified
3127     //   template parameter and the argument is an lvalue, the type
3128     //   "lvalue reference to A" is used in place of A for type
3129     //   deduction.
3130     if (isa<RValueReferenceType>(ParamType)) {
3131       if (!PointeeType.getQualifiers() &&
3132           isa<TemplateTypeParmType>(PointeeType) &&
3133           Arg->Classify(S.Context).isLValue() &&
3134           Arg->getType() != S.Context.OverloadTy &&
3135           Arg->getType() != S.Context.BoundMemberTy)
3136         ArgType = S.Context.getLValueReferenceType(ArgType);
3137     }
3138 
3139     //   [...] If P is a reference type, the type referred to by P is used
3140     //   for type deduction.
3141     ParamType = PointeeType;
3142   }
3143 
3144   // Overload sets usually make this parameter an undeduced
3145   // context, but there are sometimes special circumstances.
3146   if (ArgType == S.Context.OverloadTy) {
3147     ArgType = ResolveOverloadForDeduction(S, TemplateParams,
3148                                           Arg, ParamType,
3149                                           ParamRefType != 0);
3150     if (ArgType.isNull())
3151       return true;
3152   }
3153 
3154   if (ParamRefType) {
3155     // C++0x [temp.deduct.call]p3:
3156     //   [...] If P is of the form T&&, where T is a template parameter, and
3157     //   the argument is an lvalue, the type A& is used in place of A for
3158     //   type deduction.
3159     if (ParamRefType->isRValueReferenceType() &&
3160         ParamRefType->getAs<TemplateTypeParmType>() &&
3161         Arg->isLValue())
3162       ArgType = S.Context.getLValueReferenceType(ArgType);
3163   } else {
3164     // C++ [temp.deduct.call]p2:
3165     //   If P is not a reference type:
3166     //   - If A is an array type, the pointer type produced by the
3167     //     array-to-pointer standard conversion (4.2) is used in place of
3168     //     A for type deduction; otherwise,
3169     if (ArgType->isArrayType())
3170       ArgType = S.Context.getArrayDecayedType(ArgType);
3171     //   - If A is a function type, the pointer type produced by the
3172     //     function-to-pointer standard conversion (4.3) is used in place
3173     //     of A for type deduction; otherwise,
3174     else if (ArgType->isFunctionType())
3175       ArgType = S.Context.getPointerType(ArgType);
3176     else {
3177       // - If A is a cv-qualified type, the top level cv-qualifiers of A's
3178       //   type are ignored for type deduction.
3179       ArgType = ArgType.getUnqualifiedType();
3180     }
3181   }
3182 
3183   // C++0x [temp.deduct.call]p4:
3184   //   In general, the deduction process attempts to find template argument
3185   //   values that will make the deduced A identical to A (after the type A
3186   //   is transformed as described above). [...]
3187   TDF = TDF_SkipNonDependent;
3188 
3189   //     - If the original P is a reference type, the deduced A (i.e., the
3190   //       type referred to by the reference) can be more cv-qualified than
3191   //       the transformed A.
3192   if (ParamRefType)
3193     TDF |= TDF_ParamWithReferenceType;
3194   //     - The transformed A can be another pointer or pointer to member
3195   //       type that can be converted to the deduced A via a qualification
3196   //       conversion (4.4).
3197   if (ArgType->isPointerType() || ArgType->isMemberPointerType() ||
3198       ArgType->isObjCObjectPointerType())
3199     TDF |= TDF_IgnoreQualifiers;
3200   //     - If P is a class and P has the form simple-template-id, then the
3201   //       transformed A can be a derived class of the deduced A. Likewise,
3202   //       if P is a pointer to a class of the form simple-template-id, the
3203   //       transformed A can be a pointer to a derived class pointed to by
3204   //       the deduced A.
3205   if (isSimpleTemplateIdType(ParamType) ||
3206       (isa<PointerType>(ParamType) &&
3207        isSimpleTemplateIdType(
3208                               ParamType->getAs<PointerType>()->getPointeeType())))
3209     TDF |= TDF_DerivedClass;
3210 
3211   return false;
3212 }
3213 
3214 static bool hasDeducibleTemplateParameters(Sema &S,
3215                                            FunctionTemplateDecl *FunctionTemplate,
3216                                            QualType T);
3217 
3218 /// \brief Perform template argument deduction by matching a parameter type
3219 ///        against a single expression, where the expression is an element of
3220 ///        an initializer list that was originally matched against a parameter
3221 ///        of type \c initializer_list\<ParamType\>.
3222 static Sema::TemplateDeductionResult
3223 DeduceTemplateArgumentByListElement(Sema &S,
3224                                     TemplateParameterList *TemplateParams,
3225                                     QualType ParamType, Expr *Arg,
3226                                     TemplateDeductionInfo &Info,
3227                               SmallVectorImpl<DeducedTemplateArgument> &Deduced,
3228                                     unsigned TDF) {
3229   // Handle the case where an init list contains another init list as the
3230   // element.
3231   if (InitListExpr *ILE = dyn_cast<InitListExpr>(Arg)) {
3232     QualType X;
3233     if (!S.isStdInitializerList(ParamType.getNonReferenceType(), &X))
3234       return Sema::TDK_Success; // Just ignore this expression.
3235 
3236     // Recurse down into the init list.
3237     for (unsigned i = 0, e = ILE->getNumInits(); i < e; ++i) {
3238       if (Sema::TemplateDeductionResult Result =
3239             DeduceTemplateArgumentByListElement(S, TemplateParams, X,
3240                                                  ILE->getInit(i),
3241                                                  Info, Deduced, TDF))
3242         return Result;
3243     }
3244     return Sema::TDK_Success;
3245   }
3246 
3247   // For all other cases, just match by type.
3248   QualType ArgType = Arg->getType();
3249   if (AdjustFunctionParmAndArgTypesForDeduction(S, TemplateParams, ParamType,
3250                                                 ArgType, Arg, TDF)) {
3251     Info.Expression = Arg;
3252     return Sema::TDK_FailedOverloadResolution;
3253   }
3254   return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, ParamType,
3255                                             ArgType, Info, Deduced, TDF);
3256 }
3257 
3258 /// \brief Perform template argument deduction from a function call
3259 /// (C++ [temp.deduct.call]).
3260 ///
3261 /// \param FunctionTemplate the function template for which we are performing
3262 /// template argument deduction.
3263 ///
3264 /// \param ExplicitTemplateArgs the explicit template arguments provided
3265 /// for this call.
3266 ///
3267 /// \param Args the function call arguments
3268 ///
3269 /// \param Specialization if template argument deduction was successful,
3270 /// this will be set to the function template specialization produced by
3271 /// template argument deduction.
3272 ///
3273 /// \param Info the argument will be updated to provide additional information
3274 /// about template argument deduction.
3275 ///
3276 /// \returns the result of template argument deduction.
3277 Sema::TemplateDeductionResult Sema::DeduceTemplateArguments(
3278     FunctionTemplateDecl *FunctionTemplate,
3279     TemplateArgumentListInfo *ExplicitTemplateArgs, ArrayRef<Expr *> Args,
3280     FunctionDecl *&Specialization, TemplateDeductionInfo &Info) {
3281   if (FunctionTemplate->isInvalidDecl())
3282     return TDK_Invalid;
3283 
3284   FunctionDecl *Function = FunctionTemplate->getTemplatedDecl();
3285 
3286   // C++ [temp.deduct.call]p1:
3287   //   Template argument deduction is done by comparing each function template
3288   //   parameter type (call it P) with the type of the corresponding argument
3289   //   of the call (call it A) as described below.
3290   unsigned CheckArgs = Args.size();
3291   if (Args.size() < Function->getMinRequiredArguments())
3292     return TDK_TooFewArguments;
3293   else if (Args.size() > Function->getNumParams()) {
3294     const FunctionProtoType *Proto
3295       = Function->getType()->getAs<FunctionProtoType>();
3296     if (Proto->isTemplateVariadic())
3297       /* Do nothing */;
3298     else if (Proto->isVariadic())
3299       CheckArgs = Function->getNumParams();
3300     else
3301       return TDK_TooManyArguments;
3302   }
3303 
3304   // The types of the parameters from which we will perform template argument
3305   // deduction.
3306   LocalInstantiationScope InstScope(*this);
3307   TemplateParameterList *TemplateParams
3308     = FunctionTemplate->getTemplateParameters();
3309   SmallVector<DeducedTemplateArgument, 4> Deduced;
3310   SmallVector<QualType, 4> ParamTypes;
3311   unsigned NumExplicitlySpecified = 0;
3312   if (ExplicitTemplateArgs) {
3313     TemplateDeductionResult Result =
3314       SubstituteExplicitTemplateArguments(FunctionTemplate,
3315                                           *ExplicitTemplateArgs,
3316                                           Deduced,
3317                                           ParamTypes,
3318                                           0,
3319                                           Info);
3320     if (Result)
3321       return Result;
3322 
3323     NumExplicitlySpecified = Deduced.size();
3324   } else {
3325     // Just fill in the parameter types from the function declaration.
3326     for (unsigned I = 0, N = Function->getNumParams(); I != N; ++I)
3327       ParamTypes.push_back(Function->getParamDecl(I)->getType());
3328   }
3329 
3330   // Deduce template arguments from the function parameters.
3331   Deduced.resize(TemplateParams->size());
3332   unsigned ArgIdx = 0;
3333   SmallVector<OriginalCallArg, 4> OriginalCallArgs;
3334   for (unsigned ParamIdx = 0, NumParams = ParamTypes.size();
3335        ParamIdx != NumParams; ++ParamIdx) {
3336     QualType OrigParamType = ParamTypes[ParamIdx];
3337     QualType ParamType = OrigParamType;
3338 
3339     const PackExpansionType *ParamExpansion
3340       = dyn_cast<PackExpansionType>(ParamType);
3341     if (!ParamExpansion) {
3342       // Simple case: matching a function parameter to a function argument.
3343       if (ArgIdx >= CheckArgs)
3344         break;
3345 
3346       Expr *Arg = Args[ArgIdx++];
3347       QualType ArgType = Arg->getType();
3348 
3349       unsigned TDF = 0;
3350       if (AdjustFunctionParmAndArgTypesForDeduction(*this, TemplateParams,
3351                                                     ParamType, ArgType, Arg,
3352                                                     TDF))
3353         continue;
3354 
3355       // If we have nothing to deduce, we're done.
3356       if (!hasDeducibleTemplateParameters(*this, FunctionTemplate, ParamType))
3357         continue;
3358 
3359       // If the argument is an initializer list ...
3360       if (InitListExpr *ILE = dyn_cast<InitListExpr>(Arg)) {
3361         // ... then the parameter is an undeduced context, unless the parameter
3362         // type is (reference to cv) std::initializer_list<P'>, in which case
3363         // deduction is done for each element of the initializer list, and the
3364         // result is the deduced type if it's the same for all elements.
3365         QualType X;
3366         // Removing references was already done.
3367         if (!isStdInitializerList(ParamType, &X))
3368           continue;
3369 
3370         for (unsigned i = 0, e = ILE->getNumInits(); i < e; ++i) {
3371           if (TemplateDeductionResult Result =
3372                 DeduceTemplateArgumentByListElement(*this, TemplateParams, X,
3373                                                      ILE->getInit(i),
3374                                                      Info, Deduced, TDF))
3375             return Result;
3376         }
3377         // Don't track the argument type, since an initializer list has none.
