xref: /llvm-project-15.0.7/clang/lib/AST/Expr.cpp (revision 89141b5a)
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/Expr.h"
15 #include "clang/AST/APValue.h"
16 #include "clang/AST/ASTContext.h"
17 #include "clang/AST/DeclObjC.h"
18 #include "clang/AST/DeclCXX.h"
19 #include "clang/AST/DeclTemplate.h"
20 #include "clang/AST/RecordLayout.h"
21 #include "clang/AST/StmtVisitor.h"
22 #include "clang/Basic/Builtins.h"
23 #include "clang/Basic/TargetInfo.h"
24 #include <algorithm>
25 using namespace clang;
26 
27 //===----------------------------------------------------------------------===//
28 // Primary Expressions.
29 //===----------------------------------------------------------------------===//
30 
31 PredefinedExpr* PredefinedExpr::Clone(ASTContext &C) const {
32   return new (C) PredefinedExpr(Loc, getType(), Type);
33 }
34 
35 IntegerLiteral* IntegerLiteral::Clone(ASTContext &C) const {
36   return new (C) IntegerLiteral(Value, getType(), Loc);
37 }
38 
39 CharacterLiteral* CharacterLiteral::Clone(ASTContext &C) const {
40   return new (C) CharacterLiteral(Value, IsWide, getType(), Loc);
41 }
42 
43 FloatingLiteral* FloatingLiteral::Clone(ASTContext &C) const {
44   return new (C) FloatingLiteral(Value, IsExact, getType(), Loc);
45 }
46 
47 ImaginaryLiteral* ImaginaryLiteral::Clone(ASTContext &C) const {
48   // FIXME: Use virtual Clone(), once it is available
49   Expr *ClonedVal = 0;
50   if (const IntegerLiteral *IntLit = dyn_cast<IntegerLiteral>(Val))
51     ClonedVal = IntLit->Clone(C);
52   else
53     ClonedVal = cast<FloatingLiteral>(Val)->Clone(C);
54   return new (C) ImaginaryLiteral(ClonedVal, getType());
55 }
56 
57 GNUNullExpr* GNUNullExpr::Clone(ASTContext &C) const {
58   return new (C) GNUNullExpr(getType(), TokenLoc);
59 }
60 
61 /// getValueAsApproximateDouble - This returns the value as an inaccurate
62 /// double.  Note that this may cause loss of precision, but is useful for
63 /// debugging dumps, etc.
64 double FloatingLiteral::getValueAsApproximateDouble() const {
65   llvm::APFloat V = getValue();
66   bool ignored;
67   V.convert(llvm::APFloat::IEEEdouble, llvm::APFloat::rmNearestTiesToEven,
68             &ignored);
69   return V.convertToDouble();
70 }
71 
72 StringLiteral *StringLiteral::Create(ASTContext &C, const char *StrData,
73                                      unsigned ByteLength, bool Wide,
74                                      QualType Ty,
75                                      const SourceLocation *Loc,
76                                      unsigned NumStrs) {
77   // Allocate enough space for the StringLiteral plus an array of locations for
78   // any concatenated string tokens.
79   void *Mem = C.Allocate(sizeof(StringLiteral)+
80                          sizeof(SourceLocation)*(NumStrs-1),
81                          llvm::alignof<StringLiteral>());
82   StringLiteral *SL = new (Mem) StringLiteral(Ty);
83 
84   // OPTIMIZE: could allocate this appended to the StringLiteral.
85   char *AStrData = new (C, 1) char[ByteLength];
86   memcpy(AStrData, StrData, ByteLength);
87   SL->StrData = AStrData;
88   SL->ByteLength = ByteLength;
89   SL->IsWide = Wide;
90   SL->TokLocs[0] = Loc[0];
91   SL->NumConcatenated = NumStrs;
92 
93   if (NumStrs != 1)
94     memcpy(&SL->TokLocs[1], Loc+1, sizeof(SourceLocation)*(NumStrs-1));
95   return SL;
96 }
97 
98 StringLiteral *StringLiteral::CreateEmpty(ASTContext &C, unsigned NumStrs) {
99   void *Mem = C.Allocate(sizeof(StringLiteral)+
100                          sizeof(SourceLocation)*(NumStrs-1),
101                          llvm::alignof<StringLiteral>());
102   StringLiteral *SL = new (Mem) StringLiteral(QualType());
103   SL->StrData = 0;
104   SL->ByteLength = 0;
105   SL->NumConcatenated = NumStrs;
106   return SL;
107 }
108 
109 StringLiteral* StringLiteral::Clone(ASTContext &C) const {
110   return Create(C, StrData, ByteLength, IsWide, getType(),
111                 TokLocs, NumConcatenated);
112 }
113 
114 void StringLiteral::Destroy(ASTContext &C) {
115   C.Deallocate(const_cast<char*>(StrData));
116   this->~StringLiteral();
117   C.Deallocate(this);
118 }
119 
120 void StringLiteral::setStrData(ASTContext &C, const char *Str, unsigned Len) {
121   if (StrData)
122     C.Deallocate(const_cast<char*>(StrData));
123 
124   char *AStrData = new (C, 1) char[Len];
125   memcpy(AStrData, Str, Len);
126   StrData = AStrData;
127   ByteLength = Len;
128 }
129 
130 /// getOpcodeStr - Turn an Opcode enum value into the punctuation char it
131 /// corresponds to, e.g. "sizeof" or "[pre]++".
132 const char *UnaryOperator::getOpcodeStr(Opcode Op) {
133   switch (Op) {
134   default: assert(0 && "Unknown unary operator");
135   case PostInc: return "++";
136   case PostDec: return "--";
137   case PreInc:  return "++";
138   case PreDec:  return "--";
139   case AddrOf:  return "&";
140   case Deref:   return "*";
141   case Plus:    return "+";
142   case Minus:   return "-";
143   case Not:     return "~";
144   case LNot:    return "!";
145   case Real:    return "__real";
146   case Imag:    return "__imag";
147   case Extension: return "__extension__";
148   case OffsetOf: return "__builtin_offsetof";
149   }
150 }
151 
152 UnaryOperator::Opcode
153 UnaryOperator::getOverloadedOpcode(OverloadedOperatorKind OO, bool Postfix) {
154   switch (OO) {
155   default: assert(false && "No unary operator for overloaded function");
156   case OO_PlusPlus:   return Postfix ? PostInc : PreInc;
157   case OO_MinusMinus: return Postfix ? PostDec : PreDec;
158   case OO_Amp:        return AddrOf;
159   case OO_Star:       return Deref;
160   case OO_Plus:       return Plus;
161   case OO_Minus:      return Minus;
162   case OO_Tilde:      return Not;
163   case OO_Exclaim:    return LNot;
164   }
165 }
166 
167 OverloadedOperatorKind UnaryOperator::getOverloadedOperator(Opcode Opc) {
168   switch (Opc) {
169   case PostInc: case PreInc: return OO_PlusPlus;
170   case PostDec: case PreDec: return OO_MinusMinus;
171   case AddrOf: return OO_Amp;
172   case Deref: return OO_Star;
173   case Plus: return OO_Plus;
174   case Minus: return OO_Minus;
175   case Not: return OO_Tilde;
176   case LNot: return OO_Exclaim;
177   default: return OO_None;
178   }
179 }
180 
181 
182 //===----------------------------------------------------------------------===//
183 // Postfix Operators.
184 //===----------------------------------------------------------------------===//
185 
186 CallExpr::CallExpr(ASTContext& C, StmtClass SC, Expr *fn, Expr **args,
187                    unsigned numargs, QualType t, SourceLocation rparenloc)
188   : Expr(SC, t,
189          fn->isTypeDependent() || hasAnyTypeDependentArguments(args, numargs),
190          fn->isValueDependent() || hasAnyValueDependentArguments(args,numargs)),
191     NumArgs(numargs) {
192 
193   SubExprs = new (C) Stmt*[numargs+1];
194   SubExprs[FN] = fn;
195   for (unsigned i = 0; i != numargs; ++i)
196     SubExprs[i+ARGS_START] = args[i];
197 
198   RParenLoc = rparenloc;
199 }
200 
201 CallExpr::CallExpr(ASTContext& C, Expr *fn, Expr **args, unsigned numargs,
202                    QualType t, SourceLocation rparenloc)
203   : Expr(CallExprClass, t,
204          fn->isTypeDependent() || hasAnyTypeDependentArguments(args, numargs),
205          fn->isValueDependent() || hasAnyValueDependentArguments(args,numargs)),
206     NumArgs(numargs) {
207 
208   SubExprs = new (C) Stmt*[numargs+1];
209   SubExprs[FN] = fn;
210   for (unsigned i = 0; i != numargs; ++i)
211     SubExprs[i+ARGS_START] = args[i];
212 
213   RParenLoc = rparenloc;
214 }
215 
216 CallExpr::CallExpr(ASTContext &C, EmptyShell Empty)
217   : Expr(CallExprClass, Empty), SubExprs(0), NumArgs(0) {
218   SubExprs = new (C) Stmt*[1];
219 }
220 
221 void CallExpr::Destroy(ASTContext& C) {
222   DestroyChildren(C);
223   if (SubExprs) C.Deallocate(SubExprs);
224   this->~CallExpr();
225   C.Deallocate(this);
226 }
227 
228 /// setNumArgs - This changes the number of arguments present in this call.
229 /// Any orphaned expressions are deleted by this, and any new operands are set
230 /// to null.
231 void CallExpr::setNumArgs(ASTContext& C, unsigned NumArgs) {
232   // No change, just return.
233   if (NumArgs == getNumArgs()) return;
234 
235   // If shrinking # arguments, just delete the extras and forgot them.
236   if (NumArgs < getNumArgs()) {
237     for (unsigned i = NumArgs, e = getNumArgs(); i != e; ++i)
238       getArg(i)->Destroy(C);
239     this->NumArgs = NumArgs;
240     return;
241   }
242 
243   // Otherwise, we are growing the # arguments.  New an bigger argument array.
244   Stmt **NewSubExprs = new Stmt*[NumArgs+1];
245   // Copy over args.
246   for (unsigned i = 0; i != getNumArgs()+ARGS_START; ++i)
247     NewSubExprs[i] = SubExprs[i];
248   // Null out new args.
249   for (unsigned i = getNumArgs()+ARGS_START; i != NumArgs+ARGS_START; ++i)
250     NewSubExprs[i] = 0;
251 
252   if (SubExprs) C.Deallocate(SubExprs);
253   SubExprs = NewSubExprs;
254   this->NumArgs = NumArgs;
255 }
256 
257 /// isBuiltinCall - If this is a call to a builtin, return the builtin ID.  If
258 /// not, return 0.
259 unsigned CallExpr::isBuiltinCall(ASTContext &Context) const {
260   // All simple function calls (e.g. func()) are implicitly cast to pointer to
261   // function. As a result, we try and obtain the DeclRefExpr from the
262   // ImplicitCastExpr.
263   const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(getCallee());
264   if (!ICE) // FIXME: deal with more complex calls (e.g. (func)(), (*func)()).
265     return 0;
266 
267   const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(ICE->getSubExpr());
268   if (!DRE)
269     return 0;
270 
271   const FunctionDecl *FDecl = dyn_cast<FunctionDecl>(DRE->getDecl());
272   if (!FDecl)
273     return 0;
274 
275   if (!FDecl->getIdentifier())
276     return 0;
277 
278   return FDecl->getBuiltinID(Context);
279 }
280 
281 QualType CallExpr::getCallReturnType() const {
282   QualType CalleeType = getCallee()->getType();
283   if (const PointerType *FnTypePtr = CalleeType->getAsPointerType())
284     CalleeType = FnTypePtr->getPointeeType();
285   else if (const BlockPointerType *BPT = CalleeType->getAsBlockPointerType())
286     CalleeType = BPT->getPointeeType();
287 
288   const FunctionType *FnType = CalleeType->getAsFunctionType();
289   return FnType->getResultType();
290 }
291 
292 /// getOpcodeStr - Turn an Opcode enum value into the punctuation char it
293 /// corresponds to, e.g. "<<=".
