1 //===- SemaTemplateDeduction.cpp - Template Argument Deduction ------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file implements C++ template argument deduction.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "clang/Sema/TemplateDeduction.h"
14 #include "TreeTransform.h"
15 #include "TypeLocBuilder.h"
16 #include "clang/AST/ASTContext.h"
17 #include "clang/AST/ASTLambda.h"
18 #include "clang/AST/Decl.h"
19 #include "clang/AST/DeclAccessPair.h"
20 #include "clang/AST/DeclBase.h"
21 #include "clang/AST/DeclCXX.h"
22 #include "clang/AST/DeclTemplate.h"
23 #include "clang/AST/DeclarationName.h"
24 #include "clang/AST/Expr.h"
25 #include "clang/AST/ExprCXX.h"
26 #include "clang/AST/NestedNameSpecifier.h"
27 #include "clang/AST/RecursiveASTVisitor.h"
28 #include "clang/AST/TemplateBase.h"
29 #include "clang/AST/TemplateName.h"
30 #include "clang/AST/Type.h"
31 #include "clang/AST/TypeLoc.h"
32 #include "clang/AST/UnresolvedSet.h"
33 #include "clang/Basic/AddressSpaces.h"
34 #include "clang/Basic/ExceptionSpecificationType.h"
35 #include "clang/Basic/LLVM.h"
36 #include "clang/Basic/LangOptions.h"
37 #include "clang/Basic/PartialDiagnostic.h"
38 #include "clang/Basic/SourceLocation.h"
39 #include "clang/Basic/Specifiers.h"
40 #include "clang/Sema/Ownership.h"
41 #include "clang/Sema/Sema.h"
42 #include "clang/Sema/Template.h"
43 #include "llvm/ADT/APInt.h"
44 #include "llvm/ADT/APSInt.h"
45 #include "llvm/ADT/ArrayRef.h"
46 #include "llvm/ADT/DenseMap.h"
47 #include "llvm/ADT/FoldingSet.h"
48 #include "llvm/ADT/Optional.h"
49 #include "llvm/ADT/SmallBitVector.h"
50 #include "llvm/ADT/SmallPtrSet.h"
51 #include "llvm/ADT/SmallVector.h"
52 #include "llvm/Support/Casting.h"
53 #include "llvm/Support/Compiler.h"
54 #include "llvm/Support/ErrorHandling.h"
55 #include <algorithm>
56 #include <cassert>
57 #include <tuple>
58 #include <utility>
59 
60 namespace clang {
61 
62   /// Various flags that control template argument deduction.
63   ///
64   /// These flags can be bitwise-OR'd together.
65   enum TemplateDeductionFlags {
66     /// No template argument deduction flags, which indicates the
67     /// strictest results for template argument deduction (as used for, e.g.,
68     /// matching class template partial specializations).
69     TDF_None = 0,
70 
71     /// Within template argument deduction from a function call, we are
72     /// matching with a parameter type for which the original parameter was
73     /// a reference.
74     TDF_ParamWithReferenceType = 0x1,
75 
76     /// Within template argument deduction from a function call, we
77     /// are matching in a case where we ignore cv-qualifiers.
78     TDF_IgnoreQualifiers = 0x02,
79 
80     /// Within template argument deduction from a function call,
81     /// we are matching in a case where we can perform template argument
82     /// deduction from a template-id of a derived class of the argument type.
83     TDF_DerivedClass = 0x04,
84 
85     /// Allow non-dependent types to differ, e.g., when performing
86     /// template argument deduction from a function call where conversions
87     /// may apply.
88     TDF_SkipNonDependent = 0x08,
89 
90     /// Whether we are performing template argument deduction for
91     /// parameters and arguments in a top-level template argument
92     TDF_TopLevelParameterTypeList = 0x10,
93 
94     /// Within template argument deduction from overload resolution per
95     /// C++ [over.over] allow matching function types that are compatible in
96     /// terms of noreturn and default calling convention adjustments, or
97     /// similarly matching a declared template specialization against a
98     /// possible template, per C++ [temp.deduct.decl]. In either case, permit
99     /// deduction where the parameter is a function type that can be converted
100     /// to the argument type.
101     TDF_AllowCompatibleFunctionType = 0x20,
102 
103     /// Within template argument deduction for a conversion function, we are
104     /// matching with an argument type for which the original argument was
105     /// a reference.
106     TDF_ArgWithReferenceType = 0x40,
107   };
108 }
109 
110 using namespace clang;
111 using namespace sema;
112 
113 /// Compare two APSInts, extending and switching the sign as
114 /// necessary to compare their values regardless of underlying type.
115 static bool hasSameExtendedValue(llvm::APSInt X, llvm::APSInt Y) {
116   if (Y.getBitWidth() > X.getBitWidth())
117     X = X.extend(Y.getBitWidth());
118   else if (Y.getBitWidth() < X.getBitWidth())
119     Y = Y.extend(X.getBitWidth());
120 
121   // If there is a signedness mismatch, correct it.
122   if (X.isSigned() != Y.isSigned()) {
123     // If the signed value is negative, then the values cannot be the same.
124     if ((Y.isSigned() && Y.isNegative()) || (X.isSigned() && X.isNegative()))
125       return false;
126 
127     Y.setIsSigned(true);
128     X.setIsSigned(true);
129   }
130 
131   return X == Y;
132 }
133 
134 static Sema::TemplateDeductionResult
135 DeduceTemplateArguments(Sema &S,
136                         TemplateParameterList *TemplateParams,
137                         const TemplateArgument &Param,
138                         TemplateArgument Arg,
139                         TemplateDeductionInfo &Info,
140                         SmallVectorImpl<DeducedTemplateArgument> &Deduced);
141 
142 static Sema::TemplateDeductionResult
143 DeduceTemplateArgumentsByTypeMatch(Sema &S,
144                                    TemplateParameterList *TemplateParams,
145                                    QualType Param,
146                                    QualType Arg,
147                                    TemplateDeductionInfo &Info,
148                                    SmallVectorImpl<DeducedTemplateArgument> &
149                                                       Deduced,
150                                    unsigned TDF,
151                                    bool PartialOrdering = false,
152                                    bool DeducedFromArrayBound = false);
153 
154 static Sema::TemplateDeductionResult
155 DeduceTemplateArguments(Sema &S, TemplateParameterList *TemplateParams,
156                         ArrayRef<TemplateArgument> Params,
157                         ArrayRef<TemplateArgument> Args,
158                         TemplateDeductionInfo &Info,
159                         SmallVectorImpl<DeducedTemplateArgument> &Deduced,
160                         bool NumberOfArgumentsMustMatch);
161 
162 static void MarkUsedTemplateParameters(ASTContext &Ctx,
163                                        const TemplateArgument &TemplateArg,
164                                        bool OnlyDeduced, unsigned Depth,
165                                        llvm::SmallBitVector &Used);
166 
167 static void MarkUsedTemplateParameters(ASTContext &Ctx, QualType T,
168                                        bool OnlyDeduced, unsigned Level,
169                                        llvm::SmallBitVector &Deduced);
170 
171 /// If the given expression is of a form that permits the deduction
172 /// of a non-type template parameter, return the declaration of that
173 /// non-type template parameter.
174 static const NonTypeTemplateParmDecl *
175 getDeducedParameterFromExpr(const Expr *E, unsigned Depth) {
176   // If we are within an alias template, the expression may have undergone
177   // any number of parameter substitutions already.
178   while (true) {
179     if (const auto *IC = dyn_cast<ImplicitCastExpr>(E))
180       E = IC->getSubExpr();
181     else if (const auto *CE = dyn_cast<ConstantExpr>(E))
182       E = CE->getSubExpr();
183     else if (const auto *Subst = dyn_cast<SubstNonTypeTemplateParmExpr>(E))
184       E = Subst->getReplacement();
185     else if (const auto *CCE = dyn_cast<CXXConstructExpr>(E)) {
186       // Look through implicit copy construction from an lvalue of the same type.
187       if (CCE->getParenOrBraceRange().isValid())
188         break;
189       // Note, there could be default arguments.
190       assert(CCE->getNumArgs() >= 1 && "implicit construct expr should have 1 arg");
191       E = CCE->getArg(0);
192     } else
193       break;
194   }
195 
196   if (const auto *DRE = dyn_cast<DeclRefExpr>(E))
197     if (const auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(DRE->getDecl()))
198       if (NTTP->getDepth() == Depth)
199         return NTTP;
200 
201   return nullptr;
202 }
203 
204 static const NonTypeTemplateParmDecl *
205 getDeducedParameterFromExpr(TemplateDeductionInfo &Info, Expr *E) {
206   return getDeducedParameterFromExpr(E, Info.getDeducedDepth());
207 }
208 
209 /// Determine whether two declaration pointers refer to the same
210 /// declaration.
211 static bool isSameDeclaration(Decl *X, Decl *Y) {
212   if (NamedDecl *NX = dyn_cast<NamedDecl>(X))
213     X = NX->getUnderlyingDecl();
214   if (NamedDecl *NY = dyn_cast<NamedDecl>(Y))
215     Y = NY->getUnderlyingDecl();
216 
217   return X->getCanonicalDecl() == Y->getCanonicalDecl();
218 }
219 
220 /// Verify that the given, deduced template arguments are compatible.
221 ///
222 /// \returns The deduced template argument, or a NULL template argument if
223 /// the deduced template arguments were incompatible.
224 static DeducedTemplateArgument
225 checkDeducedTemplateArguments(ASTContext &Context,
226                               const DeducedTemplateArgument &X,
227                               const DeducedTemplateArgument &Y) {
228   // We have no deduction for one or both of the arguments; they're compatible.
229   if (X.isNull())
230     return Y;
231   if (Y.isNull())
232     return X;
233 
234   // If we have two non-type template argument values deduced for the same
235   // parameter, they must both match the type of the parameter, and thus must
236   // match each other's type. As we're only keeping one of them, we must check
237   // for that now. The exception is that if either was deduced from an array
238   // bound, the type is permitted to differ.
239   if (!X.wasDeducedFromArrayBound() && !Y.wasDeducedFromArrayBound()) {
240     QualType XType = X.getNonTypeTemplateArgumentType();
241     if (!XType.isNull()) {
242       QualType YType = Y.getNonTypeTemplateArgumentType();
243       if (YType.isNull() || !Context.hasSameType(XType, YType))
244         return DeducedTemplateArgument();
245     }
246   }
247 
248   switch (X.getKind()) {
249   case TemplateArgument::Null:
250     llvm_unreachable("Non-deduced template arguments handled above");
251 
252   case TemplateArgument::Type:
253     // If two template type arguments have the same type, they're compatible.
254     if (Y.getKind() == TemplateArgument::Type &&
255         Context.hasSameType(X.getAsType(), Y.getAsType()))
256       return X;
257 
258     // If one of the two arguments was deduced from an array bound, the other
259     // supersedes it.
260     if (X.wasDeducedFromArrayBound() != Y.wasDeducedFromArrayBound())
261       return X.wasDeducedFromArrayBound() ? Y : X;
262 
263     // The arguments are not compatible.
264     return DeducedTemplateArgument();
265 
266   case TemplateArgument::Integral:
267     // If we deduced a constant in one case and either a dependent expression or
268     // declaration in another case, keep the integral constant.
269     // If both are integral constants with the same value, keep that value.
270     if (Y.getKind() == TemplateArgument::Expression ||
271         Y.getKind() == TemplateArgument::Declaration ||
272         (Y.getKind() == TemplateArgument::Integral &&
273          hasSameExtendedValue(X.getAsIntegral(), Y.getAsIntegral())))
274       return X.wasDeducedFromArrayBound() ? Y : X;
275 
276     // All other combinations are incompatible.
277     return DeducedTemplateArgument();
278 
279   case TemplateArgument::Template:
280     if (Y.getKind() == TemplateArgument::Template &&
281         Context.hasSameTemplateName(X.getAsTemplate(), Y.getAsTemplate()))
282       return X;
283 
284     // All other combinations are incompatible.
285     return DeducedTemplateArgument();
286 
287   case TemplateArgument::TemplateExpansion:
288     if (Y.getKind() == TemplateArgument::TemplateExpansion &&
289         Context.hasSameTemplateName(X.getAsTemplateOrTemplatePattern(),
290                                     Y.getAsTemplateOrTemplatePattern()))
291       return X;
292 
293     // All other combinations are incompatible.
294     return DeducedTemplateArgument();
295 
296   case TemplateArgument::Expression: {
297     if (Y.getKind() != TemplateArgument::Expression)
298       return checkDeducedTemplateArguments(Context, Y, X);
299 
300     // Compare the expressions for equality
301     llvm::FoldingSetNodeID ID1, ID2;
302     X.getAsExpr()->Profile(ID1, Context, true);
303     Y.getAsExpr()->Profile(ID2, Context, true);
304     if (ID1 == ID2)
305       return X.wasDeducedFromArrayBound() ? Y : X;
306 
307     // Differing dependent expressions are incompatible.
308     return DeducedTemplateArgument();
309   }
310 
311   case TemplateArgument::Declaration:
312     assert(!X.wasDeducedFromArrayBound());
313 
314     // If we deduced a declaration and a dependent expression, keep the
315     // declaration.
316     if (Y.getKind() == TemplateArgument::Expression)
317       return X;
318 
319     // If we deduced a declaration and an integral constant, keep the
320     // integral constant and whichever type did not come from an array
321     // bound.
322     if (Y.getKind() == TemplateArgument::Integral) {
323       if (Y.wasDeducedFromArrayBound())
324         return TemplateArgument(Context, Y.getAsIntegral(),
325                                 X.getParamTypeForDecl());
326       return Y;
327     }
328 
329     // If we deduced two declarations, make sure that they refer to the
330     // same declaration.
331     if (Y.getKind() == TemplateArgument::Declaration &&
332         isSameDeclaration(X.getAsDecl(), Y.getAsDecl()))
333       return X;
334 
335     // All other combinations are incompatible.
336     return DeducedTemplateArgument();
337 
338   case TemplateArgument::NullPtr:
339     // If we deduced a null pointer and a dependent expression, keep the
340     // null pointer.
341     if (Y.getKind() == TemplateArgument::Expression)
342       return X;
343 
344     // If we deduced a null pointer and an integral constant, keep the
345     // integral constant.
346     if (Y.getKind() == TemplateArgument::Integral)
347       return Y;
348 
349     // If we deduced two null pointers, they are the same.
350     if (Y.getKind() == TemplateArgument::NullPtr)
351       return X;
352 
353     // All other combinations are incompatible.
354     return DeducedTemplateArgument();
355 
356   case TemplateArgument::Pack: {
357     if (Y.getKind() != TemplateArgument::Pack ||
358         X.pack_size() != Y.pack_size())
359       return DeducedTemplateArgument();
360 
361     llvm::SmallVector<TemplateArgument, 8> NewPack;
362     for (TemplateArgument::pack_iterator XA = X.pack_begin(),
363                                       XAEnd = X.pack_end(),
364                                          YA = Y.pack_begin();
365          XA != XAEnd; ++XA, ++YA) {
366       TemplateArgument Merged = checkDeducedTemplateArguments(
367           Context, DeducedTemplateArgument(*XA, X.wasDeducedFromArrayBound()),
368           DeducedTemplateArgument(*YA, Y.wasDeducedFromArrayBound()));
369       if (Merged.isNull() && !(XA->isNull() && YA->isNull()))
370         return DeducedTemplateArgument();
371       NewPack.push_back(Merged);
372     }
373 
374     return DeducedTemplateArgument(
375         TemplateArgument::CreatePackCopy(Context, NewPack),
376         X.wasDeducedFromArrayBound() && Y.wasDeducedFromArrayBound());
377   }
378   }
379 
380   llvm_unreachable("Invalid TemplateArgument Kind!");
381 }
382 
383 /// Deduce the value of the given non-type template parameter
384 /// as the given deduced template argument. All non-type template parameter
385 /// deduction is funneled through here.
386 static Sema::TemplateDeductionResult DeduceNonTypeTemplateArgument(
387     Sema &S, TemplateParameterList *TemplateParams,
388     const NonTypeTemplateParmDecl *NTTP, const DeducedTemplateArgument &NewDeduced,
389     QualType ValueType, TemplateDeductionInfo &Info,
390     SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
391   assert(NTTP->getDepth() == Info.getDeducedDepth() &&
392          "deducing non-type template argument with wrong depth");
393 
394   DeducedTemplateArgument Result = checkDeducedTemplateArguments(
395       S.Context, Deduced[NTTP->getIndex()], NewDeduced);
396   if (Result.isNull()) {
397     Info.Param = const_cast<NonTypeTemplateParmDecl*>(NTTP);
398     Info.FirstArg = Deduced[NTTP->getIndex()];
399     Info.SecondArg = NewDeduced;
400     return Sema::TDK_Inconsistent;
401   }
402 
403   Deduced[NTTP->getIndex()] = Result;
404   if (!S.getLangOpts().CPlusPlus17)
405     return Sema::TDK_Success;
406 
407   if (NTTP->isExpandedParameterPack())
408     // FIXME: We may still need to deduce parts of the type here! But we
409     // don't have any way to find which slice of the type to use, and the
410     // type stored on the NTTP itself is nonsense. Perhaps the type of an
411     // expanded NTTP should be a pack expansion type?
412     return Sema::TDK_Success;
413 
414   // Get the type of the parameter for deduction. If it's a (dependent) array
415   // or function type, we will not have decayed it yet, so do that now.
416   QualType ParamType = S.Context.getAdjustedParameterType(NTTP->getType());
417   if (auto *Expansion = dyn_cast<PackExpansionType>(ParamType))
418     ParamType = Expansion->getPattern();
419 
420   // FIXME: It's not clear how deduction of a parameter of reference
421   // type from an argument (of non-reference type) should be performed.
422   // For now, we just remove reference types from both sides and let
423   // the final check for matching types sort out the mess.
424   ValueType = ValueType.getNonReferenceType();
425   if (ParamType->isReferenceType())
426     ParamType = ParamType.getNonReferenceType();
427   else
428     // Top-level cv-qualifiers are irrelevant for a non-reference type.
429     ValueType = ValueType.getUnqualifiedType();
430 
431   return DeduceTemplateArgumentsByTypeMatch(
432       S, TemplateParams, ParamType, ValueType, Info, Deduced,
433       TDF_SkipNonDependent, /*PartialOrdering=*/false,
434       /*ArrayBound=*/NewDeduced.wasDeducedFromArrayBound());
435 }
436 
437 /// Deduce the value of the given non-type template parameter
438 /// from the given integral constant.
439 static Sema::TemplateDeductionResult DeduceNonTypeTemplateArgument(
440     Sema &S, TemplateParameterList *TemplateParams,
441     const NonTypeTemplateParmDecl *NTTP, const llvm::APSInt &Value,
442     QualType ValueType, bool DeducedFromArrayBound, TemplateDeductionInfo &Info,
443     SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
444   return DeduceNonTypeTemplateArgument(
445       S, TemplateParams, NTTP,
446       DeducedTemplateArgument(S.Context, Value, ValueType,
447                               DeducedFromArrayBound),
448       ValueType, Info, Deduced);
449 }
450 
451 /// Deduce the value of the given non-type template parameter
452 /// from the given null pointer template argument type.
453 static Sema::TemplateDeductionResult DeduceNullPtrTemplateArgument(
454     Sema &S, TemplateParameterList *TemplateParams,
455     const NonTypeTemplateParmDecl *NTTP, QualType NullPtrType,
456     TemplateDeductionInfo &Info,
457     SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
458   Expr *Value = S.ImpCastExprToType(
459                      new (S.Context) CXXNullPtrLiteralExpr(S.Context.NullPtrTy,
460                                                            NTTP->getLocation()),
461                      NullPtrType,
462                      NullPtrType->isMemberPointerType() ? CK_NullToMemberPointer
463                                                         : CK_NullToPointer)
464                     .get();
465   return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP,
466                                        DeducedTemplateArgument(Value),
467                                        Value->getType(), Info, Deduced);
468 }
469 
470 /// Deduce the value of the given non-type template parameter
471 /// from the given type- or value-dependent expression.
472 ///
473 /// \returns true if deduction succeeded, false otherwise.
474 static Sema::TemplateDeductionResult DeduceNonTypeTemplateArgument(
475     Sema &S, TemplateParameterList *TemplateParams,
476     const NonTypeTemplateParmDecl *NTTP, Expr *Value, TemplateDeductionInfo &Info,
477     SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
478   return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP,
479                                        DeducedTemplateArgument(Value),
480                                        Value->getType(), Info, Deduced);
481 }
482 
483 /// Deduce the value of the given non-type template parameter
484 /// from the given declaration.
485 ///
486 /// \returns true if deduction succeeded, false otherwise.
487 static Sema::TemplateDeductionResult DeduceNonTypeTemplateArgument(
488     Sema &S, TemplateParameterList *TemplateParams,
489     const NonTypeTemplateParmDecl *NTTP, ValueDecl *D, QualType T,
490     TemplateDeductionInfo &Info,
491     SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
492   D = D ? cast<ValueDecl>(D->getCanonicalDecl()) : nullptr;
493   TemplateArgument New(D, T);
494   return DeduceNonTypeTemplateArgument(
495       S, TemplateParams, NTTP, DeducedTemplateArgument(New), T, Info, Deduced);
496 }
497 
498 static Sema::TemplateDeductionResult
499 DeduceTemplateArguments(Sema &S,
500                         TemplateParameterList *TemplateParams,
501                         TemplateName Param,
502                         TemplateName Arg,
503                         TemplateDeductionInfo &Info,
504                         SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
505   TemplateDecl *ParamDecl = Param.getAsTemplateDecl();
506   if (!ParamDecl) {
507     // The parameter type is dependent and is not a template template parameter,
508     // so there is nothing that we can deduce.
509     return Sema::TDK_Success;
510   }
511 
512   if (TemplateTemplateParmDecl *TempParam
513         = dyn_cast<TemplateTemplateParmDecl>(ParamDecl)) {
514     // If we're not deducing at this depth, there's nothing to deduce.
515     if (TempParam->getDepth() != Info.getDeducedDepth())
516       return Sema::TDK_Success;
517 
518     DeducedTemplateArgument NewDeduced(S.Context.getCanonicalTemplateName(Arg));
519     DeducedTemplateArgument Result = checkDeducedTemplateArguments(S.Context,
520                                                  Deduced[TempParam->getIndex()],
521                                                                    NewDeduced);
522     if (Result.isNull()) {
523       Info.Param = TempParam;
524       Info.FirstArg = Deduced[TempParam->getIndex()];
525       Info.SecondArg = NewDeduced;
526       return Sema::TDK_Inconsistent;
527     }
528 
529     Deduced[TempParam->getIndex()] = Result;
530     return Sema::TDK_Success;
531   }
532 
533   // Verify that the two template names are equivalent.
534   if (S.Context.hasSameTemplateName(Param, Arg))
535     return Sema::TDK_Success;
536 
537   // Mismatch of non-dependent template parameter to argument.
538   Info.FirstArg = TemplateArgument(Param);
539   Info.SecondArg = TemplateArgument(Arg);
540   return Sema::TDK_NonDeducedMismatch;
541 }
542 
543 /// Deduce the template arguments by comparing the template parameter
544 /// type (which is a template-id) with the template argument type.
545 ///
546 /// \param S the Sema
547 ///
548 /// \param TemplateParams the template parameters that we are deducing
549 ///
550 /// \param Param the parameter type
551 ///
552 /// \param Arg the argument type
553 ///
554 /// \param Info information about the template argument deduction itself
555 ///
556 /// \param Deduced the deduced template arguments
557 ///
558 /// \returns the result of template argument deduction so far. Note that a
559 /// "success" result means that template argument deduction has not yet failed,
560 /// but it may still fail, later, for other reasons.
561 static Sema::TemplateDeductionResult
562 DeduceTemplateArguments(Sema &S,
563                         TemplateParameterList *TemplateParams,
564                         const TemplateSpecializationType *Param,
565                         QualType Arg,
566                         TemplateDeductionInfo &Info,
567                         SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
568   assert(Arg.isCanonical() && "Argument type must be canonical");
569 
570   // Treat an injected-class-name as its underlying template-id.
571   if (auto *Injected = dyn_cast<InjectedClassNameType>(Arg))
572     Arg = Injected->getInjectedSpecializationType();
573 
574   // Check whether the template argument is a dependent template-id.
575   if (const TemplateSpecializationType *SpecArg
576         = dyn_cast<TemplateSpecializationType>(Arg)) {
577     // Perform template argument deduction for the template name.
578     if (Sema::TemplateDeductionResult Result
579           = DeduceTemplateArguments(S, TemplateParams,
580                                     Param->getTemplateName(),
581                                     SpecArg->getTemplateName(),
582                                     Info, Deduced))
583       return Result;
584 
585 
586     // Perform template argument deduction on each template
587     // argument. Ignore any missing/extra arguments, since they could be
588     // filled in by default arguments.
589     return DeduceTemplateArguments(S, TemplateParams,
590                                    Param->template_arguments(),
591                                    SpecArg->template_arguments(), Info, Deduced,
592                                    /*NumberOfArgumentsMustMatch=*/false);
593   }
594 
595   // If the argument type is a class template specialization, we
596   // perform template argument deduction using its template
597   // arguments.
598   const RecordType *RecordArg = dyn_cast<RecordType>(Arg);
599   if (!RecordArg) {
600     Info.FirstArg = TemplateArgument(QualType(Param, 0));
601     Info.SecondArg = TemplateArgument(Arg);
602     return Sema::TDK_NonDeducedMismatch;
603   }
604 
605   ClassTemplateSpecializationDecl *SpecArg
606     = dyn_cast<ClassTemplateSpecializationDecl>(RecordArg->getDecl());
607   if (!SpecArg) {
608     Info.FirstArg = TemplateArgument(QualType(Param, 0));
609     Info.SecondArg = TemplateArgument(Arg);
610     return Sema::TDK_NonDeducedMismatch;
611   }
612 
613   // Perform template argument deduction for the template name.
614   if (Sema::TemplateDeductionResult Result
615         = DeduceTemplateArguments(S,
616                                   TemplateParams,
617                                   Param->getTemplateName(),
618                                TemplateName(SpecArg->getSpecializedTemplate()),
619                                   Info, Deduced))
620     return Result;
621 
622   // Perform template argument deduction for the template arguments.
623   return DeduceTemplateArguments(S, TemplateParams, Param->template_arguments(),
624                                  SpecArg->getTemplateArgs().asArray(), Info,
625                                  Deduced, /*NumberOfArgumentsMustMatch=*/true);
626 }
627 
628 /// Determines whether the given type is an opaque type that
629 /// might be more qualified when instantiated.
630 static bool IsPossiblyOpaquelyQualifiedType(QualType T) {
631   switch (T->getTypeClass()) {
632   case Type::TypeOfExpr:
633   case Type::TypeOf:
634   case Type::DependentName:
635   case Type::Decltype:
636   case Type::UnresolvedUsing:
637   case Type::TemplateTypeParm:
638     return true;
639 
640   case Type::ConstantArray:
641   case Type::IncompleteArray:
642   case Type::VariableArray:
643   case Type::DependentSizedArray:
644     return IsPossiblyOpaquelyQualifiedType(
645                                       cast<ArrayType>(T)->getElementType());
646 
647   default:
648     return false;
649   }
650 }
651 
652 /// Helper function to build a TemplateParameter when we don't
653 /// know its type statically.
654 static TemplateParameter makeTemplateParameter(Decl *D) {
655   if (TemplateTypeParmDecl *TTP = dyn_cast<TemplateTypeParmDecl>(D))
656     return TemplateParameter(TTP);
657   if (NonTypeTemplateParmDecl *NTTP = dyn_cast<NonTypeTemplateParmDecl>(D))
658     return TemplateParameter(NTTP);
659 
660   return TemplateParameter(cast<TemplateTemplateParmDecl>(D));
661 }
662 
663 /// A pack that we're currently deducing.
664 struct clang::DeducedPack {
665   // The index of the pack.
666   unsigned Index;
667 
668   // The old value of the pack before we started deducing it.
669   DeducedTemplateArgument Saved;
670 
671   // A deferred value of this pack from an inner deduction, that couldn't be
672   // deduced because this deduction hadn't happened yet.
673   DeducedTemplateArgument DeferredDeduction;
674 
675   // The new value of the pack.
676   SmallVector<DeducedTemplateArgument, 4> New;
677 
678   // The outer deduction for this pack, if any.
679   DeducedPack *Outer = nullptr;
680 
681   DeducedPack(unsigned Index) : Index(Index) {}
682 };
683 
684 namespace {
685 
686 /// A scope in which we're performing pack deduction.
687 class PackDeductionScope {
688 public:
689   /// Prepare to deduce the packs named within Pattern.
690   PackDeductionScope(Sema &S, TemplateParameterList *TemplateParams,
691                      SmallVectorImpl<DeducedTemplateArgument> &Deduced,
692                      TemplateDeductionInfo &Info, TemplateArgument Pattern)
693       : S(S), TemplateParams(TemplateParams), Deduced(Deduced), Info(Info) {
694     unsigned NumNamedPacks = addPacks(Pattern);
695     finishConstruction(NumNamedPacks);
696   }
697 
698   /// Prepare to directly deduce arguments of the parameter with index \p Index.
699   PackDeductionScope(Sema &S, TemplateParameterList *TemplateParams,
700                      SmallVectorImpl<DeducedTemplateArgument> &Deduced,
701                      TemplateDeductionInfo &Info, unsigned Index)
702       : S(S), TemplateParams(TemplateParams), Deduced(Deduced), Info(Info) {
703     addPack(Index);
704     finishConstruction(1);
705   }
706 
707 private:
708   void addPack(unsigned Index) {
709     // Save the deduced template argument for the parameter pack expanded
710     // by this pack expansion, then clear out the deduction.
711     DeducedPack Pack(Index);
712     Pack.Saved = Deduced[Index];
713     Deduced[Index] = TemplateArgument();
714 
715     // FIXME: What if we encounter multiple packs with different numbers of
716     // pre-expanded expansions? (This should already have been diagnosed
717     // during substitution.)
718     if (Optional<unsigned> ExpandedPackExpansions =
719             getExpandedPackSize(TemplateParams->getParam(Index)))
720       FixedNumExpansions = ExpandedPackExpansions;
721 
722     Packs.push_back(Pack);
723   }
724 
725   unsigned addPacks(TemplateArgument Pattern) {
726     // Compute the set of template parameter indices that correspond to
727     // parameter packs expanded by the pack expansion.
728     llvm::SmallBitVector SawIndices(TemplateParams->size());
729     llvm::SmallVector<TemplateArgument, 4> ExtraDeductions;
730 
731     auto AddPack = [&](unsigned Index) {
732       if (SawIndices[Index])
733         return;
734       SawIndices[Index] = true;
735       addPack(Index);
736 
737       // Deducing a parameter pack that is a pack expansion also constrains the
738       // packs appearing in that parameter to have the same deduced arity. Also,
739       // in C++17 onwards, deducing a non-type template parameter deduces its
740       // type, so we need to collect the pending deduced values for those packs.
741       if (auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(
742               TemplateParams->getParam(Index))) {
743         if (!NTTP->isExpandedParameterPack())
744           if (auto *Expansion = dyn_cast<PackExpansionType>(NTTP->getType()))
745             ExtraDeductions.push_back(Expansion->getPattern());
746       }
747       // FIXME: Also collect the unexpanded packs in any type and template
748       // parameter packs that are pack expansions.
749     };
750 
751     auto Collect = [&](TemplateArgument Pattern) {
752       SmallVector<UnexpandedParameterPack, 2> Unexpanded;
753       S.collectUnexpandedParameterPacks(Pattern, Unexpanded);
754       for (unsigned I = 0, N = Unexpanded.size(); I != N; ++I) {
755         unsigned Depth, Index;
756         std::tie(Depth, Index) = getDepthAndIndex(Unexpanded[I]);
757         if (Depth == Info.getDeducedDepth())
758           AddPack(Index);
759       }
760     };
761 
762     // Look for unexpanded packs in the pattern.
763     Collect(Pattern);
764     assert(!Packs.empty() && "Pack expansion without unexpanded packs?");
765 
766     unsigned NumNamedPacks = Packs.size();
767 
768     // Also look for unexpanded packs that are indirectly deduced by deducing
769     // the sizes of the packs in this pattern.
770     while (!ExtraDeductions.empty())
771       Collect(ExtraDeductions.pop_back_val());
772 
773     return NumNamedPacks;
774   }
775 
776   void finishConstruction(unsigned NumNamedPacks) {
777     // Dig out the partially-substituted pack, if there is one.
778     const TemplateArgument *PartialPackArgs = nullptr;
779     unsigned NumPartialPackArgs = 0;
780     std::pair<unsigned, unsigned> PartialPackDepthIndex(-1u, -1u);
781     if (auto *Scope = S.CurrentInstantiationScope)
782       if (auto *Partial = Scope->getPartiallySubstitutedPack(
783               &PartialPackArgs, &NumPartialPackArgs))
784         PartialPackDepthIndex = getDepthAndIndex(Partial);
785 
786     // This pack expansion will have been partially or fully expanded if
787     // it only names explicitly-specified parameter packs (including the
788     // partially-substituted one, if any).
789     bool IsExpanded = true;
790     for (unsigned I = 0; I != NumNamedPacks; ++I) {
791       if (Packs[I].Index >= Info.getNumExplicitArgs()) {
792         IsExpanded = false;
793         IsPartiallyExpanded = false;
794         break;
795       }
796       if (PartialPackDepthIndex ==
797             std::make_pair(Info.getDeducedDepth(), Packs[I].Index)) {
798         IsPartiallyExpanded = true;
799       }
800     }
801 
802     // Skip over the pack elements that were expanded into separate arguments.
803     // If we partially expanded, this is the number of partial arguments.
804     if (IsPartiallyExpanded)
805       PackElements += NumPartialPackArgs;
806     else if (IsExpanded)
807       PackElements += *FixedNumExpansions;
808 
809     for (auto &Pack : Packs) {
810       if (Info.PendingDeducedPacks.size() > Pack.Index)
811         Pack.Outer = Info.PendingDeducedPacks[Pack.Index];
812       else
813         Info.PendingDeducedPacks.resize(Pack.Index + 1);
814       Info.PendingDeducedPacks[Pack.Index] = &Pack;
815 
816       if (PartialPackDepthIndex ==
817             std::make_pair(Info.getDeducedDepth(), Pack.Index)) {
818         Pack.New.append(PartialPackArgs, PartialPackArgs + NumPartialPackArgs);
819         // We pre-populate the deduced value of the partially-substituted
820         // pack with the specified value. This is not entirely correct: the
821         // value is supposed to have been substituted, not deduced, but the
822         // cases where this is observable require an exact type match anyway.
823         //
824         // FIXME: If we could represent a "depth i, index j, pack elem k"
825         // parameter, we could substitute the partially-substituted pack
826         // everywhere and avoid this.
827         if (!IsPartiallyExpanded)
828           Deduced[Pack.Index] = Pack.New[PackElements];
829       }
830     }
831   }
832 
833 public:
834   ~PackDeductionScope() {
835     for (auto &Pack : Packs)
836       Info.PendingDeducedPacks[Pack.Index] = Pack.Outer;
837   }
838 
839   /// Determine whether this pack has already been partially expanded into a
840   /// sequence of (prior) function parameters / template arguments.
841   bool isPartiallyExpanded() { return IsPartiallyExpanded; }
842 
843   /// Determine whether this pack expansion scope has a known, fixed arity.