3378         continue;
3379       }
3380 
3381       // Keep track of the argument type and corresponding parameter index,
3382       // so we can check for compatibility between the deduced A and A.
3383       OriginalCallArgs.push_back(OriginalCallArg(OrigParamType, ArgIdx-1,
3384                                                  ArgType));
3385 
3386       if (TemplateDeductionResult Result
3387             = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams,
3388                                                  ParamType, ArgType,
3389                                                  Info, Deduced, TDF))
3390         return Result;
3391 
3392       continue;
3393     }
3394 
3395     // C++0x [temp.deduct.call]p1:
3396     //   For a function parameter pack that occurs at the end of the
3397     //   parameter-declaration-list, the type A of each remaining argument of
3398     //   the call is compared with the type P of the declarator-id of the
3399     //   function parameter pack. Each comparison deduces template arguments
3400     //   for subsequent positions in the template parameter packs expanded by
3401     //   the function parameter pack. For a function parameter pack that does
3402     //   not occur at the end of the parameter-declaration-list, the type of
3403     //   the parameter pack is a non-deduced context.
3404     if (ParamIdx + 1 < NumParams)
3405       break;
3406 
3407     QualType ParamPattern = ParamExpansion->getPattern();
3408     SmallVector<unsigned, 2> PackIndices;
3409     {
3410       llvm::SmallBitVector SawIndices(TemplateParams->size());
3411       SmallVector<UnexpandedParameterPack, 2> Unexpanded;
3412       collectUnexpandedParameterPacks(ParamPattern, Unexpanded);
3413       for (unsigned I = 0, N = Unexpanded.size(); I != N; ++I) {
3414         unsigned Depth, Index;
3415         std::tie(Depth, Index) = getDepthAndIndex(Unexpanded[I]);
3416         if (Depth == 0 && !SawIndices[Index]) {
3417           SawIndices[Index] = true;
3418           PackIndices.push_back(Index);
3419         }
3420       }
3421     }
3422     assert(!PackIndices.empty() && "Pack expansion without unexpanded packs?");
3423 
3424     // Keep track of the deduced template arguments for each parameter pack
3425     // expanded by this pack expansion (the outer index) and for each
3426     // template argument (the inner SmallVectors).
3427     NewlyDeducedPacksType NewlyDeducedPacks(PackIndices.size());
3428     SmallVector<DeducedTemplateArgument, 2>
3429       SavedPacks(PackIndices.size());
3430     PrepareArgumentPackDeduction(*this, Deduced, PackIndices, SavedPacks,
3431                                  NewlyDeducedPacks);
3432     bool HasAnyArguments = false;
3433     for (; ArgIdx < Args.size(); ++ArgIdx) {
3434       HasAnyArguments = true;
3435 
3436       QualType OrigParamType = ParamPattern;
3437       ParamType = OrigParamType;
3438       Expr *Arg = Args[ArgIdx];
3439       QualType ArgType = Arg->getType();
3440 
3441       unsigned TDF = 0;
3442       if (AdjustFunctionParmAndArgTypesForDeduction(*this, TemplateParams,
3443                                                     ParamType, ArgType, Arg,
3444                                                     TDF)) {
3445         // We can't actually perform any deduction for this argument, so stop
3446         // deduction at this point.
3447         ++ArgIdx;
3448         break;
3449       }
3450 
3451       // As above, initializer lists need special handling.
3452       if (InitListExpr *ILE = dyn_cast<InitListExpr>(Arg)) {
3453         QualType X;
3454         if (!isStdInitializerList(ParamType, &X)) {
3455           ++ArgIdx;
3456           break;
3457         }
3458 
3459         for (unsigned i = 0, e = ILE->getNumInits(); i < e; ++i) {
3460           if (TemplateDeductionResult Result =
3461                 DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams, X,
3462                                                    ILE->getInit(i)->getType(),
3463                                                    Info, Deduced, TDF))
3464             return Result;
3465         }
3466       } else {
3467 
3468         // Keep track of the argument type and corresponding argument index,
3469         // so we can check for compatibility between the deduced A and A.
3470         if (hasDeducibleTemplateParameters(*this, FunctionTemplate, ParamType))
3471           OriginalCallArgs.push_back(OriginalCallArg(OrigParamType, ArgIdx,
3472                                                      ArgType));
3473 
3474         if (TemplateDeductionResult Result
3475             = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams,
3476                                                  ParamType, ArgType, Info,
3477                                                  Deduced, TDF))
3478           return Result;
3479       }
3480 
3481       // Capture the deduced template arguments for each parameter pack expanded
3482       // by this pack expansion, add them to the list of arguments we've deduced
3483       // for that pack, then clear out the deduced argument.
3484       for (unsigned I = 0, N = PackIndices.size(); I != N; ++I) {
3485         DeducedTemplateArgument &DeducedArg = Deduced[PackIndices[I]];
3486         if (!DeducedArg.isNull()) {
3487           NewlyDeducedPacks[I].push_back(DeducedArg);
3488           DeducedArg = DeducedTemplateArgument();
3489         }
3490       }
3491     }
3492 
3493     // Build argument packs for each of the parameter packs expanded by this
3494     // pack expansion.
3495     if (Sema::TemplateDeductionResult Result
3496           = FinishArgumentPackDeduction(*this, TemplateParams, HasAnyArguments,
3497                                         Deduced, PackIndices, SavedPacks,
3498                                         NewlyDeducedPacks, Info))
3499       return Result;
3500 
3501     // After we've matching against a parameter pack, we're done.
3502     break;
3503   }
3504 
3505   return FinishTemplateArgumentDeduction(FunctionTemplate, Deduced,
3506                                          NumExplicitlySpecified,
3507                                          Specialization, Info, &OriginalCallArgs);
3508 }
3509 
3510 QualType Sema::adjustCCAndNoReturn(QualType ArgFunctionType,
3511                                    QualType FunctionType) {
3512   if (ArgFunctionType.isNull())
3513     return ArgFunctionType;
3514 
3515   const FunctionProtoType *FunctionTypeP =
3516       FunctionType->castAs<FunctionProtoType>();
3517   CallingConv CC = FunctionTypeP->getCallConv();
3518   bool NoReturn = FunctionTypeP->getNoReturnAttr();
3519   const FunctionProtoType *ArgFunctionTypeP =
3520       ArgFunctionType->getAs<FunctionProtoType>();
3521   if (ArgFunctionTypeP->getCallConv() == CC &&
3522       ArgFunctionTypeP->getNoReturnAttr() == NoReturn)
3523     return ArgFunctionType;
3524 
3525   FunctionType::ExtInfo EI = ArgFunctionTypeP->getExtInfo().withCallingConv(CC);
3526   EI = EI.withNoReturn(NoReturn);
3527   ArgFunctionTypeP =
3528       cast<FunctionProtoType>(Context.adjustFunctionType(ArgFunctionTypeP, EI));
3529   return QualType(ArgFunctionTypeP, 0);
3530 }
3531 
3532 /// \brief Deduce template arguments when taking the address of a function
3533 /// template (C++ [temp.deduct.funcaddr]) or matching a specialization to
3534 /// a template.
3535 ///
3536 /// \param FunctionTemplate the function template for which we are performing
3537 /// template argument deduction.
3538 ///
3539 /// \param ExplicitTemplateArgs the explicitly-specified template
3540 /// arguments.
3541 ///
3542 /// \param ArgFunctionType the function type that will be used as the
3543 /// "argument" type (A) when performing template argument deduction from the
3544 /// function template's function type. This type may be NULL, if there is no
3545 /// argument type to compare against, in C++0x [temp.arg.explicit]p3.
3546 ///
3547 /// \param Specialization if template argument deduction was successful,
3548 /// this will be set to the function template specialization produced by
3549 /// template argument deduction.
3550 ///
3551 /// \param Info the argument will be updated to provide additional information
3552 /// about template argument deduction.
3553 ///
3554 /// \returns the result of template argument deduction.
3555 Sema::TemplateDeductionResult
3556 Sema::DeduceTemplateArguments(FunctionTemplateDecl *FunctionTemplate,
3557                               TemplateArgumentListInfo *ExplicitTemplateArgs,
3558                               QualType ArgFunctionType,
3559                               FunctionDecl *&Specialization,
3560                               TemplateDeductionInfo &Info,
3561                               bool InOverloadResolution) {
3562   if (FunctionTemplate->isInvalidDecl())
3563     return TDK_Invalid;
3564 
3565   FunctionDecl *Function = FunctionTemplate->getTemplatedDecl();
3566   TemplateParameterList *TemplateParams
3567     = FunctionTemplate->getTemplateParameters();
3568   QualType FunctionType = Function->getType();
3569   if (!InOverloadResolution)
3570     ArgFunctionType = adjustCCAndNoReturn(ArgFunctionType, FunctionType);
3571 
3572   // Substitute any explicit template arguments.
3573   LocalInstantiationScope InstScope(*this);
3574   SmallVector<DeducedTemplateArgument, 4> Deduced;
3575   unsigned NumExplicitlySpecified = 0;
3576   SmallVector<QualType, 4> ParamTypes;
3577   if (ExplicitTemplateArgs) {
3578     if (TemplateDeductionResult Result
3579           = SubstituteExplicitTemplateArguments(FunctionTemplate,
3580                                                 *ExplicitTemplateArgs,
3581                                                 Deduced, ParamTypes,
3582                                                 &FunctionType, Info))
3583       return Result;
3584 
3585     NumExplicitlySpecified = Deduced.size();
3586   }
3587 
3588   // Unevaluated SFINAE context.
3589   EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated);
3590   SFINAETrap Trap(*this);
3591 
3592   Deduced.resize(TemplateParams->size());
3593 
3594   // If the function has a deduced return type, substitute it for a dependent
3595   // type so that we treat it as a non-deduced context in what follows.
3596   bool HasDeducedReturnType = false;
3597   if (getLangOpts().CPlusPlus1y && InOverloadResolution &&
3598       Function->getReturnType()->getContainedAutoType()) {
3599     FunctionType = SubstAutoType(FunctionType, Context.DependentTy);
3600     HasDeducedReturnType = true;
3601   }
3602 
3603   if (!ArgFunctionType.isNull()) {
3604     unsigned TDF = TDF_TopLevelParameterTypeList;
3605     if (InOverloadResolution) TDF |= TDF_InOverloadResolution;
3606     // Deduce template arguments from the function type.
3607     if (TemplateDeductionResult Result
3608           = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams,
3609                                                FunctionType, ArgFunctionType,
3610                                                Info, Deduced, TDF))
3611       return Result;
3612   }
3613 
3614   if (TemplateDeductionResult Result
3615         = FinishTemplateArgumentDeduction(FunctionTemplate, Deduced,
3616                                           NumExplicitlySpecified,
3617                                           Specialization, Info))
3618     return Result;
3619 
3620   // If the function has a deduced return type, deduce it now, so we can check
3621   // that the deduced function type matches the requested type.
3622   if (HasDeducedReturnType &&
3623       Specialization->getReturnType()->isUndeducedType() &&
3624       DeduceReturnType(Specialization, Info.getLocation(), false))
3625     return TDK_MiscellaneousDeductionFailure;
3626 
3627   // If the requested function type does not match the actual type of the
3628   // specialization with respect to arguments of compatible pointer to function
3629   // types, template argument deduction fails.
