xref: /llvm-project-15.0.7/clang/lib/AST/Expr.cpp (revision 7dcf23ed)
1 //===--- Expr.cpp - Expression AST Node Implementation --------------------===//
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 the Expr class and subclasses.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "clang/AST/ASTContext.h"
15 #include "clang/AST/Attr.h"
16 #include "clang/AST/DeclCXX.h"
17 #include "clang/AST/DeclObjC.h"
18 #include "clang/AST/DeclTemplate.h"
19 #include "clang/AST/EvaluatedExprVisitor.h"
20 #include "clang/AST/Expr.h"
21 #include "clang/AST/ExprCXX.h"
22 #include "clang/AST/Mangle.h"
23 #include "clang/AST/RecordLayout.h"
24 #include "clang/AST/StmtVisitor.h"
25 #include "clang/Basic/Builtins.h"
26 #include "clang/Basic/CharInfo.h"
27 #include "clang/Basic/SourceManager.h"
28 #include "clang/Basic/TargetInfo.h"
29 #include "clang/Lex/Lexer.h"
30 #include "clang/Lex/LiteralSupport.h"
31 #include "clang/Sema/SemaDiagnostic.h"
32 #include "llvm/Support/ErrorHandling.h"
33 #include "llvm/Support/raw_ostream.h"
34 #include <algorithm>
35 #include <cstring>
36 using namespace clang;
37 
38 const Expr *Expr::getBestDynamicClassTypeExpr() const {
39   const Expr *E = this;
40   while (true) {
41     E = E->ignoreParenBaseCasts();
42 
43     // Follow the RHS of a comma operator.
44     if (auto *BO = dyn_cast<BinaryOperator>(E)) {
45       if (BO->getOpcode() == BO_Comma) {
46         E = BO->getRHS();
47         continue;
48       }
49     }
50 
51     // Step into initializer for materialized temporaries.
52     if (auto *MTE = dyn_cast<MaterializeTemporaryExpr>(E)) {
53       E = MTE->GetTemporaryExpr();
54       continue;
55     }
56 
57     break;
58   }
59 
60   return E;
61 }
62 
63 const CXXRecordDecl *Expr::getBestDynamicClassType() const {
64   const Expr *E = getBestDynamicClassTypeExpr();
65   QualType DerivedType = E->getType();
66   if (const PointerType *PTy = DerivedType->getAs<PointerType>())
67     DerivedType = PTy->getPointeeType();
68 
69   if (DerivedType->isDependentType())
70     return nullptr;
71 
72   const RecordType *Ty = DerivedType->castAs<RecordType>();
73   Decl *D = Ty->getDecl();
74   return cast<CXXRecordDecl>(D);
75 }
76 
77 const Expr *Expr::skipRValueSubobjectAdjustments(
78     SmallVectorImpl<const Expr *> &CommaLHSs,
79     SmallVectorImpl<SubobjectAdjustment> &Adjustments) const {
80   const Expr *E = this;
81   while (true) {
82     E = E->IgnoreParens();
83 
84     if (const CastExpr *CE = dyn_cast<CastExpr>(E)) {
85       if ((CE->getCastKind() == CK_DerivedToBase ||
86            CE->getCastKind() == CK_UncheckedDerivedToBase) &&
87           E->getType()->isRecordType()) {
88         E = CE->getSubExpr();
89         CXXRecordDecl *Derived
90           = cast<CXXRecordDecl>(E->getType()->getAs<RecordType>()->getDecl());
91         Adjustments.push_back(SubobjectAdjustment(CE, Derived));
92         continue;
93       }
94 
95       if (CE->getCastKind() == CK_NoOp) {
96         E = CE->getSubExpr();
97         continue;
98       }
99     } else if (const MemberExpr *ME = dyn_cast<MemberExpr>(E)) {
100       if (!ME->isArrow()) {
101         assert(ME->getBase()->getType()->isRecordType());
102         if (FieldDecl *Field = dyn_cast<FieldDecl>(ME->getMemberDecl())) {
103           if (!Field->isBitField() && !Field->getType()->isReferenceType()) {
104             E = ME->getBase();
105             Adjustments.push_back(SubobjectAdjustment(Field));
106             continue;
107           }
108         }
109       }
110     } else if (const BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) {
111       if (BO->isPtrMemOp()) {
112         assert(BO->getRHS()->isRValue());
113         E = BO->getLHS();
114         const MemberPointerType *MPT =
115           BO->getRHS()->getType()->getAs<MemberPointerType>();
116         Adjustments.push_back(SubobjectAdjustment(MPT, BO->getRHS()));
117         continue;
118       } else if (BO->getOpcode() == BO_Comma) {
119         CommaLHSs.push_back(BO->getLHS());
120         E = BO->getRHS();
121         continue;
122       }
123     }
124 
125     // Nothing changed.
126     break;
127   }
128   return E;
129 }
130 
131 /// isKnownToHaveBooleanValue - Return true if this is an integer expression
132 /// that is known to return 0 or 1.  This happens for _Bool/bool expressions
133 /// but also int expressions which are produced by things like comparisons in
134 /// C.
135 bool Expr::isKnownToHaveBooleanValue() const {
136   const Expr *E = IgnoreParens();
137 
138   // If this value has _Bool type, it is obvious 0/1.
139   if (E->getType()->isBooleanType()) return true;
140   // If this is a non-scalar-integer type, we don't care enough to try.
141   if (!E->getType()->isIntegralOrEnumerationType()) return false;
142 
143   if (const UnaryOperator *UO = dyn_cast<UnaryOperator>(E)) {
144     switch (UO->getOpcode()) {
145     case UO_Plus:
146       return UO->getSubExpr()->isKnownToHaveBooleanValue();
147     case UO_LNot:
148       return true;
149     default:
150       return false;
151     }
152   }
153 
154   // Only look through implicit casts.  If the user writes
155   // '(int) (a && b)' treat it as an arbitrary int.
156   if (const ImplicitCastExpr *CE = dyn_cast<ImplicitCastExpr>(E))
157     return CE->getSubExpr()->isKnownToHaveBooleanValue();
158 
159   if (const BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) {
160     switch (BO->getOpcode()) {
161     default: return false;
162     case BO_LT:   // Relational operators.
163     case BO_GT:
164     case BO_LE:
165     case BO_GE:
166     case BO_EQ:   // Equality operators.
167     case BO_NE:
168     case BO_LAnd: // AND operator.
169     case BO_LOr:  // Logical OR operator.
170       return true;
171 
172     case BO_And:  // Bitwise AND operator.
173     case BO_Xor:  // Bitwise XOR operator.
174     case BO_Or:   // Bitwise OR operator.
175       // Handle things like (x==2)|(y==12).
176       return BO->getLHS()->isKnownToHaveBooleanValue() &&
177              BO->getRHS()->isKnownToHaveBooleanValue();
178 
179     case BO_Comma:
180     case BO_Assign:
181       return BO->getRHS()->isKnownToHaveBooleanValue();
182     }
183   }
184 
185   if (const ConditionalOperator *CO = dyn_cast<ConditionalOperator>(E))
186     return CO->getTrueExpr()->isKnownToHaveBooleanValue() &&
187            CO->getFalseExpr()->isKnownToHaveBooleanValue();
188 
189   return false;
190 }
191 
192 // Amusing macro metaprogramming hack: check whether a class provides
193 // a more specific implementation of getExprLoc().
194 //
195 // See also Stmt.cpp:{getLocStart(),getLocEnd()}.
196 namespace {
197   /// This implementation is used when a class provides a custom
198   /// implementation of getExprLoc.
199   template <class E, class T>
200   SourceLocation getExprLocImpl(const Expr *expr,
201                                 SourceLocation (T::*v)() const) {
202     return static_cast<const E*>(expr)->getExprLoc();
203   }
204 
205   /// This implementation is used when a class doesn't provide
206   /// a custom implementation of getExprLoc.  Overload resolution
207   /// should pick it over the implementation above because it's
208   /// more specialized according to function template partial ordering.
209   template <class E>
210   SourceLocation getExprLocImpl(const Expr *expr,
211                                 SourceLocation (Expr::*v)() const) {
212     return static_cast<const E*>(expr)->getLocStart();
213   }
214 }
215 
216 SourceLocation Expr::getExprLoc() const {
217   switch (getStmtClass()) {
218   case Stmt::NoStmtClass: llvm_unreachable("statement without class");
219 #define ABSTRACT_STMT(type)
220 #define STMT(type, base) \
221   case Stmt::type##Class: break;
222 #define EXPR(type, base) \
223   case Stmt::type##Class: return getExprLocImpl<type>(this, &type::getExprLoc);
224 #include "clang/AST/StmtNodes.inc"
225   }
226   llvm_unreachable("unknown expression kind");
227 }
228 
229 //===----------------------------------------------------------------------===//
230 // Primary Expressions.
231 //===----------------------------------------------------------------------===//
232 
233 /// Compute the type-, value-, and instantiation-dependence of a
234 /// declaration reference
235 /// based on the declaration being referenced.
236 static void computeDeclRefDependence(const ASTContext &Ctx, NamedDecl *D,
237                                      QualType T, bool &TypeDependent,
238                                      bool &ValueDependent,
239                                      bool &InstantiationDependent) {
240   TypeDependent = false;
241   ValueDependent = false;
242   InstantiationDependent = false;
243 
244   // (TD) C++ [temp.dep.expr]p3:
245   //   An id-expression is type-dependent if it contains:
246   //
247   // and
248   //
249   // (VD) C++ [temp.dep.constexpr]p2:
250   //  An identifier is value-dependent if it is:
251 
252   //  (TD)  - an identifier that was declared with dependent type
253   //  (VD)  - a name declared with a dependent type,
254   if (T->isDependentType()) {
255     TypeDependent = true;
256     ValueDependent = true;
257     InstantiationDependent = true;
258     return;
259   } else if (T->isInstantiationDependentType()) {
260     InstantiationDependent = true;
261   }
262 
263   //  (TD)  - a conversion-function-id that specifies a dependent type
264   if (D->getDeclName().getNameKind()
265                                 == DeclarationName::CXXConversionFunctionName) {
266     QualType T = D->getDeclName().getCXXNameType();
267     if (T->isDependentType()) {
268       TypeDependent = true;
269       ValueDependent = true;
270       InstantiationDependent = true;
271       return;
272     }
273 
274     if (T->isInstantiationDependentType())
275       InstantiationDependent = true;
276   }
277 
278   //  (VD)  - the name of a non-type template parameter,
279   if (isa<NonTypeTemplateParmDecl>(D)) {
280     ValueDependent = true;
281     InstantiationDependent = true;
282     return;
283   }
284 
285   //  (VD) - a constant with integral or enumeration type and is
286   //         initialized with an expression that is value-dependent.
287   //  (VD) - a constant with literal type and is initialized with an
288   //         expression that is value-dependent [C++11].
289   //  (VD) - FIXME: Missing from the standard:
290   //       -  an entity with reference type and is initialized with an
291   //          expression that is value-dependent [C++11]
292   if (VarDecl *Var = dyn_cast<VarDecl>(D)) {
293     if ((Ctx.getLangOpts().CPlusPlus11 ?
294            Var->getType()->isLiteralType(Ctx) :
295            Var->getType()->isIntegralOrEnumerationType()) &&
296         (Var->getType().isConstQualified() ||
297          Var->getType()->isReferenceType())) {
298       if (const Expr *Init = Var->getAnyInitializer())
299         if (Init->isValueDependent()) {
300           ValueDependent = true;
301           InstantiationDependent = true;
302         }
303     }
304 
305     // (VD) - FIXME: Missing from the standard:
306     //      -  a member function or a static data member of the current
307     //         instantiation
308     if (Var->isStaticDataMember() &&
309         Var->getDeclContext()->isDependentContext()) {
310       ValueDependent = true;
311       InstantiationDependent = true;
312       TypeSourceInfo *TInfo = Var->getFirstDecl()->getTypeSourceInfo();
313       if (TInfo->getType()->isIncompleteArrayType())
314         TypeDependent = true;
315     }
316 
317     return;
318   }
319 
320   // (VD) - FIXME: Missing from the standard:
321   //      -  a member function or a static data member of the current
322   //         instantiation
323   if (isa<CXXMethodDecl>(D) && D->getDeclContext()->isDependentContext()) {
324     ValueDependent = true;
325     InstantiationDependent = true;
326   }
327 }
328 
329 void DeclRefExpr::computeDependence(const ASTContext &Ctx) {
330   bool TypeDependent = false;
331   bool ValueDependent = false;
332   bool InstantiationDependent = false;
333   computeDeclRefDependence(Ctx, getDecl(), getType(), TypeDependent,
334                            ValueDependent, InstantiationDependent);
335 
336   ExprBits.TypeDependent |= TypeDependent;
337   ExprBits.ValueDependent |= ValueDependent;
338   ExprBits.InstantiationDependent |= InstantiationDependent;
339 
340   // Is the declaration a parameter pack?
341   if (getDecl()->isParameterPack())
342     ExprBits.ContainsUnexpandedParameterPack = true;
343 }
344 
345 DeclRefExpr::DeclRefExpr(const ASTContext &Ctx,
346                          NestedNameSpecifierLoc QualifierLoc,
347                          SourceLocation TemplateKWLoc,
348                          ValueDecl *D, bool RefersToEnclosingVariableOrCapture,
349                          const DeclarationNameInfo &NameInfo,
350                          NamedDecl *FoundD,
351                          const TemplateArgumentListInfo *TemplateArgs,
352                          QualType T, ExprValueKind VK)
353   : Expr(DeclRefExprClass, T, VK, OK_Ordinary, false, false, false, false),
354     D(D), Loc(NameInfo.getLoc()), DNLoc(NameInfo.getInfo()) {
355   DeclRefExprBits.HasQualifier = QualifierLoc ? 1 : 0;
356   if (QualifierLoc) {
357     new (getTrailingObjects<NestedNameSpecifierLoc>())
358         NestedNameSpecifierLoc(QualifierLoc);
359     auto *NNS = QualifierLoc.getNestedNameSpecifier();
360     if (NNS->isInstantiationDependent())
361       ExprBits.InstantiationDependent = true;
362     if (NNS->containsUnexpandedParameterPack())
363       ExprBits.ContainsUnexpandedParameterPack = true;
364   }
365   DeclRefExprBits.HasFoundDecl = FoundD ? 1 : 0;
366   if (FoundD)
367     *getTrailingObjects<NamedDecl *>() = FoundD;
368   DeclRefExprBits.HasTemplateKWAndArgsInfo
369     = (TemplateArgs || TemplateKWLoc.isValid()) ? 1 : 0;
370   DeclRefExprBits.RefersToEnclosingVariableOrCapture =
371       RefersToEnclosingVariableOrCapture;
372   if (TemplateArgs) {
373     bool Dependent = false;
374     bool InstantiationDependent = false;
375     bool ContainsUnexpandedParameterPack = false;
376     getTrailingObjects<ASTTemplateKWAndArgsInfo>()->initializeFrom(
377         TemplateKWLoc, *TemplateArgs, getTrailingObjects<TemplateArgumentLoc>(),
378         Dependent, InstantiationDependent, ContainsUnexpandedParameterPack);
379     assert(!Dependent && "built a DeclRefExpr with dependent template args");
380     ExprBits.InstantiationDependent |= InstantiationDependent;
381     ExprBits.ContainsUnexpandedParameterPack |= ContainsUnexpandedParameterPack;
382   } else if (TemplateKWLoc.isValid()) {
383     getTrailingObjects<ASTTemplateKWAndArgsInfo>()->initializeFrom(
384         TemplateKWLoc);
385   }
386   DeclRefExprBits.HadMultipleCandidates = 0;
387 
388   computeDependence(Ctx);
389 }
390 
391 DeclRefExpr *DeclRefExpr::Create(const ASTContext &Context,
392                                  NestedNameSpecifierLoc QualifierLoc,
393                                  SourceLocation TemplateKWLoc,
394                                  ValueDecl *D,
395                                  bool RefersToEnclosingVariableOrCapture,
396                                  SourceLocation NameLoc,
397                                  QualType T,
398                                  ExprValueKind VK,
399                                  NamedDecl *FoundD,
400                                  const TemplateArgumentListInfo *TemplateArgs) {
401   return Create(Context, QualifierLoc, TemplateKWLoc, D,
402                 RefersToEnclosingVariableOrCapture,
403                 DeclarationNameInfo(D->getDeclName(), NameLoc),
404                 T, VK, FoundD, TemplateArgs);
405 }
406 
407 DeclRefExpr *DeclRefExpr::Create(const ASTContext &Context,
408                                  NestedNameSpecifierLoc QualifierLoc,
409                                  SourceLocation TemplateKWLoc,
410                                  ValueDecl *D,
411                                  bool RefersToEnclosingVariableOrCapture,
412                                  const DeclarationNameInfo &NameInfo,
413                                  QualType T,
414                                  ExprValueKind VK,
415                                  NamedDecl *FoundD,
416                                  const TemplateArgumentListInfo *TemplateArgs) {
417   // Filter out cases where the found Decl is the same as the value refenenced.
418   if (D == FoundD)
419     FoundD = nullptr;
420 
421   bool HasTemplateKWAndArgsInfo = TemplateArgs || TemplateKWLoc.isValid();
422   std::size_t Size =
423       totalSizeToAlloc<NestedNameSpecifierLoc, NamedDecl *,
424                        ASTTemplateKWAndArgsInfo, TemplateArgumentLoc>(
425           QualifierLoc ? 1 : 0, FoundD ? 1 : 0,
426           HasTemplateKWAndArgsInfo ? 1 : 0,
427           TemplateArgs ? TemplateArgs->size() : 0);
428 
429   void *Mem = Context.Allocate(Size, alignof(DeclRefExpr));
430   return new (Mem) DeclRefExpr(Context, QualifierLoc, TemplateKWLoc, D,
431                                RefersToEnclosingVariableOrCapture,
432                                NameInfo, FoundD, TemplateArgs, T, VK);
433 }
434 
435 DeclRefExpr *DeclRefExpr::CreateEmpty(const ASTContext &Context,
436                                       bool HasQualifier,
437                                       bool HasFoundDecl,
438                                       bool HasTemplateKWAndArgsInfo,
439                                       unsigned NumTemplateArgs) {
440   assert(NumTemplateArgs == 0 || HasTemplateKWAndArgsInfo);
441   std::size_t Size =
442       totalSizeToAlloc<NestedNameSpecifierLoc, NamedDecl *,
443                        ASTTemplateKWAndArgsInfo, TemplateArgumentLoc>(
444           HasQualifier ? 1 : 0, HasFoundDecl ? 1 : 0, HasTemplateKWAndArgsInfo,
445           NumTemplateArgs);
446   void *Mem = Context.Allocate(Size, alignof(DeclRefExpr));
447   return new (Mem) DeclRefExpr(EmptyShell());
448 }
449 
450 SourceLocation DeclRefExpr::getLocStart() const {
451   if (hasQualifier())
452     return getQualifierLoc().getBeginLoc();
453   return getNameInfo().getLocStart();
454 }
455 SourceLocation DeclRefExpr::getLocEnd() const {
456   if (hasExplicitTemplateArgs())
457     return getRAngleLoc();
458   return getNameInfo().getLocEnd();
459 }
460 
461 PredefinedExpr::PredefinedExpr(SourceLocation L, QualType FNTy, IdentType IT,
462                                StringLiteral *SL)
463     : Expr(PredefinedExprClass, FNTy, VK_LValue, OK_Ordinary,
464            FNTy->isDependentType(), FNTy->isDependentType(),
465            FNTy->isInstantiationDependentType(),
466            /*ContainsUnexpandedParameterPack=*/false),
467       Loc(L), Type(IT), FnName(SL) {}
468 
469 StringLiteral *PredefinedExpr::getFunctionName() {
470   return cast_or_null<StringLiteral>(FnName);
471 }
472 
473 StringRef PredefinedExpr::getIdentTypeName(PredefinedExpr::IdentType IT) {
474   switch (IT) {
475   case Func:
476     return "__func__";
477   case Function:
478     return "__FUNCTION__";
479   case FuncDName:
480     return "__FUNCDNAME__";
481   case LFunction:
482     return "L__FUNCTION__";
483   case PrettyFunction:
484     return "__PRETTY_FUNCTION__";
485   case FuncSig:
486     return "__FUNCSIG__";
487   case PrettyFunctionNoVirtual:
488     break;
489   }
490   llvm_unreachable("Unknown ident type for PredefinedExpr");
491 }
492 
493 // FIXME: Maybe this should use DeclPrinter with a special "print predefined
494 // expr" policy instead.
495 std::string PredefinedExpr::ComputeName(IdentType IT, const Decl *CurrentDecl) {
496   ASTContext &Context = CurrentDecl->getASTContext();
497 
498   if (IT == PredefinedExpr::FuncDName) {
499     if (const NamedDecl *ND = dyn_cast<NamedDecl>(CurrentDecl)) {
500       std::unique_ptr<MangleContext> MC;
501       MC.reset(Context.createMangleContext());
502 
503       if (MC->shouldMangleDeclName(ND)) {
504         SmallString<256> Buffer;
505         llvm::raw_svector_ostream Out(Buffer);
506         if (const CXXConstructorDecl *CD = dyn_cast<CXXConstructorDecl>(ND))
507           MC->mangleCXXCtor(CD, Ctor_Base, Out);
508         else if (const CXXDestructorDecl *DD = dyn_cast<CXXDestructorDecl>(ND))
509           MC->mangleCXXDtor(DD, Dtor_Base, Out);
510         else
511           MC->mangleName(ND, Out);
512 
513         if (!Buffer.empty() && Buffer.front() == '\01')
514           return Buffer.substr(1);
515         return Buffer.str();
516       } else
517         return ND->getIdentifier()->getName();
518     }
519     return "";
520   }
521   if (isa<BlockDecl>(CurrentDecl)) {
522     // For blocks we only emit something if it is enclosed in a function
523     // For top-level block we'd like to include the name of variable, but we
524     // don't have it at this point.
525     auto DC = CurrentDecl->getDeclContext();
526     if (DC->isFileContext())
527       return "";
528 
529     SmallString<256> Buffer;
530     llvm::raw_svector_ostream Out(Buffer);
531     if (auto *DCBlock = dyn_cast<BlockDecl>(DC))
532       // For nested blocks, propagate up to the parent.