844   /// This happens if it involves a pack from an outer template that has
845   /// (notionally) already been expanded.
846   bool hasFixedArity() { return FixedNumExpansions.hasValue(); }
847 
848   /// Determine whether the next element of the argument is still part of this
849   /// pack. This is the case unless the pack is already expanded to a fixed
850   /// length.
851   bool hasNextElement() {
852     return !FixedNumExpansions || *FixedNumExpansions > PackElements;
853   }
854 
855   /// Move to deducing the next element in each pack that is being deduced.
856   void nextPackElement() {
857     // Capture the deduced template arguments for each parameter pack expanded
858     // by this pack expansion, add them to the list of arguments we've deduced
859     // for that pack, then clear out the deduced argument.
860     for (auto &Pack : Packs) {
861       DeducedTemplateArgument &DeducedArg = Deduced[Pack.Index];
862       if (!Pack.New.empty() || !DeducedArg.isNull()) {
863         while (Pack.New.size() < PackElements)
864           Pack.New.push_back(DeducedTemplateArgument());
865         if (Pack.New.size() == PackElements)
866           Pack.New.push_back(DeducedArg);
867         else
868           Pack.New[PackElements] = DeducedArg;
869         DeducedArg = Pack.New.size() > PackElements + 1
870                          ? Pack.New[PackElements + 1]
871                          : DeducedTemplateArgument();
872       }
873     }
874     ++PackElements;
875   }
876 
877   /// Finish template argument deduction for a set of argument packs,
878   /// producing the argument packs and checking for consistency with prior
879   /// deductions.
880   Sema::TemplateDeductionResult finish() {
881     // Build argument packs for each of the parameter packs expanded by this
882     // pack expansion.
883     for (auto &Pack : Packs) {
884       // Put back the old value for this pack.
885       Deduced[Pack.Index] = Pack.Saved;
886 
887       // Always make sure the size of this pack is correct, even if we didn't
888       // deduce any values for it.
889       //
890       // FIXME: This isn't required by the normative wording, but substitution
891       // and post-substitution checking will always fail if the arity of any
892       // pack is not equal to the number of elements we processed. (Either that
893       // or something else has gone *very* wrong.) We're permitted to skip any
894       // hard errors from those follow-on steps by the intent (but not the
895       // wording) of C++ [temp.inst]p8:
896       //
897       //   If the function selected by overload resolution can be determined
898       //   without instantiating a class template definition, it is unspecified
899       //   whether that instantiation actually takes place
900       Pack.New.resize(PackElements);
901 
902       // Build or find a new value for this pack.
903       DeducedTemplateArgument NewPack;
904       if (Pack.New.empty()) {
905         // If we deduced an empty argument pack, create it now.
906         NewPack = DeducedTemplateArgument(TemplateArgument::getEmptyPack());
907       } else {
908         TemplateArgument *ArgumentPack =
909             new (S.Context) TemplateArgument[Pack.New.size()];
910         std::copy(Pack.New.begin(), Pack.New.end(), ArgumentPack);
911         NewPack = DeducedTemplateArgument(
912             TemplateArgument(llvm::makeArrayRef(ArgumentPack, Pack.New.size())),
913             // FIXME: This is wrong, it's possible that some pack elements are
914             // deduced from an array bound and others are not:
915             //   template<typename ...T, T ...V> void g(const T (&...p)[V]);
916             //   g({1, 2, 3}, {{}, {}});
917             // ... should deduce T = {int, size_t (from array bound)}.
918             Pack.New[0].wasDeducedFromArrayBound());
919       }
920 
921       // Pick where we're going to put the merged pack.
922       DeducedTemplateArgument *Loc;
923       if (Pack.Outer) {
924         if (Pack.Outer->DeferredDeduction.isNull()) {
925           // Defer checking this pack until we have a complete pack to compare
926           // it against.
927           Pack.Outer->DeferredDeduction = NewPack;
928           continue;
929         }
930         Loc = &Pack.Outer->DeferredDeduction;
931       } else {
932         Loc = &Deduced[Pack.Index];
933       }
934 
935       // Check the new pack matches any previous value.
936       DeducedTemplateArgument OldPack = *Loc;
937       DeducedTemplateArgument Result =
938           checkDeducedTemplateArguments(S.Context, OldPack, NewPack);
939 
940       // If we deferred a deduction of this pack, check that one now too.
941       if (!Result.isNull() && !Pack.DeferredDeduction.isNull()) {
942         OldPack = Result;
943         NewPack = Pack.DeferredDeduction;
944         Result = checkDeducedTemplateArguments(S.Context, OldPack, NewPack);
945       }
946 
947       NamedDecl *Param = TemplateParams->getParam(Pack.Index);
948       if (Result.isNull()) {
949         Info.Param = makeTemplateParameter(Param);
950         Info.FirstArg = OldPack;
951         Info.SecondArg = NewPack;
952         return Sema::TDK_Inconsistent;
953       }
954 
955       // If we have a pre-expanded pack and we didn't deduce enough elements
956       // for it, fail deduction.
957       if (Optional<unsigned> Expansions = getExpandedPackSize(Param)) {
958         if (*Expansions != PackElements) {
959           Info.Param = makeTemplateParameter(Param);
960           Info.FirstArg = Result;
961           return Sema::TDK_IncompletePack;
962         }
963       }
964 
965       *Loc = Result;
966     }
967 
968     return Sema::TDK_Success;
969   }
970 
971 private:
972   Sema &S;
973   TemplateParameterList *TemplateParams;
974   SmallVectorImpl<DeducedTemplateArgument> &Deduced;
975   TemplateDeductionInfo &Info;
976   unsigned PackElements = 0;
977   bool IsPartiallyExpanded = false;
978   /// The number of expansions, if we have a fully-expanded pack in this scope.
979   Optional<unsigned> FixedNumExpansions;
980 
981   SmallVector<DeducedPack, 2> Packs;
982 };
983 
984 } // namespace
985 
986 /// Deduce the template arguments by comparing the list of parameter
987 /// types to the list of argument types, as in the parameter-type-lists of
988 /// function types (C++ [temp.deduct.type]p10).
989 ///
990 /// \param S The semantic analysis object within which we are deducing
991 ///
992 /// \param TemplateParams The template parameters that we are deducing
993 ///
994 /// \param Params The list of parameter types
995 ///
996 /// \param NumParams The number of types in \c Params
997 ///
998 /// \param Args The list of argument types
999 ///
1000 /// \param NumArgs The number of types in \c Args
1001 ///
1002 /// \param Info information about the template argument deduction itself
1003 ///
1004 /// \param Deduced the deduced template arguments
1005 ///
1006 /// \param TDF bitwise OR of the TemplateDeductionFlags bits that describe
1007 /// how template argument deduction is performed.
1008 ///
1009 /// \param PartialOrdering If true, we are performing template argument
1010 /// deduction for during partial ordering for a call
1011 /// (C++0x [temp.deduct.partial]).
1012 ///
1013 /// \returns the result of template argument deduction so far. Note that a
1014 /// "success" result means that template argument deduction has not yet failed,
1015 /// but it may still fail, later, for other reasons.
1016 static Sema::TemplateDeductionResult
1017 DeduceTemplateArguments(Sema &S,
1018                         TemplateParameterList *TemplateParams,
1019                         const QualType *Params, unsigned NumParams,
1020                         const QualType *Args, unsigned NumArgs,
1021                         TemplateDeductionInfo &Info,
1022                         SmallVectorImpl<DeducedTemplateArgument> &Deduced,
1023                         unsigned TDF,
1024                         bool PartialOrdering = false) {
1025   // C++0x [temp.deduct.type]p10:
1026   //   Similarly, if P has a form that contains (T), then each parameter type
1027   //   Pi of the respective parameter-type- list of P is compared with the
1028   //   corresponding parameter type Ai of the corresponding parameter-type-list
1029   //   of A. [...]
1030   unsigned ArgIdx = 0, ParamIdx = 0;
1031   for (; ParamIdx != NumParams; ++ParamIdx) {
1032     // Check argument types.
1033     const PackExpansionType *Expansion
1034                                 = dyn_cast<PackExpansionType>(Params[ParamIdx]);
1035     if (!Expansion) {
1036       // Simple case: compare the parameter and argument types at this point.
1037 
1038       // Make sure we have an argument.
1039       if (ArgIdx >= NumArgs)
1040         return Sema::TDK_MiscellaneousDeductionFailure;
1041 
1042       if (isa<PackExpansionType>(Args[ArgIdx])) {
1043         // C++0x [temp.deduct.type]p22:
1044         //   If the original function parameter associated with A is a function
1045         //   parameter pack and the function parameter associated with P is not
1046         //   a function parameter pack, then template argument deduction fails.
1047         return Sema::TDK_MiscellaneousDeductionFailure;
1048       }
1049 
1050       if (Sema::TemplateDeductionResult Result
1051             = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1052                                                  Params[ParamIdx], Args[ArgIdx],
1053                                                  Info, Deduced, TDF,
1054                                                  PartialOrdering))
1055         return Result;
1056 
1057       ++ArgIdx;
1058       continue;
1059     }
1060 
1061     // C++0x [temp.deduct.type]p10:
1062     //   If the parameter-declaration corresponding to Pi is a function
1063     //   parameter pack, then the type of its declarator- id is compared with
1064     //   each remaining parameter type in the parameter-type-list of A. Each
1065     //   comparison deduces template arguments for subsequent positions in the
1066     //   template parameter packs expanded by the function parameter pack.
1067 
1068     QualType Pattern = Expansion->getPattern();
1069     PackDeductionScope PackScope(S, TemplateParams, Deduced, Info, Pattern);
1070 
1071     // A pack scope with fixed arity is not really a pack any more, so is not
1072     // a non-deduced context.
1073     if (ParamIdx + 1 == NumParams || PackScope.hasFixedArity()) {
1074       for (; ArgIdx < NumArgs && PackScope.hasNextElement(); ++ArgIdx) {
1075         // Deduce template arguments from the pattern.
1076         if (Sema::TemplateDeductionResult Result
1077               = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, Pattern,
1078                                                    Args[ArgIdx], Info, Deduced,
1079                                                    TDF, PartialOrdering))
1080           return Result;
1081 
1082         PackScope.nextPackElement();
1083       }
1084     } else {
1085       // C++0x [temp.deduct.type]p5:
1086       //   The non-deduced contexts are:
1087       //     - A function parameter pack that does not occur at the end of the
1088       //       parameter-declaration-clause.
1089       //
1090       // FIXME: There is no wording to say what we should do in this case. We
1091       // choose to resolve this by applying the same rule that is applied for a
1092       // function call: that is, deduce all contained packs to their
1093       // explicitly-specified values (or to <> if there is no such value).
1094       //
1095       // This is seemingly-arbitrarily different from the case of a template-id
1096       // with a non-trailing pack-expansion in its arguments, which renders the
1097       // entire template-argument-list a non-deduced context.
1098 
1099       // If the parameter type contains an explicitly-specified pack that we
1100       // could not expand, skip the number of parameters notionally created
1101       // by the expansion.
1102       Optional<unsigned> NumExpansions = Expansion->getNumExpansions();
1103       if (NumExpansions && !PackScope.isPartiallyExpanded()) {
1104         for (unsigned I = 0; I != *NumExpansions && ArgIdx < NumArgs;
1105              ++I, ++ArgIdx)
1106           PackScope.nextPackElement();
1107       }
1108     }
1109 
1110     // Build argument packs for each of the parameter packs expanded by this
1111     // pack expansion.
1112     if (auto Result = PackScope.finish())
1113       return Result;
1114   }
1115 
1116   // Make sure we don't have any extra arguments.
1117   if (ArgIdx < NumArgs)
1118     return Sema::TDK_MiscellaneousDeductionFailure;
1119 
1120   return Sema::TDK_Success;
1121 }
1122 
1123 /// Determine whether the parameter has qualifiers that the argument
1124 /// lacks. Put another way, determine whether there is no way to add
1125 /// a deduced set of qualifiers to the ParamType that would result in
1126 /// its qualifiers matching those of the ArgType.
1127 static bool hasInconsistentOrSupersetQualifiersOf(QualType ParamType,
1128                                                   QualType ArgType) {
1129   Qualifiers ParamQs = ParamType.getQualifiers();
1130   Qualifiers ArgQs = ArgType.getQualifiers();
1131 
1132   if (ParamQs == ArgQs)
1133     return false;
1134 
1135   // Mismatched (but not missing) Objective-C GC attributes.
1136   if (ParamQs.getObjCGCAttr() != ArgQs.getObjCGCAttr() &&
1137       ParamQs.hasObjCGCAttr())
1138     return true;
1139 
1140   // Mismatched (but not missing) address spaces.
1141   if (ParamQs.getAddressSpace() != ArgQs.getAddressSpace() &&
1142       ParamQs.hasAddressSpace())
1143     return true;
1144 
1145   // Mismatched (but not missing) Objective-C lifetime qualifiers.
1146   if (ParamQs.getObjCLifetime() != ArgQs.getObjCLifetime() &&
1147       ParamQs.hasObjCLifetime())
1148     return true;
1149 
1150   // CVR qualifiers inconsistent or a superset.
1151   return (ParamQs.getCVRQualifiers() & ~ArgQs.getCVRQualifiers()) != 0;
1152 }
1153 
1154 /// Compare types for equality with respect to possibly compatible
1155 /// function types (noreturn adjustment, implicit calling conventions). If any
1156 /// of parameter and argument is not a function, just perform type comparison.
1157 ///
1158 /// \param Param the template parameter type.
1159 ///
1160 /// \param Arg the argument type.
1161 bool Sema::isSameOrCompatibleFunctionType(CanQualType Param,
1162                                           CanQualType Arg) {
1163   const FunctionType *ParamFunction = Param->getAs<FunctionType>(),
1164                      *ArgFunction   = Arg->getAs<FunctionType>();
1165 
1166   // Just compare if not functions.
1167   if (!ParamFunction || !ArgFunction)
1168     return Param == Arg;
1169 
1170   // Noreturn and noexcept adjustment.
1171   QualType AdjustedParam;
1172   if (IsFunctionConversion(Param, Arg, AdjustedParam))
1173     return Arg == Context.getCanonicalType(AdjustedParam);
1174 
1175   // FIXME: Compatible calling conventions.
1176 
1177   return Param == Arg;
1178 }
1179 
1180 /// Get the index of the first template parameter that was originally from the
1181 /// innermost template-parameter-list. This is 0 except when we concatenate
1182 /// the template parameter lists of a class template and a constructor template
1183 /// when forming an implicit deduction guide.
1184 static unsigned getFirstInnerIndex(FunctionTemplateDecl *FTD) {
1185   auto *Guide = dyn_cast<CXXDeductionGuideDecl>(FTD->getTemplatedDecl());
1186   if (!Guide || !Guide->isImplicit())
1187     return 0;
1188   return Guide->getDeducedTemplate()->getTemplateParameters()->size();
1189 }
1190 
1191 /// Determine whether a type denotes a forwarding reference.
1192 static bool isForwardingReference(QualType Param, unsigned FirstInnerIndex) {
1193   // C++1z [temp.deduct.call]p3:
1194   //   A forwarding reference is an rvalue reference to a cv-unqualified
1195   //   template parameter that does not represent a template parameter of a
1196   //   class template.
1197   if (auto *ParamRef = Param->getAs<RValueReferenceType>()) {
1198     if (ParamRef->getPointeeType().getQualifiers())
1199       return false;
1200     auto *TypeParm = ParamRef->getPointeeType()->getAs<TemplateTypeParmType>();
1201     return TypeParm && TypeParm->getIndex() >= FirstInnerIndex;
1202   }
1203   return false;
1204 }
1205 
1206 ///  Attempt to deduce the template arguments by checking the base types
1207 ///  according to (C++20 [temp.deduct.call] p4b3.
1208 ///
1209 /// \param S the semantic analysis object within which we are deducing.
1210 ///
1211 /// \param RecordT the top level record object we are deducing against.
1212 ///
1213 /// \param TemplateParams the template parameters that we are deducing.
1214 ///
1215 /// \param SpecParam the template specialization parameter type.
1216 ///
1217 /// \param Info information about the template argument deduction itself.
1218 ///
1219 /// \param Deduced the deduced template arguments.
1220 ///
1221 /// \returns the result of template argument deduction with the bases. "invalid"
1222 /// means no matches, "success" found a single item, and the
1223 /// "MiscellaneousDeductionFailure" result happens when the match is ambiguous.
1224 static Sema::TemplateDeductionResult DeduceTemplateBases(
1225     Sema &S, const RecordType *RecordT, TemplateParameterList *TemplateParams,
1226     const TemplateSpecializationType *SpecParam, TemplateDeductionInfo &Info,
1227     SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
1228   // C++14 [temp.deduct.call] p4b3:
1229   //   If P is a class and P has the form simple-template-id, then the
1230   //   transformed A can be a derived class of the deduced A. Likewise if
1231   //   P is a pointer to a class of the form simple-template-id, the
1232   //   transformed A can be a pointer to a derived class pointed to by the
1233   //   deduced A. However, if there is a class C that is a (direct or
1234   //   indirect) base class of D and derived (directly or indirectly) from a
1235   //   class B and that would be a valid deduced A, the deduced A cannot be
1236   //   B or pointer to B, respectively.
1237   //
1238   //   These alternatives are considered only if type deduction would
1239   //   otherwise fail. If they yield more than one possible deduced A, the
1240   //   type deduction fails.
1241 
1242   // Use a breadth-first search through the bases to collect the set of
1243   // successful matches. Visited contains the set of nodes we have already
1244   // visited, while ToVisit is our stack of records that we still need to
1245   // visit.  Matches contains a list of matches that have yet to be
1246   // disqualified.
1247   llvm::SmallPtrSet<const RecordType *, 8> Visited;
1248   SmallVector<const RecordType *, 8> ToVisit;
1249   // We iterate over this later, so we have to use MapVector to ensure
1250   // determinism.
1251   llvm::MapVector<const RecordType *, SmallVector<DeducedTemplateArgument, 8>>
1252       Matches;
1253 
1254   auto AddBases = [&Visited, &ToVisit](const RecordType *RT) {
1255     CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl());
1256     for (const auto &Base : RD->bases()) {
1257       assert(Base.getType()->isRecordType() &&
1258              "Base class that isn't a record?");
1259       const RecordType *RT = Base.getType()->getAs<RecordType>();
1260       if (Visited.insert(RT).second)
1261         ToVisit.push_back(Base.getType()->getAs<RecordType>());
1262     }
1263   };
1264 
1265   // Set up the loop by adding all the bases.
1266   AddBases(RecordT);
1267 
1268   // Search each path of bases until we either run into a successful match
1269   // (where all bases of it are invalid), or we run out of bases.
1270   while (!ToVisit.empty()) {
1271     const RecordType *NextT = ToVisit.pop_back_val();
1272 
1273     SmallVector<DeducedTemplateArgument, 8> DeducedCopy(Deduced.begin(),
1274                                                         Deduced.end());
1275     TemplateDeductionInfo BaseInfo(TemplateDeductionInfo::ForBase, Info);
1276     Sema::TemplateDeductionResult BaseResult =
1277         DeduceTemplateArguments(S, TemplateParams, SpecParam,
1278                                 QualType(NextT, 0), BaseInfo, DeducedCopy);
1279 
1280     // If this was a successful deduction, add it to the list of matches,
1281     // otherwise we need to continue searching its bases.
1282     if (BaseResult == Sema::TDK_Success)
1283       Matches.insert({NextT, DeducedCopy});
1284     else
1285       AddBases(NextT);
1286   }
1287 
1288   // At this point, 'Matches' contains a list of seemingly valid bases, however
1289   // in the event that we have more than 1 match, it is possible that the base
1290   // of one of the matches might be disqualified for being a base of another
1291   // valid match. We can count on cyclical instantiations being invalid to
1292   // simplify the disqualifications.  That is, if A & B are both matches, and B
1293   // inherits from A (disqualifying A), we know that A cannot inherit from B.
1294   if (Matches.size() > 1) {
1295     Visited.clear();
1296     for (const auto &Match : Matches)
1297       AddBases(Match.first);
1298 
1299     // We can give up once we have a single item (or have run out of things to
1300     // search) since cyclical inheritance isn't valid.
1301     while (Matches.size() > 1 && !ToVisit.empty()) {
1302       const RecordType *NextT = ToVisit.pop_back_val();
1303       Matches.erase(NextT);
1304 
1305       // Always add all bases, since the inheritance tree can contain
1306       // disqualifications for multiple matches.
1307       AddBases(NextT);
1308     }
1309   }
1310 
1311   if (Matches.empty())
1312     return Sema::TDK_Invalid;
1313   if (Matches.size() > 1)
1314     return Sema::TDK_MiscellaneousDeductionFailure;
1315 
1316   std::swap(Matches.front().second, Deduced);
1317   return Sema::TDK_Success;
1318 }
1319 
1320 /// Deduce the template arguments by comparing the parameter type and
1321 /// the argument type (C++ [temp.deduct.type]).
1322 ///
1323 /// \param S the semantic analysis object within which we are deducing
1324 ///
1325 /// \param TemplateParams the template parameters that we are deducing
1326 ///
1327 /// \param ParamIn the parameter type
1328 ///
1329 /// \param ArgIn the argument type
1330 ///
1331 /// \param Info information about the template argument deduction itself
1332 ///
1333 /// \param Deduced the deduced template arguments
1334 ///
1335 /// \param TDF bitwise OR of the TemplateDeductionFlags bits that describe
1336 /// how template argument deduction is performed.
1337 ///
1338 /// \param PartialOrdering Whether we're performing template argument deduction
1339 /// in the context of partial ordering (C++0x [temp.deduct.partial]).
1340 ///
1341 /// \returns the result of template argument deduction so far. Note that a
1342 /// "success" result means that template argument deduction has not yet failed,
1343 /// but it may still fail, later, for other reasons.
1344 static Sema::TemplateDeductionResult
1345 DeduceTemplateArgumentsByTypeMatch(Sema &S,
1346                                    TemplateParameterList *TemplateParams,
1347                                    QualType ParamIn, QualType ArgIn,
1348                                    TemplateDeductionInfo &Info,
1349                             SmallVectorImpl<DeducedTemplateArgument> &Deduced,
1350                                    unsigned TDF,
1351                                    bool PartialOrdering,
1352                                    bool DeducedFromArrayBound) {
1353   // We only want to look at the canonical types, since typedefs and
1354   // sugar are not part of template argument deduction.
1355   QualType Param = S.Context.getCanonicalType(ParamIn);
1356   QualType Arg = S.Context.getCanonicalType(ArgIn);
1357 
1358   // If the argument type is a pack expansion, look at its pattern.
1359   // This isn't explicitly called out
1360   if (const PackExpansionType *ArgExpansion
1361                                             = dyn_cast<PackExpansionType>(Arg))
1362     Arg = ArgExpansion->getPattern();
1363 
1364   if (PartialOrdering) {
1365     // C++11 [temp.deduct.partial]p5:
1366     //   Before the partial ordering is done, certain transformations are
1367     //   performed on the types used for partial ordering:
1368     //     - If P is a reference type, P is replaced by the type referred to.
1369     const ReferenceType *ParamRef = Param->getAs<ReferenceType>();
1370     if (ParamRef)
1371       Param = ParamRef->getPointeeType();
1372 
1373     //     - If A is a reference type, A is replaced by the type referred to.
1374     const ReferenceType *ArgRef = Arg->getAs<ReferenceType>();
1375     if (ArgRef)
1376       Arg = ArgRef->getPointeeType();
1377 
1378     if (ParamRef && ArgRef && S.Context.hasSameUnqualifiedType(Param, Arg)) {
1379       // C++11 [temp.deduct.partial]p9:
1380       //   If, for a given type, deduction succeeds in both directions (i.e.,
1381       //   the types are identical after the transformations above) and both
1382       //   P and A were reference types [...]:
1383       //     - if [one type] was an lvalue reference and [the other type] was
1384       //       not, [the other type] is not considered to be at least as
1385       //       specialized as [the first type]
1386       //     - if [one type] is more cv-qualified than [the other type],
1387       //       [the other type] is not considered to be at least as specialized
1388       //       as [the first type]
1389       // Objective-C ARC adds:
1390       //     - [one type] has non-trivial lifetime, [the other type] has
1391       //       __unsafe_unretained lifetime, and the types are otherwise
1392       //       identical
1393       //
1394       // A is "considered to be at least as specialized" as P iff deduction
1395       // succeeds, so we model this as a deduction failure. Note that
1396       // [the first type] is P and [the other type] is A here; the standard
1397       // gets this backwards.
1398       Qualifiers ParamQuals = Param.getQualifiers();
1399       Qualifiers ArgQuals = Arg.getQualifiers();
1400       if ((ParamRef->isLValueReferenceType() &&
1401            !ArgRef->isLValueReferenceType()) ||
1402           ParamQuals.isStrictSupersetOf(ArgQuals) ||
1403           (ParamQuals.hasNonTrivialObjCLifetime() &&
1404            ArgQuals.getObjCLifetime() == Qualifiers::OCL_ExplicitNone &&
1405            ParamQuals.withoutObjCLifetime() ==
1406                ArgQuals.withoutObjCLifetime())) {
1407         Info.FirstArg = TemplateArgument(ParamIn);
1408         Info.SecondArg = TemplateArgument(ArgIn);
1409         return Sema::TDK_NonDeducedMismatch;
1410       }
1411     }
1412 
1413     // C++11 [temp.deduct.partial]p7:
1414     //   Remove any top-level cv-qualifiers:
1415     //     - If P is a cv-qualified type, P is replaced by the cv-unqualified
1416     //       version of P.
1417     Param = Param.getUnqualifiedType();
1418     //     - If A is a cv-qualified type, A is replaced by the cv-unqualified
1419     //       version of A.
1420     Arg = Arg.getUnqualifiedType();
1421   } else {
1422     // C++0x [temp.deduct.call]p4 bullet 1:
1423     //   - If the original P is a reference type, the deduced A (i.e., the type
1424     //     referred to by the reference) can be more cv-qualified than the
1425     //     transformed A.
1426     if (TDF & TDF_ParamWithReferenceType) {
1427       Qualifiers Quals;
1428       QualType UnqualParam = S.Context.getUnqualifiedArrayType(Param, Quals);
1429       Quals.setCVRQualifiers(Quals.getCVRQualifiers() &
1430                              Arg.getCVRQualifiers());
1431       Param = S.Context.getQualifiedType(UnqualParam, Quals);
1432     }
1433 
1434     if ((TDF & TDF_TopLevelParameterTypeList) && !Param->isFunctionType()) {
1435       // C++0x [temp.deduct.type]p10:
1436       //   If P and A are function types that originated from deduction when
1437       //   taking the address of a function template (14.8.2.2) or when deducing
1438       //   template arguments from a function declaration (14.8.2.6) and Pi and
1439       //   Ai are parameters of the top-level parameter-type-list of P and A,
1440       //   respectively, Pi is adjusted if it is a forwarding reference and Ai
1441       //   is an lvalue reference, in
1442       //   which case the type of Pi is changed to be the template parameter
1443       //   type (i.e., T&& is changed to simply T). [ Note: As a result, when
1444       //   Pi is T&& and Ai is X&, the adjusted Pi will be T, causing T to be
1445       //   deduced as X&. - end note ]
1446       TDF &= ~TDF_TopLevelParameterTypeList;
1447       if (isForwardingReference(Param, 0) && Arg->isLValueReferenceType())
1448         Param = Param->getPointeeType();
1449     }
1450   }
1451 
1452   // C++ [temp.deduct.type]p9:
1453   //   A template type argument T, a template template argument TT or a
1454   //   template non-type argument i can be deduced if P and A have one of
1455   //   the following forms:
1456   //
1457   //     T
1458   //     cv-list T
1459   if (const TemplateTypeParmType *TemplateTypeParm
1460         = Param->getAs<TemplateTypeParmType>()) {
1461     // Just skip any attempts to deduce from a placeholder type or a parameter
1462     // at a different depth.
1463     if (Arg->isPlaceholderType() ||
1464         Info.getDeducedDepth() != TemplateTypeParm->getDepth())
1465       return Sema::TDK_Success;
1466 
1467     unsigned Index = TemplateTypeParm->getIndex();
1468     bool RecanonicalizeArg = false;
1469 
1470     // If the argument type is an array type, move the qualifiers up to the
1471     // top level, so they can be matched with the qualifiers on the parameter.
1472     if (isa<ArrayType>(Arg)) {
1473       Qualifiers Quals;
1474       Arg = S.Context.getUnqualifiedArrayType(Arg, Quals);
1475       if (Quals) {
1476         Arg = S.Context.getQualifiedType(Arg, Quals);
1477         RecanonicalizeArg = true;
1478       }
1479     }
1480 
1481     // The argument type can not be less qualified than the parameter
1482     // type.
1483     if (!(TDF & TDF_IgnoreQualifiers) &&
1484         hasInconsistentOrSupersetQualifiersOf(Param, Arg)) {
1485       Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index));
1486       Info.FirstArg = TemplateArgument(Param);
1487       Info.SecondArg = TemplateArgument(Arg);
1488       return Sema::TDK_Underqualified;
1489     }
1490 
1491     // Do not match a function type with a cv-qualified type.
1492     // http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_active.html#1584
1493     if (Arg->isFunctionType() && Param.hasQualifiers()) {
1494       return Sema::TDK_NonDeducedMismatch;
1495     }
1496 
1497     assert(TemplateTypeParm->getDepth() == Info.getDeducedDepth() &&
1498            "saw template type parameter with wrong depth");
1499     assert(Arg != S.Context.OverloadTy && "Unresolved overloaded function");
1500     QualType DeducedType = Arg;
1501 
1502     // Remove any qualifiers on the parameter from the deduced type.
1503     // We checked the qualifiers for consistency above.
1504     Qualifiers DeducedQs = DeducedType.getQualifiers();
1505     Qualifiers ParamQs = Param.getQualifiers();
1506     DeducedQs.removeCVRQualifiers(ParamQs.getCVRQualifiers());
1507     if (ParamQs.hasObjCGCAttr())
1508       DeducedQs.removeObjCGCAttr();
1509     if (ParamQs.hasAddressSpace())
1510       DeducedQs.removeAddressSpace();
1511     if (ParamQs.hasObjCLifetime())
1512       DeducedQs.removeObjCLifetime();
1513 
1514     // Objective-C ARC:
1515     //   If template deduction would produce a lifetime qualifier on a type
1516     //   that is not a lifetime type, template argument deduction fails.
1517     if (ParamQs.hasObjCLifetime() && !DeducedType->isObjCLifetimeType() &&
1518         !DeducedType->isDependentType()) {
1519       Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index));
1520       Info.FirstArg = TemplateArgument(Param);
1521       Info.SecondArg = TemplateArgument(Arg);
1522       return Sema::TDK_Underqualified;
1523     }
1524 
1525     // Objective-C ARC:
1526     //   If template deduction would produce an argument type with lifetime type
1527     //   but no lifetime qualifier, the __strong lifetime qualifier is inferred.
1528     if (S.getLangOpts().ObjCAutoRefCount &&
1529         DeducedType->isObjCLifetimeType() &&
1530         !DeducedQs.hasObjCLifetime())
1531       DeducedQs.setObjCLifetime(Qualifiers::OCL_Strong);
1532 
1533     DeducedType = S.Context.getQualifiedType(DeducedType.getUnqualifiedType(),
1534                                              DeducedQs);
1535 
1536     if (RecanonicalizeArg)
1537       DeducedType = S.Context.getCanonicalType(DeducedType);
1538 
1539     DeducedTemplateArgument NewDeduced(DeducedType, DeducedFromArrayBound);
1540     DeducedTemplateArgument Result = checkDeducedTemplateArguments(S.Context,
1541                                                                  Deduced[Index],
1542                                                                    NewDeduced);
1543     if (Result.isNull()) {
1544       Info.Param = cast<TemplateTypeParmDecl>(TemplateParams->getParam(Index));
1545       Info.FirstArg = Deduced[Index];
1546       Info.SecondArg = NewDeduced;
1547       return Sema::TDK_Inconsistent;
1548     }
1549 
1550     Deduced[Index] = Result;
1551     return Sema::TDK_Success;
1552   }
1553 
1554   // Set up the template argument deduction information for a failure.
1555   Info.FirstArg = TemplateArgument(ParamIn);
1556   Info.SecondArg = TemplateArgument(ArgIn);
1557 
1558   // If the parameter is an already-substituted template parameter
1559   // pack, do nothing: we don't know which of its arguments to look
1560   // at, so we have to wait until all of the parameter packs in this
1561   // expansion have arguments.
1562   if (isa<SubstTemplateTypeParmPackType>(Param))
1563     return Sema::TDK_Success;
1564 
1565   // Check the cv-qualifiers on the parameter and argument types.
1566   CanQualType CanParam = S.Context.getCanonicalType(Param);
1567   CanQualType CanArg = S.Context.getCanonicalType(Arg);
1568   if (!(TDF & TDF_IgnoreQualifiers)) {
1569     if (TDF & TDF_ParamWithReferenceType) {
1570       if (hasInconsistentOrSupersetQualifiersOf(Param, Arg))
1571         return Sema::TDK_NonDeducedMismatch;
1572     } else if (TDF & TDF_ArgWithReferenceType) {
1573       // C++ [temp.deduct.conv]p4:
1574       //   If the original A is a reference type, A can be more cv-qualified
1575       //   than the deduced A
1576       if (!Arg.getQualifiers().compatiblyIncludes(Param.getQualifiers()))
1577         return Sema::TDK_NonDeducedMismatch;
1578 
1579       // Strip out all extra qualifiers from the argument to figure out the
1580       // type we're converting to, prior to the qualification conversion.
1581       Qualifiers Quals;
1582       Arg = S.Context.getUnqualifiedArrayType(Arg, Quals);
1583       Arg = S.Context.getQualifiedType(Arg, Param.getQualifiers());
1584     } else if (!IsPossiblyOpaquelyQualifiedType(Param)) {
1585       if (Param.getCVRQualifiers() != Arg.getCVRQualifiers())
1586         return Sema::TDK_NonDeducedMismatch;
1587     }
1588 
1589     // If the parameter type is not dependent, there is nothing to deduce.
1590     if (!Param->isDependentType()) {
1591       if (!(TDF & TDF_SkipNonDependent)) {
1592         bool NonDeduced =
1593             (TDF & TDF_AllowCompatibleFunctionType)
1594                 ? !S.isSameOrCompatibleFunctionType(CanParam, CanArg)
1595                 : Param != Arg;
1596         if (NonDeduced) {
1597           return Sema::TDK_NonDeducedMismatch;
1598         }
1599       }
1600       return Sema::TDK_Success;
1601     }
1602   } else if (!Param->isDependentType()) {
1603     if (!(TDF & TDF_SkipNonDependent)) {
1604       CanQualType ParamUnqualType = CanParam.getUnqualifiedType(),
1605                   ArgUnqualType = CanArg.getUnqualifiedType();
1606       bool Success =
1607           (TDF & TDF_AllowCompatibleFunctionType)
1608               ? S.isSameOrCompatibleFunctionType(ParamUnqualType, ArgUnqualType)
1609               : ParamUnqualType == ArgUnqualType;
1610       if (Success)
1611         return Sema::TDK_Success;
1612     } else {
1613       return Sema::TDK_Success;
1614     }
1615   }
1616 
1617   switch (Param->getTypeClass()) {
1618     // Non-canonical types cannot appear here.