294 const char *BinaryOperator::getOpcodeStr(Opcode Op) {
295   switch (Op) {
296   case PtrMemD:   return ".*";
297   case PtrMemI:   return "->*";
298   case Mul:       return "*";
299   case Div:       return "/";
300   case Rem:       return "%";
301   case Add:       return "+";
302   case Sub:       return "-";
303   case Shl:       return "<<";
304   case Shr:       return ">>";
305   case LT:        return "<";
306   case GT:        return ">";
307   case LE:        return "<=";
308   case GE:        return ">=";
309   case EQ:        return "==";
310   case NE:        return "!=";
311   case And:       return "&";
312   case Xor:       return "^";
313   case Or:        return "|";
314   case LAnd:      return "&&";
315   case LOr:       return "||";
316   case Assign:    return "=";
317   case MulAssign: return "*=";
318   case DivAssign: return "/=";
319   case RemAssign: return "%=";
320   case AddAssign: return "+=";
321   case SubAssign: return "-=";
322   case ShlAssign: return "<<=";
323   case ShrAssign: return ">>=";
324   case AndAssign: return "&=";
325   case XorAssign: return "^=";
326   case OrAssign:  return "|=";
327   case Comma:     return ",";
328   }
329 
330   return "";
331 }
332 
333 BinaryOperator::Opcode
334 BinaryOperator::getOverloadedOpcode(OverloadedOperatorKind OO) {
335   switch (OO) {
336   default: assert(false && "Not an overloadable binary operator");
337   case OO_Plus: return Add;
338   case OO_Minus: return Sub;
339   case OO_Star: return Mul;
340   case OO_Slash: return Div;
341   case OO_Percent: return Rem;
342   case OO_Caret: return Xor;
343   case OO_Amp: return And;
344   case OO_Pipe: return Or;
345   case OO_Equal: return Assign;
346   case OO_Less: return LT;
347   case OO_Greater: return GT;
348   case OO_PlusEqual: return AddAssign;
349   case OO_MinusEqual: return SubAssign;
350   case OO_StarEqual: return MulAssign;
351   case OO_SlashEqual: return DivAssign;
352   case OO_PercentEqual: return RemAssign;
353   case OO_CaretEqual: return XorAssign;
354   case OO_AmpEqual: return AndAssign;
355   case OO_PipeEqual: return OrAssign;
356   case OO_LessLess: return Shl;
357   case OO_GreaterGreater: return Shr;
358   case OO_LessLessEqual: return ShlAssign;
359   case OO_GreaterGreaterEqual: return ShrAssign;
360   case OO_EqualEqual: return EQ;
361   case OO_ExclaimEqual: return NE;
362   case OO_LessEqual: return LE;
363   case OO_GreaterEqual: return GE;
364   case OO_AmpAmp: return LAnd;
365   case OO_PipePipe: return LOr;
366   case OO_Comma: return Comma;
367   case OO_ArrowStar: return PtrMemI;
368   }
369 }
370 
371 OverloadedOperatorKind BinaryOperator::getOverloadedOperator(Opcode Opc) {
372   static const OverloadedOperatorKind OverOps[] = {
373     /* .* Cannot be overloaded */OO_None, OO_ArrowStar,
374     OO_Star, OO_Slash, OO_Percent,
375     OO_Plus, OO_Minus,
376     OO_LessLess, OO_GreaterGreater,
377     OO_Less, OO_Greater, OO_LessEqual, OO_GreaterEqual,
378     OO_EqualEqual, OO_ExclaimEqual,
379     OO_Amp,
380     OO_Caret,
381     OO_Pipe,
382     OO_AmpAmp,
383     OO_PipePipe,
384     OO_Equal, OO_StarEqual,
385     OO_SlashEqual, OO_PercentEqual,
386     OO_PlusEqual, OO_MinusEqual,
387     OO_LessLessEqual, OO_GreaterGreaterEqual,
388     OO_AmpEqual, OO_CaretEqual,
389     OO_PipeEqual,
390     OO_Comma
391   };
392   return OverOps[Opc];
393 }
394 
395 InitListExpr::InitListExpr(SourceLocation lbraceloc,
396                            Expr **initExprs, unsigned numInits,
397                            SourceLocation rbraceloc)
398   : Expr(InitListExprClass, QualType(),
399          hasAnyTypeDependentArguments(initExprs, numInits),
400          hasAnyValueDependentArguments(initExprs, numInits)),
401     LBraceLoc(lbraceloc), RBraceLoc(rbraceloc), SyntacticForm(0),
402     UnionFieldInit(0), HadArrayRangeDesignator(false) {
403 
404   InitExprs.insert(InitExprs.end(), initExprs, initExprs+numInits);
405 }
406 
407 void InitListExpr::reserveInits(unsigned NumInits) {
408   if (NumInits > InitExprs.size())
409     InitExprs.reserve(NumInits);
410 }
411 
412 void InitListExpr::resizeInits(ASTContext &Context, unsigned NumInits) {
413   for (unsigned Idx = NumInits, LastIdx = InitExprs.size();
414        Idx < LastIdx; ++Idx)
415     InitExprs[Idx]->Destroy(Context);
416   InitExprs.resize(NumInits, 0);
417 }
418 
419 Expr *InitListExpr::updateInit(unsigned Init, Expr *expr) {
420   if (Init >= InitExprs.size()) {
421     InitExprs.insert(InitExprs.end(), Init - InitExprs.size() + 1, 0);
422     InitExprs.back() = expr;
423     return 0;
424   }
425 
426   Expr *Result = cast_or_null<Expr>(InitExprs[Init]);
427   InitExprs[Init] = expr;
428   return Result;
429 }
430 
431 /// getFunctionType - Return the underlying function type for this block.
432 ///
433 const FunctionType *BlockExpr::getFunctionType() const {
434   return getType()->getAsBlockPointerType()->
435                     getPointeeType()->getAsFunctionType();
436 }
437 
438 SourceLocation BlockExpr::getCaretLocation() const {
439   return TheBlock->getCaretLocation();
440 }
441 const Stmt *BlockExpr::getBody() const {
442   return TheBlock->getBody();
443 }
444 Stmt *BlockExpr::getBody() {
445   return TheBlock->getBody();
446 }
447 
448 
449 //===----------------------------------------------------------------------===//
450 // Generic Expression Routines
451 //===----------------------------------------------------------------------===//
452 
453 /// isUnusedResultAWarning - Return true if this immediate expression should
454 /// be warned about if the result is unused.  If so, fill in Loc and Ranges
455 /// with location to warn on and the source range[s] to report with the
456 /// warning.
457 bool Expr::isUnusedResultAWarning(SourceLocation &Loc, SourceRange &R1,
458                                   SourceRange &R2) const {
459   // Don't warn if the expr is type dependent. The type could end up
460   // instantiating to void.
461   if (isTypeDependent())
462     return false;
463 
464   switch (getStmtClass()) {
465   default:
466     Loc = getExprLoc();
467     R1 = getSourceRange();
468     return true;
469   case ParenExprClass:
470     return cast<ParenExpr>(this)->getSubExpr()->
471       isUnusedResultAWarning(Loc, R1, R2);
472   case UnaryOperatorClass: {
473     const UnaryOperator *UO = cast<UnaryOperator>(this);
474 
475     switch (UO->getOpcode()) {
476     default: break;
477     case UnaryOperator::PostInc:
478     case UnaryOperator::PostDec:
479     case UnaryOperator::PreInc:
480     case UnaryOperator::PreDec:                 // ++/--
481       return false;  // Not a warning.
482     case UnaryOperator::Deref:
483       // Dereferencing a volatile pointer is a side-effect.
484       if (getType().isVolatileQualified())
485         return false;
486       break;
487     case UnaryOperator::Real:
488     case UnaryOperator::Imag:
489       // accessing a piece of a volatile complex is a side-effect.
490       if (UO->getSubExpr()->getType().isVolatileQualified())
491         return false;
492       break;
493     case UnaryOperator::Extension:
494       return UO->getSubExpr()->isUnusedResultAWarning(Loc, R1, R2);
495     }
496     Loc = UO->getOperatorLoc();
497     R1 = UO->getSubExpr()->getSourceRange();
498     return true;
499   }
500   case BinaryOperatorClass: {
501     const BinaryOperator *BO = cast<BinaryOperator>(this);
502     // Consider comma to have side effects if the LHS or RHS does.
503     if (BO->getOpcode() == BinaryOperator::Comma)
504       return BO->getRHS()->isUnusedResultAWarning(Loc, R1, R2) ||
505              BO->getLHS()->isUnusedResultAWarning(Loc, R1, R2);
506 
507     if (BO->isAssignmentOp())
508       return false;
509     Loc = BO->getOperatorLoc();
510     R1 = BO->getLHS()->getSourceRange();
511     R2 = BO->getRHS()->getSourceRange();
512     return true;
513   }
514   case CompoundAssignOperatorClass:
515     return false;
516 
517   case ConditionalOperatorClass: {
518     // The condition must be evaluated, but if either the LHS or RHS is a
519     // warning, warn about them.
520     const ConditionalOperator *Exp = cast<ConditionalOperator>(this);
521     if (Exp->getLHS() &&
522         Exp->getLHS()->isUnusedResultAWarning(Loc, R1, R2))
523       return true;
524     return Exp->getRHS()->isUnusedResultAWarning(Loc, R1, R2);
525   }
526 
527   case MemberExprClass:
528     // If the base pointer or element is to a volatile pointer/field, accessing
529     // it is a side effect.
530     if (getType().isVolatileQualified())
531       return false;
532     Loc = cast<MemberExpr>(this)->getMemberLoc();
533     R1 = SourceRange(Loc, Loc);
534     R2 = cast<MemberExpr>(this)->getBase()->getSourceRange();
535     return true;
536 
537   case ArraySubscriptExprClass:
538     // If the base pointer or element is to a volatile pointer/field, accessing
539     // it is a side effect.
540     if (getType().isVolatileQualified())
541       return false;
542     Loc = cast<ArraySubscriptExpr>(this)->getRBracketLoc();
543     R1 = cast<ArraySubscriptExpr>(this)->getLHS()->getSourceRange();
544     R2 = cast<ArraySubscriptExpr>(this)->getRHS()->getSourceRange();
545     return true;
546 
547   case CallExprClass:
548   case CXXOperatorCallExprClass:
549   case CXXMemberCallExprClass: {
550     // If this is a direct call, get the callee.
551     const CallExpr *CE = cast<CallExpr>(this);
552     const Expr *CalleeExpr = CE->getCallee()->IgnoreParenCasts();
553     if (const DeclRefExpr *CalleeDRE = dyn_cast<DeclRefExpr>(CalleeExpr)) {
554       // If the callee has attribute pure, const, or warn_unused_result, warn
555       // about it. void foo() { strlen("bar"); } should warn.
556       if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(CalleeDRE->getDecl()))
557         if (FD->getAttr<WarnUnusedResultAttr>() ||
558             FD->getAttr<PureAttr>() || FD->getAttr<ConstAttr>()) {
559           Loc = CE->getCallee()->getLocStart();
560           R1 = CE->getCallee()->getSourceRange();
561 
562           if (unsigned NumArgs = CE->getNumArgs())
563             R2 = SourceRange(CE->getArg(0)->getLocStart(),
564                              CE->getArg(NumArgs-1)->getLocEnd());
565           return true;
566         }
567     }
568     return false;
569   }
570   case ObjCMessageExprClass:
571     return false;
572   case StmtExprClass: {
573     // Statement exprs don't logically have side effects themselves, but are
574     // sometimes used in macros in ways that give them a type that is unused.
