1 //===--- ASTDiagnostic.cpp - Diagnostic Printing Hooks for AST Nodes ------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file implements a diagnostic formatting hook for AST elements.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "clang/AST/ASTDiagnostic.h"
15 #include "clang/AST/ASTContext.h"
16 #include "clang/AST/ASTLambda.h"
17 #include "clang/AST/Attr.h"
18 #include "clang/AST/DeclObjC.h"
19 #include "clang/AST/DeclTemplate.h"
20 #include "clang/AST/ExprCXX.h"
21 #include "clang/AST/TemplateBase.h"
22 #include "clang/AST/Type.h"
23 #include "llvm/ADT/SmallString.h"
24 #include "llvm/Support/raw_ostream.h"
25 
26 using namespace clang;
27 
28 // Returns a desugared version of the QualType, and marks ShouldAKA as true
29 // whenever we remove significant sugar from the type.
30 static QualType Desugar(ASTContext &Context, QualType QT, bool &ShouldAKA) {
31   QualifierCollector QC;
32 
33   while (true) {
34     const Type *Ty = QC.strip(QT);
35 
36     // Don't aka just because we saw an elaborated type...
37     if (const ElaboratedType *ET = dyn_cast<ElaboratedType>(Ty)) {
38       QT = ET->desugar();
39       continue;
40     }
41     // ... or a paren type ...
42     if (const ParenType *PT = dyn_cast<ParenType>(Ty)) {
43       QT = PT->desugar();
44       continue;
45     }
46     // ...or a substituted template type parameter ...
47     if (const SubstTemplateTypeParmType *ST =
48           dyn_cast<SubstTemplateTypeParmType>(Ty)) {
49       QT = ST->desugar();
50       continue;
51     }
52     // ...or an attributed type...
53     if (const AttributedType *AT = dyn_cast<AttributedType>(Ty)) {
54       QT = AT->desugar();
55       continue;
56     }
57     // ...or an adjusted type...
58     if (const AdjustedType *AT = dyn_cast<AdjustedType>(Ty)) {
59       QT = AT->desugar();
60       continue;
61     }
62     // ... or an auto type.
63     if (const AutoType *AT = dyn_cast<AutoType>(Ty)) {
64       if (!AT->isSugared())
65         break;
66       QT = AT->desugar();
67       continue;
68     }
69 
70     // Desugar FunctionType if return type or any parameter type should be
71     // desugared. Preserve nullability attribute on desugared types.
72     if (const FunctionType *FT = dyn_cast<FunctionType>(Ty)) {
73       bool DesugarReturn = false;
74       QualType SugarRT = FT->getReturnType();
75       QualType RT = Desugar(Context, SugarRT, DesugarReturn);
76       if (auto nullability = AttributedType::stripOuterNullability(SugarRT)) {
77         RT = Context.getAttributedType(
78             AttributedType::getNullabilityAttrKind(*nullability), RT, RT);
79       }
80 
81       bool DesugarArgument = false;
82       SmallVector<QualType, 4> Args;
83       const FunctionProtoType *FPT = dyn_cast<FunctionProtoType>(FT);
84       if (FPT) {
85         for (QualType SugarPT : FPT->param_types()) {
86           QualType PT = Desugar(Context, SugarPT, DesugarArgument);
87           if (auto nullability =
88                   AttributedType::stripOuterNullability(SugarPT)) {
89             PT = Context.getAttributedType(
90                 AttributedType::getNullabilityAttrKind(*nullability), PT, PT);
91           }
92           Args.push_back(PT);
93         }
94       }
95 
96       if (DesugarReturn || DesugarArgument) {
97         ShouldAKA = true;
98         QT = FPT ? Context.getFunctionType(RT, Args, FPT->getExtProtoInfo())
99                  : Context.getFunctionNoProtoType(RT, FT->getExtInfo());
100         break;
101       }
102     }
103 
104     // Desugar template specializations if any template argument should be
105     // desugared.
106     if (const TemplateSpecializationType *TST =
107             dyn_cast<TemplateSpecializationType>(Ty)) {
108       if (!TST->isTypeAlias()) {
109         bool DesugarArgument = false;
110         SmallVector<TemplateArgument, 4> Args;
111         for (unsigned I = 0, N = TST->getNumArgs(); I != N; ++I) {
112           const TemplateArgument &Arg = TST->getArg(I);
113           if (Arg.getKind() == TemplateArgument::Type)
114             Args.push_back(Desugar(Context, Arg.getAsType(), DesugarArgument));
115           else
116             Args.push_back(Arg);
117         }
118 
119         if (DesugarArgument) {
120           ShouldAKA = true;
121           QT = Context.getTemplateSpecializationType(
122               TST->getTemplateName(), Args.data(), Args.size(), QT);
123         }
124         break;
125       }
126     }
127 
128     // Don't desugar magic Objective-C types.
129     if (QualType(Ty,0) == Context.getObjCIdType() ||
130         QualType(Ty,0) == Context.getObjCClassType() ||
131         QualType(Ty,0) == Context.getObjCSelType() ||
132         QualType(Ty,0) == Context.getObjCProtoType())
133       break;
134 
135     // Don't desugar va_list.
136     if (QualType(Ty, 0) == Context.getBuiltinVaListType() ||
137         QualType(Ty, 0) == Context.getBuiltinMSVaListType())
138       break;
139 
140     // Otherwise, do a single-step desugar.
141     QualType Underlying;
142     bool IsSugar = false;
143     switch (Ty->getTypeClass()) {
144 #define ABSTRACT_TYPE(Class, Base)
145 #define TYPE(Class, Base) \
146 case Type::Class: { \
147 const Class##Type *CTy = cast<Class##Type>(Ty); \
148 if (CTy->isSugared()) { \
149 IsSugar = true; \
150 Underlying = CTy->desugar(); \
151 } \
152 break; \
153 }
154 #include "clang/AST/TypeNodes.def"
155     }
156 
157     // If it wasn't sugared, we're done.
158     if (!IsSugar)
159       break;
160 
161     // If the desugared type is a vector type, we don't want to expand
162     // it, it will turn into an attribute mess. People want their "vec4".
163     if (isa<VectorType>(Underlying))
164       break;
165 
166     // Don't desugar through the primary typedef of an anonymous type.
167     if (const TagType *UTT = Underlying->getAs<TagType>())
168       if (const TypedefType *QTT = dyn_cast<TypedefType>(QT))
169         if (UTT->getDecl()->getTypedefNameForAnonDecl() == QTT->getDecl())
170           break;
171 
172     // Record that we actually looked through an opaque type here.
173     ShouldAKA = true;
174     QT = Underlying;
175   }
176 
177   // If we have a pointer-like type, desugar the pointee as well.
178   // FIXME: Handle other pointer-like types.
179   if (const PointerType *Ty = QT->getAs<PointerType>()) {
180     QT = Context.getPointerType(Desugar(Context, Ty->getPointeeType(),
181                                         ShouldAKA));
182   } else if (const auto *Ty = QT->getAs<ObjCObjectPointerType>()) {
183     QT = Context.getObjCObjectPointerType(Desugar(Context, Ty->getPointeeType(),
184                                                   ShouldAKA));
185   } else if (const LValueReferenceType *Ty = QT->getAs<LValueReferenceType>()) {
186     QT = Context.getLValueReferenceType(Desugar(Context, Ty->getPointeeType(),
187                                                 ShouldAKA));
188   } else if (const RValueReferenceType *Ty = QT->getAs<RValueReferenceType>()) {
189     QT = Context.getRValueReferenceType(Desugar(Context, Ty->getPointeeType(),
190                                                 ShouldAKA));
191   } else if (const auto *Ty = QT->getAs<ObjCObjectType>()) {
192     if (Ty->getBaseType().getTypePtr() != Ty && !ShouldAKA) {
193       QualType BaseType = Desugar(Context, Ty->getBaseType(), ShouldAKA);
194       QT = Context.getObjCObjectType(BaseType, Ty->getTypeArgsAsWritten(),
195                                      llvm::makeArrayRef(Ty->qual_begin(),
196                                                         Ty->getNumProtocols()),
197                                      Ty->isKindOfTypeAsWritten());
198     }
199   }
200 
201   return QC.apply(Context, QT);
202 }
203 
204 /// \brief Convert the given type to a string suitable for printing as part of
205 /// a diagnostic.
206 ///
207 /// There are four main criteria when determining whether we should have an
208 /// a.k.a. clause when pretty-printing a type:
209 ///
210 /// 1) Some types provide very minimal sugar that doesn't impede the
211 ///    user's understanding --- for example, elaborated type
212 ///    specifiers.  If this is all the sugar we see, we don't want an
213 ///    a.k.a. clause.
214 /// 2) Some types are technically sugared but are much more familiar
215 ///    when seen in their sugared form --- for example, va_list,
216 ///    vector types, and the magic Objective C types.  We don't
217 ///    want to desugar these, even if we do produce an a.k.a. clause.
218 /// 3) Some types may have already been desugared previously in this diagnostic.
219 ///    if this is the case, doing another "aka" would just be clutter.
220 /// 4) Two different types within the same diagnostic have the same output
221 ///    string.  In this case, force an a.k.a with the desugared type when
222 ///    doing so will provide additional information.
223 ///
224 /// \param Context the context in which the type was allocated
225 /// \param Ty the type to print
226 /// \param QualTypeVals pointer values to QualTypes which are used in the
227 /// diagnostic message
228 static std::string
229 ConvertTypeToDiagnosticString(ASTContext &Context, QualType Ty,
230                             ArrayRef<DiagnosticsEngine::ArgumentValue> PrevArgs,
231                             ArrayRef<intptr_t> QualTypeVals) {
232   // FIXME: Playing with std::string is really slow.
233   bool ForceAKA = false;
234   QualType CanTy = Ty.getCanonicalType();
235   std::string S = Ty.getAsString(Context.getPrintingPolicy());
236   std::string CanS = CanTy.getAsString(Context.getPrintingPolicy());
237 
238   for (unsigned I = 0, E = QualTypeVals.size(); I != E; ++I) {
239     QualType CompareTy =
240         QualType::getFromOpaquePtr(reinterpret_cast<void*>(QualTypeVals[I]));
241     if (CompareTy.isNull())
242       continue;
243     if (CompareTy == Ty)
244       continue;  // Same types
245     QualType CompareCanTy = CompareTy.getCanonicalType();
246     if (CompareCanTy == CanTy)
247       continue;  // Same canonical types
248     std::string CompareS = CompareTy.getAsString(Context.getPrintingPolicy());
249     bool ShouldAKA = false;
250     QualType CompareDesugar = Desugar(Context, CompareTy, ShouldAKA);
251     std::string CompareDesugarStr =
252         CompareDesugar.getAsString(Context.getPrintingPolicy());
253     if (CompareS != S && CompareDesugarStr != S)
254       continue;  // The type string is different than the comparison string
255                  // and the desugared comparison string.
256     std::string CompareCanS =
257         CompareCanTy.getAsString(Context.getPrintingPolicy());
258 
259     if (CompareCanS == CanS)
260       continue;  // No new info from canonical type
261 
262     ForceAKA = true;
263     break;
264   }
265 
266   // Check to see if we already desugared this type in this
267   // diagnostic.  If so, don't do it again.
268   bool Repeated = false;
269   for (unsigned i = 0, e = PrevArgs.size(); i != e; ++i) {
270     // TODO: Handle ak_declcontext case.
