1 //===--- SemaStmt.cpp - Semantic Analysis for Statements ------------------===//
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 semantic analysis for statements.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "clang/Sema/SemaInternal.h"
15 #include "clang/Sema/Scope.h"
16 #include "clang/Sema/ScopeInfo.h"
17 #include "clang/Sema/Initialization.h"
18 #include "clang/Sema/Lookup.h"
19 #include "clang/AST/ASTContext.h"
20 #include "clang/AST/CharUnits.h"
21 #include "clang/AST/DeclObjC.h"
22 #include "clang/AST/ExprCXX.h"
23 #include "clang/AST/ExprObjC.h"
24 #include "clang/AST/StmtObjC.h"
25 #include "clang/AST/StmtCXX.h"
26 #include "clang/AST/TypeLoc.h"
27 #include "clang/Lex/Preprocessor.h"
28 #include "clang/Basic/TargetInfo.h"
29 #include "llvm/ADT/ArrayRef.h"
30 #include "llvm/ADT/STLExtras.h"
31 #include "llvm/ADT/SmallVector.h"
32 using namespace clang;
33 using namespace sema;
34 
35 StmtResult Sema::ActOnExprStmt(FullExprArg expr) {
36   Expr *E = expr.get();
37   if (!E) // FIXME: FullExprArg has no error state?
38     return StmtError();
39 
40   // C99 6.8.3p2: The expression in an expression statement is evaluated as a
41   // void expression for its side effects.  Conversion to void allows any
42   // operand, even incomplete types.
43 
44   // Same thing in for stmt first clause (when expr) and third clause.
45   return Owned(static_cast<Stmt*>(E));
46 }
47 
48 
49 StmtResult Sema::ActOnNullStmt(SourceLocation SemiLoc,
50                                bool HasLeadingEmptyMacro) {
51   return Owned(new (Context) NullStmt(SemiLoc, HasLeadingEmptyMacro));
52 }
53 
54 StmtResult Sema::ActOnDeclStmt(DeclGroupPtrTy dg, SourceLocation StartLoc,
55                                SourceLocation EndLoc) {
56   DeclGroupRef DG = dg.getAsVal<DeclGroupRef>();
57 
58   // If we have an invalid decl, just return an error.
59   if (DG.isNull()) return StmtError();
60 
61   return Owned(new (Context) DeclStmt(DG, StartLoc, EndLoc));
62 }
63 
64 void Sema::ActOnForEachDeclStmt(DeclGroupPtrTy dg) {
65   DeclGroupRef DG = dg.getAsVal<DeclGroupRef>();
66 
67   // If we have an invalid decl, just return.
68   if (DG.isNull() || !DG.isSingleDecl()) return;
69   VarDecl *var = cast<VarDecl>(DG.getSingleDecl());
70 
71   // suppress any potential 'unused variable' warning.
72   var->setUsed();
73 
74   // foreach variables are never actually initialized in the way that
75   // the parser came up with.
76   var->setInit(0);
77 
78   // In ARC, we don't need to retain the iteration variable of a fast
79   // enumeration loop.  Rather than actually trying to catch that
80   // during declaration processing, we remove the consequences here.
81   if (getLangOptions().ObjCAutoRefCount) {
82     QualType type = var->getType();
83 
84     // Only do this if we inferred the lifetime.  Inferred lifetime
85     // will show up as a local qualifier because explicit lifetime
86     // should have shown up as an AttributedType instead.
87     if (type.getLocalQualifiers().getObjCLifetime() == Qualifiers::OCL_Strong) {
88       // Add 'const' and mark the variable as pseudo-strong.
89       var->setType(type.withConst());
90       var->setARCPseudoStrong(true);
91     }
92   }
93 }
94 
95 /// \brief Diagnose unused '==' and '!=' as likely typos for '=' or '|='.
96 ///
97 /// Adding a cast to void (or other expression wrappers) will prevent the
98 /// warning from firing.
99 static bool DiagnoseUnusedComparison(Sema &S, const Expr *E) {
100   SourceLocation Loc;
101   bool IsNotEqual, CanAssign;
102 
103   if (const BinaryOperator *Op = dyn_cast<BinaryOperator>(E)) {
104     if (Op->getOpcode() != BO_EQ && Op->getOpcode() != BO_NE)
105       return false;
106 
107     Loc = Op->getOperatorLoc();
108     IsNotEqual = Op->getOpcode() == BO_NE;
109     CanAssign = Op->getLHS()->IgnoreParenImpCasts()->isLValue();
110   } else if (const CXXOperatorCallExpr *Op = dyn_cast<CXXOperatorCallExpr>(E)) {
111     if (Op->getOperator() != OO_EqualEqual &&
112         Op->getOperator() != OO_ExclaimEqual)
113       return false;
114 
115     Loc = Op->getOperatorLoc();
116     IsNotEqual = Op->getOperator() == OO_ExclaimEqual;
117     CanAssign = Op->getArg(0)->IgnoreParenImpCasts()->isLValue();
118   } else {
119     // Not a typo-prone comparison.