575     // For example ({ blah; foo(); }) will end up with a type if foo has a type.
576     // however, if the result of the stmt expr is dead, we don't want to emit a
577     // warning.
578     const CompoundStmt *CS = cast<StmtExpr>(this)->getSubStmt();
579     if (!CS->body_empty())
580       if (const Expr *E = dyn_cast<Expr>(CS->body_back()))
581         return E->isUnusedResultAWarning(Loc, R1, R2);
582 
583     Loc = cast<StmtExpr>(this)->getLParenLoc();
584     R1 = getSourceRange();
585     return true;
586   }
587   case CStyleCastExprClass:
588     // If this is a cast to void, check the operand.  Otherwise, the result of
589     // the cast is unused.
590     if (getType()->isVoidType())
591       return cast<CastExpr>(this)->getSubExpr()
592                ->isUnusedResultAWarning(Loc, R1, R2);
593     Loc = cast<CStyleCastExpr>(this)->getLParenLoc();
594     R1 = cast<CStyleCastExpr>(this)->getSubExpr()->getSourceRange();
595     return true;
596   case CXXFunctionalCastExprClass:
597     // If this is a cast to void, check the operand.  Otherwise, the result of
598     // the cast is unused.
599     if (getType()->isVoidType())
600       return cast<CastExpr>(this)->getSubExpr()
601                ->isUnusedResultAWarning(Loc, R1, R2);
602     Loc = cast<CXXFunctionalCastExpr>(this)->getTypeBeginLoc();
603     R1 = cast<CXXFunctionalCastExpr>(this)->getSubExpr()->getSourceRange();
604     return true;
605 
606   case ImplicitCastExprClass:
607     // Check the operand, since implicit casts are inserted by Sema
608     return cast<ImplicitCastExpr>(this)
609       ->getSubExpr()->isUnusedResultAWarning(Loc, R1, R2);
610 
611   case CXXDefaultArgExprClass:
612     return cast<CXXDefaultArgExpr>(this)
613       ->getExpr()->isUnusedResultAWarning(Loc, R1, R2);
614 
615   case CXXNewExprClass:
616     // FIXME: In theory, there might be new expressions that don't have side
617     // effects (e.g. a placement new with an uninitialized POD).
618   case CXXDeleteExprClass:
619     return false;
620   case CXXExprWithTemporariesClass:
621     return cast<CXXExprWithTemporaries>(this)
622       ->getSubExpr()->isUnusedResultAWarning(Loc, R1, R2);
623   }
624 }
625 
626 /// DeclCanBeLvalue - Determine whether the given declaration can be
627 /// an lvalue. This is a helper routine for isLvalue.
628 static bool DeclCanBeLvalue(const NamedDecl *Decl, ASTContext &Ctx) {
629   // C++ [temp.param]p6:
630   //   A non-type non-reference template-parameter is not an lvalue.
631   if (const NonTypeTemplateParmDecl *NTTParm
632         = dyn_cast<NonTypeTemplateParmDecl>(Decl))
633     return NTTParm->getType()->isReferenceType();
634 
635   return isa<VarDecl>(Decl) || isa<FieldDecl>(Decl) ||
636     // C++ 3.10p2: An lvalue refers to an object or function.
637     (Ctx.getLangOptions().CPlusPlus &&
638      (isa<FunctionDecl>(Decl) || isa<OverloadedFunctionDecl>(Decl)));
639 }
640 
641 /// isLvalue - C99 6.3.2.1: an lvalue is an expression with an object type or an
642 /// incomplete type other than void. Nonarray expressions that can be lvalues:
643 ///  - name, where name must be a variable
644 ///  - e[i]
645 ///  - (e), where e must be an lvalue
646 ///  - e.name, where e must be an lvalue
647 ///  - e->name
648 ///  - *e, the type of e cannot be a function type
649 ///  - string-constant
650 ///  - (__real__ e) and (__imag__ e) where e is an lvalue  [GNU extension]
651 ///  - reference type [C++ [expr]]
652 ///
653 Expr::isLvalueResult Expr::isLvalue(ASTContext &Ctx) const {
654   assert(!TR->isReferenceType() && "Expressions can't have reference type.");
655 
656   isLvalueResult Res = isLvalueInternal(Ctx);
657   if (Res != LV_Valid || Ctx.getLangOptions().CPlusPlus)
658     return Res;
659 
660   // first, check the type (C99 6.3.2.1). Expressions with function
661   // type in C are not lvalues, but they can be lvalues in C++.
662   if (TR->isFunctionType())
663     return LV_NotObjectType;
664 
665   // Allow qualified void which is an incomplete type other than void (yuck).
666   if (TR->isVoidType() && !Ctx.getCanonicalType(TR).getCVRQualifiers())
667     return LV_IncompleteVoidType;
668 
669   return LV_Valid;
670 }
671 
672 // Check whether the expression can be sanely treated like an l-value
673 Expr::isLvalueResult Expr::isLvalueInternal(ASTContext &Ctx) const {
674   switch (getStmtClass()) {
675   case StringLiteralClass:  // C99 6.5.1p4
676   case ObjCEncodeExprClass: // @encode behaves like its string in every way.
677     return LV_Valid;
678   case ArraySubscriptExprClass: // C99 6.5.3p4 (e1[e2] == (*((e1)+(e2))))
679     // For vectors, make sure base is an lvalue (i.e. not a function call).
680     if (cast<ArraySubscriptExpr>(this)->getBase()->getType()->isVectorType())
681       return cast<ArraySubscriptExpr>(this)->getBase()->isLvalue(Ctx);
682     return LV_Valid;
683   case DeclRefExprClass:
684   case QualifiedDeclRefExprClass: { // C99 6.5.1p2
685     const NamedDecl *RefdDecl = cast<DeclRefExpr>(this)->getDecl();
686     if (DeclCanBeLvalue(RefdDecl, Ctx))
687       return LV_Valid;
688     break;
689   }
690   case BlockDeclRefExprClass: {
691     const BlockDeclRefExpr *BDR = cast<BlockDeclRefExpr>(this);
692     if (isa<VarDecl>(BDR->getDecl()))
693       return LV_Valid;
694     break;
695   }
696   case MemberExprClass: {
697     const MemberExpr *m = cast<MemberExpr>(this);
698     if (Ctx.getLangOptions().CPlusPlus) { // C++ [expr.ref]p4:
699       NamedDecl *Member = m->getMemberDecl();
700       // C++ [expr.ref]p4:
701       //   If E2 is declared to have type "reference to T", then E1.E2
702       //   is an lvalue.
703       if (ValueDecl *Value = dyn_cast<ValueDecl>(Member))
704         if (Value->getType()->isReferenceType())
705           return LV_Valid;
706 
707       //   -- If E2 is a static data member [...] then E1.E2 is an lvalue.
708       if (isa<VarDecl>(Member) && Member->getDeclContext()->isRecord())
709         return LV_Valid;
710 
711       //   -- If E2 is a non-static data member [...]. If E1 is an
712       //      lvalue, then E1.E2 is an lvalue.
713       if (isa<FieldDecl>(Member))
714         return m->isArrow() ? LV_Valid : m->getBase()->isLvalue(Ctx);
715 
716       //   -- If it refers to a static member function [...], then
717       //      E1.E2 is an lvalue.
718       //   -- Otherwise, if E1.E2 refers to a non-static member
719       //      function [...], then E1.E2 is not an lvalue.
720       if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Member))
721         return Method->isStatic()? LV_Valid : LV_MemberFunction;
722 
723       //   -- If E2 is a member enumerator [...], the expression E1.E2
724       //      is not an lvalue.
725       if (isa<EnumConstantDecl>(Member))
726         return LV_InvalidExpression;
727 
728         // Not an lvalue.
729       return LV_InvalidExpression;
730     }
731 
732     // C99 6.5.2.3p4
733     return m->isArrow() ? LV_Valid : m->getBase()->isLvalue(Ctx);
734   }
735   case UnaryOperatorClass:
736     if (cast<UnaryOperator>(this)->getOpcode() == UnaryOperator::Deref)
737       return LV_Valid; // C99 6.5.3p4
738 
739     if (cast<UnaryOperator>(this)->getOpcode() == UnaryOperator::Real ||
740         cast<UnaryOperator>(this)->getOpcode() == UnaryOperator::Imag ||
741         cast<UnaryOperator>(this)->getOpcode() == UnaryOperator::Extension)
742       return cast<UnaryOperator>(this)->getSubExpr()->isLvalue(Ctx);  // GNU.
743 
744     if (Ctx.getLangOptions().CPlusPlus && // C++ [expr.pre.incr]p1
745         (cast<UnaryOperator>(this)->getOpcode() == UnaryOperator::PreInc ||
746          cast<UnaryOperator>(this)->getOpcode() == UnaryOperator::PreDec))
747       return LV_Valid;
748     break;
749   case ImplicitCastExprClass:
750     return cast<ImplicitCastExpr>(this)->isLvalueCast()? LV_Valid
751                                                        : LV_InvalidExpression;
752   case ParenExprClass: // C99 6.5.1p5
753     return cast<ParenExpr>(this)->getSubExpr()->isLvalue(Ctx);
754   case BinaryOperatorClass:
755   case CompoundAssignOperatorClass: {
756     const BinaryOperator *BinOp = cast<BinaryOperator>(this);
757 
758     if (Ctx.getLangOptions().CPlusPlus && // C++ [expr.comma]p1
759         BinOp->getOpcode() == BinaryOperator::Comma)
760       return BinOp->getRHS()->isLvalue(Ctx);
761 
762     // C++ [expr.mptr.oper]p6
763     if ((BinOp->getOpcode() == BinaryOperator::PtrMemD ||
764          BinOp->getOpcode() == BinaryOperator::PtrMemI) &&
765         !BinOp->getType()->isFunctionType())
766       return BinOp->getLHS()->isLvalue(Ctx);
767 
768     if (!BinOp->isAssignmentOp())
769       return LV_InvalidExpression;
770 
771     if (Ctx.getLangOptions().CPlusPlus)
772       // C++ [expr.ass]p1:
773       //   The result of an assignment operation [...] is an lvalue.
774       return LV_Valid;
775 
776 
777     // C99 6.5.16:
778     //   An assignment expression [...] is not an lvalue.
779     return LV_InvalidExpression;
780   }
781   case CallExprClass:
782   case CXXOperatorCallExprClass:
783   case CXXMemberCallExprClass: {
784     // C++0x [expr.call]p10
785     //   A function call is an lvalue if and only if the result type
786     //   is an lvalue reference.
787     QualType ReturnType = cast<CallExpr>(this)->getCallReturnType();
788     if (ReturnType->isLValueReferenceType())
789       return LV_Valid;
790 
791     break;
792   }
793   case CompoundLiteralExprClass: // C99 6.5.2.5p5
794     return LV_Valid;
795   case ChooseExprClass:
796     // __builtin_choose_expr is an lvalue if the selected operand is.
797     return cast<ChooseExpr>(this)->getChosenSubExpr(Ctx)->isLvalue(Ctx);
798   case ExtVectorElementExprClass:
799     if (cast<ExtVectorElementExpr>(this)->containsDuplicateElements())
800       return LV_DuplicateVectorComponents;
801     return LV_Valid;
802   case ObjCIvarRefExprClass: // ObjC instance variables are lvalues.
803     return LV_Valid;
804   case ObjCPropertyRefExprClass: // FIXME: check if read-only property.
805     return LV_Valid;
806   case ObjCKVCRefExprClass: // FIXME: check if read-only property.