1619 #define NON_CANONICAL_TYPE(Class, Base) \
1620   case Type::Class: llvm_unreachable("deducing non-canonical type: " #Class);
1621 #define TYPE(Class, Base)
1622 #include "clang/AST/TypeNodes.inc"
1623 
1624     case Type::TemplateTypeParm:
1625     case Type::SubstTemplateTypeParmPack:
1626       llvm_unreachable("Type nodes handled above");
1627 
1628     // These types cannot be dependent, so simply check whether the types are
1629     // the same.
1630     case Type::Builtin:
1631     case Type::VariableArray:
1632     case Type::Vector:
1633     case Type::FunctionNoProto:
1634     case Type::Record:
1635     case Type::Enum:
1636     case Type::ObjCObject:
1637     case Type::ObjCInterface:
1638     case Type::ObjCObjectPointer:
1639     case Type::ExtInt:
1640       if (TDF & TDF_SkipNonDependent)
1641         return Sema::TDK_Success;
1642 
1643       if (TDF & TDF_IgnoreQualifiers) {
1644         Param = Param.getUnqualifiedType();
1645         Arg = Arg.getUnqualifiedType();
1646       }
1647 
1648       return Param == Arg? Sema::TDK_Success : Sema::TDK_NonDeducedMismatch;
1649 
1650     //     _Complex T   [placeholder extension]
1651     case Type::Complex:
1652       if (const ComplexType *ComplexArg = Arg->getAs<ComplexType>())
1653         return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1654                                     cast<ComplexType>(Param)->getElementType(),
1655                                     ComplexArg->getElementType(),
1656                                     Info, Deduced, TDF);
1657 
1658       return Sema::TDK_NonDeducedMismatch;
1659 
1660     //     _Atomic T   [extension]
1661     case Type::Atomic:
1662       if (const AtomicType *AtomicArg = Arg->getAs<AtomicType>())
1663         return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1664                                        cast<AtomicType>(Param)->getValueType(),
1665                                        AtomicArg->getValueType(),
1666                                        Info, Deduced, TDF);
1667 
1668       return Sema::TDK_NonDeducedMismatch;
1669 
1670     //     T *
1671     case Type::Pointer: {
1672       QualType PointeeType;
1673       if (const PointerType *PointerArg = Arg->getAs<PointerType>()) {
1674         PointeeType = PointerArg->getPointeeType();
1675       } else if (const ObjCObjectPointerType *PointerArg
1676                    = Arg->getAs<ObjCObjectPointerType>()) {
1677         PointeeType = PointerArg->getPointeeType();
1678       } else {
1679         return Sema::TDK_NonDeducedMismatch;
1680       }
1681 
1682       unsigned SubTDF = TDF & (TDF_IgnoreQualifiers | TDF_DerivedClass);
1683       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1684                                      cast<PointerType>(Param)->getPointeeType(),
1685                                      PointeeType,
1686                                      Info, Deduced, SubTDF);
1687     }
1688 
1689     //     T &
1690     case Type::LValueReference: {
1691       const LValueReferenceType *ReferenceArg =
1692           Arg->getAs<LValueReferenceType>();
1693       if (!ReferenceArg)
1694         return Sema::TDK_NonDeducedMismatch;
1695 
1696       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1697                            cast<LValueReferenceType>(Param)->getPointeeType(),
1698                            ReferenceArg->getPointeeType(), Info, Deduced, 0);
1699     }
1700 
1701     //     T && [C++0x]
1702     case Type::RValueReference: {
1703       const RValueReferenceType *ReferenceArg =
1704           Arg->getAs<RValueReferenceType>();
1705       if (!ReferenceArg)
1706         return Sema::TDK_NonDeducedMismatch;
1707 
1708       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1709                              cast<RValueReferenceType>(Param)->getPointeeType(),
1710                              ReferenceArg->getPointeeType(),
1711                              Info, Deduced, 0);
1712     }
1713 
1714     //     T [] (implied, but not stated explicitly)
1715     case Type::IncompleteArray: {
1716       const IncompleteArrayType *IncompleteArrayArg =
1717         S.Context.getAsIncompleteArrayType(Arg);
1718       if (!IncompleteArrayArg)
1719         return Sema::TDK_NonDeducedMismatch;
1720 
1721       unsigned SubTDF = TDF & TDF_IgnoreQualifiers;
1722       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1723                     S.Context.getAsIncompleteArrayType(Param)->getElementType(),
1724                     IncompleteArrayArg->getElementType(),
1725                     Info, Deduced, SubTDF);
1726     }
1727 
1728     //     T [integer-constant]
1729     case Type::ConstantArray: {
1730       const ConstantArrayType *ConstantArrayArg =
1731         S.Context.getAsConstantArrayType(Arg);
1732       if (!ConstantArrayArg)
1733         return Sema::TDK_NonDeducedMismatch;
1734 
1735       const ConstantArrayType *ConstantArrayParm =
1736         S.Context.getAsConstantArrayType(Param);
1737       if (ConstantArrayArg->getSize() != ConstantArrayParm->getSize())
1738         return Sema::TDK_NonDeducedMismatch;
1739 
1740       unsigned SubTDF = TDF & TDF_IgnoreQualifiers;
1741       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1742                                            ConstantArrayParm->getElementType(),
1743                                            ConstantArrayArg->getElementType(),
1744                                            Info, Deduced, SubTDF);
1745     }
1746 
1747     //     type [i]
1748     case Type::DependentSizedArray: {
1749       const ArrayType *ArrayArg = S.Context.getAsArrayType(Arg);
1750       if (!ArrayArg)
1751         return Sema::TDK_NonDeducedMismatch;
1752 
1753       unsigned SubTDF = TDF & TDF_IgnoreQualifiers;
1754 
1755       // Check the element type of the arrays
1756       const DependentSizedArrayType *DependentArrayParm
1757         = S.Context.getAsDependentSizedArrayType(Param);
1758       if (Sema::TemplateDeductionResult Result
1759             = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1760                                           DependentArrayParm->getElementType(),
1761                                           ArrayArg->getElementType(),
1762                                           Info, Deduced, SubTDF))
1763         return Result;
1764 
1765       // Determine the array bound is something we can deduce.
1766       const NonTypeTemplateParmDecl *NTTP
1767         = getDeducedParameterFromExpr(Info, DependentArrayParm->getSizeExpr());
1768       if (!NTTP)
1769         return Sema::TDK_Success;
1770 
1771       // We can perform template argument deduction for the given non-type
1772       // template parameter.
1773       assert(NTTP->getDepth() == Info.getDeducedDepth() &&
1774              "saw non-type template parameter with wrong depth");
1775       if (const ConstantArrayType *ConstantArrayArg
1776             = dyn_cast<ConstantArrayType>(ArrayArg)) {
1777         llvm::APSInt Size(ConstantArrayArg->getSize());
1778         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP, Size,
1779                                              S.Context.getSizeType(),
1780                                              /*ArrayBound=*/true,
1781                                              Info, Deduced);
1782       }
1783       if (const DependentSizedArrayType *DependentArrayArg
1784             = dyn_cast<DependentSizedArrayType>(ArrayArg))
1785         if (DependentArrayArg->getSizeExpr())
1786           return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP,
1787                                                DependentArrayArg->getSizeExpr(),
1788                                                Info, Deduced);
1789 
1790       // Incomplete type does not match a dependently-sized array type
1791       return Sema::TDK_NonDeducedMismatch;
1792     }
1793 
1794     //     type(*)(T)
1795     //     T(*)()
1796     //     T(*)(T)
1797     case Type::FunctionProto: {
1798       unsigned SubTDF = TDF & TDF_TopLevelParameterTypeList;
1799       const FunctionProtoType *FunctionProtoArg =
1800         dyn_cast<FunctionProtoType>(Arg);
1801       if (!FunctionProtoArg)
1802         return Sema::TDK_NonDeducedMismatch;
1803 
1804       const FunctionProtoType *FunctionProtoParam =
1805         cast<FunctionProtoType>(Param);
1806 
1807       if (FunctionProtoParam->getMethodQuals()
1808             != FunctionProtoArg->getMethodQuals() ||
1809           FunctionProtoParam->getRefQualifier()
1810             != FunctionProtoArg->getRefQualifier() ||
1811           FunctionProtoParam->isVariadic() != FunctionProtoArg->isVariadic())
1812         return Sema::TDK_NonDeducedMismatch;
1813 
1814       // Check return types.
1815       if (auto Result = DeduceTemplateArgumentsByTypeMatch(
1816               S, TemplateParams, FunctionProtoParam->getReturnType(),
1817               FunctionProtoArg->getReturnType(), Info, Deduced, 0))
1818         return Result;
1819 
1820       // Check parameter types.
1821       if (auto Result = DeduceTemplateArguments(
1822               S, TemplateParams, FunctionProtoParam->param_type_begin(),
1823               FunctionProtoParam->getNumParams(),
1824               FunctionProtoArg->param_type_begin(),
1825               FunctionProtoArg->getNumParams(), Info, Deduced, SubTDF))
1826         return Result;
1827 
1828       if (TDF & TDF_AllowCompatibleFunctionType)
1829         return Sema::TDK_Success;
1830 
1831       // FIXME: Per core-2016/10/1019 (no corresponding core issue yet), permit
1832       // deducing through the noexcept-specifier if it's part of the canonical
1833       // type. libstdc++ relies on this.
1834       Expr *NoexceptExpr = FunctionProtoParam->getNoexceptExpr();
1835       if (const NonTypeTemplateParmDecl *NTTP =
1836           NoexceptExpr ? getDeducedParameterFromExpr(Info, NoexceptExpr)
1837                        : nullptr) {
1838         assert(NTTP->getDepth() == Info.getDeducedDepth() &&
1839                "saw non-type template parameter with wrong depth");
1840 
1841         llvm::APSInt Noexcept(1);
1842         switch (FunctionProtoArg->canThrow()) {
1843         case CT_Cannot:
1844           Noexcept = 1;
1845           LLVM_FALLTHROUGH;
1846 
1847         case CT_Can:
1848           // We give E in noexcept(E) the "deduced from array bound" treatment.
1849           // FIXME: Should we?
1850           return DeduceNonTypeTemplateArgument(
1851               S, TemplateParams, NTTP, Noexcept, S.Context.BoolTy,
1852               /*ArrayBound*/true, Info, Deduced);
1853 
1854         case CT_Dependent:
1855           if (Expr *ArgNoexceptExpr = FunctionProtoArg->getNoexceptExpr())
1856             return DeduceNonTypeTemplateArgument(
1857                 S, TemplateParams, NTTP, ArgNoexceptExpr, Info, Deduced);
1858           // Can't deduce anything from throw(T...).
1859           break;
1860         }
1861       }
1862       // FIXME: Detect non-deduced exception specification mismatches?
1863       //
1864       // Careful about [temp.deduct.call] and [temp.deduct.conv], which allow
1865       // top-level differences in noexcept-specifications.
1866 
1867       return Sema::TDK_Success;
1868     }
1869 
1870     case Type::InjectedClassName:
1871       // Treat a template's injected-class-name as if the template
1872       // specialization type had been used.
1873       Param = cast<InjectedClassNameType>(Param)
1874         ->getInjectedSpecializationType();
1875       assert(isa<TemplateSpecializationType>(Param) &&
1876              "injected class name is not a template specialization type");
1877       LLVM_FALLTHROUGH;
1878 
1879     //     template-name<T> (where template-name refers to a class template)
1880     //     template-name<i>
1881     //     TT<T>
1882     //     TT<i>
1883     //     TT<>
1884     case Type::TemplateSpecialization: {
1885       const TemplateSpecializationType *SpecParam =
1886           cast<TemplateSpecializationType>(Param);
1887 
1888       // When Arg cannot be a derived class, we can just try to deduce template
1889       // arguments from the template-id.
1890       const RecordType *RecordT = Arg->getAs<RecordType>();
1891       if (!(TDF & TDF_DerivedClass) || !RecordT)
1892         return DeduceTemplateArguments(S, TemplateParams, SpecParam, Arg, Info,
1893                                        Deduced);
1894 
1895       SmallVector<DeducedTemplateArgument, 8> DeducedOrig(Deduced.begin(),
1896                                                           Deduced.end());
1897 
1898       Sema::TemplateDeductionResult Result = DeduceTemplateArguments(
1899           S, TemplateParams, SpecParam, Arg, Info, Deduced);
1900 
1901       if (Result == Sema::TDK_Success)
1902         return Result;
1903 
1904       // We cannot inspect base classes as part of deduction when the type
1905       // is incomplete, so either instantiate any templates necessary to
1906       // complete the type, or skip over it if it cannot be completed.
1907       if (!S.isCompleteType(Info.getLocation(), Arg))
1908         return Result;
1909 
1910       // Reset the incorrectly deduced argument from above.
1911       Deduced = DeducedOrig;
1912 
1913       // Check bases according to C++14 [temp.deduct.call] p4b3:
1914       Sema::TemplateDeductionResult BaseResult = DeduceTemplateBases(
1915           S, RecordT, TemplateParams, SpecParam, Info, Deduced);
1916 
1917       if (BaseResult != Sema::TDK_Invalid)
1918         return BaseResult;
1919       return Result;
1920     }
1921 
1922     //     T type::*
1923     //     T T::*
1924     //     T (type::*)()
1925     //     type (T::*)()
1926     //     type (type::*)(T)
1927     //     type (T::*)(T)
1928     //     T (type::*)(T)
1929     //     T (T::*)()
1930     //     T (T::*)(T)
1931     case Type::MemberPointer: {
1932       const MemberPointerType *MemPtrParam = cast<MemberPointerType>(Param);
1933       const MemberPointerType *MemPtrArg = dyn_cast<MemberPointerType>(Arg);
1934       if (!MemPtrArg)
1935         return Sema::TDK_NonDeducedMismatch;
1936 
1937       QualType ParamPointeeType = MemPtrParam->getPointeeType();
1938       if (ParamPointeeType->isFunctionType())
1939         S.adjustMemberFunctionCC(ParamPointeeType, /*IsStatic=*/true,
1940                                  /*IsCtorOrDtor=*/false, Info.getLocation());
1941       QualType ArgPointeeType = MemPtrArg->getPointeeType();
1942       if (ArgPointeeType->isFunctionType())
1943         S.adjustMemberFunctionCC(ArgPointeeType, /*IsStatic=*/true,
1944                                  /*IsCtorOrDtor=*/false, Info.getLocation());
1945 
1946       if (Sema::TemplateDeductionResult Result
1947             = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1948                                                  ParamPointeeType,
1949                                                  ArgPointeeType,
1950                                                  Info, Deduced,
1951                                                  TDF & TDF_IgnoreQualifiers))
1952         return Result;
1953 
1954       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1955                                            QualType(MemPtrParam->getClass(), 0),
1956                                            QualType(MemPtrArg->getClass(), 0),
1957                                            Info, Deduced,
1958                                            TDF & TDF_IgnoreQualifiers);
1959     }
1960 
1961     //     (clang extension)
1962     //
1963     //     type(^)(T)
1964     //     T(^)()
1965     //     T(^)(T)
1966     case Type::BlockPointer: {
1967       const BlockPointerType *BlockPtrParam = cast<BlockPointerType>(Param);
1968       const BlockPointerType *BlockPtrArg = dyn_cast<BlockPointerType>(Arg);
1969 
1970       if (!BlockPtrArg)
1971         return Sema::TDK_NonDeducedMismatch;
1972 
1973       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1974                                                 BlockPtrParam->getPointeeType(),
1975                                                 BlockPtrArg->getPointeeType(),
1976                                                 Info, Deduced, 0);
1977     }
1978 
1979     //     (clang extension)
1980     //
1981     //     T __attribute__(((ext_vector_type(<integral constant>))))
1982     case Type::ExtVector: {
1983       const ExtVectorType *VectorParam = cast<ExtVectorType>(Param);
1984       if (const ExtVectorType *VectorArg = dyn_cast<ExtVectorType>(Arg)) {
1985         // Make sure that the vectors have the same number of elements.
1986         if (VectorParam->getNumElements() != VectorArg->getNumElements())
1987           return Sema::TDK_NonDeducedMismatch;
1988 
1989         // Perform deduction on the element types.
1990         return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
1991                                                   VectorParam->getElementType(),
1992                                                   VectorArg->getElementType(),
1993                                                   Info, Deduced, TDF);
1994       }
1995 
1996       if (const DependentSizedExtVectorType *VectorArg
1997                                 = dyn_cast<DependentSizedExtVectorType>(Arg)) {
1998         // We can't check the number of elements, since the argument has a
1999         // dependent number of elements. This can only occur during partial
2000         // ordering.
2001 
2002         // Perform deduction on the element types.
2003         return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
2004                                                   VectorParam->getElementType(),
2005                                                   VectorArg->getElementType(),
2006                                                   Info, Deduced, TDF);
2007       }
2008 
2009       return Sema::TDK_NonDeducedMismatch;
2010     }
2011 
2012     case Type::DependentVector: {
2013       const auto *VectorParam = cast<DependentVectorType>(Param);
2014 
2015       if (const auto *VectorArg = dyn_cast<VectorType>(Arg)) {
2016         // Perform deduction on the element types.
2017         if (Sema::TemplateDeductionResult Result =
2018                 DeduceTemplateArgumentsByTypeMatch(
2019                     S, TemplateParams, VectorParam->getElementType(),
2020                     VectorArg->getElementType(), Info, Deduced, TDF))
2021           return Result;
2022 
2023         // Perform deduction on the vector size, if we can.
2024         const NonTypeTemplateParmDecl *NTTP =
2025             getDeducedParameterFromExpr(Info, VectorParam->getSizeExpr());
2026         if (!NTTP)
2027           return Sema::TDK_Success;
2028 
2029         llvm::APSInt ArgSize(S.Context.getTypeSize(S.Context.IntTy), false);
2030         ArgSize = VectorArg->getNumElements();
2031         // Note that we use the "array bound" rules here; just like in that
2032         // case, we don't have any particular type for the vector size, but
2033         // we can provide one if necessary.
2034         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP, ArgSize,
2035                                              S.Context.UnsignedIntTy, true,
2036                                              Info, Deduced);
2037       }
2038 
2039       if (const auto *VectorArg = dyn_cast<DependentVectorType>(Arg)) {
2040         // Perform deduction on the element types.
2041         if (Sema::TemplateDeductionResult Result =
2042                 DeduceTemplateArgumentsByTypeMatch(
2043                     S, TemplateParams, VectorParam->getElementType(),
2044                     VectorArg->getElementType(), Info, Deduced, TDF))
2045           return Result;
2046 
2047         // Perform deduction on the vector size, if we can.
2048         const NonTypeTemplateParmDecl *NTTP = getDeducedParameterFromExpr(
2049             Info, VectorParam->getSizeExpr());
2050         if (!NTTP)
2051           return Sema::TDK_Success;
2052 
2053         return DeduceNonTypeTemplateArgument(
2054             S, TemplateParams, NTTP, VectorArg->getSizeExpr(), Info, Deduced);
2055       }
2056 
2057       return Sema::TDK_NonDeducedMismatch;
2058     }
2059 
2060     //     (clang extension)
2061     //
2062     //     T __attribute__(((ext_vector_type(N))))
2063     case Type::DependentSizedExtVector: {
2064       const DependentSizedExtVectorType *VectorParam
2065         = cast<DependentSizedExtVectorType>(Param);
2066 
2067       if (const ExtVectorType *VectorArg = dyn_cast<ExtVectorType>(Arg)) {
2068         // Perform deduction on the element types.
2069         if (Sema::TemplateDeductionResult Result
2070               = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
2071                                                   VectorParam->getElementType(),
2072                                                    VectorArg->getElementType(),
2073                                                    Info, Deduced, TDF))
2074           return Result;
2075 
2076         // Perform deduction on the vector size, if we can.
2077         const NonTypeTemplateParmDecl *NTTP =
2078             getDeducedParameterFromExpr(Info, VectorParam->getSizeExpr());
2079         if (!NTTP)
2080           return Sema::TDK_Success;
2081 
2082         llvm::APSInt ArgSize(S.Context.getTypeSize(S.Context.IntTy), false);
2083         ArgSize = VectorArg->getNumElements();
2084         // Note that we use the "array bound" rules here; just like in that
2085         // case, we don't have any particular type for the vector size, but
2086         // we can provide one if necessary.
2087         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP, ArgSize,
2088                                              S.Context.IntTy, true, Info,
2089                                              Deduced);
2090       }
2091 
2092       if (const DependentSizedExtVectorType *VectorArg
2093                                 = dyn_cast<DependentSizedExtVectorType>(Arg)) {
2094         // Perform deduction on the element types.
2095         if (Sema::TemplateDeductionResult Result
2096             = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
2097                                                  VectorParam->getElementType(),
2098                                                  VectorArg->getElementType(),
2099                                                  Info, Deduced, TDF))
2100           return Result;
2101 
2102         // Perform deduction on the vector size, if we can.
2103         const NonTypeTemplateParmDecl *NTTP =
2104             getDeducedParameterFromExpr(Info, VectorParam->getSizeExpr());
2105         if (!NTTP)
2106           return Sema::TDK_Success;
2107 
2108         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP,
2109                                              VectorArg->getSizeExpr(),
2110                                              Info, Deduced);
2111       }
2112 
2113       return Sema::TDK_NonDeducedMismatch;
2114     }
2115 
2116     //     (clang extension)
2117     //
2118     //     T __attribute__((matrix_type(<integral constant>,
2119     //                                  <integral constant>)))
2120     case Type::ConstantMatrix: {
2121       const ConstantMatrixType *MatrixArg = dyn_cast<ConstantMatrixType>(Arg);
2122       if (!MatrixArg)
2123         return Sema::TDK_NonDeducedMismatch;
2124 
2125       const ConstantMatrixType *MatrixParam = cast<ConstantMatrixType>(Param);
2126       // Check that the dimensions are the same
2127       if (MatrixParam->getNumRows() != MatrixArg->getNumRows() ||
2128           MatrixParam->getNumColumns() != MatrixArg->getNumColumns()) {
2129         return Sema::TDK_NonDeducedMismatch;
2130       }
2131       // Perform deduction on element types.
2132       return DeduceTemplateArgumentsByTypeMatch(
2133           S, TemplateParams, MatrixParam->getElementType(),
2134           MatrixArg->getElementType(), Info, Deduced, TDF);
2135     }
2136 
2137     case Type::DependentSizedMatrix: {
2138       const MatrixType *MatrixArg = dyn_cast<MatrixType>(Arg);
2139       if (!MatrixArg)
2140         return Sema::TDK_NonDeducedMismatch;
2141 
2142       // Check the element type of the matrixes.
2143       const DependentSizedMatrixType *MatrixParam =
2144           cast<DependentSizedMatrixType>(Param);
2145       if (Sema::TemplateDeductionResult Result =
2146               DeduceTemplateArgumentsByTypeMatch(
2147                   S, TemplateParams, MatrixParam->getElementType(),
2148                   MatrixArg->getElementType(), Info, Deduced, TDF))
2149         return Result;
2150 
2151       // Try to deduce a matrix dimension.
2152       auto DeduceMatrixArg =
2153           [&S, &Info, &Deduced, &TemplateParams](
2154               Expr *ParamExpr, const MatrixType *Arg,
2155               unsigned (ConstantMatrixType::*GetArgDimension)() const,
2156               Expr *(DependentSizedMatrixType::*GetArgDimensionExpr)() const) {
2157             const auto *ArgConstMatrix = dyn_cast<ConstantMatrixType>(Arg);
2158             const auto *ArgDepMatrix = dyn_cast<DependentSizedMatrixType>(Arg);
2159             if (!ParamExpr->isValueDependent()) {
2160               Optional<llvm::APSInt> ParamConst =
2161                   ParamExpr->getIntegerConstantExpr(S.Context);
2162               if (!ParamConst)
2163                 return Sema::TDK_NonDeducedMismatch;
2164 
2165               if (ArgConstMatrix) {
2166                 if ((ArgConstMatrix->*GetArgDimension)() == *ParamConst)
2167                   return Sema::TDK_Success;
2168                 return Sema::TDK_NonDeducedMismatch;
2169               }
2170 
2171               Expr *ArgExpr = (ArgDepMatrix->*GetArgDimensionExpr)();
2172               if (!ArgExpr->isValueDependent())
2173                 if (Optional<llvm::APSInt> ArgConst =
2174                         ArgExpr->getIntegerConstantExpr(S.Context))
2175                   if (*ArgConst == *ParamConst)
2176                     return Sema::TDK_Success;
2177               return Sema::TDK_NonDeducedMismatch;
2178             }
2179 
2180             const NonTypeTemplateParmDecl *NTTP =
2181                 getDeducedParameterFromExpr(Info, ParamExpr);
2182             if (!NTTP)
2183               return Sema::TDK_Success;
2184 
2185             if (ArgConstMatrix) {
2186               llvm::APSInt ArgConst(
2187                   S.Context.getTypeSize(S.Context.getSizeType()));
2188               ArgConst = (ArgConstMatrix->*GetArgDimension)();
2189               return DeduceNonTypeTemplateArgument(
2190                   S, TemplateParams, NTTP, ArgConst, S.Context.getSizeType(),
2191                   /*ArrayBound=*/true, Info, Deduced);
2192             }
2193 
2194             return DeduceNonTypeTemplateArgument(
2195                 S, TemplateParams, NTTP, (ArgDepMatrix->*GetArgDimensionExpr)(),
2196                 Info, Deduced);
2197           };
2198 
2199       auto Result = DeduceMatrixArg(MatrixParam->getRowExpr(), MatrixArg,
2200                                     &ConstantMatrixType::getNumRows,
2201                                     &DependentSizedMatrixType::getRowExpr);
2202       if (Result)
2203         return Result;
2204 
2205       return DeduceMatrixArg(MatrixParam->getColumnExpr(), MatrixArg,
2206                              &ConstantMatrixType::getNumColumns,
2207                              &DependentSizedMatrixType::getColumnExpr);
2208     }
2209 
2210     //     (clang extension)
2211     //
2212     //     T __attribute__(((address_space(N))))
2213     case Type::DependentAddressSpace: {
2214       const DependentAddressSpaceType *AddressSpaceParam =
2215           cast<DependentAddressSpaceType>(Param);
2216 
2217       if (const DependentAddressSpaceType *AddressSpaceArg =
2218               dyn_cast<DependentAddressSpaceType>(Arg)) {
2219         // Perform deduction on the pointer type.
2220         if (Sema::TemplateDeductionResult Result =
2221                 DeduceTemplateArgumentsByTypeMatch(
2222                     S, TemplateParams, AddressSpaceParam->getPointeeType(),
2223                     AddressSpaceArg->getPointeeType(), Info, Deduced, TDF))
2224           return Result;
2225 
2226         // Perform deduction on the address space, if we can.
2227         const NonTypeTemplateParmDecl *NTTP = getDeducedParameterFromExpr(
2228             Info, AddressSpaceParam->getAddrSpaceExpr());
2229         if (!NTTP)
2230           return Sema::TDK_Success;
2231 
2232         return DeduceNonTypeTemplateArgument(
2233             S, TemplateParams, NTTP, AddressSpaceArg->getAddrSpaceExpr(), Info,
2234             Deduced);
2235       }
2236 
2237       if (isTargetAddressSpace(Arg.getAddressSpace())) {
2238         llvm::APSInt ArgAddressSpace(S.Context.getTypeSize(S.Context.IntTy),
2239                                      false);
2240         ArgAddressSpace = toTargetAddressSpace(Arg.getAddressSpace());
2241 
2242         // Perform deduction on the pointer types.
2243         if (Sema::TemplateDeductionResult Result =
2244                 DeduceTemplateArgumentsByTypeMatch(
2245                     S, TemplateParams, AddressSpaceParam->getPointeeType(),
2246                     S.Context.removeAddrSpaceQualType(Arg), Info, Deduced, TDF))
2247           return Result;
2248 
2249         // Perform deduction on the address space, if we can.
2250         const NonTypeTemplateParmDecl *NTTP = getDeducedParameterFromExpr(
2251             Info, AddressSpaceParam->getAddrSpaceExpr());
2252         if (!NTTP)
2253           return Sema::TDK_Success;
2254 
2255         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP,
2256                                              ArgAddressSpace, S.Context.IntTy,
2257                                              true, Info, Deduced);
2258       }
2259 
2260       return Sema::TDK_NonDeducedMismatch;
2261     }
2262     case Type::DependentExtInt: {
2263       const auto *IntParam = cast<DependentExtIntType>(Param);
2264 
2265       if (const auto *IntArg = dyn_cast<ExtIntType>(Arg)){
2266         if (IntParam->isUnsigned() != IntArg->isUnsigned())
2267           return Sema::TDK_NonDeducedMismatch;
2268 
2269         const NonTypeTemplateParmDecl *NTTP =
2270             getDeducedParameterFromExpr(Info, IntParam->getNumBitsExpr());
2271         if (!NTTP)
2272           return Sema::TDK_Success;
2273 
2274         llvm::APSInt ArgSize(S.Context.getTypeSize(S.Context.IntTy), false);
2275         ArgSize = IntArg->getNumBits();
2276 
2277         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP, ArgSize,
2278                                              S.Context.IntTy, true, Info,
2279                                              Deduced);
2280       }
2281 
2282       if (const auto *IntArg = dyn_cast<DependentExtIntType>(Arg)) {
2283         if (IntParam->isUnsigned() != IntArg->isUnsigned())
2284           return Sema::TDK_NonDeducedMismatch;
2285         return Sema::TDK_Success;
2286       }
2287       return Sema::TDK_NonDeducedMismatch;
2288     }
2289 
2290     case Type::TypeOfExpr:
2291     case Type::TypeOf:
2292     case Type::DependentName:
2293     case Type::UnresolvedUsing:
2294     case Type::Decltype:
2295     case Type::UnaryTransform:
2296     case Type::Auto:
2297     case Type::DeducedTemplateSpecialization:
2298     case Type::DependentTemplateSpecialization:
2299     case Type::PackExpansion:
2300     case Type::Pipe:
2301       // No template argument deduction for these types
2302       return Sema::TDK_Success;
2303   }
2304 
2305   llvm_unreachable("Invalid Type Class!");
2306 }
2307 
2308 static Sema::TemplateDeductionResult
2309 DeduceTemplateArguments(Sema &S,
2310                         TemplateParameterList *TemplateParams,
2311                         const TemplateArgument &Param,
2312                         TemplateArgument Arg,
2313                         TemplateDeductionInfo &Info,
2314                         SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
2315   // If the template argument is a pack expansion, perform template argument
2316   // deduction against the pattern of that expansion. This only occurs during
2317   // partial ordering.
2318   if (Arg.isPackExpansion())
2319     Arg = Arg.getPackExpansionPattern();
2320 
2321   switch (Param.getKind()) {
2322   case TemplateArgument::Null:
2323     llvm_unreachable("Null template argument in parameter list");
2324 
2325   case TemplateArgument::Type:
2326     if (Arg.getKind() == TemplateArgument::Type)
2327       return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
2328                                                 Param.getAsType(),
2329                                                 Arg.getAsType(),
2330                                                 Info, Deduced, 0);
2331     Info.FirstArg = Param;
2332     Info.SecondArg = Arg;
2333     return Sema::TDK_NonDeducedMismatch;
2334 
2335   case TemplateArgument::Template:
2336     if (Arg.getKind() == TemplateArgument::Template)
2337       return DeduceTemplateArguments(S, TemplateParams,
2338                                      Param.getAsTemplate(),
2339                                      Arg.getAsTemplate(), Info, Deduced);
2340     Info.FirstArg = Param;
2341     Info.SecondArg = Arg;
2342     return Sema::TDK_NonDeducedMismatch;
2343 
2344   case TemplateArgument::TemplateExpansion:
2345     llvm_unreachable("caller should handle pack expansions");
2346 
2347   case TemplateArgument::Declaration:
2348     if (Arg.getKind() == TemplateArgument::Declaration &&
2349         isSameDeclaration(Param.getAsDecl(), Arg.getAsDecl()))
2350       return Sema::TDK_Success;
2351 
2352     Info.FirstArg = Param;
2353     Info.SecondArg = Arg;
2354     return Sema::TDK_NonDeducedMismatch;
2355 
2356   case TemplateArgument::NullPtr:
2357     if (Arg.getKind() == TemplateArgument::NullPtr &&
2358         S.Context.hasSameType(Param.getNullPtrType(), Arg.getNullPtrType()))
2359       return Sema::TDK_Success;
2360 
2361     Info.FirstArg = Param;
2362     Info.SecondArg = Arg;
2363     return Sema::TDK_NonDeducedMismatch;
2364 
2365   case TemplateArgument::Integral:
2366     if (Arg.getKind() == TemplateArgument::Integral) {
2367       if (hasSameExtendedValue(Param.getAsIntegral(), Arg.getAsIntegral()))
2368         return Sema::TDK_Success;
2369 
2370       Info.FirstArg = Param;
2371       Info.SecondArg = Arg;
2372       return Sema::TDK_NonDeducedMismatch;
2373     }
2374 
2375     if (Arg.getKind() == TemplateArgument::Expression) {
2376       Info.FirstArg = Param;
2377       Info.SecondArg = Arg;
2378       return Sema::TDK_NonDeducedMismatch;
2379     }
2380 
2381     Info.FirstArg = Param;
2382     Info.SecondArg = Arg;
2383     return Sema::TDK_NonDeducedMismatch;
2384 
2385   case TemplateArgument::Expression:
2386     if (const NonTypeTemplateParmDecl *NTTP =
2387             getDeducedParameterFromExpr(Info, Param.getAsExpr())) {
2388       if (Arg.getKind() == TemplateArgument::Integral)
2389         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP,
2390                                              Arg.getAsIntegral(),
2391                                              Arg.getIntegralType(),
2392                                              /*ArrayBound=*/false,
2393                                              Info, Deduced);
2394       if (Arg.getKind() == TemplateArgument::NullPtr)
2395         return DeduceNullPtrTemplateArgument(S, TemplateParams, NTTP,
2396                                              Arg.getNullPtrType(),
2397                                              Info, Deduced);
2398       if (Arg.getKind() == TemplateArgument::Expression)
2399         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP,
2400                                              Arg.getAsExpr(), Info, Deduced);
2401       if (Arg.getKind() == TemplateArgument::Declaration)
2402         return DeduceNonTypeTemplateArgument(S, TemplateParams, NTTP,
2403                                              Arg.getAsDecl(),
2404                                              Arg.getParamTypeForDecl(),
2405                                              Info, Deduced);
2406 
2407       Info.FirstArg = Param;
2408       Info.SecondArg = Arg;
2409       return Sema::TDK_NonDeducedMismatch;
2410     }
2411 
2412     // Can't deduce anything, but that's okay.
2413     return Sema::TDK_Success;
2414 
2415   case TemplateArgument::Pack:
2416     llvm_unreachable("Argument packs should be expanded by the caller!");
2417   }
2418 
2419   llvm_unreachable("Invalid TemplateArgument Kind!");
2420 }
2421 
2422 /// Determine whether there is a template argument to be used for
2423 /// deduction.
2424 ///
2425 /// This routine "expands" argument packs in-place, overriding its input
2426 /// parameters so that \c Args[ArgIdx] will be the available template argument.
2427 ///
2428 /// \returns true if there is another template argument (which will be at
2429 /// \c Args[ArgIdx]), false otherwise.