271     if (PrevArgs[i].first == DiagnosticsEngine::ak_qualtype) {
272       void *Ptr = (void*)PrevArgs[i].second;
273       QualType PrevTy(QualType::getFromOpaquePtr(Ptr));
274       if (PrevTy == Ty) {
275         Repeated = true;
276         break;
277       }
278     }
279   }
280 
281   // Consider producing an a.k.a. clause if removing all the direct
282   // sugar gives us something "significantly different".
283   if (!Repeated) {
284     bool ShouldAKA = false;
285     QualType DesugaredTy = Desugar(Context, Ty, ShouldAKA);
286     if (ShouldAKA || ForceAKA) {
287       if (DesugaredTy == Ty) {
288         DesugaredTy = Ty.getCanonicalType();
289       }
290       std::string akaStr = DesugaredTy.getAsString(Context.getPrintingPolicy());
291       if (akaStr != S) {
292         S = "'" + S + "' (aka '" + akaStr + "')";
293         return S;
294       }
295     }
296 
297     // Give some additional info on vector types. These are either not desugared
298     // or displaying complex __attribute__ expressions so add details of the
299     // type and element count.
300     if (Ty->isVectorType()) {
301       const VectorType *VTy = Ty->getAs<VectorType>();
302       std::string DecoratedString;
303       llvm::raw_string_ostream OS(DecoratedString);
304       const char *Values = VTy->getNumElements() > 1 ? "values" : "value";
305       OS << "'" << S << "' (vector of " << VTy->getNumElements() << " '"
306          << VTy->getElementType().getAsString(Context.getPrintingPolicy())
307          << "' " << Values << ")";
308       return OS.str();
309     }
310   }
311 
312   S = "'" + S + "'";
313   return S;
314 }
315 
316 static bool FormatTemplateTypeDiff(ASTContext &Context, QualType FromType,
317                                    QualType ToType, bool PrintTree,
318                                    bool PrintFromType, bool ElideType,
319                                    bool ShowColors, raw_ostream &OS);
320 
321 void clang::FormatASTNodeDiagnosticArgument(
322     DiagnosticsEngine::ArgumentKind Kind,
323     intptr_t Val,
324     StringRef Modifier,
325     StringRef Argument,
326     ArrayRef<DiagnosticsEngine::ArgumentValue> PrevArgs,
327     SmallVectorImpl<char> &Output,
328     void *Cookie,
329     ArrayRef<intptr_t> QualTypeVals) {
330   ASTContext &Context = *static_cast<ASTContext*>(Cookie);
331 
332   size_t OldEnd = Output.size();
333   llvm::raw_svector_ostream OS(Output);
334   bool NeedQuotes = true;
335 
336   switch (Kind) {
337     default: llvm_unreachable("unknown ArgumentKind");
338     case DiagnosticsEngine::ak_qualtype_pair: {
339       TemplateDiffTypes &TDT = *reinterpret_cast<TemplateDiffTypes*>(Val);
340       QualType FromType =
341           QualType::getFromOpaquePtr(reinterpret_cast<void*>(TDT.FromType));
342       QualType ToType =
343           QualType::getFromOpaquePtr(reinterpret_cast<void*>(TDT.ToType));
344 
345       if (FormatTemplateTypeDiff(Context, FromType, ToType, TDT.PrintTree,
346                                  TDT.PrintFromType, TDT.ElideType,
347                                  TDT.ShowColors, OS)) {
348         NeedQuotes = !TDT.PrintTree;
349         TDT.TemplateDiffUsed = true;
350         break;
351       }
352 
353       // Don't fall-back during tree printing.  The caller will handle
354       // this case.
355       if (TDT.PrintTree)
356         return;
357 
358       // Attempting to do a template diff on non-templates.  Set the variables
359       // and continue with regular type printing of the appropriate type.
360       Val = TDT.PrintFromType ? TDT.FromType : TDT.ToType;
361       Modifier = StringRef();
362       Argument = StringRef();
363       // Fall through
364     }
365     case DiagnosticsEngine::ak_qualtype: {
366       assert(Modifier.empty() && Argument.empty() &&
367              "Invalid modifier for QualType argument");
368 
369       QualType Ty(QualType::getFromOpaquePtr(reinterpret_cast<void*>(Val)));
370       OS << ConvertTypeToDiagnosticString(Context, Ty, PrevArgs, QualTypeVals);
371       NeedQuotes = false;
372       break;
373     }
374     case DiagnosticsEngine::ak_declarationname: {
375       if (Modifier == "objcclass" && Argument.empty())
376         OS << '+';
377       else if (Modifier == "objcinstance" && Argument.empty())
378         OS << '-';
379       else
380         assert(Modifier.empty() && Argument.empty() &&
381                "Invalid modifier for DeclarationName argument");
382 
383       OS << DeclarationName::getFromOpaqueInteger(Val);
384       break;
385     }
386     case DiagnosticsEngine::ak_nameddecl: {
387       bool Qualified;
388       if (Modifier == "q" && Argument.empty())
389         Qualified = true;
390       else {
391         assert(Modifier.empty() && Argument.empty() &&
392                "Invalid modifier for NamedDecl* argument");
393         Qualified = false;
394       }
395       const NamedDecl *ND = reinterpret_cast<const NamedDecl*>(Val);
396       ND->getNameForDiagnostic(OS, Context.getPrintingPolicy(), Qualified);
397       break;
398     }
399     case DiagnosticsEngine::ak_nestednamespec: {
400       NestedNameSpecifier *NNS = reinterpret_cast<NestedNameSpecifier*>(Val);
401       NNS->print(OS, Context.getPrintingPolicy());
402       NeedQuotes = false;
403       break;
404     }
405     case DiagnosticsEngine::ak_declcontext: {
406       DeclContext *DC = reinterpret_cast<DeclContext *> (Val);
407       assert(DC && "Should never have a null declaration context");
408       NeedQuotes = false;
409 
410       // FIXME: Get the strings for DeclContext from some localized place
411       if (DC->isTranslationUnit()) {
412         if (Context.getLangOpts().CPlusPlus)
413           OS << "the global namespace";
414         else
415           OS << "the global scope";
416       } else if (DC->isClosure()) {
417         OS << "block literal";
418       } else if (isLambdaCallOperator(DC)) {
419         OS << "lambda expression";
420       } else if (TypeDecl *Type = dyn_cast<TypeDecl>(DC)) {
421         OS << ConvertTypeToDiagnosticString(Context,
422                                             Context.getTypeDeclType(Type),
423                                             PrevArgs, QualTypeVals);
424       } else {
425         assert(isa<NamedDecl>(DC) && "Expected a NamedDecl");
426         NamedDecl *ND = cast<NamedDecl>(DC);
427         if (isa<NamespaceDecl>(ND))
428           OS << "namespace ";
429         else if (isa<ObjCMethodDecl>(ND))
430           OS << "method ";
431         else if (isa<FunctionDecl>(ND))
432           OS << "function ";
433 
434         OS << '\'';
435         ND->getNameForDiagnostic(OS, Context.getPrintingPolicy(), true);
436         OS << '\'';
437       }
438       break;
439     }
440     case DiagnosticsEngine::ak_attr: {
441       const Attr *At = reinterpret_cast<Attr *>(Val);
442       assert(At && "Received null Attr object!");
443       OS << '\'' << At->getSpelling() << '\'';
444       NeedQuotes = false;
445       break;
446     }
447   }
448 
449   if (NeedQuotes) {
450     Output.insert(Output.begin()+OldEnd, '\'');
451     Output.push_back('\'');
452   }
453 }
454 
455 /// TemplateDiff - A class that constructs a pretty string for a pair of
456 /// QualTypes.  For the pair of types, a diff tree will be created containing
457 /// all the information about the templates and template arguments.  Afterwards,
458 /// the tree is transformed to a string according to the options passed in.
459 namespace {
460 class TemplateDiff {
461   /// Context - The ASTContext which is used for comparing template arguments.
462   ASTContext &Context;
463 
464   /// Policy - Used during expression printing.
465   PrintingPolicy Policy;
466 
467   /// ElideType - Option to elide identical types.
468   bool ElideType;
469 
470   /// PrintTree - Format output string as a tree.
471   bool PrintTree;
472 
473   /// ShowColor - Diagnostics support color, so bolding will be used.
474   bool ShowColor;
475 
476   /// FromTemplateType - When single type printing is selected, this is the
477   /// type to be be printed.  When tree printing is selected, this type will
478   /// show up first in the tree.
479   QualType FromTemplateType;
480 
481   /// ToTemplateType - The type that FromType is compared to.  Only in tree
482   /// printing will this type be outputed.
483   QualType ToTemplateType;
484 
485   /// OS - The stream used to construct the output strings.
486   raw_ostream &OS;
487 
488   /// IsBold - Keeps track of the bold formatting for the output string.
489   bool IsBold;
490 
491   /// DiffTree - A tree representation the differences between two types.
492   class DiffTree {
493   public:
494     /// DiffKind - The difference in a DiffNode.  Fields of
495     /// TemplateArgumentInfo needed by each difference can be found in the
496     /// Set* and Get* functions.
497     enum DiffKind {
498       /// Incomplete or invalid node.
499       Invalid,
500       /// Another level of templates
501       Template,
502       /// Type difference, all type differences except those falling under
503       /// the Template difference.
504       Type,
505       /// Expression difference, this is only when both arguments are
506       /// expressions.  If one argument is an expression and the other is
507       /// Integer or Declaration, then use that diff type instead.
508       Expression,
509       /// Template argument difference
510       TemplateTemplate,
511       /// Integer difference
512       Integer,
513       /// Declaration difference, nullptr arguments are included here
514       Declaration,
515       /// One argument being integer and the other being declaration
516       FromIntegerAndToDeclaration,
517       FromDeclarationAndToInteger
518     };
519 
520   private:
521     /// TemplateArgumentInfo - All the information needed to pretty print
522     /// a template argument.  See the Set* and Get* functions to see which
523     /// fields are used for each DiffKind.
524     struct TemplateArgumentInfo {
525       QualType ArgType;
526       Qualifiers Qual;
527       llvm::APSInt Val;
528       bool IsValidInt = false;
529       Expr *ArgExpr = nullptr;
530       TemplateDecl *TD = nullptr;
531       ValueDecl *VD = nullptr;
532       bool NeedAddressOf = false;
533       bool IsNullPtr = false;
534       bool IsDefault = false;
535     };
536 
537     /// DiffNode - The root node stores the original type.  Each child node
538     /// stores template arguments of their parents.  For templated types, the
539     /// template decl is also stored.
540     struct DiffNode {
541       DiffKind Kind = Invalid;
542 
543       /// NextNode - The index of the next sibling node or 0.
544       unsigned NextNode = 0;
545 
546       /// ChildNode - The index of the first child node or 0.
547       unsigned ChildNode = 0;
548 
549       /// ParentNode - The index of the parent node.
550       unsigned ParentNode = 0;
551 
552       TemplateArgumentInfo FromArgInfo, ToArgInfo;
553 
554       /// Same - Whether the two arguments evaluate to the same value.
555       bool Same = false;
556 
557       DiffNode(unsigned ParentNode = 0) : ParentNode(ParentNode) {}
558     };
559 
560     /// FlatTree - A flattened tree used to store the DiffNodes.
