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