807     return LV_Valid;
808   case PredefinedExprClass:
809     return LV_Valid;
810   case CXXDefaultArgExprClass:
811     return cast<CXXDefaultArgExpr>(this)->getExpr()->isLvalue(Ctx);
812   case CXXConditionDeclExprClass:
813     return LV_Valid;
814   case CStyleCastExprClass:
815   case CXXFunctionalCastExprClass:
816   case CXXStaticCastExprClass:
817   case CXXDynamicCastExprClass:
818   case CXXReinterpretCastExprClass:
819   case CXXConstCastExprClass:
820     // The result of an explicit cast is an lvalue if the type we are
821     // casting to is an lvalue reference type. See C++ [expr.cast]p1,
822     // C++ [expr.static.cast]p2, C++ [expr.dynamic.cast]p2,
823     // C++ [expr.reinterpret.cast]p1, C++ [expr.const.cast]p1.
824     if (cast<ExplicitCastExpr>(this)->getTypeAsWritten()->
825           isLValueReferenceType())
826       return LV_Valid;
827     break;
828   case CXXTypeidExprClass:
829     // C++ 5.2.8p1: The result of a typeid expression is an lvalue of ...
830     return LV_Valid;
831   case ConditionalOperatorClass: {
832     // Complicated handling is only for C++.
833     if (!Ctx.getLangOptions().CPlusPlus)
834       return LV_InvalidExpression;
835 
836     // Sema should have taken care to ensure that a CXXTemporaryObjectExpr is
837     // everywhere there's an object converted to an rvalue. Also, any other
838     // casts should be wrapped by ImplicitCastExprs. There's just the special
839     // case involving throws to work out.
840     const ConditionalOperator *Cond = cast<ConditionalOperator>(this);
841     Expr *True = Cond->getTrueExpr();
842     Expr *False = Cond->getFalseExpr();
843     // C++0x 5.16p2
844     //   If either the second or the third operand has type (cv) void, [...]
845     //   the result [...] is an rvalue.
846     if (True->getType()->isVoidType() || False->getType()->isVoidType())
847       return LV_InvalidExpression;
848 
849     // Both sides must be lvalues for the result to be an lvalue.
850     if (True->isLvalue(Ctx) != LV_Valid || False->isLvalue(Ctx) != LV_Valid)
851       return LV_InvalidExpression;
852 
853     // That's it.
854     return LV_Valid;
855   }
856 
857   default:
858     break;
859   }
860   return LV_InvalidExpression;
861 }
862 
863 /// isModifiableLvalue - C99 6.3.2.1: an lvalue that does not have array type,
864 /// does not have an incomplete type, does not have a const-qualified type, and
865 /// if it is a structure or union, does not have any member (including,
866 /// recursively, any member or element of all contained aggregates or unions)
867 /// with a const-qualified type.
868 Expr::isModifiableLvalueResult
869 Expr::isModifiableLvalue(ASTContext &Ctx, SourceLocation *Loc) const {
870   isLvalueResult lvalResult = isLvalue(Ctx);
871 
872   switch (lvalResult) {
873   case LV_Valid:
874     // C++ 3.10p11: Functions cannot be modified, but pointers to
875     // functions can be modifiable.
876     if (Ctx.getLangOptions().CPlusPlus && TR->isFunctionType())
877       return MLV_NotObjectType;
878     break;
879 
880   case LV_NotObjectType: return MLV_NotObjectType;
881   case LV_IncompleteVoidType: return MLV_IncompleteVoidType;
882   case LV_DuplicateVectorComponents: return MLV_DuplicateVectorComponents;
883   case LV_InvalidExpression:
884     // If the top level is a C-style cast, and the subexpression is a valid
885     // lvalue, then this is probably a use of the old-school "cast as lvalue"
886     // GCC extension.  We don't support it, but we want to produce good
887     // diagnostics when it happens so that the user knows why.
888     if (const CStyleCastExpr *CE = dyn_cast<CStyleCastExpr>(IgnoreParens())) {
889       if (CE->getSubExpr()->isLvalue(Ctx) == LV_Valid) {
890         if (Loc)
891           *Loc = CE->getLParenLoc();
892         return MLV_LValueCast;
893       }
894     }
895     return MLV_InvalidExpression;
896   case LV_MemberFunction: return MLV_MemberFunction;
897   }
898 
899   // The following is illegal:
900   //   void takeclosure(void (^C)(void));
901   //   void func() { int x = 1; takeclosure(^{ x = 7; }); }
902   //
903   if (isa<BlockDeclRefExpr>(this)) {
904     const BlockDeclRefExpr *BDR = cast<BlockDeclRefExpr>(this);
905     if (!BDR->isByRef() && isa<VarDecl>(BDR->getDecl()))
906       return MLV_NotBlockQualified;
907   }
908 
909   QualType CT = Ctx.getCanonicalType(getType());
910 
911   if (CT.isConstQualified())
912     return MLV_ConstQualified;
913   if (CT->isArrayType())
914     return MLV_ArrayType;
915   if (CT->isIncompleteType())
916     return MLV_IncompleteType;
917 
918   if (const RecordType *r = CT->getAsRecordType()) {
919     if (r->hasConstFields())
920       return MLV_ConstQualified;
921   }
922 
923   // Assigning to an 'implicit' property?
924   else if (isa<ObjCKVCRefExpr>(this)) {
925     const ObjCKVCRefExpr* KVCExpr = cast<ObjCKVCRefExpr>(this);
926     if (KVCExpr->getSetterMethod() == 0)
927       return MLV_NoSetterProperty;
928   }
929   return MLV_Valid;
930 }
931 
932 /// hasGlobalStorage - Return true if this expression has static storage
933 /// duration.  This means that the address of this expression is a link-time
934 /// constant.
935 bool Expr::hasGlobalStorage() const {
936   switch (getStmtClass()) {
937   default:
938     return false;
939   case BlockExprClass:
940     return true;
941   case ParenExprClass:
942     return cast<ParenExpr>(this)->getSubExpr()->hasGlobalStorage();
943   case ImplicitCastExprClass:
944     return cast<ImplicitCastExpr>(this)->getSubExpr()->hasGlobalStorage();
945   case CompoundLiteralExprClass:
946     return cast<CompoundLiteralExpr>(this)->isFileScope();
947   case DeclRefExprClass:
948   case QualifiedDeclRefExprClass: {
949     const Decl *D = cast<DeclRefExpr>(this)->getDecl();
950     if (const VarDecl *VD = dyn_cast<VarDecl>(D))
951       return VD->hasGlobalStorage();
952     if (isa<FunctionDecl>(D))
953       return true;
954     return false;
955   }
956   case MemberExprClass: {
957     const MemberExpr *M = cast<MemberExpr>(this);
958     return !M->isArrow() && M->getBase()->hasGlobalStorage();
959   }
960   case ArraySubscriptExprClass:
961     return cast<ArraySubscriptExpr>(this)->getBase()->hasGlobalStorage();
962   case PredefinedExprClass:
963     return true;
964   case CXXDefaultArgExprClass:
965     return cast<CXXDefaultArgExpr>(this)->getExpr()->hasGlobalStorage();
966   }
967 }
968 
969 /// isOBJCGCCandidate - Check if an expression is objc gc'able.
970 ///
971 bool Expr::isOBJCGCCandidate(ASTContext &Ctx) const {
972   switch (getStmtClass()) {
973   default:
974     return false;
975   case ObjCIvarRefExprClass:
976     return true;
977   case Expr::UnaryOperatorClass:
978     return cast<UnaryOperator>(this)->getSubExpr()->isOBJCGCCandidate(Ctx);
979   case ParenExprClass:
980     return cast<ParenExpr>(this)->getSubExpr()->isOBJCGCCandidate(Ctx);
981   case ImplicitCastExprClass:
982     return cast<ImplicitCastExpr>(this)->getSubExpr()->isOBJCGCCandidate(Ctx);
983   case CStyleCastExprClass:
984     return cast<CStyleCastExpr>(this)->getSubExpr()->isOBJCGCCandidate(Ctx);
985   case DeclRefExprClass:
986   case QualifiedDeclRefExprClass: {
987     const Decl *D = cast<DeclRefExpr>(this)->getDecl();
988     if (const VarDecl *VD = dyn_cast<VarDecl>(D)) {
989       if (VD->hasGlobalStorage())
990         return true;
991       QualType T = VD->getType();
992       // dereferencing to an object pointer is always a gc'able candidate
993       if (T->isPointerType() &&
994           Ctx.isObjCObjectPointerType(T->getAsPointerType()->getPointeeType()))
995         return true;
996 
997     }
998     return false;
999   }
1000   case MemberExprClass: {
1001     const MemberExpr *M = cast<MemberExpr>(this);
1002     return M->getBase()->isOBJCGCCandidate(Ctx);
1003   }
1004   case ArraySubscriptExprClass:
1005     return cast<ArraySubscriptExpr>(this)->getBase()->isOBJCGCCandidate(Ctx);
1006   }
1007 }
1008 Expr* Expr::IgnoreParens() {
1009   Expr* E = this;
1010   while (ParenExpr* P = dyn_cast<ParenExpr>(E))
1011     E = P->getSubExpr();
1012 
1013   return E;
1014 }
1015 
1016 /// IgnoreParenCasts - Ignore parentheses and casts.  Strip off any ParenExpr
1017 /// or CastExprs or ImplicitCastExprs, returning their operand.
1018 Expr *Expr::IgnoreParenCasts() {
1019   Expr *E = this;
1020   while (true) {
1021     if (ParenExpr *P = dyn_cast<ParenExpr>(E))
1022       E = P->getSubExpr();
1023     else if (CastExpr *P = dyn_cast<CastExpr>(E))
1024       E = P->getSubExpr();
1025     else
1026       return E;
1027   }
1028 }
1029 
1030 /// IgnoreParenNoopCasts - Ignore parentheses and casts that do not change the
1031 /// value (including ptr->int casts of the same size).  Strip off any
1032 /// ParenExpr or CastExprs, returning their operand.
1033 Expr *Expr::IgnoreParenNoopCasts(ASTContext &Ctx) {
1034   Expr *E = this;
1035   while (true) {
1036     if (ParenExpr *P = dyn_cast<ParenExpr>(E)) {
1037       E = P->getSubExpr();
1038       continue;
1039     }
1040 
1041     if (CastExpr *P = dyn_cast<CastExpr>(E)) {
1042       // We ignore integer <-> casts that are of the same width, ptr<->ptr and
1043       // ptr<->int casts of the same width.  We also ignore all identify casts.
1044       Expr *SE = P->getSubExpr();
1045 
1046       if (Ctx.hasSameUnqualifiedType(E->getType(), SE->getType())) {
1047         E = SE;
1048         continue;
1049       }
1050 
1051       if ((E->getType()->isPointerType() || E->getType()->isIntegralType()) &&
1052           (SE->getType()->isPointerType() || SE->getType()->isIntegralType()) &&
1053           Ctx.getTypeSize(E->getType()) == Ctx.getTypeSize(SE->getType())) {
1054         E = SE;
1055         continue;
1056       }
1057     }
1058 
1059     return E;
1060   }
1061 }
1062 
1063 
1064 /// hasAnyTypeDependentArguments - Determines if any of the expressions
1065 /// in Exprs is type-dependent.
1066 bool Expr::hasAnyTypeDependentArguments(Expr** Exprs, unsigned NumExprs) {
1067   for (unsigned I = 0; I < NumExprs; ++I)
1068     if (Exprs[I]->isTypeDependent())
1069       return true;
1070 
1071   return false;
1072 }
1073 
1074 /// hasAnyValueDependentArguments - Determines if any of the expressions
1075 /// in Exprs is value-dependent.
1076 bool Expr::hasAnyValueDependentArguments(Expr** Exprs, unsigned NumExprs) {
1077   for (unsigned I = 0; I < NumExprs; ++I)
1078     if (Exprs[I]->isValueDependent())
1079       return true;
1080 
1081   return false;
1082 }
1083 
1084 bool Expr::isConstantInitializer(ASTContext &Ctx) const {
1085   // This function is attempting whether an expression is an initializer
1086   // which can be evaluated at compile-time.  isEvaluatable handles most
1087   // of the cases, but it can't deal with some initializer-specific
1088   // expressions, and it can't deal with aggregates; we deal with those here,
1089   // and fall back to isEvaluatable for the other cases.