561     SmallVector<DiffNode, 16> FlatTree;
562 
563     /// CurrentNode - The index of the current node being used.
564     unsigned CurrentNode;
565 
566     /// NextFreeNode - The index of the next unused node.  Used when creating
567     /// child nodes.
568     unsigned NextFreeNode;
569 
570     /// ReadNode - The index of the current node being read.
571     unsigned ReadNode;
572 
573   public:
574     DiffTree() :
575         CurrentNode(0), NextFreeNode(1) {
576       FlatTree.push_back(DiffNode());
577     }
578 
579     // Node writing functions, one for each valid DiffKind element.
580     void SetTemplateDiff(TemplateDecl *FromTD, TemplateDecl *ToTD,
581                          Qualifiers FromQual, Qualifiers ToQual,
582                          bool FromDefault, bool ToDefault) {
583       assert(FlatTree[CurrentNode].Kind == Invalid && "Node is not empty.");
584       FlatTree[CurrentNode].Kind = Template;
585       FlatTree[CurrentNode].FromArgInfo.TD = FromTD;
586       FlatTree[CurrentNode].ToArgInfo.TD = ToTD;
587       FlatTree[CurrentNode].FromArgInfo.Qual = FromQual;
588       FlatTree[CurrentNode].ToArgInfo.Qual = ToQual;
589       SetDefault(FromDefault, ToDefault);
590     }
591 
592     void SetTypeDiff(QualType FromType, QualType ToType, bool FromDefault,
593                      bool ToDefault) {
594       assert(FlatTree[CurrentNode].Kind == Invalid && "Node is not empty.");
595       FlatTree[CurrentNode].Kind = Type;
596       FlatTree[CurrentNode].FromArgInfo.ArgType = FromType;
597       FlatTree[CurrentNode].ToArgInfo.ArgType = ToType;
598       SetDefault(FromDefault, ToDefault);
599     }
600 
601     void SetExpressionDiff(Expr *FromExpr, Expr *ToExpr, bool FromDefault,
602                            bool ToDefault) {
603       assert(FlatTree[CurrentNode].Kind == Invalid && "Node is not empty.");
604       FlatTree[CurrentNode].Kind = Expression;
605       FlatTree[CurrentNode].FromArgInfo.ArgExpr = FromExpr;
606       FlatTree[CurrentNode].ToArgInfo.ArgExpr = ToExpr;
607       SetDefault(FromDefault, ToDefault);
608     }
609 
610     void SetTemplateTemplateDiff(TemplateDecl *FromTD, TemplateDecl *ToTD,
611                                  bool FromDefault, bool ToDefault) {
612       assert(FlatTree[CurrentNode].Kind == Invalid && "Node is not empty.");
613       FlatTree[CurrentNode].Kind = TemplateTemplate;
614       FlatTree[CurrentNode].FromArgInfo.TD = FromTD;
615       FlatTree[CurrentNode].ToArgInfo.TD = ToTD;
616       SetDefault(FromDefault, ToDefault);
617     }
618 
619     void SetIntegerDiff(llvm::APSInt FromInt, llvm::APSInt ToInt,
620                         bool IsValidFromInt, bool IsValidToInt,
621                         QualType FromIntType, QualType ToIntType,
622                         Expr *FromExpr, Expr *ToExpr, bool FromDefault,
623                         bool ToDefault) {
624       assert(FlatTree[CurrentNode].Kind == Invalid && "Node is not empty.");
625       FlatTree[CurrentNode].Kind = Integer;
626       FlatTree[CurrentNode].FromArgInfo.Val = FromInt;
627       FlatTree[CurrentNode].ToArgInfo.Val = ToInt;
628       FlatTree[CurrentNode].FromArgInfo.IsValidInt = IsValidFromInt;
629       FlatTree[CurrentNode].ToArgInfo.IsValidInt = IsValidToInt;
630       FlatTree[CurrentNode].FromArgInfo.ArgType = FromIntType;
631       FlatTree[CurrentNode].ToArgInfo.ArgType = ToIntType;
632       FlatTree[CurrentNode].FromArgInfo.ArgExpr = FromExpr;
633       FlatTree[CurrentNode].ToArgInfo.ArgExpr = ToExpr;
634       SetDefault(FromDefault, ToDefault);
635     }
636 
637     void SetDeclarationDiff(ValueDecl *FromValueDecl, ValueDecl *ToValueDecl,
638                             bool FromAddressOf, bool ToAddressOf,
639                             bool FromNullPtr, bool ToNullPtr, Expr *FromExpr,
640                             Expr *ToExpr, bool FromDefault, bool ToDefault) {
641       assert(FlatTree[CurrentNode].Kind == Invalid && "Node is not empty.");
642       FlatTree[CurrentNode].Kind = Declaration;
643       FlatTree[CurrentNode].FromArgInfo.VD = FromValueDecl;
644       FlatTree[CurrentNode].ToArgInfo.VD = ToValueDecl;
645       FlatTree[CurrentNode].FromArgInfo.NeedAddressOf = FromAddressOf;
646       FlatTree[CurrentNode].ToArgInfo.NeedAddressOf = ToAddressOf;
647       FlatTree[CurrentNode].FromArgInfo.IsNullPtr = FromNullPtr;
648       FlatTree[CurrentNode].ToArgInfo.IsNullPtr = ToNullPtr;
649       FlatTree[CurrentNode].FromArgInfo.ArgExpr = FromExpr;
650       FlatTree[CurrentNode].ToArgInfo.ArgExpr = ToExpr;
651       SetDefault(FromDefault, ToDefault);
652     }
653 
654     void SetFromDeclarationAndToIntegerDiff(
655         ValueDecl *FromValueDecl, bool FromAddressOf, bool FromNullPtr,
656         Expr *FromExpr, llvm::APSInt ToInt, bool IsValidToInt,
657         QualType ToIntType, Expr *ToExpr, bool FromDefault, bool ToDefault) {
658       assert(FlatTree[CurrentNode].Kind == Invalid && "Node is not empty.");
659       FlatTree[CurrentNode].Kind = FromDeclarationAndToInteger;
660       FlatTree[CurrentNode].FromArgInfo.VD = FromValueDecl;
661       FlatTree[CurrentNode].FromArgInfo.NeedAddressOf = FromAddressOf;
662       FlatTree[CurrentNode].FromArgInfo.IsNullPtr = FromNullPtr;
663       FlatTree[CurrentNode].FromArgInfo.ArgExpr = FromExpr;
664       FlatTree[CurrentNode].ToArgInfo.Val = ToInt;
665       FlatTree[CurrentNode].ToArgInfo.IsValidInt = IsValidToInt;
666       FlatTree[CurrentNode].ToArgInfo.ArgType = ToIntType;
667       FlatTree[CurrentNode].ToArgInfo.ArgExpr = ToExpr;
668       SetDefault(FromDefault, ToDefault);
669     }
670 
671     void SetFromIntegerAndToDeclarationDiff(
672         llvm::APSInt FromInt, bool IsValidFromInt, QualType FromIntType,
673         Expr *FromExpr, ValueDecl *ToValueDecl, bool ToAddressOf,
674         bool ToNullPtr, Expr *ToExpr, bool FromDefault, bool ToDefault) {
675       assert(FlatTree[CurrentNode].Kind == Invalid && "Node is not empty.");
676       FlatTree[CurrentNode].Kind = FromIntegerAndToDeclaration;
677       FlatTree[CurrentNode].FromArgInfo.Val = FromInt;
678       FlatTree[CurrentNode].FromArgInfo.IsValidInt = IsValidFromInt;
679       FlatTree[CurrentNode].FromArgInfo.ArgType = FromIntType;
680       FlatTree[CurrentNode].FromArgInfo.ArgExpr = FromExpr;
681       FlatTree[CurrentNode].ToArgInfo.VD = ToValueDecl;
682       FlatTree[CurrentNode].ToArgInfo.NeedAddressOf = ToAddressOf;
683       FlatTree[CurrentNode].ToArgInfo.IsNullPtr = ToNullPtr;
684       FlatTree[CurrentNode].ToArgInfo.ArgExpr = ToExpr;
685       SetDefault(FromDefault, ToDefault);
686     }
687 
688     /// SetDefault - Sets FromDefault and ToDefault flags of the current node.
689     void SetDefault(bool FromDefault, bool ToDefault) {
690       assert((!FromDefault || !ToDefault) && "Both arguments cannot be default.");
691       FlatTree[CurrentNode].FromArgInfo.IsDefault = FromDefault;
692       FlatTree[CurrentNode].ToArgInfo.IsDefault = ToDefault;
693     }
694 
695     /// SetSame - Sets the same flag of the current node.
696     void SetSame(bool Same) {
697       FlatTree[CurrentNode].Same = Same;
698     }
699 
700     /// SetKind - Sets the current node's type.
701     void SetKind(DiffKind Kind) {
702       FlatTree[CurrentNode].Kind = Kind;
703     }
704 
705     /// Up - Changes the node to the parent of the current node.
706     void Up() {
707       assert(FlatTree[CurrentNode].Kind != Invalid &&
708              "Cannot exit node before setting node information.");
709       CurrentNode = FlatTree[CurrentNode].ParentNode;
710     }
711 
712     /// AddNode - Adds a child node to the current node, then sets that node
713     /// node as the current node.
714     void AddNode() {
715       assert(FlatTree[CurrentNode].Kind == Template &&
716              "Only Template nodes can have children nodes.");
717       FlatTree.push_back(DiffNode(CurrentNode));
718       DiffNode &Node = FlatTree[CurrentNode];
719       if (Node.ChildNode == 0) {
720         // If a child node doesn't exist, add one.
721         Node.ChildNode = NextFreeNode;
722       } else {
723         // If a child node exists, find the last child node and add a
724         // next node to it.
725         unsigned i;
726         for (i = Node.ChildNode; FlatTree[i].NextNode != 0;
727              i = FlatTree[i].NextNode) {
728         }
729         FlatTree[i].NextNode = NextFreeNode;
730       }
731       CurrentNode = NextFreeNode;
732       ++NextFreeNode;
733     }
734 
735     // Node reading functions.
736     /// StartTraverse - Prepares the tree for recursive traversal.
737     void StartTraverse() {
738       ReadNode = 0;
739       CurrentNode = NextFreeNode;
740       NextFreeNode = 0;
741     }
742 
743     /// Parent - Move the current read node to its parent.