3630   if (!ArgFunctionType.isNull()) {
3631     if (InOverloadResolution && !isSameOrCompatibleFunctionType(
3632                            Context.getCanonicalType(Specialization->getType()),
3633                            Context.getCanonicalType(ArgFunctionType)))
3634       return TDK_MiscellaneousDeductionFailure;
3635     else if(!InOverloadResolution &&
3636             !Context.hasSameType(Specialization->getType(), ArgFunctionType))
3637       return TDK_MiscellaneousDeductionFailure;
3638   }
3639 
3640   return TDK_Success;
3641 }
3642 
3643 /// \brief Given a function declaration (e.g. a generic lambda conversion
3644 ///  function) that contains an 'auto' in its result type, substitute it
3645 ///  with TypeToReplaceAutoWith.  Be careful to pass in the type you want
3646 ///  to replace 'auto' with and not the actual result type you want
3647 ///  to set the function to.
3648 static inline void
3649 SubstAutoWithinFunctionReturnType(FunctionDecl *F,
3650                                     QualType TypeToReplaceAutoWith, Sema &S) {
3651   assert(!TypeToReplaceAutoWith->getContainedAutoType());
3652   QualType AutoResultType = F->getReturnType();
3653   assert(AutoResultType->getContainedAutoType());
3654   QualType DeducedResultType = S.SubstAutoType(AutoResultType,
3655                                                TypeToReplaceAutoWith);
3656   S.Context.adjustDeducedFunctionResultType(F, DeducedResultType);
3657 }
3658 
3659 /// \brief Given a specialized conversion operator of a generic lambda
3660 /// create the corresponding specializations of the call operator and
3661 /// the static-invoker. If the return type of the call operator is auto,
3662 /// deduce its return type and check if that matches the
3663 /// return type of the destination function ptr.
3664 
3665 static inline Sema::TemplateDeductionResult
3666 SpecializeCorrespondingLambdaCallOperatorAndInvoker(
3667     CXXConversionDecl *ConversionSpecialized,
3668     SmallVectorImpl<DeducedTemplateArgument> &DeducedArguments,
3669     QualType ReturnTypeOfDestFunctionPtr,
3670     TemplateDeductionInfo &TDInfo,
3671     Sema &S) {
3672 
3673   CXXRecordDecl *LambdaClass = ConversionSpecialized->getParent();
3674   assert(LambdaClass && LambdaClass->isGenericLambda());
3675 
3676   CXXMethodDecl *CallOpGeneric = LambdaClass->getLambdaCallOperator();
3677   QualType CallOpResultType = CallOpGeneric->getReturnType();
3678   const bool GenericLambdaCallOperatorHasDeducedReturnType =
3679       CallOpResultType->getContainedAutoType();
3680 
3681   FunctionTemplateDecl *CallOpTemplate =
3682       CallOpGeneric->getDescribedFunctionTemplate();
3683 
3684   FunctionDecl *CallOpSpecialized = 0;
3685   // Use the deduced arguments of the conversion function, to specialize our
3686   // generic lambda's call operator.
3687   if (Sema::TemplateDeductionResult Result
3688       = S.FinishTemplateArgumentDeduction(CallOpTemplate,
3689                                           DeducedArguments,
3690                                           0, CallOpSpecialized, TDInfo))
3691     return Result;
3692 
3693   // If we need to deduce the return type, do so (instantiates the callop).
3694   if (GenericLambdaCallOperatorHasDeducedReturnType &&
3695       CallOpSpecialized->getReturnType()->isUndeducedType())
3696     S.DeduceReturnType(CallOpSpecialized,
3697                        CallOpSpecialized->getPointOfInstantiation(),
3698                        /*Diagnose*/ true);
3699 
3700   // Check to see if the return type of the destination ptr-to-function
3701   // matches the return type of the call operator.
3702   if (!S.Context.hasSameType(CallOpSpecialized->getReturnType(),
3703                              ReturnTypeOfDestFunctionPtr))
3704     return Sema::TDK_NonDeducedMismatch;
3705   // Since we have succeeded in matching the source and destination
3706   // ptr-to-functions (now including return type), and have successfully
3707   // specialized our corresponding call operator, we are ready to
3708   // specialize the static invoker with the deduced arguments of our
3709   // ptr-to-function.
3710   FunctionDecl *InvokerSpecialized = 0;
3711   FunctionTemplateDecl *InvokerTemplate = LambdaClass->
3712                   getLambdaStaticInvoker()->getDescribedFunctionTemplate();
3713 
3714   Sema::TemplateDeductionResult LLVM_ATTRIBUTE_UNUSED Result
3715     = S.FinishTemplateArgumentDeduction(InvokerTemplate, DeducedArguments, 0,
3716           InvokerSpecialized, TDInfo);
3717   assert(Result == Sema::TDK_Success &&
3718     "If the call operator succeeded so should the invoker!");
3719   // Set the result type to match the corresponding call operator
3720   // specialization's result type.
3721   if (GenericLambdaCallOperatorHasDeducedReturnType &&
3722       InvokerSpecialized->getReturnType()->isUndeducedType()) {
3723     // Be sure to get the type to replace 'auto' with and not
3724     // the full result type of the call op specialization
3725     // to substitute into the 'auto' of the invoker and conversion
3726     // function.
3727     // For e.g.
3728     //  int* (*fp)(int*) = [](auto* a) -> auto* { return a; };
3729     // We don't want to subst 'int*' into 'auto' to get int**.
3730 
3731     QualType TypeToReplaceAutoWith = CallOpSpecialized->getReturnType()
3732                                          ->getContainedAutoType()
3733                                          ->getDeducedType();
3734     SubstAutoWithinFunctionReturnType(InvokerSpecialized,
3735         TypeToReplaceAutoWith, S);
3736     SubstAutoWithinFunctionReturnType(ConversionSpecialized,
3737         TypeToReplaceAutoWith, S);
3738   }
3739 
3740   // Ensure that static invoker doesn't have a const qualifier.
3741   // FIXME: When creating the InvokerTemplate in SemaLambda.cpp
3742   // do not use the CallOperator's TypeSourceInfo which allows
3743   // the const qualifier to leak through.
3744   const FunctionProtoType *InvokerFPT = InvokerSpecialized->
3745                   getType().getTypePtr()->castAs<FunctionProtoType>();
3746   FunctionProtoType::ExtProtoInfo EPI = InvokerFPT->getExtProtoInfo();
3747   EPI.TypeQuals = 0;
3748   InvokerSpecialized->setType(S.Context.getFunctionType(
3749       InvokerFPT->getReturnType(), InvokerFPT->getParamTypes(), EPI));
3750   return Sema::TDK_Success;
3751 }
3752 /// \brief Deduce template arguments for a templated conversion
3753 /// function (C++ [temp.deduct.conv]) and, if successful, produce a
3754 /// conversion function template specialization.
3755 Sema::TemplateDeductionResult
3756 Sema::DeduceTemplateArguments(FunctionTemplateDecl *ConversionTemplate,
3757                               QualType ToType,
3758                               CXXConversionDecl *&Specialization,
3759                               TemplateDeductionInfo &Info) {
3760   if (ConversionTemplate->isInvalidDecl())
3761     return TDK_Invalid;
3762 
3763   CXXConversionDecl *ConversionGeneric
3764     = cast<CXXConversionDecl>(ConversionTemplate->getTemplatedDecl());
3765 
3766   QualType FromType = ConversionGeneric->getConversionType();
3767 
3768   // Canonicalize the types for deduction.
3769   QualType P = Context.getCanonicalType(FromType);
3770   QualType A = Context.getCanonicalType(ToType);
3771 
3772   // C++0x [temp.deduct.conv]p2:
3773   //   If P is a reference type, the type referred to by P is used for
3774   //   type deduction.
3775   if (const ReferenceType *PRef = P->getAs<ReferenceType>())
3776     P = PRef->getPointeeType();
3777 
3778   // C++0x [temp.deduct.conv]p4:
3779   //   [...] If A is a reference type, the type referred to by A is used
3780   //   for type deduction.
3781   if (const ReferenceType *ARef = A->getAs<ReferenceType>())
3782     A = ARef->getPointeeType().getUnqualifiedType();
3783   // C++ [temp.deduct.conv]p3:
3784   //
3785   //   If A is not a reference type:
3786   else {
3787     assert(!A->isReferenceType() && "Reference types were handled above");
3788 
3789     //   - If P is an array type, the pointer type produced by the
3790     //     array-to-pointer standard conversion (4.2) is used in place
3791     //     of P for type deduction; otherwise,
3792     if (P->isArrayType())
3793       P = Context.getArrayDecayedType(P);
3794     //   - If P is a function type, the pointer type produced by the
3795     //     function-to-pointer standard conversion (4.3) is used in
3796     //     place of P for type deduction; otherwise,
3797     else if (P->isFunctionType())
3798       P = Context.getPointerType(P);
3799     //   - If P is a cv-qualified type, the top level cv-qualifiers of
3800     //     P's type are ignored for type deduction.
3801     else
3802       P = P.getUnqualifiedType();
3803 
3804     // C++0x [temp.deduct.conv]p4:
3805     //   If A is a cv-qualified type, the top level cv-qualifiers of A's
3806     //   type are ignored for type deduction. If A is a reference type, the type
3807     //   referred to by A is used for type deduction.
3808     A = A.getUnqualifiedType();
3809   }
3810 
3811   // Unevaluated SFINAE context.
3812   EnterExpressionEvaluationContext Unevaluated(*this, Sema::Unevaluated);
3813   SFINAETrap Trap(*this);
3814 
3815   // C++ [temp.deduct.conv]p1:
3816   //   Template argument deduction is done by comparing the return
3817   //   type of the template conversion function (call it P) with the
3818   //   type that is required as the result of the conversion (call it
3819   //   A) as described in 14.8.2.4.
3820   TemplateParameterList *TemplateParams
3821     = ConversionTemplate->getTemplateParameters();
3822   SmallVector<DeducedTemplateArgument, 4> Deduced;
3823   Deduced.resize(TemplateParams->size());
3824 
3825   // C++0x [temp.deduct.conv]p4:
3826   //   In general, the deduction process attempts to find template
3827   //   argument values that will make the deduced A identical to
3828   //   A. However, there are two cases that allow a difference:
3829   unsigned TDF = 0;
3830   //     - If the original A is a reference type, A can be more
3831   //       cv-qualified than the deduced A (i.e., the type referred to
3832   //       by the reference)
3833   if (ToType->isReferenceType())
3834     TDF |= TDF_ParamWithReferenceType;
3835   //     - The deduced A can be another pointer or pointer to member
3836   //       type that can be converted to A via a qualification
3837   //       conversion.
3838   //
3839   // (C++0x [temp.deduct.conv]p6 clarifies that this only happens when
3840   // both P and A are pointers or member pointers. In this case, we
3841   // just ignore cv-qualifiers completely).
3842   if ((P->isPointerType() && A->isPointerType()) ||
3843       (P->isMemberPointerType() && A->isMemberPointerType()))
3844     TDF |= TDF_IgnoreQualifiers;
3845   if (TemplateDeductionResult Result
3846         = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams,
3847                                              P, A, Info, Deduced, TDF))
3848     return Result;
3849 
3850   // Create an Instantiation Scope for finalizing the operator.
3851   LocalInstantiationScope InstScope(*this);
3852   // Finish template argument deduction.