533       Out << ComputeName(IT, DCBlock);
534     else if (auto *DCDecl = dyn_cast<Decl>(DC))
535       Out << ComputeName(IT, DCDecl) << "_block_invoke";
536     return Out.str();
537   }
538   if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(CurrentDecl)) {
539     if (IT != PrettyFunction && IT != PrettyFunctionNoVirtual && IT != FuncSig)
540       return FD->getNameAsString();
541 
542     SmallString<256> Name;
543     llvm::raw_svector_ostream Out(Name);
544 
545     if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) {
546       if (MD->isVirtual() && IT != PrettyFunctionNoVirtual)
547         Out << "virtual ";
548       if (MD->isStatic())
549         Out << "static ";
550     }
551 
552     PrintingPolicy Policy(Context.getLangOpts());
553     std::string Proto;
554     llvm::raw_string_ostream POut(Proto);
555 
556     const FunctionDecl *Decl = FD;
557     if (const FunctionDecl* Pattern = FD->getTemplateInstantiationPattern())
558       Decl = Pattern;
559     const FunctionType *AFT = Decl->getType()->getAs<FunctionType>();
560     const FunctionProtoType *FT = nullptr;
561     if (FD->hasWrittenPrototype())
562       FT = dyn_cast<FunctionProtoType>(AFT);
563 
564     if (IT == FuncSig) {
565       switch (AFT->getCallConv()) {
566       case CC_C: POut << "__cdecl "; break;
567       case CC_X86StdCall: POut << "__stdcall "; break;
568       case CC_X86FastCall: POut << "__fastcall "; break;
569       case CC_X86ThisCall: POut << "__thiscall "; break;
570       case CC_X86VectorCall: POut << "__vectorcall "; break;
571       case CC_X86RegCall: POut << "__regcall "; break;
572       // Only bother printing the conventions that MSVC knows about.
573       default: break;
574       }
575     }
576 
577     FD->printQualifiedName(POut, Policy);
578 
579     POut << "(";
580     if (FT) {
581       for (unsigned i = 0, e = Decl->getNumParams(); i != e; ++i) {
582         if (i) POut << ", ";
583         POut << Decl->getParamDecl(i)->getType().stream(Policy);
584       }
585 
586       if (FT->isVariadic()) {
587         if (FD->getNumParams()) POut << ", ";
588         POut << "...";
589       } else if ((IT == FuncSig || !Context.getLangOpts().CPlusPlus) &&
590                  !Decl->getNumParams()) {
591         POut << "void";
592       }
593     }
594     POut << ")";
595 
596     if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) {
597       assert(FT && "We must have a written prototype in this case.");
598       if (FT->isConst())
599         POut << " const";
600       if (FT->isVolatile())
601         POut << " volatile";
602       RefQualifierKind Ref = MD->getRefQualifier();
603       if (Ref == RQ_LValue)
604         POut << " &";
605       else if (Ref == RQ_RValue)
606         POut << " &&";
607     }
608 
609     typedef SmallVector<const ClassTemplateSpecializationDecl *, 8> SpecsTy;
610     SpecsTy Specs;
611     const DeclContext *Ctx = FD->getDeclContext();
612     while (Ctx && isa<NamedDecl>(Ctx)) {
613       const ClassTemplateSpecializationDecl *Spec
614                                = dyn_cast<ClassTemplateSpecializationDecl>(Ctx);
615       if (Spec && !Spec->isExplicitSpecialization())
616         Specs.push_back(Spec);
617       Ctx = Ctx->getParent();
618     }
619 
620     std::string TemplateParams;
621     llvm::raw_string_ostream TOut(TemplateParams);
622     for (SpecsTy::reverse_iterator I = Specs.rbegin(), E = Specs.rend();
623          I != E; ++I) {
624       const TemplateParameterList *Params
625                   = (*I)->getSpecializedTemplate()->getTemplateParameters();
626       const TemplateArgumentList &Args = (*I)->getTemplateArgs();
627       assert(Params->size() == Args.size());
628       for (unsigned i = 0, numParams = Params->size(); i != numParams; ++i) {
629         StringRef Param = Params->getParam(i)->getName();
630         if (Param.empty()) continue;
631         TOut << Param << " = ";
632         Args.get(i).print(Policy, TOut);
633         TOut << ", ";
634       }
635     }
636 
637     FunctionTemplateSpecializationInfo *FSI
638                                           = FD->getTemplateSpecializationInfo();
639     if (FSI && !FSI->isExplicitSpecialization()) {
640       const TemplateParameterList* Params
641                                   = FSI->getTemplate()->getTemplateParameters();
642       const TemplateArgumentList* Args = FSI->TemplateArguments;
643       assert(Params->size() == Args->size());
644       for (unsigned i = 0, e = Params->size(); i != e; ++i) {
645         StringRef Param = Params->getParam(i)->getName();
646         if (Param.empty()) continue;
647         TOut << Param << " = ";
648         Args->get(i).print(Policy, TOut);
649         TOut << ", ";
650       }
651     }
652 
653     TOut.flush();
654     if (!TemplateParams.empty()) {
655       // remove the trailing comma and space
656       TemplateParams.resize(TemplateParams.size() - 2);
657       POut << " [" << TemplateParams << "]";
658     }
659 
660     POut.flush();
661 
662     // Print "auto" for all deduced return types. This includes C++1y return
663     // type deduction and lambdas. For trailing return types resolve the
664     // decltype expression. Otherwise print the real type when this is
665     // not a constructor or destructor.
666     if (isa<CXXMethodDecl>(FD) &&
667          cast<CXXMethodDecl>(FD)->getParent()->isLambda())
668       Proto = "auto " + Proto;
669     else if (FT && FT->getReturnType()->getAs<DecltypeType>())
670       FT->getReturnType()
671           ->getAs<DecltypeType>()
672           ->getUnderlyingType()
673           .getAsStringInternal(Proto, Policy);
674     else if (!isa<CXXConstructorDecl>(FD) && !isa<CXXDestructorDecl>(FD))
675       AFT->getReturnType().getAsStringInternal(Proto, Policy);
676 
677     Out << Proto;
678 
679     return Name.str().str();
680   }
681   if (const CapturedDecl *CD = dyn_cast<CapturedDecl>(CurrentDecl)) {
682     for (const DeclContext *DC = CD->getParent(); DC; DC = DC->getParent())
683       // Skip to its enclosing function or method, but not its enclosing
684       // CapturedDecl.
685       if (DC->isFunctionOrMethod() && (DC->getDeclKind() != Decl::Captured)) {
686         const Decl *D = Decl::castFromDeclContext(DC);
687         return ComputeName(IT, D);
688       }
689     llvm_unreachable("CapturedDecl not inside a function or method");
690   }
691   if (const ObjCMethodDecl *MD = dyn_cast<ObjCMethodDecl>(CurrentDecl)) {
692     SmallString<256> Name;
693     llvm::raw_svector_ostream Out(Name);
694     Out << (MD->isInstanceMethod() ? '-' : '+');
695     Out << '[';
696 
697     // For incorrect code, there might not be an ObjCInterfaceDecl.  Do
698     // a null check to avoid a crash.
699     if (const ObjCInterfaceDecl *ID = MD->getClassInterface())
700       Out << *ID;
701 
702     if (const ObjCCategoryImplDecl *CID =
703         dyn_cast<ObjCCategoryImplDecl>(MD->getDeclContext()))
704       Out << '(' << *CID << ')';
705 
706     Out <<  ' ';
707     MD->getSelector().print(Out);
708     Out <<  ']';
709 
710     return Name.str().str();
711   }
712   if (isa<TranslationUnitDecl>(CurrentDecl) && IT == PrettyFunction) {
713     // __PRETTY_FUNCTION__ -> "top level", the others produce an empty string.
714     return "top level";
715   }
716   return "";
717 }
718 
719 void APNumericStorage::setIntValue(const ASTContext &C,
720                                    const llvm::APInt &Val) {
721   if (hasAllocation())
722     C.Deallocate(pVal);
723 
724   BitWidth = Val.getBitWidth();
725   unsigned NumWords = Val.getNumWords();
726   const uint64_t* Words = Val.getRawData();
727   if (NumWords > 1) {
728     pVal = new (C) uint64_t[NumWords];
729     std::copy(Words, Words + NumWords, pVal);
730   } else if (NumWords == 1)
731     VAL = Words[0];
732   else
733     VAL = 0;
734 }
735 
736 IntegerLiteral::IntegerLiteral(const ASTContext &C, const llvm::APInt &V,
737                                QualType type, SourceLocation l)
738   : Expr(IntegerLiteralClass, type, VK_RValue, OK_Ordinary, false, false,
739          false, false),
740     Loc(l) {
741   assert(type->isIntegerType() && "Illegal type in IntegerLiteral");
742   assert(V.getBitWidth() == C.getIntWidth(type) &&
743          "Integer type is not the correct size for constant.");
744   setValue(C, V);
745 }
746 
747 IntegerLiteral *
748 IntegerLiteral::Create(const ASTContext &C, const llvm::APInt &V,
749                        QualType type, SourceLocation l) {
750   return new (C) IntegerLiteral(C, V, type, l);
751 }
752 
753 IntegerLiteral *
754 IntegerLiteral::Create(const ASTContext &C, EmptyShell Empty) {
755   return new (C) IntegerLiteral(Empty);
756 }
757 
758 FixedPointLiteral::FixedPointLiteral(const ASTContext &C, const llvm::APInt &V,
759                                      QualType type, SourceLocation l,
760                                      unsigned Scale)
761     : Expr(FixedPointLiteralClass, type, VK_RValue, OK_Ordinary, false, false,
762            false, false),
763       Loc(l), Scale(Scale) {
764   assert(type->isFixedPointType() && "Illegal type in FixedPointLiteral");
765   assert(V.getBitWidth() == C.getTypeInfo(type).Width &&
766          "Fixed point type is not the correct size for constant.");
767   setValue(C, V);
768 }
769 
770 FixedPointLiteral *FixedPointLiteral::CreateFromRawInt(const ASTContext &C,
771                                                        const llvm::APInt &V,
772                                                        QualType type,
773                                                        SourceLocation l,
774                                                        unsigned Scale) {
775   return new (C) FixedPointLiteral(C, V, type, l, Scale);
776 }
777 
778 std::string FixedPointLiteral::getValueAsString(unsigned Radix) const {
779   // Currently the longest decimal number that can be printed is the max for an
780   // unsigned long _Accum: 4294967295.99999999976716935634613037109375
781   // which is 43 characters.
782   SmallString<64> S;
783   FixedPointValueToString(
784       S, llvm::APSInt::getUnsigned(getValue().getZExtValue()), Scale, Radix);
785   return S.str();
786 }
787 
788 FloatingLiteral::FloatingLiteral(const ASTContext &C, const llvm::APFloat &V,
789                                  bool isexact, QualType Type, SourceLocation L)
790   : Expr(FloatingLiteralClass, Type, VK_RValue, OK_Ordinary, false, false,
791          false, false), Loc(L) {
792   setSemantics(V.getSemantics());
793   FloatingLiteralBits.IsExact = isexact;
794   setValue(C, V);
795 }
796 
797 FloatingLiteral::FloatingLiteral(const ASTContext &C, EmptyShell Empty)
798   : Expr(FloatingLiteralClass, Empty) {
799   setRawSemantics(IEEEhalf);
800   FloatingLiteralBits.IsExact = false;
801 }
802 
803 FloatingLiteral *
804 FloatingLiteral::Create(const ASTContext &C, const llvm::APFloat &V,
805                         bool isexact, QualType Type, SourceLocation L) {
806   return new (C) FloatingLiteral(C, V, isexact, Type, L);
807 }
808 
809 FloatingLiteral *
810 FloatingLiteral::Create(const ASTContext &C, EmptyShell Empty) {
811   return new (C) FloatingLiteral(C, Empty);
812 }
813 
814 const llvm::fltSemantics &FloatingLiteral::getSemantics() const {
815   switch(FloatingLiteralBits.Semantics) {
816   case IEEEhalf:
817     return llvm::APFloat::IEEEhalf();
818   case IEEEsingle:
819     return llvm::APFloat::IEEEsingle();
820   case IEEEdouble:
821     return llvm::APFloat::IEEEdouble();
822   case x87DoubleExtended:
823     return llvm::APFloat::x87DoubleExtended();
824   case IEEEquad:
825     return llvm::APFloat::IEEEquad();
826   case PPCDoubleDouble:
827     return llvm::APFloat::PPCDoubleDouble();
828   }
829   llvm_unreachable("Unrecognised floating semantics");
830 }
831 
832 void FloatingLiteral::setSemantics(const llvm::fltSemantics &Sem) {
833   if (&Sem == &llvm::APFloat::IEEEhalf())
834     FloatingLiteralBits.Semantics = IEEEhalf;
835   else if (&Sem == &llvm::APFloat::IEEEsingle())
836     FloatingLiteralBits.Semantics = IEEEsingle;
837   else if (&Sem == &llvm::APFloat::IEEEdouble())
838     FloatingLiteralBits.Semantics = IEEEdouble;
839   else if (&Sem == &llvm::APFloat::x87DoubleExtended())
840     FloatingLiteralBits.Semantics = x87DoubleExtended;
841   else if (&Sem == &llvm::APFloat::IEEEquad())
842     FloatingLiteralBits.Semantics = IEEEquad;
843   else if (&Sem == &llvm::APFloat::PPCDoubleDouble())
844     FloatingLiteralBits.Semantics = PPCDoubleDouble;
845   else
846     llvm_unreachable("Unknown floating semantics");
847 }
848 
849 /// getValueAsApproximateDouble - This returns the value as an inaccurate
850 /// double.  Note that this may cause loss of precision, but is useful for
851 /// debugging dumps, etc.
852 double FloatingLiteral::getValueAsApproximateDouble() const {
853   llvm::APFloat V = getValue();
854   bool ignored;
855   V.convert(llvm::APFloat::IEEEdouble(), llvm::APFloat::rmNearestTiesToEven,
856             &ignored);
857   return V.convertToDouble();
858 }
859 
860 int StringLiteral::mapCharByteWidth(TargetInfo const &target,StringKind k) {
861   int CharByteWidth = 0;
862   switch(k) {
863     case Ascii:
864     case UTF8:
865       CharByteWidth = target.getCharWidth();
866       break;
867     case Wide:
868       CharByteWidth = target.getWCharWidth();
869       break;
870     case UTF16:
871       CharByteWidth = target.getChar16Width();
872       break;
873     case UTF32:
874       CharByteWidth = target.getChar32Width();
875       break;
876   }
877   assert((CharByteWidth & 7) == 0 && "Assumes character size is byte multiple");
878   CharByteWidth /= 8;
879   assert((CharByteWidth==1 || CharByteWidth==2 || CharByteWidth==4)
880          && "character byte widths supported are 1, 2, and 4 only");
881   return CharByteWidth;
882 }
883 
884 StringLiteral *StringLiteral::Create(const ASTContext &C, StringRef Str,
885                                      StringKind Kind, bool Pascal, QualType Ty,
886                                      const SourceLocation *Loc,
887                                      unsigned NumStrs) {
888   assert(C.getAsConstantArrayType(Ty) &&
889          "StringLiteral must be of constant array type!");
890 
891   // Allocate enough space for the StringLiteral plus an array of locations for
892   // any concatenated string tokens.
893   void *Mem =
894       C.Allocate(sizeof(StringLiteral) + sizeof(SourceLocation) * (NumStrs - 1),
895                  alignof(StringLiteral));
896   StringLiteral *SL = new (Mem) StringLiteral(Ty);
897 
898   // OPTIMIZE: could allocate this appended to the StringLiteral.
899   SL->setString(C,Str,Kind,Pascal);
900 
901   SL->TokLocs[0] = Loc[0];
902   SL->NumConcatenated = NumStrs;
903 
904   if (NumStrs != 1)
905     memcpy(&SL->TokLocs[1], Loc+1, sizeof(SourceLocation)*(NumStrs-1));
906   return SL;
907 }
908 
909 StringLiteral *StringLiteral::CreateEmpty(const ASTContext &C,
910                                           unsigned NumStrs) {
911   void *Mem =
912       C.Allocate(sizeof(StringLiteral) + sizeof(SourceLocation) * (NumStrs - 1),
913                  alignof(StringLiteral));
914   StringLiteral *SL =
915       new (Mem) StringLiteral(C.adjustStringLiteralBaseType(QualType()));
916   SL->CharByteWidth = 0;
917   SL->Length = 0;
918   SL->NumConcatenated = NumStrs;
919   return SL;
920 }
921 
922 void StringLiteral::outputString(raw_ostream &OS) const {
923   switch (getKind()) {
924   case Ascii: break; // no prefix.
925   case Wide:  OS << 'L'; break;
926   case UTF8:  OS << "u8"; break;
927   case UTF16: OS << 'u'; break;
928   case UTF32: OS << 'U'; break;
929   }
930   OS << '"';
931   static const char Hex[] = "0123456789ABCDEF";
932 
933   unsigned LastSlashX = getLength();
934   for (unsigned I = 0, N = getLength(); I != N; ++I) {
935     switch (uint32_t Char = getCodeUnit(I)) {
936     default:
937       // FIXME: Convert UTF-8 back to codepoints before rendering.
938 
939       // Convert UTF-16 surrogate pairs back to codepoints before rendering.
940       // Leave invalid surrogates alone; we'll use \x for those.
941       if (getKind() == UTF16 && I != N - 1 && Char >= 0xd800 &&
942           Char <= 0xdbff) {
943         uint32_t Trail = getCodeUnit(I + 1);
944         if (Trail >= 0xdc00 && Trail <= 0xdfff) {
945           Char = 0x10000 + ((Char - 0xd800) << 10) + (Trail - 0xdc00);
946           ++I;
947         }
948       }
949 
950       if (Char > 0xff) {
951         // If this is a wide string, output characters over 0xff using \x
952         // escapes. Otherwise, this is a UTF-16 or UTF-32 string, and Char is a
953         // codepoint: use \x escapes for invalid codepoints.
954         if (getKind() == Wide ||
955             (Char >= 0xd800 && Char <= 0xdfff) || Char >= 0x110000) {
956           // FIXME: Is this the best way to print wchar_t?
957           OS << "\\x";
958           int Shift = 28;
959           while ((Char >> Shift) == 0)
960             Shift -= 4;
961           for (/**/; Shift >= 0; Shift -= 4)
962             OS << Hex[(Char >> Shift) & 15];
963           LastSlashX = I;
964           break;
965         }
966 
967         if (Char > 0xffff)
968           OS << "\\U00"
969              << Hex[(Char >> 20) & 15]
970              << Hex[(Char >> 16) & 15];
971         else
972           OS << "\\u";
973         OS << Hex[(Char >> 12) & 15]
974            << Hex[(Char >>  8) & 15]
975            << Hex[(Char >>  4) & 15]
976            << Hex[(Char >>  0) & 15];
977         break;
978       }
979 
980       // If we used \x... for the previous character, and this character is a
981       // hexadecimal digit, prevent it being slurped as part of the \x.
982       if (LastSlashX + 1 == I) {
983         switch (Char) {
984           case '0': case '1': case '2': case '3': case '4':
985           case '5': case '6': case '7': case '8': case '9':
986           case 'a': case 'b': case 'c': case 'd': case 'e': case 'f':
987           case 'A': case 'B': case 'C': case 'D': case 'E': case 'F':
988             OS << "\"\"";
989         }
990       }
991 
992       assert(Char <= 0xff &&
993              "Characters above 0xff should already have been handled.");
994 
995       if (isPrintable(Char))
996         OS << (char)Char;
997       else  // Output anything hard as an octal escape.
998         OS << '\\'
999            << (char)('0' + ((Char >> 6) & 7))
1000            << (char)('0' + ((Char >> 3) & 7))
1001            << (char)('0' + ((Char >> 0) & 7));
1002       break;
1003     // Handle some common non-printable cases to make dumps prettier.
1004     case '\\': OS << "\\\\"; break;
1005     case '"': OS << "\\\""; break;
1006     case '\a': OS << "\\a"; break;
1007     case '\b': OS << "\\b"; break;
1008     case '\f': OS << "\\f"; break;
1009     case '\n': OS << "\\n"; break;
1010     case '\r': OS << "\\r"; break;
1011     case '\t': OS << "\\t"; break;
1012     case '\v': OS << "\\v"; break;
1013     }
1014   }
1015   OS << '"';
1016 }
1017 
1018 void StringLiteral::setString(const ASTContext &C, StringRef Str,
1019                               StringKind Kind, bool IsPascal) {
1020   //FIXME: we assume that the string data comes from a target that uses the same
1021   // code unit size and endianness for the type of string.
1022   this->Kind = Kind;
1023   this->IsPascal = IsPascal;
1024 
1025   CharByteWidth = mapCharByteWidth(C.getTargetInfo(),Kind);
1026   assert((Str.size()%CharByteWidth == 0)
1027          && "size of data must be multiple of CharByteWidth");
1028   Length = Str.size()/CharByteWidth;
1029 
1030   switch(CharByteWidth) {
1031     case 1: {
1032       char *AStrData = new (C) char[Length];
1033       std::memcpy(AStrData,Str.data(),Length*sizeof(*AStrData));
1034       StrData.asChar = AStrData;
1035       break;
1036     }
1037     case 2: {
1038       uint16_t *AStrData = new (C) uint16_t[Length];
1039       std::memcpy(AStrData,Str.data(),Length*sizeof(*AStrData));
1040       StrData.asUInt16 = AStrData;
1041       break;
1042     }
1043     case 4: {
1044       uint32_t *AStrData = new (C) uint32_t[Length];
1045       std::memcpy(AStrData,Str.data(),Length*sizeof(*AStrData));
1046       StrData.asUInt32 = AStrData;
1047       break;
1048     }
1049     default:
1050       llvm_unreachable("unsupported CharByteWidth");
1051   }
1052 }
1053 
1054 /// getLocationOfByte - Return a source location that points to the specified
1055 /// byte of this string literal.
1056 ///
1057 /// Strings are amazingly complex.  They can be formed from multiple tokens and
1058 /// can have escape sequences in them in addition to the usual trigraph and
1059 /// escaped newline business.  This routine handles this complexity.
1060 ///
1061 /// The *StartToken sets the first token to be searched in this function and
1062 /// the *StartTokenByteOffset is the byte offset of the first token. Before
1063 /// returning, it updates the *StartToken to the TokNo of the token being found
1064 /// and sets *StartTokenByteOffset to the byte offset of the token in the
1065 /// string.
1066 /// Using these two parameters can reduce the time complexity from O(n^2) to
1067 /// O(n) if one wants to get the location of byte for all the tokens in a
1068 /// string.
1069 ///
1070 SourceLocation
1071 StringLiteral::getLocationOfByte(unsigned ByteNo, const SourceManager &SM,
1072                                  const LangOptions &Features,
1073                                  const TargetInfo &Target, unsigned *StartToken,
1074                                  unsigned *StartTokenByteOffset) const {
1075   assert((Kind == StringLiteral::Ascii || Kind == StringLiteral::UTF8) &&
1076          "Only narrow string literals are currently supported");
1077 
1078   // Loop over all of the tokens in this string until we find the one that
1079   // contains the byte we're looking for.
1080   unsigned TokNo = 0;
1081   unsigned StringOffset = 0;
1082   if (StartToken)
1083     TokNo = *StartToken;
1084   if (StartTokenByteOffset) {
1085     StringOffset = *StartTokenByteOffset;
1086     ByteNo -= StringOffset;
1087   }
1088   while (1) {
1089     assert(TokNo < getNumConcatenated() && "Invalid byte number!");
1090     SourceLocation StrTokLoc = getStrTokenLoc(TokNo);
1091 
1092     // Get the spelling of the string so that we can get the data that makes up
1093     // the string literal, not the identifier for the macro it is potentially
1094     // expanded through.