2430 static bool hasTemplateArgumentForDeduction(ArrayRef<TemplateArgument> &Args,
2431                                             unsigned &ArgIdx) {
2432   if (ArgIdx == Args.size())
2433     return false;
2434 
2435   const TemplateArgument &Arg = Args[ArgIdx];
2436   if (Arg.getKind() != TemplateArgument::Pack)
2437     return true;
2438 
2439   assert(ArgIdx == Args.size() - 1 && "Pack not at the end of argument list?");
2440   Args = Arg.pack_elements();
2441   ArgIdx = 0;
2442   return ArgIdx < Args.size();
2443 }
2444 
2445 /// Determine whether the given set of template arguments has a pack
2446 /// expansion that is not the last template argument.
2447 static bool hasPackExpansionBeforeEnd(ArrayRef<TemplateArgument> Args) {
2448   bool FoundPackExpansion = false;
2449   for (const auto &A : Args) {
2450     if (FoundPackExpansion)
2451       return true;
2452 
2453     if (A.getKind() == TemplateArgument::Pack)
2454       return hasPackExpansionBeforeEnd(A.pack_elements());
2455 
2456     // FIXME: If this is a fixed-arity pack expansion from an outer level of
2457     // templates, it should not be treated as a pack expansion.
2458     if (A.isPackExpansion())
2459       FoundPackExpansion = true;
2460   }
2461 
2462   return false;
2463 }
2464 
2465 static Sema::TemplateDeductionResult
2466 DeduceTemplateArguments(Sema &S, TemplateParameterList *TemplateParams,
2467                         ArrayRef<TemplateArgument> Params,
2468                         ArrayRef<TemplateArgument> Args,
2469                         TemplateDeductionInfo &Info,
2470                         SmallVectorImpl<DeducedTemplateArgument> &Deduced,
2471                         bool NumberOfArgumentsMustMatch) {
2472   // C++0x [temp.deduct.type]p9:
2473   //   If the template argument list of P contains a pack expansion that is not
2474   //   the last template argument, the entire template argument list is a
2475   //   non-deduced context.
2476   if (hasPackExpansionBeforeEnd(Params))
2477     return Sema::TDK_Success;
2478 
2479   // C++0x [temp.deduct.type]p9:
2480   //   If P has a form that contains <T> or <i>, then each argument Pi of the
2481   //   respective template argument list P is compared with the corresponding
2482   //   argument Ai of the corresponding template argument list of A.
2483   unsigned ArgIdx = 0, ParamIdx = 0;
2484   for (; hasTemplateArgumentForDeduction(Params, ParamIdx); ++ParamIdx) {
2485     if (!Params[ParamIdx].isPackExpansion()) {
2486       // The simple case: deduce template arguments by matching Pi and Ai.
2487 
2488       // Check whether we have enough arguments.
2489       if (!hasTemplateArgumentForDeduction(Args, ArgIdx))
2490         return NumberOfArgumentsMustMatch
2491                    ? Sema::TDK_MiscellaneousDeductionFailure
2492                    : Sema::TDK_Success;
2493 
2494       // C++1z [temp.deduct.type]p9:
2495       //   During partial ordering, if Ai was originally a pack expansion [and]
2496       //   Pi is not a pack expansion, template argument deduction fails.
2497       if (Args[ArgIdx].isPackExpansion())
2498         return Sema::TDK_MiscellaneousDeductionFailure;
2499 
2500       // Perform deduction for this Pi/Ai pair.
2501       if (Sema::TemplateDeductionResult Result
2502             = DeduceTemplateArguments(S, TemplateParams,
2503                                       Params[ParamIdx], Args[ArgIdx],
2504                                       Info, Deduced))
2505         return Result;
2506 
2507       // Move to the next argument.
2508       ++ArgIdx;
2509       continue;
2510     }
2511 
2512     // The parameter is a pack expansion.
2513 
2514     // C++0x [temp.deduct.type]p9:
2515     //   If Pi is a pack expansion, then the pattern of Pi is compared with
2516     //   each remaining argument in the template argument list of A. Each
2517     //   comparison deduces template arguments for subsequent positions in the
2518     //   template parameter packs expanded by Pi.
2519     TemplateArgument Pattern = Params[ParamIdx].getPackExpansionPattern();
2520 
2521     // Prepare to deduce the packs within the pattern.
2522     PackDeductionScope PackScope(S, TemplateParams, Deduced, Info, Pattern);
2523 
2524     // Keep track of the deduced template arguments for each parameter pack
2525     // expanded by this pack expansion (the outer index) and for each
2526     // template argument (the inner SmallVectors).
2527     for (; hasTemplateArgumentForDeduction(Args, ArgIdx) &&
2528            PackScope.hasNextElement();
2529          ++ArgIdx) {
2530       // Deduce template arguments from the pattern.
2531       if (Sema::TemplateDeductionResult Result
2532             = DeduceTemplateArguments(S, TemplateParams, Pattern, Args[ArgIdx],
2533                                       Info, Deduced))
2534         return Result;
2535 
2536       PackScope.nextPackElement();
2537     }
2538 
2539     // Build argument packs for each of the parameter packs expanded by this
2540     // pack expansion.
2541     if (auto Result = PackScope.finish())
2542       return Result;
2543   }
2544 
2545   return Sema::TDK_Success;
2546 }
2547 
2548 static Sema::TemplateDeductionResult
2549 DeduceTemplateArguments(Sema &S,
2550                         TemplateParameterList *TemplateParams,
2551                         const TemplateArgumentList &ParamList,
2552                         const TemplateArgumentList &ArgList,
2553                         TemplateDeductionInfo &Info,
2554                         SmallVectorImpl<DeducedTemplateArgument> &Deduced) {
2555   return DeduceTemplateArguments(S, TemplateParams, ParamList.asArray(),
2556                                  ArgList.asArray(), Info, Deduced,
2557                                  /*NumberOfArgumentsMustMatch*/false);
2558 }
2559 
2560 /// Determine whether two template arguments are the same.
2561 static bool isSameTemplateArg(ASTContext &Context,
2562                               TemplateArgument X,
2563                               const TemplateArgument &Y,
2564                               bool PackExpansionMatchesPack = false) {
2565   // If we're checking deduced arguments (X) against original arguments (Y),
2566   // we will have flattened packs to non-expansions in X.
2567   if (PackExpansionMatchesPack && X.isPackExpansion() && !Y.isPackExpansion())
2568     X = X.getPackExpansionPattern();
2569 
2570   if (X.getKind() != Y.getKind())
2571     return false;
2572 
2573   switch (X.getKind()) {
2574     case TemplateArgument::Null:
2575       llvm_unreachable("Comparing NULL template argument");
2576 
2577     case TemplateArgument::Type:
2578       return Context.getCanonicalType(X.getAsType()) ==
2579              Context.getCanonicalType(Y.getAsType());
2580 
2581     case TemplateArgument::Declaration:
2582       return isSameDeclaration(X.getAsDecl(), Y.getAsDecl());
2583 
2584     case TemplateArgument::NullPtr:
2585       return Context.hasSameType(X.getNullPtrType(), Y.getNullPtrType());
2586 
2587     case TemplateArgument::Template:
2588     case TemplateArgument::TemplateExpansion:
2589       return Context.getCanonicalTemplateName(
2590                     X.getAsTemplateOrTemplatePattern()).getAsVoidPointer() ==
2591              Context.getCanonicalTemplateName(
2592                     Y.getAsTemplateOrTemplatePattern()).getAsVoidPointer();
2593 
2594     case TemplateArgument::Integral:
2595       return hasSameExtendedValue(X.getAsIntegral(), Y.getAsIntegral());
2596 
2597     case TemplateArgument::Expression: {
2598       llvm::FoldingSetNodeID XID, YID;
2599       X.getAsExpr()->Profile(XID, Context, true);
2600       Y.getAsExpr()->Profile(YID, Context, true);
2601       return XID == YID;
2602     }
2603 
2604     case TemplateArgument::Pack:
2605       if (X.pack_size() != Y.pack_size())
2606         return false;
2607 
2608       for (TemplateArgument::pack_iterator XP = X.pack_begin(),
2609                                         XPEnd = X.pack_end(),
2610                                            YP = Y.pack_begin();
2611            XP != XPEnd; ++XP, ++YP)
2612         if (!isSameTemplateArg(Context, *XP, *YP, PackExpansionMatchesPack))
2613           return false;
2614 
2615       return true;
2616   }
2617 
2618   llvm_unreachable("Invalid TemplateArgument Kind!");
2619 }
2620 
2621 /// Allocate a TemplateArgumentLoc where all locations have
2622 /// been initialized to the given location.
2623 ///
2624 /// \param Arg The template argument we are producing template argument
2625 /// location information for.
2626 ///
2627 /// \param NTTPType For a declaration template argument, the type of
2628 /// the non-type template parameter that corresponds to this template
2629 /// argument. Can be null if no type sugar is available to add to the
2630 /// type from the template argument.
2631 ///
2632 /// \param Loc The source location to use for the resulting template
2633 /// argument.
2634 TemplateArgumentLoc
2635 Sema::getTrivialTemplateArgumentLoc(const TemplateArgument &Arg,
2636                                     QualType NTTPType, SourceLocation Loc) {
2637   switch (Arg.getKind()) {
2638   case TemplateArgument::Null:
2639     llvm_unreachable("Can't get a NULL template argument here");
2640 
2641   case TemplateArgument::Type:
2642     return TemplateArgumentLoc(
2643         Arg, Context.getTrivialTypeSourceInfo(Arg.getAsType(), Loc));
2644 
2645   case TemplateArgument::Declaration: {
2646     if (NTTPType.isNull())
2647       NTTPType = Arg.getParamTypeForDecl();
2648     Expr *E = BuildExpressionFromDeclTemplateArgument(Arg, NTTPType, Loc)
2649                   .getAs<Expr>();
2650     return TemplateArgumentLoc(TemplateArgument(E), E);
2651   }
2652 
2653   case TemplateArgument::NullPtr: {
2654     if (NTTPType.isNull())
2655       NTTPType = Arg.getNullPtrType();
2656     Expr *E = BuildExpressionFromDeclTemplateArgument(Arg, NTTPType, Loc)
2657                   .getAs<Expr>();
2658     return TemplateArgumentLoc(TemplateArgument(NTTPType, /*isNullPtr*/true),
2659                                E);
2660   }
2661 
2662   case TemplateArgument::Integral: {
2663     Expr *E =
2664         BuildExpressionFromIntegralTemplateArgument(Arg, Loc).getAs<Expr>();
2665     return TemplateArgumentLoc(TemplateArgument(E), E);
2666   }
2667 
2668     case TemplateArgument::Template:
2669     case TemplateArgument::TemplateExpansion: {
2670       NestedNameSpecifierLocBuilder Builder;
2671       TemplateName Template = Arg.getAsTemplateOrTemplatePattern();
2672       if (DependentTemplateName *DTN = Template.getAsDependentTemplateName())
2673         Builder.MakeTrivial(Context, DTN->getQualifier(), Loc);
2674       else if (QualifiedTemplateName *QTN =
2675                    Template.getAsQualifiedTemplateName())
2676         Builder.MakeTrivial(Context, QTN->getQualifier(), Loc);
2677 
2678       if (Arg.getKind() == TemplateArgument::Template)
2679         return TemplateArgumentLoc(Context, Arg,
2680                                    Builder.getWithLocInContext(Context), Loc);
2681 
2682       return TemplateArgumentLoc(
2683           Context, Arg, Builder.getWithLocInContext(Context), Loc, Loc);
2684     }
2685 
2686   case TemplateArgument::Expression:
2687     return TemplateArgumentLoc(Arg, Arg.getAsExpr());
2688 
2689   case TemplateArgument::Pack:
2690     return TemplateArgumentLoc(Arg, TemplateArgumentLocInfo());
2691   }
2692 
2693   llvm_unreachable("Invalid TemplateArgument Kind!");
2694 }
2695 
2696 TemplateArgumentLoc
2697 Sema::getIdentityTemplateArgumentLoc(NamedDecl *TemplateParm,
2698                                      SourceLocation Location) {
2699   return getTrivialTemplateArgumentLoc(
2700       Context.getInjectedTemplateArg(TemplateParm), QualType(), Location);
2701 }
2702 
2703 /// Convert the given deduced template argument and add it to the set of
2704 /// fully-converted template arguments.
2705 static bool
2706 ConvertDeducedTemplateArgument(Sema &S, NamedDecl *Param,
2707                                DeducedTemplateArgument Arg,
2708                                NamedDecl *Template,
2709                                TemplateDeductionInfo &Info,
2710                                bool IsDeduced,
2711                                SmallVectorImpl<TemplateArgument> &Output) {
2712   auto ConvertArg = [&](DeducedTemplateArgument Arg,
2713                         unsigned ArgumentPackIndex) {
2714     // Convert the deduced template argument into a template
2715     // argument that we can check, almost as if the user had written
2716     // the template argument explicitly.
2717     TemplateArgumentLoc ArgLoc =
2718         S.getTrivialTemplateArgumentLoc(Arg, QualType(), Info.getLocation());
2719 
2720     // Check the template argument, converting it as necessary.
2721     return S.CheckTemplateArgument(
2722         Param, ArgLoc, Template, Template->getLocation(),
2723         Template->getSourceRange().getEnd(), ArgumentPackIndex, Output,
2724         IsDeduced
2725             ? (Arg.wasDeducedFromArrayBound() ? Sema::CTAK_DeducedFromArrayBound
2726                                               : Sema::CTAK_Deduced)
2727             : Sema::CTAK_Specified);
2728   };
2729 
2730   if (Arg.getKind() == TemplateArgument::Pack) {
2731     // This is a template argument pack, so check each of its arguments against
2732     // the template parameter.
2733     SmallVector<TemplateArgument, 2> PackedArgsBuilder;
2734     for (const auto &P : Arg.pack_elements()) {
2735       // When converting the deduced template argument, append it to the
2736       // general output list. We need to do this so that the template argument
2737       // checking logic has all of the prior template arguments available.
2738       DeducedTemplateArgument InnerArg(P);
2739       InnerArg.setDeducedFromArrayBound(Arg.wasDeducedFromArrayBound());
2740       assert(InnerArg.getKind() != TemplateArgument::Pack &&
2741              "deduced nested pack");
2742       if (P.isNull()) {
2743         // We deduced arguments for some elements of this pack, but not for
2744         // all of them. This happens if we get a conditionally-non-deduced
2745         // context in a pack expansion (such as an overload set in one of the
2746         // arguments).
2747         S.Diag(Param->getLocation(),
2748                diag::err_template_arg_deduced_incomplete_pack)
2749           << Arg << Param;
2750         return true;
2751       }
2752       if (ConvertArg(InnerArg, PackedArgsBuilder.size()))
2753         return true;
2754 
2755       // Move the converted template argument into our argument pack.
2756       PackedArgsBuilder.push_back(Output.pop_back_val());
2757     }
2758 
2759     // If the pack is empty, we still need to substitute into the parameter
2760     // itself, in case that substitution fails.
2761     if (PackedArgsBuilder.empty()) {
2762       LocalInstantiationScope Scope(S);
2763       TemplateArgumentList TemplateArgs(TemplateArgumentList::OnStack, Output);
2764       MultiLevelTemplateArgumentList Args(TemplateArgs);
2765 
2766       if (auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(Param)) {
2767         Sema::InstantiatingTemplate Inst(S, Template->getLocation(), Template,
2768                                          NTTP, Output,
2769                                          Template->getSourceRange());
2770         if (Inst.isInvalid() ||
2771             S.SubstType(NTTP->getType(), Args, NTTP->getLocation(),
2772                         NTTP->getDeclName()).isNull())
2773           return true;
2774       } else if (auto *TTP = dyn_cast<TemplateTemplateParmDecl>(Param)) {
2775         Sema::InstantiatingTemplate Inst(S, Template->getLocation(), Template,
2776                                          TTP, Output,
2777                                          Template->getSourceRange());
2778         if (Inst.isInvalid() || !S.SubstDecl(TTP, S.CurContext, Args))
2779           return true;
2780       }
2781       // For type parameters, no substitution is ever required.
2782     }
2783 
2784     // Create the resulting argument pack.
2785     Output.push_back(
2786         TemplateArgument::CreatePackCopy(S.Context, PackedArgsBuilder));
2787     return false;
2788   }
2789 
2790   return ConvertArg(Arg, 0);
2791 }
2792 
2793 // FIXME: This should not be a template, but
2794 // ClassTemplatePartialSpecializationDecl sadly does not derive from
2795 // TemplateDecl.
2796 template<typename TemplateDeclT>
2797 static Sema::TemplateDeductionResult ConvertDeducedTemplateArguments(
2798     Sema &S, TemplateDeclT *Template, bool IsDeduced,
2799     SmallVectorImpl<DeducedTemplateArgument> &Deduced,
2800     TemplateDeductionInfo &Info, SmallVectorImpl<TemplateArgument> &Builder,
2801     LocalInstantiationScope *CurrentInstantiationScope = nullptr,
2802     unsigned NumAlreadyConverted = 0, bool PartialOverloading = false) {
2803   TemplateParameterList *TemplateParams = Template->getTemplateParameters();
2804 
2805   for (unsigned I = 0, N = TemplateParams->size(); I != N; ++I) {
2806     NamedDecl *Param = TemplateParams->getParam(I);
2807 
2808     // C++0x [temp.arg.explicit]p3:
2809     //    A trailing template parameter pack (14.5.3) not otherwise deduced will
2810     //    be deduced to an empty sequence of template arguments.
2811     // FIXME: Where did the word "trailing" come from?
2812     if (Deduced[I].isNull() && Param->isTemplateParameterPack()) {
2813       if (auto Result =
2814               PackDeductionScope(S, TemplateParams, Deduced, Info, I).finish())
2815         return Result;
2816     }
2817 
2818     if (!Deduced[I].isNull()) {
2819       if (I < NumAlreadyConverted) {
2820         // We may have had explicitly-specified template arguments for a
2821         // template parameter pack (that may or may not have been extended
2822         // via additional deduced arguments).
2823         if (Param->isParameterPack() && CurrentInstantiationScope &&
2824             CurrentInstantiationScope->getPartiallySubstitutedPack() == Param) {
2825           // Forget the partially-substituted pack; its substitution is now
2826           // complete.
2827           CurrentInstantiationScope->ResetPartiallySubstitutedPack();
2828           // We still need to check the argument in case it was extended by
2829           // deduction.
2830         } else {
2831           // We have already fully type-checked and converted this
2832           // argument, because it was explicitly-specified. Just record the
2833           // presence of this argument.
2834           Builder.push_back(Deduced[I]);
2835           continue;
2836         }
2837       }
2838 
2839       // We may have deduced this argument, so it still needs to be
2840       // checked and converted.
2841       if (ConvertDeducedTemplateArgument(S, Param, Deduced[I], Template, Info,
2842                                          IsDeduced, Builder)) {
2843         Info.Param = makeTemplateParameter(Param);
2844         // FIXME: These template arguments are temporary. Free them!
2845         Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder));
2846         return Sema::TDK_SubstitutionFailure;
2847       }
2848 
2849       continue;
2850     }
2851 
2852     // Substitute into the default template argument, if available.
2853     bool HasDefaultArg = false;
2854     TemplateDecl *TD = dyn_cast<TemplateDecl>(Template);
2855     if (!TD) {
2856       assert(isa<ClassTemplatePartialSpecializationDecl>(Template) ||
2857              isa<VarTemplatePartialSpecializationDecl>(Template));
2858       return Sema::TDK_Incomplete;
2859     }
2860 
2861     TemplateArgumentLoc DefArg;
2862     {
2863       Qualifiers ThisTypeQuals;
2864       CXXRecordDecl *ThisContext = nullptr;
2865       if (auto *Rec = dyn_cast<CXXRecordDecl>(TD->getDeclContext()))
2866         if (Rec->isLambda())
2867           if (auto *Method = dyn_cast<CXXMethodDecl>(Rec->getDeclContext())) {
2868             ThisContext = Method->getParent();
2869             ThisTypeQuals = Method->getMethodQualifiers();
2870           }
2871 
2872       Sema::CXXThisScopeRAII ThisScope(S, ThisContext, ThisTypeQuals,
2873                                        S.getLangOpts().CPlusPlus17);
2874 
2875       DefArg = S.SubstDefaultTemplateArgumentIfAvailable(
2876           TD, TD->getLocation(), TD->getSourceRange().getEnd(), Param, Builder,
2877           HasDefaultArg);
2878     }
2879 
2880     // If there was no default argument, deduction is incomplete.
2881     if (DefArg.getArgument().isNull()) {
2882       Info.Param = makeTemplateParameter(
2883           const_cast<NamedDecl *>(TemplateParams->getParam(I)));
2884       Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder));
2885       if (PartialOverloading) break;
2886 
2887       return HasDefaultArg ? Sema::TDK_SubstitutionFailure
2888                            : Sema::TDK_Incomplete;
2889     }
2890 
2891     // Check whether we can actually use the default argument.
2892     if (S.CheckTemplateArgument(Param, DefArg, TD, TD->getLocation(),
2893                                 TD->getSourceRange().getEnd(), 0, Builder,
2894                                 Sema::CTAK_Specified)) {
2895       Info.Param = makeTemplateParameter(
2896                          const_cast<NamedDecl *>(TemplateParams->getParam(I)));
2897       // FIXME: These template arguments are temporary. Free them!
2898       Info.reset(TemplateArgumentList::CreateCopy(S.Context, Builder));
2899       return Sema::TDK_SubstitutionFailure;
2900     }
2901 
2902     // If we get here, we successfully used the default template argument.
2903   }
2904 
2905   return Sema::TDK_Success;
2906 }
2907 
2908 static DeclContext *getAsDeclContextOrEnclosing(Decl *D) {
2909   if (auto *DC = dyn_cast<DeclContext>(D))
2910     return DC;
2911   return D->getDeclContext();
2912 }
2913 
2914 template<typename T> struct IsPartialSpecialization {
2915   static constexpr bool value = false;
2916 };
2917 template<>
2918 struct IsPartialSpecialization<ClassTemplatePartialSpecializationDecl> {
2919   static constexpr bool value = true;
2920 };
2921 template<>
2922 struct IsPartialSpecialization<VarTemplatePartialSpecializationDecl> {
2923   static constexpr bool value = true;
2924 };
2925 
2926 template<typename TemplateDeclT>
2927 static Sema::TemplateDeductionResult
2928 CheckDeducedArgumentConstraints(Sema& S, TemplateDeclT *Template,
2929                                 ArrayRef<TemplateArgument> DeducedArgs,
2930                                 TemplateDeductionInfo& Info) {
2931   llvm::SmallVector<const Expr *, 3> AssociatedConstraints;
2932   Template->getAssociatedConstraints(AssociatedConstraints);
2933   if (S.CheckConstraintSatisfaction(Template, AssociatedConstraints,
2934                                     DeducedArgs, Info.getLocation(),
2935                                     Info.AssociatedConstraintsSatisfaction) ||
2936       !Info.AssociatedConstraintsSatisfaction.IsSatisfied) {
2937     Info.reset(TemplateArgumentList::CreateCopy(S.Context, DeducedArgs));
2938     return Sema::TDK_ConstraintsNotSatisfied;
2939   }
2940   return Sema::TDK_Success;
2941 }
2942 
2943 /// Complete template argument deduction for a partial specialization.
2944 template <typename T>
2945 static std::enable_if_t<IsPartialSpecialization<T>::value,
2946                         Sema::TemplateDeductionResult>
2947 FinishTemplateArgumentDeduction(
2948     Sema &S, T *Partial, bool IsPartialOrdering,
2949     const TemplateArgumentList &TemplateArgs,
2950     SmallVectorImpl<DeducedTemplateArgument> &Deduced,
2951     TemplateDeductionInfo &Info) {
2952   // Unevaluated SFINAE context.
2953   EnterExpressionEvaluationContext Unevaluated(
2954       S, Sema::ExpressionEvaluationContext::Unevaluated);
2955   Sema::SFINAETrap Trap(S);
2956 
2957   Sema::ContextRAII SavedContext(S, getAsDeclContextOrEnclosing(Partial));
2958 
2959   // C++ [temp.deduct.type]p2:
2960   //   [...] or if any template argument remains neither deduced nor
2961   //   explicitly specified, template argument deduction fails.
2962   SmallVector<TemplateArgument, 4> Builder;
2963   if (auto Result = ConvertDeducedTemplateArguments(
2964           S, Partial, IsPartialOrdering, Deduced, Info, Builder))
2965     return Result;
2966 
2967   // Form the template argument list from the deduced template arguments.
2968   TemplateArgumentList *DeducedArgumentList
2969     = TemplateArgumentList::CreateCopy(S.Context, Builder);
2970 
2971   Info.reset(DeducedArgumentList);
2972 
2973   // Substitute the deduced template arguments into the template
2974   // arguments of the class template partial specialization, and
2975   // verify that the instantiated template arguments are both valid
2976   // and are equivalent to the template arguments originally provided
2977   // to the class template.
2978   LocalInstantiationScope InstScope(S);
2979   auto *Template = Partial->getSpecializedTemplate();
2980   const ASTTemplateArgumentListInfo *PartialTemplArgInfo =
2981       Partial->getTemplateArgsAsWritten();
2982 
2983   TemplateArgumentListInfo InstArgs(PartialTemplArgInfo->LAngleLoc,
2984                                     PartialTemplArgInfo->RAngleLoc);
2985 
2986   if (S.SubstTemplateArguments(
2987           PartialTemplArgInfo->arguments(),
2988           MultiLevelTemplateArgumentList(*DeducedArgumentList), InstArgs)) {
2989     unsigned ArgIdx = InstArgs.size(), ParamIdx = ArgIdx;
2990     if (ParamIdx >= Partial->getTemplateParameters()->size())
2991       ParamIdx = Partial->getTemplateParameters()->size() - 1;
2992 
2993     Decl *Param = const_cast<NamedDecl *>(
2994         Partial->getTemplateParameters()->getParam(ParamIdx));
2995     Info.Param = makeTemplateParameter(Param);
2996     Info.FirstArg = (*PartialTemplArgInfo)[ArgIdx].getArgument();
2997     return Sema::TDK_SubstitutionFailure;
2998   }
2999 
3000   bool ConstraintsNotSatisfied;
3001   SmallVector<TemplateArgument, 4> ConvertedInstArgs;
3002   if (S.CheckTemplateArgumentList(Template, Partial->getLocation(), InstArgs,
3003                                   false, ConvertedInstArgs,
3004                                   /*UpdateArgsWithConversions=*/true,
3005                                   &ConstraintsNotSatisfied))
3006     return ConstraintsNotSatisfied ? Sema::TDK_ConstraintsNotSatisfied :
3007                                      Sema::TDK_SubstitutionFailure;
3008 
3009   TemplateParameterList *TemplateParams = Template->getTemplateParameters();
3010   for (unsigned I = 0, E = TemplateParams->size(); I != E; ++I) {
3011     TemplateArgument InstArg = ConvertedInstArgs.data()[I];
3012     if (!isSameTemplateArg(S.Context, TemplateArgs[I], InstArg)) {
3013       Info.Param = makeTemplateParameter(TemplateParams->getParam(I));
3014       Info.FirstArg = TemplateArgs[I];
3015       Info.SecondArg = InstArg;
3016       return Sema::TDK_NonDeducedMismatch;
3017     }
3018   }
3019 
3020   if (Trap.hasErrorOccurred())
3021     return Sema::TDK_SubstitutionFailure;
3022 
3023   if (auto Result = CheckDeducedArgumentConstraints(S, Partial, Builder, Info))
3024     return Result;
3025 
3026   return Sema::TDK_Success;
3027 }
3028 
3029 /// Complete template argument deduction for a class or variable template,
3030 /// when partial ordering against a partial specialization.
3031 // FIXME: Factor out duplication with partial specialization version above.
3032 static Sema::TemplateDeductionResult FinishTemplateArgumentDeduction(
3033     Sema &S, TemplateDecl *Template, bool PartialOrdering,
3034     const TemplateArgumentList &TemplateArgs,
3035     SmallVectorImpl<DeducedTemplateArgument> &Deduced,
3036     TemplateDeductionInfo &Info) {
3037   // Unevaluated SFINAE context.
3038   EnterExpressionEvaluationContext Unevaluated(
3039       S, Sema::ExpressionEvaluationContext::Unevaluated);
3040   Sema::SFINAETrap Trap(S);
3041 
3042   Sema::ContextRAII SavedContext(S, getAsDeclContextOrEnclosing(Template));
3043 
3044   // C++ [temp.deduct.type]p2:
3045   //   [...] or if any template argument remains neither deduced nor
3046   //   explicitly specified, template argument deduction fails.
3047   SmallVector<TemplateArgument, 4> Builder;
3048   if (auto Result = ConvertDeducedTemplateArguments(
3049           S, Template, /*IsDeduced*/PartialOrdering, Deduced, Info, Builder))
3050     return Result;
3051 
3052   // Check that we produced the correct argument list.
3053   TemplateParameterList *TemplateParams = Template->getTemplateParameters();
3054   for (unsigned I = 0, E = TemplateParams->size(); I != E; ++I) {
3055     TemplateArgument InstArg = Builder[I];
3056     if (!isSameTemplateArg(S.Context, TemplateArgs[I], InstArg,
3057                            /*PackExpansionMatchesPack*/true)) {
3058       Info.Param = makeTemplateParameter(TemplateParams->getParam(I));
3059       Info.FirstArg = TemplateArgs[I];
3060       Info.SecondArg = InstArg;
3061       return Sema::TDK_NonDeducedMismatch;
3062     }
3063   }
3064 
3065   if (Trap.hasErrorOccurred())
3066     return Sema::TDK_SubstitutionFailure;
3067 
3068   if (auto Result = CheckDeducedArgumentConstraints(S, Template, Builder,
3069                                                     Info))
3070     return Result;
3071 
3072   return Sema::TDK_Success;
3073 }
3074 
3075 /// Perform template argument deduction to determine whether
3076 /// the given template arguments match the given class template
3077 /// partial specialization per C++ [temp.class.spec.match].
3078 Sema::TemplateDeductionResult
3079 Sema::DeduceTemplateArguments(ClassTemplatePartialSpecializationDecl *Partial,
3080                               const TemplateArgumentList &TemplateArgs,
3081                               TemplateDeductionInfo &Info) {
3082   if (Partial->isInvalidDecl())
3083     return TDK_Invalid;
3084 
3085   // C++ [temp.class.spec.match]p2:
3086   //   A partial specialization matches a given actual template
3087   //   argument list if the template arguments of the partial
3088   //   specialization can be deduced from the actual template argument
3089   //   list (14.8.2).
3090 
3091   // Unevaluated SFINAE context.
3092   EnterExpressionEvaluationContext Unevaluated(
3093       *this, Sema::ExpressionEvaluationContext::Unevaluated);
3094   SFINAETrap Trap(*this);
3095 
3096   // This deduction has no relation to any outer instantiation we might be
3097   // performing.
3098   LocalInstantiationScope InstantiationScope(*this);
3099 
3100   SmallVector<DeducedTemplateArgument, 4> Deduced;
3101   Deduced.resize(Partial->getTemplateParameters()->size());
3102   if (TemplateDeductionResult Result
3103         = ::DeduceTemplateArguments(*this,
3104                                     Partial->getTemplateParameters(),
3105                                     Partial->getTemplateArgs(),
3106                                     TemplateArgs, Info, Deduced))
3107     return Result;
3108 
3109   SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end());
3110   InstantiatingTemplate Inst(*this, Info.getLocation(), Partial, DeducedArgs,
3111                              Info);
3112   if (Inst.isInvalid())
3113     return TDK_InstantiationDepth;
3114 
3115   if (Trap.hasErrorOccurred())
3116     return Sema::TDK_SubstitutionFailure;
3117 
3118   TemplateDeductionResult Result;
3119   runWithSufficientStackSpace(Info.getLocation(), [&] {
3120     Result = ::FinishTemplateArgumentDeduction(*this, Partial,
3121                                                /*IsPartialOrdering=*/false,
3122                                                TemplateArgs, Deduced, Info);
3123   });
3124   return Result;
3125 }
3126 
3127 /// Perform template argument deduction to determine whether
3128 /// the given template arguments match the given variable template
3129 /// partial specialization per C++ [temp.class.spec.match].
3130 Sema::TemplateDeductionResult
3131 Sema::DeduceTemplateArguments(VarTemplatePartialSpecializationDecl *Partial,
3132                               const TemplateArgumentList &TemplateArgs,
3133                               TemplateDeductionInfo &Info) {
3134   if (Partial->isInvalidDecl())
3135     return TDK_Invalid;
3136 
3137   // C++ [temp.class.spec.match]p2:
3138   //   A partial specialization matches a given actual template
3139   //   argument list if the template arguments of the partial
3140   //   specialization can be deduced from the actual template argument
3141   //   list (14.8.2).
3142 
3143   // Unevaluated SFINAE context.
3144   EnterExpressionEvaluationContext Unevaluated(
3145       *this, Sema::ExpressionEvaluationContext::Unevaluated);
3146   SFINAETrap Trap(*this);
3147 
3148   // This deduction has no relation to any outer instantiation we might be
3149   // performing.
3150   LocalInstantiationScope InstantiationScope(*this);
3151 
3152   SmallVector<DeducedTemplateArgument, 4> Deduced;
3153   Deduced.resize(Partial->getTemplateParameters()->size());
3154   if (TemplateDeductionResult Result = ::DeduceTemplateArguments(
3155           *this, Partial->getTemplateParameters(), Partial->getTemplateArgs(),
3156           TemplateArgs, Info, Deduced))
3157     return Result;
3158 
3159   SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end());
3160   InstantiatingTemplate Inst(*this, Info.getLocation(), Partial, DeducedArgs,
3161                              Info);
3162   if (Inst.isInvalid())
3163     return TDK_InstantiationDepth;
3164 
3165   if (Trap.hasErrorOccurred())
3166     return Sema::TDK_SubstitutionFailure;
3167 
3168   TemplateDeductionResult Result;
3169   runWithSufficientStackSpace(Info.getLocation(), [&] {
3170     Result = ::FinishTemplateArgumentDeduction(*this, Partial,
3171                                                /*IsPartialOrdering=*/false,
3172                                                TemplateArgs, Deduced, Info);
3173   });
3174   return Result;
3175 }
3176 
3177 /// Determine whether the given type T is a simple-template-id type.
3178 static bool isSimpleTemplateIdType(QualType T) {
3179   if (const TemplateSpecializationType *Spec
3180         = T->getAs<TemplateSpecializationType>())
3181     return Spec->getTemplateName().getAsTemplateDecl() != nullptr;
3182 
3183   // C++17 [temp.local]p2:
3184   //   the injected-class-name [...] is equivalent to the template-name followed
3185   //   by the template-arguments of the class template specialization or partial
3186   //   specialization enclosed in <>
3187   // ... which means it's equivalent to a simple-template-id.
3188   //
3189   // This only arises during class template argument deduction for a copy
3190   // deduction candidate, where it permits slicing.
3191   if (T->getAs<InjectedClassNameType>())
3192     return true;
3193 
3194   return false;
3195 }
3196 
3197 /// Substitute the explicitly-provided template arguments into the
3198 /// given function template according to C++ [temp.arg.explicit].
3199 ///
3200 /// \param FunctionTemplate the function template into which the explicit
3201 /// template arguments will be substituted.
3202 ///
3203 /// \param ExplicitTemplateArgs the explicitly-specified template
3204 /// arguments.
3205 ///
3206 /// \param Deduced the deduced template arguments, which will be populated
3207 /// with the converted and checked explicit template arguments.
3208 ///
3209 /// \param ParamTypes will be populated with the instantiated function
3210 /// parameters.
3211 ///
3212 /// \param FunctionType if non-NULL, the result type of the function template
3213 /// will also be instantiated and the pointed-to value will be updated with
3214 /// the instantiated function type.