1090 
1091   // FIXME: This function assumes the variable being assigned to
1092   // isn't a reference type!
1093 
1094   switch (getStmtClass()) {
1095   default: break;
1096   case StringLiteralClass:
1097   case ObjCEncodeExprClass:
1098     return true;
1099   case CompoundLiteralExprClass: {
1100     // This handles gcc's extension that allows global initializers like
1101     // "struct x {int x;} x = (struct x) {};".
1102     // FIXME: This accepts other cases it shouldn't!
1103     const Expr *Exp = cast<CompoundLiteralExpr>(this)->getInitializer();
1104     return Exp->isConstantInitializer(Ctx);
1105   }
1106   case InitListExprClass: {
1107     // FIXME: This doesn't deal with fields with reference types correctly.
1108     // FIXME: This incorrectly allows pointers cast to integers to be assigned
1109     // to bitfields.
1110     const InitListExpr *Exp = cast<InitListExpr>(this);
1111     unsigned numInits = Exp->getNumInits();
1112     for (unsigned i = 0; i < numInits; i++) {
1113       if (!Exp->getInit(i)->isConstantInitializer(Ctx))
1114         return false;
1115     }
1116     return true;
1117   }
1118   case ImplicitValueInitExprClass:
1119     return true;
1120   case ParenExprClass: {
1121     return cast<ParenExpr>(this)->getSubExpr()->isConstantInitializer(Ctx);
1122   }
1123   case UnaryOperatorClass: {
1124     const UnaryOperator* Exp = cast<UnaryOperator>(this);
1125     if (Exp->getOpcode() == UnaryOperator::Extension)
1126       return Exp->getSubExpr()->isConstantInitializer(Ctx);
1127     break;
1128   }
1129   case ImplicitCastExprClass:
1130   case CStyleCastExprClass:
1131     // Handle casts with a destination that's a struct or union; this
1132     // deals with both the gcc no-op struct cast extension and the
1133     // cast-to-union extension.
1134     if (getType()->isRecordType())
1135       return cast<CastExpr>(this)->getSubExpr()->isConstantInitializer(Ctx);
1136     break;
1137   }
1138 
1139   return isEvaluatable(Ctx);
1140 }
1141 
1142 /// isIntegerConstantExpr - this recursive routine will test if an expression is
1143 /// an integer constant expression.
1144 
1145 /// FIXME: Pass up a reason why! Invalid operation in i-c-e, division by zero,
1146 /// comma, etc
1147 ///
1148 /// FIXME: Handle offsetof.  Two things to do:  Handle GCC's __builtin_offsetof
1149 /// to support gcc 4.0+  and handle the idiom GCC recognizes with a null pointer
1150 /// cast+dereference.
1151 
1152 // CheckICE - This function does the fundamental ICE checking: the returned
1153 // ICEDiag contains a Val of 0, 1, or 2, and a possibly null SourceLocation.
1154 // Note that to reduce code duplication, this helper does no evaluation
1155 // itself; the caller checks whether the expression is evaluatable, and
1156 // in the rare cases where CheckICE actually cares about the evaluated
1157 // value, it calls into Evalute.
1158 //
1159 // Meanings of Val:
1160 // 0: This expression is an ICE if it can be evaluated by Evaluate.
1161 // 1: This expression is not an ICE, but if it isn't evaluated, it's
1162 //    a legal subexpression for an ICE. This return value is used to handle
1163 //    the comma operator in C99 mode.
1164 // 2: This expression is not an ICE, and is not a legal subexpression for one.
1165 
1166 struct ICEDiag {
1167   unsigned Val;
1168   SourceLocation Loc;
1169 
1170   public:
1171   ICEDiag(unsigned v, SourceLocation l) : Val(v), Loc(l) {}
1172   ICEDiag() : Val(0) {}
1173 };
1174 
1175 ICEDiag NoDiag() { return ICEDiag(); }
1176 
1177 static ICEDiag CheckEvalInICE(const Expr* E, ASTContext &Ctx) {
1178   Expr::EvalResult EVResult;
1179   if (!E->Evaluate(EVResult, Ctx) || EVResult.HasSideEffects ||
1180       !EVResult.Val.isInt()) {
1181     return ICEDiag(2, E->getLocStart());
1182   }
1183   return NoDiag();
1184 }
1185 
1186 static ICEDiag CheckICE(const Expr* E, ASTContext &Ctx) {
1187   assert(!E->isValueDependent() && "Should not see value dependent exprs!");
1188   if (!E->getType()->isIntegralType()) {
1189     return ICEDiag(2, E->getLocStart());
1190   }
1191 
1192   switch (E->getStmtClass()) {
1193   default:
1194     return ICEDiag(2, E->getLocStart());
1195   case Expr::ParenExprClass:
1196     return CheckICE(cast<ParenExpr>(E)->getSubExpr(), Ctx);
1197   case Expr::IntegerLiteralClass:
1198   case Expr::CharacterLiteralClass:
1199   case Expr::CXXBoolLiteralExprClass:
1200   case Expr::CXXZeroInitValueExprClass:
1201   case Expr::TypesCompatibleExprClass:
1202   case Expr::UnaryTypeTraitExprClass:
1203     return NoDiag();
1204   case Expr::CallExprClass:
1205   case Expr::CXXOperatorCallExprClass: {
1206     const CallExpr *CE = cast<CallExpr>(E);
1207     if (CE->isBuiltinCall(Ctx))
1208       return CheckEvalInICE(E, Ctx);
1209     return ICEDiag(2, E->getLocStart());
1210   }
1211   case Expr::DeclRefExprClass:
1212   case Expr::QualifiedDeclRefExprClass:
1213     if (isa<EnumConstantDecl>(cast<DeclRefExpr>(E)->getDecl()))
1214       return NoDiag();
1215     if (Ctx.getLangOptions().CPlusPlus &&
1216         E->getType().getCVRQualifiers() == QualType::Const) {
1217       // C++ 7.1.5.1p2
1218       //   A variable of non-volatile const-qualified integral or enumeration
1219       //   type initialized by an ICE can be used in ICEs.
1220       if (const VarDecl *Dcl =
1221               dyn_cast<VarDecl>(cast<DeclRefExpr>(E)->getDecl())) {
1222         if (Dcl->isInitKnownICE()) {
1223           // We have already checked whether this subexpression is an
1224           // integral constant expression.
1225           if (Dcl->isInitICE())
1226             return NoDiag();
1227           else
1228             return ICEDiag(2, E->getLocStart());
1229         }
1230 
1231         if (const Expr *Init = Dcl->getInit()) {
1232           ICEDiag Result = CheckICE(Init, Ctx);
1233           // Cache the result of the ICE test.
1234           Dcl->setInitKnownICE(Ctx, Result.Val == 0);
1235           return Result;
1236         }
1237       }
1238     }
1239     return ICEDiag(2, E->getLocStart());
1240   case Expr::UnaryOperatorClass: {
1241     const UnaryOperator *Exp = cast<UnaryOperator>(E);
1242     switch (Exp->getOpcode()) {
1243     default:
1244       return ICEDiag(2, E->getLocStart());
1245     case UnaryOperator::Extension:
1246     case UnaryOperator::LNot:
1247     case UnaryOperator::Plus:
1248     case UnaryOperator::Minus:
1249     case UnaryOperator::Not:
1250     case UnaryOperator::Real:
1251     case UnaryOperator::Imag:
1252       return CheckICE(Exp->getSubExpr(), Ctx);
1253     case UnaryOperator::OffsetOf:
1254       // Note that per C99, offsetof must be an ICE. And AFAIK, using
1255       // Evaluate matches the proposed gcc behavior for cases like
1256       // "offsetof(struct s{int x[4];}, x[!.0])".  This doesn't affect
1257       // compliance: we should warn earlier for offsetof expressions with
1258       // array subscripts that aren't ICEs, and if the array subscripts
1259       // are ICEs, the value of the offsetof must be an integer constant.
1260       return CheckEvalInICE(E, Ctx);
1261     }
1262   }
1263   case Expr::SizeOfAlignOfExprClass: {
1264     const SizeOfAlignOfExpr *Exp = cast<SizeOfAlignOfExpr>(E);
1265     if (Exp->isSizeOf() && Exp->getTypeOfArgument()->isVariableArrayType())
1266       return ICEDiag(2, E->getLocStart());
1267     return NoDiag();
1268   }
1269   case Expr::BinaryOperatorClass: {
1270     const BinaryOperator *Exp = cast<BinaryOperator>(E);
1271     switch (Exp->getOpcode()) {
1272     default:
1273       return ICEDiag(2, E->getLocStart());
1274     case BinaryOperator::Mul:
1275     case BinaryOperator::Div:
1276     case BinaryOperator::Rem:
1277     case BinaryOperator::Add:
1278     case BinaryOperator::Sub:
1279     case BinaryOperator::Shl:
1280     case BinaryOperator::Shr:
1281     case BinaryOperator::LT:
1282     case BinaryOperator::GT:
1283     case BinaryOperator::LE:
1284     case BinaryOperator::GE:
1285     case BinaryOperator::EQ:
1286     case BinaryOperator::NE:
1287     case BinaryOperator::And:
1288     case BinaryOperator::Xor:
1289     case BinaryOperator::Or:
1290     case BinaryOperator::Comma: {
1291       ICEDiag LHSResult = CheckICE(Exp->getLHS(), Ctx);
1292       ICEDiag RHSResult = CheckICE(Exp->getRHS(), Ctx);
1293       if (Exp->getOpcode() == BinaryOperator::Div ||
1294           Exp->getOpcode() == BinaryOperator::Rem) {
1295         // Evaluate gives an error for undefined Div/Rem, so make sure
1296         // we don't evaluate one.
1297         if (LHSResult.Val != 2 && RHSResult.Val != 2) {
1298           llvm::APSInt REval = Exp->getRHS()->EvaluateAsInt(Ctx);
1299           if (REval == 0)
1300             return ICEDiag(1, E->getLocStart());
1301           if (REval.isSigned() && REval.isAllOnesValue()) {
1302             llvm::APSInt LEval = Exp->getLHS()->EvaluateAsInt(Ctx);
1303             if (LEval.isMinSignedValue())
1304               return ICEDiag(1, E->getLocStart());
1305           }
1306         }
1307       }
1308       if (Exp->getOpcode() == BinaryOperator::Comma) {
1309         if (Ctx.getLangOptions().C99) {
1310           // C99 6.6p3 introduces a strange edge case: comma can be in an ICE
1311           // if it isn't evaluated.
1312           if (LHSResult.Val == 0 && RHSResult.Val == 0)
1313             return ICEDiag(1, E->getLocStart());
1314         } else {
1315           // In both C89 and C++, commas in ICEs are illegal.
1316           return ICEDiag(2, E->getLocStart());
1317         }
1318       }
1319       if (LHSResult.Val >= RHSResult.Val)
1320         return LHSResult;
1321       return RHSResult;
1322     }
1323     case BinaryOperator::LAnd:
1324     case BinaryOperator::LOr: {
1325       ICEDiag LHSResult = CheckICE(Exp->getLHS(), Ctx);
1326       ICEDiag RHSResult = CheckICE(Exp->getRHS(), Ctx);
1327       if (LHSResult.Val == 0 && RHSResult.Val == 1) {
1328         // Rare case where the RHS has a comma "side-effect"; we need
1329         // to actually check the condition to see whether the side
1330         // with the comma is evaluated.