1095     SourceLocation StrTokSpellingLoc = SM.getSpellingLoc(StrTokLoc);
1096 
1097     // Re-lex the token to get its length and original spelling.
1098     std::pair<FileID, unsigned> LocInfo =
1099         SM.getDecomposedLoc(StrTokSpellingLoc);
1100     bool Invalid = false;
1101     StringRef Buffer = SM.getBufferData(LocInfo.first, &Invalid);
1102     if (Invalid) {
1103       if (StartTokenByteOffset != nullptr)
1104         *StartTokenByteOffset = StringOffset;
1105       if (StartToken != nullptr)
1106         *StartToken = TokNo;
1107       return StrTokSpellingLoc;
1108     }
1109 
1110     const char *StrData = Buffer.data()+LocInfo.second;
1111 
1112     // Create a lexer starting at the beginning of this token.
1113     Lexer TheLexer(SM.getLocForStartOfFile(LocInfo.first), Features,
1114                    Buffer.begin(), StrData, Buffer.end());
1115     Token TheTok;
1116     TheLexer.LexFromRawLexer(TheTok);
1117 
1118     // Use the StringLiteralParser to compute the length of the string in bytes.
1119     StringLiteralParser SLP(TheTok, SM, Features, Target);
1120     unsigned TokNumBytes = SLP.GetStringLength();
1121 
1122     // If the byte is in this token, return the location of the byte.
1123     if (ByteNo < TokNumBytes ||
1124         (ByteNo == TokNumBytes && TokNo == getNumConcatenated() - 1)) {
1125       unsigned Offset = SLP.getOffsetOfStringByte(TheTok, ByteNo);
1126 
1127       // Now that we know the offset of the token in the spelling, use the
1128       // preprocessor to get the offset in the original source.
1129       if (StartTokenByteOffset != nullptr)
1130         *StartTokenByteOffset = StringOffset;
1131       if (StartToken != nullptr)
1132         *StartToken = TokNo;
1133       return Lexer::AdvanceToTokenCharacter(StrTokLoc, Offset, SM, Features);
1134     }
1135 
1136     // Move to the next string token.
1137     StringOffset += TokNumBytes;
1138     ++TokNo;
1139     ByteNo -= TokNumBytes;
1140   }
1141 }
1142 
1143 
1144 
1145 /// getOpcodeStr - Turn an Opcode enum value into the punctuation char it
1146 /// corresponds to, e.g. "sizeof" or "[pre]++".
1147 StringRef UnaryOperator::getOpcodeStr(Opcode Op) {
1148   switch (Op) {
1149 #define UNARY_OPERATION(Name, Spelling) case UO_##Name: return Spelling;
1150 #include "clang/AST/OperationKinds.def"
1151   }
1152   llvm_unreachable("Unknown unary operator");
1153 }
1154 
1155 UnaryOperatorKind
1156 UnaryOperator::getOverloadedOpcode(OverloadedOperatorKind OO, bool Postfix) {
1157   switch (OO) {
1158   default: llvm_unreachable("No unary operator for overloaded function");
1159   case OO_PlusPlus:   return Postfix ? UO_PostInc : UO_PreInc;
1160   case OO_MinusMinus: return Postfix ? UO_PostDec : UO_PreDec;
1161   case OO_Amp:        return UO_AddrOf;
1162   case OO_Star:       return UO_Deref;
1163   case OO_Plus:       return UO_Plus;
1164   case OO_Minus:      return UO_Minus;
1165   case OO_Tilde:      return UO_Not;
1166   case OO_Exclaim:    return UO_LNot;
1167   case OO_Coawait:    return UO_Coawait;
1168   }
1169 }
1170 
1171 OverloadedOperatorKind UnaryOperator::getOverloadedOperator(Opcode Opc) {
1172   switch (Opc) {
1173   case UO_PostInc: case UO_PreInc: return OO_PlusPlus;
1174   case UO_PostDec: case UO_PreDec: return OO_MinusMinus;
1175   case UO_AddrOf: return OO_Amp;
1176   case UO_Deref: return OO_Star;
1177   case UO_Plus: return OO_Plus;
1178   case UO_Minus: return OO_Minus;
1179   case UO_Not: return OO_Tilde;
1180   case UO_LNot: return OO_Exclaim;
1181   case UO_Coawait: return OO_Coawait;
1182   default: return OO_None;
1183   }
1184 }
1185 
1186 
1187 //===----------------------------------------------------------------------===//
1188 // Postfix Operators.
1189 //===----------------------------------------------------------------------===//
1190 
1191 CallExpr::CallExpr(const ASTContext &C, StmtClass SC, Expr *fn,
1192                    ArrayRef<Expr *> preargs, ArrayRef<Expr *> args, QualType t,
1193                    ExprValueKind VK, SourceLocation rparenloc)
1194     : Expr(SC, t, VK, OK_Ordinary, fn->isTypeDependent(),
1195            fn->isValueDependent(), fn->isInstantiationDependent(),
1196            fn->containsUnexpandedParameterPack()),
1197       NumArgs(args.size()) {
1198 
1199   unsigned NumPreArgs = preargs.size();
1200   SubExprs = new (C) Stmt *[args.size()+PREARGS_START+NumPreArgs];
1201   SubExprs[FN] = fn;
1202   for (unsigned i = 0; i != NumPreArgs; ++i) {
1203     updateDependenciesFromArg(preargs[i]);
1204     SubExprs[i+PREARGS_START] = preargs[i];
1205   }
1206   for (unsigned i = 0; i != args.size(); ++i) {
1207     updateDependenciesFromArg(args[i]);
1208     SubExprs[i+PREARGS_START+NumPreArgs] = args[i];
1209   }
1210 
1211   CallExprBits.NumPreArgs = NumPreArgs;
1212   RParenLoc = rparenloc;
1213 }
1214 
1215 CallExpr::CallExpr(const ASTContext &C, StmtClass SC, Expr *fn,
1216                    ArrayRef<Expr *> args, QualType t, ExprValueKind VK,
1217                    SourceLocation rparenloc)
1218     : CallExpr(C, SC, fn, ArrayRef<Expr *>(), args, t, VK, rparenloc) {}
1219 
1220 CallExpr::CallExpr(const ASTContext &C, Expr *fn, ArrayRef<Expr *> args,
1221                    QualType t, ExprValueKind VK, SourceLocation rparenloc)
1222     : CallExpr(C, CallExprClass, fn, ArrayRef<Expr *>(), args, t, VK, rparenloc) {
1223 }
1224 
1225 CallExpr::CallExpr(const ASTContext &C, StmtClass SC, EmptyShell Empty)
1226     : CallExpr(C, SC, /*NumPreArgs=*/0, Empty) {}
1227 
1228 CallExpr::CallExpr(const ASTContext &C, StmtClass SC, unsigned NumPreArgs,
1229                    EmptyShell Empty)
1230   : Expr(SC, Empty), SubExprs(nullptr), NumArgs(0) {
1231   // FIXME: Why do we allocate this?
1232   SubExprs = new (C) Stmt*[PREARGS_START+NumPreArgs]();
1233   CallExprBits.NumPreArgs = NumPreArgs;
1234 }
1235 
1236 void CallExpr::updateDependenciesFromArg(Expr *Arg) {
1237   if (Arg->isTypeDependent())
1238     ExprBits.TypeDependent = true;
1239   if (Arg->isValueDependent())
1240     ExprBits.ValueDependent = true;
1241   if (Arg->isInstantiationDependent())
1242     ExprBits.InstantiationDependent = true;
1243   if (Arg->containsUnexpandedParameterPack())
1244     ExprBits.ContainsUnexpandedParameterPack = true;
1245 }
1246 
1247 FunctionDecl *CallExpr::getDirectCallee() {
1248   return dyn_cast_or_null<FunctionDecl>(getCalleeDecl());
1249 }
1250 
1251 Decl *CallExpr::getCalleeDecl() {
1252   return getCallee()->getReferencedDeclOfCallee();
1253 }
1254 
1255 Decl *Expr::getReferencedDeclOfCallee() {
1256   Expr *CEE = IgnoreParenImpCasts();
1257 
1258   while (SubstNonTypeTemplateParmExpr *NTTP
1259                                 = dyn_cast<SubstNonTypeTemplateParmExpr>(CEE)) {
1260     CEE = NTTP->getReplacement()->IgnoreParenCasts();
1261   }
1262 
1263   // If we're calling a dereference, look at the pointer instead.
1264   if (BinaryOperator *BO = dyn_cast<BinaryOperator>(CEE)) {
1265     if (BO->isPtrMemOp())
1266       CEE = BO->getRHS()->IgnoreParenCasts();
1267   } else if (UnaryOperator *UO = dyn_cast<UnaryOperator>(CEE)) {
1268     if (UO->getOpcode() == UO_Deref)
1269       CEE = UO->getSubExpr()->IgnoreParenCasts();
1270   }
1271   if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(CEE))
1272     return DRE->getDecl();
1273   if (MemberExpr *ME = dyn_cast<MemberExpr>(CEE))
1274     return ME->getMemberDecl();
1275 
1276   return nullptr;
1277 }
1278 
1279 /// setNumArgs - This changes the number of arguments present in this call.
1280 /// Any orphaned expressions are deleted by this, and any new operands are set
1281 /// to null.
1282 void CallExpr::setNumArgs(const ASTContext& C, unsigned NumArgs) {
1283   // No change, just return.
1284   if (NumArgs == getNumArgs()) return;
1285 
1286   // If shrinking # arguments, just delete the extras and forgot them.
1287   if (NumArgs < getNumArgs()) {
1288     this->NumArgs = NumArgs;
1289     return;
1290   }
1291 
1292   // Otherwise, we are growing the # arguments.  New an bigger argument array.
1293   unsigned NumPreArgs = getNumPreArgs();
1294   Stmt **NewSubExprs = new (C) Stmt*[NumArgs+PREARGS_START+NumPreArgs];
1295   // Copy over args.
1296   for (unsigned i = 0; i != getNumArgs()+PREARGS_START+NumPreArgs; ++i)
1297     NewSubExprs[i] = SubExprs[i];
1298   // Null out new args.
1299   for (unsigned i = getNumArgs()+PREARGS_START+NumPreArgs;
1300        i != NumArgs+PREARGS_START+NumPreArgs; ++i)
1301     NewSubExprs[i] = nullptr;
1302 
1303   if (SubExprs) C.Deallocate(SubExprs);
1304   SubExprs = NewSubExprs;
1305   this->NumArgs = NumArgs;
1306 }
1307 
1308 /// getBuiltinCallee - If this is a call to a builtin, return the builtin ID. If
1309 /// not, return 0.
1310 unsigned CallExpr::getBuiltinCallee() const {
1311   // All simple function calls (e.g. func()) are implicitly cast to pointer to
1312   // function. As a result, we try and obtain the DeclRefExpr from the
1313   // ImplicitCastExpr.
1314   const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(getCallee());
1315   if (!ICE) // FIXME: deal with more complex calls (e.g. (func)(), (*func)()).
1316     return 0;
1317 
1318   const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(ICE->getSubExpr());
1319   if (!DRE)
1320     return 0;
1321 
1322   const FunctionDecl *FDecl = dyn_cast<FunctionDecl>(DRE->getDecl());
1323   if (!FDecl)
1324     return 0;
1325 
1326   if (!FDecl->getIdentifier())
1327     return 0;
1328 
1329   return FDecl->getBuiltinID();
1330 }
1331 
1332 bool CallExpr::isUnevaluatedBuiltinCall(const ASTContext &Ctx) const {
1333   if (unsigned BI = getBuiltinCallee())
1334     return Ctx.BuiltinInfo.isUnevaluated(BI);
1335   return false;
1336 }
1337 
1338 QualType CallExpr::getCallReturnType(const ASTContext &Ctx) const {
1339   const Expr *Callee = getCallee();
1340   QualType CalleeType = Callee->getType();
1341   if (const auto *FnTypePtr = CalleeType->getAs<PointerType>()) {
1342     CalleeType = FnTypePtr->getPointeeType();
1343   } else if (const auto *BPT = CalleeType->getAs<BlockPointerType>()) {
1344     CalleeType = BPT->getPointeeType();
1345   } else if (CalleeType->isSpecificPlaceholderType(BuiltinType::BoundMember)) {
1346     if (isa<CXXPseudoDestructorExpr>(Callee->IgnoreParens()))
1347       return Ctx.VoidTy;
1348 
1349     // This should never be overloaded and so should never return null.
1350     CalleeType = Expr::findBoundMemberType(Callee);
1351   }
1352 
1353   const FunctionType *FnType = CalleeType->castAs<FunctionType>();
1354   return FnType->getReturnType();
1355 }
1356 
1357 SourceLocation CallExpr::getLocStart() const {
1358   if (isa<CXXOperatorCallExpr>(this))
1359     return cast<CXXOperatorCallExpr>(this)->getLocStart();
1360 
1361   SourceLocation begin = getCallee()->getLocStart();
1362   if (begin.isInvalid() && getNumArgs() > 0 && getArg(0))
1363     begin = getArg(0)->getLocStart();
1364   return begin;
1365 }
1366 SourceLocation CallExpr::getLocEnd() const {
1367   if (isa<CXXOperatorCallExpr>(this))
1368     return cast<CXXOperatorCallExpr>(this)->getLocEnd();
1369 
1370   SourceLocation end = getRParenLoc();
1371   if (end.isInvalid() && getNumArgs() > 0 && getArg(getNumArgs() - 1))
1372     end = getArg(getNumArgs() - 1)->getLocEnd();
1373   return end;
1374 }
1375 
1376 OffsetOfExpr *OffsetOfExpr::Create(const ASTContext &C, QualType type,
1377                                    SourceLocation OperatorLoc,
1378                                    TypeSourceInfo *tsi,
1379                                    ArrayRef<OffsetOfNode> comps,
1380                                    ArrayRef<Expr*> exprs,
1381                                    SourceLocation RParenLoc) {
1382   void *Mem = C.Allocate(
1383       totalSizeToAlloc<OffsetOfNode, Expr *>(comps.size(), exprs.size()));
1384 
1385   return new (Mem) OffsetOfExpr(C, type, OperatorLoc, tsi, comps, exprs,
1386                                 RParenLoc);
1387 }
1388 
1389 OffsetOfExpr *OffsetOfExpr::CreateEmpty(const ASTContext &C,
1390                                         unsigned numComps, unsigned numExprs) {
1391   void *Mem =
1392       C.Allocate(totalSizeToAlloc<OffsetOfNode, Expr *>(numComps, numExprs));
1393   return new (Mem) OffsetOfExpr(numComps, numExprs);
1394 }
1395 
1396 OffsetOfExpr::OffsetOfExpr(const ASTContext &C, QualType type,
1397                            SourceLocation OperatorLoc, TypeSourceInfo *tsi,
1398                            ArrayRef<OffsetOfNode> comps, ArrayRef<Expr*> exprs,
1399                            SourceLocation RParenLoc)
1400   : Expr(OffsetOfExprClass, type, VK_RValue, OK_Ordinary,
1401          /*TypeDependent=*/false,
1402          /*ValueDependent=*/tsi->getType()->isDependentType(),
1403          tsi->getType()->isInstantiationDependentType(),
1404          tsi->getType()->containsUnexpandedParameterPack()),
1405     OperatorLoc(OperatorLoc), RParenLoc(RParenLoc), TSInfo(tsi),
1406     NumComps(comps.size()), NumExprs(exprs.size())
1407 {
1408   for (unsigned i = 0; i != comps.size(); ++i) {
1409     setComponent(i, comps[i]);
1410   }
1411 
1412   for (unsigned i = 0; i != exprs.size(); ++i) {
1413     if (exprs[i]->isTypeDependent() || exprs[i]->isValueDependent())
1414       ExprBits.ValueDependent = true;
1415     if (exprs[i]->containsUnexpandedParameterPack())
1416       ExprBits.ContainsUnexpandedParameterPack = true;
1417 
1418     setIndexExpr(i, exprs[i]);
1419   }
1420 }
1421 
1422 IdentifierInfo *OffsetOfNode::getFieldName() const {
1423   assert(getKind() == Field || getKind() == Identifier);
1424   if (getKind() == Field)
1425     return getField()->getIdentifier();
1426 
1427   return reinterpret_cast<IdentifierInfo *> (Data & ~(uintptr_t)Mask);
1428 }
1429 
1430 UnaryExprOrTypeTraitExpr::UnaryExprOrTypeTraitExpr(
1431     UnaryExprOrTypeTrait ExprKind, Expr *E, QualType resultType,
1432     SourceLocation op, SourceLocation rp)
1433     : Expr(UnaryExprOrTypeTraitExprClass, resultType, VK_RValue, OK_Ordinary,
1434            false, // Never type-dependent (C++ [temp.dep.expr]p3).
1435            // Value-dependent if the argument is type-dependent.
1436            E->isTypeDependent(), E->isInstantiationDependent(),
1437            E->containsUnexpandedParameterPack()),
1438       OpLoc(op), RParenLoc(rp) {
1439   UnaryExprOrTypeTraitExprBits.Kind = ExprKind;
1440   UnaryExprOrTypeTraitExprBits.IsType = false;
1441   Argument.Ex = E;
1442 
1443   // Check to see if we are in the situation where alignof(decl) should be
1444   // dependent because decl's alignment is dependent.
1445   if (ExprKind == UETT_AlignOf) {
1446     if (!isValueDependent() || !isInstantiationDependent()) {
1447       E = E->IgnoreParens();
1448 
1449       const ValueDecl *D = nullptr;
1450       if (const auto *DRE = dyn_cast<DeclRefExpr>(E))
1451         D = DRE->getDecl();
1452       else if (const auto *ME = dyn_cast<MemberExpr>(E))
1453         D = ME->getMemberDecl();
1454 
1455       if (D) {
1456         for (const auto *I : D->specific_attrs<AlignedAttr>()) {
1457           if (I->isAlignmentDependent()) {
1458             setValueDependent(true);
1459             setInstantiationDependent(true);
1460             break;
1461           }
1462         }
1463       }
1464     }
1465   }
1466 }
1467 
1468 MemberExpr *MemberExpr::Create(
1469     const ASTContext &C, Expr *base, bool isarrow, SourceLocation OperatorLoc,
1470     NestedNameSpecifierLoc QualifierLoc, SourceLocation TemplateKWLoc,
1471     ValueDecl *memberdecl, DeclAccessPair founddecl,
1472     DeclarationNameInfo nameinfo, const TemplateArgumentListInfo *targs,
1473     QualType ty, ExprValueKind vk, ExprObjectKind ok) {
1474 
1475   bool hasQualOrFound = (QualifierLoc ||
1476                          founddecl.getDecl() != memberdecl ||
1477                          founddecl.getAccess() != memberdecl->getAccess());
1478 
1479   bool HasTemplateKWAndArgsInfo = targs || TemplateKWLoc.isValid();
1480   std::size_t Size =
1481       totalSizeToAlloc<MemberExprNameQualifier, ASTTemplateKWAndArgsInfo,
1482                        TemplateArgumentLoc>(hasQualOrFound ? 1 : 0,
1483                                             HasTemplateKWAndArgsInfo ? 1 : 0,
1484                                             targs ? targs->size() : 0);
1485 
1486   void *Mem = C.Allocate(Size, alignof(MemberExpr));
1487   MemberExpr *E = new (Mem)
1488       MemberExpr(base, isarrow, OperatorLoc, memberdecl, nameinfo, ty, vk, ok);
1489 
1490   if (hasQualOrFound) {
1491     // FIXME: Wrong. We should be looking at the member declaration we found.
1492     if (QualifierLoc && QualifierLoc.getNestedNameSpecifier()->isDependent()) {
1493       E->setValueDependent(true);
1494       E->setTypeDependent(true);
1495       E->setInstantiationDependent(true);
1496     }
1497     else if (QualifierLoc &&
1498              QualifierLoc.getNestedNameSpecifier()->isInstantiationDependent())
1499       E->setInstantiationDependent(true);
1500 
1501     E->HasQualifierOrFoundDecl = true;
1502 
1503     MemberExprNameQualifier *NQ =
1504         E->getTrailingObjects<MemberExprNameQualifier>();
1505     NQ->QualifierLoc = QualifierLoc;
1506     NQ->FoundDecl = founddecl;
1507   }
1508 
1509   E->HasTemplateKWAndArgsInfo = (targs || TemplateKWLoc.isValid());
1510 
1511   if (targs) {
1512     bool Dependent = false;
1513     bool InstantiationDependent = false;
1514     bool ContainsUnexpandedParameterPack = false;
1515     E->getTrailingObjects<ASTTemplateKWAndArgsInfo>()->initializeFrom(
1516         TemplateKWLoc, *targs, E->getTrailingObjects<TemplateArgumentLoc>(),
1517         Dependent, InstantiationDependent, ContainsUnexpandedParameterPack);
1518     if (InstantiationDependent)
1519       E->setInstantiationDependent(true);
1520   } else if (TemplateKWLoc.isValid()) {
1521     E->getTrailingObjects<ASTTemplateKWAndArgsInfo>()->initializeFrom(
1522         TemplateKWLoc);
1523   }
1524 
1525   return E;
1526 }
1527 
1528 SourceLocation MemberExpr::getLocStart() const {
1529   if (isImplicitAccess()) {
1530     if (hasQualifier())
1531       return getQualifierLoc().getBeginLoc();
1532     return MemberLoc;
1533   }
1534 
1535   // FIXME: We don't want this to happen. Rather, we should be able to
1536   // detect all kinds of implicit accesses more cleanly.
1537   SourceLocation BaseStartLoc = getBase()->getLocStart();
1538   if (BaseStartLoc.isValid())
1539     return BaseStartLoc;
1540   return MemberLoc;
1541 }
1542 SourceLocation MemberExpr::getLocEnd() const {
1543   SourceLocation EndLoc = getMemberNameInfo().getEndLoc();
1544   if (hasExplicitTemplateArgs())
1545     EndLoc = getRAngleLoc();
1546   else if (EndLoc.isInvalid())
1547     EndLoc = getBase()->getLocEnd();
1548   return EndLoc;
1549 }
1550 
1551 bool CastExpr::CastConsistency() const {
1552   switch (getCastKind()) {
1553   case CK_DerivedToBase:
1554   case CK_UncheckedDerivedToBase:
1555   case CK_DerivedToBaseMemberPointer:
1556   case CK_BaseToDerived:
1557   case CK_BaseToDerivedMemberPointer:
1558     assert(!path_empty() && "Cast kind should have a base path!");
1559     break;
1560 
1561   case CK_CPointerToObjCPointerCast:
1562     assert(getType()->isObjCObjectPointerType());
1563     assert(getSubExpr()->getType()->isPointerType());
1564     goto CheckNoBasePath;
1565 
1566   case CK_BlockPointerToObjCPointerCast:
1567     assert(getType()->isObjCObjectPointerType());
1568     assert(getSubExpr()->getType()->isBlockPointerType());
1569     goto CheckNoBasePath;
1570 
1571   case CK_ReinterpretMemberPointer:
1572     assert(getType()->isMemberPointerType());
1573     assert(getSubExpr()->getType()->isMemberPointerType());
1574     goto CheckNoBasePath;
1575 
1576   case CK_BitCast:
1577     // Arbitrary casts to C pointer types count as bitcasts.