3853   FunctionDecl *ConversionSpecialized = 0;
3854   TemplateDeductionResult Result
3855       = FinishTemplateArgumentDeduction(ConversionTemplate, Deduced, 0,
3856                                         ConversionSpecialized, Info);
3857   Specialization = cast_or_null<CXXConversionDecl>(ConversionSpecialized);
3858 
3859   // If the conversion operator is being invoked on a lambda closure to convert
3860   // to a ptr-to-function, use the deduced arguments from the conversion function
3861   // to specialize the corresponding call operator.
3862   //   e.g., int (*fp)(int) = [](auto a) { return a; };
3863   if (Result == TDK_Success && isLambdaConversionOperator(ConversionGeneric)) {
3864 
3865     // Get the return type of the destination ptr-to-function we are converting
3866     // to.  This is necessary for matching the lambda call operator's return
3867     // type to that of the destination ptr-to-function's return type.
3868     assert(A->isPointerType() &&
3869         "Can only convert from lambda to ptr-to-function");
3870     const FunctionType *ToFunType =
3871         A->getPointeeType().getTypePtr()->getAs<FunctionType>();
3872     const QualType DestFunctionPtrReturnType = ToFunType->getReturnType();
3873 
3874     // Create the corresponding specializations of the call operator and
3875     // the static-invoker; and if the return type is auto,
3876     // deduce the return type and check if it matches the
3877     // DestFunctionPtrReturnType.
3878     // For instance:
3879     //   auto L = [](auto a) { return f(a); };
3880     //   int (*fp)(int) = L;
3881     //   char (*fp2)(int) = L; <-- Not OK.
3882 
3883     Result = SpecializeCorrespondingLambdaCallOperatorAndInvoker(
3884         Specialization, Deduced, DestFunctionPtrReturnType,
3885         Info, *this);
3886   }
3887   return Result;
3888 }
3889 
3890 /// \brief Deduce template arguments for a function template when there is
3891 /// nothing to deduce against (C++0x [temp.arg.explicit]p3).
3892 ///
3893 /// \param FunctionTemplate the function template for which we are performing
3894 /// template argument deduction.
3895 ///
3896 /// \param ExplicitTemplateArgs the explicitly-specified template
3897 /// arguments.
3898 ///
3899 /// \param Specialization if template argument deduction was successful,
3900 /// this will be set to the function template specialization produced by
3901 /// template argument deduction.
3902 ///
3903 /// \param Info the argument will be updated to provide additional information
3904 /// about template argument deduction.
3905 ///
3906 /// \returns the result of template argument deduction.
3907 Sema::TemplateDeductionResult
3908 Sema::DeduceTemplateArguments(FunctionTemplateDecl *FunctionTemplate,
3909                               TemplateArgumentListInfo *ExplicitTemplateArgs,
3910                               FunctionDecl *&Specialization,
3911                               TemplateDeductionInfo &Info,
3912                               bool InOverloadResolution) {
3913   return DeduceTemplateArguments(FunctionTemplate, ExplicitTemplateArgs,
3914                                  QualType(), Specialization, Info,
3915                                  InOverloadResolution);
3916 }
3917 
3918 namespace {
3919   /// Substitute the 'auto' type specifier within a type for a given replacement
3920   /// type.
3921   class SubstituteAutoTransform :
3922     public TreeTransform<SubstituteAutoTransform> {
3923     QualType Replacement;
3924   public:
3925     SubstituteAutoTransform(Sema &SemaRef, QualType Replacement) :
3926       TreeTransform<SubstituteAutoTransform>(SemaRef), Replacement(Replacement) {
3927     }
3928     QualType TransformAutoType(TypeLocBuilder &TLB, AutoTypeLoc TL) {
3929       // If we're building the type pattern to deduce against, don't wrap the
3930       // substituted type in an AutoType. Certain template deduction rules
3931       // apply only when a template type parameter appears directly (and not if
3932       // the parameter is found through desugaring). For instance:
3933       //   auto &&lref = lvalue;
3934       // must transform into "rvalue reference to T" not "rvalue reference to
3935       // auto type deduced as T" in order for [temp.deduct.call]p3 to apply.
3936       if (!Replacement.isNull() && isa<TemplateTypeParmType>(Replacement)) {
3937         QualType Result = Replacement;
3938         TemplateTypeParmTypeLoc NewTL =
3939           TLB.push<TemplateTypeParmTypeLoc>(Result);
3940         NewTL.setNameLoc(TL.getNameLoc());
3941         return Result;
3942       } else {
3943         bool Dependent =
3944           !Replacement.isNull() && Replacement->isDependentType();
3945         QualType Result =
3946           SemaRef.Context.getAutoType(Dependent ? QualType() : Replacement,
3947                                       TL.getTypePtr()->isDecltypeAuto(),
3948                                       Dependent);
3949         AutoTypeLoc NewTL = TLB.push<AutoTypeLoc>(Result);
3950         NewTL.setNameLoc(TL.getNameLoc());
3951         return Result;
3952       }
3953     }
3954 
3955     ExprResult TransformLambdaExpr(LambdaExpr *E) {
3956       // Lambdas never need to be transformed.
3957       return E;
3958     }
3959 
3960     QualType Apply(TypeLoc TL) {
3961       // Create some scratch storage for the transformed type locations.
3962       // FIXME: We're just going to throw this information away. Don't build it.
3963       TypeLocBuilder TLB;
3964       TLB.reserve(TL.getFullDataSize());
3965       return TransformType(TLB, TL);
3966     }
3967   };
3968 }
3969 
3970 Sema::DeduceAutoResult
3971 Sema::DeduceAutoType(TypeSourceInfo *Type, Expr *&Init, QualType &Result) {
3972   return DeduceAutoType(Type->getTypeLoc(), Init, Result);
3973 }
3974 
3975 /// \brief Deduce the type for an auto type-specifier (C++11 [dcl.spec.auto]p6)
3976 ///
3977 /// \param Type the type pattern using the auto type-specifier.
3978 /// \param Init the initializer for the variable whose type is to be deduced.
3979 /// \param Result if type deduction was successful, this will be set to the
3980 ///        deduced type.
3981 Sema::DeduceAutoResult
3982 Sema::DeduceAutoType(TypeLoc Type, Expr *&Init, QualType &Result) {
3983   if (Init->getType()->isNonOverloadPlaceholderType()) {
3984     ExprResult NonPlaceholder = CheckPlaceholderExpr(Init);
3985     if (NonPlaceholder.isInvalid())
3986       return DAR_FailedAlreadyDiagnosed;
3987     Init = NonPlaceholder.take();
3988   }
3989 
3990   if (Init->isTypeDependent() || Type.getType()->isDependentType()) {
3991     Result = SubstituteAutoTransform(*this, Context.DependentTy).Apply(Type);
3992     assert(!Result.isNull() && "substituting DependentTy can't fail");
3993     return DAR_Succeeded;
3994   }
3995 
3996   // If this is a 'decltype(auto)' specifier, do the decltype dance.
3997   // Since 'decltype(auto)' can only occur at the top of the type, we
3998   // don't need to go digging for it.
3999   if (const AutoType *AT = Type.getType()->getAs<AutoType>()) {
4000     if (AT->isDecltypeAuto()) {
4001       if (isa<InitListExpr>(Init)) {
4002         Diag(Init->getLocStart(), diag::err_decltype_auto_initializer_list);
4003         return DAR_FailedAlreadyDiagnosed;
4004       }
4005 
4006       QualType Deduced = BuildDecltypeType(Init, Init->getLocStart());
4007       // FIXME: Support a non-canonical deduced type for 'auto'.
4008       Deduced = Context.getCanonicalType(Deduced);
4009       Result = SubstituteAutoTransform(*this, Deduced).Apply(Type);
4010       if (Result.isNull())
4011         return DAR_FailedAlreadyDiagnosed;
4012       return DAR_Succeeded;
4013     }
4014   }
4015 
4016   SourceLocation Loc = Init->getExprLoc();
4017 
4018   LocalInstantiationScope InstScope(*this);
4019 
4020   // Build template<class TemplParam> void Func(FuncParam);
4021   TemplateTypeParmDecl *TemplParam =
4022     TemplateTypeParmDecl::Create(Context, 0, SourceLocation(), Loc, 0, 0, 0,
4023                                  false, false);
4024   QualType TemplArg = QualType(TemplParam->getTypeForDecl(), 0);
4025   NamedDecl *TemplParamPtr = TemplParam;
4026   FixedSizeTemplateParameterList<1> TemplateParams(Loc, Loc, &TemplParamPtr,
4027                                                    Loc);
4028 
4029   QualType FuncParam = SubstituteAutoTransform(*this, TemplArg).Apply(Type);
4030   assert(!FuncParam.isNull() &&
4031          "substituting template parameter for 'auto' failed");
4032 
4033   // Deduce type of TemplParam in Func(Init)
4034   SmallVector<DeducedTemplateArgument, 1> Deduced;
4035   Deduced.resize(1);
4036   QualType InitType = Init->getType();
4037   unsigned TDF = 0;
4038 
4039   TemplateDeductionInfo Info(Loc);
4040 
4041   InitListExpr *InitList = dyn_cast<InitListExpr>(Init);
4042   if (InitList) {
4043     for (unsigned i = 0, e = InitList->getNumInits(); i < e; ++i) {
4044       if (DeduceTemplateArgumentByListElement(*this, &TemplateParams,
4045                                               TemplArg,
4046                                               InitList->getInit(i),
4047                                               Info, Deduced, TDF))
4048         return DAR_Failed;
4049     }
4050   } else {
4051     if (AdjustFunctionParmAndArgTypesForDeduction(*this, &TemplateParams,
4052                                                   FuncParam, InitType, Init,
4053                                                   TDF))
4054       return DAR_Failed;
4055 
4056     if (DeduceTemplateArgumentsByTypeMatch(*this, &TemplateParams, FuncParam,
4057                                            InitType, Info, Deduced, TDF))
4058       return DAR_Failed;
4059   }
4060 
4061   if (Deduced[0].getKind() != TemplateArgument::Type)
4062     return DAR_Failed;
4063 
4064   QualType DeducedType = Deduced[0].getAsType();
4065 
4066   if (InitList) {
4067     DeducedType = BuildStdInitializerList(DeducedType, Loc);
4068     if (DeducedType.isNull())
4069       return DAR_FailedAlreadyDiagnosed;
4070   }
4071 
4072   Result = SubstituteAutoTransform(*this, DeducedType).Apply(Type);
4073   if (Result.isNull())
4074    return DAR_FailedAlreadyDiagnosed;
4075 
4076   // Check that the deduced argument type is compatible with the original
4077   // argument type per C++ [temp.deduct.call]p4.
4078   if (!InitList && !Result.isNull() &&
4079       CheckOriginalCallArgDeduction(*this,
4080                                     Sema::OriginalCallArg(FuncParam,0,InitType),
4081                                     Result)) {
4082     Result = QualType();
4083     return DAR_Failed;
4084   }
4085 
4086   return DAR_Succeeded;
4087 }
4088 
4089 QualType Sema::SubstAutoType(QualType TypeWithAuto,
4090                              QualType TypeToReplaceAuto) {
4091   return SubstituteAutoTransform(*this, TypeToReplaceAuto).