1331         if ((Exp->getOpcode() == BinaryOperator::LAnd) !=
1332             (Exp->getLHS()->EvaluateAsInt(Ctx) == 0))
1333           return RHSResult;
1334         return NoDiag();
1335       }
1336 
1337       if (LHSResult.Val >= RHSResult.Val)
1338         return LHSResult;
1339       return RHSResult;
1340     }
1341     }
1342   }
1343   case Expr::ImplicitCastExprClass:
1344   case Expr::CStyleCastExprClass:
1345   case Expr::CXXFunctionalCastExprClass: {
1346     const Expr *SubExpr = cast<CastExpr>(E)->getSubExpr();
1347     if (SubExpr->getType()->isIntegralType())
1348       return CheckICE(SubExpr, Ctx);
1349     if (isa<FloatingLiteral>(SubExpr->IgnoreParens()))
1350       return NoDiag();
1351     return ICEDiag(2, E->getLocStart());
1352   }
1353   case Expr::ConditionalOperatorClass: {
1354     const ConditionalOperator *Exp = cast<ConditionalOperator>(E);
1355     // If the condition (ignoring parens) is a __builtin_constant_p call,
1356     // then only the true side is actually considered in an integer constant
1357     // expression, and it is fully evaluated.  This is an important GNU
1358     // extension.  See GCC PR38377 for discussion.
1359     if (const CallExpr *CallCE = dyn_cast<CallExpr>(Exp->getCond()->IgnoreParenCasts()))
1360       if (CallCE->isBuiltinCall(Ctx) == Builtin::BI__builtin_constant_p) {
1361         Expr::EvalResult EVResult;
1362         if (!E->Evaluate(EVResult, Ctx) || EVResult.HasSideEffects ||
1363             !EVResult.Val.isInt()) {
1364           return ICEDiag(2, E->getLocStart());
1365         }
1366         return NoDiag();
1367       }
1368     ICEDiag CondResult = CheckICE(Exp->getCond(), Ctx);
1369     ICEDiag TrueResult = CheckICE(Exp->getTrueExpr(), Ctx);
1370     ICEDiag FalseResult = CheckICE(Exp->getFalseExpr(), Ctx);
1371     if (CondResult.Val == 2)
1372       return CondResult;
1373     if (TrueResult.Val == 2)
1374       return TrueResult;
1375     if (FalseResult.Val == 2)
1376       return FalseResult;
1377     if (CondResult.Val == 1)
1378       return CondResult;
1379     if (TrueResult.Val == 0 && FalseResult.Val == 0)
1380       return NoDiag();
1381     // Rare case where the diagnostics depend on which side is evaluated
1382     // Note that if we get here, CondResult is 0, and at least one of
1383     // TrueResult and FalseResult is non-zero.
1384     if (Exp->getCond()->EvaluateAsInt(Ctx) == 0) {
1385       return FalseResult;
1386     }
1387     return TrueResult;
1388   }
1389   case Expr::CXXDefaultArgExprClass:
1390     return CheckICE(cast<CXXDefaultArgExpr>(E)->getExpr(), Ctx);
1391   case Expr::ChooseExprClass: {
1392     return CheckICE(cast<ChooseExpr>(E)->getChosenSubExpr(Ctx), Ctx);
1393   }
1394   }
1395 }
1396 
1397 bool Expr::isIntegerConstantExpr(llvm::APSInt &Result, ASTContext &Ctx,
1398                                  SourceLocation *Loc, bool isEvaluated) const {
1399   ICEDiag d = CheckICE(this, Ctx);
1400   if (d.Val != 0) {
1401     if (Loc) *Loc = d.Loc;
1402     return false;
1403   }
1404   EvalResult EvalResult;
1405   if (!Evaluate(EvalResult, Ctx))
1406     assert(0 && "ICE cannot be evaluated!");
1407   assert(!EvalResult.HasSideEffects && "ICE with side effects!");
1408   assert(EvalResult.Val.isInt() && "ICE that isn't integer!");
1409   Result = EvalResult.Val.getInt();
1410   return true;
1411 }
1412 
1413 /// isNullPointerConstant - C99 6.3.2.3p3 -  Return true if this is either an
1414 /// integer constant expression with the value zero, or if this is one that is
1415 /// cast to void*.
1416 bool Expr::isNullPointerConstant(ASTContext &Ctx) const
1417 {
1418   // Strip off a cast to void*, if it exists. Except in C++.
1419   if (const ExplicitCastExpr *CE = dyn_cast<ExplicitCastExpr>(this)) {
1420     if (!Ctx.getLangOptions().CPlusPlus) {
1421       // Check that it is a cast to void*.
1422       if (const PointerType *PT = CE->getType()->getAsPointerType()) {
1423         QualType Pointee = PT->getPointeeType();
1424         if (Pointee.getCVRQualifiers() == 0 &&
1425             Pointee->isVoidType() &&                              // to void*
1426             CE->getSubExpr()->getType()->isIntegerType())         // from int.
1427           return CE->getSubExpr()->isNullPointerConstant(Ctx);
1428       }
1429     }
1430   } else if (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(this)) {
1431     // Ignore the ImplicitCastExpr type entirely.
1432     return ICE->getSubExpr()->isNullPointerConstant(Ctx);
1433   } else if (const ParenExpr *PE = dyn_cast<ParenExpr>(this)) {
1434     // Accept ((void*)0) as a null pointer constant, as many other
1435     // implementations do.
1436     return PE->getSubExpr()->isNullPointerConstant(Ctx);
1437   } else if (const CXXDefaultArgExpr *DefaultArg
1438                = dyn_cast<CXXDefaultArgExpr>(this)) {
1439     // See through default argument expressions
1440     return DefaultArg->getExpr()->isNullPointerConstant(Ctx);
1441   } else if (isa<GNUNullExpr>(this)) {
1442     // The GNU __null extension is always a null pointer constant.
1443     return true;
1444   }
1445 
1446   // C++0x nullptr_t is always a null pointer constant.
1447   if (getType()->isNullPtrType())
1448     return true;
1449 
1450   // This expression must be an integer type.
1451   if (!getType()->isIntegerType())
1452     return false;
1453 
1454   // If we have an integer constant expression, we need to *evaluate* it and
1455   // test for the value 0.
1456   llvm::APSInt Result;
1457   return isIntegerConstantExpr(Result, Ctx) && Result == 0;
1458 }
1459 
1460 FieldDecl *Expr::getBitField() {
1461   Expr *E = this->IgnoreParenCasts();
1462 
1463   if (MemberExpr *MemRef = dyn_cast<MemberExpr>(E))
1464     if (FieldDecl *Field = dyn_cast<FieldDecl>(MemRef->getMemberDecl()))
1465       if (Field->isBitField())
1466         return Field;
1467 
1468   if (BinaryOperator *BinOp = dyn_cast<BinaryOperator>(E))
1469     if (BinOp->isAssignmentOp() && BinOp->getLHS())
1470       return BinOp->getLHS()->getBitField();
1471 
1472   return 0;
1473 }
1474 
1475 /// isArrow - Return true if the base expression is a pointer to vector,
1476 /// return false if the base expression is a vector.
1477 bool ExtVectorElementExpr::isArrow() const {
1478   return getBase()->getType()->isPointerType();
1479 }
1480 
1481 unsigned ExtVectorElementExpr::getNumElements() const {
1482   if (const VectorType *VT = getType()->getAsVectorType())
1483     return VT->getNumElements();
1484   return 1;
1485 }
1486 
1487 /// containsDuplicateElements - Return true if any element access is repeated.
1488 bool ExtVectorElementExpr::containsDuplicateElements() const {
1489   const char *compStr = Accessor->getName();
1490   unsigned length = Accessor->getLength();
1491 
1492   // Halving swizzles do not contain duplicate elements.
1493   if (!strcmp(compStr, "hi") || !strcmp(compStr, "lo") ||
1494       !strcmp(compStr, "even") || !strcmp(compStr, "odd"))
1495     return false;
1496 
1497   // Advance past s-char prefix on hex swizzles.
1498   if (*compStr == 's' || *compStr == 'S') {
1499     compStr++;
1500     length--;
1501   }
1502 
1503   for (unsigned i = 0; i != length-1; i++) {
1504     const char *s = compStr+i;
1505     for (const char c = *s++; *s; s++)
1506       if (c == *s)
1507         return true;
1508   }
1509   return false;
1510 }
1511 
1512 /// getEncodedElementAccess - We encode the fields as a llvm ConstantArray.
1513 void ExtVectorElementExpr::getEncodedElementAccess(
1514                                   llvm::SmallVectorImpl<unsigned> &Elts) const {
1515   const char *compStr = Accessor->getName();
1516   if (*compStr == 's' || *compStr == 'S')
1517     compStr++;
1518 
1519   bool isHi =   !strcmp(compStr, "hi");
1520   bool isLo =   !strcmp(compStr, "lo");
1521   bool isEven = !strcmp(compStr, "even");
1522   bool isOdd  = !strcmp(compStr, "odd");
1523 
1524   for (unsigned i = 0, e = getNumElements(); i != e; ++i) {
1525     uint64_t Index;
1526 
1527     if (isHi)
1528       Index = e + i;
1529     else if (isLo)
1530       Index = i;
1531     else if (isEven)
1532       Index = 2 * i;
1533     else if (isOdd)
1534       Index = 2 * i + 1;
1535     else
1536       Index = ExtVectorType::getAccessorIdx(compStr[i]);
1537 
1538     Elts.push_back(Index);
1539   }
1540 }
1541 
1542 // constructor for instance messages.
1543 ObjCMessageExpr::ObjCMessageExpr(Expr *receiver, Selector selInfo,
1544                 QualType retType, ObjCMethodDecl *mproto,
1545                 SourceLocation LBrac, SourceLocation RBrac,
1546                 Expr **ArgExprs, unsigned nargs)
1547   : Expr(ObjCMessageExprClass, retType), SelName(selInfo),
1548     MethodProto(mproto) {
1549   NumArgs = nargs;
1550   SubExprs = new Stmt*[NumArgs+1];
1551   SubExprs[RECEIVER] = receiver;
1552   if (NumArgs) {
1553     for (unsigned i = 0; i != NumArgs; ++i)
1554       SubExprs[i+ARGS_START] = static_cast<Expr *>(ArgExprs[i]);
1555   }
1556   LBracloc = LBrac;
1557   RBracloc = RBrac;
1558 }
1559 
1560 ObjCStringLiteral* ObjCStringLiteral::Clone(ASTContext &C) const {
1561   // Clone the string literal.
1562   StringLiteral *NewString =
1563     String ? cast<StringLiteral>(String)->Clone(C) : 0;
1564 
1565   return new (C) ObjCStringLiteral(NewString, getType(), AtLoc);
1566 }
1567 
1568 ObjCSelectorExpr *ObjCSelectorExpr::Clone(ASTContext &C) const {
1569   return new (C) ObjCSelectorExpr(getType(), SelName, AtLoc, RParenLoc);
1570 }
1571 
1572 ObjCProtocolExpr *ObjCProtocolExpr::Clone(ASTContext &C) const {
1573   return new (C) ObjCProtocolExpr(getType(), TheProtocol, AtLoc, RParenLoc);
1574 }
1575 
1576 // constructor for class messages.
1577 // FIXME: clsName should be typed to ObjCInterfaceType
1578 ObjCMessageExpr::ObjCMessageExpr(IdentifierInfo *clsName, Selector selInfo,
1579                 QualType retType, ObjCMethodDecl *mproto,
1580                 SourceLocation LBrac, SourceLocation RBrac,
1581                 Expr **ArgExprs, unsigned nargs)
1582   : Expr(ObjCMessageExprClass, retType), SelName(selInfo),
1583     MethodProto(mproto) {
1584   NumArgs = nargs;
1585   SubExprs = new Stmt*[NumArgs+1];
1586   SubExprs[RECEIVER] = (Expr*) ((uintptr_t) clsName | IsClsMethDeclUnknown);
1587   if (NumArgs) {
1588     for (unsigned i = 0; i != NumArgs; ++i)
1589       SubExprs[i+ARGS_START] = static_cast<Expr *>(ArgExprs[i]);
1590   }
1591   LBracloc = LBrac;
1592   RBracloc = RBrac;
1593 }
1594 
1595 // constructor for class messages.