744     void Parent() {
745       ReadNode = FlatTree[ReadNode].ParentNode;
746     }
747 
748     void GetTemplateDiff(TemplateDecl *&FromTD, TemplateDecl *&ToTD,
749                          Qualifiers &FromQual, Qualifiers &ToQual) {
750       assert(FlatTree[ReadNode].Kind == Template && "Unexpected kind.");
751       FromTD = FlatTree[ReadNode].FromArgInfo.TD;
752       ToTD = FlatTree[ReadNode].ToArgInfo.TD;
753       FromQual = FlatTree[ReadNode].FromArgInfo.Qual;
754       ToQual = FlatTree[ReadNode].ToArgInfo.Qual;
755     }
756 
757     void GetTypeDiff(QualType &FromType, QualType &ToType) {
758       assert(FlatTree[ReadNode].Kind == Type && "Unexpected kind");
759       FromType = FlatTree[ReadNode].FromArgInfo.ArgType;
760       ToType = FlatTree[ReadNode].ToArgInfo.ArgType;
761     }
762 
763     void GetExpressionDiff(Expr *&FromExpr, Expr *&ToExpr) {
764       assert(FlatTree[ReadNode].Kind == Expression && "Unexpected kind");
765       FromExpr = FlatTree[ReadNode].FromArgInfo.ArgExpr;
766       ToExpr = FlatTree[ReadNode].ToArgInfo.ArgExpr;
767     }
768 
769     void GetTemplateTemplateDiff(TemplateDecl *&FromTD, TemplateDecl *&ToTD) {
770       assert(FlatTree[ReadNode].Kind == TemplateTemplate && "Unexpected kind.");
771       FromTD = FlatTree[ReadNode].FromArgInfo.TD;
772       ToTD = FlatTree[ReadNode].ToArgInfo.TD;
773     }
774 
775     void GetIntegerDiff(llvm::APSInt &FromInt, llvm::APSInt &ToInt,
776                         bool &IsValidFromInt, bool &IsValidToInt,
777                         QualType &FromIntType, QualType &ToIntType,
778                         Expr *&FromExpr, Expr *&ToExpr) {
779       assert(FlatTree[ReadNode].Kind == Integer && "Unexpected kind.");
780       FromInt = FlatTree[ReadNode].FromArgInfo.Val;
781       ToInt = FlatTree[ReadNode].ToArgInfo.Val;
782       IsValidFromInt = FlatTree[ReadNode].FromArgInfo.IsValidInt;
783       IsValidToInt = FlatTree[ReadNode].ToArgInfo.IsValidInt;
784       FromIntType = FlatTree[ReadNode].FromArgInfo.ArgType;
785       ToIntType = FlatTree[ReadNode].ToArgInfo.ArgType;
786       FromExpr = FlatTree[ReadNode].FromArgInfo.ArgExpr;
787       ToExpr = FlatTree[ReadNode].ToArgInfo.ArgExpr;
788     }
789 
790     void GetDeclarationDiff(ValueDecl *&FromValueDecl, ValueDecl *&ToValueDecl,
791                             bool &FromAddressOf, bool &ToAddressOf,
792                             bool &FromNullPtr, bool &ToNullPtr, Expr *&FromExpr,
793                             Expr *&ToExpr) {
794       assert(FlatTree[ReadNode].Kind == Declaration && "Unexpected kind.");
795       FromValueDecl = FlatTree[ReadNode].FromArgInfo.VD;
796       ToValueDecl = FlatTree[ReadNode].ToArgInfo.VD;
797       FromAddressOf = FlatTree[ReadNode].FromArgInfo.NeedAddressOf;
798       ToAddressOf = FlatTree[ReadNode].ToArgInfo.NeedAddressOf;
799       FromNullPtr = FlatTree[ReadNode].FromArgInfo.IsNullPtr;
800       ToNullPtr = FlatTree[ReadNode].ToArgInfo.IsNullPtr;
801       FromExpr = FlatTree[ReadNode].FromArgInfo.ArgExpr;
802       ToExpr = FlatTree[ReadNode].ToArgInfo.ArgExpr;
803     }
804 
805     void GetFromDeclarationAndToIntegerDiff(
806         ValueDecl *&FromValueDecl, bool &FromAddressOf, bool &FromNullPtr,
807         Expr *&FromExpr, llvm::APSInt &ToInt, bool &IsValidToInt,
808         QualType &ToIntType, Expr *&ToExpr) {
809       assert(FlatTree[ReadNode].Kind == FromDeclarationAndToInteger &&
810              "Unexpected kind.");
811       FromValueDecl = FlatTree[ReadNode].FromArgInfo.VD;
812       FromAddressOf = FlatTree[ReadNode].FromArgInfo.NeedAddressOf;
813       FromNullPtr = FlatTree[ReadNode].FromArgInfo.IsNullPtr;
814       FromExpr = FlatTree[ReadNode].FromArgInfo.ArgExpr;
815       ToInt = FlatTree[ReadNode].ToArgInfo.Val;
816       IsValidToInt = FlatTree[ReadNode].ToArgInfo.IsValidInt;
817       ToIntType = FlatTree[ReadNode].ToArgInfo.ArgType;
818       ToExpr = FlatTree[ReadNode].ToArgInfo.ArgExpr;
819     }
820 
821     void GetFromIntegerAndToDeclarationDiff(
822         llvm::APSInt &FromInt, bool &IsValidFromInt, QualType &FromIntType,
823         Expr *&FromExpr, ValueDecl *&ToValueDecl, bool &ToAddressOf,
824         bool &ToNullPtr, Expr *&ToExpr) {
825       assert(FlatTree[ReadNode].Kind == FromIntegerAndToDeclaration &&
826              "Unexpected kind.");
827       FromInt = FlatTree[ReadNode].FromArgInfo.Val;
828       IsValidFromInt = FlatTree[ReadNode].FromArgInfo.IsValidInt;
829       FromIntType = FlatTree[ReadNode].FromArgInfo.ArgType;
830       FromExpr = FlatTree[ReadNode].FromArgInfo.ArgExpr;
831       ToValueDecl = FlatTree[ReadNode].ToArgInfo.VD;
832       ToAddressOf = FlatTree[ReadNode].ToArgInfo.NeedAddressOf;
833       ToNullPtr = FlatTree[ReadNode].ToArgInfo.IsNullPtr;
834       ToExpr = FlatTree[ReadNode].ToArgInfo.ArgExpr;
835     }
836 
837     /// FromDefault - Return true if the from argument is the default.
838     bool FromDefault() {
839       return FlatTree[ReadNode].FromArgInfo.IsDefault;
840     }
841 
842     /// ToDefault - Return true if the to argument is the default.
843     bool ToDefault() {
844       return FlatTree[ReadNode].ToArgInfo.IsDefault;
845     }
846 
847     /// NodeIsSame - Returns true the arguments are the same.
848     bool NodeIsSame() {
849       return FlatTree[ReadNode].Same;
850     }
851 
852     /// HasChildrend - Returns true if the node has children.
853     bool HasChildren() {
854       return FlatTree[ReadNode].ChildNode != 0;
855     }
856 
857     /// MoveToChild - Moves from the current node to its child.
858     void MoveToChild() {
859       ReadNode = FlatTree[ReadNode].ChildNode;
860     }
861 
862     /// AdvanceSibling - If there is a next sibling, advance to it and return
863     /// true.  Otherwise, return false.
864     bool AdvanceSibling() {
865       if (FlatTree[ReadNode].NextNode == 0)
866         return false;
867 
868       ReadNode = FlatTree[ReadNode].NextNode;
869       return true;
870     }
871 
872     /// HasNextSibling - Return true if the node has a next sibling.
873     bool HasNextSibling() {
874       return FlatTree[ReadNode].NextNode != 0;
875     }
876 
877     /// Empty - Returns true if the tree has no information.
878     bool Empty() {
879       return GetKind() == Invalid;
880     }
881 
882     /// GetKind - Returns the current node's type.
883     DiffKind GetKind() {
884       return FlatTree[ReadNode].Kind;
885     }
886   };
887 
888   DiffTree Tree;
889 
890   /// TSTiterator - a pair of iterators that walks the
891   /// TemplateSpecializationType and the desugared TemplateSpecializationType.
892   /// The deseguared TemplateArgument should provide the canonical argument
893   /// for comparisons.
894   class TSTiterator {
895     typedef const TemplateArgument& reference;
896     typedef const TemplateArgument* pointer;
897 
898     /// InternalIterator - an iterator that is used to enter a
899     /// TemplateSpecializationType and read TemplateArguments inside template
900     /// parameter packs in order with the rest of the TemplateArguments.
901     struct InternalIterator {
902       /// TST - the template specialization whose arguments this iterator
903       /// traverse over.
904       const TemplateSpecializationType *TST;
905 
906       /// Index - the index of the template argument in TST.
907       unsigned Index;
908 
909       /// CurrentTA - if CurrentTA is not the same as EndTA, then CurrentTA
910       /// points to a TemplateArgument within a parameter pack.
911       TemplateArgument::pack_iterator CurrentTA;
912 
913       /// EndTA - the end iterator of a parameter pack
914       TemplateArgument::pack_iterator EndTA;
915 
916       /// InternalIterator - Constructs an iterator and sets it to the first
917       /// template argument.
918       InternalIterator(const TemplateSpecializationType *TST)
919           : TST(TST), Index(0), CurrentTA(nullptr), EndTA(nullptr) {
920         if (isEnd()) return;
921 
922         // Set to first template argument.  If not a parameter pack, done.
923         TemplateArgument TA = TST->getArg(0);
924         if (TA.getKind() != TemplateArgument::Pack) return;
925 
926         // Start looking into the parameter pack.
927         CurrentTA = TA.pack_begin();
928         EndTA = TA.pack_end();
929 
930         // Found a valid template argument.
931         if (CurrentTA != EndTA) return;
932 
933         // Parameter pack is empty, use the increment to get to a valid
934         // template argument.
935         ++(*this);
936       }
937 
938       /// isEnd - Returns true if the iterator is one past the end.
939       bool isEnd() const {
940         return Index >= TST->getNumArgs();
941       }
942 
943       /// &operator++ - Increment the iterator to the next template argument.
944       InternalIterator &operator++() {
945         if (isEnd()) {
946           return *this;
947         }
948 
949         // If in a parameter pack, advance in the parameter pack.
950         if (CurrentTA != EndTA) {
951           ++CurrentTA;
952           if (CurrentTA != EndTA)
953             return *this;
954         }
955 
956         // Loop until a template argument is found, or the end is reached.
957         while (true) {
958           // Advance to the next template argument.  Break if reached the end.
959           if (++Index == TST->getNumArgs())
960             break;
961 
962           // If the TemplateArgument is not a parameter pack, done.
963           TemplateArgument TA = TST->getArg(Index);
964           if (TA.getKind() != TemplateArgument::Pack)
965             break;
966 
967           // Handle parameter packs.
968           CurrentTA = TA.pack_begin();
969           EndTA = TA.pack_end();
970 
971           // If the parameter pack is empty, try to advance again.
972           if (CurrentTA != EndTA)
973             break;
974         }
975         return *this;
976       }
977 
978       /// operator* - Returns the appropriate TemplateArgument.
979       reference operator*() const {
980         assert(!isEnd() && "Index exceeds number of arguments.");
981         if (CurrentTA == EndTA)
982           return TST->getArg(Index);
983         else
984           return *CurrentTA;
985       }
986 
987       /// operator-> - Allow access to the underlying TemplateArgument.
988       pointer operator->() const {
989         return &operator*();
990       }
991     };
992 
993     InternalIterator SugaredIterator;
994     InternalIterator DesugaredIterator;
995 
996   public:
997     TSTiterator(ASTContext &Context, const TemplateSpecializationType *TST)
998         : SugaredIterator(TST),
999           DesugaredIterator(
1000               GetTemplateSpecializationType(Context, TST->desugar())) {}
1001 
1002     /// &operator++ - Increment the iterator to the next template argument.
1003     TSTiterator &operator++() {
1004       ++SugaredIterator;
1005       ++DesugaredIterator;
1006       return *this;
1007     }
1008 
1009     /// operator* - Returns the appropriate TemplateArgument.
1010     reference operator*() const {
1011       return *SugaredIterator;
1012     }
1013 
1014     /// operator-> - Allow access to the underlying TemplateArgument.