3215 ///
3216 /// \param Info if substitution fails for any reason, this object will be
3217 /// populated with more information about the failure.
3218 ///
3219 /// \returns TDK_Success if substitution was successful, or some failure
3220 /// condition.
3221 Sema::TemplateDeductionResult
3222 Sema::SubstituteExplicitTemplateArguments(
3223                                       FunctionTemplateDecl *FunctionTemplate,
3224                                TemplateArgumentListInfo &ExplicitTemplateArgs,
3225                        SmallVectorImpl<DeducedTemplateArgument> &Deduced,
3226                                  SmallVectorImpl<QualType> &ParamTypes,
3227                                           QualType *FunctionType,
3228                                           TemplateDeductionInfo &Info) {
3229   FunctionDecl *Function = FunctionTemplate->getTemplatedDecl();
3230   TemplateParameterList *TemplateParams
3231     = FunctionTemplate->getTemplateParameters();
3232 
3233   if (ExplicitTemplateArgs.size() == 0) {
3234     // No arguments to substitute; just copy over the parameter types and
3235     // fill in the function type.
3236     for (auto P : Function->parameters())
3237       ParamTypes.push_back(P->getType());
3238 
3239     if (FunctionType)
3240       *FunctionType = Function->getType();
3241     return TDK_Success;
3242   }
3243 
3244   // Unevaluated SFINAE context.
3245   EnterExpressionEvaluationContext Unevaluated(
3246       *this, Sema::ExpressionEvaluationContext::Unevaluated);
3247   SFINAETrap Trap(*this);
3248 
3249   // C++ [temp.arg.explicit]p3:
3250   //   Template arguments that are present shall be specified in the
3251   //   declaration order of their corresponding template-parameters. The
3252   //   template argument list shall not specify more template-arguments than
3253   //   there are corresponding template-parameters.
3254   SmallVector<TemplateArgument, 4> Builder;
3255 
3256   // Enter a new template instantiation context where we check the
3257   // explicitly-specified template arguments against this function template,
3258   // and then substitute them into the function parameter types.
3259   SmallVector<TemplateArgument, 4> DeducedArgs;
3260   InstantiatingTemplate Inst(
3261       *this, Info.getLocation(), FunctionTemplate, DeducedArgs,
3262       CodeSynthesisContext::ExplicitTemplateArgumentSubstitution, Info);
3263   if (Inst.isInvalid())
3264     return TDK_InstantiationDepth;
3265 
3266   if (CheckTemplateArgumentList(FunctionTemplate, SourceLocation(),
3267                                 ExplicitTemplateArgs, true, Builder, false) ||
3268       Trap.hasErrorOccurred()) {
3269     unsigned Index = Builder.size();
3270     if (Index >= TemplateParams->size())
3271       return TDK_SubstitutionFailure;
3272     Info.Param = makeTemplateParameter(TemplateParams->getParam(Index));
3273     return TDK_InvalidExplicitArguments;
3274   }
3275 
3276   // Form the template argument list from the explicitly-specified
3277   // template arguments.
3278   TemplateArgumentList *ExplicitArgumentList
3279     = TemplateArgumentList::CreateCopy(Context, Builder);
3280   Info.setExplicitArgs(ExplicitArgumentList);
3281 
3282   // Template argument deduction and the final substitution should be
3283   // done in the context of the templated declaration.  Explicit
3284   // argument substitution, on the other hand, needs to happen in the
3285   // calling context.
3286   ContextRAII SavedContext(*this, FunctionTemplate->getTemplatedDecl());
3287 
3288   // If we deduced template arguments for a template parameter pack,
3289   // note that the template argument pack is partially substituted and record
3290   // the explicit template arguments. They'll be used as part of deduction
3291   // for this template parameter pack.
3292   unsigned PartiallySubstitutedPackIndex = -1u;
3293   if (!Builder.empty()) {
3294     const TemplateArgument &Arg = Builder.back();
3295     if (Arg.getKind() == TemplateArgument::Pack) {
3296       auto *Param = TemplateParams->getParam(Builder.size() - 1);
3297       // If this is a fully-saturated fixed-size pack, it should be
3298       // fully-substituted, not partially-substituted.
3299       Optional<unsigned> Expansions = getExpandedPackSize(Param);
3300       if (!Expansions || Arg.pack_size() < *Expansions) {
3301         PartiallySubstitutedPackIndex = Builder.size() - 1;
3302         CurrentInstantiationScope->SetPartiallySubstitutedPack(
3303             Param, Arg.pack_begin(), Arg.pack_size());
3304       }
3305     }
3306   }
3307 
3308   const FunctionProtoType *Proto
3309     = Function->getType()->getAs<FunctionProtoType>();
3310   assert(Proto && "Function template does not have a prototype?");
3311 
3312   // Isolate our substituted parameters from our caller.
3313   LocalInstantiationScope InstScope(*this, /*MergeWithOuterScope*/true);
3314 
3315   ExtParameterInfoBuilder ExtParamInfos;
3316 
3317   // Instantiate the types of each of the function parameters given the
3318   // explicitly-specified template arguments. If the function has a trailing
3319   // return type, substitute it after the arguments to ensure we substitute
3320   // in lexical order.
3321   if (Proto->hasTrailingReturn()) {
3322     if (SubstParmTypes(Function->getLocation(), Function->parameters(),
3323                        Proto->getExtParameterInfosOrNull(),
3324                        MultiLevelTemplateArgumentList(*ExplicitArgumentList),
3325                        ParamTypes, /*params*/ nullptr, ExtParamInfos))
3326       return TDK_SubstitutionFailure;
3327   }
3328 
3329   // Instantiate the return type.
3330   QualType ResultType;
3331   {
3332     // C++11 [expr.prim.general]p3:
3333     //   If a declaration declares a member function or member function
3334     //   template of a class X, the expression this is a prvalue of type
3335     //   "pointer to cv-qualifier-seq X" between the optional cv-qualifer-seq
3336     //   and the end of the function-definition, member-declarator, or
3337     //   declarator.
3338     Qualifiers ThisTypeQuals;
3339     CXXRecordDecl *ThisContext = nullptr;
3340     if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Function)) {
3341       ThisContext = Method->getParent();
3342       ThisTypeQuals = Method->getMethodQualifiers();
3343     }
3344 
3345     CXXThisScopeRAII ThisScope(*this, ThisContext, ThisTypeQuals,
3346                                getLangOpts().CPlusPlus11);
3347 
3348     ResultType =
3349         SubstType(Proto->getReturnType(),
3350                   MultiLevelTemplateArgumentList(*ExplicitArgumentList),
3351                   Function->getTypeSpecStartLoc(), Function->getDeclName());
3352     if (ResultType.isNull() || Trap.hasErrorOccurred())
3353       return TDK_SubstitutionFailure;
3354     // CUDA: Kernel function must have 'void' return type.
3355     if (getLangOpts().CUDA)
3356       if (Function->hasAttr<CUDAGlobalAttr>() && !ResultType->isVoidType()) {
3357         Diag(Function->getLocation(), diag::err_kern_type_not_void_return)
3358             << Function->getType() << Function->getSourceRange();
3359         return TDK_SubstitutionFailure;
3360       }
3361   }
3362 
3363   // Instantiate the types of each of the function parameters given the
3364   // explicitly-specified template arguments if we didn't do so earlier.
3365   if (!Proto->hasTrailingReturn() &&
3366       SubstParmTypes(Function->getLocation(), Function->parameters(),
3367                      Proto->getExtParameterInfosOrNull(),
3368                      MultiLevelTemplateArgumentList(*ExplicitArgumentList),
3369                      ParamTypes, /*params*/ nullptr, ExtParamInfos))
3370     return TDK_SubstitutionFailure;
3371 
3372   if (FunctionType) {
3373     auto EPI = Proto->getExtProtoInfo();
3374     EPI.ExtParameterInfos = ExtParamInfos.getPointerOrNull(ParamTypes.size());
3375 
3376     // In C++1z onwards, exception specifications are part of the function type,
3377     // so substitution into the type must also substitute into the exception
3378     // specification.
3379     SmallVector<QualType, 4> ExceptionStorage;
3380     if (getLangOpts().CPlusPlus17 &&
3381         SubstExceptionSpec(
3382             Function->getLocation(), EPI.ExceptionSpec, ExceptionStorage,
3383             MultiLevelTemplateArgumentList(*ExplicitArgumentList)))
3384       return TDK_SubstitutionFailure;
3385 
3386     *FunctionType = BuildFunctionType(ResultType, ParamTypes,
3387                                       Function->getLocation(),
3388                                       Function->getDeclName(),
3389                                       EPI);
3390     if (FunctionType->isNull() || Trap.hasErrorOccurred())
3391       return TDK_SubstitutionFailure;
3392   }
3393 
3394   // C++ [temp.arg.explicit]p2:
3395   //   Trailing template arguments that can be deduced (14.8.2) may be
3396   //   omitted from the list of explicit template-arguments. If all of the
3397   //   template arguments can be deduced, they may all be omitted; in this
3398   //   case, the empty template argument list <> itself may also be omitted.
3399   //
3400   // Take all of the explicitly-specified arguments and put them into
3401   // the set of deduced template arguments. The partially-substituted
3402   // parameter pack, however, will be set to NULL since the deduction
3403   // mechanism handles the partially-substituted argument pack directly.
3404   Deduced.reserve(TemplateParams->size());
3405   for (unsigned I = 0, N = ExplicitArgumentList->size(); I != N; ++I) {
3406     const TemplateArgument &Arg = ExplicitArgumentList->get(I);
3407     if (I == PartiallySubstitutedPackIndex)
3408       Deduced.push_back(DeducedTemplateArgument());
3409     else
3410       Deduced.push_back(Arg);
3411   }
3412 
3413   return TDK_Success;
3414 }
3415 
3416 /// Check whether the deduced argument type for a call to a function
3417 /// template matches the actual argument type per C++ [temp.deduct.call]p4.
3418 static Sema::TemplateDeductionResult
3419 CheckOriginalCallArgDeduction(Sema &S, TemplateDeductionInfo &Info,
3420                               Sema::OriginalCallArg OriginalArg,
3421                               QualType DeducedA) {
3422   ASTContext &Context = S.Context;
3423 
3424   auto Failed = [&]() -> Sema::TemplateDeductionResult {
3425     Info.FirstArg = TemplateArgument(DeducedA);
3426     Info.SecondArg = TemplateArgument(OriginalArg.OriginalArgType);
3427     Info.CallArgIndex = OriginalArg.ArgIdx;
3428     return OriginalArg.DecomposedParam ? Sema::TDK_DeducedMismatchNested
3429                                        : Sema::TDK_DeducedMismatch;
3430   };
3431 
3432   QualType A = OriginalArg.OriginalArgType;
3433   QualType OriginalParamType = OriginalArg.OriginalParamType;
3434 
3435   // Check for type equality (top-level cv-qualifiers are ignored).
3436   if (Context.hasSameUnqualifiedType(A, DeducedA))
3437     return Sema::TDK_Success;
3438 
3439   // Strip off references on the argument types; they aren't needed for
3440   // the following checks.
3441   if (const ReferenceType *DeducedARef = DeducedA->getAs<ReferenceType>())
3442     DeducedA = DeducedARef->getPointeeType();
3443   if (const ReferenceType *ARef = A->getAs<ReferenceType>())
3444     A = ARef->getPointeeType();
3445 
3446   // C++ [temp.deduct.call]p4:
3447   //   [...] However, there are three cases that allow a difference:
3448   //     - If the original P is a reference type, the deduced A (i.e., the
3449   //       type referred to by the reference) can be more cv-qualified than
3450   //       the transformed A.
3451   if (const ReferenceType *OriginalParamRef
3452       = OriginalParamType->getAs<ReferenceType>()) {
3453     // We don't want to keep the reference around any more.
3454     OriginalParamType = OriginalParamRef->getPointeeType();
3455 
3456     // FIXME: Resolve core issue (no number yet): if the original P is a
3457     // reference type and the transformed A is function type "noexcept F",
3458     // the deduced A can be F.
3459     QualType Tmp;
3460     if (A->isFunctionType() && S.IsFunctionConversion(A, DeducedA, Tmp))
3461       return Sema::TDK_Success;
3462 
3463     Qualifiers AQuals = A.getQualifiers();
3464     Qualifiers DeducedAQuals = DeducedA.getQualifiers();
3465 
3466     // Under Objective-C++ ARC, the deduced type may have implicitly
3467     // been given strong or (when dealing with a const reference)
3468     // unsafe_unretained lifetime. If so, update the original
3469     // qualifiers to include this lifetime.
3470     if (S.getLangOpts().ObjCAutoRefCount &&
3471         ((DeducedAQuals.getObjCLifetime() == Qualifiers::OCL_Strong &&
3472           AQuals.getObjCLifetime() == Qualifiers::OCL_None) ||
3473          (DeducedAQuals.hasConst() &&
3474           DeducedAQuals.getObjCLifetime() == Qualifiers::OCL_ExplicitNone))) {
3475       AQuals.setObjCLifetime(DeducedAQuals.getObjCLifetime());
3476     }
3477 
3478     if (AQuals == DeducedAQuals) {
3479       // Qualifiers match; there's nothing to do.
3480     } else if (!DeducedAQuals.compatiblyIncludes(AQuals)) {
3481       return Failed();
3482     } else {
3483       // Qualifiers are compatible, so have the argument type adopt the
3484       // deduced argument type's qualifiers as if we had performed the
3485       // qualification conversion.
3486       A = Context.getQualifiedType(A.getUnqualifiedType(), DeducedAQuals);
3487     }
3488   }
3489 
3490   //    - The transformed A can be another pointer or pointer to member
3491   //      type that can be converted to the deduced A via a function pointer
3492   //      conversion and/or a qualification conversion.
3493   //
3494   // Also allow conversions which merely strip __attribute__((noreturn)) from
3495   // function types (recursively).
3496   bool ObjCLifetimeConversion = false;
3497   QualType ResultTy;
3498   if ((A->isAnyPointerType() || A->isMemberPointerType()) &&
3499       (S.IsQualificationConversion(A, DeducedA, false,
3500                                    ObjCLifetimeConversion) ||
3501        S.IsFunctionConversion(A, DeducedA, ResultTy)))
3502     return Sema::TDK_Success;
3503 
3504   //    - If P is a class and P has the form simple-template-id, then the
3505   //      transformed A can be a derived class of the deduced A. [...]
3506   //     [...] Likewise, if P is a pointer to a class of the form
3507   //      simple-template-id, the transformed A can be a pointer to a
3508   //      derived class pointed to by the deduced A.
3509   if (const PointerType *OriginalParamPtr
3510       = OriginalParamType->getAs<PointerType>()) {
3511     if (const PointerType *DeducedAPtr = DeducedA->getAs<PointerType>()) {
3512       if (const PointerType *APtr = A->getAs<PointerType>()) {
3513         if (A->getPointeeType()->isRecordType()) {
3514           OriginalParamType = OriginalParamPtr->getPointeeType();
3515           DeducedA = DeducedAPtr->getPointeeType();
3516           A = APtr->getPointeeType();
3517         }
3518       }
3519     }
3520   }
3521 
3522   if (Context.hasSameUnqualifiedType(A, DeducedA))
3523     return Sema::TDK_Success;
3524 
3525   if (A->isRecordType() && isSimpleTemplateIdType(OriginalParamType) &&
3526       S.IsDerivedFrom(Info.getLocation(), A, DeducedA))
3527     return Sema::TDK_Success;
3528 
3529   return Failed();
3530 }
3531 
3532 /// Find the pack index for a particular parameter index in an instantiation of
3533 /// a function template with specific arguments.
3534 ///
3535 /// \return The pack index for whichever pack produced this parameter, or -1
3536 ///         if this was not produced by a parameter. Intended to be used as the
3537 ///         ArgumentPackSubstitutionIndex for further substitutions.
3538 // FIXME: We should track this in OriginalCallArgs so we don't need to
3539 // reconstruct it here.
3540 static unsigned getPackIndexForParam(Sema &S,
3541                                      FunctionTemplateDecl *FunctionTemplate,
3542                                      const MultiLevelTemplateArgumentList &Args,
3543                                      unsigned ParamIdx) {
3544   unsigned Idx = 0;
3545   for (auto *PD : FunctionTemplate->getTemplatedDecl()->parameters()) {
3546     if (PD->isParameterPack()) {
3547       unsigned NumExpansions =
3548           S.getNumArgumentsInExpansion(PD->getType(), Args).getValueOr(1);
3549       if (Idx + NumExpansions > ParamIdx)
3550         return ParamIdx - Idx;
3551       Idx += NumExpansions;
3552     } else {
3553       if (Idx == ParamIdx)
3554         return -1; // Not a pack expansion
3555       ++Idx;
3556     }
3557   }
3558 
3559   llvm_unreachable("parameter index would not be produced from template");
3560 }
3561 
3562 /// Finish template argument deduction for a function template,
3563 /// checking the deduced template arguments for completeness and forming
3564 /// the function template specialization.
3565 ///
3566 /// \param OriginalCallArgs If non-NULL, the original call arguments against
3567 /// which the deduced argument types should be compared.
3568 Sema::TemplateDeductionResult Sema::FinishTemplateArgumentDeduction(
3569     FunctionTemplateDecl *FunctionTemplate,
3570     SmallVectorImpl<DeducedTemplateArgument> &Deduced,
3571     unsigned NumExplicitlySpecified, FunctionDecl *&Specialization,
3572     TemplateDeductionInfo &Info,
3573     SmallVectorImpl<OriginalCallArg> const *OriginalCallArgs,
3574     bool PartialOverloading, llvm::function_ref<bool()> CheckNonDependent) {
3575   // Unevaluated SFINAE context.
3576   EnterExpressionEvaluationContext Unevaluated(
3577       *this, Sema::ExpressionEvaluationContext::Unevaluated);
3578   SFINAETrap Trap(*this);
3579 
3580   // Enter a new template instantiation context while we instantiate the
3581   // actual function declaration.
3582   SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(), Deduced.end());
3583   InstantiatingTemplate Inst(
3584       *this, Info.getLocation(), FunctionTemplate, DeducedArgs,
3585       CodeSynthesisContext::DeducedTemplateArgumentSubstitution, Info);
3586   if (Inst.isInvalid())
3587     return TDK_InstantiationDepth;
3588 
3589   ContextRAII SavedContext(*this, FunctionTemplate->getTemplatedDecl());
3590 
3591   // C++ [temp.deduct.type]p2:
3592   //   [...] or if any template argument remains neither deduced nor
3593   //   explicitly specified, template argument deduction fails.
3594   SmallVector<TemplateArgument, 4> Builder;
3595   if (auto Result = ConvertDeducedTemplateArguments(
3596           *this, FunctionTemplate, /*IsDeduced*/true, Deduced, Info, Builder,
3597           CurrentInstantiationScope, NumExplicitlySpecified,
3598           PartialOverloading))
3599     return Result;
3600 
3601   // C++ [temp.deduct.call]p10: [DR1391]
3602   //   If deduction succeeds for all parameters that contain
3603   //   template-parameters that participate in template argument deduction,
3604   //   and all template arguments are explicitly specified, deduced, or
3605   //   obtained from default template arguments, remaining parameters are then
3606   //   compared with the corresponding arguments. For each remaining parameter
3607   //   P with a type that was non-dependent before substitution of any
3608   //   explicitly-specified template arguments, if the corresponding argument
3609   //   A cannot be implicitly converted to P, deduction fails.
3610   if (CheckNonDependent())
3611     return TDK_NonDependentConversionFailure;
3612 
3613   // Form the template argument list from the deduced template arguments.
3614   TemplateArgumentList *DeducedArgumentList
3615     = TemplateArgumentList::CreateCopy(Context, Builder);
3616   Info.reset(DeducedArgumentList);
3617 
3618   // Substitute the deduced template arguments into the function template
3619   // declaration to produce the function template specialization.
3620   DeclContext *Owner = FunctionTemplate->getDeclContext();
3621   if (FunctionTemplate->getFriendObjectKind())
3622     Owner = FunctionTemplate->getLexicalDeclContext();
3623   MultiLevelTemplateArgumentList SubstArgs(*DeducedArgumentList);
3624   Specialization = cast_or_null<FunctionDecl>(
3625       SubstDecl(FunctionTemplate->getTemplatedDecl(), Owner, SubstArgs));
3626   if (!Specialization || Specialization->isInvalidDecl())
3627     return TDK_SubstitutionFailure;
3628 
3629   assert(Specialization->getPrimaryTemplate()->getCanonicalDecl() ==
3630          FunctionTemplate->getCanonicalDecl());
3631 
3632   // If the template argument list is owned by the function template
3633   // specialization, release it.
3634   if (Specialization->getTemplateSpecializationArgs() == DeducedArgumentList &&
3635       !Trap.hasErrorOccurred())
3636     Info.take();
3637 
3638   // There may have been an error that did not prevent us from constructing a
3639   // declaration. Mark the declaration invalid and return with a substitution
3640   // failure.
3641   if (Trap.hasErrorOccurred()) {
3642     Specialization->setInvalidDecl(true);
3643     return TDK_SubstitutionFailure;
3644   }
3645 
3646   // C++2a [temp.deduct]p5
3647   //   [...] When all template arguments have been deduced [...] all uses of
3648   //   template parameters [...] are replaced with the corresponding deduced
3649   //   or default argument values.
3650   //   [...] If the function template has associated constraints
3651   //   ([temp.constr.decl]), those constraints are checked for satisfaction
3652   //   ([temp.constr.constr]). If the constraints are not satisfied, type
3653   //   deduction fails.
3654   if (!PartialOverloading ||
3655       (Builder.size() == FunctionTemplate->getTemplateParameters()->size())) {
3656     if (CheckInstantiatedFunctionTemplateConstraints(Info.getLocation(),
3657             Specialization, Builder, Info.AssociatedConstraintsSatisfaction))
3658       return TDK_MiscellaneousDeductionFailure;
3659 
3660     if (!Info.AssociatedConstraintsSatisfaction.IsSatisfied) {
3661       Info.reset(TemplateArgumentList::CreateCopy(Context, Builder));
3662       return TDK_ConstraintsNotSatisfied;
3663     }
3664   }
3665 
3666   if (OriginalCallArgs) {
3667     // C++ [temp.deduct.call]p4:
3668     //   In general, the deduction process attempts to find template argument
3669     //   values that will make the deduced A identical to A (after the type A
3670     //   is transformed as described above). [...]
3671     llvm::SmallDenseMap<std::pair<unsigned, QualType>, QualType> DeducedATypes;
3672     for (unsigned I = 0, N = OriginalCallArgs->size(); I != N; ++I) {
3673       OriginalCallArg OriginalArg = (*OriginalCallArgs)[I];
3674 
3675       auto ParamIdx = OriginalArg.ArgIdx;
3676       if (ParamIdx >= Specialization->getNumParams())
3677         // FIXME: This presumably means a pack ended up smaller than we
3678         // expected while deducing. Should this not result in deduction
3679         // failure? Can it even happen?
3680         continue;
3681 
3682       QualType DeducedA;
3683       if (!OriginalArg.DecomposedParam) {
3684         // P is one of the function parameters, just look up its substituted
3685         // type.
3686         DeducedA = Specialization->getParamDecl(ParamIdx)->getType();
3687       } else {
3688         // P is a decomposed element of a parameter corresponding to a
3689         // braced-init-list argument. Substitute back into P to find the
3690         // deduced A.
3691         QualType &CacheEntry =
3692             DeducedATypes[{ParamIdx, OriginalArg.OriginalParamType}];
3693         if (CacheEntry.isNull()) {
3694           ArgumentPackSubstitutionIndexRAII PackIndex(
3695               *this, getPackIndexForParam(*this, FunctionTemplate, SubstArgs,
3696                                           ParamIdx));
3697           CacheEntry =
3698               SubstType(OriginalArg.OriginalParamType, SubstArgs,
3699                         Specialization->getTypeSpecStartLoc(),
3700                         Specialization->getDeclName());
3701         }
3702         DeducedA = CacheEntry;
3703       }
3704 
3705       if (auto TDK =
3706               CheckOriginalCallArgDeduction(*this, Info, OriginalArg, DeducedA))
3707         return TDK;
3708     }
3709   }
3710 
3711   // If we suppressed any diagnostics while performing template argument
3712   // deduction, and if we haven't already instantiated this declaration,
3713   // keep track of these diagnostics. They'll be emitted if this specialization
3714   // is actually used.
3715   if (Info.diag_begin() != Info.diag_end()) {
3716     SuppressedDiagnosticsMap::iterator
3717       Pos = SuppressedDiagnostics.find(Specialization->getCanonicalDecl());
3718     if (Pos == SuppressedDiagnostics.end())
3719         SuppressedDiagnostics[Specialization->getCanonicalDecl()]
3720           .append(Info.diag_begin(), Info.diag_end());
3721   }
3722 
3723   return TDK_Success;
3724 }
3725 
3726 /// Gets the type of a function for template-argument-deducton
3727 /// purposes when it's considered as part of an overload set.
3728 static QualType GetTypeOfFunction(Sema &S, const OverloadExpr::FindResult &R,
3729                                   FunctionDecl *Fn) {
3730   // We may need to deduce the return type of the function now.
3731   if (S.getLangOpts().CPlusPlus14 && Fn->getReturnType()->isUndeducedType() &&
3732       S.DeduceReturnType(Fn, R.Expression->getExprLoc(), /*Diagnose*/ false))
3733     return {};
3734 
3735   if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Fn))
3736     if (Method->isInstance()) {
3737       // An instance method that's referenced in a form that doesn't
3738       // look like a member pointer is just invalid.
3739       if (!R.HasFormOfMemberPointer)
3740         return {};
3741 
3742       return S.Context.getMemberPointerType(Fn->getType(),
3743                S.Context.getTypeDeclType(Method->getParent()).getTypePtr());
3744     }
3745 
3746   if (!R.IsAddressOfOperand) return Fn->getType();
3747   return S.Context.getPointerType(Fn->getType());
3748 }
3749 
3750 /// Apply the deduction rules for overload sets.
3751 ///
3752 /// \return the null type if this argument should be treated as an
3753 /// undeduced context
3754 static QualType
3755 ResolveOverloadForDeduction(Sema &S, TemplateParameterList *TemplateParams,
3756                             Expr *Arg, QualType ParamType,
3757                             bool ParamWasReference) {
3758 
3759   OverloadExpr::FindResult R = OverloadExpr::find(Arg);
3760 
3761   OverloadExpr *Ovl = R.Expression;
3762 
3763   // C++0x [temp.deduct.call]p4
3764   unsigned TDF = 0;
3765   if (ParamWasReference)
3766     TDF |= TDF_ParamWithReferenceType;
3767   if (R.IsAddressOfOperand)
3768     TDF |= TDF_IgnoreQualifiers;
3769 
3770   // C++0x [temp.deduct.call]p6:
3771   //   When P is a function type, pointer to function type, or pointer
3772   //   to member function type:
3773 
3774   if (!ParamType->isFunctionType() &&
3775       !ParamType->isFunctionPointerType() &&
3776       !ParamType->isMemberFunctionPointerType()) {
3777     if (Ovl->hasExplicitTemplateArgs()) {
3778       // But we can still look for an explicit specialization.
3779       if (FunctionDecl *ExplicitSpec
3780             = S.ResolveSingleFunctionTemplateSpecialization(Ovl))
3781         return GetTypeOfFunction(S, R, ExplicitSpec);
3782     }
3783 
3784     DeclAccessPair DAP;
3785     if (FunctionDecl *Viable =
3786             S.resolveAddressOfSingleOverloadCandidate(Arg, DAP))
3787       return GetTypeOfFunction(S, R, Viable);
3788 
3789     return {};
3790   }
3791 
3792   // Gather the explicit template arguments, if any.
3793   TemplateArgumentListInfo ExplicitTemplateArgs;
3794   if (Ovl->hasExplicitTemplateArgs())
3795     Ovl->copyTemplateArgumentsInto(ExplicitTemplateArgs);
3796   QualType Match;
3797   for (UnresolvedSetIterator I = Ovl->decls_begin(),
3798          E = Ovl->decls_end(); I != E; ++I) {
3799     NamedDecl *D = (*I)->getUnderlyingDecl();
3800 
3801     if (FunctionTemplateDecl *FunTmpl = dyn_cast<FunctionTemplateDecl>(D)) {
3802       //   - If the argument is an overload set containing one or more
3803       //     function templates, the parameter is treated as a
3804       //     non-deduced context.
3805       if (!Ovl->hasExplicitTemplateArgs())
3806         return {};
3807 
3808       // Otherwise, see if we can resolve a function type
3809       FunctionDecl *Specialization = nullptr;
3810       TemplateDeductionInfo Info(Ovl->getNameLoc());
3811       if (S.DeduceTemplateArguments(FunTmpl, &ExplicitTemplateArgs,
3812                                     Specialization, Info))
3813         continue;
3814 
3815       D = Specialization;
3816     }
3817 
3818     FunctionDecl *Fn = cast<FunctionDecl>(D);
3819     QualType ArgType = GetTypeOfFunction(S, R, Fn);
3820     if (ArgType.isNull()) continue;
3821 
3822     // Function-to-pointer conversion.
3823     if (!ParamWasReference && ParamType->isPointerType() &&
3824         ArgType->isFunctionType())
3825       ArgType = S.Context.getPointerType(ArgType);
3826 
3827     //   - If the argument is an overload set (not containing function
3828     //     templates), trial argument deduction is attempted using each
3829     //     of the members of the set. If deduction succeeds for only one
3830     //     of the overload set members, that member is used as the
3831     //     argument value for the deduction. If deduction succeeds for
3832     //     more than one member of the overload set the parameter is
3833     //     treated as a non-deduced context.
3834 
3835     // We do all of this in a fresh context per C++0x [temp.deduct.type]p2:
3836     //   Type deduction is done independently for each P/A pair, and
3837     //   the deduced template argument values are then combined.
3838     // So we do not reject deductions which were made elsewhere.
3839     SmallVector<DeducedTemplateArgument, 8>
3840       Deduced(TemplateParams->size());
3841     TemplateDeductionInfo Info(Ovl->getNameLoc());
3842     Sema::TemplateDeductionResult Result
3843       = DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, ParamType,
3844                                            ArgType, Info, Deduced, TDF);
3845     if (Result) continue;
3846     if (!Match.isNull())
3847       return {};
3848     Match = ArgType;
3849   }
3850 
3851   return Match;
3852 }
3853 
3854 /// Perform the adjustments to the parameter and argument types
3855 /// described in C++ [temp.deduct.call].
3856 ///
3857 /// \returns true if the caller should not attempt to perform any template
3858 /// argument deduction based on this P/A pair because the argument is an
3859 /// overloaded function set that could not be resolved.
3860 static bool AdjustFunctionParmAndArgTypesForDeduction(
3861     Sema &S, TemplateParameterList *TemplateParams, unsigned FirstInnerIndex,
3862     QualType &ParamType, QualType &ArgType, Expr *Arg, unsigned &TDF) {
3863   // C++0x [temp.deduct.call]p3:
3864   //   If P is a cv-qualified type, the top level cv-qualifiers of P's type
3865   //   are ignored for type deduction.
3866   if (ParamType.hasQualifiers())
3867     ParamType = ParamType.getUnqualifiedType();
3868 
3869   //   [...] If P is a reference type, the type referred to by P is
3870   //   used for type deduction.
3871   const ReferenceType *ParamRefType = ParamType->getAs<ReferenceType>();
3872   if (ParamRefType)
3873     ParamType = ParamRefType->getPointeeType();
3874 
3875   // Overload sets usually make this parameter an undeduced context,
3876   // but there are sometimes special circumstances.  Typically
3877   // involving a template-id-expr.
3878   if (ArgType == S.Context.OverloadTy) {
3879     ArgType = ResolveOverloadForDeduction(S, TemplateParams,
3880                                           Arg, ParamType,
3881                                           ParamRefType != nullptr);
3882     if (ArgType.isNull())
3883       return true;
3884   }
3885 
3886   if (ParamRefType) {
3887     // If the argument has incomplete array type, try to complete its type.
3888     if (ArgType->isIncompleteArrayType())
3889       ArgType = S.getCompletedType(Arg);
3890 
3891     // C++1z [temp.deduct.call]p3:
3892     //   If P is a forwarding reference and the argument is an lvalue, the type
3893     //   "lvalue reference to A" is used in place of A for type deduction.
3894     if (isForwardingReference(QualType(ParamRefType, 0), FirstInnerIndex) &&
3895         Arg->isLValue()) {
3896       if (S.getLangOpts().OpenCL && !ArgType.hasAddressSpace())
3897         ArgType = S.Context.getAddrSpaceQualType(
3898             ArgType, S.Context.getDefaultOpenCLPointeeAddrSpace());
3899       ArgType = S.Context.getLValueReferenceType(ArgType);
3900     }
3901   } else {
3902     // C++ [temp.deduct.call]p2:
3903     //   If P is not a reference type:
3904     //   - If A is an array type, the pointer type produced by the
3905     //     array-to-pointer standard conversion (4.2) is used in place of
3906     //     A for type deduction; otherwise,
3907     if (ArgType->isArrayType())
3908       ArgType = S.Context.getArrayDecayedType(ArgType);
3909     //   - If A is a function type, the pointer type produced by the
3910     //     function-to-pointer standard conversion (4.3) is used in place
3911     //     of A for type deduction; otherwise,
3912     else if (ArgType->isFunctionType())
3913       ArgType = S.Context.getPointerType(ArgType);
3914     else {
3915       // - If A is a cv-qualified type, the top level cv-qualifiers of A's
3916       //   type are ignored for type deduction.
3917       ArgType = ArgType.getUnqualifiedType();
3918     }
3919   }
3920 
3921   // C++0x [temp.deduct.call]p4:
3922   //   In general, the deduction process attempts to find template argument
3923   //   values that will make the deduced A identical to A (after the type A
3924   //   is transformed as described above). [...]
3925   TDF = TDF_SkipNonDependent;
3926 
3927   //     - If the original P is a reference type, the deduced A (i.e., the
3928   //       type referred to by the reference) can be more cv-qualified than
3929   //       the transformed A.
3930   if (ParamRefType)
3931     TDF |= TDF_ParamWithReferenceType;
3932   //     - The transformed A can be another pointer or pointer to member
3933   //       type that can be converted to the deduced A via a qualification
3934   //       conversion (4.4).
3935   if (ArgType->isPointerType() || ArgType->isMemberPointerType() ||
3936       ArgType->isObjCObjectPointerType())
3937     TDF |= TDF_IgnoreQualifiers;
3938   //     - If P is a class and P has the form simple-template-id, then the
3939   //       transformed A can be a derived class of the deduced A. Likewise,
3940   //       if P is a pointer to a class of the form simple-template-id, the
3941   //       transformed A can be a pointer to a derived class pointed to by
3942   //       the deduced A.
3943   if (isSimpleTemplateIdType(ParamType) ||
3944       (isa<PointerType>(ParamType) &&
3945        isSimpleTemplateIdType(
3946            ParamType->castAs<PointerType>()->getPointeeType())))
3947     TDF |= TDF_DerivedClass;
3948 
3949   return false;
3950 }
3951 
3952 static bool
3953 hasDeducibleTemplateParameters(Sema &S, FunctionTemplateDecl *FunctionTemplate,
3954                                QualType T);
3955 
3956 static Sema::TemplateDeductionResult DeduceTemplateArgumentsFromCallArgument(
3957     Sema &S, TemplateParameterList *TemplateParams, unsigned FirstInnerIndex,
3958     QualType ParamType, Expr *Arg, TemplateDeductionInfo &Info,
3959     SmallVectorImpl<DeducedTemplateArgument> &Deduced,
3960     SmallVectorImpl<Sema::OriginalCallArg> &OriginalCallArgs,
3961     bool DecomposedParam, unsigned ArgIdx, unsigned TDF);
3962 
3963 /// Attempt template argument deduction from an initializer list
3964 ///        deemed to be an argument in a function call.