1578     // Otherwise, we should only have block and ObjC pointer casts
1579     // here if they stay within the type kind.
1580     if (!getType()->isPointerType()) {
1581       assert(getType()->isObjCObjectPointerType() ==
1582              getSubExpr()->getType()->isObjCObjectPointerType());
1583       assert(getType()->isBlockPointerType() ==
1584              getSubExpr()->getType()->isBlockPointerType());
1585     }
1586     goto CheckNoBasePath;
1587 
1588   case CK_AnyPointerToBlockPointerCast:
1589     assert(getType()->isBlockPointerType());
1590     assert(getSubExpr()->getType()->isAnyPointerType() &&
1591            !getSubExpr()->getType()->isBlockPointerType());
1592     goto CheckNoBasePath;
1593 
1594   case CK_CopyAndAutoreleaseBlockObject:
1595     assert(getType()->isBlockPointerType());
1596     assert(getSubExpr()->getType()->isBlockPointerType());
1597     goto CheckNoBasePath;
1598 
1599   case CK_FunctionToPointerDecay:
1600     assert(getType()->isPointerType());
1601     assert(getSubExpr()->getType()->isFunctionType());
1602     goto CheckNoBasePath;
1603 
1604   case CK_AddressSpaceConversion:
1605     assert(getType()->isPointerType() || getType()->isBlockPointerType());
1606     assert(getSubExpr()->getType()->isPointerType() ||
1607            getSubExpr()->getType()->isBlockPointerType());
1608     assert(getType()->getPointeeType().getAddressSpace() !=
1609            getSubExpr()->getType()->getPointeeType().getAddressSpace());
1610     LLVM_FALLTHROUGH;
1611   // These should not have an inheritance path.
1612   case CK_Dynamic:
1613   case CK_ToUnion:
1614   case CK_ArrayToPointerDecay:
1615   case CK_NullToMemberPointer:
1616   case CK_NullToPointer:
1617   case CK_ConstructorConversion:
1618   case CK_IntegralToPointer:
1619   case CK_PointerToIntegral:
1620   case CK_ToVoid:
1621   case CK_VectorSplat:
1622   case CK_IntegralCast:
1623   case CK_BooleanToSignedIntegral:
1624   case CK_IntegralToFloating:
1625   case CK_FloatingToIntegral:
1626   case CK_FloatingCast:
1627   case CK_ObjCObjectLValueCast:
1628   case CK_FloatingRealToComplex:
1629   case CK_FloatingComplexToReal:
1630   case CK_FloatingComplexCast:
1631   case CK_FloatingComplexToIntegralComplex:
1632   case CK_IntegralRealToComplex:
1633   case CK_IntegralComplexToReal:
1634   case CK_IntegralComplexCast:
1635   case CK_IntegralComplexToFloatingComplex:
1636   case CK_ARCProduceObject:
1637   case CK_ARCConsumeObject:
1638   case CK_ARCReclaimReturnedObject:
1639   case CK_ARCExtendBlockObject:
1640   case CK_ZeroToOCLEvent:
1641   case CK_ZeroToOCLQueue:
1642   case CK_IntToOCLSampler:
1643     assert(!getType()->isBooleanType() && "unheralded conversion to bool");
1644     goto CheckNoBasePath;
1645 
1646   case CK_Dependent:
1647   case CK_LValueToRValue:
1648   case CK_NoOp:
1649   case CK_AtomicToNonAtomic:
1650   case CK_NonAtomicToAtomic:
1651   case CK_PointerToBoolean:
1652   case CK_IntegralToBoolean:
1653   case CK_FloatingToBoolean:
1654   case CK_MemberPointerToBoolean:
1655   case CK_FloatingComplexToBoolean:
1656   case CK_IntegralComplexToBoolean:
1657   case CK_LValueBitCast:            // -> bool&
1658   case CK_UserDefinedConversion:    // operator bool()
1659   case CK_BuiltinFnToFnPtr:
1660   CheckNoBasePath:
1661     assert(path_empty() && "Cast kind should not have a base path!");
1662     break;
1663   }
1664   return true;
1665 }
1666 
1667 const char *CastExpr::getCastKindName(CastKind CK) {
1668   switch (CK) {
1669 #define CAST_OPERATION(Name) case CK_##Name: return #Name;
1670 #include "clang/AST/OperationKinds.def"
1671   }
1672   llvm_unreachable("Unhandled cast kind!");
1673 }
1674 
1675 namespace {
1676   const Expr *skipImplicitTemporary(const Expr *E) {
1677     // Skip through reference binding to temporary.
1678     if (auto *Materialize = dyn_cast<MaterializeTemporaryExpr>(E))
1679       E = Materialize->GetTemporaryExpr();
1680 
1681     // Skip any temporary bindings; they're implicit.
1682     if (auto *Binder = dyn_cast<CXXBindTemporaryExpr>(E))
1683       E = Binder->getSubExpr();
1684 
1685     return E;
1686   }
1687 }
1688 
1689 Expr *CastExpr::getSubExprAsWritten() {
1690   const Expr *SubExpr = nullptr;
1691   const CastExpr *E = this;
1692   do {
1693     SubExpr = skipImplicitTemporary(E->getSubExpr());
1694 
1695     // Conversions by constructor and conversion functions have a
1696     // subexpression describing the call; strip it off.
1697     if (E->getCastKind() == CK_ConstructorConversion)
1698       SubExpr =
1699         skipImplicitTemporary(cast<CXXConstructExpr>(SubExpr)->getArg(0));
1700     else if (E->getCastKind() == CK_UserDefinedConversion) {
1701       assert((isa<CXXMemberCallExpr>(SubExpr) ||
1702               isa<BlockExpr>(SubExpr)) &&
1703              "Unexpected SubExpr for CK_UserDefinedConversion.");
1704       if (auto *MCE = dyn_cast<CXXMemberCallExpr>(SubExpr))
1705         SubExpr = MCE->getImplicitObjectArgument();
1706     }
1707 
1708     // If the subexpression we're left with is an implicit cast, look
1709     // through that, too.
1710   } while ((E = dyn_cast<ImplicitCastExpr>(SubExpr)));
1711 
1712   return const_cast<Expr*>(SubExpr);
1713 }
1714 
1715 NamedDecl *CastExpr::getConversionFunction() const {
1716   const Expr *SubExpr = nullptr;
1717 
1718   for (const CastExpr *E = this; E; E = dyn_cast<ImplicitCastExpr>(SubExpr)) {
1719     SubExpr = skipImplicitTemporary(E->getSubExpr());
1720 
1721     if (E->getCastKind() == CK_ConstructorConversion)
1722       return cast<CXXConstructExpr>(SubExpr)->getConstructor();
1723 
1724     if (E->getCastKind() == CK_UserDefinedConversion) {
1725       if (auto *MCE = dyn_cast<CXXMemberCallExpr>(SubExpr))
1726         return MCE->getMethodDecl();
1727     }
1728   }
1729 
1730   return nullptr;
1731 }
1732 
1733 CXXBaseSpecifier **CastExpr::path_buffer() {
1734   switch (getStmtClass()) {
1735 #define ABSTRACT_STMT(x)
1736 #define CASTEXPR(Type, Base)                                                   \
1737   case Stmt::Type##Class:                                                      \
1738     return static_cast<Type *>(this)->getTrailingObjects<CXXBaseSpecifier *>();
1739 #define STMT(Type, Base)
1740 #include "clang/AST/StmtNodes.inc"
1741   default:
1742     llvm_unreachable("non-cast expressions not possible here");
1743   }
1744 }
1745 
1746 const FieldDecl *CastExpr::getTargetFieldForToUnionCast(QualType unionType,
1747                                                         QualType opType) {
1748   auto RD = unionType->castAs<RecordType>()->getDecl();
1749   return getTargetFieldForToUnionCast(RD, opType);
1750 }
1751 
1752 const FieldDecl *CastExpr::getTargetFieldForToUnionCast(const RecordDecl *RD,
1753                                                         QualType OpType) {
1754   auto &Ctx = RD->getASTContext();
1755   RecordDecl::field_iterator Field, FieldEnd;
1756   for (Field = RD->field_begin(), FieldEnd = RD->field_end();
1757        Field != FieldEnd; ++Field) {
1758     if (Ctx.hasSameUnqualifiedType(Field->getType(), OpType) &&
1759         !Field->isUnnamedBitfield()) {
1760       return *Field;
1761     }
1762   }
1763   return nullptr;
1764 }
1765 
1766 ImplicitCastExpr *ImplicitCastExpr::Create(const ASTContext &C, QualType T,
1767                                            CastKind Kind, Expr *Operand,
1768                                            const CXXCastPath *BasePath,
1769                                            ExprValueKind VK) {
1770   unsigned PathSize = (BasePath ? BasePath->size() : 0);
1771   void *Buffer = C.Allocate(totalSizeToAlloc<CXXBaseSpecifier *>(PathSize));
1772   ImplicitCastExpr *E =
1773     new (Buffer) ImplicitCastExpr(T, Kind, Operand, PathSize, VK);
1774   if (PathSize)
1775     std::uninitialized_copy_n(BasePath->data(), BasePath->size(),
1776                               E->getTrailingObjects<CXXBaseSpecifier *>());
1777   return E;
1778 }
1779 
1780 ImplicitCastExpr *ImplicitCastExpr::CreateEmpty(const ASTContext &C,
1781                                                 unsigned PathSize) {
1782   void *Buffer = C.Allocate(totalSizeToAlloc<CXXBaseSpecifier *>(PathSize));
1783   return new (Buffer) ImplicitCastExpr(EmptyShell(), PathSize);
1784 }
1785 
1786 
1787 CStyleCastExpr *CStyleCastExpr::Create(const ASTContext &C, QualType T,
1788                                        ExprValueKind VK, CastKind K, Expr *Op,
1789                                        const CXXCastPath *BasePath,
1790                                        TypeSourceInfo *WrittenTy,
1791                                        SourceLocation L, SourceLocation R) {
1792   unsigned PathSize = (BasePath ? BasePath->size() : 0);
1793   void *Buffer = C.Allocate(totalSizeToAlloc<CXXBaseSpecifier *>(PathSize));
1794   CStyleCastExpr *E =
1795     new (Buffer) CStyleCastExpr(T, VK, K, Op, PathSize, WrittenTy, L, R);
1796   if (PathSize)
1797     std::uninitialized_copy_n(BasePath->data(), BasePath->size(),
1798                               E->getTrailingObjects<CXXBaseSpecifier *>());
1799   return E;
1800 }
1801 
1802 CStyleCastExpr *CStyleCastExpr::CreateEmpty(const ASTContext &C,
1803                                             unsigned PathSize) {
1804   void *Buffer = C.Allocate(totalSizeToAlloc<CXXBaseSpecifier *>(PathSize));
1805   return new (Buffer) CStyleCastExpr(EmptyShell(), PathSize);
1806 }
1807 
1808 /// getOpcodeStr - Turn an Opcode enum value into the punctuation char it
1809 /// corresponds to, e.g. "<<=".
1810 StringRef BinaryOperator::getOpcodeStr(Opcode Op) {
1811   switch (Op) {
1812 #define BINARY_OPERATION(Name, Spelling) case BO_##Name: return Spelling;
1813 #include "clang/AST/OperationKinds.def"
1814   }
1815   llvm_unreachable("Invalid OpCode!");
1816 }
1817 
1818 BinaryOperatorKind
1819 BinaryOperator::getOverloadedOpcode(OverloadedOperatorKind OO) {
1820   switch (OO) {
1821   default: llvm_unreachable("Not an overloadable binary operator");
1822   case OO_Plus: return BO_Add;
1823   case OO_Minus: return BO_Sub;
1824   case OO_Star: return BO_Mul;
1825   case OO_Slash: return BO_Div;
1826   case OO_Percent: return BO_Rem;
1827   case OO_Caret: return BO_Xor;
1828   case OO_Amp: return BO_And;
1829   case OO_Pipe: return BO_Or;
1830   case OO_Equal: return BO_Assign;
1831   case OO_Spaceship: return BO_Cmp;
1832   case OO_Less: return BO_LT;
1833   case OO_Greater: return BO_GT;
1834   case OO_PlusEqual: return BO_AddAssign;
1835   case OO_MinusEqual: return BO_SubAssign;
1836   case OO_StarEqual: return BO_MulAssign;
1837   case OO_SlashEqual: return BO_DivAssign;
1838   case OO_PercentEqual: return BO_RemAssign;
1839   case OO_CaretEqual: return BO_XorAssign;
1840   case OO_AmpEqual: return BO_AndAssign;
1841   case OO_PipeEqual: return BO_OrAssign;
1842   case OO_LessLess: return BO_Shl;
1843   case OO_GreaterGreater: return BO_Shr;
1844   case OO_LessLessEqual: return BO_ShlAssign;
1845   case OO_GreaterGreaterEqual: return BO_ShrAssign;
1846   case OO_EqualEqual: return BO_EQ;
1847   case OO_ExclaimEqual: return BO_NE;
1848   case OO_LessEqual: return BO_LE;
1849   case OO_GreaterEqual: return BO_GE;
1850   case OO_AmpAmp: return BO_LAnd;
1851   case OO_PipePipe: return BO_LOr;
1852   case OO_Comma: return BO_Comma;
1853   case OO_ArrowStar: return BO_PtrMemI;
1854   }
1855 }
1856 
1857 OverloadedOperatorKind BinaryOperator::getOverloadedOperator(Opcode Opc) {
1858   static const OverloadedOperatorKind OverOps[] = {
1859     /* .* Cannot be overloaded */OO_None, OO_ArrowStar,
1860     OO_Star, OO_Slash, OO_Percent,
1861     OO_Plus, OO_Minus,
1862     OO_LessLess, OO_GreaterGreater,
1863     OO_Spaceship,
1864     OO_Less, OO_Greater, OO_LessEqual, OO_GreaterEqual,
1865     OO_EqualEqual, OO_ExclaimEqual,
1866     OO_Amp,
1867     OO_Caret,
1868     OO_Pipe,
1869     OO_AmpAmp,
1870     OO_PipePipe,
1871     OO_Equal, OO_StarEqual,
1872     OO_SlashEqual, OO_PercentEqual,
1873     OO_PlusEqual, OO_MinusEqual,
1874     OO_LessLessEqual, OO_GreaterGreaterEqual,
1875     OO_AmpEqual, OO_CaretEqual,
1876     OO_PipeEqual,
1877     OO_Comma
1878   };
1879   return OverOps[Opc];
1880 }
1881 
1882 bool BinaryOperator::isNullPointerArithmeticExtension(ASTContext &Ctx,
1883                                                       Opcode Opc,
1884                                                       Expr *LHS, Expr *RHS) {
1885   if (Opc != BO_Add)
1886     return false;
1887 
1888   // Check that we have one pointer and one integer operand.
1889   Expr *PExp;
1890   if (LHS->getType()->isPointerType()) {
1891     if (!RHS->getType()->isIntegerType())
1892       return false;
1893     PExp = LHS;
1894   } else if (RHS->getType()->isPointerType()) {
1895     if (!LHS->getType()->isIntegerType())
1896       return false;
1897     PExp = RHS;
1898   } else {
1899     return false;
1900   }
1901 
1902   // Check that the pointer is a nullptr.
1903   if (!PExp->IgnoreParenCasts()
1904           ->isNullPointerConstant(Ctx, Expr::NPC_ValueDependentIsNotNull))
1905     return false;
1906 
1907   // Check that the pointee type is char-sized.
1908   const PointerType *PTy = PExp->getType()->getAs<PointerType>();
1909   if (!PTy || !PTy->getPointeeType()->isCharType())
1910     return false;
1911 
1912   return true;
1913 }
1914 InitListExpr::InitListExpr(const ASTContext &C, SourceLocation lbraceloc,
1915                            ArrayRef<Expr*> initExprs, SourceLocation rbraceloc)
1916   : Expr(InitListExprClass, QualType(), VK_RValue, OK_Ordinary, false, false,
1917          false, false),
1918     InitExprs(C, initExprs.size()),
1919     LBraceLoc(lbraceloc), RBraceLoc(rbraceloc), AltForm(nullptr, true)
1920 {
1921   sawArrayRangeDesignator(false);
1922   for (unsigned I = 0; I != initExprs.size(); ++I) {
1923     if (initExprs[I]->isTypeDependent())
1924       ExprBits.TypeDependent = true;
1925     if (initExprs[I]->isValueDependent())
1926       ExprBits.ValueDependent = true;
1927     if (initExprs[I]->isInstantiationDependent())
1928       ExprBits.InstantiationDependent = true;
1929     if (initExprs[I]->containsUnexpandedParameterPack())
1930       ExprBits.ContainsUnexpandedParameterPack = true;
1931   }
1932 
1933   InitExprs.insert(C, InitExprs.end(), initExprs.begin(), initExprs.end());
1934 }
1935 
1936 void InitListExpr::reserveInits(const ASTContext &C, unsigned NumInits) {
1937   if (NumInits > InitExprs.size())
1938     InitExprs.reserve(C, NumInits);
1939 }
1940 
1941 void InitListExpr::resizeInits(const ASTContext &C, unsigned NumInits) {
1942   InitExprs.resize(C, NumInits, nullptr);
1943 }
1944 
1945 Expr *InitListExpr::updateInit(const ASTContext &C, unsigned Init, Expr *expr) {
1946   if (Init >= InitExprs.size()) {
1947     InitExprs.insert(C, InitExprs.end(), Init - InitExprs.size() + 1, nullptr);
1948     setInit(Init, expr);
1949     return nullptr;
1950   }
1951 
1952   Expr *Result = cast_or_null<Expr>(InitExprs[Init]);
1953   setInit(Init, expr);
1954   return Result;
1955 }
1956 
1957 void InitListExpr::setArrayFiller(Expr *filler) {
1958   assert(!hasArrayFiller() && "Filler already set!");
1959   ArrayFillerOrUnionFieldInit = filler;
1960   // Fill out any "holes" in the array due to designated initializers.
1961   Expr **inits = getInits();
1962   for (unsigned i = 0, e = getNumInits(); i != e; ++i)
1963     if (inits[i] == nullptr)
1964       inits[i] = filler;
1965 }
1966 
1967 bool InitListExpr::isStringLiteralInit() const {
1968   if (getNumInits() != 1)
1969     return false;
1970   const ArrayType *AT = getType()->getAsArrayTypeUnsafe();
1971   if (!AT || !AT->getElementType()->isIntegerType())
1972     return false;
1973   // It is possible for getInit() to return null.
1974   const Expr *Init = getInit(0);
1975   if (!Init)
1976     return false;
1977   Init = Init->IgnoreParens();
1978   return isa<StringLiteral>(Init) || isa<ObjCEncodeExpr>(Init);
1979 }
1980 
1981 bool InitListExpr::isTransparent() const {
1982   assert(isSemanticForm() && "syntactic form never semantically transparent");
1983 
1984   // A glvalue InitListExpr is always just sugar.
1985   if (isGLValue()) {
1986     assert(getNumInits() == 1 && "multiple inits in glvalue init list");
1987     return true;
1988   }
1989 
1990   // Otherwise, we're sugar if and only if we have exactly one initializer that
1991   // is of the same type.
1992   if (getNumInits() != 1 || !getInit(0))
1993     return false;
1994 
1995   // Don't confuse aggregate initialization of a struct X { X &x; }; with a
1996   // transparent struct copy.
1997   if (!getInit(0)->isRValue() && getType()->isRecordType())
1998     return false;
1999 
2000   return getType().getCanonicalType() ==
2001          getInit(0)->getType().getCanonicalType();
2002 }
2003 
2004 bool InitListExpr::isIdiomaticZeroInitializer(const LangOptions &LangOpts) const {
2005   assert(isSyntacticForm() && "only test syntactic form as zero initializer");
2006 
2007   if (LangOpts.CPlusPlus || getNumInits() != 1) {
2008     return false;
2009   }
2010 
2011   const IntegerLiteral *Lit = dyn_cast<IntegerLiteral>(getInit(0));
2012   return Lit && Lit->getValue() == 0;
2013 }
2014 
2015 SourceLocation InitListExpr::getLocStart() const {
2016   if (InitListExpr *SyntacticForm = getSyntacticForm())
2017     return SyntacticForm->getLocStart();
2018   SourceLocation Beg = LBraceLoc;
2019   if (Beg.isInvalid()) {
2020     // Find the first non-null initializer.
2021     for (InitExprsTy::const_iterator I = InitExprs.begin(),
2022                                      E = InitExprs.end();
2023       I != E; ++I) {
2024       if (Stmt *S = *I) {
2025         Beg = S->getLocStart();
2026         break;
2027       }
2028     }
2029   }
2030   return Beg;
2031 }
2032 
2033 SourceLocation InitListExpr::getLocEnd() const {
2034   if (InitListExpr *SyntacticForm = getSyntacticForm())
2035     return SyntacticForm->getLocEnd();
2036   SourceLocation End = RBraceLoc;
2037   if (End.isInvalid()) {
2038     // Find the first non-null initializer from the end.
2039     for (InitExprsTy::const_reverse_iterator I = InitExprs.rbegin(),
2040          E = InitExprs.rend();
2041          I != E; ++I) {
2042       if (Stmt *S = *I) {
2043         End = S->getLocEnd();
2044         break;
2045       }
2046     }
2047   }
2048   return End;
2049 }
2050 
2051 /// getFunctionType - Return the underlying function type for this block.
2052 ///
2053 const FunctionProtoType *BlockExpr::getFunctionType() const {
2054   // The block pointer is never sugared, but the function type might be.
2055   return cast<BlockPointerType>(getType())
2056            ->getPointeeType()->castAs<FunctionProtoType>();
2057 }
2058 
2059 SourceLocation BlockExpr::getCaretLocation() const {
2060   return TheBlock->getCaretLocation();
2061 }
2062 const Stmt *BlockExpr::getBody() const {
2063   return TheBlock->getBody();
2064 }
2065 Stmt *BlockExpr::getBody() {
2066   return TheBlock->getBody();
2067 }
2068 
2069 
2070 //===----------------------------------------------------------------------===//
2071 // Generic Expression Routines
2072 //===----------------------------------------------------------------------===//
2073 
2074 /// isUnusedResultAWarning - Return true if this immediate expression should
2075 /// be warned about if the result is unused.  If so, fill in Loc and Ranges
2076 /// with location to warn on and the source range[s] to report with the
2077 /// warning.