1596 ObjCMessageExpr::ObjCMessageExpr(ObjCInterfaceDecl *cls, Selector selInfo,
1597                                  QualType retType, ObjCMethodDecl *mproto,
1598                                  SourceLocation LBrac, SourceLocation RBrac,
1599                                  Expr **ArgExprs, unsigned nargs)
1600 : Expr(ObjCMessageExprClass, retType), SelName(selInfo),
1601 MethodProto(mproto) {
1602   NumArgs = nargs;
1603   SubExprs = new Stmt*[NumArgs+1];
1604   SubExprs[RECEIVER] = (Expr*) ((uintptr_t) cls | IsClsMethDeclKnown);
1605   if (NumArgs) {
1606     for (unsigned i = 0; i != NumArgs; ++i)
1607       SubExprs[i+ARGS_START] = static_cast<Expr *>(ArgExprs[i]);
1608   }
1609   LBracloc = LBrac;
1610   RBracloc = RBrac;
1611 }
1612 
1613 ObjCMessageExpr::ClassInfo ObjCMessageExpr::getClassInfo() const {
1614   uintptr_t x = (uintptr_t) SubExprs[RECEIVER];
1615   switch (x & Flags) {
1616     default:
1617       assert(false && "Invalid ObjCMessageExpr.");
1618     case IsInstMeth:
1619       return ClassInfo(0, 0);
1620     case IsClsMethDeclUnknown:
1621       return ClassInfo(0, (IdentifierInfo*) (x & ~Flags));
1622     case IsClsMethDeclKnown: {
1623       ObjCInterfaceDecl* D = (ObjCInterfaceDecl*) (x & ~Flags);
1624       return ClassInfo(D, D->getIdentifier());
1625     }
1626   }
1627 }
1628 
1629 void ObjCMessageExpr::setClassInfo(const ObjCMessageExpr::ClassInfo &CI) {
1630   if (CI.first == 0 && CI.second == 0)
1631     SubExprs[RECEIVER] = (Expr*)((uintptr_t)0 | IsInstMeth);
1632   else if (CI.first == 0)
1633     SubExprs[RECEIVER] = (Expr*)((uintptr_t)CI.second | IsClsMethDeclUnknown);
1634   else
1635     SubExprs[RECEIVER] = (Expr*)((uintptr_t)CI.first | IsClsMethDeclKnown);
1636 }
1637 
1638 
1639 bool ChooseExpr::isConditionTrue(ASTContext &C) const {
1640   return getCond()->EvaluateAsInt(C) != 0;
1641 }
1642 
1643 void ShuffleVectorExpr::setExprs(Expr ** Exprs, unsigned NumExprs) {
1644   if (NumExprs)
1645     delete [] SubExprs;
1646 
1647   SubExprs = new Stmt* [NumExprs];
1648   this->NumExprs = NumExprs;
1649   memcpy(SubExprs, Exprs, sizeof(Expr *) * NumExprs);
1650 }
1651 
1652 void SizeOfAlignOfExpr::Destroy(ASTContext& C) {
1653   // Override default behavior of traversing children. If this has a type
1654   // operand and the type is a variable-length array, the child iteration
1655   // will iterate over the size expression. However, this expression belongs
1656   // to the type, not to this, so we don't want to delete it.
1657   // We still want to delete this expression.
1658   if (isArgumentType()) {
1659     this->~SizeOfAlignOfExpr();
1660     C.Deallocate(this);
1661   }
1662   else
1663     Expr::Destroy(C);
1664 }
1665 
1666 //===----------------------------------------------------------------------===//
1667 //  DesignatedInitExpr
1668 //===----------------------------------------------------------------------===//
1669 
1670 IdentifierInfo *DesignatedInitExpr::Designator::getFieldName() {
1671   assert(Kind == FieldDesignator && "Only valid on a field designator");
1672   if (Field.NameOrField & 0x01)
1673     return reinterpret_cast<IdentifierInfo *>(Field.NameOrField&~0x01);
1674   else
1675     return getField()->getIdentifier();
1676 }
1677 
1678 DesignatedInitExpr::DesignatedInitExpr(QualType Ty, unsigned NumDesignators,
1679                                        const Designator *Designators,
1680                                        SourceLocation EqualOrColonLoc,
1681                                        bool GNUSyntax,
1682                                        Expr **IndexExprs,
1683                                        unsigned NumIndexExprs,
1684                                        Expr *Init)
1685   : Expr(DesignatedInitExprClass, Ty,
1686          Init->isTypeDependent(), Init->isValueDependent()),
1687     EqualOrColonLoc(EqualOrColonLoc), GNUSyntax(GNUSyntax),
1688     NumDesignators(NumDesignators), NumSubExprs(NumIndexExprs + 1) {
1689   this->Designators = new Designator[NumDesignators];
1690 
1691   // Record the initializer itself.
1692   child_iterator Child = child_begin();
1693   *Child++ = Init;
1694 
1695   // Copy the designators and their subexpressions, computing
1696   // value-dependence along the way.
1697   unsigned IndexIdx = 0;
1698   for (unsigned I = 0; I != NumDesignators; ++I) {
1699     this->Designators[I] = Designators[I];
1700 
1701     if (this->Designators[I].isArrayDesignator()) {
1702       // Compute type- and value-dependence.
1703       Expr *Index = IndexExprs[IndexIdx];
1704       ValueDependent = ValueDependent ||
1705         Index->isTypeDependent() || Index->isValueDependent();
1706 
1707       // Copy the index expressions into permanent storage.
1708       *Child++ = IndexExprs[IndexIdx++];
1709     } else if (this->Designators[I].isArrayRangeDesignator()) {
1710       // Compute type- and value-dependence.
1711       Expr *Start = IndexExprs[IndexIdx];
1712       Expr *End = IndexExprs[IndexIdx + 1];
1713       ValueDependent = ValueDependent ||
1714         Start->isTypeDependent() || Start->isValueDependent() ||
1715         End->isTypeDependent() || End->isValueDependent();
1716 
1717       // Copy the start/end expressions into permanent storage.
1718       *Child++ = IndexExprs[IndexIdx++];
1719       *Child++ = IndexExprs[IndexIdx++];
1720     }
1721   }
1722 
1723   assert(IndexIdx == NumIndexExprs && "Wrong number of index expressions");
1724 }
1725 
1726 DesignatedInitExpr *
1727 DesignatedInitExpr::Create(ASTContext &C, Designator *Designators,
1728                            unsigned NumDesignators,
1729                            Expr **IndexExprs, unsigned NumIndexExprs,
1730                            SourceLocation ColonOrEqualLoc,
1731                            bool UsesColonSyntax, Expr *Init) {
1732   void *Mem = C.Allocate(sizeof(DesignatedInitExpr) +
1733                          sizeof(Stmt *) * (NumIndexExprs + 1), 8);
1734   return new (Mem) DesignatedInitExpr(C.VoidTy, NumDesignators, Designators,
1735                                       ColonOrEqualLoc, UsesColonSyntax,
1736                                       IndexExprs, NumIndexExprs, Init);
1737 }
1738 
1739 DesignatedInitExpr *DesignatedInitExpr::CreateEmpty(ASTContext &C,
1740                                                     unsigned NumIndexExprs) {
1741   void *Mem = C.Allocate(sizeof(DesignatedInitExpr) +
1742                          sizeof(Stmt *) * (NumIndexExprs + 1), 8);
1743   return new (Mem) DesignatedInitExpr(NumIndexExprs + 1);
1744 }
1745 
1746 void DesignatedInitExpr::setDesignators(const Designator *Desigs,
1747                                         unsigned NumDesigs) {
1748   if (Designators)
1749     delete [] Designators;
1750 
1751   Designators = new Designator[NumDesigs];
1752   NumDesignators = NumDesigs;
1753   for (unsigned I = 0; I != NumDesigs; ++I)
1754     Designators[I] = Desigs[I];
1755 }
1756 
1757 SourceRange DesignatedInitExpr::getSourceRange() const {
1758   SourceLocation StartLoc;
1759   Designator &First =
1760     *const_cast<DesignatedInitExpr*>(this)->designators_begin();
1761   if (First.isFieldDesignator()) {
1762     if (GNUSyntax)
1763       StartLoc = SourceLocation::getFromRawEncoding(First.Field.FieldLoc);
1764     else
1765       StartLoc = SourceLocation::getFromRawEncoding(First.Field.DotLoc);
1766   } else
1767     StartLoc =
1768       SourceLocation::getFromRawEncoding(First.ArrayOrRange.LBracketLoc);
1769   return SourceRange(StartLoc, getInit()->getSourceRange().getEnd());
1770 }
1771 
1772 Expr *DesignatedInitExpr::getArrayIndex(const Designator& D) {
1773   assert(D.Kind == Designator::ArrayDesignator && "Requires array designator");
1774   char* Ptr = static_cast<char*>(static_cast<void *>(this));
1775   Ptr += sizeof(DesignatedInitExpr);
1776   Stmt **SubExprs = reinterpret_cast<Stmt**>(reinterpret_cast<void**>(Ptr));
1777   return cast<Expr>(*(SubExprs + D.ArrayOrRange.Index + 1));
1778 }
1779 
1780 Expr *DesignatedInitExpr::getArrayRangeStart(const Designator& D) {
1781   assert(D.Kind == Designator::ArrayRangeDesignator &&
1782          "Requires array range designator");
1783   char* Ptr = static_cast<char*>(static_cast<void *>(this));
1784   Ptr += sizeof(DesignatedInitExpr);
1785   Stmt **SubExprs = reinterpret_cast<Stmt**>(reinterpret_cast<void**>(Ptr));
1786   return cast<Expr>(*(SubExprs + D.ArrayOrRange.Index + 1));
1787 }
1788 
1789 Expr *DesignatedInitExpr::getArrayRangeEnd(const Designator& D) {
1790   assert(D.Kind == Designator::ArrayRangeDesignator &&
1791          "Requires array range designator");
1792   char* Ptr = static_cast<char*>(static_cast<void *>(this));
1793   Ptr += sizeof(DesignatedInitExpr);
1794   Stmt **SubExprs = reinterpret_cast<Stmt**>(reinterpret_cast<void**>(Ptr));
1795   return cast<Expr>(*(SubExprs + D.ArrayOrRange.Index + 2));
1796 }
1797 
1798 /// \brief Replaces the designator at index @p Idx with the series
1799 /// of designators in [First, Last).
1800 void DesignatedInitExpr::ExpandDesignator(unsigned Idx,
1801                                           const Designator *First,
1802                                           const Designator *Last) {
1803   unsigned NumNewDesignators = Last - First;
1804   if (NumNewDesignators == 0) {
1805     std::copy_backward(Designators + Idx + 1,
1806                        Designators + NumDesignators,
1807                        Designators + Idx);
1808     --NumNewDesignators;
1809     return;
1810   } else if (NumNewDesignators == 1) {
1811     Designators[Idx] = *First;
1812     return;
1813   }
1814 
1815   Designator *NewDesignators
1816     = new Designator[NumDesignators - 1 + NumNewDesignators];
1817   std::copy(Designators, Designators + Idx, NewDesignators);
1818   std::copy(First, Last, NewDesignators + Idx);
1819   std::copy(Designators + Idx + 1, Designators + NumDesignators,
1820             NewDesignators + Idx + NumNewDesignators);
1821   delete [] Designators;
1822   Designators = NewDesignators;
1823   NumDesignators = NumDesignators - 1 + NumNewDesignators;
1824 }
1825 
1826 void DesignatedInitExpr::Destroy(ASTContext &C) {
1827   delete [] Designators;
1828   Expr::Destroy(C);
1829 }
1830 
1831 ImplicitValueInitExpr *ImplicitValueInitExpr::Clone(ASTContext &C) const {
1832   return new (C) ImplicitValueInitExpr(getType());
1833 }
1834 
1835 //===----------------------------------------------------------------------===//
1836 //  ExprIterator.