1015     pointer operator->() const {
1016       return &operator*();
1017     }
1018 
1019     /// isEnd - Returns true if no more TemplateArguments are available.
1020     bool isEnd() const {
1021       return SugaredIterator.isEnd();
1022     }
1023 
1024     /// hasDesugaredTA - Returns true if there is another TemplateArgument
1025     /// available.
1026     bool hasDesugaredTA() const {
1027       return !DesugaredIterator.isEnd();
1028     }
1029 
1030     /// getDesugaredTA - Returns the desugared TemplateArgument.
1031     reference getDesugaredTA() const {
1032       return *DesugaredIterator;
1033     }
1034   };
1035 
1036   // These functions build up the template diff tree, including functions to
1037   // retrieve and compare template arguments.
1038 
1039   static const TemplateSpecializationType *GetTemplateSpecializationType(
1040       ASTContext &Context, QualType Ty) {
1041     if (const TemplateSpecializationType *TST =
1042             Ty->getAs<TemplateSpecializationType>())
1043       return TST;
1044 
1045     const RecordType *RT = Ty->getAs<RecordType>();
1046 
1047     if (!RT)
1048       return nullptr;
1049 
1050     const ClassTemplateSpecializationDecl *CTSD =
1051         dyn_cast<ClassTemplateSpecializationDecl>(RT->getDecl());
1052 
1053     if (!CTSD)
1054       return nullptr;
1055 
1056     Ty = Context.getTemplateSpecializationType(
1057              TemplateName(CTSD->getSpecializedTemplate()),
1058              CTSD->getTemplateArgs().data(),
1059              CTSD->getTemplateArgs().size(),
1060              Ty.getLocalUnqualifiedType().getCanonicalType());
1061 
1062     return Ty->getAs<TemplateSpecializationType>();
1063   }
1064 
1065   /// Returns true if the DiffType is Type and false for Template.
1066   static bool OnlyPerformTypeDiff(ASTContext &Context, QualType FromType,
1067                                   QualType ToType,
1068                                   const TemplateSpecializationType *&FromArgTST,
1069                                   const TemplateSpecializationType *&ToArgTST) {
1070     if (FromType.isNull() || ToType.isNull())
1071       return true;
1072 
1073     if (Context.hasSameType(FromType, ToType))
1074       return true;
1075 
1076     FromArgTST = GetTemplateSpecializationType(Context, FromType);
1077     ToArgTST = GetTemplateSpecializationType(Context, ToType);
1078 
1079     if (!FromArgTST || !ToArgTST)
1080       return true;
1081 
1082     if (!hasSameTemplate(FromArgTST, ToArgTST))
1083       return true;
1084 
1085     return false;
1086   }
1087 
1088   /// DiffTypes - Fills a DiffNode with information about a type difference.
1089   void DiffTypes(const TSTiterator &FromIter, const TSTiterator &ToIter) {
1090     QualType FromType = GetType(FromIter);
1091     QualType ToType = GetType(ToIter);
1092 
1093     bool FromDefault = FromIter.isEnd() && !FromType.isNull();
1094     bool ToDefault = ToIter.isEnd() && !ToType.isNull();
1095 
1096     const TemplateSpecializationType *FromArgTST = nullptr;
1097     const TemplateSpecializationType *ToArgTST = nullptr;
1098     if (OnlyPerformTypeDiff(Context, FromType, ToType, FromArgTST, ToArgTST)) {
1099       Tree.SetTypeDiff(FromType, ToType, FromDefault, ToDefault);
1100       Tree.SetSame(!FromType.isNull() && !ToType.isNull() &&
1101                    Context.hasSameType(FromType, ToType));
1102     } else {
1103       assert(FromArgTST && ToArgTST &&
1104              "Both template specializations need to be valid.");
1105       Qualifiers FromQual = FromType.getQualifiers(),
1106                  ToQual = ToType.getQualifiers();
1107       FromQual -= QualType(FromArgTST, 0).getQualifiers();
1108       ToQual -= QualType(ToArgTST, 0).getQualifiers();
1109       Tree.SetTemplateDiff(FromArgTST->getTemplateName().getAsTemplateDecl(),
1110                            ToArgTST->getTemplateName().getAsTemplateDecl(),
1111                            FromQual, ToQual, FromDefault, ToDefault);
1112       DiffTemplate(FromArgTST, ToArgTST);
1113     }
1114   }
1115 
1116   /// DiffTemplateTemplates - Fills a DiffNode with information about a
1117   /// template template difference.
1118   void DiffTemplateTemplates(const TSTiterator &FromIter,
1119                              const TSTiterator &ToIter) {
1120     TemplateDecl *FromDecl = GetTemplateDecl(FromIter);
1121     TemplateDecl *ToDecl = GetTemplateDecl(ToIter);
1122     Tree.SetTemplateTemplateDiff(FromDecl, ToDecl, FromIter.isEnd() && FromDecl,
1123                                  ToIter.isEnd() && ToDecl);
1124     Tree.SetSame(FromDecl && ToDecl &&
1125                  FromDecl->getCanonicalDecl() == ToDecl->getCanonicalDecl());
1126   }
1127 
1128   /// InitializeNonTypeDiffVariables - Helper function for DiffNonTypes
1129   static void InitializeNonTypeDiffVariables(ASTContext &Context,
1130                                              const TSTiterator &Iter,
1131                                              NonTypeTemplateParmDecl *Default,
1132                                              llvm::APSInt &Value, bool &HasInt,
1133                                              QualType &IntType, bool &IsNullPtr,
1134                                              Expr *&E, ValueDecl *&VD,
1135                                              bool &NeedAddressOf) {
1136     if (!Iter.isEnd()) {
1137       switch (Iter->getKind()) {
1138         default:
1139           llvm_unreachable("unknown ArgumentKind");
1140         case TemplateArgument::Integral:
1141           Value = Iter->getAsIntegral();
1142           HasInt = true;
1143           IntType = Iter->getIntegralType();
1144           return;
1145         case TemplateArgument::Declaration: {
1146           VD = Iter->getAsDecl();
1147           QualType ArgType = Iter->getParamTypeForDecl();
1148           QualType VDType = VD->getType();
1149           if (ArgType->isPointerType() &&
1150               Context.hasSameType(ArgType->getPointeeType(), VDType))
1151             NeedAddressOf = true;
1152           return;
1153         }
1154         case TemplateArgument::NullPtr:
1155           IsNullPtr = true;
1156           return;
1157         case TemplateArgument::Expression:
1158           E = Iter->getAsExpr();
1159       }
1160     } else if (!Default->isParameterPack()) {
1161       E = Default->getDefaultArgument();
1162     }
1163 
1164     if (!Iter.hasDesugaredTA()) return;
1165 
1166     const TemplateArgument& TA = Iter.getDesugaredTA();
1167     switch (TA.getKind()) {
1168       default:
1169         llvm_unreachable("unknown ArgumentKind");
1170       case TemplateArgument::Integral:
1171         Value = TA.getAsIntegral();
1172         HasInt = true;
1173         IntType = TA.getIntegralType();
1174         return;
1175       case TemplateArgument::Declaration: {
1176         VD = TA.getAsDecl();
1177         QualType ArgType = TA.getParamTypeForDecl();
1178         QualType VDType = VD->getType();
1179         if (ArgType->isPointerType() &&
1180             Context.hasSameType(ArgType->getPointeeType(), VDType))
1181           NeedAddressOf = true;
1182         return;
1183       }
1184       case TemplateArgument::NullPtr:
1185         IsNullPtr = true;
1186         return;
1187       case TemplateArgument::Expression:
1188         // TODO: Sometimes, the desugared template argument Expr differs from
1189         // the sugared template argument Expr.  It may be useful in the future
1190         // but for now, it is just discarded.
1191         if (!E)
1192           E = TA.getAsExpr();
1193         return;
1194     }
1195   }
1196 
1197   /// DiffNonTypes - Handles any template parameters not handled by DiffTypes
1198   /// of DiffTemplatesTemplates, such as integer and declaration parameters.
1199   void DiffNonTypes(const TSTiterator &FromIter, const TSTiterator &ToIter,
1200                     NonTypeTemplateParmDecl *FromDefaultNonTypeDecl,
1201                     NonTypeTemplateParmDecl *ToDefaultNonTypeDecl) {
1202     Expr *FromExpr = nullptr, *ToExpr = nullptr;
1203     llvm::APSInt FromInt, ToInt;
1204     QualType FromIntType, ToIntType;
1205     ValueDecl *FromValueDecl = nullptr, *ToValueDecl = nullptr;
1206     bool HasFromInt = false, HasToInt = false, FromNullPtr = false,
1207          ToNullPtr = false, NeedFromAddressOf = false, NeedToAddressOf = false;
1208     InitializeNonTypeDiffVariables(
1209         Context, FromIter, FromDefaultNonTypeDecl, FromInt, HasFromInt,
1210         FromIntType, FromNullPtr, FromExpr, FromValueDecl, NeedFromAddressOf);
1211     InitializeNonTypeDiffVariables(Context, ToIter, ToDefaultNonTypeDecl, ToInt,
1212                                    HasToInt, ToIntType, ToNullPtr, ToExpr,
1213                                    ToValueDecl, NeedToAddressOf);
1214 
1215     bool FromDefault = FromIter.isEnd() &&
1216                        (FromExpr || FromValueDecl || HasFromInt || FromNullPtr);
1217     bool ToDefault = ToIter.isEnd() &&
1218                      (ToExpr || ToValueDecl || HasToInt || ToNullPtr);
1219 
1220     bool FromDeclaration = FromValueDecl || FromNullPtr;
1221     bool ToDeclaration = ToValueDecl || ToNullPtr;
1222 
1223     if (FromDeclaration && HasToInt) {
1224       Tree.SetFromDeclarationAndToIntegerDiff(
1225           FromValueDecl, NeedFromAddressOf, FromNullPtr, FromExpr, ToInt,
1226           HasToInt, ToIntType, ToExpr, FromDefault, ToDefault);
1227       Tree.SetSame(false);
1228       return;
1229 
1230     }
1231 
1232     if (HasFromInt && ToDeclaration) {
1233       Tree.SetFromIntegerAndToDeclarationDiff(
1234           FromInt, HasFromInt, FromIntType, FromExpr, ToValueDecl,
1235           NeedToAddressOf, ToNullPtr, ToExpr, FromDefault, ToDefault);
1236       Tree.SetSame(false);
1237       return;
1238     }
1239 
1240     if (HasFromInt || HasToInt) {
1241       Tree.SetIntegerDiff(FromInt, ToInt, HasFromInt, HasToInt, FromIntType,
1242                           ToIntType, FromExpr, ToExpr, FromDefault, ToDefault);
1243       if (HasFromInt && HasToInt) {
1244         Tree.SetSame(Context.hasSameType(FromIntType, ToIntType) &&
1245                      FromInt == ToInt);
1246       }
1247       return;
1248     }
1249 
1250     if (FromDeclaration || ToDeclaration) {
1251       Tree.SetDeclarationDiff(FromValueDecl, ToValueDecl, NeedFromAddressOf,
1252                               NeedToAddressOf, FromNullPtr, ToNullPtr, FromExpr,
1253                               ToExpr, FromDefault, ToDefault);
1254       bool BothNull = FromNullPtr && ToNullPtr;
1255       bool SameValueDecl =
1256           FromValueDecl && ToValueDecl &&
1257           NeedFromAddressOf == NeedToAddressOf &&
1258           FromValueDecl->getCanonicalDecl() == ToValueDecl->getCanonicalDecl();
1259       Tree.SetSame(BothNull || SameValueDecl);
1260       return;
1261     }
1262 
1263     assert((FromExpr || ToExpr) && "Both template arguments cannot be empty.");
1264     Tree.SetExpressionDiff(FromExpr, ToExpr, FromDefault, ToDefault);
1265     Tree.SetSame(IsEqualExpr(Context, FromExpr, ToExpr));
1266   }
1267 
1268   /// DiffTemplate - recursively visits template arguments and stores the
1269   /// argument info into a tree.