2078 bool Expr::isUnusedResultAWarning(const Expr *&WarnE, SourceLocation &Loc,
2079                                   SourceRange &R1, SourceRange &R2,
2080                                   ASTContext &Ctx) const {
2081   // Don't warn if the expr is type dependent. The type could end up
2082   // instantiating to void.
2083   if (isTypeDependent())
2084     return false;
2085 
2086   switch (getStmtClass()) {
2087   default:
2088     if (getType()->isVoidType())
2089       return false;
2090     WarnE = this;
2091     Loc = getExprLoc();
2092     R1 = getSourceRange();
2093     return true;
2094   case ParenExprClass:
2095     return cast<ParenExpr>(this)->getSubExpr()->
2096       isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2097   case GenericSelectionExprClass:
2098     return cast<GenericSelectionExpr>(this)->getResultExpr()->
2099       isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2100   case CoawaitExprClass:
2101   case CoyieldExprClass:
2102     return cast<CoroutineSuspendExpr>(this)->getResumeExpr()->
2103       isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2104   case ChooseExprClass:
2105     return cast<ChooseExpr>(this)->getChosenSubExpr()->
2106       isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2107   case UnaryOperatorClass: {
2108     const UnaryOperator *UO = cast<UnaryOperator>(this);
2109 
2110     switch (UO->getOpcode()) {
2111     case UO_Plus:
2112     case UO_Minus:
2113     case UO_AddrOf:
2114     case UO_Not:
2115     case UO_LNot:
2116     case UO_Deref:
2117       break;
2118     case UO_Coawait:
2119       // This is just the 'operator co_await' call inside the guts of a
2120       // dependent co_await call.
2121     case UO_PostInc:
2122     case UO_PostDec:
2123     case UO_PreInc:
2124     case UO_PreDec:                 // ++/--
2125       return false;  // Not a warning.
2126     case UO_Real:
2127     case UO_Imag:
2128       // accessing a piece of a volatile complex is a side-effect.
2129       if (Ctx.getCanonicalType(UO->getSubExpr()->getType())
2130           .isVolatileQualified())
2131         return false;
2132       break;
2133     case UO_Extension:
2134       return UO->getSubExpr()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2135     }
2136     WarnE = this;
2137     Loc = UO->getOperatorLoc();
2138     R1 = UO->getSubExpr()->getSourceRange();
2139     return true;
2140   }
2141   case BinaryOperatorClass: {
2142     const BinaryOperator *BO = cast<BinaryOperator>(this);
2143     switch (BO->getOpcode()) {
2144       default:
2145         break;
2146       // Consider the RHS of comma for side effects. LHS was checked by
2147       // Sema::CheckCommaOperands.
2148       case BO_Comma:
2149         // ((foo = <blah>), 0) is an idiom for hiding the result (and
2150         // lvalue-ness) of an assignment written in a macro.
2151         if (IntegerLiteral *IE =
2152               dyn_cast<IntegerLiteral>(BO->getRHS()->IgnoreParens()))
2153           if (IE->getValue() == 0)
2154             return false;
2155         return BO->getRHS()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2156       // Consider '||', '&&' to have side effects if the LHS or RHS does.
2157       case BO_LAnd:
2158       case BO_LOr:
2159         if (!BO->getLHS()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx) ||
2160             !BO->getRHS()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx))
2161           return false;
2162         break;
2163     }
2164     if (BO->isAssignmentOp())
2165       return false;
2166     WarnE = this;
2167     Loc = BO->getOperatorLoc();
2168     R1 = BO->getLHS()->getSourceRange();
2169     R2 = BO->getRHS()->getSourceRange();
2170     return true;
2171   }
2172   case CompoundAssignOperatorClass:
2173   case VAArgExprClass:
2174   case AtomicExprClass:
2175     return false;
2176 
2177   case ConditionalOperatorClass: {
2178     // If only one of the LHS or RHS is a warning, the operator might
2179     // be being used for control flow. Only warn if both the LHS and
2180     // RHS are warnings.
2181     const ConditionalOperator *Exp = cast<ConditionalOperator>(this);
2182     if (!Exp->getRHS()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx))
2183       return false;
2184     if (!Exp->getLHS())
2185       return true;
2186     return Exp->getLHS()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2187   }
2188 
2189   case MemberExprClass:
2190     WarnE = this;
2191     Loc = cast<MemberExpr>(this)->getMemberLoc();
2192     R1 = SourceRange(Loc, Loc);
2193     R2 = cast<MemberExpr>(this)->getBase()->getSourceRange();
2194     return true;
2195 
2196   case ArraySubscriptExprClass:
2197     WarnE = this;
2198     Loc = cast<ArraySubscriptExpr>(this)->getRBracketLoc();
2199     R1 = cast<ArraySubscriptExpr>(this)->getLHS()->getSourceRange();
2200     R2 = cast<ArraySubscriptExpr>(this)->getRHS()->getSourceRange();
2201     return true;
2202 
2203   case CXXOperatorCallExprClass: {
2204     // Warn about operator ==,!=,<,>,<=, and >= even when user-defined operator
2205     // overloads as there is no reasonable way to define these such that they
2206     // have non-trivial, desirable side-effects. See the -Wunused-comparison
2207     // warning: operators == and != are commonly typo'ed, and so warning on them
2208     // provides additional value as well. If this list is updated,
2209     // DiagnoseUnusedComparison should be as well.
2210     const CXXOperatorCallExpr *Op = cast<CXXOperatorCallExpr>(this);
2211     switch (Op->getOperator()) {
2212     default:
2213       break;
2214     case OO_EqualEqual:
2215     case OO_ExclaimEqual:
2216     case OO_Less:
2217     case OO_Greater:
2218     case OO_GreaterEqual:
2219     case OO_LessEqual:
2220       if (Op->getCallReturnType(Ctx)->isReferenceType() ||
2221           Op->getCallReturnType(Ctx)->isVoidType())
2222         break;
2223       WarnE = this;
2224       Loc = Op->getOperatorLoc();
2225       R1 = Op->getSourceRange();
2226       return true;
2227     }
2228 
2229     // Fallthrough for generic call handling.
2230     LLVM_FALLTHROUGH;
2231   }
2232   case CallExprClass:
2233   case CXXMemberCallExprClass:
2234   case UserDefinedLiteralClass: {
2235     // If this is a direct call, get the callee.
2236     const CallExpr *CE = cast<CallExpr>(this);
2237     if (const Decl *FD = CE->getCalleeDecl()) {
2238       const FunctionDecl *Func = dyn_cast<FunctionDecl>(FD);
2239       bool HasWarnUnusedResultAttr = Func ? Func->hasUnusedResultAttr()
2240                                           : FD->hasAttr<WarnUnusedResultAttr>();
2241 
2242       // If the callee has attribute pure, const, or warn_unused_result, warn
2243       // about it. void foo() { strlen("bar"); } should warn.
2244       //
2245       // Note: If new cases are added here, DiagnoseUnusedExprResult should be
2246       // updated to match for QoI.
2247       if (HasWarnUnusedResultAttr ||
2248           FD->hasAttr<PureAttr>() || FD->hasAttr<ConstAttr>()) {
2249         WarnE = this;
2250         Loc = CE->getCallee()->getLocStart();
2251         R1 = CE->getCallee()->getSourceRange();
2252 
2253         if (unsigned NumArgs = CE->getNumArgs())
2254           R2 = SourceRange(CE->getArg(0)->getLocStart(),
2255                            CE->getArg(NumArgs-1)->getLocEnd());
2256         return true;
2257       }
2258     }
2259     return false;
2260   }
2261 
2262   // If we don't know precisely what we're looking at, let's not warn.
2263   case UnresolvedLookupExprClass:
2264   case CXXUnresolvedConstructExprClass:
2265     return false;
2266 
2267   case CXXTemporaryObjectExprClass:
2268   case CXXConstructExprClass: {
2269     if (const CXXRecordDecl *Type = getType()->getAsCXXRecordDecl()) {
2270       if (Type->hasAttr<WarnUnusedAttr>()) {
2271         WarnE = this;
2272         Loc = getLocStart();
2273         R1 = getSourceRange();
2274         return true;
2275       }
2276     }
2277     return false;
2278   }
2279 
2280   case ObjCMessageExprClass: {
2281     const ObjCMessageExpr *ME = cast<ObjCMessageExpr>(this);
2282     if (Ctx.getLangOpts().ObjCAutoRefCount &&
2283         ME->isInstanceMessage() &&
2284         !ME->getType()->isVoidType() &&
2285         ME->getMethodFamily() == OMF_init) {
2286       WarnE = this;
2287       Loc = getExprLoc();
2288       R1 = ME->getSourceRange();
2289       return true;
2290     }
2291 
2292     if (const ObjCMethodDecl *MD = ME->getMethodDecl())
2293       if (MD->hasAttr<WarnUnusedResultAttr>()) {
2294         WarnE = this;
2295         Loc = getExprLoc();
2296         return true;
2297       }
2298 
2299     return false;
2300   }
2301 
2302   case ObjCPropertyRefExprClass:
2303     WarnE = this;
2304     Loc = getExprLoc();
2305     R1 = getSourceRange();
2306     return true;
2307 
2308   case PseudoObjectExprClass: {
2309     const PseudoObjectExpr *PO = cast<PseudoObjectExpr>(this);
2310 
2311     // Only complain about things that have the form of a getter.
2312     if (isa<UnaryOperator>(PO->getSyntacticForm()) ||
2313         isa<BinaryOperator>(PO->getSyntacticForm()))
2314       return false;
2315 
2316     WarnE = this;
2317     Loc = getExprLoc();
2318     R1 = getSourceRange();
2319     return true;
2320   }
2321 
2322   case StmtExprClass: {
2323     // Statement exprs don't logically have side effects themselves, but are
2324     // sometimes used in macros in ways that give them a type that is unused.
2325     // For example ({ blah; foo(); }) will end up with a type if foo has a type.
2326     // however, if the result of the stmt expr is dead, we don't want to emit a
2327     // warning.
2328     const CompoundStmt *CS = cast<StmtExpr>(this)->getSubStmt();
2329     if (!CS->body_empty()) {
2330       if (const Expr *E = dyn_cast<Expr>(CS->body_back()))
2331         return E->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2332       if (const LabelStmt *Label = dyn_cast<LabelStmt>(CS->body_back()))
2333         if (const Expr *E = dyn_cast<Expr>(Label->getSubStmt()))
2334           return E->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2335     }
2336 
2337     if (getType()->isVoidType())
2338       return false;
2339     WarnE = this;
2340     Loc = cast<StmtExpr>(this)->getLParenLoc();
2341     R1 = getSourceRange();
2342     return true;
2343   }
2344   case CXXFunctionalCastExprClass:
2345   case CStyleCastExprClass: {
2346     // Ignore an explicit cast to void unless the operand is a non-trivial
2347     // volatile lvalue.
2348     const CastExpr *CE = cast<CastExpr>(this);
2349     if (CE->getCastKind() == CK_ToVoid) {
2350       if (CE->getSubExpr()->isGLValue() &&
2351           CE->getSubExpr()->getType().isVolatileQualified()) {
2352         const DeclRefExpr *DRE =
2353             dyn_cast<DeclRefExpr>(CE->getSubExpr()->IgnoreParens());
2354         if (!(DRE && isa<VarDecl>(DRE->getDecl()) &&
2355               cast<VarDecl>(DRE->getDecl())->hasLocalStorage()) &&
2356             !isa<CallExpr>(CE->getSubExpr()->IgnoreParens())) {
2357           return CE->getSubExpr()->isUnusedResultAWarning(WarnE, Loc,
2358                                                           R1, R2, Ctx);
2359         }
2360       }
2361       return false;
2362     }
2363 
2364     // If this is a cast to a constructor conversion, check the operand.
2365     // Otherwise, the result of the cast is unused.
2366     if (CE->getCastKind() == CK_ConstructorConversion)
2367       return CE->getSubExpr()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2368 
2369     WarnE = this;
2370     if (const CXXFunctionalCastExpr *CXXCE =
2371             dyn_cast<CXXFunctionalCastExpr>(this)) {
2372       Loc = CXXCE->getLocStart();
2373       R1 = CXXCE->getSubExpr()->getSourceRange();
2374     } else {
2375       const CStyleCastExpr *CStyleCE = cast<CStyleCastExpr>(this);
2376       Loc = CStyleCE->getLParenLoc();
2377       R1 = CStyleCE->getSubExpr()->getSourceRange();
2378     }
2379     return true;
2380   }
2381   case ImplicitCastExprClass: {
2382     const CastExpr *ICE = cast<ImplicitCastExpr>(this);
2383 
2384     // lvalue-to-rvalue conversion on a volatile lvalue is a side-effect.
2385     if (ICE->getCastKind() == CK_LValueToRValue &&
2386         ICE->getSubExpr()->getType().isVolatileQualified())
2387       return false;
2388 
2389     return ICE->getSubExpr()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2390   }
2391   case CXXDefaultArgExprClass:
2392     return (cast<CXXDefaultArgExpr>(this)
2393             ->getExpr()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx));
2394   case CXXDefaultInitExprClass:
2395     return (cast<CXXDefaultInitExpr>(this)
2396             ->getExpr()->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx));
2397 
2398   case CXXNewExprClass:
2399     // FIXME: In theory, there might be new expressions that don't have side
2400     // effects (e.g. a placement new with an uninitialized POD).
2401   case CXXDeleteExprClass:
2402     return false;
2403   case MaterializeTemporaryExprClass:
2404     return cast<MaterializeTemporaryExpr>(this)->GetTemporaryExpr()
2405                ->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2406   case CXXBindTemporaryExprClass:
2407     return cast<CXXBindTemporaryExpr>(this)->getSubExpr()
2408                ->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2409   case ExprWithCleanupsClass:
2410     return cast<ExprWithCleanups>(this)->getSubExpr()
2411                ->isUnusedResultAWarning(WarnE, Loc, R1, R2, Ctx);
2412   }
2413 }
2414 
2415 /// isOBJCGCCandidate - Check if an expression is objc gc'able.
2416 /// returns true, if it is; false otherwise.
2417 bool Expr::isOBJCGCCandidate(ASTContext &Ctx) const {
2418   const Expr *E = IgnoreParens();
2419   switch (E->getStmtClass()) {
2420   default:
2421     return false;
2422   case ObjCIvarRefExprClass:
2423     return true;
2424   case Expr::UnaryOperatorClass:
2425     return cast<UnaryOperator>(E)->getSubExpr()->isOBJCGCCandidate(Ctx);
2426   case ImplicitCastExprClass:
2427     return cast<ImplicitCastExpr>(E)->getSubExpr()->isOBJCGCCandidate(Ctx);
2428   case MaterializeTemporaryExprClass:
2429     return cast<MaterializeTemporaryExpr>(E)->GetTemporaryExpr()
2430                                                       ->isOBJCGCCandidate(Ctx);
2431   case CStyleCastExprClass:
2432     return cast<CStyleCastExpr>(E)->getSubExpr()->isOBJCGCCandidate(Ctx);
2433   case DeclRefExprClass: {
2434     const Decl *D = cast<DeclRefExpr>(E)->getDecl();
2435 
2436     if (const VarDecl *VD = dyn_cast<VarDecl>(D)) {
2437       if (VD->hasGlobalStorage())
2438         return true;
2439       QualType T = VD->getType();
2440       // dereferencing to a  pointer is always a gc'able candidate,
2441       // unless it is __weak.
2442       return T->isPointerType() &&
2443              (Ctx.getObjCGCAttrKind(T) != Qualifiers::Weak);
2444     }
2445     return false;
2446   }
2447   case MemberExprClass: {
2448     const MemberExpr *M = cast<MemberExpr>(E);
2449     return M->getBase()->isOBJCGCCandidate(Ctx);
2450   }
2451   case ArraySubscriptExprClass:
2452     return cast<ArraySubscriptExpr>(E)->getBase()->isOBJCGCCandidate(Ctx);
2453   }
2454 }
2455 
2456 bool Expr::isBoundMemberFunction(ASTContext &Ctx) const {
2457   if (isTypeDependent())
2458     return false;
2459   return ClassifyLValue(Ctx) == Expr::LV_MemberFunction;
2460 }
2461 
2462 QualType Expr::findBoundMemberType(const Expr *expr) {
2463   assert(expr->hasPlaceholderType(BuiltinType::BoundMember));
2464 
2465   // Bound member expressions are always one of these possibilities:
2466   //   x->m      x.m      x->*y      x.*y
2467   // (possibly parenthesized)
2468 
2469   expr = expr->IgnoreParens();
2470   if (const MemberExpr *mem = dyn_cast<MemberExpr>(expr)) {
2471     assert(isa<CXXMethodDecl>(mem->getMemberDecl()));
2472     return mem->getMemberDecl()->getType();
2473   }
2474 
2475   if (const BinaryOperator *op = dyn_cast<BinaryOperator>(expr)) {
2476     QualType type = op->getRHS()->getType()->castAs<MemberPointerType>()
2477                       ->getPointeeType();
2478     assert(type->isFunctionType());
2479     return type;
2480   }
2481 
2482   assert(isa<UnresolvedMemberExpr>(expr) || isa<CXXPseudoDestructorExpr>(expr));
2483   return QualType();
2484 }
2485 
2486 Expr* Expr::IgnoreParens() {
2487   Expr* E = this;
2488   while (true) {
2489     if (ParenExpr* P = dyn_cast<ParenExpr>(E)) {
2490       E = P->getSubExpr();
2491       continue;
2492     }
2493     if (UnaryOperator* P = dyn_cast<UnaryOperator>(E)) {
2494       if (P->getOpcode() == UO_Extension) {
2495         E = P->getSubExpr();
2496         continue;
2497       }
2498     }
2499     if (GenericSelectionExpr* P = dyn_cast<GenericSelectionExpr>(E)) {
2500       if (!P->isResultDependent()) {
2501         E = P->getResultExpr();
2502         continue;
2503       }
2504     }
2505     if (ChooseExpr* P = dyn_cast<ChooseExpr>(E)) {
2506       if (!P->isConditionDependent()) {
2507         E = P->getChosenSubExpr();
2508         continue;
2509       }
2510     }
2511     return E;
2512   }
2513 }
2514 
2515 /// IgnoreParenCasts - Ignore parentheses and casts.  Strip off any ParenExpr
2516 /// or CastExprs or ImplicitCastExprs, returning their operand.
2517 Expr *Expr::IgnoreParenCasts() {
2518   Expr *E = this;
2519   while (true) {
2520     E = E->IgnoreParens();
2521     if (CastExpr *P = dyn_cast<CastExpr>(E)) {
2522       E = P->getSubExpr();
2523       continue;
2524     }
2525     if (MaterializeTemporaryExpr *Materialize
2526                                       = dyn_cast<MaterializeTemporaryExpr>(E)) {
2527       E = Materialize->GetTemporaryExpr();
2528       continue;
2529     }
2530     if (SubstNonTypeTemplateParmExpr *NTTP
2531                                   = dyn_cast<SubstNonTypeTemplateParmExpr>(E)) {
2532       E = NTTP->getReplacement();
2533       continue;
2534     }
2535     return E;
2536   }
2537 }
2538 
2539 Expr *Expr::IgnoreCasts() {
2540   Expr *E = this;
2541   while (true) {
2542     if (CastExpr *P = dyn_cast<CastExpr>(E)) {
2543       E = P->getSubExpr();
2544       continue;
2545     }
2546     if (MaterializeTemporaryExpr *Materialize
2547         = dyn_cast<MaterializeTemporaryExpr>(E)) {
2548       E = Materialize->GetTemporaryExpr();
2549       continue;
2550     }
2551     if (SubstNonTypeTemplateParmExpr *NTTP
2552         = dyn_cast<SubstNonTypeTemplateParmExpr>(E)) {
2553       E = NTTP->getReplacement();
2554       continue;
2555     }
2556     return E;
2557   }
2558 }
2559 
2560 /// IgnoreParenLValueCasts - Ignore parentheses and lvalue-to-rvalue
2561 /// casts.  This is intended purely as a temporary workaround for code
2562 /// that hasn't yet been rewritten to do the right thing about those
2563 /// casts, and may disappear along with the last internal use.
2564 Expr *Expr::IgnoreParenLValueCasts() {
2565   Expr *E = this;
2566   while (true) {
2567     E = E->IgnoreParens();
2568     if (CastExpr *P = dyn_cast<CastExpr>(E)) {
2569       if (P->getCastKind() == CK_LValueToRValue) {
2570         E = P->getSubExpr();
2571         continue;
2572       }
2573     } else if (MaterializeTemporaryExpr *Materialize
2574                                       = dyn_cast<MaterializeTemporaryExpr>(E)) {
2575       E = Materialize->GetTemporaryExpr();
2576       continue;
2577     } else if (SubstNonTypeTemplateParmExpr *NTTP
2578                                   = dyn_cast<SubstNonTypeTemplateParmExpr>(E)) {
2579       E = NTTP->getReplacement();
2580       continue;
2581     }
2582     break;
2583   }
2584   return E;
2585 }
2586 
2587 Expr *Expr::ignoreParenBaseCasts() {
2588   Expr *E = this;
2589   while (true) {
2590     E = E->IgnoreParens();
2591     if (CastExpr *CE = dyn_cast<CastExpr>(E)) {
2592       if (CE->getCastKind() == CK_DerivedToBase ||
2593           CE->getCastKind() == CK_UncheckedDerivedToBase ||
2594           CE->getCastKind() == CK_NoOp) {
2595         E = CE->getSubExpr();
2596         continue;
2597       }
2598     }
2599 
2600     return E;
2601   }
2602 }
2603 
2604 Expr *Expr::IgnoreParenImpCasts() {
2605   Expr *E = this;
2606   while (true) {
2607     E = E->IgnoreParens();
2608     if (ImplicitCastExpr *P = dyn_cast<ImplicitCastExpr>(E)) {
2609       E = P->getSubExpr();
2610       continue;
2611     }
2612     if (MaterializeTemporaryExpr *Materialize
2613                                       = dyn_cast<MaterializeTemporaryExpr>(E)) {
2614       E = Materialize->GetTemporaryExpr();
2615       continue;
2616     }
2617     if (SubstNonTypeTemplateParmExpr *NTTP
2618                                   = dyn_cast<SubstNonTypeTemplateParmExpr>(E)) {
2619       E = NTTP->getReplacement();
2620       continue;
2621     }
2622     return E;
2623   }
2624 }
2625 
2626 Expr *Expr::IgnoreConversionOperator() {
2627   if (CXXMemberCallExpr *MCE = dyn_cast<CXXMemberCallExpr>(this)) {
2628     if (MCE->getMethodDecl() && isa<CXXConversionDecl>(MCE->getMethodDecl()))
2629       return MCE->getImplicitObjectArgument();
2630   }
2631   return this;
2632 }
2633 
2634 /// IgnoreParenNoopCasts - Ignore parentheses and casts that do not change the
2635 /// value (including ptr->int casts of the same size).  Strip off any
2636 /// ParenExpr or CastExprs, returning their operand.