1837 //===----------------------------------------------------------------------===//
1838 
1839 Expr* ExprIterator::operator[](size_t idx) { return cast<Expr>(I[idx]); }
1840 Expr* ExprIterator::operator*() const { return cast<Expr>(*I); }
1841 Expr* ExprIterator::operator->() const { return cast<Expr>(*I); }
1842 const Expr* ConstExprIterator::operator[](size_t idx) const {
1843   return cast<Expr>(I[idx]);
1844 }
1845 const Expr* ConstExprIterator::operator*() const { return cast<Expr>(*I); }
1846 const Expr* ConstExprIterator::operator->() const { return cast<Expr>(*I); }
1847 
1848 //===----------------------------------------------------------------------===//
1849 //  Child Iterators for iterating over subexpressions/substatements
1850 //===----------------------------------------------------------------------===//
1851 
1852 // DeclRefExpr
1853 Stmt::child_iterator DeclRefExpr::child_begin() { return child_iterator(); }
1854 Stmt::child_iterator DeclRefExpr::child_end() { return child_iterator(); }
1855 
1856 // ObjCIvarRefExpr
1857 Stmt::child_iterator ObjCIvarRefExpr::child_begin() { return &Base; }
1858 Stmt::child_iterator ObjCIvarRefExpr::child_end() { return &Base+1; }
1859 
1860 // ObjCPropertyRefExpr
1861 Stmt::child_iterator ObjCPropertyRefExpr::child_begin() { return &Base; }
1862 Stmt::child_iterator ObjCPropertyRefExpr::child_end() { return &Base+1; }
1863 
1864 // ObjCKVCRefExpr
1865 Stmt::child_iterator ObjCKVCRefExpr::child_begin() { return &Base; }
1866 Stmt::child_iterator ObjCKVCRefExpr::child_end() { return &Base+1; }
1867 
1868 // ObjCSuperExpr
1869 Stmt::child_iterator ObjCSuperExpr::child_begin() { return child_iterator(); }
1870 Stmt::child_iterator ObjCSuperExpr::child_end() { return child_iterator(); }
1871 
1872 // PredefinedExpr
1873 Stmt::child_iterator PredefinedExpr::child_begin() { return child_iterator(); }
1874 Stmt::child_iterator PredefinedExpr::child_end() { return child_iterator(); }
1875 
1876 // IntegerLiteral
1877 Stmt::child_iterator IntegerLiteral::child_begin() { return child_iterator(); }
1878 Stmt::child_iterator IntegerLiteral::child_end() { return child_iterator(); }
1879 
1880 // CharacterLiteral
1881 Stmt::child_iterator CharacterLiteral::child_begin() { return child_iterator();}
1882 Stmt::child_iterator CharacterLiteral::child_end() { return child_iterator(); }
1883 
1884 // FloatingLiteral
1885 Stmt::child_iterator FloatingLiteral::child_begin() { return child_iterator(); }
1886 Stmt::child_iterator FloatingLiteral::child_end() { return child_iterator(); }
1887 
1888 // ImaginaryLiteral
1889 Stmt::child_iterator ImaginaryLiteral::child_begin() { return &Val; }
1890 Stmt::child_iterator ImaginaryLiteral::child_end() { return &Val+1; }
1891 
1892 // StringLiteral
1893 Stmt::child_iterator StringLiteral::child_begin() { return child_iterator(); }
1894 Stmt::child_iterator StringLiteral::child_end() { return child_iterator(); }
1895 
1896 // ParenExpr
1897 Stmt::child_iterator ParenExpr::child_begin() { return &Val; }
1898 Stmt::child_iterator ParenExpr::child_end() { return &Val+1; }
1899 
1900 // UnaryOperator
1901 Stmt::child_iterator UnaryOperator::child_begin() { return &Val; }
1902 Stmt::child_iterator UnaryOperator::child_end() { return &Val+1; }
1903 
1904 // SizeOfAlignOfExpr
1905 Stmt::child_iterator SizeOfAlignOfExpr::child_begin() {
1906   // If this is of a type and the type is a VLA type (and not a typedef), the
1907   // size expression of the VLA needs to be treated as an executable expression.
1908   // Why isn't this weirdness documented better in StmtIterator?
1909   if (isArgumentType()) {
1910     if (VariableArrayType* T = dyn_cast<VariableArrayType>(
1911                                    getArgumentType().getTypePtr()))
1912       return child_iterator(T);
1913     return child_iterator();
1914   }
1915   return child_iterator(&Argument.Ex);
1916 }
1917 Stmt::child_iterator SizeOfAlignOfExpr::child_end() {
1918   if (isArgumentType())
1919     return child_iterator();
1920   return child_iterator(&Argument.Ex + 1);
1921 }
1922 
1923 // ArraySubscriptExpr
1924 Stmt::child_iterator ArraySubscriptExpr::child_begin() {
1925   return &SubExprs[0];
1926 }
1927 Stmt::child_iterator ArraySubscriptExpr::child_end() {
1928   return &SubExprs[0]+END_EXPR;
1929 }
1930 
1931 // CallExpr
1932 Stmt::child_iterator CallExpr::child_begin() {
1933   return &SubExprs[0];
1934 }
1935 Stmt::child_iterator CallExpr::child_end() {
1936   return &SubExprs[0]+NumArgs+ARGS_START;
1937 }
1938 
1939 // MemberExpr
1940 Stmt::child_iterator MemberExpr::child_begin() { return &Base; }
1941 Stmt::child_iterator MemberExpr::child_end() { return &Base+1; }
1942 
1943 // ExtVectorElementExpr
1944 Stmt::child_iterator ExtVectorElementExpr::child_begin() { return &Base; }
1945 Stmt::child_iterator ExtVectorElementExpr::child_end() { return &Base+1; }
1946 
1947 // CompoundLiteralExpr
1948 Stmt::child_iterator CompoundLiteralExpr::child_begin() { return &Init; }
1949 Stmt::child_iterator CompoundLiteralExpr::child_end() { return &Init+1; }
1950 
1951 // CastExpr
1952 Stmt::child_iterator CastExpr::child_begin() { return &Op; }
1953 Stmt::child_iterator CastExpr::child_end() { return &Op+1; }
1954 
1955 // BinaryOperator
1956 Stmt::child_iterator BinaryOperator::child_begin() {
1957   return &SubExprs[0];
1958 }
1959 Stmt::child_iterator BinaryOperator::child_end() {
1960   return &SubExprs[0]+END_EXPR;
1961 }
1962 
1963 // ConditionalOperator
1964 Stmt::child_iterator ConditionalOperator::child_begin() {
1965   return &SubExprs[0];
1966 }
1967 Stmt::child_iterator ConditionalOperator::child_end() {
1968   return &SubExprs[0]+END_EXPR;
1969 }
1970 
1971 // AddrLabelExpr
1972 Stmt::child_iterator AddrLabelExpr::child_begin() { return child_iterator(); }
1973 Stmt::child_iterator AddrLabelExpr::child_end() { return child_iterator(); }
1974 
1975 // StmtExpr
1976 Stmt::child_iterator StmtExpr::child_begin() { return &SubStmt; }
1977 Stmt::child_iterator StmtExpr::child_end() { return &SubStmt+1; }
1978 
1979 // TypesCompatibleExpr
1980 Stmt::child_iterator TypesCompatibleExpr::child_begin() {
1981   return child_iterator();
1982 }
1983 
1984 Stmt::child_iterator TypesCompatibleExpr::child_end() {
1985   return child_iterator();
1986 }
1987 
1988 // ChooseExpr
1989 Stmt::child_iterator ChooseExpr::child_begin() { return &SubExprs[0]; }
1990 Stmt::child_iterator ChooseExpr::child_end() { return &SubExprs[0]+END_EXPR; }
1991 
1992 // GNUNullExpr
1993 Stmt::child_iterator GNUNullExpr::child_begin() { return child_iterator(); }
1994 Stmt::child_iterator GNUNullExpr::child_end() { return child_iterator(); }
1995 
1996 // ShuffleVectorExpr
1997 Stmt::child_iterator ShuffleVectorExpr::child_begin() {
1998   return &SubExprs[0];
1999 }
2000 Stmt::child_iterator ShuffleVectorExpr::child_end() {
2001   return &SubExprs[0]+NumExprs;
2002 }
2003 
2004 // VAArgExpr
2005 Stmt::child_iterator VAArgExpr::child_begin() { return &Val; }
2006 Stmt::child_iterator VAArgExpr::child_end() { return &Val+1; }
2007 
2008 // InitListExpr
2009 Stmt::child_iterator InitListExpr::child_begin() {
2010   return InitExprs.size() ? &InitExprs[0] : 0;
2011 }
2012 Stmt::child_iterator InitListExpr::child_end() {
2013   return InitExprs.size() ? &InitExprs[0] + InitExprs.size() : 0;
2014 }
2015 
2016 // DesignatedInitExpr
2017 Stmt::child_iterator DesignatedInitExpr::child_begin() {
2018   char* Ptr = static_cast<char*>(static_cast<void *>(this));
2019   Ptr += sizeof(DesignatedInitExpr);
2020   return reinterpret_cast<Stmt**>(reinterpret_cast<void**>(Ptr));
2021 }
2022 Stmt::child_iterator DesignatedInitExpr::child_end() {
2023   return child_iterator(&*child_begin() + NumSubExprs);
2024 }
2025 
2026 // ImplicitValueInitExpr
2027 Stmt::child_iterator ImplicitValueInitExpr::child_begin() {
2028   return child_iterator();
2029 }
2030 
2031 Stmt::child_iterator ImplicitValueInitExpr::child_end() {
2032   return child_iterator();
2033 }
2034 
2035 // ObjCStringLiteral
2036 Stmt::child_iterator ObjCStringLiteral::child_begin() {
2037   return &String;
2038 }
2039 Stmt::child_iterator ObjCStringLiteral::child_end() {
2040   return &String+1;
2041 }
2042 
2043 // ObjCEncodeExpr
2044 Stmt::child_iterator ObjCEncodeExpr::child_begin() { return child_iterator(); }
2045 Stmt::child_iterator ObjCEncodeExpr::child_end() { return child_iterator(); }
2046 
2047 // ObjCSelectorExpr
2048 Stmt::child_iterator ObjCSelectorExpr::child_begin() {
2049   return child_iterator();
2050 }
2051 Stmt::child_iterator ObjCSelectorExpr::child_end() {
2052   return child_iterator();
2053 }
2054 
2055 // ObjCProtocolExpr
2056 Stmt::child_iterator ObjCProtocolExpr::child_begin() {
2057   return child_iterator();
2058 }
2059 Stmt::child_iterator ObjCProtocolExpr::child_end() {
2060   return child_iterator();
2061 }
2062 
2063 // ObjCMessageExpr
2064 Stmt::child_iterator ObjCMessageExpr::child_begin() {
2065   return getReceiver() ? &SubExprs[0] : &SubExprs[0] + ARGS_START;
2066 }
2067 Stmt::child_iterator ObjCMessageExpr::child_end() {
2068   return &SubExprs[0]+ARGS_START+getNumArgs();
2069 }
2070 
2071 // Blocks
2072 Stmt::child_iterator BlockExpr::child_begin() { return child_iterator(); }
2073 Stmt::child_iterator BlockExpr::child_end() { return child_iterator(); }
2074 
2075 Stmt::child_iterator BlockDeclRefExpr::child_begin() { return child_iterator();}
2076 Stmt::child_iterator BlockDeclRefExpr::child_end() { return child_iterator(); }
2077