1270   void DiffTemplate(const TemplateSpecializationType *FromTST,
1271                     const TemplateSpecializationType *ToTST) {
1272     // Begin descent into diffing template tree.
1273     TemplateParameterList *ParamsFrom =
1274         FromTST->getTemplateName().getAsTemplateDecl()->getTemplateParameters();
1275     TemplateParameterList *ParamsTo =
1276         ToTST->getTemplateName().getAsTemplateDecl()->getTemplateParameters();
1277     unsigned TotalArgs = 0;
1278     for (TSTiterator FromIter(Context, FromTST), ToIter(Context, ToTST);
1279          !FromIter.isEnd() || !ToIter.isEnd(); ++TotalArgs) {
1280       Tree.AddNode();
1281 
1282       // Get the parameter at index TotalArgs.  If index is larger
1283       // than the total number of parameters, then there is an
1284       // argument pack, so re-use the last parameter.
1285       unsigned FromParamIndex = std::min(TotalArgs, ParamsFrom->size() - 1);
1286       unsigned ToParamIndex = std::min(TotalArgs, ParamsTo->size() - 1);
1287       NamedDecl *FromParamND = ParamsFrom->getParam(FromParamIndex);
1288       NamedDecl *ToParamND = ParamsTo->getParam(ToParamIndex);
1289 
1290       assert(FromParamND->getKind() == ToParamND->getKind() &&
1291              "Parameter Decl are not the same kind.");
1292 
1293       if (isa<TemplateTypeParmDecl>(FromParamND)) {
1294         DiffTypes(FromIter, ToIter);
1295       } else if (isa<TemplateTemplateParmDecl>(FromParamND)) {
1296         DiffTemplateTemplates(FromIter, ToIter);
1297       } else if (isa<NonTypeTemplateParmDecl>(FromParamND)) {
1298         NonTypeTemplateParmDecl *FromDefaultNonTypeDecl =
1299             cast<NonTypeTemplateParmDecl>(FromParamND);
1300         NonTypeTemplateParmDecl *ToDefaultNonTypeDecl =
1301             cast<NonTypeTemplateParmDecl>(ToParamND);
1302         DiffNonTypes(FromIter, ToIter, FromDefaultNonTypeDecl,
1303                      ToDefaultNonTypeDecl);
1304       } else {
1305         llvm_unreachable("Unexpected Decl type.");
1306       }
1307 
1308       ++FromIter;
1309       ++ToIter;
1310       Tree.Up();
1311     }
1312   }
1313 
1314   /// makeTemplateList - Dump every template alias into the vector.
1315   static void makeTemplateList(
1316       SmallVectorImpl<const TemplateSpecializationType *> &TemplateList,
1317       const TemplateSpecializationType *TST) {
1318     while (TST) {
1319       TemplateList.push_back(TST);
1320       if (!TST->isTypeAlias())
1321         return;
1322       TST = TST->getAliasedType()->getAs<TemplateSpecializationType>();
1323     }
1324   }
1325 
1326   /// hasSameBaseTemplate - Returns true when the base templates are the same,
1327   /// even if the template arguments are not.
1328   static bool hasSameBaseTemplate(const TemplateSpecializationType *FromTST,
1329                                   const TemplateSpecializationType *ToTST) {
1330     return FromTST->getTemplateName().getAsTemplateDecl()->getCanonicalDecl() ==
1331            ToTST->getTemplateName().getAsTemplateDecl()->getCanonicalDecl();
1332   }
1333 
1334   /// hasSameTemplate - Returns true if both types are specialized from the
1335   /// same template declaration.  If they come from different template aliases,
1336   /// do a parallel ascension search to determine the highest template alias in
1337   /// common and set the arguments to them.
1338   static bool hasSameTemplate(const TemplateSpecializationType *&FromTST,
1339                               const TemplateSpecializationType *&ToTST) {
1340     // Check the top templates if they are the same.
1341     if (hasSameBaseTemplate(FromTST, ToTST))
1342       return true;
1343 
1344     // Create vectors of template aliases.
1345     SmallVector<const TemplateSpecializationType*, 1> FromTemplateList,
1346                                                       ToTemplateList;
1347 
1348     makeTemplateList(FromTemplateList, FromTST);
1349     makeTemplateList(ToTemplateList, ToTST);
1350 
1351     SmallVectorImpl<const TemplateSpecializationType *>::reverse_iterator
1352         FromIter = FromTemplateList.rbegin(), FromEnd = FromTemplateList.rend(),
1353         ToIter = ToTemplateList.rbegin(), ToEnd = ToTemplateList.rend();
1354 
1355     // Check if the lowest template types are the same.  If not, return.
1356     if (!hasSameBaseTemplate(*FromIter, *ToIter))
1357       return false;
1358 
1359     // Begin searching up the template aliases.  The bottom most template
1360     // matches so move up until one pair does not match.  Use the template
1361     // right before that one.
1362     for (; FromIter != FromEnd && ToIter != ToEnd; ++FromIter, ++ToIter) {
1363       if (!hasSameBaseTemplate(*FromIter, *ToIter))
1364         break;
1365     }
1366 
1367     FromTST = FromIter[-1];
1368     ToTST = ToIter[-1];
1369 
1370     return true;
1371   }
1372 
1373   /// GetType - Retrieves the template type arguments, including default
1374   /// arguments.
1375   static QualType GetType(const TSTiterator &Iter) {
1376     if (!Iter.isEnd())
1377       return Iter->getAsType();
1378     if (Iter.hasDesugaredTA())
1379       return Iter.getDesugaredTA().getAsType();
1380     return QualType();
1381   }
1382 
1383   /// GetTemplateDecl - Retrieves the template template arguments, including
1384   /// default arguments.
1385   static TemplateDecl *GetTemplateDecl(const TSTiterator &Iter) {
1386     if (!Iter.isEnd())
1387       return Iter->getAsTemplate().getAsTemplateDecl();
1388     if (Iter.hasDesugaredTA())
1389       return Iter.getDesugaredTA().getAsTemplate().getAsTemplateDecl();
1390     return nullptr;
1391   }
1392 
1393   /// IsEqualExpr - Returns true if the expressions are the same in regards to
1394   /// template arguments.  These expressions are dependent, so profile them
1395   /// instead of trying to evaluate them.
1396   static bool IsEqualExpr(ASTContext &Context, Expr *FromExpr, Expr *ToExpr) {
1397     if (FromExpr == ToExpr)
1398       return true;
1399 
1400     if (!FromExpr || !ToExpr)
1401       return false;
1402 
1403     llvm::FoldingSetNodeID FromID, ToID;
1404     FromExpr->Profile(FromID, Context, true);
1405     ToExpr->Profile(ToID, Context, true);
1406     return FromID == ToID;
1407   }
1408 
1409   // These functions converts the tree representation of the template
1410   // differences into the internal character vector.
1411 
1412   /// TreeToString - Converts the Tree object into a character stream which
1413   /// will later be turned into the output string.
1414   void TreeToString(int Indent = 1) {
1415     if (PrintTree) {
1416       OS << '\n';
1417       OS.indent(2 * Indent);
1418       ++Indent;
1419     }
1420 
1421     // Handle cases where the difference is not templates with different
1422     // arguments.
1423     switch (Tree.GetKind()) {
1424       case DiffTree::Invalid:
1425         llvm_unreachable("Template diffing failed with bad DiffNode");
1426       case DiffTree::Type: {
1427         QualType FromType, ToType;
1428         Tree.GetTypeDiff(FromType, ToType);
1429         PrintTypeNames(FromType, ToType, Tree.FromDefault(), Tree.ToDefault(),
1430                        Tree.NodeIsSame());
1431         return;
1432       }
1433       case DiffTree::Expression: {
1434         Expr *FromExpr, *ToExpr;
1435         Tree.GetExpressionDiff(FromExpr, ToExpr);
1436         PrintExpr(FromExpr, ToExpr, Tree.FromDefault(), Tree.ToDefault(),
1437                   Tree.NodeIsSame());
1438         return;
1439       }
1440       case DiffTree::TemplateTemplate: {
1441         TemplateDecl *FromTD, *ToTD;
1442         Tree.GetTemplateTemplateDiff(FromTD, ToTD);
1443         PrintTemplateTemplate(FromTD, ToTD, Tree.FromDefault(),
1444                               Tree.ToDefault(), Tree.NodeIsSame());
1445         return;
1446       }
1447       case DiffTree::Integer: {
1448         llvm::APSInt FromInt, ToInt;
1449         Expr *FromExpr, *ToExpr;
1450         bool IsValidFromInt, IsValidToInt;
1451         QualType FromIntType, ToIntType;
1452         Tree.GetIntegerDiff(FromInt, ToInt, IsValidFromInt, IsValidToInt,
1453                             FromIntType, ToIntType, FromExpr, ToExpr);
1454         PrintAPSInt(FromInt, ToInt, IsValidFromInt, IsValidToInt, FromIntType,
1455                     ToIntType, FromExpr, ToExpr, Tree.FromDefault(),
1456                     Tree.ToDefault(), Tree.NodeIsSame());
1457         return;
1458       }
1459       case DiffTree::Declaration: {
1460         ValueDecl *FromValueDecl, *ToValueDecl;
1461         bool FromAddressOf, ToAddressOf;
1462         bool FromNullPtr, ToNullPtr;
1463         Expr *FromExpr, *ToExpr;
1464         Tree.GetDeclarationDiff(FromValueDecl, ToValueDecl, FromAddressOf,
1465                                 ToAddressOf, FromNullPtr, ToNullPtr, FromExpr,
1466                                 ToExpr);
1467         PrintValueDecl(FromValueDecl, ToValueDecl, FromAddressOf, ToAddressOf,
1468                        FromNullPtr, ToNullPtr, FromExpr, ToExpr,
1469                        Tree.FromDefault(), Tree.ToDefault(), Tree.NodeIsSame());
1470         return;
1471       }
1472       case DiffTree::FromDeclarationAndToInteger: {
1473         ValueDecl *FromValueDecl;
1474         bool FromAddressOf;
1475         bool FromNullPtr;
1476         Expr *FromExpr;
1477         llvm::APSInt ToInt;
1478         bool IsValidToInt;
1479         QualType ToIntType;
1480         Expr *ToExpr;
1481         Tree.GetFromDeclarationAndToIntegerDiff(
1482             FromValueDecl, FromAddressOf, FromNullPtr, FromExpr, ToInt,
1483             IsValidToInt, ToIntType, ToExpr);
1484         assert((FromValueDecl || FromNullPtr) && IsValidToInt);
1485         PrintValueDeclAndInteger(FromValueDecl, FromAddressOf, FromNullPtr,
1486                                  FromExpr, Tree.FromDefault(), ToInt, ToIntType,
1487                                  ToExpr, Tree.ToDefault());
1488         return;
1489       }
1490       case DiffTree::FromIntegerAndToDeclaration: {
1491         llvm::APSInt FromInt;
1492         bool IsValidFromInt;
1493         QualType FromIntType;
1494         Expr *FromExpr;
1495         ValueDecl *ToValueDecl;
1496         bool ToAddressOf;
1497         bool ToNullPtr;
1498         Expr *ToExpr;
1499         Tree.GetFromIntegerAndToDeclarationDiff(
1500             FromInt, IsValidFromInt, FromIntType, FromExpr, ToValueDecl,
1501             ToAddressOf, ToNullPtr, ToExpr);
1502         assert(IsValidFromInt && (ToValueDecl || ToNullPtr));
1503         PrintIntegerAndValueDecl(FromInt, FromIntType, FromExpr,
1504                                  Tree.FromDefault(), ToValueDecl, ToAddressOf,
1505                                  ToNullPtr, ToExpr, Tree.ToDefault());
1506         return;
1507       }
1508       case DiffTree::Template: {
1509         // Node is root of template.  Recurse on children.