3965 static Sema::TemplateDeductionResult DeduceFromInitializerList(
3966     Sema &S, TemplateParameterList *TemplateParams, QualType AdjustedParamType,
3967     InitListExpr *ILE, TemplateDeductionInfo &Info,
3968     SmallVectorImpl<DeducedTemplateArgument> &Deduced,
3969     SmallVectorImpl<Sema::OriginalCallArg> &OriginalCallArgs, unsigned ArgIdx,
3970     unsigned TDF) {
3971   // C++ [temp.deduct.call]p1: (CWG 1591)
3972   //   If removing references and cv-qualifiers from P gives
3973   //   std::initializer_list<P0> or P0[N] for some P0 and N and the argument is
3974   //   a non-empty initializer list, then deduction is performed instead for
3975   //   each element of the initializer list, taking P0 as a function template
3976   //   parameter type and the initializer element as its argument
3977   //
3978   // We've already removed references and cv-qualifiers here.
3979   if (!ILE->getNumInits())
3980     return Sema::TDK_Success;
3981 
3982   QualType ElTy;
3983   auto *ArrTy = S.Context.getAsArrayType(AdjustedParamType);
3984   if (ArrTy)
3985     ElTy = ArrTy->getElementType();
3986   else if (!S.isStdInitializerList(AdjustedParamType, &ElTy)) {
3987     //   Otherwise, an initializer list argument causes the parameter to be
3988     //   considered a non-deduced context
3989     return Sema::TDK_Success;
3990   }
3991 
3992   // Resolving a core issue: a braced-init-list containing any designators is
3993   // a non-deduced context.
3994   for (Expr *E : ILE->inits())
3995     if (isa<DesignatedInitExpr>(E))
3996       return Sema::TDK_Success;
3997 
3998   // Deduction only needs to be done for dependent types.
3999   if (ElTy->isDependentType()) {
4000     for (Expr *E : ILE->inits()) {
4001       if (auto Result = DeduceTemplateArgumentsFromCallArgument(
4002               S, TemplateParams, 0, ElTy, E, Info, Deduced, OriginalCallArgs, true,
4003               ArgIdx, TDF))
4004         return Result;
4005     }
4006   }
4007 
4008   //   in the P0[N] case, if N is a non-type template parameter, N is deduced
4009   //   from the length of the initializer list.
4010   if (auto *DependentArrTy = dyn_cast_or_null<DependentSizedArrayType>(ArrTy)) {
4011     // Determine the array bound is something we can deduce.
4012     if (const NonTypeTemplateParmDecl *NTTP =
4013             getDeducedParameterFromExpr(Info, DependentArrTy->getSizeExpr())) {
4014       // We can perform template argument deduction for the given non-type
4015       // template parameter.
4016       // C++ [temp.deduct.type]p13:
4017       //   The type of N in the type T[N] is std::size_t.
4018       QualType T = S.Context.getSizeType();
4019       llvm::APInt Size(S.Context.getIntWidth(T), ILE->getNumInits());
4020       if (auto Result = DeduceNonTypeTemplateArgument(
4021               S, TemplateParams, NTTP, llvm::APSInt(Size), T,
4022               /*ArrayBound=*/true, Info, Deduced))
4023         return Result;
4024     }
4025   }
4026 
4027   return Sema::TDK_Success;
4028 }
4029 
4030 /// Perform template argument deduction per [temp.deduct.call] for a
4031 ///        single parameter / argument pair.
4032 static Sema::TemplateDeductionResult DeduceTemplateArgumentsFromCallArgument(
4033     Sema &S, TemplateParameterList *TemplateParams, unsigned FirstInnerIndex,
4034     QualType ParamType, Expr *Arg, TemplateDeductionInfo &Info,
4035     SmallVectorImpl<DeducedTemplateArgument> &Deduced,
4036     SmallVectorImpl<Sema::OriginalCallArg> &OriginalCallArgs,
4037     bool DecomposedParam, unsigned ArgIdx, unsigned TDF) {
4038   QualType ArgType = Arg->getType();
4039   QualType OrigParamType = ParamType;
4040 
4041   //   If P is a reference type [...]
4042   //   If P is a cv-qualified type [...]
4043   if (AdjustFunctionParmAndArgTypesForDeduction(
4044           S, TemplateParams, FirstInnerIndex, ParamType, ArgType, Arg, TDF))
4045     return Sema::TDK_Success;
4046 
4047   //   If [...] the argument is a non-empty initializer list [...]
4048   if (InitListExpr *ILE = dyn_cast<InitListExpr>(Arg))
4049     return DeduceFromInitializerList(S, TemplateParams, ParamType, ILE, Info,
4050                                      Deduced, OriginalCallArgs, ArgIdx, TDF);
4051 
4052   //   [...] the deduction process attempts to find template argument values
4053   //   that will make the deduced A identical to A
4054   //
4055   // Keep track of the argument type and corresponding parameter index,
4056   // so we can check for compatibility between the deduced A and A.
4057   OriginalCallArgs.push_back(
4058       Sema::OriginalCallArg(OrigParamType, DecomposedParam, ArgIdx, ArgType));
4059   return DeduceTemplateArgumentsByTypeMatch(S, TemplateParams, ParamType,
4060                                             ArgType, Info, Deduced, TDF);
4061 }
4062 
4063 /// Perform template argument deduction from a function call
4064 /// (C++ [temp.deduct.call]).
4065 ///
4066 /// \param FunctionTemplate the function template for which we are performing
4067 /// template argument deduction.
4068 ///
4069 /// \param ExplicitTemplateArgs the explicit template arguments provided
4070 /// for this call.
4071 ///
4072 /// \param Args the function call arguments
4073 ///
4074 /// \param Specialization if template argument deduction was successful,
4075 /// this will be set to the function template specialization produced by
4076 /// template argument deduction.
4077 ///
4078 /// \param Info the argument will be updated to provide additional information
4079 /// about template argument deduction.
4080 ///
4081 /// \param CheckNonDependent A callback to invoke to check conversions for
4082 /// non-dependent parameters, between deduction and substitution, per DR1391.
4083 /// If this returns true, substitution will be skipped and we return
4084 /// TDK_NonDependentConversionFailure. The callback is passed the parameter
4085 /// types (after substituting explicit template arguments).
4086 ///
4087 /// \returns the result of template argument deduction.
4088 Sema::TemplateDeductionResult Sema::DeduceTemplateArguments(
4089     FunctionTemplateDecl *FunctionTemplate,
4090     TemplateArgumentListInfo *ExplicitTemplateArgs, ArrayRef<Expr *> Args,
4091     FunctionDecl *&Specialization, TemplateDeductionInfo &Info,
4092     bool PartialOverloading,
4093     llvm::function_ref<bool(ArrayRef<QualType>)> CheckNonDependent) {
4094   if (FunctionTemplate->isInvalidDecl())
4095     return TDK_Invalid;
4096 
4097   FunctionDecl *Function = FunctionTemplate->getTemplatedDecl();
4098   unsigned NumParams = Function->getNumParams();
4099 
4100   unsigned FirstInnerIndex = getFirstInnerIndex(FunctionTemplate);
4101 
4102   // C++ [temp.deduct.call]p1:
4103   //   Template argument deduction is done by comparing each function template
4104   //   parameter type (call it P) with the type of the corresponding argument
4105   //   of the call (call it A) as described below.
4106   if (Args.size() < Function->getMinRequiredArguments() && !PartialOverloading)
4107     return TDK_TooFewArguments;
4108   else if (TooManyArguments(NumParams, Args.size(), PartialOverloading)) {
4109     const auto *Proto = Function->getType()->castAs<FunctionProtoType>();
4110     if (Proto->isTemplateVariadic())
4111       /* Do nothing */;
4112     else if (!Proto->isVariadic())
4113       return TDK_TooManyArguments;
4114   }
4115 
4116   // The types of the parameters from which we will perform template argument
4117   // deduction.
4118   LocalInstantiationScope InstScope(*this);
4119   TemplateParameterList *TemplateParams
4120     = FunctionTemplate->getTemplateParameters();
4121   SmallVector<DeducedTemplateArgument, 4> Deduced;
4122   SmallVector<QualType, 8> ParamTypes;
4123   unsigned NumExplicitlySpecified = 0;
4124   if (ExplicitTemplateArgs) {
4125     TemplateDeductionResult Result;
4126     runWithSufficientStackSpace(Info.getLocation(), [&] {
4127       Result = SubstituteExplicitTemplateArguments(
4128           FunctionTemplate, *ExplicitTemplateArgs, Deduced, ParamTypes, nullptr,
4129           Info);
4130     });
4131     if (Result)
4132       return Result;
4133 
4134     NumExplicitlySpecified = Deduced.size();
4135   } else {
4136     // Just fill in the parameter types from the function declaration.
4137     for (unsigned I = 0; I != NumParams; ++I)
4138       ParamTypes.push_back(Function->getParamDecl(I)->getType());
4139   }
4140 
4141   SmallVector<OriginalCallArg, 8> OriginalCallArgs;
4142 
4143   // Deduce an argument of type ParamType from an expression with index ArgIdx.
4144   auto DeduceCallArgument = [&](QualType ParamType, unsigned ArgIdx) {
4145     // C++ [demp.deduct.call]p1: (DR1391)
4146     //   Template argument deduction is done by comparing each function template
4147     //   parameter that contains template-parameters that participate in
4148     //   template argument deduction ...
4149     if (!hasDeducibleTemplateParameters(*this, FunctionTemplate, ParamType))
4150       return Sema::TDK_Success;
4151 
4152     //   ... with the type of the corresponding argument
4153     return DeduceTemplateArgumentsFromCallArgument(
4154         *this, TemplateParams, FirstInnerIndex, ParamType, Args[ArgIdx], Info, Deduced,
4155         OriginalCallArgs, /*Decomposed*/false, ArgIdx, /*TDF*/ 0);
4156   };
4157 
4158   // Deduce template arguments from the function parameters.
4159   Deduced.resize(TemplateParams->size());
4160   SmallVector<QualType, 8> ParamTypesForArgChecking;
4161   for (unsigned ParamIdx = 0, NumParamTypes = ParamTypes.size(), ArgIdx = 0;
4162        ParamIdx != NumParamTypes; ++ParamIdx) {
4163     QualType ParamType = ParamTypes[ParamIdx];
4164 
4165     const PackExpansionType *ParamExpansion =
4166         dyn_cast<PackExpansionType>(ParamType);
4167     if (!ParamExpansion) {
4168       // Simple case: matching a function parameter to a function argument.
4169       if (ArgIdx >= Args.size())
4170         break;
4171 
4172       ParamTypesForArgChecking.push_back(ParamType);
4173       if (auto Result = DeduceCallArgument(ParamType, ArgIdx++))
4174         return Result;
4175 
4176       continue;
4177     }
4178 
4179     QualType ParamPattern = ParamExpansion->getPattern();
4180     PackDeductionScope PackScope(*this, TemplateParams, Deduced, Info,
4181                                  ParamPattern);
4182 
4183     // C++0x [temp.deduct.call]p1:
4184     //   For a function parameter pack that occurs at the end of the
4185     //   parameter-declaration-list, the type A of each remaining argument of
4186     //   the call is compared with the type P of the declarator-id of the
4187     //   function parameter pack. Each comparison deduces template arguments
4188     //   for subsequent positions in the template parameter packs expanded by
4189     //   the function parameter pack. When a function parameter pack appears
4190     //   in a non-deduced context [not at the end of the list], the type of
4191     //   that parameter pack is never deduced.
4192     //
4193     // FIXME: The above rule allows the size of the parameter pack to change
4194     // after we skip it (in the non-deduced case). That makes no sense, so
4195     // we instead notionally deduce the pack against N arguments, where N is
4196     // the length of the explicitly-specified pack if it's expanded by the
4197     // parameter pack and 0 otherwise, and we treat each deduction as a
4198     // non-deduced context.
4199     if (ParamIdx + 1 == NumParamTypes || PackScope.hasFixedArity()) {
4200       for (; ArgIdx < Args.size() && PackScope.hasNextElement();
4201            PackScope.nextPackElement(), ++ArgIdx) {
4202         ParamTypesForArgChecking.push_back(ParamPattern);
4203         if (auto Result = DeduceCallArgument(ParamPattern, ArgIdx))
4204           return Result;
4205       }
4206     } else {
4207       // If the parameter type contains an explicitly-specified pack that we
4208       // could not expand, skip the number of parameters notionally created
4209       // by the expansion.
4210       Optional<unsigned> NumExpansions = ParamExpansion->getNumExpansions();
4211       if (NumExpansions && !PackScope.isPartiallyExpanded()) {
4212         for (unsigned I = 0; I != *NumExpansions && ArgIdx < Args.size();
4213              ++I, ++ArgIdx) {
4214           ParamTypesForArgChecking.push_back(ParamPattern);
4215           // FIXME: Should we add OriginalCallArgs for these? What if the
4216           // corresponding argument is a list?
4217           PackScope.nextPackElement();
4218         }
4219       }
4220     }
4221 
4222     // Build argument packs for each of the parameter packs expanded by this
4223     // pack expansion.
4224     if (auto Result = PackScope.finish())
4225       return Result;
4226   }
4227 
4228   // Capture the context in which the function call is made. This is the context
4229   // that is needed when the accessibility of template arguments is checked.
4230   DeclContext *CallingCtx = CurContext;
4231 
4232   TemplateDeductionResult Result;
4233   runWithSufficientStackSpace(Info.getLocation(), [&] {
4234     Result = FinishTemplateArgumentDeduction(
4235         FunctionTemplate, Deduced, NumExplicitlySpecified, Specialization, Info,
4236         &OriginalCallArgs, PartialOverloading, [&, CallingCtx]() {
4237           ContextRAII SavedContext(*this, CallingCtx);
4238           return CheckNonDependent(ParamTypesForArgChecking);
4239         });
4240   });
4241   return Result;
4242 }
4243 
4244 QualType Sema::adjustCCAndNoReturn(QualType ArgFunctionType,
4245                                    QualType FunctionType,
4246                                    bool AdjustExceptionSpec) {
4247   if (ArgFunctionType.isNull())
4248     return ArgFunctionType;
4249 
4250   const auto *FunctionTypeP = FunctionType->castAs<FunctionProtoType>();
4251   const auto *ArgFunctionTypeP = ArgFunctionType->castAs<FunctionProtoType>();
4252   FunctionProtoType::ExtProtoInfo EPI = ArgFunctionTypeP->getExtProtoInfo();
4253   bool Rebuild = false;
4254 
4255   CallingConv CC = FunctionTypeP->getCallConv();
4256   if (EPI.ExtInfo.getCC() != CC) {
4257     EPI.ExtInfo = EPI.ExtInfo.withCallingConv(CC);
4258     Rebuild = true;
4259   }
4260 
4261   bool NoReturn = FunctionTypeP->getNoReturnAttr();
4262   if (EPI.ExtInfo.getNoReturn() != NoReturn) {
4263     EPI.ExtInfo = EPI.ExtInfo.withNoReturn(NoReturn);
4264     Rebuild = true;
4265   }
4266 
4267   if (AdjustExceptionSpec && (FunctionTypeP->hasExceptionSpec() ||
4268                               ArgFunctionTypeP->hasExceptionSpec())) {
4269     EPI.ExceptionSpec = FunctionTypeP->getExtProtoInfo().ExceptionSpec;
4270     Rebuild = true;
4271   }
4272 
4273   if (!Rebuild)
4274     return ArgFunctionType;
4275 
4276   return Context.getFunctionType(ArgFunctionTypeP->getReturnType(),
4277                                  ArgFunctionTypeP->getParamTypes(), EPI);
4278 }
4279 
4280 /// Deduce template arguments when taking the address of a function
4281 /// template (C++ [temp.deduct.funcaddr]) or matching a specialization to
4282 /// a template.
4283 ///
4284 /// \param FunctionTemplate the function template for which we are performing
4285 /// template argument deduction.
4286 ///
4287 /// \param ExplicitTemplateArgs the explicitly-specified template
4288 /// arguments.
4289 ///
4290 /// \param ArgFunctionType the function type that will be used as the
4291 /// "argument" type (A) when performing template argument deduction from the
4292 /// function template's function type. This type may be NULL, if there is no
4293 /// argument type to compare against, in C++0x [temp.arg.explicit]p3.
4294 ///
4295 /// \param Specialization if template argument deduction was successful,
4296 /// this will be set to the function template specialization produced by
4297 /// template argument deduction.
4298 ///
4299 /// \param Info the argument will be updated to provide additional information
4300 /// about template argument deduction.
4301 ///
4302 /// \param IsAddressOfFunction If \c true, we are deducing as part of taking
4303 /// the address of a function template per [temp.deduct.funcaddr] and
4304 /// [over.over]. If \c false, we are looking up a function template
4305 /// specialization based on its signature, per [temp.deduct.decl].
4306 ///
4307 /// \returns the result of template argument deduction.
4308 Sema::TemplateDeductionResult Sema::DeduceTemplateArguments(
4309     FunctionTemplateDecl *FunctionTemplate,
4310     TemplateArgumentListInfo *ExplicitTemplateArgs, QualType ArgFunctionType,
4311     FunctionDecl *&Specialization, TemplateDeductionInfo &Info,
4312     bool IsAddressOfFunction) {
4313   if (FunctionTemplate->isInvalidDecl())
4314     return TDK_Invalid;
4315 
4316   FunctionDecl *Function = FunctionTemplate->getTemplatedDecl();
4317   TemplateParameterList *TemplateParams
4318     = FunctionTemplate->getTemplateParameters();
4319   QualType FunctionType = Function->getType();
4320 
4321   // Substitute any explicit template arguments.
4322   LocalInstantiationScope InstScope(*this);
4323   SmallVector<DeducedTemplateArgument, 4> Deduced;
4324   unsigned NumExplicitlySpecified = 0;
4325   SmallVector<QualType, 4> ParamTypes;
4326   if (ExplicitTemplateArgs) {
4327     TemplateDeductionResult Result;
4328     runWithSufficientStackSpace(Info.getLocation(), [&] {
4329       Result = SubstituteExplicitTemplateArguments(
4330           FunctionTemplate, *ExplicitTemplateArgs, Deduced, ParamTypes,
4331           &FunctionType, Info);
4332     });
4333     if (Result)
4334       return Result;
4335 
4336     NumExplicitlySpecified = Deduced.size();
4337   }
4338 
4339   // When taking the address of a function, we require convertibility of
4340   // the resulting function type. Otherwise, we allow arbitrary mismatches
4341   // of calling convention and noreturn.
4342   if (!IsAddressOfFunction)
4343     ArgFunctionType = adjustCCAndNoReturn(ArgFunctionType, FunctionType,
4344                                           /*AdjustExceptionSpec*/false);
4345 
4346   // Unevaluated SFINAE context.
4347   EnterExpressionEvaluationContext Unevaluated(
4348       *this, Sema::ExpressionEvaluationContext::Unevaluated);
4349   SFINAETrap Trap(*this);
4350 
4351   Deduced.resize(TemplateParams->size());
4352 
4353   // If the function has a deduced return type, substitute it for a dependent
4354   // type so that we treat it as a non-deduced context in what follows. If we
4355   // are looking up by signature, the signature type should also have a deduced
4356   // return type, which we instead expect to exactly match.
4357   bool HasDeducedReturnType = false;
4358   if (getLangOpts().CPlusPlus14 && IsAddressOfFunction &&
4359       Function->getReturnType()->getContainedAutoType()) {
4360     FunctionType = SubstAutoType(FunctionType, Context.DependentTy);
4361     HasDeducedReturnType = true;
4362   }
4363 
4364   if (!ArgFunctionType.isNull() && !FunctionType.isNull()) {
4365     unsigned TDF =
4366         TDF_TopLevelParameterTypeList | TDF_AllowCompatibleFunctionType;
4367     // Deduce template arguments from the function type.
4368     if (TemplateDeductionResult Result
4369           = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams,
4370                                                FunctionType, ArgFunctionType,
4371                                                Info, Deduced, TDF))
4372       return Result;
4373   }
4374 
4375   TemplateDeductionResult Result;
4376   runWithSufficientStackSpace(Info.getLocation(), [&] {
4377     Result = FinishTemplateArgumentDeduction(FunctionTemplate, Deduced,
4378                                              NumExplicitlySpecified,
4379                                              Specialization, Info);
4380   });
4381   if (Result)
4382     return Result;
4383 
4384   // If the function has a deduced return type, deduce it now, so we can check
4385   // that the deduced function type matches the requested type.
4386   if (HasDeducedReturnType &&
4387       Specialization->getReturnType()->isUndeducedType() &&
4388       DeduceReturnType(Specialization, Info.getLocation(), false))
4389     return TDK_MiscellaneousDeductionFailure;
4390 
4391   // If the function has a dependent exception specification, resolve it now,
4392   // so we can check that the exception specification matches.
4393   auto *SpecializationFPT =
4394       Specialization->getType()->castAs<FunctionProtoType>();
4395   if (getLangOpts().CPlusPlus17 &&
4396       isUnresolvedExceptionSpec(SpecializationFPT->getExceptionSpecType()) &&
4397       !ResolveExceptionSpec(Info.getLocation(), SpecializationFPT))
4398     return TDK_MiscellaneousDeductionFailure;
4399 
4400   // Adjust the exception specification of the argument to match the
4401   // substituted and resolved type we just formed. (Calling convention and
4402   // noreturn can't be dependent, so we don't actually need this for them
4403   // right now.)
4404   QualType SpecializationType = Specialization->getType();
4405   if (!IsAddressOfFunction)
4406     ArgFunctionType = adjustCCAndNoReturn(ArgFunctionType, SpecializationType,
4407                                           /*AdjustExceptionSpec*/true);
4408 
4409   // If the requested function type does not match the actual type of the
4410   // specialization with respect to arguments of compatible pointer to function
4411   // types, template argument deduction fails.
4412   if (!ArgFunctionType.isNull()) {
4413     if (IsAddressOfFunction &&
4414         !isSameOrCompatibleFunctionType(
4415             Context.getCanonicalType(SpecializationType),
4416             Context.getCanonicalType(ArgFunctionType)))
4417       return TDK_MiscellaneousDeductionFailure;
4418 
4419     if (!IsAddressOfFunction &&
4420         !Context.hasSameType(SpecializationType, ArgFunctionType))
4421       return TDK_MiscellaneousDeductionFailure;
4422   }
4423 
4424   return TDK_Success;
4425 }
4426 
4427 /// Deduce template arguments for a templated conversion
4428 /// function (C++ [temp.deduct.conv]) and, if successful, produce a
4429 /// conversion function template specialization.
4430 Sema::TemplateDeductionResult
4431 Sema::DeduceTemplateArguments(FunctionTemplateDecl *ConversionTemplate,
4432                               QualType ToType,
4433                               CXXConversionDecl *&Specialization,
4434                               TemplateDeductionInfo &Info) {
4435   if (ConversionTemplate->isInvalidDecl())
4436     return TDK_Invalid;
4437 
4438   CXXConversionDecl *ConversionGeneric
4439     = cast<CXXConversionDecl>(ConversionTemplate->getTemplatedDecl());
4440 
4441   QualType FromType = ConversionGeneric->getConversionType();
4442 
4443   // Canonicalize the types for deduction.
4444   QualType P = Context.getCanonicalType(FromType);
4445   QualType A = Context.getCanonicalType(ToType);
4446 
4447   // C++0x [temp.deduct.conv]p2:
4448   //   If P is a reference type, the type referred to by P is used for
4449   //   type deduction.
4450   if (const ReferenceType *PRef = P->getAs<ReferenceType>())
4451     P = PRef->getPointeeType();
4452 
4453   // C++0x [temp.deduct.conv]p4:
4454   //   [...] If A is a reference type, the type referred to by A is used
4455   //   for type deduction.
4456   if (const ReferenceType *ARef = A->getAs<ReferenceType>()) {
4457     A = ARef->getPointeeType();
4458     // We work around a defect in the standard here: cv-qualifiers are also
4459     // removed from P and A in this case, unless P was a reference type. This
4460     // seems to mostly match what other compilers are doing.
4461     if (!FromType->getAs<ReferenceType>()) {
4462       A = A.getUnqualifiedType();
4463       P = P.getUnqualifiedType();
4464     }
4465 
4466   // C++ [temp.deduct.conv]p3:
4467   //
4468   //   If A is not a reference type:
4469   } else {
4470     assert(!A->isReferenceType() && "Reference types were handled above");
4471 
4472     //   - If P is an array type, the pointer type produced by the
4473     //     array-to-pointer standard conversion (4.2) is used in place
4474     //     of P for type deduction; otherwise,
4475     if (P->isArrayType())
4476       P = Context.getArrayDecayedType(P);
4477     //   - If P is a function type, the pointer type produced by the
4478     //     function-to-pointer standard conversion (4.3) is used in
4479     //     place of P for type deduction; otherwise,
4480     else if (P->isFunctionType())
4481       P = Context.getPointerType(P);
4482     //   - If P is a cv-qualified type, the top level cv-qualifiers of
4483     //     P's type are ignored for type deduction.
4484     else
4485       P = P.getUnqualifiedType();
4486 
4487     // C++0x [temp.deduct.conv]p4:
4488     //   If A is a cv-qualified type, the top level cv-qualifiers of A's
4489     //   type are ignored for type deduction. If A is a reference type, the type
4490     //   referred to by A is used for type deduction.
4491     A = A.getUnqualifiedType();
4492   }
4493 
4494   // Unevaluated SFINAE context.
4495   EnterExpressionEvaluationContext Unevaluated(
4496       *this, Sema::ExpressionEvaluationContext::Unevaluated);
4497   SFINAETrap Trap(*this);
4498 
4499   // C++ [temp.deduct.conv]p1:
4500   //   Template argument deduction is done by comparing the return
4501   //   type of the template conversion function (call it P) with the
4502   //   type that is required as the result of the conversion (call it
4503   //   A) as described in 14.8.2.4.
4504   TemplateParameterList *TemplateParams
4505     = ConversionTemplate->getTemplateParameters();
4506   SmallVector<DeducedTemplateArgument, 4> Deduced;
4507   Deduced.resize(TemplateParams->size());
4508 
4509   // C++0x [temp.deduct.conv]p4:
4510   //   In general, the deduction process attempts to find template
4511   //   argument values that will make the deduced A identical to
4512   //   A. However, there are two cases that allow a difference:
4513   unsigned TDF = 0;
4514   //     - If the original A is a reference type, A can be more
4515   //       cv-qualified than the deduced A (i.e., the type referred to
4516   //       by the reference)
4517   if (ToType->isReferenceType())
4518     TDF |= TDF_ArgWithReferenceType;
4519   //     - The deduced A can be another pointer or pointer to member
4520   //       type that can be converted to A via a qualification
4521   //       conversion.
4522   //
4523   // (C++0x [temp.deduct.conv]p6 clarifies that this only happens when
4524   // both P and A are pointers or member pointers. In this case, we
4525   // just ignore cv-qualifiers completely).
4526   if ((P->isPointerType() && A->isPointerType()) ||
4527       (P->isMemberPointerType() && A->isMemberPointerType()))
4528     TDF |= TDF_IgnoreQualifiers;
4529   if (TemplateDeductionResult Result
4530         = DeduceTemplateArgumentsByTypeMatch(*this, TemplateParams,
4531                                              P, A, Info, Deduced, TDF))
4532     return Result;
4533 
4534   // Create an Instantiation Scope for finalizing the operator.
4535   LocalInstantiationScope InstScope(*this);
4536   // Finish template argument deduction.
4537   FunctionDecl *ConversionSpecialized = nullptr;
4538   TemplateDeductionResult Result;
4539   runWithSufficientStackSpace(Info.getLocation(), [&] {
4540     Result = FinishTemplateArgumentDeduction(ConversionTemplate, Deduced, 0,
4541                                              ConversionSpecialized, Info);
4542   });
4543   Specialization = cast_or_null<CXXConversionDecl>(ConversionSpecialized);
4544   return Result;
4545 }
4546 
4547 /// Deduce template arguments for a function template when there is
4548 /// nothing to deduce against (C++0x [temp.arg.explicit]p3).
4549 ///
4550 /// \param FunctionTemplate the function template for which we are performing
4551 /// template argument deduction.
4552 ///
4553 /// \param ExplicitTemplateArgs the explicitly-specified template
4554 /// arguments.
4555 ///
4556 /// \param Specialization if template argument deduction was successful,
4557 /// this will be set to the function template specialization produced by
4558 /// template argument deduction.
4559 ///
4560 /// \param Info the argument will be updated to provide additional information
4561 /// about template argument deduction.
4562 ///
4563 /// \param IsAddressOfFunction If \c true, we are deducing as part of taking
4564 /// the address of a function template in a context where we do not have a
4565 /// target type, per [over.over]. If \c false, we are looking up a function
4566 /// template specialization based on its signature, which only happens when
4567 /// deducing a function parameter type from an argument that is a template-id
4568 /// naming a function template specialization.
4569 ///
4570 /// \returns the result of template argument deduction.
4571 Sema::TemplateDeductionResult Sema::DeduceTemplateArguments(
4572     FunctionTemplateDecl *FunctionTemplate,
4573     TemplateArgumentListInfo *ExplicitTemplateArgs,
4574     FunctionDecl *&Specialization, TemplateDeductionInfo &Info,
4575     bool IsAddressOfFunction) {
4576   return DeduceTemplateArguments(FunctionTemplate, ExplicitTemplateArgs,
4577                                  QualType(), Specialization, Info,
4578                                  IsAddressOfFunction);
4579 }
4580 
4581 namespace {
4582   struct DependentAuto { bool IsPack; };
4583 
4584   /// Substitute the 'auto' specifier or deduced template specialization type
4585   /// specifier within a type for a given replacement type.
4586   class SubstituteDeducedTypeTransform :
4587       public TreeTransform<SubstituteDeducedTypeTransform> {
4588     QualType Replacement;
4589     bool ReplacementIsPack;
4590     bool UseTypeSugar;
4591 
4592   public:
4593     SubstituteDeducedTypeTransform(Sema &SemaRef, DependentAuto DA)
4594         : TreeTransform<SubstituteDeducedTypeTransform>(SemaRef), Replacement(),
4595           ReplacementIsPack(DA.IsPack), UseTypeSugar(true) {}
4596 
4597     SubstituteDeducedTypeTransform(Sema &SemaRef, QualType Replacement,
4598                                    bool UseTypeSugar = true)
4599         : TreeTransform<SubstituteDeducedTypeTransform>(SemaRef),
4600           Replacement(Replacement), ReplacementIsPack(false),
4601           UseTypeSugar(UseTypeSugar) {}
4602 
4603     QualType TransformDesugared(TypeLocBuilder &TLB, DeducedTypeLoc TL) {
4604       assert(isa<TemplateTypeParmType>(Replacement) &&
4605              "unexpected unsugared replacement kind");
4606       QualType Result = Replacement;
4607       TemplateTypeParmTypeLoc NewTL = TLB.push<TemplateTypeParmTypeLoc>(Result);
4608       NewTL.setNameLoc(TL.getNameLoc());
4609       return Result;
4610     }
4611 
4612     QualType TransformAutoType(TypeLocBuilder &TLB, AutoTypeLoc TL) {
4613       // If we're building the type pattern to deduce against, don't wrap the
4614       // substituted type in an AutoType. Certain template deduction rules
4615       // apply only when a template type parameter appears directly (and not if
4616       // the parameter is found through desugaring). For instance:
4617       //   auto &&lref = lvalue;
4618       // must transform into "rvalue reference to T" not "rvalue reference to
4619       // auto type deduced as T" in order for [temp.deduct.call]p3 to apply.
4620       //
4621       // FIXME: Is this still necessary?
4622       if (!UseTypeSugar)
4623         return TransformDesugared(TLB, TL);
4624 
4625       QualType Result = SemaRef.Context.getAutoType(
4626           Replacement, TL.getTypePtr()->getKeyword(), Replacement.isNull(),
4627           ReplacementIsPack, TL.getTypePtr()->getTypeConstraintConcept(),
4628           TL.getTypePtr()->getTypeConstraintArguments());
4629       auto NewTL = TLB.push<AutoTypeLoc>(Result);
4630       NewTL.copy(TL);
4631       return Result;
4632     }
4633 
4634     QualType TransformDeducedTemplateSpecializationType(
4635         TypeLocBuilder &TLB, DeducedTemplateSpecializationTypeLoc TL) {
4636       if (!UseTypeSugar)
4637         return TransformDesugared(TLB, TL);
4638 
4639       QualType Result = SemaRef.Context.getDeducedTemplateSpecializationType(
4640           TL.getTypePtr()->getTemplateName(),
4641           Replacement, Replacement.isNull());
4642       auto NewTL = TLB.push<DeducedTemplateSpecializationTypeLoc>(Result);
4643       NewTL.setNameLoc(TL.getNameLoc());
4644       return Result;
4645     }
4646 
4647     ExprResult TransformLambdaExpr(LambdaExpr *E) {
4648       // Lambdas never need to be transformed.
4649       return E;
4650     }
4651 
4652     QualType Apply(TypeLoc TL) {
4653       // Create some scratch storage for the transformed type locations.
4654       // FIXME: We're just going to throw this information away. Don't build it.
4655       TypeLocBuilder TLB;
4656       TLB.reserve(TL.getFullDataSize());
4657       return TransformType(TLB, TL);
4658     }
4659   };
4660 
4661 } // namespace
4662 
4663 Sema::DeduceAutoResult
4664 Sema::DeduceAutoType(TypeSourceInfo *Type, Expr *&Init, QualType &Result,
4665                      Optional<unsigned> DependentDeductionDepth,
4666                      bool IgnoreConstraints) {
4667   return DeduceAutoType(Type->getTypeLoc(), Init, Result,
4668                         DependentDeductionDepth, IgnoreConstraints);
4669 }
4670 
4671 /// Attempt to produce an informative diagostic explaining why auto deduction
4672 /// failed.
4673 /// \return \c true if diagnosed, \c false if not.
4674 static bool diagnoseAutoDeductionFailure(Sema &S,
4675                                          Sema::TemplateDeductionResult TDK,
4676                                          TemplateDeductionInfo &Info,
4677                                          ArrayRef<SourceRange> Ranges) {
4678   switch (TDK) {
4679   case Sema::TDK_Inconsistent: {
4680     // Inconsistent deduction means we were deducing from an initializer list.
4681     auto D = S.Diag(Info.getLocation(), diag::err_auto_inconsistent_deduction);
4682     D << Info.FirstArg << Info.SecondArg;
4683     for (auto R : Ranges)
4684       D << R;
4685     return true;
4686   }
4687 
4688   // FIXME: Are there other cases for which a custom diagnostic is more useful
4689   // than the basic "types don't match" diagnostic?