2637 Expr *Expr::IgnoreParenNoopCasts(ASTContext &Ctx) {
2638   Expr *E = this;
2639   while (true) {
2640     E = E->IgnoreParens();
2641 
2642     if (CastExpr *P = dyn_cast<CastExpr>(E)) {
2643       // We ignore integer <-> casts that are of the same width, ptr<->ptr and
2644       // ptr<->int casts of the same width.  We also ignore all identity casts.
2645       Expr *SE = P->getSubExpr();
2646 
2647       if (Ctx.hasSameUnqualifiedType(E->getType(), SE->getType())) {
2648         E = SE;
2649         continue;
2650       }
2651 
2652       if ((E->getType()->isPointerType() ||
2653            E->getType()->isIntegralType(Ctx)) &&
2654           (SE->getType()->isPointerType() ||
2655            SE->getType()->isIntegralType(Ctx)) &&
2656           Ctx.getTypeSize(E->getType()) == Ctx.getTypeSize(SE->getType())) {
2657         E = SE;
2658         continue;
2659       }
2660     }
2661 
2662     if (SubstNonTypeTemplateParmExpr *NTTP
2663                                   = dyn_cast<SubstNonTypeTemplateParmExpr>(E)) {
2664       E = NTTP->getReplacement();
2665       continue;
2666     }
2667 
2668     return E;
2669   }
2670 }
2671 
2672 bool Expr::isDefaultArgument() const {
2673   const Expr *E = this;
2674   if (const MaterializeTemporaryExpr *M = dyn_cast<MaterializeTemporaryExpr>(E))
2675     E = M->GetTemporaryExpr();
2676 
2677   while (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E))
2678     E = ICE->getSubExprAsWritten();
2679 
2680   return isa<CXXDefaultArgExpr>(E);
2681 }
2682 
2683 /// Skip over any no-op casts and any temporary-binding
2684 /// expressions.
2685 static const Expr *skipTemporaryBindingsNoOpCastsAndParens(const Expr *E) {
2686   if (const MaterializeTemporaryExpr *M = dyn_cast<MaterializeTemporaryExpr>(E))
2687     E = M->GetTemporaryExpr();
2688 
2689   while (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) {
2690     if (ICE->getCastKind() == CK_NoOp)
2691       E = ICE->getSubExpr();
2692     else
2693       break;
2694   }
2695 
2696   while (const CXXBindTemporaryExpr *BE = dyn_cast<CXXBindTemporaryExpr>(E))
2697     E = BE->getSubExpr();
2698 
2699   while (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) {
2700     if (ICE->getCastKind() == CK_NoOp)
2701       E = ICE->getSubExpr();
2702     else
2703       break;
2704   }
2705 
2706   return E->IgnoreParens();
2707 }
2708 
2709 /// isTemporaryObject - Determines if this expression produces a
2710 /// temporary of the given class type.
2711 bool Expr::isTemporaryObject(ASTContext &C, const CXXRecordDecl *TempTy) const {
2712   if (!C.hasSameUnqualifiedType(getType(), C.getTypeDeclType(TempTy)))
2713     return false;
2714 
2715   const Expr *E = skipTemporaryBindingsNoOpCastsAndParens(this);
2716 
2717   // Temporaries are by definition pr-values of class type.
2718   if (!E->Classify(C).isPRValue()) {
2719     // In this context, property reference is a message call and is pr-value.
2720     if (!isa<ObjCPropertyRefExpr>(E))
2721       return false;
2722   }
2723 
2724   // Black-list a few cases which yield pr-values of class type that don't
2725   // refer to temporaries of that type:
2726 
2727   // - implicit derived-to-base conversions
2728   if (isa<ImplicitCastExpr>(E)) {
2729     switch (cast<ImplicitCastExpr>(E)->getCastKind()) {
2730     case CK_DerivedToBase:
2731     case CK_UncheckedDerivedToBase:
2732       return false;
2733     default:
2734       break;
2735     }
2736   }
2737 
2738   // - member expressions (all)
2739   if (isa<MemberExpr>(E))
2740     return false;
2741 
2742   if (const BinaryOperator *BO = dyn_cast<BinaryOperator>(E))
2743     if (BO->isPtrMemOp())
2744       return false;
2745 
2746   // - opaque values (all)
2747   if (isa<OpaqueValueExpr>(E))
2748     return false;
2749 
2750   return true;
2751 }
2752 
2753 bool Expr::isImplicitCXXThis() const {
2754   const Expr *E = this;
2755 
2756   // Strip away parentheses and casts we don't care about.
2757   while (true) {
2758     if (const ParenExpr *Paren = dyn_cast<ParenExpr>(E)) {
2759       E = Paren->getSubExpr();
2760       continue;
2761     }
2762 
2763     if (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) {
2764       if (ICE->getCastKind() == CK_NoOp ||
2765           ICE->getCastKind() == CK_LValueToRValue ||
2766           ICE->getCastKind() == CK_DerivedToBase ||
2767           ICE->getCastKind() == CK_UncheckedDerivedToBase) {
2768         E = ICE->getSubExpr();
2769         continue;
2770       }
2771     }
2772 
2773     if (const UnaryOperator* UnOp = dyn_cast<UnaryOperator>(E)) {
2774       if (UnOp->getOpcode() == UO_Extension) {
2775         E = UnOp->getSubExpr();
2776         continue;
2777       }
2778     }
2779 
2780     if (const MaterializeTemporaryExpr *M
2781                                       = dyn_cast<MaterializeTemporaryExpr>(E)) {
2782       E = M->GetTemporaryExpr();
2783       continue;
2784     }
2785 
2786     break;
2787   }
2788 
2789   if (const CXXThisExpr *This = dyn_cast<CXXThisExpr>(E))
2790     return This->isImplicit();
2791 
2792   return false;
2793 }
2794 
2795 /// hasAnyTypeDependentArguments - Determines if any of the expressions
2796 /// in Exprs is type-dependent.
2797 bool Expr::hasAnyTypeDependentArguments(ArrayRef<Expr *> Exprs) {
2798   for (unsigned I = 0; I < Exprs.size(); ++I)
2799     if (Exprs[I]->isTypeDependent())
2800       return true;
2801 
2802   return false;
2803 }
2804 
2805 bool Expr::isConstantInitializer(ASTContext &Ctx, bool IsForRef,
2806                                  const Expr **Culprit) const {
2807   // This function is attempting whether an expression is an initializer
2808   // which can be evaluated at compile-time. It very closely parallels
2809   // ConstExprEmitter in CGExprConstant.cpp; if they don't match, it
2810   // will lead to unexpected results.  Like ConstExprEmitter, it falls back
2811   // to isEvaluatable most of the time.
2812   //
2813   // If we ever capture reference-binding directly in the AST, we can
2814   // kill the second parameter.
2815 
2816   if (IsForRef) {
2817     EvalResult Result;
2818     if (EvaluateAsLValue(Result, Ctx) && !Result.HasSideEffects)
2819       return true;
2820     if (Culprit)
2821       *Culprit = this;
2822     return false;
2823   }
2824 
2825   switch (getStmtClass()) {
2826   default: break;
2827   case StringLiteralClass:
2828   case ObjCEncodeExprClass:
2829     return true;
2830   case CXXTemporaryObjectExprClass:
2831   case CXXConstructExprClass: {
2832     const CXXConstructExpr *CE = cast<CXXConstructExpr>(this);
2833 
2834     if (CE->getConstructor()->isTrivial() &&
2835         CE->getConstructor()->getParent()->hasTrivialDestructor()) {
2836       // Trivial default constructor
2837       if (!CE->getNumArgs()) return true;
2838 
2839       // Trivial copy constructor
2840       assert(CE->getNumArgs() == 1 && "trivial ctor with > 1 argument");
2841       return CE->getArg(0)->isConstantInitializer(Ctx, false, Culprit);
2842     }
2843 
2844     break;
2845   }
2846   case CompoundLiteralExprClass: {
2847     // This handles gcc's extension that allows global initializers like
2848     // "struct x {int x;} x = (struct x) {};".
2849     // FIXME: This accepts other cases it shouldn't!
2850     const Expr *Exp = cast<CompoundLiteralExpr>(this)->getInitializer();
2851     return Exp->isConstantInitializer(Ctx, false, Culprit);
2852   }
2853   case DesignatedInitUpdateExprClass: {
2854     const DesignatedInitUpdateExpr *DIUE = cast<DesignatedInitUpdateExpr>(this);
2855     return DIUE->getBase()->isConstantInitializer(Ctx, false, Culprit) &&
2856            DIUE->getUpdater()->isConstantInitializer(Ctx, false, Culprit);
2857   }
2858   case InitListExprClass: {
2859     const InitListExpr *ILE = cast<InitListExpr>(this);
2860     if (ILE->getType()->isArrayType()) {
2861       unsigned numInits = ILE->getNumInits();
2862       for (unsigned i = 0; i < numInits; i++) {
2863         if (!ILE->getInit(i)->isConstantInitializer(Ctx, false, Culprit))
2864           return false;
2865       }
2866       return true;
2867     }
2868 
2869     if (ILE->getType()->isRecordType()) {
2870       unsigned ElementNo = 0;
2871       RecordDecl *RD = ILE->getType()->getAs<RecordType>()->getDecl();
2872       for (const auto *Field : RD->fields()) {
2873         // If this is a union, skip all the fields that aren't being initialized.
2874         if (RD->isUnion() && ILE->getInitializedFieldInUnion() != Field)
2875           continue;
2876 
2877         // Don't emit anonymous bitfields, they just affect layout.
2878         if (Field->isUnnamedBitfield())
2879           continue;
2880 
2881         if (ElementNo < ILE->getNumInits()) {
2882           const Expr *Elt = ILE->getInit(ElementNo++);
2883           if (Field->isBitField()) {
2884             // Bitfields have to evaluate to an integer.
2885             llvm::APSInt ResultTmp;
2886             if (!Elt->EvaluateAsInt(ResultTmp, Ctx)) {
2887               if (Culprit)
2888                 *Culprit = Elt;
2889               return false;
2890             }
2891           } else {
2892             bool RefType = Field->getType()->isReferenceType();
2893             if (!Elt->isConstantInitializer(Ctx, RefType, Culprit))
2894               return false;
2895           }
2896         }
2897       }
2898       return true;
2899     }
2900 
2901     break;
2902   }
2903   case ImplicitValueInitExprClass:
2904   case NoInitExprClass:
2905     return true;
2906   case ParenExprClass:
2907     return cast<ParenExpr>(this)->getSubExpr()
2908       ->isConstantInitializer(Ctx, IsForRef, Culprit);
2909   case GenericSelectionExprClass:
2910     return cast<GenericSelectionExpr>(this)->getResultExpr()
2911       ->isConstantInitializer(Ctx, IsForRef, Culprit);
2912   case ChooseExprClass:
2913     if (cast<ChooseExpr>(this)->isConditionDependent()) {
2914       if (Culprit)
2915         *Culprit = this;
2916       return false;
2917     }
2918     return cast<ChooseExpr>(this)->getChosenSubExpr()
2919       ->isConstantInitializer(Ctx, IsForRef, Culprit);
2920   case UnaryOperatorClass: {
2921     const UnaryOperator* Exp = cast<UnaryOperator>(this);
2922     if (Exp->getOpcode() == UO_Extension)
2923       return Exp->getSubExpr()->isConstantInitializer(Ctx, false, Culprit);
2924     break;
2925   }
2926   case CXXFunctionalCastExprClass:
2927   case CXXStaticCastExprClass:
2928   case ImplicitCastExprClass:
2929   case CStyleCastExprClass:
2930   case ObjCBridgedCastExprClass:
2931   case CXXDynamicCastExprClass:
2932   case CXXReinterpretCastExprClass:
2933   case CXXConstCastExprClass: {
2934     const CastExpr *CE = cast<CastExpr>(this);
2935 
2936     // Handle misc casts we want to ignore.
2937     if (CE->getCastKind() == CK_NoOp ||
2938         CE->getCastKind() == CK_LValueToRValue ||
2939         CE->getCastKind() == CK_ToUnion ||
2940         CE->getCastKind() == CK_ConstructorConversion ||
2941         CE->getCastKind() == CK_NonAtomicToAtomic ||
2942         CE->getCastKind() == CK_AtomicToNonAtomic ||
2943         CE->getCastKind() == CK_IntToOCLSampler)
2944       return CE->getSubExpr()->isConstantInitializer(Ctx, false, Culprit);
2945 
2946     break;
2947   }
2948   case MaterializeTemporaryExprClass:
2949     return cast<MaterializeTemporaryExpr>(this)->GetTemporaryExpr()
2950       ->isConstantInitializer(Ctx, false, Culprit);
2951 
2952   case SubstNonTypeTemplateParmExprClass:
2953     return cast<SubstNonTypeTemplateParmExpr>(this)->getReplacement()
2954       ->isConstantInitializer(Ctx, false, Culprit);
2955   case CXXDefaultArgExprClass:
2956     return cast<CXXDefaultArgExpr>(this)->getExpr()
2957       ->isConstantInitializer(Ctx, false, Culprit);
2958   case CXXDefaultInitExprClass:
2959     return cast<CXXDefaultInitExpr>(this)->getExpr()
2960       ->isConstantInitializer(Ctx, false, Culprit);
2961   }
2962   // Allow certain forms of UB in constant initializers: signed integer
2963   // overflow and floating-point division by zero. We'll give a warning on
2964   // these, but they're common enough that we have to accept them.
2965   if (isEvaluatable(Ctx, SE_AllowUndefinedBehavior))
2966     return true;
2967   if (Culprit)
2968     *Culprit = this;
2969   return false;
2970 }
2971 
2972 bool CallExpr::isBuiltinAssumeFalse(const ASTContext &Ctx) const {
2973   const FunctionDecl* FD = getDirectCallee();
2974   if (!FD || (FD->getBuiltinID() != Builtin::BI__assume &&
2975               FD->getBuiltinID() != Builtin::BI__builtin_assume))
2976     return false;
2977 
2978   const Expr* Arg = getArg(0);
2979   bool ArgVal;
2980   return !Arg->isValueDependent() &&
2981          Arg->EvaluateAsBooleanCondition(ArgVal, Ctx) && !ArgVal;
2982 }
2983 
2984 namespace {
2985   /// Look for any side effects within a Stmt.
2986   class SideEffectFinder : public ConstEvaluatedExprVisitor<SideEffectFinder> {
2987     typedef ConstEvaluatedExprVisitor<SideEffectFinder> Inherited;
2988     const bool IncludePossibleEffects;
2989     bool HasSideEffects;
2990 
2991   public:
2992     explicit SideEffectFinder(const ASTContext &Context, bool IncludePossible)
2993       : Inherited(Context),
2994         IncludePossibleEffects(IncludePossible), HasSideEffects(false) { }
2995 
2996     bool hasSideEffects() const { return HasSideEffects; }
2997 
2998     void VisitExpr(const Expr *E) {
2999       if (!HasSideEffects &&
3000           E->HasSideEffects(Context, IncludePossibleEffects))
3001         HasSideEffects = true;
3002     }
3003   };
3004 }
3005 
3006 bool Expr::HasSideEffects(const ASTContext &Ctx,
3007                           bool IncludePossibleEffects) const {
3008   // In circumstances where we care about definite side effects instead of
3009   // potential side effects, we want to ignore expressions that are part of a
3010   // macro expansion as a potential side effect.
3011   if (!IncludePossibleEffects && getExprLoc().isMacroID())
3012     return false;
3013 
3014   if (isInstantiationDependent())
3015     return IncludePossibleEffects;
3016 
3017   switch (getStmtClass()) {
3018   case NoStmtClass:
3019   #define ABSTRACT_STMT(Type)
3020   #define STMT(Type, Base) case Type##Class:
3021   #define EXPR(Type, Base)
3022   #include "clang/AST/StmtNodes.inc"
3023     llvm_unreachable("unexpected Expr kind");
3024 
3025   case DependentScopeDeclRefExprClass:
3026   case CXXUnresolvedConstructExprClass:
3027   case CXXDependentScopeMemberExprClass:
3028   case UnresolvedLookupExprClass:
3029   case UnresolvedMemberExprClass:
3030   case PackExpansionExprClass:
3031   case SubstNonTypeTemplateParmPackExprClass:
3032   case FunctionParmPackExprClass:
3033   case TypoExprClass:
3034   case CXXFoldExprClass:
3035     llvm_unreachable("shouldn't see dependent / unresolved nodes here");
3036 
3037   case DeclRefExprClass:
3038   case ObjCIvarRefExprClass:
3039   case PredefinedExprClass:
3040   case IntegerLiteralClass:
3041   case FixedPointLiteralClass:
3042   case FloatingLiteralClass:
3043   case ImaginaryLiteralClass:
3044   case StringLiteralClass:
3045   case CharacterLiteralClass:
3046   case OffsetOfExprClass:
3047   case ImplicitValueInitExprClass:
3048   case UnaryExprOrTypeTraitExprClass:
3049   case AddrLabelExprClass:
3050   case GNUNullExprClass:
3051   case ArrayInitIndexExprClass:
3052   case NoInitExprClass:
3053   case CXXBoolLiteralExprClass:
3054   case CXXNullPtrLiteralExprClass:
3055   case CXXThisExprClass:
3056   case CXXScalarValueInitExprClass:
3057   case TypeTraitExprClass:
3058   case ArrayTypeTraitExprClass:
3059   case ExpressionTraitExprClass:
3060   case CXXNoexceptExprClass:
3061   case SizeOfPackExprClass:
3062   case ObjCStringLiteralClass:
3063   case ObjCEncodeExprClass:
3064   case ObjCBoolLiteralExprClass:
3065   case ObjCAvailabilityCheckExprClass:
3066   case CXXUuidofExprClass:
3067   case OpaqueValueExprClass:
3068     // These never have a side-effect.
3069     return false;
3070 
3071   case CallExprClass:
3072   case CXXOperatorCallExprClass:
3073   case CXXMemberCallExprClass:
3074   case CUDAKernelCallExprClass:
3075   case UserDefinedLiteralClass: {
3076     // We don't know a call definitely has side effects, except for calls
3077     // to pure/const functions that definitely don't.
3078     // If the call itself is considered side-effect free, check the operands.
3079     const Decl *FD = cast<CallExpr>(this)->getCalleeDecl();
3080     bool IsPure = FD && (FD->hasAttr<ConstAttr>() || FD->hasAttr<PureAttr>());
3081     if (IsPure || !IncludePossibleEffects)
3082       break;
3083     return true;
3084   }
3085 
3086   case BlockExprClass:
3087   case CXXBindTemporaryExprClass:
3088     if (!IncludePossibleEffects)
3089       break;
3090     return true;
3091 
3092   case MSPropertyRefExprClass:
3093   case MSPropertySubscriptExprClass:
3094   case CompoundAssignOperatorClass:
3095   case VAArgExprClass:
3096   case AtomicExprClass:
3097   case CXXThrowExprClass:
3098   case CXXNewExprClass:
3099   case CXXDeleteExprClass:
3100   case CoawaitExprClass:
3101   case DependentCoawaitExprClass:
3102   case CoyieldExprClass:
3103     // These always have a side-effect.
3104     return true;
3105 
3106   case StmtExprClass: {
3107     // StmtExprs have a side-effect if any substatement does.
3108     SideEffectFinder Finder(Ctx, IncludePossibleEffects);
3109     Finder.Visit(cast<StmtExpr>(this)->getSubStmt());
3110     return Finder.hasSideEffects();
3111   }
3112 
3113   case ExprWithCleanupsClass:
3114     if (IncludePossibleEffects)
3115       if (cast<ExprWithCleanups>(this)->cleanupsHaveSideEffects())
3116         return true;
3117     break;
3118 
3119   case ParenExprClass:
3120   case ArraySubscriptExprClass:
3121   case OMPArraySectionExprClass:
3122   case MemberExprClass:
3123   case ConditionalOperatorClass:
3124   case BinaryConditionalOperatorClass:
3125   case CompoundLiteralExprClass:
3126   case ExtVectorElementExprClass:
3127   case DesignatedInitExprClass:
3128   case DesignatedInitUpdateExprClass:
3129   case ArrayInitLoopExprClass:
3130   case ParenListExprClass:
3131   case CXXPseudoDestructorExprClass:
3132   case CXXStdInitializerListExprClass:
3133   case SubstNonTypeTemplateParmExprClass:
3134   case MaterializeTemporaryExprClass:
3135   case ShuffleVectorExprClass:
3136   case ConvertVectorExprClass:
3137   case AsTypeExprClass:
3138     // These have a side-effect if any subexpression does.
3139     break;
3140 
3141   case UnaryOperatorClass:
3142     if (cast<UnaryOperator>(this)->isIncrementDecrementOp())
3143       return true;
3144     break;
3145 
3146   case BinaryOperatorClass:
3147     if (cast<BinaryOperator>(this)->isAssignmentOp())
3148       return true;
3149     break;
3150 
3151   case InitListExprClass:
3152     // FIXME: The children for an InitListExpr doesn't include the array filler.
3153     if (const Expr *E = cast<InitListExpr>(this)->getArrayFiller())
3154       if (E->HasSideEffects(Ctx, IncludePossibleEffects))
3155         return true;
3156     break;
3157 
3158   case GenericSelectionExprClass:
3159     return cast<GenericSelectionExpr>(this)->getResultExpr()->
3160         HasSideEffects(Ctx, IncludePossibleEffects);
3161 
3162   case ChooseExprClass:
3163     return cast<ChooseExpr>(this)->getChosenSubExpr()->HasSideEffects(
3164         Ctx, IncludePossibleEffects);
3165 
3166   case CXXDefaultArgExprClass:
3167     return cast<CXXDefaultArgExpr>(this)->getExpr()->HasSideEffects(
3168         Ctx, IncludePossibleEffects);
3169 
3170   case CXXDefaultInitExprClass: {
3171     const FieldDecl *FD = cast<CXXDefaultInitExpr>(this)->getField();
3172     if (const Expr *E = FD->getInClassInitializer())
3173       return E->HasSideEffects(Ctx, IncludePossibleEffects);
3174     // If we've not yet parsed the initializer, assume it has side-effects.
3175     return true;
3176   }
3177 
3178   case CXXDynamicCastExprClass: {
3179     // A dynamic_cast expression has side-effects if it can throw.
3180     const CXXDynamicCastExpr *DCE = cast<CXXDynamicCastExpr>(this);
3181     if (DCE->getTypeAsWritten()->isReferenceType() &&
3182         DCE->getCastKind() == CK_Dynamic)
3183       return true;
3184     }
3185     LLVM_FALLTHROUGH;
3186   case ImplicitCastExprClass:
3187   case CStyleCastExprClass:
3188   case CXXStaticCastExprClass:
3189   case CXXReinterpretCastExprClass:
3190   case CXXConstCastExprClass:
3191   case CXXFunctionalCastExprClass: {
3192     // While volatile reads are side-effecting in both C and C++, we treat them
3193     // as having possible (not definite) side-effects. This allows idiomatic
3194     // code to behave without warning, such as sizeof(*v) for a volatile-
3195     // qualified pointer.