1510         TemplateDecl *FromTD, *ToTD;
1511         Qualifiers FromQual, ToQual;
1512         Tree.GetTemplateDiff(FromTD, ToTD, FromQual, ToQual);
1513 
1514         PrintQualifiers(FromQual, ToQual);
1515 
1516         if (!Tree.HasChildren()) {
1517           // If we're dealing with a template specialization with zero
1518           // arguments, there are no children; special-case this.
1519           OS << FromTD->getNameAsString() << "<>";
1520           return;
1521         }
1522 
1523         OS << FromTD->getNameAsString() << '<';
1524         Tree.MoveToChild();
1525         unsigned NumElideArgs = 0;
1526         bool AllArgsElided = true;
1527         do {
1528           if (ElideType) {
1529             if (Tree.NodeIsSame()) {
1530               ++NumElideArgs;
1531               continue;
1532             }
1533             AllArgsElided = false;
1534             if (NumElideArgs > 0) {
1535               PrintElideArgs(NumElideArgs, Indent);
1536               NumElideArgs = 0;
1537               OS << ", ";
1538             }
1539           }
1540           TreeToString(Indent);
1541           if (Tree.HasNextSibling())
1542             OS << ", ";
1543         } while (Tree.AdvanceSibling());
1544         if (NumElideArgs > 0) {
1545           if (AllArgsElided)
1546             OS << "...";
1547           else
1548             PrintElideArgs(NumElideArgs, Indent);
1549         }
1550 
1551         Tree.Parent();
1552         OS << ">";
1553         return;
1554       }
1555     }
1556   }
1557 
1558   // To signal to the text printer that a certain text needs to be bolded,
1559   // a special character is injected into the character stream which the
1560   // text printer will later strip out.
1561 
1562   /// Bold - Start bolding text.
1563   void Bold() {
1564     assert(!IsBold && "Attempting to bold text that is already bold.");
1565     IsBold = true;
1566     if (ShowColor)
1567       OS << ToggleHighlight;
1568   }
1569 
1570   /// Unbold - Stop bolding text.
1571   void Unbold() {
1572     assert(IsBold && "Attempting to remove bold from unbold text.");
1573     IsBold = false;
1574     if (ShowColor)
1575       OS << ToggleHighlight;
1576   }
1577 
1578   // Functions to print out the arguments and highlighting the difference.
1579 
1580   /// PrintTypeNames - prints the typenames, bolding differences.  Will detect
1581   /// typenames that are the same and attempt to disambiguate them by using
1582   /// canonical typenames.
1583   void PrintTypeNames(QualType FromType, QualType ToType,
1584                       bool FromDefault, bool ToDefault, bool Same) {
1585     assert((!FromType.isNull() || !ToType.isNull()) &&
1586            "Only one template argument may be missing.");
1587 
1588     if (Same) {
1589       OS << FromType.getAsString(Policy);
1590       return;
1591     }
1592 
1593     if (!FromType.isNull() && !ToType.isNull() &&
1594         FromType.getLocalUnqualifiedType() ==
1595         ToType.getLocalUnqualifiedType()) {
1596       Qualifiers FromQual = FromType.getLocalQualifiers(),
1597                  ToQual = ToType.getLocalQualifiers();
1598       PrintQualifiers(FromQual, ToQual);
1599       FromType.getLocalUnqualifiedType().print(OS, Policy);
1600       return;
1601     }
1602 
1603     std::string FromTypeStr = FromType.isNull() ? "(no argument)"
1604                                                 : FromType.getAsString(Policy);
1605     std::string ToTypeStr = ToType.isNull() ? "(no argument)"
1606                                             : ToType.getAsString(Policy);
1607     // Switch to canonical typename if it is better.
1608     // TODO: merge this with other aka printing above.
1609     if (FromTypeStr == ToTypeStr) {
1610       std::string FromCanTypeStr =
1611           FromType.getCanonicalType().getAsString(Policy);
1612       std::string ToCanTypeStr = ToType.getCanonicalType().getAsString(Policy);
1613       if (FromCanTypeStr != ToCanTypeStr) {
1614         FromTypeStr = FromCanTypeStr;
1615         ToTypeStr = ToCanTypeStr;
1616       }
1617     }
1618 
1619     if (PrintTree) OS << '[';
1620     OS << (FromDefault ? "(default) " : "");
1621     Bold();
1622     OS << FromTypeStr;
1623     Unbold();
1624     if (PrintTree) {
1625       OS << " != " << (ToDefault ? "(default) " : "");
1626       Bold();
1627       OS << ToTypeStr;
1628       Unbold();
1629       OS << "]";
1630     }
1631   }
1632 
1633   /// PrintExpr - Prints out the expr template arguments, highlighting argument
1634   /// differences.
1635   void PrintExpr(const Expr *FromExpr, const Expr *ToExpr, bool FromDefault,
1636                  bool ToDefault, bool Same) {
1637     assert((FromExpr || ToExpr) &&
1638             "Only one template argument may be missing.");
1639     if (Same) {
1640       PrintExpr(FromExpr);
1641     } else if (!PrintTree) {
1642       OS << (FromDefault ? "(default) " : "");
1643       Bold();
1644       PrintExpr(FromExpr);
1645       Unbold();
1646     } else {
1647       OS << (FromDefault ? "[(default) " : "[");
1648       Bold();
1649       PrintExpr(FromExpr);
1650       Unbold();
1651       OS << " != " << (ToDefault ? "(default) " : "");
1652       Bold();
1653       PrintExpr(ToExpr);
1654       Unbold();
1655       OS << ']';
1656     }
1657   }
1658 
1659   /// PrintExpr - Actual formatting and printing of expressions.
1660   void PrintExpr(const Expr *E) {
1661     if (E) {
1662       E->printPretty(OS, nullptr, Policy);
1663       return;
1664     }
1665     OS << "(no argument)";
1666   }
1667 
1668   /// PrintTemplateTemplate - Handles printing of template template arguments,
1669   /// highlighting argument differences.
1670   void PrintTemplateTemplate(TemplateDecl *FromTD, TemplateDecl *ToTD,
1671                              bool FromDefault, bool ToDefault, bool Same) {
1672     assert((FromTD || ToTD) && "Only one template argument may be missing.");
1673 
1674     std::string FromName = FromTD ? FromTD->getName() : "(no argument)";
1675     std::string ToName = ToTD ? ToTD->getName() : "(no argument)";
1676     if (FromTD && ToTD && FromName == ToName) {
1677       FromName = FromTD->getQualifiedNameAsString();
1678       ToName = ToTD->getQualifiedNameAsString();
1679     }
1680 
1681     if (Same) {
1682       OS << "template " << FromTD->getNameAsString();
1683     } else if (!PrintTree) {
1684       OS << (FromDefault ? "(default) template " : "template ");
1685       Bold();
1686       OS << FromName;
1687       Unbold();
1688     } else {
1689       OS << (FromDefault ? "[(default) template " : "[template ");
1690       Bold();
1691       OS << FromName;
1692       Unbold();
1693       OS << " != " << (ToDefault ? "(default) template " : "template ");
1694       Bold();
1695       OS << ToName;
1696       Unbold();
1697       OS << ']';
1698     }
1699   }
1700 
1701   /// PrintAPSInt - Handles printing of integral arguments, highlighting
1702   /// argument differences.
1703   void PrintAPSInt(llvm::APSInt FromInt, llvm::APSInt ToInt,
1704                    bool IsValidFromInt, bool IsValidToInt, QualType FromIntType,
1705                    QualType ToIntType, Expr *FromExpr, Expr *ToExpr,
1706                    bool FromDefault, bool ToDefault, bool Same) {
1707     assert((IsValidFromInt || IsValidToInt) &&
1708            "Only one integral argument may be missing.");
1709 
1710     if (Same) {
1711       if (FromIntType->isBooleanType()) {
1712         OS << ((FromInt == 0) ? "false" : "true");
1713       } else {
1714         OS << FromInt.toString(10);
1715       }
1716       return;
1717     }
1718 
1719     bool PrintType = IsValidFromInt && IsValidToInt &&
1720                      !Context.hasSameType(FromIntType, ToIntType);
1721 
1722     if (!PrintTree) {
1723       OS << (FromDefault ? "(default) " : "");
1724       PrintAPSInt(FromInt, FromExpr, IsValidFromInt, FromIntType, PrintType);
1725     } else {
1726       OS << (FromDefault ? "[(default) " : "[");
1727       PrintAPSInt(FromInt, FromExpr, IsValidFromInt, FromIntType, PrintType);
1728       OS << " != " << (ToDefault ? "(default) " : "");
1729       PrintAPSInt(ToInt, ToExpr, IsValidToInt, ToIntType, PrintType);
1730       OS << ']';
1731     }
1732   }
1733 
1734   /// PrintAPSInt - If valid, print the APSInt.  If the expression is
1735   /// gives more information, print it too.
1736   void PrintAPSInt(llvm::APSInt Val, Expr *E, bool Valid, QualType IntType,
1737                    bool PrintType) {
1738     Bold();
1739     if (Valid) {
1740       if (HasExtraInfo(E)) {
1741         PrintExpr(E);
1742         Unbold();
1743         OS << " aka ";
1744         Bold();
1745       }
1746       if (PrintType) {
1747         Unbold();
1748         OS << "(";
1749         Bold();
1750         IntType.print(OS, Context.getPrintingPolicy());
1751         Unbold();
1752         OS << ") ";
1753         Bold();
1754       }
1755       if (IntType->isBooleanType()) {
1756         OS << ((Val == 0) ? "false" : "true");
1757       } else {
1758         OS << Val.toString(10);
1759       }
1760     } else if (E) {
1761       PrintExpr(E);
1762     } else {
1763       OS << "(no argument)";
1764     }
1765     Unbold();
1766   }
1767 
1768   /// HasExtraInfo - Returns true if E is not an integer literal, the
1769   /// negation of an integer literal, or a boolean literal.