4092                TransformType(TypeWithAuto);
4093 }
4094 
4095 TypeSourceInfo* Sema::SubstAutoTypeSourceInfo(TypeSourceInfo *TypeWithAuto,
4096                              QualType TypeToReplaceAuto) {
4097     return SubstituteAutoTransform(*this, TypeToReplaceAuto).
4098                TransformType(TypeWithAuto);
4099 }
4100 
4101 void Sema::DiagnoseAutoDeductionFailure(VarDecl *VDecl, Expr *Init) {
4102   if (isa<InitListExpr>(Init))
4103     Diag(VDecl->getLocation(),
4104          VDecl->isInitCapture()
4105              ? diag::err_init_capture_deduction_failure_from_init_list
4106              : diag::err_auto_var_deduction_failure_from_init_list)
4107       << VDecl->getDeclName() << VDecl->getType() << Init->getSourceRange();
4108   else
4109     Diag(VDecl->getLocation(),
4110          VDecl->isInitCapture() ? diag::err_init_capture_deduction_failure
4111                                 : diag::err_auto_var_deduction_failure)
4112       << VDecl->getDeclName() << VDecl->getType() << Init->getType()
4113       << Init->getSourceRange();
4114 }
4115 
4116 bool Sema::DeduceReturnType(FunctionDecl *FD, SourceLocation Loc,
4117                             bool Diagnose) {
4118   assert(FD->getReturnType()->isUndeducedType());
4119 
4120   if (FD->getTemplateInstantiationPattern())
4121     InstantiateFunctionDefinition(Loc, FD);
4122 
4123   bool StillUndeduced = FD->getReturnType()->isUndeducedType();
4124   if (StillUndeduced && Diagnose && !FD->isInvalidDecl()) {
4125     Diag(Loc, diag::err_auto_fn_used_before_defined) << FD;
4126     Diag(FD->getLocation(), diag::note_callee_decl) << FD;
4127   }
4128 
4129   return StillUndeduced;
4130 }
4131 
4132 static void
4133 MarkUsedTemplateParameters(ASTContext &Ctx, QualType T,
4134                            bool OnlyDeduced,
4135                            unsigned Level,
4136                            llvm::SmallBitVector &Deduced);
4137 
4138 /// \brief If this is a non-static member function,
4139 static void
4140 AddImplicitObjectParameterType(ASTContext &Context,
4141                                CXXMethodDecl *Method,
4142                                SmallVectorImpl<QualType> &ArgTypes) {
4143   // C++11 [temp.func.order]p3:
4144   //   [...] The new parameter is of type "reference to cv A," where cv are
4145   //   the cv-qualifiers of the function template (if any) and A is
4146   //   the class of which the function template is a member.
4147   //
4148   // The standard doesn't say explicitly, but we pick the appropriate kind of
4149   // reference type based on [over.match.funcs]p4.
4150   QualType ArgTy = Context.getTypeDeclType(Method->getParent());
4151   ArgTy = Context.getQualifiedType(ArgTy,
4152                         Qualifiers::fromCVRMask(Method->getTypeQualifiers()));
4153   if (Method->getRefQualifier() == RQ_RValue)
4154     ArgTy = Context.getRValueReferenceType(ArgTy);
4155   else
4156     ArgTy = Context.getLValueReferenceType(ArgTy);
4157   ArgTypes.push_back(ArgTy);
4158 }
4159 
4160 /// \brief Determine whether the function template \p FT1 is at least as
4161 /// specialized as \p FT2.
4162 static bool isAtLeastAsSpecializedAs(Sema &S,
4163                                      SourceLocation Loc,
4164                                      FunctionTemplateDecl *FT1,
4165                                      FunctionTemplateDecl *FT2,
4166                                      TemplatePartialOrderingContext TPOC,
4167                                      unsigned NumCallArguments1,
4168     SmallVectorImpl<RefParamPartialOrderingComparison> *RefParamComparisons) {
4169   FunctionDecl *FD1 = FT1->getTemplatedDecl();
4170   FunctionDecl *FD2 = FT2->getTemplatedDecl();
4171   const FunctionProtoType *Proto1 = FD1->getType()->getAs<FunctionProtoType>();
4172   const FunctionProtoType *Proto2 = FD2->getType()->getAs<FunctionProtoType>();
4173 
4174   assert(Proto1 && Proto2 && "Function templates must have prototypes");
4175   TemplateParameterList *TemplateParams = FT2->getTemplateParameters();
4176   SmallVector<DeducedTemplateArgument, 4> Deduced;
4177   Deduced.resize(TemplateParams->size());
4178 
4179   // C++0x [temp.deduct.partial]p3:
4180   //   The types used to determine the ordering depend on the context in which
4181   //   the partial ordering is done:
4182   TemplateDeductionInfo Info(Loc);
4183   SmallVector<QualType, 4> Args2;
4184   switch (TPOC) {
4185   case TPOC_Call: {
4186     //   - In the context of a function call, the function parameter types are
4187     //     used.
4188     CXXMethodDecl *Method1 = dyn_cast<CXXMethodDecl>(FD1);
4189     CXXMethodDecl *Method2 = dyn_cast<CXXMethodDecl>(FD2);
4190 
4191     // C++11 [temp.func.order]p3:
4192     //   [...] If only one of the function templates is a non-static
4193     //   member, that function template is considered to have a new
4194     //   first parameter inserted in its function parameter list. The
4195     //   new parameter is of type "reference to cv A," where cv are
4196     //   the cv-qualifiers of the function template (if any) and A is
4197     //   the class of which the function template is a member.
4198     //
4199     // Note that we interpret this to mean "if one of the function
4200     // templates is a non-static member and the other is a non-member";
4201     // otherwise, the ordering rules for static functions against non-static
4202     // functions don't make any sense.
4203     //
4204     // C++98/03 doesn't have this provision, so instead we drop the
4205     // first argument of the free function, which seems to match
4206     // existing practice.
4207     SmallVector<QualType, 4> Args1;
4208 
4209     unsigned Skip1 = 0, Skip2 = 0;
4210     unsigned NumComparedArguments = NumCallArguments1;
4211 
4212     if (!Method2 && Method1 && !Method1->isStatic()) {
4213       if (S.getLangOpts().CPlusPlus11) {
4214         // Compare 'this' from Method1 against first parameter from Method2.
4215         AddImplicitObjectParameterType(S.Context, Method1, Args1);
4216         ++NumComparedArguments;
4217       } else
4218         // Ignore first parameter from Method2.
4219         ++Skip2;
4220     } else if (!Method1 && Method2 && !Method2->isStatic()) {
4221       if (S.getLangOpts().CPlusPlus11)
4222         // Compare 'this' from Method2 against first parameter from Method1.
4223         AddImplicitObjectParameterType(S.Context, Method2, Args2);
4224       else
4225         // Ignore first parameter from Method1.
4226         ++Skip1;
4227     }
4228 
4229     Args1.insert(Args1.end(), Proto1->param_type_begin() + Skip1,
4230                  Proto1->param_type_end());
4231     Args2.insert(Args2.end(), Proto2->param_type_begin() + Skip2,
4232                  Proto2->param_type_end());
4233 
4234     // C++ [temp.func.order]p5:
4235     //   The presence of unused ellipsis and default arguments has no effect on
4236     //   the partial ordering of function templates.
4237     if (Args1.size() > NumComparedArguments)
4238       Args1.resize(NumComparedArguments);
4239     if (Args2.size() > NumComparedArguments)
4240       Args2.resize(NumComparedArguments);
4241     if (DeduceTemplateArguments(S, TemplateParams, Args2.data(), Args2.size(),
4242                                 Args1.data(), Args1.size(), Info, Deduced,
4243                                 TDF_None, /*PartialOrdering=*/true,
4244                                 RefParamComparisons))
4245         return false;
4246 
4247     break;
4248   }
4249 
4250   case TPOC_Conversion:
4251     //   - In the context of a call to a conversion operator, the return types
4252     //     of the conversion function templates are used.
4253     if (DeduceTemplateArgumentsByTypeMatch(
4254             S, TemplateParams, Proto2->getReturnType(), Proto1->getReturnType(),
4255             Info, Deduced, TDF_None,
4256             /*PartialOrdering=*/true, RefParamComparisons))
4257       return false;
4258     break;
4259 
4260   case TPOC_Other:
4261     //   - In other contexts (14.6.6.2) the function template's function type
4262     //     is used.
4263     if (DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
4264                                            FD2->getType(), FD1->getType(),
4265                                            Info, Deduced, TDF_None,
4266                                            /*PartialOrdering=*/true,
4267                                            RefParamComparisons))
4268       return false;
4269     break;
4270   }
4271 
4272   // C++0x [temp.deduct.partial]p11:
4273   //   In most cases, all template parameters must have values in order for
4274   //   deduction to succeed, but for partial ordering purposes a template
4275   //   parameter may remain without a value provided it is not used in the
4276   //   types being used for partial ordering. [ Note: a template parameter used
4277   //   in a non-deduced context is considered used. -end note]
4278   unsigned ArgIdx = 0, NumArgs = Deduced.size();
4279   for (; ArgIdx != NumArgs; ++ArgIdx)
4280     if (Deduced[ArgIdx].isNull())
4281       break;
4282 
4283   if (ArgIdx == NumArgs) {
4284     // All template arguments were deduced. FT1 is at least as specialized
4285     // as FT2.
4286     return true;
4287   }
4288 
4289   // Figure out which template parameters were used.
4290   llvm::SmallBitVector UsedParameters(TemplateParams->size());
4291   switch (TPOC) {
4292   case TPOC_Call:
4293     for (unsigned I = 0, N = Args2.size(); I != N; ++I)
4294       ::MarkUsedTemplateParameters(S.Context, Args2[I], false,
4295                                    TemplateParams->getDepth(),
4296                                    UsedParameters);
4297     break;
4298 
4299   case TPOC_Conversion:
4300     ::MarkUsedTemplateParameters(S.Context, Proto2->getReturnType(), false,
4301                                  TemplateParams->getDepth(), UsedParameters);
4302     break;
4303 
4304   case TPOC_Other:
4305     ::MarkUsedTemplateParameters(S.Context, FD2->getType(), false,
4306                                  TemplateParams->getDepth(),
4307                                  UsedParameters);
4308     break;
4309   }
4310 
4311   for (; ArgIdx != NumArgs; ++ArgIdx)
4312     // If this argument had no value deduced but was used in one of the types
4313     // used for partial ordering, then deduction fails.
4314     if (Deduced[ArgIdx].isNull() && UsedParameters[ArgIdx])
4315       return false;
4316 
4317   return true;
4318 }
4319 
4320 /// \brief Determine whether this a function template whose parameter-type-list
4321 /// ends with a function parameter pack.
4322 static bool isVariadicFunctionTemplate(FunctionTemplateDecl *FunTmpl) {
4323   FunctionDecl *Function = FunTmpl->getTemplatedDecl();
4324   unsigned NumParams = Function->getNumParams();
4325   if (NumParams == 0)
4326     return false;
4327 
4328   ParmVarDecl *Last = Function->getParamDecl(NumParams - 1);
4329   if (!Last->isParameterPack())
4330     return false;
4331 
4332   // Make sure that no previous parameter is a parameter pack.
4333   while (--NumParams > 0) {
4334     if (Function->getParamDecl(NumParams - 1)->isParameterPack())
4335       return false;
4336   }
4337 
4338   return true;
4339 }
4340 
4341 /// \brief Returns the more specialized function template according
4342 /// to the rules of function template partial ordering (C++ [temp.func.order]).