3196     if (!IncludePossibleEffects)
3197       break;
3198 
3199     const CastExpr *CE = cast<CastExpr>(this);
3200     if (CE->getCastKind() == CK_LValueToRValue &&
3201         CE->getSubExpr()->getType().isVolatileQualified())
3202       return true;
3203     break;
3204   }
3205 
3206   case CXXTypeidExprClass:
3207     // typeid might throw if its subexpression is potentially-evaluated, so has
3208     // side-effects in that case whether or not its subexpression does.
3209     return cast<CXXTypeidExpr>(this)->isPotentiallyEvaluated();
3210 
3211   case CXXConstructExprClass:
3212   case CXXTemporaryObjectExprClass: {
3213     const CXXConstructExpr *CE = cast<CXXConstructExpr>(this);
3214     if (!CE->getConstructor()->isTrivial() && IncludePossibleEffects)
3215       return true;
3216     // A trivial constructor does not add any side-effects of its own. Just look
3217     // at its arguments.
3218     break;
3219   }
3220 
3221   case CXXInheritedCtorInitExprClass: {
3222     const auto *ICIE = cast<CXXInheritedCtorInitExpr>(this);
3223     if (!ICIE->getConstructor()->isTrivial() && IncludePossibleEffects)
3224       return true;
3225     break;
3226   }
3227 
3228   case LambdaExprClass: {
3229     const LambdaExpr *LE = cast<LambdaExpr>(this);
3230     for (LambdaExpr::capture_iterator I = LE->capture_begin(),
3231                                       E = LE->capture_end(); I != E; ++I)
3232       if (I->getCaptureKind() == LCK_ByCopy)
3233         // FIXME: Only has a side-effect if the variable is volatile or if
3234         // the copy would invoke a non-trivial copy constructor.
3235         return true;
3236     return false;
3237   }
3238 
3239   case PseudoObjectExprClass: {
3240     // Only look for side-effects in the semantic form, and look past
3241     // OpaqueValueExpr bindings in that form.
3242     const PseudoObjectExpr *PO = cast<PseudoObjectExpr>(this);
3243     for (PseudoObjectExpr::const_semantics_iterator I = PO->semantics_begin(),
3244                                                     E = PO->semantics_end();
3245          I != E; ++I) {
3246       const Expr *Subexpr = *I;
3247       if (const OpaqueValueExpr *OVE = dyn_cast<OpaqueValueExpr>(Subexpr))
3248         Subexpr = OVE->getSourceExpr();
3249       if (Subexpr->HasSideEffects(Ctx, IncludePossibleEffects))
3250         return true;
3251     }
3252     return false;
3253   }
3254 
3255   case ObjCBoxedExprClass:
3256   case ObjCArrayLiteralClass:
3257   case ObjCDictionaryLiteralClass:
3258   case ObjCSelectorExprClass:
3259   case ObjCProtocolExprClass:
3260   case ObjCIsaExprClass:
3261   case ObjCIndirectCopyRestoreExprClass:
3262   case ObjCSubscriptRefExprClass:
3263   case ObjCBridgedCastExprClass:
3264   case ObjCMessageExprClass:
3265   case ObjCPropertyRefExprClass:
3266   // FIXME: Classify these cases better.
3267     if (IncludePossibleEffects)
3268       return true;
3269     break;
3270   }
3271 
3272   // Recurse to children.
3273   for (const Stmt *SubStmt : children())
3274     if (SubStmt &&
3275         cast<Expr>(SubStmt)->HasSideEffects(Ctx, IncludePossibleEffects))
3276       return true;
3277 
3278   return false;
3279 }
3280 
3281 namespace {
3282   /// Look for a call to a non-trivial function within an expression.
3283   class NonTrivialCallFinder : public ConstEvaluatedExprVisitor<NonTrivialCallFinder>
3284   {
3285     typedef ConstEvaluatedExprVisitor<NonTrivialCallFinder> Inherited;
3286 
3287     bool NonTrivial;
3288 
3289   public:
3290     explicit NonTrivialCallFinder(const ASTContext &Context)
3291       : Inherited(Context), NonTrivial(false) { }
3292 
3293     bool hasNonTrivialCall() const { return NonTrivial; }
3294 
3295     void VisitCallExpr(const CallExpr *E) {
3296       if (const CXXMethodDecl *Method
3297           = dyn_cast_or_null<const CXXMethodDecl>(E->getCalleeDecl())) {
3298         if (Method->isTrivial()) {
3299           // Recurse to children of the call.
3300           Inherited::VisitStmt(E);
3301           return;
3302         }
3303       }
3304 
3305       NonTrivial = true;
3306     }
3307 
3308     void VisitCXXConstructExpr(const CXXConstructExpr *E) {
3309       if (E->getConstructor()->isTrivial()) {
3310         // Recurse to children of the call.
3311         Inherited::VisitStmt(E);
3312         return;
3313       }
3314 
3315       NonTrivial = true;
3316     }
3317 
3318     void VisitCXXBindTemporaryExpr(const CXXBindTemporaryExpr *E) {
3319       if (E->getTemporary()->getDestructor()->isTrivial()) {
3320         Inherited::VisitStmt(E);
3321         return;
3322       }
3323 
3324       NonTrivial = true;
3325     }
3326   };
3327 }
3328 
3329 bool Expr::hasNonTrivialCall(const ASTContext &Ctx) const {
3330   NonTrivialCallFinder Finder(Ctx);
3331   Finder.Visit(this);
3332   return Finder.hasNonTrivialCall();
3333 }
3334 
3335 /// isNullPointerConstant - C99 6.3.2.3p3 - Return whether this is a null
3336 /// pointer constant or not, as well as the specific kind of constant detected.
3337 /// Null pointer constants can be integer constant expressions with the
3338 /// value zero, casts of zero to void*, nullptr (C++0X), or __null
3339 /// (a GNU extension).
3340 Expr::NullPointerConstantKind
3341 Expr::isNullPointerConstant(ASTContext &Ctx,
3342                             NullPointerConstantValueDependence NPC) const {
3343   if (isValueDependent() &&
3344       (!Ctx.getLangOpts().CPlusPlus11 || Ctx.getLangOpts().MSVCCompat)) {
3345     switch (NPC) {
3346     case NPC_NeverValueDependent:
3347       llvm_unreachable("Unexpected value dependent expression!");
3348     case NPC_ValueDependentIsNull:
3349       if (isTypeDependent() || getType()->isIntegralType(Ctx))
3350         return NPCK_ZeroExpression;
3351       else
3352         return NPCK_NotNull;
3353 
3354     case NPC_ValueDependentIsNotNull:
3355       return NPCK_NotNull;
3356     }
3357   }
3358 
3359   // Strip off a cast to void*, if it exists. Except in C++.
3360   if (const ExplicitCastExpr *CE = dyn_cast<ExplicitCastExpr>(this)) {
3361     if (!Ctx.getLangOpts().CPlusPlus) {
3362       // Check that it is a cast to void*.
3363       if (const PointerType *PT = CE->getType()->getAs<PointerType>()) {
3364         QualType Pointee = PT->getPointeeType();
3365         // Only (void*)0 or equivalent are treated as nullptr. If pointee type
3366         // has non-default address space it is not treated as nullptr.
3367         // (__generic void*)0 in OpenCL 2.0 should not be treated as nullptr
3368         // since it cannot be assigned to a pointer to constant address space.
3369         bool PointeeHasDefaultAS =
3370             Pointee.getAddressSpace() == LangAS::Default ||
3371             (Ctx.getLangOpts().OpenCLVersion >= 200 &&
3372              Pointee.getAddressSpace() == LangAS::opencl_generic) ||
3373             (Ctx.getLangOpts().OpenCL &&
3374              Ctx.getLangOpts().OpenCLVersion < 200 &&
3375              Pointee.getAddressSpace() == LangAS::opencl_private);
3376 
3377         if (PointeeHasDefaultAS && Pointee->isVoidType() && // to void*
3378             CE->getSubExpr()->getType()->isIntegerType())   // from int.
3379           return CE->getSubExpr()->isNullPointerConstant(Ctx, NPC);
3380       }
3381     }
3382   } else if (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(this)) {
3383     // Ignore the ImplicitCastExpr type entirely.
3384     return ICE->getSubExpr()->isNullPointerConstant(Ctx, NPC);
3385   } else if (const ParenExpr *PE = dyn_cast<ParenExpr>(this)) {
3386     // Accept ((void*)0) as a null pointer constant, as many other
3387     // implementations do.
3388     return PE->getSubExpr()->isNullPointerConstant(Ctx, NPC);
3389   } else if (const GenericSelectionExpr *GE =
3390                dyn_cast<GenericSelectionExpr>(this)) {
3391     if (GE->isResultDependent())
3392       return NPCK_NotNull;
3393     return GE->getResultExpr()->isNullPointerConstant(Ctx, NPC);
3394   } else if (const ChooseExpr *CE = dyn_cast<ChooseExpr>(this)) {
3395     if (CE->isConditionDependent())
3396       return NPCK_NotNull;
3397     return CE->getChosenSubExpr()->isNullPointerConstant(Ctx, NPC);
3398   } else if (const CXXDefaultArgExpr *DefaultArg
3399                = dyn_cast<CXXDefaultArgExpr>(this)) {
3400     // See through default argument expressions.
3401     return DefaultArg->getExpr()->isNullPointerConstant(Ctx, NPC);
3402   } else if (const CXXDefaultInitExpr *DefaultInit
3403                = dyn_cast<CXXDefaultInitExpr>(this)) {
3404     // See through default initializer expressions.
3405     return DefaultInit->getExpr()->isNullPointerConstant(Ctx, NPC);
3406   } else if (isa<GNUNullExpr>(this)) {
3407     // The GNU __null extension is always a null pointer constant.
3408     return NPCK_GNUNull;
3409   } else if (const MaterializeTemporaryExpr *M
3410                                    = dyn_cast<MaterializeTemporaryExpr>(this)) {
3411     return M->GetTemporaryExpr()->isNullPointerConstant(Ctx, NPC);
3412   } else if (const OpaqueValueExpr *OVE = dyn_cast<OpaqueValueExpr>(this)) {
3413     if (const Expr *Source = OVE->getSourceExpr())
3414       return Source->isNullPointerConstant(Ctx, NPC);
3415   }
3416 
3417   // C++11 nullptr_t is always a null pointer constant.
3418   if (getType()->isNullPtrType())
3419     return NPCK_CXX11_nullptr;
3420 
3421   if (const RecordType *UT = getType()->getAsUnionType())
3422     if (!Ctx.getLangOpts().CPlusPlus11 &&
3423         UT && UT->getDecl()->hasAttr<TransparentUnionAttr>())
3424       if (const CompoundLiteralExpr *CLE = dyn_cast<CompoundLiteralExpr>(this)){
3425         const Expr *InitExpr = CLE->getInitializer();
3426         if (const InitListExpr *ILE = dyn_cast<InitListExpr>(InitExpr))
3427           return ILE->getInit(0)->isNullPointerConstant(Ctx, NPC);
3428       }
3429   // This expression must be an integer type.
3430   if (!getType()->isIntegerType() ||
3431       (Ctx.getLangOpts().CPlusPlus && getType()->isEnumeralType()))
3432     return NPCK_NotNull;
3433 
3434   if (Ctx.getLangOpts().CPlusPlus11) {
3435     // C++11 [conv.ptr]p1: A null pointer constant is an integer literal with
3436     // value zero or a prvalue of type std::nullptr_t.
3437     // Microsoft mode permits C++98 rules reflecting MSVC behavior.
3438     const IntegerLiteral *Lit = dyn_cast<IntegerLiteral>(this);
3439     if (Lit && !Lit->getValue())
3440       return NPCK_ZeroLiteral;
3441     else if (!Ctx.getLangOpts().MSVCCompat || !isCXX98IntegralConstantExpr(Ctx))
3442       return NPCK_NotNull;
3443   } else {
3444     // If we have an integer constant expression, we need to *evaluate* it and
3445     // test for the value 0.
3446     if (!isIntegerConstantExpr(Ctx))
3447       return NPCK_NotNull;
3448   }
3449 
3450   if (EvaluateKnownConstInt(Ctx) != 0)
3451     return NPCK_NotNull;
3452 
3453   if (isa<IntegerLiteral>(this))
3454     return NPCK_ZeroLiteral;
3455   return NPCK_ZeroExpression;
3456 }
3457 
3458 /// If this expression is an l-value for an Objective C
3459 /// property, find the underlying property reference expression.
3460 const ObjCPropertyRefExpr *Expr::getObjCProperty() const {
3461   const Expr *E = this;
3462   while (true) {
3463     assert((E->getValueKind() == VK_LValue &&
3464             E->getObjectKind() == OK_ObjCProperty) &&
3465            "expression is not a property reference");
3466     E = E->IgnoreParenCasts();
3467     if (const BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) {
3468       if (BO->getOpcode() == BO_Comma) {
3469         E = BO->getRHS();
3470         continue;
3471       }
3472     }
3473 
3474     break;
3475   }
3476 
3477   return cast<ObjCPropertyRefExpr>(E);
3478 }
3479 
3480 bool Expr::isObjCSelfExpr() const {
3481   const Expr *E = IgnoreParenImpCasts();
3482 
3483   const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E);
3484   if (!DRE)
3485     return false;
3486 
3487   const ImplicitParamDecl *Param = dyn_cast<ImplicitParamDecl>(DRE->getDecl());
3488   if (!Param)
3489     return false;
3490 
3491   const ObjCMethodDecl *M = dyn_cast<ObjCMethodDecl>(Param->getDeclContext());
3492   if (!M)
3493     return false;
3494 
3495   return M->getSelfDecl() == Param;
3496 }
3497 
3498 FieldDecl *Expr::getSourceBitField() {
3499   Expr *E = this->IgnoreParens();
3500 
3501   while (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) {
3502     if (ICE->getCastKind() == CK_LValueToRValue ||
3503         (ICE->getValueKind() != VK_RValue && ICE->getCastKind() == CK_NoOp))
3504       E = ICE->getSubExpr()->IgnoreParens();
3505     else
3506       break;
3507   }
3508 
3509   if (MemberExpr *MemRef = dyn_cast<MemberExpr>(E))
3510     if (FieldDecl *Field = dyn_cast<FieldDecl>(MemRef->getMemberDecl()))
3511       if (Field->isBitField())
3512         return Field;
3513 
3514   if (ObjCIvarRefExpr *IvarRef = dyn_cast<ObjCIvarRefExpr>(E)) {
3515     FieldDecl *Ivar = IvarRef->getDecl();
3516     if (Ivar->isBitField())
3517       return Ivar;
3518   }
3519 
3520   if (DeclRefExpr *DeclRef = dyn_cast<DeclRefExpr>(E)) {
3521     if (FieldDecl *Field = dyn_cast<FieldDecl>(DeclRef->getDecl()))
3522       if (Field->isBitField())
3523         return Field;
3524 
3525     if (BindingDecl *BD = dyn_cast<BindingDecl>(DeclRef->getDecl()))
3526       if (Expr *E = BD->getBinding())
3527         return E->getSourceBitField();
3528   }
3529 
3530   if (BinaryOperator *BinOp = dyn_cast<BinaryOperator>(E)) {
3531     if (BinOp->isAssignmentOp() && BinOp->getLHS())
3532       return BinOp->getLHS()->getSourceBitField();
3533 
3534     if (BinOp->getOpcode() == BO_Comma && BinOp->getRHS())
3535       return BinOp->getRHS()->getSourceBitField();
3536   }
3537 
3538   if (UnaryOperator *UnOp = dyn_cast<UnaryOperator>(E))
3539     if (UnOp->isPrefix() && UnOp->isIncrementDecrementOp())
3540       return UnOp->getSubExpr()->getSourceBitField();
3541 
3542   return nullptr;
3543 }
3544 
3545 bool Expr::refersToVectorElement() const {
3546   // FIXME: Why do we not just look at the ObjectKind here?
3547   const Expr *E = this->IgnoreParens();
3548 
3549   while (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) {
3550     if (ICE->getValueKind() != VK_RValue &&
3551         ICE->getCastKind() == CK_NoOp)
3552       E = ICE->getSubExpr()->IgnoreParens();
3553     else
3554       break;
3555   }
3556 
3557   if (const ArraySubscriptExpr *ASE = dyn_cast<ArraySubscriptExpr>(E))
3558     return ASE->getBase()->getType()->isVectorType();
3559 
3560   if (isa<ExtVectorElementExpr>(E))
3561     return true;
3562 
3563   if (auto *DRE = dyn_cast<DeclRefExpr>(E))
3564     if (auto *BD = dyn_cast<BindingDecl>(DRE->getDecl()))
3565       if (auto *E = BD->getBinding())
3566         return E->refersToVectorElement();
3567 
3568   return false;
3569 }
3570 
3571 bool Expr::refersToGlobalRegisterVar() const {
3572   const Expr *E = this->IgnoreParenImpCasts();
3573 
3574   if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E))
3575     if (const auto *VD = dyn_cast<VarDecl>(DRE->getDecl()))
3576       if (VD->getStorageClass() == SC_Register &&
3577           VD->hasAttr<AsmLabelAttr>() && !VD->isLocalVarDecl())
3578         return true;
3579 
3580   return false;
3581 }
3582 
3583 /// isArrow - Return true if the base expression is a pointer to vector,
3584 /// return false if the base expression is a vector.
3585 bool ExtVectorElementExpr::isArrow() const {
3586   return getBase()->getType()->isPointerType();
3587 }
3588 
3589 unsigned ExtVectorElementExpr::getNumElements() const {
3590   if (const VectorType *VT = getType()->getAs<VectorType>())
3591     return VT->getNumElements();
3592   return 1;
3593 }
3594 
3595 /// containsDuplicateElements - Return true if any element access is repeated.
3596 bool ExtVectorElementExpr::containsDuplicateElements() const {
3597   // FIXME: Refactor this code to an accessor on the AST node which returns the
3598   // "type" of component access, and share with code below and in Sema.
3599   StringRef Comp = Accessor->getName();
3600 
3601   // Halving swizzles do not contain duplicate elements.
3602   if (Comp == "hi" || Comp == "lo" || Comp == "even" || Comp == "odd")
3603     return false;
3604 
3605   // Advance past s-char prefix on hex swizzles.
3606   if (Comp[0] == 's' || Comp[0] == 'S')
3607     Comp = Comp.substr(1);
3608 
3609   for (unsigned i = 0, e = Comp.size(); i != e; ++i)
3610     if (Comp.substr(i + 1).find(Comp[i]) != StringRef::npos)
3611         return true;
3612 
3613   return false;
3614 }
3615 
3616 /// getEncodedElementAccess - We encode the fields as a llvm ConstantArray.
3617 void ExtVectorElementExpr::getEncodedElementAccess(
3618     SmallVectorImpl<uint32_t> &Elts) const {
3619   StringRef Comp = Accessor->getName();
3620   bool isNumericAccessor = false;
3621   if (Comp[0] == 's' || Comp[0] == 'S') {
3622     Comp = Comp.substr(1);
3623     isNumericAccessor = true;
3624   }
3625 
3626   bool isHi =   Comp == "hi";
3627   bool isLo =   Comp == "lo";
3628   bool isEven = Comp == "even";
3629   bool isOdd  = Comp == "odd";
3630 
3631   for (unsigned i = 0, e = getNumElements(); i != e; ++i) {
3632     uint64_t Index;
3633 
3634     if (isHi)
3635       Index = e + i;
3636     else if (isLo)
3637       Index = i;
3638     else if (isEven)
3639       Index = 2 * i;
3640     else if (isOdd)
3641       Index = 2 * i + 1;
3642     else
3643       Index = ExtVectorType::getAccessorIdx(Comp[i], isNumericAccessor);
3644 
3645     Elts.push_back(Index);
3646   }
3647 }
3648 
3649 ShuffleVectorExpr::ShuffleVectorExpr(const ASTContext &C, ArrayRef<Expr*> args,
3650                                      QualType Type, SourceLocation BLoc,
3651                                      SourceLocation RP)
3652    : Expr(ShuffleVectorExprClass, Type, VK_RValue, OK_Ordinary,
3653           Type->isDependentType(), Type->isDependentType(),
3654           Type->isInstantiationDependentType(),
3655           Type->containsUnexpandedParameterPack()),
3656      BuiltinLoc(BLoc), RParenLoc(RP), NumExprs(args.size())
3657 {
3658   SubExprs = new (C) Stmt*[args.size()];
3659   for (unsigned i = 0; i != args.size(); i++) {
3660     if (args[i]->isTypeDependent())
3661       ExprBits.TypeDependent = true;
3662     if (args[i]->isValueDependent())
3663       ExprBits.ValueDependent = true;
3664     if (args[i]->isInstantiationDependent())
3665       ExprBits.InstantiationDependent = true;
3666     if (args[i]->containsUnexpandedParameterPack())
3667       ExprBits.ContainsUnexpandedParameterPack = true;
3668 
3669     SubExprs[i] = args[i];
3670   }
3671 }
3672 
3673 void ShuffleVectorExpr::setExprs(const ASTContext &C, ArrayRef<Expr *> Exprs) {
3674   if (SubExprs) C.Deallocate(SubExprs);
3675 
3676   this->NumExprs = Exprs.size();
3677   SubExprs = new (C) Stmt*[NumExprs];
3678   memcpy(SubExprs, Exprs.data(), sizeof(Expr *) * Exprs.size());
3679 }
3680 
3681 GenericSelectionExpr::GenericSelectionExpr(const ASTContext &Context,
3682                                SourceLocation GenericLoc, Expr *ControllingExpr,
3683                                ArrayRef<TypeSourceInfo*> AssocTypes,
3684                                ArrayRef<Expr*> AssocExprs,
3685                                SourceLocation DefaultLoc,
3686                                SourceLocation RParenLoc,
3687                                bool ContainsUnexpandedParameterPack,
3688                                unsigned ResultIndex)
3689   : Expr(GenericSelectionExprClass,
3690          AssocExprs[ResultIndex]->getType(),
3691          AssocExprs[ResultIndex]->getValueKind(),
3692          AssocExprs[ResultIndex]->getObjectKind(),
3693          AssocExprs[ResultIndex]->isTypeDependent(),
3694          AssocExprs[ResultIndex]->isValueDependent(),
3695          AssocExprs[ResultIndex]->isInstantiationDependent(),
3696          ContainsUnexpandedParameterPack),
3697     AssocTypes(new (Context) TypeSourceInfo*[AssocTypes.size()]),
3698     SubExprs(new (Context) Stmt*[END_EXPR+AssocExprs.size()]),
3699     NumAssocs(AssocExprs.size()), ResultIndex(ResultIndex),
3700     GenericLoc(GenericLoc), DefaultLoc(DefaultLoc), RParenLoc(RParenLoc) {
3701   SubExprs[CONTROLLING] = ControllingExpr;
3702   assert(AssocTypes.size() == AssocExprs.size());
3703   std::copy(AssocTypes.begin(), AssocTypes.end(), this->AssocTypes);
3704   std::copy(AssocExprs.begin(), AssocExprs.end(), SubExprs+END_EXPR);
3705 }
3706 
3707 GenericSelectionExpr::GenericSelectionExpr(const ASTContext &Context,
3708                                SourceLocation GenericLoc, Expr *ControllingExpr,
3709                                ArrayRef<TypeSourceInfo*> AssocTypes,
3710                                ArrayRef<Expr*> AssocExprs,
3711                                SourceLocation DefaultLoc,
3712                                SourceLocation RParenLoc,
3713                                bool ContainsUnexpandedParameterPack)
3714   : Expr(GenericSelectionExprClass,
3715          Context.DependentTy,
3716          VK_RValue,
3717          OK_Ordinary,
3718          /*isTypeDependent=*/true,
3719          /*isValueDependent=*/true,
3720          /*isInstantiationDependent=*/true,
3721          ContainsUnexpandedParameterPack),
3722     AssocTypes(new (Context) TypeSourceInfo*[AssocTypes.size()]),
3723     SubExprs(new (Context) Stmt*[END_EXPR+AssocExprs.size()]),
3724     NumAssocs(AssocExprs.size()), ResultIndex(-1U), GenericLoc(GenericLoc),
3725     DefaultLoc(DefaultLoc), RParenLoc(RParenLoc) {
3726   SubExprs[CONTROLLING] = ControllingExpr;
3727   assert(AssocTypes.size() == AssocExprs.size());
3728   std::copy(AssocTypes.begin(), AssocTypes.end(), this->AssocTypes);
3729   std::copy(AssocExprs.begin(), AssocExprs.end(), SubExprs+END_EXPR);
3730 }
3731 
3732 //===----------------------------------------------------------------------===//
3733 //  DesignatedInitExpr
3734 //===----------------------------------------------------------------------===//
3735 
3736 IdentifierInfo *DesignatedInitExpr::Designator::getFieldName() const {
3737   assert(Kind == FieldDesignator && "Only valid on a field designator");
3738   if (Field.NameOrField & 0x01)
3739     return reinterpret_cast<IdentifierInfo *>(Field.NameOrField&~0x01);
3740   else
3741     return getField()->getIdentifier();
3742 }
3743 
3744 DesignatedInitExpr::DesignatedInitExpr(const ASTContext &C, QualType Ty,
3745                                        llvm::ArrayRef<Designator> Designators,
3746                                        SourceLocation EqualOrColonLoc,
3747                                        bool GNUSyntax,
3748                                        ArrayRef<Expr*> IndexExprs,
3749                                        Expr *Init)
3750   : Expr(DesignatedInitExprClass, Ty,
3751          Init->getValueKind(), Init->getObjectKind(),
3752          Init->isTypeDependent(), Init->isValueDependent(),
3753          Init->isInstantiationDependent(),
3754          Init->containsUnexpandedParameterPack()),
3755     EqualOrColonLoc(EqualOrColonLoc), GNUSyntax(GNUSyntax),
3756     NumDesignators(Designators.size()), NumSubExprs(IndexExprs.size() + 1) {
3757   this->Designators = new (C) Designator[NumDesignators];
3758 
3759   // Record the initializer itself.