1770   bool HasExtraInfo(Expr *E) {
1771     if (!E) return false;
1772 
1773     E = E->IgnoreImpCasts();
1774 
1775     if (isa<IntegerLiteral>(E)) return false;
1776 
1777     if (UnaryOperator *UO = dyn_cast<UnaryOperator>(E))
1778       if (UO->getOpcode() == UO_Minus)
1779         if (isa<IntegerLiteral>(UO->getSubExpr()))
1780           return false;
1781 
1782     if (isa<CXXBoolLiteralExpr>(E))
1783       return false;
1784 
1785     return true;
1786   }
1787 
1788   void PrintValueDecl(ValueDecl *VD, bool AddressOf, Expr *E, bool NullPtr) {
1789     if (VD) {
1790       if (AddressOf)
1791         OS << "&";
1792       OS << VD->getName();
1793       return;
1794     }
1795 
1796     if (NullPtr) {
1797       if (E && !isa<CXXNullPtrLiteralExpr>(E)) {
1798         PrintExpr(E);
1799         if (IsBold) {
1800           Unbold();
1801           OS << " aka ";
1802           Bold();
1803         } else {
1804           OS << " aka ";
1805         }
1806       }
1807 
1808       OS << "nullptr";
1809       return;
1810     }
1811 
1812     OS << "(no argument)";
1813   }
1814 
1815   /// PrintDecl - Handles printing of Decl arguments, highlighting
1816   /// argument differences.
1817   void PrintValueDecl(ValueDecl *FromValueDecl, ValueDecl *ToValueDecl,
1818                       bool FromAddressOf, bool ToAddressOf, bool FromNullPtr,
1819                       bool ToNullPtr, Expr *FromExpr, Expr *ToExpr,
1820                       bool FromDefault, bool ToDefault, bool Same) {
1821     assert((FromValueDecl || FromNullPtr || ToValueDecl || ToNullPtr) &&
1822            "Only one Decl argument may be NULL");
1823 
1824     if (Same) {
1825       PrintValueDecl(FromValueDecl, FromAddressOf, FromExpr, FromNullPtr);
1826     } else if (!PrintTree) {
1827       OS << (FromDefault ? "(default) " : "");
1828       Bold();
1829       PrintValueDecl(FromValueDecl, FromAddressOf, FromExpr, FromNullPtr);
1830       Unbold();
1831     } else {
1832       OS << (FromDefault ? "[(default) " : "[");
1833       Bold();
1834       PrintValueDecl(FromValueDecl, FromAddressOf, FromExpr, FromNullPtr);
1835       Unbold();
1836       OS << " != " << (ToDefault ? "(default) " : "");
1837       Bold();
1838       PrintValueDecl(ToValueDecl, ToAddressOf, ToExpr, ToNullPtr);
1839       Unbold();
1840       OS << ']';
1841     }
1842   }
1843 
1844   /// PrintValueDeclAndInteger - Uses the print functions for ValueDecl and
1845   /// APSInt to print a mixed difference.
1846   void PrintValueDeclAndInteger(ValueDecl *VD, bool NeedAddressOf,
1847                                 bool IsNullPtr, Expr *VDExpr, bool DefaultDecl,
1848                                 llvm::APSInt Val, QualType IntType,
1849                                 Expr *IntExpr, bool DefaultInt) {
1850     if (!PrintTree) {
1851       OS << (DefaultDecl ? "(default) " : "");
1852       Bold();
1853       PrintValueDecl(VD, NeedAddressOf, VDExpr, IsNullPtr);
1854       Unbold();
1855     } else {
1856       OS << (DefaultDecl ? "[(default) " : "[");
1857       Bold();
1858       PrintValueDecl(VD, NeedAddressOf, VDExpr, IsNullPtr);
1859       Unbold();
1860       OS << " != " << (DefaultInt ? "(default) " : "");
1861       PrintAPSInt(Val, IntExpr, true /*Valid*/, IntType, false /*PrintType*/);
1862       OS << ']';
1863     }
1864   }
1865 
1866   /// PrintIntegerAndValueDecl - Uses the print functions for APSInt and
1867   /// ValueDecl to print a mixed difference.
1868   void PrintIntegerAndValueDecl(llvm::APSInt Val, QualType IntType,
1869                                 Expr *IntExpr, bool DefaultInt, ValueDecl *VD,
1870                                 bool NeedAddressOf, bool IsNullPtr,
1871                                 Expr *VDExpr, bool DefaultDecl) {
1872     if (!PrintTree) {
1873       OS << (DefaultInt ? "(default) " : "");
1874       PrintAPSInt(Val, IntExpr, true /*Valid*/, IntType, false /*PrintType*/);
1875     } else {
1876       OS << (DefaultInt ? "[(default) " : "[");
1877       PrintAPSInt(Val, IntExpr, true /*Valid*/, IntType, false /*PrintType*/);
1878       OS << " != " << (DefaultDecl ? "(default) " : "");
1879       Bold();
1880       PrintValueDecl(VD, NeedAddressOf, VDExpr, IsNullPtr);
1881       Unbold();
1882       OS << ']';
1883     }
1884   }
1885 
1886   // Prints the appropriate placeholder for elided template arguments.
1887   void PrintElideArgs(unsigned NumElideArgs, unsigned Indent) {
1888     if (PrintTree) {
1889       OS << '\n';
1890       for (unsigned i = 0; i < Indent; ++i)
1891         OS << "  ";
1892     }
1893     if (NumElideArgs == 0) return;
1894     if (NumElideArgs == 1)
1895       OS << "[...]";
1896     else
1897       OS << "[" << NumElideArgs << " * ...]";
1898   }
1899 
1900   // Prints and highlights differences in Qualifiers.
1901   void PrintQualifiers(Qualifiers FromQual, Qualifiers ToQual) {
1902     // Both types have no qualifiers
1903     if (FromQual.empty() && ToQual.empty())
1904       return;
1905 
1906     // Both types have same qualifiers
1907     if (FromQual == ToQual) {
1908       PrintQualifier(FromQual, /*ApplyBold*/false);
1909       return;
1910     }
1911 
1912     // Find common qualifiers and strip them from FromQual and ToQual.
1913     Qualifiers CommonQual = Qualifiers::removeCommonQualifiers(FromQual,
1914                                                                ToQual);
1915 
1916     // The qualifiers are printed before the template name.
1917     // Inline printing:
1918     // The common qualifiers are printed.  Then, qualifiers only in this type
1919     // are printed and highlighted.  Finally, qualifiers only in the other
1920     // type are printed and highlighted inside parentheses after "missing".
1921     // Tree printing:
1922     // Qualifiers are printed next to each other, inside brackets, and
1923     // separated by "!=".  The printing order is:
1924     // common qualifiers, highlighted from qualifiers, "!=",
1925     // common qualifiers, highlighted to qualifiers
1926     if (PrintTree) {
1927       OS << "[";
1928       if (CommonQual.empty() && FromQual.empty()) {
1929         Bold();
1930         OS << "(no qualifiers) ";
1931         Unbold();
1932       } else {
1933         PrintQualifier(CommonQual, /*ApplyBold*/false);
1934         PrintQualifier(FromQual, /*ApplyBold*/true);
1935       }
1936       OS << "!= ";
1937       if (CommonQual.empty() && ToQual.empty()) {
1938         Bold();
1939         OS << "(no qualifiers)";
1940         Unbold();
1941       } else {
1942         PrintQualifier(CommonQual, /*ApplyBold*/false,
1943                        /*appendSpaceIfNonEmpty*/!ToQual.empty());
1944         PrintQualifier(ToQual, /*ApplyBold*/true,
1945                        /*appendSpaceIfNonEmpty*/false);
1946       }
1947       OS << "] ";
1948     } else {
1949       PrintQualifier(CommonQual, /*ApplyBold*/false);
1950       PrintQualifier(FromQual, /*ApplyBold*/true);
1951     }
1952   }
1953 
1954   void PrintQualifier(Qualifiers Q, bool ApplyBold,
1955                       bool AppendSpaceIfNonEmpty = true) {
1956     if (Q.empty()) return;
1957     if (ApplyBold) Bold();
1958     Q.print(OS, Policy, AppendSpaceIfNonEmpty);
1959     if (ApplyBold) Unbold();
1960   }
1961 
1962 public:
1963 
1964   TemplateDiff(raw_ostream &OS, ASTContext &Context, QualType FromType,
1965                QualType ToType, bool PrintTree, bool PrintFromType,
1966                bool ElideType, bool ShowColor)
1967     : Context(Context),
1968       Policy(Context.getLangOpts()),
1969       ElideType(ElideType),
1970       PrintTree(PrintTree),
1971       ShowColor(ShowColor),
1972       // When printing a single type, the FromType is the one printed.
1973       FromTemplateType(PrintFromType ? FromType : ToType),
1974       ToTemplateType(PrintFromType ? ToType : FromType),
1975       OS(OS),
1976       IsBold(false) {
1977   }
1978 
1979   /// DiffTemplate - Start the template type diffing.
1980   void DiffTemplate() {
1981     Qualifiers FromQual = FromTemplateType.getQualifiers(),
1982                ToQual = ToTemplateType.getQualifiers();
1983 
1984     const TemplateSpecializationType *FromOrigTST =
1985         GetTemplateSpecializationType(Context, FromTemplateType);
1986     const TemplateSpecializationType *ToOrigTST =
1987         GetTemplateSpecializationType(Context, ToTemplateType);
1988 
1989     // Only checking templates.
1990     if (!FromOrigTST || !ToOrigTST)
1991       return;
1992 
1993     // Different base templates.
1994     if (!hasSameTemplate(FromOrigTST, ToOrigTST)) {
1995       return;
1996     }
1997 
1998     FromQual -= QualType(FromOrigTST, 0).getQualifiers();
1999     ToQual -= QualType(ToOrigTST, 0).getQualifiers();
2000 
2001     // Same base template, but different arguments.
2002     Tree.SetTemplateDiff(FromOrigTST->getTemplateName().getAsTemplateDecl(),
2003                          ToOrigTST->getTemplateName().getAsTemplateDecl(),
2004                          FromQual, ToQual, false /*FromDefault*/,
2005                          false /*ToDefault*/);
2006 
2007     DiffTemplate(FromOrigTST, ToOrigTST);
2008   }
2009 
2010   /// Emit - When the two types given are templated types with the same
2011   /// base template, a string representation of the type difference will be
2012   /// emitted to the stream and return true.  Otherwise, return false.
2013   bool Emit() {
2014     Tree.StartTraverse();
2015     if (Tree.Empty())
2016       return false;
2017 
2018     TreeToString();
2019     assert(!IsBold && "Bold is applied to end of string.");
2020     return true;
2021   }
2022 }; // end class TemplateDiff
2023 }  // end anonymous namespace
2024 
2025 /// FormatTemplateTypeDiff - A helper static function to start the template
2026 /// diff and return the properly formatted string.  Returns true if the diff
2027 /// is successful.
2028 static bool FormatTemplateTypeDiff(ASTContext &Context, QualType FromType,
2029                                    QualType ToType, bool PrintTree,
2030                                    bool PrintFromType, bool ElideType,
2031                                    bool ShowColors, raw_ostream &OS) {
2032   if (PrintTree)
2033     PrintFromType = true;
2034   TemplateDiff TD(OS, Context, FromType, ToType, PrintTree, PrintFromType,
2035                   ElideType, ShowColors);
2036   TD.DiffTemplate();
2037   return TD.Emit();
2038 }
2039