4690 
4691   default:
4692     return false;
4693   }
4694 }
4695 
4696 static Sema::DeduceAutoResult
4697 CheckDeducedPlaceholderConstraints(Sema &S, const AutoType &Type,
4698                                    AutoTypeLoc TypeLoc, QualType Deduced) {
4699   ConstraintSatisfaction Satisfaction;
4700   ConceptDecl *Concept = Type.getTypeConstraintConcept();
4701   TemplateArgumentListInfo TemplateArgs(TypeLoc.getLAngleLoc(),
4702                                         TypeLoc.getRAngleLoc());
4703   TemplateArgs.addArgument(
4704       TemplateArgumentLoc(TemplateArgument(Deduced),
4705                           S.Context.getTrivialTypeSourceInfo(
4706                               Deduced, TypeLoc.getNameLoc())));
4707   for (unsigned I = 0, C = TypeLoc.getNumArgs(); I != C; ++I)
4708     TemplateArgs.addArgument(TypeLoc.getArgLoc(I));
4709 
4710   llvm::SmallVector<TemplateArgument, 4> Converted;
4711   if (S.CheckTemplateArgumentList(Concept, SourceLocation(), TemplateArgs,
4712                                   /*PartialTemplateArgs=*/false, Converted))
4713     return Sema::DAR_FailedAlreadyDiagnosed;
4714   if (S.CheckConstraintSatisfaction(Concept, {Concept->getConstraintExpr()},
4715                                     Converted, TypeLoc.getLocalSourceRange(),
4716                                     Satisfaction))
4717     return Sema::DAR_FailedAlreadyDiagnosed;
4718   if (!Satisfaction.IsSatisfied) {
4719     std::string Buf;
4720     llvm::raw_string_ostream OS(Buf);
4721     OS << "'" << Concept->getName();
4722     if (TypeLoc.hasExplicitTemplateArgs()) {
4723       printTemplateArgumentList(
4724           OS, Type.getTypeConstraintArguments(), S.getPrintingPolicy(),
4725           Type.getTypeConstraintConcept()->getTemplateParameters());
4726     }
4727     OS << "'";
4728     OS.flush();
4729     S.Diag(TypeLoc.getConceptNameLoc(),
4730            diag::err_placeholder_constraints_not_satisfied)
4731          << Deduced << Buf << TypeLoc.getLocalSourceRange();
4732     S.DiagnoseUnsatisfiedConstraint(Satisfaction);
4733     return Sema::DAR_FailedAlreadyDiagnosed;
4734   }
4735   return Sema::DAR_Succeeded;
4736 }
4737 
4738 /// Deduce the type for an auto type-specifier (C++11 [dcl.spec.auto]p6)
4739 ///
4740 /// Note that this is done even if the initializer is dependent. (This is
4741 /// necessary to support partial ordering of templates using 'auto'.)
4742 /// A dependent type will be produced when deducing from a dependent type.
4743 ///
4744 /// \param Type the type pattern using the auto type-specifier.
4745 /// \param Init the initializer for the variable whose type is to be deduced.
4746 /// \param Result if type deduction was successful, this will be set to the
4747 ///        deduced type.
4748 /// \param DependentDeductionDepth Set if we should permit deduction in
4749 ///        dependent cases. This is necessary for template partial ordering with
4750 ///        'auto' template parameters. The value specified is the template
4751 ///        parameter depth at which we should perform 'auto' deduction.
4752 /// \param IgnoreConstraints Set if we should not fail if the deduced type does
4753 ///                          not satisfy the type-constraint in the auto type.
4754 Sema::DeduceAutoResult
4755 Sema::DeduceAutoType(TypeLoc Type, Expr *&Init, QualType &Result,
4756                      Optional<unsigned> DependentDeductionDepth,
4757                      bool IgnoreConstraints) {
4758   if (Init->containsErrors())
4759     return DAR_FailedAlreadyDiagnosed;
4760   if (Init->getType()->isNonOverloadPlaceholderType()) {
4761     ExprResult NonPlaceholder = CheckPlaceholderExpr(Init);
4762     if (NonPlaceholder.isInvalid())
4763       return DAR_FailedAlreadyDiagnosed;
4764     Init = NonPlaceholder.get();
4765   }
4766 
4767   DependentAuto DependentResult = {
4768       /*.IsPack = */ (bool)Type.getAs<PackExpansionTypeLoc>()};
4769 
4770   if (!DependentDeductionDepth &&
4771       (Type.getType()->isDependentType() || Init->isTypeDependent() ||
4772        Init->containsUnexpandedParameterPack())) {
4773     Result = SubstituteDeducedTypeTransform(*this, DependentResult).Apply(Type);
4774     assert(!Result.isNull() && "substituting DependentTy can't fail");
4775     return DAR_Succeeded;
4776   }
4777 
4778   // Find the depth of template parameter to synthesize.
4779   unsigned Depth = DependentDeductionDepth.getValueOr(0);
4780 
4781   // If this is a 'decltype(auto)' specifier, do the decltype dance.
4782   // Since 'decltype(auto)' can only occur at the top of the type, we
4783   // don't need to go digging for it.
4784   if (const AutoType *AT = Type.getType()->getAs<AutoType>()) {
4785     if (AT->isDecltypeAuto()) {
4786       if (isa<InitListExpr>(Init)) {
4787         Diag(Init->getBeginLoc(), diag::err_decltype_auto_initializer_list);
4788         return DAR_FailedAlreadyDiagnosed;
4789       }
4790 
4791       ExprResult ER = CheckPlaceholderExpr(Init);
4792       if (ER.isInvalid())
4793         return DAR_FailedAlreadyDiagnosed;
4794       Init = ER.get();
4795       QualType Deduced = BuildDecltypeType(Init, Init->getBeginLoc(), false);
4796       if (Deduced.isNull())
4797         return DAR_FailedAlreadyDiagnosed;
4798       // FIXME: Support a non-canonical deduced type for 'auto'.
4799       Deduced = Context.getCanonicalType(Deduced);
4800       if (AT->isConstrained() && !IgnoreConstraints) {
4801         auto ConstraintsResult =
4802             CheckDeducedPlaceholderConstraints(*this, *AT,
4803                                                Type.getContainedAutoTypeLoc(),
4804                                                Deduced);
4805         if (ConstraintsResult != DAR_Succeeded)
4806           return ConstraintsResult;
4807       }
4808       Result = SubstituteDeducedTypeTransform(*this, Deduced).Apply(Type);
4809       if (Result.isNull())
4810         return DAR_FailedAlreadyDiagnosed;
4811       return DAR_Succeeded;
4812     } else if (!getLangOpts().CPlusPlus) {
4813       if (isa<InitListExpr>(Init)) {
4814         Diag(Init->getBeginLoc(), diag::err_auto_init_list_from_c);
4815         return DAR_FailedAlreadyDiagnosed;
4816       }
4817     }
4818   }
4819 
4820   SourceLocation Loc = Init->getExprLoc();
4821 
4822   LocalInstantiationScope InstScope(*this);
4823 
4824   // Build template<class TemplParam> void Func(FuncParam);
4825   TemplateTypeParmDecl *TemplParam = TemplateTypeParmDecl::Create(
4826       Context, nullptr, SourceLocation(), Loc, Depth, 0, nullptr, false, false,
4827       false);
4828   QualType TemplArg = QualType(TemplParam->getTypeForDecl(), 0);
4829   NamedDecl *TemplParamPtr = TemplParam;
4830   FixedSizeTemplateParameterListStorage<1, false> TemplateParamsSt(
4831       Context, Loc, Loc, TemplParamPtr, Loc, nullptr);
4832 
4833   QualType FuncParam =
4834       SubstituteDeducedTypeTransform(*this, TemplArg, /*UseTypeSugar*/false)
4835           .Apply(Type);
4836   assert(!FuncParam.isNull() &&
4837          "substituting template parameter for 'auto' failed");
4838 
4839   // Deduce type of TemplParam in Func(Init)
4840   SmallVector<DeducedTemplateArgument, 1> Deduced;
4841   Deduced.resize(1);
4842 
4843   TemplateDeductionInfo Info(Loc, Depth);
4844 
4845   // If deduction failed, don't diagnose if the initializer is dependent; it
4846   // might acquire a matching type in the instantiation.
4847   auto DeductionFailed = [&](TemplateDeductionResult TDK,
4848                              ArrayRef<SourceRange> Ranges) -> DeduceAutoResult {
4849     if (Init->isTypeDependent()) {
4850       Result =
4851           SubstituteDeducedTypeTransform(*this, DependentResult).Apply(Type);
4852       assert(!Result.isNull() && "substituting DependentTy can't fail");
4853       return DAR_Succeeded;
4854     }
4855     if (diagnoseAutoDeductionFailure(*this, TDK, Info, Ranges))
4856       return DAR_FailedAlreadyDiagnosed;
4857     return DAR_Failed;
4858   };
4859 
4860   SmallVector<OriginalCallArg, 4> OriginalCallArgs;
4861 
4862   InitListExpr *InitList = dyn_cast<InitListExpr>(Init);
4863   if (InitList) {
4864     // Notionally, we substitute std::initializer_list<T> for 'auto' and deduce
4865     // against that. Such deduction only succeeds if removing cv-qualifiers and
4866     // references results in std::initializer_list<T>.
4867     if (!Type.getType().getNonReferenceType()->getAs<AutoType>())
4868       return DAR_Failed;
4869 
4870     // Resolving a core issue: a braced-init-list containing any designators is
4871     // a non-deduced context.
4872     for (Expr *E : InitList->inits())
4873       if (isa<DesignatedInitExpr>(E))
4874         return DAR_Failed;
4875 
4876     SourceRange DeducedFromInitRange;
4877     for (unsigned i = 0, e = InitList->getNumInits(); i < e; ++i) {
4878       Expr *Init = InitList->getInit(i);
4879 
4880       if (auto TDK = DeduceTemplateArgumentsFromCallArgument(
4881               *this, TemplateParamsSt.get(), 0, TemplArg, Init,
4882               Info, Deduced, OriginalCallArgs, /*Decomposed*/ true,
4883               /*ArgIdx*/ 0, /*TDF*/ 0))
4884         return DeductionFailed(TDK, {DeducedFromInitRange,
4885                                      Init->getSourceRange()});
4886 
4887       if (DeducedFromInitRange.isInvalid() &&
4888           Deduced[0].getKind() != TemplateArgument::Null)
4889         DeducedFromInitRange = Init->getSourceRange();
4890     }
4891   } else {
4892     if (!getLangOpts().CPlusPlus && Init->refersToBitField()) {
4893       Diag(Loc, diag::err_auto_bitfield);
4894       return DAR_FailedAlreadyDiagnosed;
4895     }
4896 
4897     if (auto TDK = DeduceTemplateArgumentsFromCallArgument(
4898             *this, TemplateParamsSt.get(), 0, FuncParam, Init, Info, Deduced,
4899             OriginalCallArgs, /*Decomposed*/ false, /*ArgIdx*/ 0, /*TDF*/ 0))
4900       return DeductionFailed(TDK, {});
4901   }
4902 
4903   // Could be null if somehow 'auto' appears in a non-deduced context.
4904   if (Deduced[0].getKind() != TemplateArgument::Type)
4905     return DeductionFailed(TDK_Incomplete, {});
4906 
4907   QualType DeducedType = Deduced[0].getAsType();
4908 
4909   if (InitList) {
4910     DeducedType = BuildStdInitializerList(DeducedType, Loc);
4911     if (DeducedType.isNull())
4912       return DAR_FailedAlreadyDiagnosed;
4913   }
4914 
4915   if (const auto *AT = Type.getType()->getAs<AutoType>()) {
4916     if (AT->isConstrained() && !IgnoreConstraints) {
4917       auto ConstraintsResult =
4918           CheckDeducedPlaceholderConstraints(*this, *AT,
4919                                              Type.getContainedAutoTypeLoc(),
4920                                              DeducedType);
4921       if (ConstraintsResult != DAR_Succeeded)
4922         return ConstraintsResult;
4923     }
4924   }
4925 
4926   Result = SubstituteDeducedTypeTransform(*this, DeducedType).Apply(Type);
4927   if (Result.isNull())
4928     return DAR_FailedAlreadyDiagnosed;
4929 
4930   // Check that the deduced argument type is compatible with the original
4931   // argument type per C++ [temp.deduct.call]p4.
4932   QualType DeducedA = InitList ? Deduced[0].getAsType() : Result;
4933   for (const OriginalCallArg &OriginalArg : OriginalCallArgs) {
4934     assert((bool)InitList == OriginalArg.DecomposedParam &&
4935            "decomposed non-init-list in auto deduction?");
4936     if (auto TDK =
4937             CheckOriginalCallArgDeduction(*this, Info, OriginalArg, DeducedA)) {
4938       Result = QualType();
4939       return DeductionFailed(TDK, {});
4940     }
4941   }
4942 
4943   return DAR_Succeeded;
4944 }
4945 
4946 QualType Sema::SubstAutoType(QualType TypeWithAuto,
4947                              QualType TypeToReplaceAuto) {
4948   if (TypeToReplaceAuto->isDependentType())
4949     return SubstituteDeducedTypeTransform(
4950                *this, DependentAuto{
4951                           TypeToReplaceAuto->containsUnexpandedParameterPack()})
4952         .TransformType(TypeWithAuto);
4953   return SubstituteDeducedTypeTransform(*this, TypeToReplaceAuto)
4954       .TransformType(TypeWithAuto);
4955 }
4956 
4957 TypeSourceInfo *Sema::SubstAutoTypeSourceInfo(TypeSourceInfo *TypeWithAuto,
4958                                               QualType TypeToReplaceAuto) {
4959   if (TypeToReplaceAuto->isDependentType())
4960     return SubstituteDeducedTypeTransform(
4961                *this,
4962                DependentAuto{
4963                    TypeToReplaceAuto->containsUnexpandedParameterPack()})
4964         .TransformType(TypeWithAuto);
4965   return SubstituteDeducedTypeTransform(*this, TypeToReplaceAuto)
4966       .TransformType(TypeWithAuto);
4967 }
4968 
4969 QualType Sema::ReplaceAutoType(QualType TypeWithAuto,
4970                                QualType TypeToReplaceAuto) {
4971   return SubstituteDeducedTypeTransform(*this, TypeToReplaceAuto,
4972                                         /*UseTypeSugar*/ false)
4973       .TransformType(TypeWithAuto);
4974 }
4975 
4976 TypeSourceInfo *Sema::ReplaceAutoTypeSourceInfo(TypeSourceInfo *TypeWithAuto,
4977                                                 QualType TypeToReplaceAuto) {
4978   return SubstituteDeducedTypeTransform(*this, TypeToReplaceAuto,
4979                                         /*UseTypeSugar*/ false)
4980       .TransformType(TypeWithAuto);
4981 }
4982 
4983 void Sema::DiagnoseAutoDeductionFailure(VarDecl *VDecl, Expr *Init) {
4984   if (isa<InitListExpr>(Init))
4985     Diag(VDecl->getLocation(),
4986          VDecl->isInitCapture()
4987              ? diag::err_init_capture_deduction_failure_from_init_list
4988              : diag::err_auto_var_deduction_failure_from_init_list)
4989       << VDecl->getDeclName() << VDecl->getType() << Init->getSourceRange();
4990   else
4991     Diag(VDecl->getLocation(),
4992          VDecl->isInitCapture() ? diag::err_init_capture_deduction_failure
4993                                 : diag::err_auto_var_deduction_failure)
4994       << VDecl->getDeclName() << VDecl->getType() << Init->getType()
4995       << Init->getSourceRange();
4996 }
4997 
4998 bool Sema::DeduceReturnType(FunctionDecl *FD, SourceLocation Loc,
4999                             bool Diagnose) {
5000   assert(FD->getReturnType()->isUndeducedType());
5001 
5002   // For a lambda's conversion operator, deduce any 'auto' or 'decltype(auto)'
5003   // within the return type from the call operator's type.
5004   if (isLambdaConversionOperator(FD)) {
5005     CXXRecordDecl *Lambda = cast<CXXMethodDecl>(FD)->getParent();
5006     FunctionDecl *CallOp = Lambda->getLambdaCallOperator();
5007 
5008     // For a generic lambda, instantiate the call operator if needed.
5009     if (auto *Args = FD->getTemplateSpecializationArgs()) {
5010       CallOp = InstantiateFunctionDeclaration(
5011           CallOp->getDescribedFunctionTemplate(), Args, Loc);
5012       if (!CallOp || CallOp->isInvalidDecl())
5013         return true;
5014 
5015       // We might need to deduce the return type by instantiating the definition
5016       // of the operator() function.
5017       if (CallOp->getReturnType()->isUndeducedType()) {
5018         runWithSufficientStackSpace(Loc, [&] {
5019           InstantiateFunctionDefinition(Loc, CallOp);
5020         });
5021       }
5022     }
5023 
5024     if (CallOp->isInvalidDecl())
5025       return true;
5026     assert(!CallOp->getReturnType()->isUndeducedType() &&
5027            "failed to deduce lambda return type");
5028 
5029     // Build the new return type from scratch.
5030     CallingConv RetTyCC = FD->getReturnType()
5031                               ->getPointeeType()
5032                               ->castAs<FunctionType>()
5033                               ->getCallConv();
5034     QualType RetType = getLambdaConversionFunctionResultType(
5035         CallOp->getType()->castAs<FunctionProtoType>(), RetTyCC);
5036     if (FD->getReturnType()->getAs<PointerType>())
5037       RetType = Context.getPointerType(RetType);
5038     else {
5039       assert(FD->getReturnType()->getAs<BlockPointerType>());
5040       RetType = Context.getBlockPointerType(RetType);
5041     }
5042     Context.adjustDeducedFunctionResultType(FD, RetType);
5043     return false;
5044   }
5045 
5046   if (FD->getTemplateInstantiationPattern()) {
5047     runWithSufficientStackSpace(Loc, [&] {
5048       InstantiateFunctionDefinition(Loc, FD);
5049     });
5050   }
5051 
5052   bool StillUndeduced = FD->getReturnType()->isUndeducedType();
5053   if (StillUndeduced && Diagnose && !FD->isInvalidDecl()) {
5054     Diag(Loc, diag::err_auto_fn_used_before_defined) << FD;
5055     Diag(FD->getLocation(), diag::note_callee_decl) << FD;
5056   }
5057 
5058   return StillUndeduced;
5059 }
5060 
5061 /// If this is a non-static member function,
5062 static void
5063 AddImplicitObjectParameterType(ASTContext &Context,
5064                                CXXMethodDecl *Method,
5065                                SmallVectorImpl<QualType> &ArgTypes) {
5066   // C++11 [temp.func.order]p3:
5067   //   [...] The new parameter is of type "reference to cv A," where cv are
5068   //   the cv-qualifiers of the function template (if any) and A is
5069   //   the class of which the function template is a member.
5070   //
5071   // The standard doesn't say explicitly, but we pick the appropriate kind of
5072   // reference type based on [over.match.funcs]p4.
5073   QualType ArgTy = Context.getTypeDeclType(Method->getParent());
5074   ArgTy = Context.getQualifiedType(ArgTy, Method->getMethodQualifiers());
5075   if (Method->getRefQualifier() == RQ_RValue)
5076     ArgTy = Context.getRValueReferenceType(ArgTy);
5077   else
5078     ArgTy = Context.getLValueReferenceType(ArgTy);
5079   ArgTypes.push_back(ArgTy);
5080 }
5081 
5082 /// Determine whether the function template \p FT1 is at least as
5083 /// specialized as \p FT2.
5084 static bool isAtLeastAsSpecializedAs(Sema &S,
5085                                      SourceLocation Loc,
5086                                      FunctionTemplateDecl *FT1,
5087                                      FunctionTemplateDecl *FT2,
5088                                      TemplatePartialOrderingContext TPOC,
5089                                      unsigned NumCallArguments1,
5090                                      bool Reversed) {
5091   assert(!Reversed || TPOC == TPOC_Call);
5092 
5093   FunctionDecl *FD1 = FT1->getTemplatedDecl();
5094   FunctionDecl *FD2 = FT2->getTemplatedDecl();
5095   const FunctionProtoType *Proto1 = FD1->getType()->getAs<FunctionProtoType>();
5096   const FunctionProtoType *Proto2 = FD2->getType()->getAs<FunctionProtoType>();
5097 
5098   assert(Proto1 && Proto2 && "Function templates must have prototypes");
5099   TemplateParameterList *TemplateParams = FT2->getTemplateParameters();
5100   SmallVector<DeducedTemplateArgument, 4> Deduced;
5101   Deduced.resize(TemplateParams->size());
5102 
5103   // C++0x [temp.deduct.partial]p3:
5104   //   The types used to determine the ordering depend on the context in which
5105   //   the partial ordering is done:
5106   TemplateDeductionInfo Info(Loc);
5107   SmallVector<QualType, 4> Args2;
5108   switch (TPOC) {
5109   case TPOC_Call: {
5110     //   - In the context of a function call, the function parameter types are
5111     //     used.
5112     CXXMethodDecl *Method1 = dyn_cast<CXXMethodDecl>(FD1);
5113     CXXMethodDecl *Method2 = dyn_cast<CXXMethodDecl>(FD2);
5114 
5115     // C++11 [temp.func.order]p3:
5116     //   [...] If only one of the function templates is a non-static
5117     //   member, that function template is considered to have a new
5118     //   first parameter inserted in its function parameter list. The
5119     //   new parameter is of type "reference to cv A," where cv are
5120     //   the cv-qualifiers of the function template (if any) and A is
5121     //   the class of which the function template is a member.
5122     //
5123     // Note that we interpret this to mean "if one of the function
5124     // templates is a non-static member and the other is a non-member";
5125     // otherwise, the ordering rules for static functions against non-static
5126     // functions don't make any sense.
5127     //
5128     // C++98/03 doesn't have this provision but we've extended DR532 to cover
5129     // it as wording was broken prior to it.
5130     SmallVector<QualType, 4> Args1;
5131 
5132     unsigned NumComparedArguments = NumCallArguments1;
5133 
5134     if (!Method2 && Method1 && !Method1->isStatic()) {
5135       // Compare 'this' from Method1 against first parameter from Method2.
5136       AddImplicitObjectParameterType(S.Context, Method1, Args1);
5137       ++NumComparedArguments;
5138     } else if (!Method1 && Method2 && !Method2->isStatic()) {
5139       // Compare 'this' from Method2 against first parameter from Method1.
5140       AddImplicitObjectParameterType(S.Context, Method2, Args2);
5141     } else if (Method1 && Method2 && Reversed) {
5142       // Compare 'this' from Method1 against second parameter from Method2
5143       // and 'this' from Method2 against second parameter from Method1.
5144       AddImplicitObjectParameterType(S.Context, Method1, Args1);
5145       AddImplicitObjectParameterType(S.Context, Method2, Args2);
5146       ++NumComparedArguments;
5147     }
5148 
5149     Args1.insert(Args1.end(), Proto1->param_type_begin(),
5150                  Proto1->param_type_end());
5151     Args2.insert(Args2.end(), Proto2->param_type_begin(),
5152                  Proto2->param_type_end());
5153 
5154     // C++ [temp.func.order]p5:
5155     //   The presence of unused ellipsis and default arguments has no effect on
5156     //   the partial ordering of function templates.
5157     if (Args1.size() > NumComparedArguments)
5158       Args1.resize(NumComparedArguments);
5159     if (Args2.size() > NumComparedArguments)
5160       Args2.resize(NumComparedArguments);
5161     if (Reversed)
5162       std::reverse(Args2.begin(), Args2.end());
5163     if (DeduceTemplateArguments(S, TemplateParams, Args2.data(), Args2.size(),
5164                                 Args1.data(), Args1.size(), Info, Deduced,
5165                                 TDF_None, /*PartialOrdering=*/true))
5166       return false;
5167 
5168     break;
5169   }
5170 
5171   case TPOC_Conversion:
5172     //   - In the context of a call to a conversion operator, the return types
5173     //     of the conversion function templates are used.
5174     if (DeduceTemplateArgumentsByTypeMatch(
5175             S, TemplateParams, Proto2->getReturnType(), Proto1->getReturnType(),
5176             Info, Deduced, TDF_None,
5177             /*PartialOrdering=*/true))
5178       return false;
5179     break;
5180 
5181   case TPOC_Other:
5182     //   - In other contexts (14.6.6.2) the function template's function type
5183     //     is used.
5184     if (DeduceTemplateArgumentsByTypeMatch(S, TemplateParams,
5185                                            FD2->getType(), FD1->getType(),
5186                                            Info, Deduced, TDF_None,
5187                                            /*PartialOrdering=*/true))
5188       return false;
5189     break;
5190   }
5191 
5192   // C++0x [temp.deduct.partial]p11:
5193   //   In most cases, all template parameters must have values in order for
5194   //   deduction to succeed, but for partial ordering purposes a template
5195   //   parameter may remain without a value provided it is not used in the
5196   //   types being used for partial ordering. [ Note: a template parameter used
5197   //   in a non-deduced context is considered used. -end note]
5198   unsigned ArgIdx = 0, NumArgs = Deduced.size();
5199   for (; ArgIdx != NumArgs; ++ArgIdx)
5200     if (Deduced[ArgIdx].isNull())
5201       break;
5202 
5203   // FIXME: We fail to implement [temp.deduct.type]p1 along this path. We need
5204   // to substitute the deduced arguments back into the template and check that
5205   // we get the right type.
5206 
5207   if (ArgIdx == NumArgs) {
5208     // All template arguments were deduced. FT1 is at least as specialized
5209     // as FT2.
5210     return true;
5211   }
5212 
5213   // Figure out which template parameters were used.
5214   llvm::SmallBitVector UsedParameters(TemplateParams->size());
5215   switch (TPOC) {
5216   case TPOC_Call:
5217     for (unsigned I = 0, N = Args2.size(); I != N; ++I)
5218       ::MarkUsedTemplateParameters(S.Context, Args2[I], false,
5219                                    TemplateParams->getDepth(),
5220                                    UsedParameters);
5221     break;
5222 
5223   case TPOC_Conversion:
5224     ::MarkUsedTemplateParameters(S.Context, Proto2->getReturnType(), false,
5225                                  TemplateParams->getDepth(), UsedParameters);
5226     break;
5227 
5228   case TPOC_Other:
5229     ::MarkUsedTemplateParameters(S.Context, FD2->getType(), false,
5230                                  TemplateParams->getDepth(),
5231                                  UsedParameters);
5232     break;
5233   }
5234 
5235   for (; ArgIdx != NumArgs; ++ArgIdx)
5236     // If this argument had no value deduced but was used in one of the types
5237     // used for partial ordering, then deduction fails.
5238     if (Deduced[ArgIdx].isNull() && UsedParameters[ArgIdx])
5239       return false;
5240 
5241   return true;
5242 }
5243 
5244 /// Determine whether this a function template whose parameter-type-list
5245 /// ends with a function parameter pack.
5246 static bool isVariadicFunctionTemplate(FunctionTemplateDecl *FunTmpl) {
5247   FunctionDecl *Function = FunTmpl->getTemplatedDecl();
5248   unsigned NumParams = Function->getNumParams();
5249   if (NumParams == 0)
5250     return false;
5251 
5252   ParmVarDecl *Last = Function->getParamDecl(NumParams - 1);
5253   if (!Last->isParameterPack())
5254     return false;
5255 
5256   // Make sure that no previous parameter is a parameter pack.
5257   while (--NumParams > 0) {
5258     if (Function->getParamDecl(NumParams - 1)->isParameterPack())
5259       return false;
5260   }
5261 
5262   return true;
5263 }
5264 
5265 /// Returns the more specialized function template according
5266 /// to the rules of function template partial ordering (C++ [temp.func.order]).
5267 ///
5268 /// \param FT1 the first function template
5269 ///
5270 /// \param FT2 the second function template
5271 ///
5272 /// \param TPOC the context in which we are performing partial ordering of
5273 /// function templates.
5274 ///
5275 /// \param NumCallArguments1 The number of arguments in the call to FT1, used
5276 /// only when \c TPOC is \c TPOC_Call.
5277 ///
5278 /// \param NumCallArguments2 The number of arguments in the call to FT2, used
5279 /// only when \c TPOC is \c TPOC_Call.
5280 ///
5281 /// \param Reversed If \c true, exactly one of FT1 and FT2 is an overload
5282 /// candidate with a reversed parameter order. In this case, the corresponding
5283 /// P/A pairs between FT1 and FT2 are reversed.
5284 ///
5285 /// \returns the more specialized function template. If neither
5286 /// template is more specialized, returns NULL.
5287 FunctionTemplateDecl *
5288 Sema::getMoreSpecializedTemplate(FunctionTemplateDecl *FT1,
5289                                  FunctionTemplateDecl *FT2,
5290                                  SourceLocation Loc,
5291                                  TemplatePartialOrderingContext TPOC,
5292                                  unsigned NumCallArguments1,
5293                                  unsigned NumCallArguments2,
5294                                  bool Reversed) {
5295 
5296   auto JudgeByConstraints = [&] () -> FunctionTemplateDecl * {
5297     llvm::SmallVector<const Expr *, 3> AC1, AC2;
5298     FT1->getAssociatedConstraints(AC1);
5299     FT2->getAssociatedConstraints(AC2);
5300     bool AtLeastAsConstrained1, AtLeastAsConstrained2;
5301     if (IsAtLeastAsConstrained(FT1, AC1, FT2, AC2, AtLeastAsConstrained1))
5302       return nullptr;
5303     if (IsAtLeastAsConstrained(FT2, AC2, FT1, AC1, AtLeastAsConstrained2))
5304       return nullptr;
5305     if (AtLeastAsConstrained1 == AtLeastAsConstrained2)
5306       return nullptr;
5307     return AtLeastAsConstrained1 ? FT1 : FT2;
5308   };
5309 
5310   bool Better1 = isAtLeastAsSpecializedAs(*this, Loc, FT1, FT2, TPOC,
5311                                           NumCallArguments1, Reversed);
5312   bool Better2 = isAtLeastAsSpecializedAs(*this, Loc, FT2, FT1, TPOC,
5313                                           NumCallArguments2, Reversed);
5314 
5315   if (Better1 != Better2) // We have a clear winner
5316     return Better1 ? FT1 : FT2;
5317 
5318   if (!Better1 && !Better2) // Neither is better than the other
5319     return JudgeByConstraints();
5320 
5321   // FIXME: This mimics what GCC implements, but doesn't match up with the
5322   // proposed resolution for core issue 692. This area needs to be sorted out,
5323   // but for now we attempt to maintain compatibility.
5324   bool Variadic1 = isVariadicFunctionTemplate(FT1);
5325   bool Variadic2 = isVariadicFunctionTemplate(FT2);
5326   if (Variadic1 != Variadic2)
5327     return Variadic1? FT2 : FT1;
5328 
5329   return JudgeByConstraints();
5330 }
5331 
5332 /// Determine if the two templates are equivalent.
5333 static bool isSameTemplate(TemplateDecl *T1, TemplateDecl *T2) {
5334   if (T1 == T2)
5335     return true;
5336 
5337   if (!T1 || !T2)
5338     return false;
5339 
5340   return T1->getCanonicalDecl() == T2->getCanonicalDecl();
5341 }
5342 
5343 /// Retrieve the most specialized of the given function template
5344 /// specializations.
5345 ///
5346 /// \param SpecBegin the start iterator of the function template
5347 /// specializations that we will be comparing.
5348 ///
5349 /// \param SpecEnd the end iterator of the function template
5350 /// specializations, paired with \p SpecBegin.
5351 ///
5352 /// \param Loc the location where the ambiguity or no-specializations
5353 /// diagnostic should occur.
5354 ///
5355 /// \param NoneDiag partial diagnostic used to diagnose cases where there are
5356 /// no matching candidates.
5357 ///
5358 /// \param AmbigDiag partial diagnostic used to diagnose an ambiguity, if one
5359 /// occurs.
5360 ///
5361 /// \param CandidateDiag partial diagnostic used for each function template
5362 /// specialization that is a candidate in the ambiguous ordering. One parameter
5363 /// in this diagnostic should be unbound, which will correspond to the string
5364 /// describing the template arguments for the function template specialization.
5365 ///
5366 /// \returns the most specialized function template specialization, if
5367 /// found. Otherwise, returns SpecEnd.
5368 UnresolvedSetIterator Sema::getMostSpecialized(
5369     UnresolvedSetIterator SpecBegin, UnresolvedSetIterator SpecEnd,
5370     TemplateSpecCandidateSet &FailedCandidates,
5371     SourceLocation Loc, const PartialDiagnostic &NoneDiag,
5372     const PartialDiagnostic &AmbigDiag, const PartialDiagnostic &CandidateDiag,
5373     bool Complain, QualType TargetType) {
5374   if (SpecBegin == SpecEnd) {
5375     if (Complain) {
5376       Diag(Loc, NoneDiag);
5377       FailedCandidates.NoteCandidates(*this, Loc);
5378     }
5379     return SpecEnd;
5380   }
5381 
5382   if (SpecBegin + 1 == SpecEnd)
5383     return SpecBegin;
5384 
5385   // Find the function template that is better than all of the templates it
5386   // has been compared to.
5387   UnresolvedSetIterator Best = SpecBegin;
5388   FunctionTemplateDecl *BestTemplate
5389     = cast<FunctionDecl>(*Best)->getPrimaryTemplate();
5390   assert(BestTemplate && "Not a function template specialization?");
5391   for (UnresolvedSetIterator I = SpecBegin + 1; I != SpecEnd; ++I) {
5392     FunctionTemplateDecl *Challenger
5393       = cast<FunctionDecl>(*I)->getPrimaryTemplate();
5394     assert(Challenger && "Not a function template specialization?");
5395     if (isSameTemplate(getMoreSpecializedTemplate(BestTemplate, Challenger,
5396                                                   Loc, TPOC_Other, 0, 0),
5397                        Challenger)) {
5398       Best = I;
5399       BestTemplate = Challenger;
5400     }
5401   }
5402 
5403   // Make sure that the "best" function template is more specialized than all
5404   // of the others.
5405   bool Ambiguous = false;
5406   for (UnresolvedSetIterator I = SpecBegin; I != SpecEnd; ++I) {
5407     FunctionTemplateDecl *Challenger
5408       = cast<FunctionDecl>(*I)->getPrimaryTemplate();
5409     if (I != Best &&
5410         !isSameTemplate(getMoreSpecializedTemplate(BestTemplate, Challenger,
5411                                                    Loc, TPOC_Other, 0, 0),
5412                         BestTemplate)) {
5413       Ambiguous = true;
5414       break;
5415     }
5416   }
5417 
5418   if (!Ambiguous) {
5419     // We found an answer. Return it.
5420     return Best;
5421   }
5422 
5423   // Diagnose the ambiguity.
5424   if (Complain) {
5425     Diag(Loc, AmbigDiag);
5426 
5427     // FIXME: Can we order the candidates in some sane way?
5428     for (UnresolvedSetIterator I = SpecBegin; I != SpecEnd; ++I) {
5429       PartialDiagnostic PD = CandidateDiag;
5430       const auto *FD = cast<FunctionDecl>(*I);
5431       PD << FD << getTemplateArgumentBindingsText(
5432                       FD->getPrimaryTemplate()->getTemplateParameters(),
5433                       *FD->getTemplateSpecializationArgs());
5434       if (!TargetType.isNull())
5435         HandleFunctionTypeMismatch(PD, FD->getType(), TargetType);
5436       Diag((*I)->getLocation(), PD);
5437     }
5438   }
5439 
5440   return SpecEnd;
5441 }
5442 
5443 /// Determine whether one partial specialization, P1, is at least as
5444 /// specialized than another, P2.
5445 ///
5446 /// \tparam TemplateLikeDecl The kind of P2, which must be a
5447 /// TemplateDecl or {Class,Var}TemplatePartialSpecializationDecl.
5448 /// \param T1 The injected-class-name of P1 (faked for a variable template).