3760   child_iterator Child = child_begin();
3761   *Child++ = Init;
3762 
3763   // Copy the designators and their subexpressions, computing
3764   // value-dependence along the way.
3765   unsigned IndexIdx = 0;
3766   for (unsigned I = 0; I != NumDesignators; ++I) {
3767     this->Designators[I] = Designators[I];
3768 
3769     if (this->Designators[I].isArrayDesignator()) {
3770       // Compute type- and value-dependence.
3771       Expr *Index = IndexExprs[IndexIdx];
3772       if (Index->isTypeDependent() || Index->isValueDependent())
3773         ExprBits.TypeDependent = ExprBits.ValueDependent = true;
3774       if (Index->isInstantiationDependent())
3775         ExprBits.InstantiationDependent = true;
3776       // Propagate unexpanded parameter packs.
3777       if (Index->containsUnexpandedParameterPack())
3778         ExprBits.ContainsUnexpandedParameterPack = true;
3779 
3780       // Copy the index expressions into permanent storage.
3781       *Child++ = IndexExprs[IndexIdx++];
3782     } else if (this->Designators[I].isArrayRangeDesignator()) {
3783       // Compute type- and value-dependence.
3784       Expr *Start = IndexExprs[IndexIdx];
3785       Expr *End = IndexExprs[IndexIdx + 1];
3786       if (Start->isTypeDependent() || Start->isValueDependent() ||
3787           End->isTypeDependent() || End->isValueDependent()) {
3788         ExprBits.TypeDependent = ExprBits.ValueDependent = true;
3789         ExprBits.InstantiationDependent = true;
3790       } else if (Start->isInstantiationDependent() ||
3791                  End->isInstantiationDependent()) {
3792         ExprBits.InstantiationDependent = true;
3793       }
3794 
3795       // Propagate unexpanded parameter packs.
3796       if (Start->containsUnexpandedParameterPack() ||
3797           End->containsUnexpandedParameterPack())
3798         ExprBits.ContainsUnexpandedParameterPack = true;
3799 
3800       // Copy the start/end expressions into permanent storage.
3801       *Child++ = IndexExprs[IndexIdx++];
3802       *Child++ = IndexExprs[IndexIdx++];
3803     }
3804   }
3805 
3806   assert(IndexIdx == IndexExprs.size() && "Wrong number of index expressions");
3807 }
3808 
3809 DesignatedInitExpr *
3810 DesignatedInitExpr::Create(const ASTContext &C,
3811                            llvm::ArrayRef<Designator> Designators,
3812                            ArrayRef<Expr*> IndexExprs,
3813                            SourceLocation ColonOrEqualLoc,
3814                            bool UsesColonSyntax, Expr *Init) {
3815   void *Mem = C.Allocate(totalSizeToAlloc<Stmt *>(IndexExprs.size() + 1),
3816                          alignof(DesignatedInitExpr));
3817   return new (Mem) DesignatedInitExpr(C, C.VoidTy, Designators,
3818                                       ColonOrEqualLoc, UsesColonSyntax,
3819                                       IndexExprs, Init);
3820 }
3821 
3822 DesignatedInitExpr *DesignatedInitExpr::CreateEmpty(const ASTContext &C,
3823                                                     unsigned NumIndexExprs) {
3824   void *Mem = C.Allocate(totalSizeToAlloc<Stmt *>(NumIndexExprs + 1),
3825                          alignof(DesignatedInitExpr));
3826   return new (Mem) DesignatedInitExpr(NumIndexExprs + 1);
3827 }
3828 
3829 void DesignatedInitExpr::setDesignators(const ASTContext &C,
3830                                         const Designator *Desigs,
3831                                         unsigned NumDesigs) {
3832   Designators = new (C) Designator[NumDesigs];
3833   NumDesignators = NumDesigs;
3834   for (unsigned I = 0; I != NumDesigs; ++I)
3835     Designators[I] = Desigs[I];
3836 }
3837 
3838 SourceRange DesignatedInitExpr::getDesignatorsSourceRange() const {
3839   DesignatedInitExpr *DIE = const_cast<DesignatedInitExpr*>(this);
3840   if (size() == 1)
3841     return DIE->getDesignator(0)->getSourceRange();
3842   return SourceRange(DIE->getDesignator(0)->getLocStart(),
3843                      DIE->getDesignator(size()-1)->getLocEnd());
3844 }
3845 
3846 SourceLocation DesignatedInitExpr::getLocStart() const {
3847   SourceLocation StartLoc;
3848   auto *DIE = const_cast<DesignatedInitExpr *>(this);
3849   Designator &First = *DIE->getDesignator(0);
3850   if (First.isFieldDesignator()) {
3851     if (GNUSyntax)
3852       StartLoc = SourceLocation::getFromRawEncoding(First.Field.FieldLoc);
3853     else
3854       StartLoc = SourceLocation::getFromRawEncoding(First.Field.DotLoc);
3855   } else
3856     StartLoc =
3857       SourceLocation::getFromRawEncoding(First.ArrayOrRange.LBracketLoc);
3858   return StartLoc;
3859 }
3860 
3861 SourceLocation DesignatedInitExpr::getLocEnd() const {
3862   return getInit()->getLocEnd();
3863 }
3864 
3865 Expr *DesignatedInitExpr::getArrayIndex(const Designator& D) const {
3866   assert(D.Kind == Designator::ArrayDesignator && "Requires array designator");
3867   return getSubExpr(D.ArrayOrRange.Index + 1);
3868 }
3869 
3870 Expr *DesignatedInitExpr::getArrayRangeStart(const Designator &D) const {
3871   assert(D.Kind == Designator::ArrayRangeDesignator &&
3872          "Requires array range designator");
3873   return getSubExpr(D.ArrayOrRange.Index + 1);
3874 }
3875 
3876 Expr *DesignatedInitExpr::getArrayRangeEnd(const Designator &D) const {
3877   assert(D.Kind == Designator::ArrayRangeDesignator &&
3878          "Requires array range designator");
3879   return getSubExpr(D.ArrayOrRange.Index + 2);
3880 }
3881 
3882 /// Replaces the designator at index @p Idx with the series
3883 /// of designators in [First, Last).
3884 void DesignatedInitExpr::ExpandDesignator(const ASTContext &C, unsigned Idx,
3885                                           const Designator *First,
3886                                           const Designator *Last) {
3887   unsigned NumNewDesignators = Last - First;
3888   if (NumNewDesignators == 0) {
3889     std::copy_backward(Designators + Idx + 1,
3890                        Designators + NumDesignators,
3891                        Designators + Idx);
3892     --NumNewDesignators;
3893     return;
3894   } else if (NumNewDesignators == 1) {
3895     Designators[Idx] = *First;
3896     return;
3897   }
3898 
3899   Designator *NewDesignators
3900     = new (C) Designator[NumDesignators - 1 + NumNewDesignators];
3901   std::copy(Designators, Designators + Idx, NewDesignators);
3902   std::copy(First, Last, NewDesignators + Idx);
3903   std::copy(Designators + Idx + 1, Designators + NumDesignators,
3904             NewDesignators + Idx + NumNewDesignators);
3905   Designators = NewDesignators;
3906   NumDesignators = NumDesignators - 1 + NumNewDesignators;
3907 }
3908 
3909 DesignatedInitUpdateExpr::DesignatedInitUpdateExpr(const ASTContext &C,
3910     SourceLocation lBraceLoc, Expr *baseExpr, SourceLocation rBraceLoc)
3911   : Expr(DesignatedInitUpdateExprClass, baseExpr->getType(), VK_RValue,
3912          OK_Ordinary, false, false, false, false) {
3913   BaseAndUpdaterExprs[0] = baseExpr;
3914 
3915   InitListExpr *ILE = new (C) InitListExpr(C, lBraceLoc, None, rBraceLoc);
3916   ILE->setType(baseExpr->getType());
3917   BaseAndUpdaterExprs[1] = ILE;
3918 }
3919 
3920 SourceLocation DesignatedInitUpdateExpr::getLocStart() const {
3921   return getBase()->getLocStart();
3922 }
3923 
3924 SourceLocation DesignatedInitUpdateExpr::getLocEnd() const {
3925   return getBase()->getLocEnd();
3926 }
3927 
3928 ParenListExpr::ParenListExpr(const ASTContext& C, SourceLocation lparenloc,
3929                              ArrayRef<Expr*> exprs,
3930                              SourceLocation rparenloc)
3931   : Expr(ParenListExprClass, QualType(), VK_RValue, OK_Ordinary,
3932          false, false, false, false),
3933     NumExprs(exprs.size()), LParenLoc(lparenloc), RParenLoc(rparenloc) {
3934   Exprs = new (C) Stmt*[exprs.size()];
3935   for (unsigned i = 0; i != exprs.size(); ++i) {
3936     if (exprs[i]->isTypeDependent())
3937       ExprBits.TypeDependent = true;
3938     if (exprs[i]->isValueDependent())
3939       ExprBits.ValueDependent = true;
3940     if (exprs[i]->isInstantiationDependent())
3941       ExprBits.InstantiationDependent = true;
3942     if (exprs[i]->containsUnexpandedParameterPack())
3943       ExprBits.ContainsUnexpandedParameterPack = true;
3944 
3945     Exprs[i] = exprs[i];
3946   }
3947 }
3948 
3949 const OpaqueValueExpr *OpaqueValueExpr::findInCopyConstruct(const Expr *e) {
3950   if (const ExprWithCleanups *ewc = dyn_cast<ExprWithCleanups>(e))
3951     e = ewc->getSubExpr();
3952   if (const MaterializeTemporaryExpr *m = dyn_cast<MaterializeTemporaryExpr>(e))
3953     e = m->GetTemporaryExpr();
3954   e = cast<CXXConstructExpr>(e)->getArg(0);
3955   while (const ImplicitCastExpr *ice = dyn_cast<ImplicitCastExpr>(e))
3956     e = ice->getSubExpr();
3957   return cast<OpaqueValueExpr>(e);
3958 }
3959 
3960 PseudoObjectExpr *PseudoObjectExpr::Create(const ASTContext &Context,
3961                                            EmptyShell sh,
3962                                            unsigned numSemanticExprs) {
3963   void *buffer =
3964       Context.Allocate(totalSizeToAlloc<Expr *>(1 + numSemanticExprs),
3965                        alignof(PseudoObjectExpr));
3966   return new(buffer) PseudoObjectExpr(sh, numSemanticExprs);
3967 }
3968 
3969 PseudoObjectExpr::PseudoObjectExpr(EmptyShell shell, unsigned numSemanticExprs)
3970   : Expr(PseudoObjectExprClass, shell) {
3971   PseudoObjectExprBits.NumSubExprs = numSemanticExprs + 1;
3972 }
3973 
3974 PseudoObjectExpr *PseudoObjectExpr::Create(const ASTContext &C, Expr *syntax,
3975                                            ArrayRef<Expr*> semantics,
3976                                            unsigned resultIndex) {
3977   assert(syntax && "no syntactic expression!");
3978   assert(semantics.size() && "no semantic expressions!");
3979 
3980   QualType type;
3981   ExprValueKind VK;
3982   if (resultIndex == NoResult) {
3983     type = C.VoidTy;
3984     VK = VK_RValue;
3985   } else {
3986     assert(resultIndex < semantics.size());
3987     type = semantics[resultIndex]->getType();
3988     VK = semantics[resultIndex]->getValueKind();
3989     assert(semantics[resultIndex]->getObjectKind() == OK_Ordinary);
3990   }
3991 
3992   void *buffer = C.Allocate(totalSizeToAlloc<Expr *>(semantics.size() + 1),
3993                             alignof(PseudoObjectExpr));
3994   return new(buffer) PseudoObjectExpr(type, VK, syntax, semantics,
3995                                       resultIndex);
3996 }
3997 
3998 PseudoObjectExpr::PseudoObjectExpr(QualType type, ExprValueKind VK,
3999                                    Expr *syntax, ArrayRef<Expr*> semantics,
4000                                    unsigned resultIndex)
4001   : Expr(PseudoObjectExprClass, type, VK, OK_Ordinary,
4002          /*filled in at end of ctor*/ false, false, false, false) {
4003   PseudoObjectExprBits.NumSubExprs = semantics.size() + 1;
4004   PseudoObjectExprBits.ResultIndex = resultIndex + 1;
4005 
4006   for (unsigned i = 0, e = semantics.size() + 1; i != e; ++i) {
4007     Expr *E = (i == 0 ? syntax : semantics[i-1]);
4008     getSubExprsBuffer()[i] = E;
4009 
4010     if (E->isTypeDependent())
4011       ExprBits.TypeDependent = true;
4012     if (E->isValueDependent())
4013       ExprBits.ValueDependent = true;
4014     if (E->isInstantiationDependent())
4015       ExprBits.InstantiationDependent = true;
4016     if (E->containsUnexpandedParameterPack())
4017       ExprBits.ContainsUnexpandedParameterPack = true;
4018 
4019     if (isa<OpaqueValueExpr>(E))
4020       assert(cast<OpaqueValueExpr>(E)->getSourceExpr() != nullptr &&
4021              "opaque-value semantic expressions for pseudo-object "
4022              "operations must have sources");
4023   }
4024 }
4025 
4026 //===----------------------------------------------------------------------===//
4027 //  Child Iterators for iterating over subexpressions/substatements
4028 //===----------------------------------------------------------------------===//
4029 
4030 // UnaryExprOrTypeTraitExpr
4031 Stmt::child_range UnaryExprOrTypeTraitExpr::children() {
4032   const_child_range CCR =
4033       const_cast<const UnaryExprOrTypeTraitExpr *>(this)->children();
4034   return child_range(cast_away_const(CCR.begin()), cast_away_const(CCR.end()));
4035 }
4036 
4037 Stmt::const_child_range UnaryExprOrTypeTraitExpr::children() const {
4038   // If this is of a type and the type is a VLA type (and not a typedef), the
4039   // size expression of the VLA needs to be treated as an executable expression.
4040   // Why isn't this weirdness documented better in StmtIterator?
4041   if (isArgumentType()) {
4042     if (const VariableArrayType *T =
4043             dyn_cast<VariableArrayType>(getArgumentType().getTypePtr()))
4044       return const_child_range(const_child_iterator(T), const_child_iterator());
4045     return const_child_range(const_child_iterator(), const_child_iterator());
4046   }
4047   return const_child_range(&Argument.Ex, &Argument.Ex + 1);
4048 }
4049 
4050 AtomicExpr::AtomicExpr(SourceLocation BLoc, ArrayRef<Expr*> args,
4051                        QualType t, AtomicOp op, SourceLocation RP)
4052   : Expr(AtomicExprClass, t, VK_RValue, OK_Ordinary,
4053          false, false, false, false),
4054     NumSubExprs(args.size()), BuiltinLoc(BLoc), RParenLoc(RP), Op(op)
4055 {
4056   assert(args.size() == getNumSubExprs(op) && "wrong number of subexpressions");
4057   for (unsigned i = 0; i != args.size(); i++) {
4058     if (args[i]->isTypeDependent())
4059       ExprBits.TypeDependent = true;
4060     if (args[i]->isValueDependent())
4061       ExprBits.ValueDependent = true;
4062     if (args[i]->isInstantiationDependent())
4063       ExprBits.InstantiationDependent = true;
4064     if (args[i]->containsUnexpandedParameterPack())
4065       ExprBits.ContainsUnexpandedParameterPack = true;
4066 
4067     SubExprs[i] = args[i];
4068   }
4069 }
4070 
4071 unsigned AtomicExpr::getNumSubExprs(AtomicOp Op) {
4072   switch (Op) {
4073   case AO__c11_atomic_init:
4074   case AO__opencl_atomic_init:
4075   case AO__c11_atomic_load:
4076   case AO__atomic_load_n:
4077     return 2;
4078 
4079   case AO__opencl_atomic_load:
4080   case AO__c11_atomic_store:
4081   case AO__c11_atomic_exchange:
4082   case AO__atomic_load:
4083   case AO__atomic_store:
4084   case AO__atomic_store_n:
4085   case AO__atomic_exchange_n:
4086   case AO__c11_atomic_fetch_add:
4087   case AO__c11_atomic_fetch_sub:
4088   case AO__c11_atomic_fetch_and:
4089   case AO__c11_atomic_fetch_or:
4090   case AO__c11_atomic_fetch_xor:
4091   case AO__atomic_fetch_add:
4092   case AO__atomic_fetch_sub:
4093   case AO__atomic_fetch_and:
4094   case AO__atomic_fetch_or:
4095   case AO__atomic_fetch_xor:
4096   case AO__atomic_fetch_nand:
4097   case AO__atomic_add_fetch:
4098   case AO__atomic_sub_fetch:
4099   case AO__atomic_and_fetch:
4100   case AO__atomic_or_fetch:
4101   case AO__atomic_xor_fetch:
4102   case AO__atomic_nand_fetch:
4103   case AO__atomic_fetch_min:
4104   case AO__atomic_fetch_max:
4105     return 3;
4106 
4107   case AO__opencl_atomic_store:
4108   case AO__opencl_atomic_exchange:
4109   case AO__opencl_atomic_fetch_add:
4110   case AO__opencl_atomic_fetch_sub:
4111   case AO__opencl_atomic_fetch_and:
4112   case AO__opencl_atomic_fetch_or:
4113   case AO__opencl_atomic_fetch_xor:
4114   case AO__opencl_atomic_fetch_min:
4115   case AO__opencl_atomic_fetch_max:
4116   case AO__atomic_exchange:
4117     return 4;
4118 
4119   case AO__c11_atomic_compare_exchange_strong:
4120   case AO__c11_atomic_compare_exchange_weak:
4121     return 5;
4122 
4123   case AO__opencl_atomic_compare_exchange_strong:
4124   case AO__opencl_atomic_compare_exchange_weak:
4125   case AO__atomic_compare_exchange:
4126   case AO__atomic_compare_exchange_n:
4127     return 6;
4128   }
4129   llvm_unreachable("unknown atomic op");
4130 }
4131 
4132 QualType AtomicExpr::getValueType() const {
4133   auto T = getPtr()->getType()->castAs<PointerType>()->getPointeeType();
4134   if (auto AT = T->getAs<AtomicType>())
4135     return AT->getValueType();
4136   return T;
4137 }
4138 
4139 QualType OMPArraySectionExpr::getBaseOriginalType(const Expr *Base) {
4140   unsigned ArraySectionCount = 0;
4141   while (auto *OASE = dyn_cast<OMPArraySectionExpr>(Base->IgnoreParens())) {
4142     Base = OASE->getBase();
4143     ++ArraySectionCount;
4144   }
4145   while (auto *ASE =
4146              dyn_cast<ArraySubscriptExpr>(Base->IgnoreParenImpCasts())) {
4147     Base = ASE->getBase();
4148     ++ArraySectionCount;
4149   }
4150   Base = Base->IgnoreParenImpCasts();
4151   auto OriginalTy = Base->getType();
4152   if (auto *DRE = dyn_cast<DeclRefExpr>(Base))
4153     if (auto *PVD = dyn_cast<ParmVarDecl>(DRE->getDecl()))
4154       OriginalTy = PVD->getOriginalType().getNonReferenceType();
4155 
4156   for (unsigned Cnt = 0; Cnt < ArraySectionCount; ++Cnt) {
4157     if (OriginalTy->isAnyPointerType())
4158       OriginalTy = OriginalTy->getPointeeType();
4159     else {
4160       assert (OriginalTy->isArrayType());
4161       OriginalTy = OriginalTy->castAsArrayTypeUnsafe()->getElementType();
4162     }
4163   }
4164   return OriginalTy;
4165 }
4166