4343 ///
4344 /// \param FT1 the first function template
4345 ///
4346 /// \param FT2 the second function template
4347 ///
4348 /// \param TPOC the context in which we are performing partial ordering of
4349 /// function templates.
4350 ///
4351 /// \param NumCallArguments1 The number of arguments in the call to FT1, used
4352 /// only when \c TPOC is \c TPOC_Call.
4353 ///
4354 /// \param NumCallArguments2 The number of arguments in the call to FT2, used
4355 /// only when \c TPOC is \c TPOC_Call.
4356 ///
4357 /// \returns the more specialized function template. If neither
4358 /// template is more specialized, returns NULL.
4359 FunctionTemplateDecl *
4360 Sema::getMoreSpecializedTemplate(FunctionTemplateDecl *FT1,
4361                                  FunctionTemplateDecl *FT2,
4362                                  SourceLocation Loc,
4363                                  TemplatePartialOrderingContext TPOC,
4364                                  unsigned NumCallArguments1,
4365                                  unsigned NumCallArguments2) {
4366   SmallVector<RefParamPartialOrderingComparison, 4> RefParamComparisons;
4367   bool Better1 = isAtLeastAsSpecializedAs(*this, Loc, FT1, FT2, TPOC,
4368                                           NumCallArguments1, 0);
4369   bool Better2 = isAtLeastAsSpecializedAs(*this, Loc, FT2, FT1, TPOC,
4370                                           NumCallArguments2,
4371                                           &RefParamComparisons);
4372 
4373   if (Better1 != Better2) // We have a clear winner
4374     return Better1? FT1 : FT2;
4375 
4376   if (!Better1 && !Better2) // Neither is better than the other
4377     return 0;
4378 
4379   // C++0x [temp.deduct.partial]p10:
4380   //   If for each type being considered a given template is at least as
4381   //   specialized for all types and more specialized for some set of types and
4382   //   the other template is not more specialized for any types or is not at
4383   //   least as specialized for any types, then the given template is more
4384   //   specialized than the other template. Otherwise, neither template is more
4385   //   specialized than the other.
4386   Better1 = false;
4387   Better2 = false;
4388   for (unsigned I = 0, N = RefParamComparisons.size(); I != N; ++I) {
4389     // C++0x [temp.deduct.partial]p9:
4390     //   If, for a given type, deduction succeeds in both directions (i.e., the
4391     //   types are identical after the transformations above) and both P and A
4392     //   were reference types (before being replaced with the type referred to
4393     //   above):
4394 
4395     //     -- if the type from the argument template was an lvalue reference
4396     //        and the type from the parameter template was not, the argument
4397     //        type is considered to be more specialized than the other;
4398     //        otherwise,
4399     if (!RefParamComparisons[I].ArgIsRvalueRef &&
4400         RefParamComparisons[I].ParamIsRvalueRef) {
4401       Better2 = true;
4402       if (Better1)
4403         return 0;
4404       continue;
4405     } else if (!RefParamComparisons[I].ParamIsRvalueRef &&
4406                RefParamComparisons[I].ArgIsRvalueRef) {
4407       Better1 = true;
4408       if (Better2)
4409         return 0;
4410       continue;
4411     }
4412 
4413     //     -- if the type from the argument template is more cv-qualified than
4414     //        the type from the parameter template (as described above), the
4415     //        argument type is considered to be more specialized than the
4416     //        other; otherwise,
4417     switch (RefParamComparisons[I].Qualifiers) {
4418     case NeitherMoreQualified:
4419       break;
4420 
4421     case ParamMoreQualified:
4422       Better1 = true;
4423       if (Better2)
4424         return 0;
4425       continue;
4426 
4427     case ArgMoreQualified:
4428       Better2 = true;
4429       if (Better1)
4430         return 0;
4431       continue;
4432     }
4433 
4434     //     -- neither type is more specialized than the other.
4435   }
4436 
4437   assert(!(Better1 && Better2) && "Should have broken out in the loop above");
4438   if (Better1)
4439     return FT1;
4440   else if (Better2)
4441     return FT2;
4442 
4443   // FIXME: This mimics what GCC implements, but doesn't match up with the
4444   // proposed resolution for core issue 692. This area needs to be sorted out,
4445   // but for now we attempt to maintain compatibility.
4446   bool Variadic1 = isVariadicFunctionTemplate(FT1);
4447   bool Variadic2 = isVariadicFunctionTemplate(FT2);
4448   if (Variadic1 != Variadic2)
4449     return Variadic1? FT2 : FT1;
4450 
4451   return 0;
4452 }
4453 
4454 /// \brief Determine if the two templates are equivalent.
4455 static bool isSameTemplate(TemplateDecl *T1, TemplateDecl *T2) {
4456   if (T1 == T2)
4457     return true;
4458 
4459   if (!T1 || !T2)
4460     return false;
4461 
4462   return T1->getCanonicalDecl() == T2->getCanonicalDecl();
4463 }
4464 
4465 /// \brief Retrieve the most specialized of the given function template
4466 /// specializations.
4467 ///
4468 /// \param SpecBegin the start iterator of the function template
4469 /// specializations that we will be comparing.
4470 ///
4471 /// \param SpecEnd the end iterator of the function template
4472 /// specializations, paired with \p SpecBegin.
4473 ///
4474 /// \param Loc the location where the ambiguity or no-specializations
4475 /// diagnostic should occur.
4476 ///
4477 /// \param NoneDiag partial diagnostic used to diagnose cases where there are
4478 /// no matching candidates.
4479 ///
4480 /// \param AmbigDiag partial diagnostic used to diagnose an ambiguity, if one
4481 /// occurs.
4482 ///
4483 /// \param CandidateDiag partial diagnostic used for each function template
4484 /// specialization that is a candidate in the ambiguous ordering. One parameter
4485 /// in this diagnostic should be unbound, which will correspond to the string
4486 /// describing the template arguments for the function template specialization.
4487 ///
4488 /// \returns the most specialized function template specialization, if
4489 /// found. Otherwise, returns SpecEnd.
4490 UnresolvedSetIterator Sema::getMostSpecialized(
4491     UnresolvedSetIterator SpecBegin, UnresolvedSetIterator SpecEnd,
4492     TemplateSpecCandidateSet &FailedCandidates,
4493     SourceLocation Loc, const PartialDiagnostic &NoneDiag,
4494     const PartialDiagnostic &AmbigDiag, const PartialDiagnostic &CandidateDiag,
4495     bool Complain, QualType TargetType) {
4496   if (SpecBegin == SpecEnd) {
4497     if (Complain) {
4498       Diag(Loc, NoneDiag);
4499       FailedCandidates.NoteCandidates(*this, Loc);
4500     }
4501     return SpecEnd;
4502   }
4503 
4504   if (SpecBegin + 1 == SpecEnd)
4505     return SpecBegin;
4506 
4507   // Find the function template that is better than all of the templates it
4508   // has been compared to.
4509   UnresolvedSetIterator Best = SpecBegin;
4510   FunctionTemplateDecl *BestTemplate
4511     = cast<FunctionDecl>(*Best)->getPrimaryTemplate();
4512   assert(BestTemplate && "Not a function template specialization?");
4513   for (UnresolvedSetIterator I = SpecBegin + 1; I != SpecEnd; ++I) {
4514     FunctionTemplateDecl *Challenger
4515       = cast<FunctionDecl>(*I)->getPrimaryTemplate();
4516     assert(Challenger && "Not a function template specialization?");
4517     if (isSameTemplate(getMoreSpecializedTemplate(BestTemplate, Challenger,
4518                                                   Loc, TPOC_Other, 0, 0),
4519                        Challenger)) {
4520       Best = I;
4521       BestTemplate = Challenger;
4522     }
4523   }
4524 
4525   // Make sure that the "best" function template is more specialized than all
4526   // of the others.
4527   bool Ambiguous = false;
4528   for (UnresolvedSetIterator I = SpecBegin; I != SpecEnd; ++I) {
4529     FunctionTemplateDecl *Challenger
4530       = cast<FunctionDecl>(*I)->getPrimaryTemplate();
4531     if (I != Best &&
4532         !isSameTemplate(getMoreSpecializedTemplate(BestTemplate, Challenger,
4533                                                    Loc, TPOC_Other, 0, 0),
4534                         BestTemplate)) {
4535       Ambiguous = true;
4536       break;
4537     }
4538   }
4539 
4540   if (!Ambiguous) {
4541     // We found an answer. Return it.
4542     return Best;
4543   }
4544 
4545   // Diagnose the ambiguity.
4546   if (Complain) {
4547     Diag(Loc, AmbigDiag);
4548 
4549     // FIXME: Can we order the candidates in some sane way?
4550     for (UnresolvedSetIterator I = SpecBegin; I != SpecEnd; ++I) {
4551       PartialDiagnostic PD = CandidateDiag;
4552       PD << getTemplateArgumentBindingsText(
4553           cast<FunctionDecl>(*I)->getPrimaryTemplate()->getTemplateParameters(),
4554                     *cast<FunctionDecl>(*I)->getTemplateSpecializationArgs());
4555       if (!TargetType.isNull())
4556         HandleFunctionTypeMismatch(PD, cast<FunctionDecl>(*I)->getType(),
4557                                    TargetType);
4558       Diag((*I)->getLocation(), PD);
4559     }
4560   }
4561 
4562   return SpecEnd;
4563 }
4564 
4565 /// \brief Returns the more specialized class template partial specialization
4566 /// according to the rules of partial ordering of class template partial
4567 /// specializations (C++ [temp.class.order]).
4568 ///
4569 /// \param PS1 the first class template partial specialization
4570 ///
4571 /// \param PS2 the second class template partial specialization
4572 ///
4573 /// \returns the more specialized class template partial specialization. If
4574 /// neither partial specialization is more specialized, returns NULL.
4575 ClassTemplatePartialSpecializationDecl *
4576 Sema::getMoreSpecializedPartialSpecialization(
4577                                   ClassTemplatePartialSpecializationDecl *PS1,
4578                                   ClassTemplatePartialSpecializationDecl *PS2,
4579                                               SourceLocation Loc) {
4580   // C++ [temp.class.order]p1:
4581   //   For two class template partial specializations, the first is at least as
4582   //   specialized as the second if, given the following rewrite to two
4583   //   function templates, the first function template is at least as
4584   //   specialized as the second according to the ordering rules for function
4585   //   templates (14.6.6.2):
4586   //     - the first function template has the same template parameters as the
4587   //       first partial specialization and has a single function parameter
4588   //       whose type is a class template specialization with the template
4589   //       arguments of the first partial specialization, and
4590   //     - the second function template has the same template parameters as the
4591   //       second partial specialization and has a single function parameter
4592   //       whose type is a class template specialization with the template
4593   //       arguments of the second partial specialization.
4594   //
4595   // Rather than synthesize function templates, we merely perform the
4596   // equivalent partial ordering by performing deduction directly on
4597   // the template arguments of the class template partial
4598   // specializations. This computation is slightly simpler than the
4599   // general problem of function template partial ordering, because
4600   // class template partial specializations are more constrained. We
4601   // know that every template parameter is deducible from the class
4602   // template partial specialization's template arguments, for
4603   // example.