5449 /// \param T2 The injected-class-name of P2 (faked for a variable template).
5450 template<typename TemplateLikeDecl>
5451 static bool isAtLeastAsSpecializedAs(Sema &S, QualType T1, QualType T2,
5452                                      TemplateLikeDecl *P2,
5453                                      TemplateDeductionInfo &Info) {
5454   // C++ [temp.class.order]p1:
5455   //   For two class template partial specializations, the first is at least as
5456   //   specialized as the second if, given the following rewrite to two
5457   //   function templates, the first function template is at least as
5458   //   specialized as the second according to the ordering rules for function
5459   //   templates (14.6.6.2):
5460   //     - the first function template has the same template parameters as the
5461   //       first partial specialization and has a single function parameter
5462   //       whose type is a class template specialization with the template
5463   //       arguments of the first partial specialization, and
5464   //     - the second function template has the same template parameters as the
5465   //       second partial specialization and has a single function parameter
5466   //       whose type is a class template specialization with the template
5467   //       arguments of the second partial specialization.
5468   //
5469   // Rather than synthesize function templates, we merely perform the
5470   // equivalent partial ordering by performing deduction directly on
5471   // the template arguments of the class template partial
5472   // specializations. This computation is slightly simpler than the
5473   // general problem of function template partial ordering, because
5474   // class template partial specializations are more constrained. We
5475   // know that every template parameter is deducible from the class
5476   // template partial specialization's template arguments, for
5477   // example.
5478   SmallVector<DeducedTemplateArgument, 4> Deduced;
5479 
5480   // Determine whether P1 is at least as specialized as P2.
5481   Deduced.resize(P2->getTemplateParameters()->size());
5482   if (DeduceTemplateArgumentsByTypeMatch(S, P2->getTemplateParameters(),
5483                                          T2, T1, Info, Deduced, TDF_None,
5484                                          /*PartialOrdering=*/true))
5485     return false;
5486 
5487   SmallVector<TemplateArgument, 4> DeducedArgs(Deduced.begin(),
5488                                                Deduced.end());
5489   Sema::InstantiatingTemplate Inst(S, Info.getLocation(), P2, DeducedArgs,
5490                                    Info);
5491   if (Inst.isInvalid())
5492     return false;
5493 
5494   auto *TST1 = T1->castAs<TemplateSpecializationType>();
5495   bool AtLeastAsSpecialized;
5496   S.runWithSufficientStackSpace(Info.getLocation(), [&] {
5497     AtLeastAsSpecialized = !FinishTemplateArgumentDeduction(
5498         S, P2, /*IsPartialOrdering=*/true,
5499         TemplateArgumentList(TemplateArgumentList::OnStack,
5500                              TST1->template_arguments()),
5501         Deduced, Info);
5502   });
5503   return AtLeastAsSpecialized;
5504 }
5505 
5506 /// Returns the more specialized class template partial specialization
5507 /// according to the rules of partial ordering of class template partial
5508 /// specializations (C++ [temp.class.order]).
5509 ///
5510 /// \param PS1 the first class template partial specialization
5511 ///
5512 /// \param PS2 the second class template partial specialization
5513 ///
5514 /// \returns the more specialized class template partial specialization. If
5515 /// neither partial specialization is more specialized, returns NULL.
5516 ClassTemplatePartialSpecializationDecl *
5517 Sema::getMoreSpecializedPartialSpecialization(
5518                                   ClassTemplatePartialSpecializationDecl *PS1,
5519                                   ClassTemplatePartialSpecializationDecl *PS2,
5520                                               SourceLocation Loc) {
5521   QualType PT1 = PS1->getInjectedSpecializationType();
5522   QualType PT2 = PS2->getInjectedSpecializationType();
5523 
5524   TemplateDeductionInfo Info(Loc);
5525   bool Better1 = isAtLeastAsSpecializedAs(*this, PT1, PT2, PS2, Info);
5526   bool Better2 = isAtLeastAsSpecializedAs(*this, PT2, PT1, PS1, Info);
5527 
5528   if (!Better1 && !Better2)
5529       return nullptr;
5530   if (Better1 && Better2) {
5531     llvm::SmallVector<const Expr *, 3> AC1, AC2;
5532     PS1->getAssociatedConstraints(AC1);
5533     PS2->getAssociatedConstraints(AC2);
5534     bool AtLeastAsConstrained1, AtLeastAsConstrained2;
5535     if (IsAtLeastAsConstrained(PS1, AC1, PS2, AC2, AtLeastAsConstrained1))
5536       return nullptr;
5537     if (IsAtLeastAsConstrained(PS2, AC2, PS1, AC1, AtLeastAsConstrained2))
5538       return nullptr;
5539     if (AtLeastAsConstrained1 == AtLeastAsConstrained2)
5540       return nullptr;
5541     return AtLeastAsConstrained1 ? PS1 : PS2;
5542   }
5543 
5544   return Better1 ? PS1 : PS2;
5545 }
5546 
5547 bool Sema::isMoreSpecializedThanPrimary(
5548     ClassTemplatePartialSpecializationDecl *Spec, TemplateDeductionInfo &Info) {
5549   ClassTemplateDecl *Primary = Spec->getSpecializedTemplate();
5550   QualType PrimaryT = Primary->getInjectedClassNameSpecialization();
5551   QualType PartialT = Spec->getInjectedSpecializationType();
5552   if (!isAtLeastAsSpecializedAs(*this, PartialT, PrimaryT, Primary, Info))
5553     return false;
5554   if (!isAtLeastAsSpecializedAs(*this, PrimaryT, PartialT, Spec, Info))
5555     return true;
5556   Info.clearSFINAEDiagnostic();
5557   llvm::SmallVector<const Expr *, 3> PrimaryAC, SpecAC;
5558   Primary->getAssociatedConstraints(PrimaryAC);
5559   Spec->getAssociatedConstraints(SpecAC);
5560   bool AtLeastAsConstrainedPrimary, AtLeastAsConstrainedSpec;
5561   if (IsAtLeastAsConstrained(Spec, SpecAC, Primary, PrimaryAC,
5562                              AtLeastAsConstrainedSpec))
5563     return false;
5564   if (!AtLeastAsConstrainedSpec)
5565     return false;
5566   if (IsAtLeastAsConstrained(Primary, PrimaryAC, Spec, SpecAC,
5567                              AtLeastAsConstrainedPrimary))
5568     return false;
5569   return !AtLeastAsConstrainedPrimary;
5570 }
5571 
5572 VarTemplatePartialSpecializationDecl *
5573 Sema::getMoreSpecializedPartialSpecialization(
5574     VarTemplatePartialSpecializationDecl *PS1,
5575     VarTemplatePartialSpecializationDecl *PS2, SourceLocation Loc) {
5576   // Pretend the variable template specializations are class template
5577   // specializations and form a fake injected class name type for comparison.
5578   assert(PS1->getSpecializedTemplate() == PS2->getSpecializedTemplate() &&
5579          "the partial specializations being compared should specialize"
5580          " the same template.");
5581   TemplateName Name(PS1->getSpecializedTemplate());
5582   TemplateName CanonTemplate = Context.getCanonicalTemplateName(Name);
5583   QualType PT1 = Context.getTemplateSpecializationType(
5584       CanonTemplate, PS1->getTemplateArgs().asArray());
5585   QualType PT2 = Context.getTemplateSpecializationType(
5586       CanonTemplate, PS2->getTemplateArgs().asArray());
5587 
5588   TemplateDeductionInfo Info(Loc);
5589   bool Better1 = isAtLeastAsSpecializedAs(*this, PT1, PT2, PS2, Info);
5590   bool Better2 = isAtLeastAsSpecializedAs(*this, PT2, PT1, PS1, Info);
5591 
5592   if (!Better1 && !Better2)
5593     return nullptr;
5594   if (Better1 && Better2) {
5595     llvm::SmallVector<const Expr *, 3> AC1, AC2;
5596     PS1->getAssociatedConstraints(AC1);
5597     PS2->getAssociatedConstraints(AC2);
5598     bool AtLeastAsConstrained1, AtLeastAsConstrained2;
5599     if (IsAtLeastAsConstrained(PS1, AC1, PS2, AC2, AtLeastAsConstrained1))
5600       return nullptr;
5601     if (IsAtLeastAsConstrained(PS2, AC2, PS1, AC1, AtLeastAsConstrained2))
5602       return nullptr;
5603     if (AtLeastAsConstrained1 == AtLeastAsConstrained2)
5604       return nullptr;
5605     return AtLeastAsConstrained1 ? PS1 : PS2;
5606   }
5607 
5608   return Better1 ? PS1 : PS2;
5609 }
5610 
5611 bool Sema::isMoreSpecializedThanPrimary(
5612     VarTemplatePartialSpecializationDecl *Spec, TemplateDeductionInfo &Info) {
5613   TemplateDecl *Primary = Spec->getSpecializedTemplate();
5614   // FIXME: Cache the injected template arguments rather than recomputing
5615   // them for each partial specialization.
5616   SmallVector<TemplateArgument, 8> PrimaryArgs;
5617   Context.getInjectedTemplateArgs(Primary->getTemplateParameters(),
5618                                   PrimaryArgs);
5619 
5620   TemplateName CanonTemplate =
5621       Context.getCanonicalTemplateName(TemplateName(Primary));
5622   QualType PrimaryT = Context.getTemplateSpecializationType(
5623       CanonTemplate, PrimaryArgs);
5624   QualType PartialT = Context.getTemplateSpecializationType(
5625       CanonTemplate, Spec->getTemplateArgs().asArray());
5626 
5627   if (!isAtLeastAsSpecializedAs(*this, PartialT, PrimaryT, Primary, Info))
5628     return false;
5629   if (!isAtLeastAsSpecializedAs(*this, PrimaryT, PartialT, Spec, Info))
5630     return true;
5631   Info.clearSFINAEDiagnostic();
5632   llvm::SmallVector<const Expr *, 3> PrimaryAC, SpecAC;
5633   Primary->getAssociatedConstraints(PrimaryAC);
5634   Spec->getAssociatedConstraints(SpecAC);
5635   bool AtLeastAsConstrainedPrimary, AtLeastAsConstrainedSpec;
5636   if (IsAtLeastAsConstrained(Spec, SpecAC, Primary, PrimaryAC,
5637                              AtLeastAsConstrainedSpec))
5638     return false;
5639   if (!AtLeastAsConstrainedSpec)
5640     return false;
5641   if (IsAtLeastAsConstrained(Primary, PrimaryAC, Spec, SpecAC,
5642                              AtLeastAsConstrainedPrimary))
5643     return false;
5644   return !AtLeastAsConstrainedPrimary;
5645 }
5646 
5647 bool Sema::isTemplateTemplateParameterAtLeastAsSpecializedAs(
5648      TemplateParameterList *P, TemplateDecl *AArg, SourceLocation Loc) {
5649   // C++1z [temp.arg.template]p4: (DR 150)
5650   //   A template template-parameter P is at least as specialized as a
5651   //   template template-argument A if, given the following rewrite to two
5652   //   function templates...
5653 
5654   // Rather than synthesize function templates, we merely perform the
5655   // equivalent partial ordering by performing deduction directly on
5656   // the template parameter lists of the template template parameters.
5657   //
5658   //   Given an invented class template X with the template parameter list of
5659   //   A (including default arguments):
5660   TemplateName X = Context.getCanonicalTemplateName(TemplateName(AArg));
5661   TemplateParameterList *A = AArg->getTemplateParameters();
5662 
5663   //    - Each function template has a single function parameter whose type is
5664   //      a specialization of X with template arguments corresponding to the
5665   //      template parameters from the respective function template
5666   SmallVector<TemplateArgument, 8> AArgs;
5667   Context.getInjectedTemplateArgs(A, AArgs);
5668 
5669   // Check P's arguments against A's parameter list. This will fill in default
5670   // template arguments as needed. AArgs are already correct by construction.
5671   // We can't just use CheckTemplateIdType because that will expand alias
5672   // templates.
5673   SmallVector<TemplateArgument, 4> PArgs;
5674   {
5675     SFINAETrap Trap(*this);
5676 
5677     Context.getInjectedTemplateArgs(P, PArgs);
5678     TemplateArgumentListInfo PArgList(P->getLAngleLoc(),
5679                                       P->getRAngleLoc());
5680     for (unsigned I = 0, N = P->size(); I != N; ++I) {
5681       // Unwrap packs that getInjectedTemplateArgs wrapped around pack
5682       // expansions, to form an "as written" argument list.
5683       TemplateArgument Arg = PArgs[I];
5684       if (Arg.getKind() == TemplateArgument::Pack) {
5685         assert(Arg.pack_size() == 1 && Arg.pack_begin()->isPackExpansion());
5686         Arg = *Arg.pack_begin();
5687       }
5688       PArgList.addArgument(getTrivialTemplateArgumentLoc(
5689           Arg, QualType(), P->getParam(I)->getLocation()));
5690     }
5691     PArgs.clear();
5692 
5693     // C++1z [temp.arg.template]p3:
5694     //   If the rewrite produces an invalid type, then P is not at least as
5695     //   specialized as A.
5696     if (CheckTemplateArgumentList(AArg, Loc, PArgList, false, PArgs) ||
5697         Trap.hasErrorOccurred())
5698       return false;
5699   }
5700 
5701   QualType AType = Context.getTemplateSpecializationType(X, AArgs);
5702   QualType PType = Context.getTemplateSpecializationType(X, PArgs);
5703 
5704   //   ... the function template corresponding to P is at least as specialized
5705   //   as the function template corresponding to A according to the partial
5706   //   ordering rules for function templates.
5707   TemplateDeductionInfo Info(Loc, A->getDepth());
5708   return isAtLeastAsSpecializedAs(*this, PType, AType, AArg, Info);
5709 }
5710 
5711 namespace {
5712 struct MarkUsedTemplateParameterVisitor :
5713     RecursiveASTVisitor<MarkUsedTemplateParameterVisitor> {
5714   llvm::SmallBitVector &Used;
5715   unsigned Depth;
5716 
5717   MarkUsedTemplateParameterVisitor(llvm::SmallBitVector &Used,
5718                                    unsigned Depth)
5719       : Used(Used), Depth(Depth) { }
5720 
5721   bool VisitTemplateTypeParmType(TemplateTypeParmType *T) {
5722     if (T->getDepth() == Depth)
5723       Used[T->getIndex()] = true;
5724     return true;
5725   }
5726 
5727   bool TraverseTemplateName(TemplateName Template) {
5728     if (auto *TTP =
5729             dyn_cast<TemplateTemplateParmDecl>(Template.getAsTemplateDecl()))
5730       if (TTP->getDepth() == Depth)
5731         Used[TTP->getIndex()] = true;
5732     RecursiveASTVisitor<MarkUsedTemplateParameterVisitor>::
5733         TraverseTemplateName(Template);
5734     return true;
5735   }
5736 
5737   bool VisitDeclRefExpr(DeclRefExpr *E) {
5738     if (auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(E->getDecl()))
5739       if (NTTP->getDepth() == Depth)
5740         Used[NTTP->getIndex()] = true;
5741     return true;
5742   }
5743 };
5744 }
5745 
5746 /// Mark the template parameters that are used by the given
5747 /// expression.
5748 static void
5749 MarkUsedTemplateParameters(ASTContext &Ctx,
5750                            const Expr *E,
5751                            bool OnlyDeduced,
5752                            unsigned Depth,
5753                            llvm::SmallBitVector &Used) {
5754   if (!OnlyDeduced) {
5755     MarkUsedTemplateParameterVisitor(Used, Depth)
5756         .TraverseStmt(const_cast<Expr *>(E));
5757     return;
5758   }
5759 
5760   // We can deduce from a pack expansion.
5761   if (const PackExpansionExpr *Expansion = dyn_cast<PackExpansionExpr>(E))
5762     E = Expansion->getPattern();
5763 
5764   const NonTypeTemplateParmDecl *NTTP = getDeducedParameterFromExpr(E, Depth);
5765   if (!NTTP)
5766     return;
5767 
5768   if (NTTP->getDepth() == Depth)
5769     Used[NTTP->getIndex()] = true;
5770 
5771   // In C++17 mode, additional arguments may be deduced from the type of a
5772   // non-type argument.
5773   if (Ctx.getLangOpts().CPlusPlus17)
5774     MarkUsedTemplateParameters(Ctx, NTTP->getType(), OnlyDeduced, Depth, Used);
5775 }
5776 
5777 /// Mark the template parameters that are used by the given
5778 /// nested name specifier.
5779 static void
5780 MarkUsedTemplateParameters(ASTContext &Ctx,
5781                            NestedNameSpecifier *NNS,
5782                            bool OnlyDeduced,
5783                            unsigned Depth,
5784                            llvm::SmallBitVector &Used) {
5785   if (!NNS)
5786     return;
5787 
5788   MarkUsedTemplateParameters(Ctx, NNS->getPrefix(), OnlyDeduced, Depth,
5789                              Used);
5790   MarkUsedTemplateParameters(Ctx, QualType(NNS->getAsType(), 0),
5791                              OnlyDeduced, Depth, Used);
5792 }
5793 
5794 /// Mark the template parameters that are used by the given
5795 /// template name.
5796 static void
5797 MarkUsedTemplateParameters(ASTContext &Ctx,
5798                            TemplateName Name,
5799                            bool OnlyDeduced,
5800                            unsigned Depth,
5801                            llvm::SmallBitVector &Used) {
5802   if (TemplateDecl *Template = Name.getAsTemplateDecl()) {
5803     if (TemplateTemplateParmDecl *TTP
5804           = dyn_cast<TemplateTemplateParmDecl>(Template)) {
5805       if (TTP->getDepth() == Depth)
5806         Used[TTP->getIndex()] = true;
5807     }
5808     return;
5809   }
5810 
5811   if (QualifiedTemplateName *QTN = Name.getAsQualifiedTemplateName())
5812     MarkUsedTemplateParameters(Ctx, QTN->getQualifier(), OnlyDeduced,
5813                                Depth, Used);
5814   if (DependentTemplateName *DTN = Name.getAsDependentTemplateName())
5815     MarkUsedTemplateParameters(Ctx, DTN->getQualifier(), OnlyDeduced,
5816                                Depth, Used);
5817 }
5818 
5819 /// Mark the template parameters that are used by the given
5820 /// type.
5821 static void
5822 MarkUsedTemplateParameters(ASTContext &Ctx, QualType T,
5823                            bool OnlyDeduced,
5824                            unsigned Depth,
5825                            llvm::SmallBitVector &Used) {
5826   if (T.isNull())
5827     return;
5828 
5829   // Non-dependent types have nothing deducible
5830   if (!T->isDependentType())
5831     return;
5832 
5833   T = Ctx.getCanonicalType(T);
5834   switch (T->getTypeClass()) {
5835   case Type::Pointer:
5836     MarkUsedTemplateParameters(Ctx,
5837                                cast<PointerType>(T)->getPointeeType(),
5838                                OnlyDeduced,
5839                                Depth,
5840                                Used);
5841     break;
5842 
5843   case Type::BlockPointer:
5844     MarkUsedTemplateParameters(Ctx,
5845                                cast<BlockPointerType>(T)->getPointeeType(),
5846                                OnlyDeduced,
5847                                Depth,
5848                                Used);
5849     break;
5850 
5851   case Type::LValueReference:
5852   case Type::RValueReference:
5853     MarkUsedTemplateParameters(Ctx,
5854                                cast<ReferenceType>(T)->getPointeeType(),
5855                                OnlyDeduced,
5856                                Depth,
5857                                Used);
5858     break;
5859 
5860   case Type::MemberPointer: {
5861     const MemberPointerType *MemPtr = cast<MemberPointerType>(T.getTypePtr());
5862     MarkUsedTemplateParameters(Ctx, MemPtr->getPointeeType(), OnlyDeduced,
5863                                Depth, Used);
5864     MarkUsedTemplateParameters(Ctx, QualType(MemPtr->getClass(), 0),
5865                                OnlyDeduced, Depth, Used);
5866     break;
5867   }
5868 
5869   case Type::DependentSizedArray:
5870     MarkUsedTemplateParameters(Ctx,
5871                                cast<DependentSizedArrayType>(T)->getSizeExpr(),
5872                                OnlyDeduced, Depth, Used);
5873     // Fall through to check the element type
5874     LLVM_FALLTHROUGH;
5875 
5876   case Type::ConstantArray:
5877   case Type::IncompleteArray:
5878     MarkUsedTemplateParameters(Ctx,
5879                                cast<ArrayType>(T)->getElementType(),
5880                                OnlyDeduced, Depth, Used);
5881     break;
5882 
5883   case Type::Vector:
5884   case Type::ExtVector:
5885     MarkUsedTemplateParameters(Ctx,
5886                                cast<VectorType>(T)->getElementType(),
5887                                OnlyDeduced, Depth, Used);
5888     break;
5889 
5890   case Type::DependentVector: {
5891     const auto *VecType = cast<DependentVectorType>(T);
5892     MarkUsedTemplateParameters(Ctx, VecType->getElementType(), OnlyDeduced,
5893                                Depth, Used);
5894     MarkUsedTemplateParameters(Ctx, VecType->getSizeExpr(), OnlyDeduced, Depth,
5895                                Used);
5896     break;
5897   }
5898   case Type::DependentSizedExtVector: {
5899     const DependentSizedExtVectorType *VecType
5900       = cast<DependentSizedExtVectorType>(T);
5901     MarkUsedTemplateParameters(Ctx, VecType->getElementType(), OnlyDeduced,
5902                                Depth, Used);
5903     MarkUsedTemplateParameters(Ctx, VecType->getSizeExpr(), OnlyDeduced,
5904                                Depth, Used);
5905     break;
5906   }
5907 
5908   case Type::DependentAddressSpace: {
5909     const DependentAddressSpaceType *DependentASType =
5910         cast<DependentAddressSpaceType>(T);
5911     MarkUsedTemplateParameters(Ctx, DependentASType->getPointeeType(),
5912                                OnlyDeduced, Depth, Used);
5913     MarkUsedTemplateParameters(Ctx,
5914                                DependentASType->getAddrSpaceExpr(),
5915                                OnlyDeduced, Depth, Used);
5916     break;
5917   }
5918 
5919   case Type::ConstantMatrix: {
5920     const ConstantMatrixType *MatType = cast<ConstantMatrixType>(T);
5921     MarkUsedTemplateParameters(Ctx, MatType->getElementType(), OnlyDeduced,
5922                                Depth, Used);
5923     break;
5924   }
5925 
5926   case Type::DependentSizedMatrix: {
5927     const DependentSizedMatrixType *MatType = cast<DependentSizedMatrixType>(T);
5928     MarkUsedTemplateParameters(Ctx, MatType->getElementType(), OnlyDeduced,
5929                                Depth, Used);
5930     MarkUsedTemplateParameters(Ctx, MatType->getRowExpr(), OnlyDeduced, Depth,
5931                                Used);
5932     MarkUsedTemplateParameters(Ctx, MatType->getColumnExpr(), OnlyDeduced,
5933                                Depth, Used);
5934     break;
5935   }
5936 
5937   case Type::FunctionProto: {
5938     const FunctionProtoType *Proto = cast<FunctionProtoType>(T);
5939     MarkUsedTemplateParameters(Ctx, Proto->getReturnType(), OnlyDeduced, Depth,
5940                                Used);
5941     for (unsigned I = 0, N = Proto->getNumParams(); I != N; ++I) {
5942       // C++17 [temp.deduct.type]p5:
5943       //   The non-deduced contexts are: [...]
5944       //   -- A function parameter pack that does not occur at the end of the
5945       //      parameter-declaration-list.
5946       if (!OnlyDeduced || I + 1 == N ||
5947           !Proto->getParamType(I)->getAs<PackExpansionType>()) {
5948         MarkUsedTemplateParameters(Ctx, Proto->getParamType(I), OnlyDeduced,
5949                                    Depth, Used);
5950       } else {
5951         // FIXME: C++17 [temp.deduct.call]p1:
5952         //   When a function parameter pack appears in a non-deduced context,
5953         //   the type of that pack is never deduced.
5954         //
5955         // We should also track a set of "never deduced" parameters, and
5956         // subtract that from the list of deduced parameters after marking.
5957       }
5958     }
5959     if (auto *E = Proto->getNoexceptExpr())
5960       MarkUsedTemplateParameters(Ctx, E, OnlyDeduced, Depth, Used);
5961     break;
5962   }
5963 
5964   case Type::TemplateTypeParm: {
5965     const TemplateTypeParmType *TTP = cast<TemplateTypeParmType>(T);
5966     if (TTP->getDepth() == Depth)
5967       Used[TTP->getIndex()] = true;
5968     break;
5969   }
5970 
5971   case Type::SubstTemplateTypeParmPack: {
5972     const SubstTemplateTypeParmPackType *Subst
5973       = cast<SubstTemplateTypeParmPackType>(T);
5974     MarkUsedTemplateParameters(Ctx,
5975                                QualType(Subst->getReplacedParameter(), 0),
5976                                OnlyDeduced, Depth, Used);
5977     MarkUsedTemplateParameters(Ctx, Subst->getArgumentPack(),
5978                                OnlyDeduced, Depth, Used);
5979     break;
5980   }
5981 
5982   case Type::InjectedClassName:
5983     T = cast<InjectedClassNameType>(T)->getInjectedSpecializationType();
5984     LLVM_FALLTHROUGH;
5985 
5986   case Type::TemplateSpecialization: {
5987     const TemplateSpecializationType *Spec
5988       = cast<TemplateSpecializationType>(T);
5989     MarkUsedTemplateParameters(Ctx, Spec->getTemplateName(), OnlyDeduced,
5990                                Depth, Used);
5991 
5992     // C++0x [temp.deduct.type]p9:
5993     //   If the template argument list of P contains a pack expansion that is
5994     //   not the last template argument, the entire template argument list is a
5995     //   non-deduced context.
5996     if (OnlyDeduced &&
5997         hasPackExpansionBeforeEnd(Spec->template_arguments()))
5998       break;
5999 
6000     for (unsigned I = 0, N = Spec->getNumArgs(); I != N; ++I)
6001       MarkUsedTemplateParameters(Ctx, Spec->getArg(I), OnlyDeduced, Depth,
6002                                  Used);
6003     break;
6004   }
6005 
6006   case Type::Complex:
6007     if (!OnlyDeduced)
6008       MarkUsedTemplateParameters(Ctx,
6009                                  cast<ComplexType>(T)->getElementType(),
6010                                  OnlyDeduced, Depth, Used);
6011     break;
6012 
6013   case Type::Atomic:
6014     if (!OnlyDeduced)
6015       MarkUsedTemplateParameters(Ctx,
6016                                  cast<AtomicType>(T)->getValueType(),
6017                                  OnlyDeduced, Depth, Used);
6018     break;
6019 
6020   case Type::DependentName:
6021     if (!OnlyDeduced)
6022       MarkUsedTemplateParameters(Ctx,
6023                                  cast<DependentNameType>(T)->getQualifier(),
6024                                  OnlyDeduced, Depth, Used);
6025     break;
6026 
6027   case Type::DependentTemplateSpecialization: {
6028     // C++14 [temp.deduct.type]p5:
6029     //   The non-deduced contexts are:
6030     //     -- The nested-name-specifier of a type that was specified using a
6031     //        qualified-id
6032     //
6033     // C++14 [temp.deduct.type]p6:
6034     //   When a type name is specified in a way that includes a non-deduced
6035     //   context, all of the types that comprise that type name are also
6036     //   non-deduced.
6037     if (OnlyDeduced)
6038       break;
6039 
6040     const DependentTemplateSpecializationType *Spec
6041       = cast<DependentTemplateSpecializationType>(T);
6042 
6043     MarkUsedTemplateParameters(Ctx, Spec->getQualifier(),
6044                                OnlyDeduced, Depth, Used);
6045 
6046     for (unsigned I = 0, N = Spec->getNumArgs(); I != N; ++I)
6047       MarkUsedTemplateParameters(Ctx, Spec->getArg(I), OnlyDeduced, Depth,
6048                                  Used);
6049     break;
6050   }
6051 
6052   case Type::TypeOf:
6053     if (!OnlyDeduced)
6054       MarkUsedTemplateParameters(Ctx,
6055                                  cast<TypeOfType>(T)->getUnderlyingType(),
6056                                  OnlyDeduced, Depth, Used);
6057     break;
6058 
6059   case Type::TypeOfExpr:
6060     if (!OnlyDeduced)
6061       MarkUsedTemplateParameters(Ctx,
6062                                  cast<TypeOfExprType>(T)->getUnderlyingExpr(),
6063                                  OnlyDeduced, Depth, Used);
6064     break;
6065 
6066   case Type::Decltype:
6067     if (!OnlyDeduced)
6068       MarkUsedTemplateParameters(Ctx,
6069                                  cast<DecltypeType>(T)->getUnderlyingExpr(),
6070                                  OnlyDeduced, Depth, Used);
6071     break;
6072 
6073   case Type::UnaryTransform:
6074     if (!OnlyDeduced)
6075       MarkUsedTemplateParameters(Ctx,
6076                                  cast<UnaryTransformType>(T)->getUnderlyingType(),
6077                                  OnlyDeduced, Depth, Used);
6078     break;
6079 
6080   case Type::PackExpansion:
6081     MarkUsedTemplateParameters(Ctx,
6082                                cast<PackExpansionType>(T)->getPattern(),
6083                                OnlyDeduced, Depth, Used);
6084     break;
6085 
6086   case Type::Auto:
6087   case Type::DeducedTemplateSpecialization:
6088     MarkUsedTemplateParameters(Ctx,
6089                                cast<DeducedType>(T)->getDeducedType(),
6090                                OnlyDeduced, Depth, Used);
6091     break;
6092   case Type::DependentExtInt:
6093     MarkUsedTemplateParameters(Ctx,
6094                                cast<DependentExtIntType>(T)->getNumBitsExpr(),
6095                                OnlyDeduced, Depth, Used);
6096     break;
6097 
6098   // None of these types have any template parameters in them.
6099   case Type::Builtin:
6100   case Type::VariableArray:
6101   case Type::FunctionNoProto:
6102   case Type::Record:
6103   case Type::Enum:
6104   case Type::ObjCInterface:
6105   case Type::ObjCObject:
6106   case Type::ObjCObjectPointer:
6107   case Type::UnresolvedUsing:
6108   case Type::Pipe:
6109   case Type::ExtInt:
6110 #define TYPE(Class, Base)
6111 #define ABSTRACT_TYPE(Class, Base)
6112 #define DEPENDENT_TYPE(Class, Base)
6113 #define NON_CANONICAL_TYPE(Class, Base) case Type::Class:
6114 #include "clang/AST/TypeNodes.inc"
6115     break;
6116   }
6117 }
6118 
6119 /// Mark the template parameters that are used by this
6120 /// template argument.
6121 static void
6122 MarkUsedTemplateParameters(ASTContext &Ctx,
6123                            const TemplateArgument &TemplateArg,
6124                            bool OnlyDeduced,
6125                            unsigned Depth,
6126                            llvm::SmallBitVector &Used) {
6127   switch (TemplateArg.getKind()) {
6128   case TemplateArgument::Null:
6129   case TemplateArgument::Integral:
6130   case TemplateArgument::Declaration:
6131     break;
6132 
6133   case TemplateArgument::NullPtr:
6134     MarkUsedTemplateParameters(Ctx, TemplateArg.getNullPtrType(), OnlyDeduced,
6135                                Depth, Used);
6136     break;
6137 
6138   case TemplateArgument::Type:
6139     MarkUsedTemplateParameters(Ctx, TemplateArg.getAsType(), OnlyDeduced,
6140                                Depth, Used);
6141     break;
6142 
6143   case TemplateArgument::Template:
6144   case TemplateArgument::TemplateExpansion:
6145     MarkUsedTemplateParameters(Ctx,
6146                                TemplateArg.getAsTemplateOrTemplatePattern(),
6147                                OnlyDeduced, Depth, Used);
6148     break;
6149 
6150   case TemplateArgument::Expression:
6151     MarkUsedTemplateParameters(Ctx, TemplateArg.getAsExpr(), OnlyDeduced,
6152                                Depth, Used);
6153     break;
6154 
6155   case TemplateArgument::Pack:
6156     for (const auto &P : TemplateArg.pack_elements())
6157       MarkUsedTemplateParameters(Ctx, P, OnlyDeduced, Depth, Used);
6158     break;
6159   }
6160 }
6161 
6162 /// Mark which template parameters are used in a given expression.
6163 ///
6164 /// \param E the expression from which template parameters will be deduced.
6165 ///
6166 /// \param Used a bit vector whose elements will be set to \c true
6167 /// to indicate when the corresponding template parameter will be
6168 /// deduced.
6169 void
6170 Sema::MarkUsedTemplateParameters(const Expr *E, bool OnlyDeduced,
6171                                  unsigned Depth,
6172                                  llvm::SmallBitVector &Used) {
6173   ::MarkUsedTemplateParameters(Context, E, OnlyDeduced, Depth, Used);
6174 }
6175 
6176 /// Mark which template parameters can be deduced from a given
6177 /// template argument list.
6178 ///
6179 /// \param TemplateArgs the template argument list from which template
6180 /// parameters will be deduced.
6181 ///
6182 /// \param Used a bit vector whose elements will be set to \c true
6183 /// to indicate when the corresponding template parameter will be
6184 /// deduced.
6185 void
6186 Sema::MarkUsedTemplateParameters(const TemplateArgumentList &TemplateArgs,
6187                                  bool OnlyDeduced, unsigned Depth,
6188                                  llvm::SmallBitVector &Used) {
6189   // C++0x [temp.deduct.type]p9:
6190   //   If the template argument list of P contains a pack expansion that is not
6191   //   the last template argument, the entire template argument list is a
6192   //   non-deduced context.
6193   if (OnlyDeduced &&
6194       hasPackExpansionBeforeEnd(TemplateArgs.asArray()))
6195     return;
6196 
6197   for (unsigned I = 0, N = TemplateArgs.size(); I != N; ++I)
6198     ::MarkUsedTemplateParameters(Context, TemplateArgs[I], OnlyDeduced,
6199                                  Depth, Used);
6200 }
6201 
6202 /// Marks all of the template parameters that will be deduced by a
6203 /// call to the given function template.
6204 void Sema::MarkDeducedTemplateParameters(
6205     ASTContext &Ctx, const FunctionTemplateDecl *FunctionTemplate,
6206     llvm::SmallBitVector &Deduced) {
6207   TemplateParameterList *TemplateParams
6208     = FunctionTemplate->getTemplateParameters();
6209   Deduced.clear();
6210   Deduced.resize(TemplateParams->size());
6211 
6212   FunctionDecl *Function = FunctionTemplate->getTemplatedDecl();
6213   for (unsigned I = 0, N = Function->getNumParams(); I != N; ++I)
6214     ::MarkUsedTemplateParameters(Ctx, Function->getParamDecl(I)->getType(),
6215                                  true, TemplateParams->getDepth(), Deduced);
6216 }
6217 
6218 bool hasDeducibleTemplateParameters(Sema &S,
6219                                     FunctionTemplateDecl *FunctionTemplate,
6220                                     QualType T) {
6221   if (!T->isDependentType())
6222     return false;
6223 
6224   TemplateParameterList *TemplateParams
6225     = FunctionTemplate->getTemplateParameters();
6226   llvm::SmallBitVector Deduced(TemplateParams->size());
6227   ::MarkUsedTemplateParameters(S.Context, T, true, TemplateParams->getDepth(),
6228                                Deduced);
6229 
6230   return Deduced.any();
6231 }
6232