4604   SmallVector<DeducedTemplateArgument, 4> Deduced;
4605   TemplateDeductionInfo Info(Loc);
4606 
4607   QualType PT1 = PS1->getInjectedSpecializationType();
4608   QualType PT2 = PS2->getInjectedSpecializationType();
4609 
4610   // Determine whether PS1 is at least as specialized as PS2
4611   Deduced.resize(PS2->getTemplateParameters()->size());
4612   bool Better1 = !DeduceTemplateArgumentsByTypeMatch(*this,
4613                                             PS2->getTemplateParameters(),
4614                                             PT2, PT1, Info, Deduced, TDF_None,
4615                                             /*PartialOrdering=*/true,
4616                                             /*RefParamComparisons=*/0);
4617   if (Better1) {
4618     SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(),Deduced.end());
4619     InstantiatingTemplate Inst(*this, Loc, PS2, DeducedArgs, Info);
4620     Better1 = !::FinishTemplateArgumentDeduction(
4621         *this, PS2, PS1->getTemplateArgs(), Deduced, Info);
4622   }
4623 
4624   // Determine whether PS2 is at least as specialized as PS1
4625   Deduced.clear();
4626   Deduced.resize(PS1->getTemplateParameters()->size());
4627   bool Better2 = !DeduceTemplateArgumentsByTypeMatch(
4628       *this, PS1->getTemplateParameters(), PT1, PT2, Info, Deduced, TDF_None,
4629       /*PartialOrdering=*/true,
4630       /*RefParamComparisons=*/0);
4631   if (Better2) {
4632     SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(),
4633                                                  Deduced.end());
4634     InstantiatingTemplate Inst(*this, Loc, PS1, DeducedArgs, Info);
4635     Better2 = !::FinishTemplateArgumentDeduction(
4636         *this, PS1, PS2->getTemplateArgs(), Deduced, Info);
4637   }
4638 
4639   if (Better1 == Better2)
4640     return 0;
4641 
4642   return Better1 ? PS1 : PS2;
4643 }
4644 
4645 /// TODO: Unify with ClassTemplatePartialSpecializationDecl version?
4646 ///       May require unifying ClassTemplate(Partial)SpecializationDecl and
4647 ///        VarTemplate(Partial)SpecializationDecl with a new data
4648 ///        structure Template(Partial)SpecializationDecl, and
4649 ///        using Template(Partial)SpecializationDecl as input type.
4650 VarTemplatePartialSpecializationDecl *
4651 Sema::getMoreSpecializedPartialSpecialization(
4652     VarTemplatePartialSpecializationDecl *PS1,
4653     VarTemplatePartialSpecializationDecl *PS2, SourceLocation Loc) {
4654   SmallVector<DeducedTemplateArgument, 4> Deduced;
4655   TemplateDeductionInfo Info(Loc);
4656 
4657   assert(PS1->getSpecializedTemplate() == PS2->getSpecializedTemplate() &&
4658          "the partial specializations being compared should specialize"
4659          " the same template.");
4660   TemplateName Name(PS1->getSpecializedTemplate());
4661   TemplateName CanonTemplate = Context.getCanonicalTemplateName(Name);
4662   QualType PT1 = Context.getTemplateSpecializationType(
4663       CanonTemplate, PS1->getTemplateArgs().data(),
4664       PS1->getTemplateArgs().size());
4665   QualType PT2 = Context.getTemplateSpecializationType(
4666       CanonTemplate, PS2->getTemplateArgs().data(),
4667       PS2->getTemplateArgs().size());
4668 
4669   // Determine whether PS1 is at least as specialized as PS2
4670   Deduced.resize(PS2->getTemplateParameters()->size());
4671   bool Better1 = !DeduceTemplateArgumentsByTypeMatch(
4672       *this, PS2->getTemplateParameters(), PT2, PT1, Info, Deduced, TDF_None,
4673       /*PartialOrdering=*/true,
4674       /*RefParamComparisons=*/0);
4675   if (Better1) {
4676     SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(),
4677                                                  Deduced.end());
4678     InstantiatingTemplate Inst(*this, Loc, PS2, DeducedArgs, Info);
4679     Better1 = !::FinishTemplateArgumentDeduction(*this, PS2,
4680                                                  PS1->getTemplateArgs(),
4681                                                  Deduced, Info);
4682   }
4683 
4684   // Determine whether PS2 is at least as specialized as PS1
4685   Deduced.clear();
4686   Deduced.resize(PS1->getTemplateParameters()->size());
4687   bool Better2 = !DeduceTemplateArgumentsByTypeMatch(*this,
4688                                             PS1->getTemplateParameters(),
4689                                             PT1, PT2, Info, Deduced, TDF_None,
4690                                             /*PartialOrdering=*/true,
4691                                             /*RefParamComparisons=*/0);
4692   if (Better2) {
4693     SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(),Deduced.end());
4694     InstantiatingTemplate Inst(*this, Loc, PS1, DeducedArgs, Info);
4695     Better2 = !::FinishTemplateArgumentDeduction(*this, PS1,
4696                                                  PS2->getTemplateArgs(),
4697                                                  Deduced, Info);
4698   }
4699 
4700   if (Better1 == Better2)
4701     return 0;
4702 
4703   return Better1? PS1 : PS2;
4704 }
4705 
4706 static void
4707 MarkUsedTemplateParameters(ASTContext &Ctx,
4708                            const TemplateArgument &TemplateArg,
4709                            bool OnlyDeduced,
4710                            unsigned Depth,
4711                            llvm::SmallBitVector &Used);
4712 
4713 /// \brief Mark the template parameters that are used by the given
4714 /// expression.
4715 static void
4716 MarkUsedTemplateParameters(ASTContext &Ctx,
4717                            const Expr *E,
4718                            bool OnlyDeduced,
4719                            unsigned Depth,
4720                            llvm::SmallBitVector &Used) {
4721   // We can deduce from a pack expansion.
4722   if (const PackExpansionExpr *Expansion = dyn_cast<PackExpansionExpr>(E))
4723     E = Expansion->getPattern();
4724 
4725   // Skip through any implicit casts we added while type-checking, and any
4726   // substitutions performed by template alias expansion.
4727   while (1) {
4728     if (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E))
4729       E = ICE->getSubExpr();
4730     else if (const SubstNonTypeTemplateParmExpr *Subst =
4731                dyn_cast<SubstNonTypeTemplateParmExpr>(E))
4732       E = Subst->getReplacement();
4733     else
4734       break;
4735   }
4736 
4737   // FIXME: if !OnlyDeduced, we have to walk the whole subexpression to
4738   // find other occurrences of template parameters.
4739   const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E);
4740   if (!DRE)
4741     return;
4742 
4743   const NonTypeTemplateParmDecl *NTTP
4744     = dyn_cast<NonTypeTemplateParmDecl>(DRE->getDecl());
4745   if (!NTTP)
4746     return;
4747 
4748   if (NTTP->getDepth() == Depth)
4749     Used[NTTP->getIndex()] = true;
4750 }
4751 
4752 /// \brief Mark the template parameters that are used by the given
4753 /// nested name specifier.
4754 static void
4755 MarkUsedTemplateParameters(ASTContext &Ctx,
4756                            NestedNameSpecifier *NNS,
4757                            bool OnlyDeduced,
4758                            unsigned Depth,
4759                            llvm::SmallBitVector &Used) {
4760   if (!NNS)
4761     return;
4762 
4763   MarkUsedTemplateParameters(Ctx, NNS->getPrefix(), OnlyDeduced, Depth,
4764                              Used);
4765   MarkUsedTemplateParameters(Ctx, QualType(NNS->getAsType(), 0),
4766                              OnlyDeduced, Depth, Used);
4767 }
4768 
4769 /// \brief Mark the template parameters that are used by the given
4770 /// template name.
4771 static void
4772 MarkUsedTemplateParameters(ASTContext &Ctx,
4773                            TemplateName Name,
4774                            bool OnlyDeduced,
4775                            unsigned Depth,
4776                            llvm::SmallBitVector &Used) {
4777   if (TemplateDecl *Template = Name.getAsTemplateDecl()) {
4778     if (TemplateTemplateParmDecl *TTP
4779           = dyn_cast<TemplateTemplateParmDecl>(Template)) {
4780       if (TTP->getDepth() == Depth)
4781         Used[TTP->getIndex()] = true;
4782     }
4783     return;
4784   }
4785 
4786   if (QualifiedTemplateName *QTN = Name.getAsQualifiedTemplateName())
4787     MarkUsedTemplateParameters(Ctx, QTN->getQualifier(), OnlyDeduced,
4788                                Depth, Used);
4789   if (DependentTemplateName *DTN = Name.getAsDependentTemplateName())
4790     MarkUsedTemplateParameters(Ctx, DTN->getQualifier(), OnlyDeduced,
4791                                Depth, Used);
4792 }
4793 
4794 /// \brief Mark the template parameters that are used by the given
4795 /// type.
4796 static void
4797 MarkUsedTemplateParameters(ASTContext &Ctx, QualType T,
4798                            bool OnlyDeduced,
4799                            unsigned Depth,
4800                            llvm::SmallBitVector &Used) {
4801   if (T.isNull())
4802     return;
4803 
4804   // Non-dependent types have nothing deducible
4805   if (!T->isDependentType())
4806     return;
4807 
4808   T = Ctx.getCanonicalType(T);
4809   switch (T->getTypeClass()) {
4810   case Type::Pointer:
4811     MarkUsedTemplateParameters(Ctx,
4812                                cast<PointerType>(T)->getPointeeType(),
4813                                OnlyDeduced,
4814                                Depth,
4815                                Used);
4816     break;
4817 
4818   case Type::BlockPointer:
4819     MarkUsedTemplateParameters(Ctx,
4820                                cast<BlockPointerType>(T)->getPointeeType(),
4821                                OnlyDeduced,
4822                                Depth,
4823                                Used);
4824     break;
4825 
4826   case Type::LValueReference:
4827   case Type::RValueReference:
4828     MarkUsedTemplateParameters(Ctx,
4829                                cast<ReferenceType>(T)->getPointeeType(),
4830                                OnlyDeduced,
4831                                Depth,
4832                                Used);
4833     break;
4834 
4835   case Type::MemberPointer: {
4836     const MemberPointerType *MemPtr = cast<MemberPointerType>(T.getTypePtr());
4837     MarkUsedTemplateParameters(Ctx, MemPtr->getPointeeType(), OnlyDeduced,
4838                                Depth, Used);
4839     MarkUsedTemplateParameters(Ctx, QualType(MemPtr->getClass(), 0),
4840                                OnlyDeduced, Depth, Used);
4841     break;
4842   }
4843 
4844   case Type::DependentSizedArray:
4845     MarkUsedTemplateParameters(Ctx,
4846                                cast<DependentSizedArrayType>(T)->getSizeExpr(),
4847                                OnlyDeduced, Depth, Used);
4848     // Fall through to check the element type
4849 
4850   case Type::ConstantArray:
4851   case Type::IncompleteArray:
4852     MarkUsedTemplateParameters(Ctx,
4853                                cast<ArrayType>(T)->getElementType(),
4854                                OnlyDeduced, Depth, Used);
4855     break;
4856 
4857   case Type::Vector:
4858   case Type::ExtVector:
4859     MarkUsedTemplateParameters(Ctx,
4860                                cast<VectorType>(T)->getElementType(),
4861                                OnlyDeduced, Depth, Used);
4862     break;
4863 
4864   case Type::DependentSizedExtVector: {
4865     const DependentSizedExtVectorType *VecType
4866       = cast<DependentSizedExtVectorType>(T);
4867     MarkUsedTemplateParameters(Ctx, VecType->getElementType(), OnlyDeduced,
4868                                Depth, Used);
4869     MarkUsedTemplateParameters(Ctx, VecType->getSizeExpr(), OnlyDeduced,
4870                                Depth, Used);
4871     break;
4872   }
4873 
4874   case Type::FunctionProto: {
4875     const FunctionProtoType *Proto = cast<FunctionProtoType>(T);
4876     MarkUsedTemplateParameters(Ctx, Proto->getReturnType(), OnlyDeduced, Depth,
4877                                Used);
4878     for (unsigned I = 0, N = Proto->getNumParams(); I != N; ++I)
4879       MarkUsedTemplateParameters(Ctx, Proto->getParamType(I), OnlyDeduced,
4880                                  Depth, Used);
4881     break;
4882   }
4883 
4884   case Type::TemplateTypeParm: {
4885     const TemplateTypeParmType *TTP = cast<TemplateTypeParmType>(T);
4886     if (TTP->getDepth() == Depth)
4887       Used[TTP->getIndex()] = true;
4888     break;
4889   }
4890 
4891   case Type::SubstTemplateTypeParmPack: {
4892     const SubstTemplateTypeParmPackType *Subst
4893       = cast<SubstTemplateTypeParmPackType>(T);
4894     MarkUsedTemplateParameters(Ctx,
4895                                QualType(Subst->getReplacedParameter(), 0),
4896                                OnlyDeduced, Depth, Used);
4897     MarkUsedTemplateParameters(Ctx, Subst->getArgumentPack(),
4898                                OnlyDeduced, Depth, Used);
4899     break;
4900   }
4901 
4902   case Type::InjectedClassName:
4903     T = cast<InjectedClassNameType>(T)->getInjectedSpecializationType();
4904     // fall through
4905 
4906   case Type::TemplateSpecialization: {
4907     const TemplateSpecializationType *Spec
4908       = cast<TemplateSpecializationType>(T);
4909     MarkUsedTemplateParameters(Ctx, Spec->getTemplateName(), OnlyDeduced,
4910                                Depth, Used);
4911 
4912     // C++0x [temp.deduct.type]p9:
4913     //   If the template argument list of P contains a pack expansion that is not
4914     //   the last template argument, the entire template argument list is a
4915     //   non-deduced context.
4916     if (OnlyDeduced &&
4917         hasPackExpansionBeforeEnd(Spec->getArgs(), Spec->getNumArgs()))
4918       break;
4919 
4920     for (unsigned I = 0, N = Spec->getNumArgs(); I != N; ++I)
4921       MarkUsedTemplateParameters(Ctx, Spec->getArg(I), OnlyDeduced, Depth,
4922                                  Used);
4923     break;
4924   }
4925 
4926   case Type::Complex:
4927     if (!OnlyDeduced)
4928       MarkUsedTemplateParameters(Ctx,
4929                                  cast<ComplexType>(T)->getElementType(),
4930                                  OnlyDeduced, Depth, Used);
4931     break;
4932 
4933   case Type::Atomic:
4934     if (!OnlyDeduced)
4935       MarkUsedTemplateParameters(Ctx,
4936                                  cast<AtomicType>(T)->getValueType(),
4937                                  OnlyDeduced, Depth, Used);
4938     break;
4939 
4940   case Type::DependentName:
4941     if (!OnlyDeduced)
4942       MarkUsedTemplateParameters(Ctx,
4943                                  cast<DependentNameType>(T)->getQualifier(),
4944                                  OnlyDeduced, Depth, Used);
4945     break;
4946 
4947   case Type::DependentTemplateSpecialization: {
4948     const DependentTemplateSpecializationType *Spec
4949       = cast<DependentTemplateSpecializationType>(T);
4950     if (!OnlyDeduced)
4951       MarkUsedTemplateParameters(Ctx, Spec->getQualifier(),
4952                                  OnlyDeduced, Depth, Used);
4953 
4954     // C++0x [temp.deduct.type]p9:
4955     //   If the template argument list of P contains a pack expansion that is not
4956     //   the last template argument, the entire template argument list is a
4957     //   non-deduced context.
4958     if (OnlyDeduced &&
4959         hasPackExpansionBeforeEnd(Spec->getArgs(), Spec->getNumArgs()))
4960       break;
4961 
4962     for (unsigned I = 0, N = Spec->getNumArgs(); I != N; ++I)
4963       MarkUsedTemplateParameters(Ctx, Spec->getArg(I), OnlyDeduced, Depth,
4964                                  Used);
4965     break;
4966   }
4967 
4968   case Type::TypeOf:
4969     if (!OnlyDeduced)
4970       MarkUsedTemplateParameters(Ctx,
4971                                  cast<TypeOfType>(T)->getUnderlyingType(),
4972                                  OnlyDeduced, Depth, Used);
4973     break;
4974 
4975   case Type::TypeOfExpr:
4976     if (!OnlyDeduced)
4977       MarkUsedTemplateParameters(Ctx,
4978                                  cast<TypeOfExprType>(T)->getUnderlyingExpr(),
4979                                  OnlyDeduced, Depth, Used);
4980     break;
4981 
4982   case Type::Decltype:
4983     if (!OnlyDeduced)
4984       MarkUsedTemplateParameters(Ctx,
4985                                  cast<DecltypeType>(T)->getUnderlyingExpr(),
4986                                  OnlyDeduced, Depth, Used);
4987     break;
4988 
4989   case Type::UnaryTransform:
4990     if (!OnlyDeduced)
4991       MarkUsedTemplateParameters(Ctx,
4992                                cast<UnaryTransformType>(T)->getUnderlyingType(),
4993                                  OnlyDeduced, Depth, Used);
4994     break;
4995 
4996   case Type::PackExpansion:
4997     MarkUsedTemplateParameters(Ctx,
4998                                cast<PackExpansionType>(T)->getPattern(),
4999                                OnlyDeduced, Depth, Used);
5000     break;
5001 
5002   case Type::Auto:
5003     MarkUsedTemplateParameters(Ctx,
5004                                cast<AutoType>(T)->getDeducedType(),
5005                                OnlyDeduced, Depth, Used);
5006 
5007   // None of these types have any template parameters in them.
5008   case Type::Builtin:
5009   case Type::VariableArray:
5010   case Type::FunctionNoProto:
5011   case Type::Record:
5012   case Type::Enum:
5013   case Type::ObjCInterface:
5014   case Type::ObjCObject:
5015   case Type::ObjCObjectPointer:
5016   case Type::UnresolvedUsing:
5017 #define TYPE(Class, Base)
5018 #define ABSTRACT_TYPE(Class, Base)
5019 #define DEPENDENT_TYPE(Class, Base)
5020 #define NON_CANONICAL_TYPE(Class, Base) case Type::Class:
5021 #include "clang/AST/TypeNodes.def"
5022     break;
5023   }
5024 }
5025 
5026 /// \brief Mark the template parameters that are used by this
5027 /// template argument.
5028 static void
5029 MarkUsedTemplateParameters(ASTContext &Ctx,
5030                            const TemplateArgument &TemplateArg,
5031                            bool OnlyDeduced,
5032                            unsigned Depth,
5033                            llvm::SmallBitVector &Used) {
5034   switch (TemplateArg.getKind()) {
5035   case TemplateArgument::Null:
5036   case TemplateArgument::Integral:
5037   case TemplateArgument::Declaration:
5038     break;
5039 
5040   case TemplateArgument::NullPtr:
5041     MarkUsedTemplateParameters(Ctx, TemplateArg.getNullPtrType(), OnlyDeduced,
5042                                Depth, Used);
5043     break;
5044 
5045   case TemplateArgument::Type:
5046     MarkUsedTemplateParameters(Ctx, TemplateArg.getAsType(), OnlyDeduced,
5047                                Depth, Used);
5048     break;
5049 
5050   case TemplateArgument::Template:
5051   case TemplateArgument::TemplateExpansion:
5052     MarkUsedTemplateParameters(Ctx,
5053                                TemplateArg.getAsTemplateOrTemplatePattern(),
5054                                OnlyDeduced, Depth, Used);
5055     break;
5056 
5057   case TemplateArgument::Expression:
5058     MarkUsedTemplateParameters(Ctx, TemplateArg.getAsExpr(), OnlyDeduced,
5059                                Depth, Used);
5060     break;
5061 
5062   case TemplateArgument::Pack:
5063     for (TemplateArgument::pack_iterator P = TemplateArg.pack_begin(),
5064                                       PEnd = TemplateArg.pack_end();
5065          P != PEnd; ++P)
5066       MarkUsedTemplateParameters(Ctx, *P, OnlyDeduced, Depth, Used);
5067     break;
5068   }
5069 }
5070 
5071 /// \brief Mark which template parameters can be deduced from a given
5072 /// template argument list.
5073 ///
5074 /// \param TemplateArgs the template argument list from which template
5075 /// parameters will be deduced.
5076 ///
5077 /// \param Used a bit vector whose elements will be set to \c true
5078 /// to indicate when the corresponding template parameter will be
5079 /// deduced.
5080 void
5081 Sema::MarkUsedTemplateParameters(const TemplateArgumentList &TemplateArgs,
5082                                  bool OnlyDeduced, unsigned Depth,
5083                                  llvm::SmallBitVector &Used) {
5084   // C++0x [temp.deduct.type]p9:
5085   //   If the template argument list of P contains a pack expansion that is not
5086   //   the last template argument, the entire template argument list is a
5087   //   non-deduced context.
5088   if (OnlyDeduced &&
5089       hasPackExpansionBeforeEnd(TemplateArgs.data(), TemplateArgs.size()))
5090     return;
5091 
5092   for (unsigned I = 0, N = TemplateArgs.size(); I != N; ++I)
5093     ::MarkUsedTemplateParameters(Context, TemplateArgs[I], OnlyDeduced,
5094                                  Depth, Used);
5095 }
5096 
5097 /// \brief Marks all of the template parameters that will be deduced by a
5098 /// call to the given function template.
5099 void
5100 Sema::MarkDeducedTemplateParameters(ASTContext &Ctx,
5101                                     const FunctionTemplateDecl *FunctionTemplate,
5102                                     llvm::SmallBitVector &Deduced) {
5103   TemplateParameterList *TemplateParams
5104     = FunctionTemplate->getTemplateParameters();
5105   Deduced.clear();
5106   Deduced.resize(TemplateParams->size());
5107 
5108   FunctionDecl *Function = FunctionTemplate->getTemplatedDecl();
5109   for (unsigned I = 0, N = Function->getNumParams(); I != N; ++I)
5110     ::MarkUsedTemplateParameters(Ctx, Function->getParamDecl(I)->getType(),
5111                                  true, TemplateParams->getDepth(), Deduced);
5112 }
5113 
5114 bool hasDeducibleTemplateParameters(Sema &S,
5115                                     FunctionTemplateDecl *FunctionTemplate,
5116                                     QualType T) {
5117   if (!T->isDependentType())
5118     return false;
5119 
5120   TemplateParameterList *TemplateParams
5121     = FunctionTemplate->getTemplateParameters();
5122   llvm::SmallBitVector Deduced(TemplateParams->size());
5123   ::MarkUsedTemplateParameters(S.Context, T, true, TemplateParams->getDepth(),
5124                                Deduced);
5125 
5126   return Deduced.any();
5127 }
5128