120     return false;
121   }
122 
123   // Suppress warnings when the operator, suspicious as it may be, comes from
124   // a macro expansion.
125   if (Loc.isMacroID())
126     return false;
127 
128   S.Diag(Loc, diag::warn_unused_comparison)
129     << (unsigned)IsNotEqual << E->getSourceRange();
130 
131   // If the LHS is a plausible entity to assign to, provide a fixit hint to
132   // correct common typos.
133   if (CanAssign) {
134     if (IsNotEqual)
135       S.Diag(Loc, diag::note_inequality_comparison_to_or_assign)
136         << FixItHint::CreateReplacement(Loc, "|=");
137     else
138       S.Diag(Loc, diag::note_equality_comparison_to_assign)
139         << FixItHint::CreateReplacement(Loc, "=");
140   }
141 
142   return true;
143 }
144 
145 void Sema::DiagnoseUnusedExprResult(const Stmt *S) {
146   if (const LabelStmt *Label = dyn_cast_or_null<LabelStmt>(S))
147     return DiagnoseUnusedExprResult(Label->getSubStmt());
148 
149   const Expr *E = dyn_cast_or_null<Expr>(S);
150   if (!E)
151     return;
152 
153   SourceLocation Loc;
154   SourceRange R1, R2;
155   if (SourceMgr.isInSystemMacro(E->getExprLoc()) ||
156       !E->isUnusedResultAWarning(Loc, R1, R2, Context))
157     return;
158 
159   // Okay, we have an unused result.  Depending on what the base expression is,
160   // we might want to make a more specific diagnostic.  Check for one of these
161   // cases now.
162   unsigned DiagID = diag::warn_unused_expr;
163   if (const ExprWithCleanups *Temps = dyn_cast<ExprWithCleanups>(E))
164     E = Temps->getSubExpr();
165   if (const CXXBindTemporaryExpr *TempExpr = dyn_cast<CXXBindTemporaryExpr>(E))
166     E = TempExpr->getSubExpr();
167 
168   if (DiagnoseUnusedComparison(*this, E))
169     return;
170 
171   E = E->IgnoreParenImpCasts();
172   if (const CallExpr *CE = dyn_cast<CallExpr>(E)) {
173     if (E->getType()->isVoidType())
174       return;
175 
176     // If the callee has attribute pure, const, or warn_unused_result, warn with
177     // a more specific message to make it clear what is happening.
178     if (const Decl *FD = CE->getCalleeDecl()) {
179       if (FD->getAttr<WarnUnusedResultAttr>()) {
180         Diag(Loc, diag::warn_unused_result) << R1 << R2;
181         return;
182       }
183       if (FD->getAttr<PureAttr>()) {
184         Diag(Loc, diag::warn_unused_call) << R1 << R2 << "pure";
185         return;
186       }
187       if (FD->getAttr<ConstAttr>()) {
188         Diag(Loc, diag::warn_unused_call) << R1 << R2 << "const";
189         return;
190       }
191     }
192   } else if (const ObjCMessageExpr *ME = dyn_cast<ObjCMessageExpr>(E)) {
193     if (getLangOptions().ObjCAutoRefCount && ME->isDelegateInitCall()) {
194       Diag(Loc, diag::err_arc_unused_init_message) << R1;
195       return;
196     }
197     const ObjCMethodDecl *MD = ME->getMethodDecl();
198     if (MD && MD->getAttr<WarnUnusedResultAttr>()) {
199       Diag(Loc, diag::warn_unused_result) << R1 << R2;
200       return;
201     }
202   } else if (isa<PseudoObjectExpr>(E)) {
203     DiagID = diag::warn_unused_property_expr;
204   } else if (const CXXFunctionalCastExpr *FC
205                                        = dyn_cast<CXXFunctionalCastExpr>(E)) {
206     if (isa<CXXConstructExpr>(FC->getSubExpr()) ||
207         isa<CXXTemporaryObjectExpr>(FC->getSubExpr()))
208       return;
209   }
210   // Diagnose "(void*) blah" as a typo for "(void) blah".
211   else if (const CStyleCastExpr *CE = dyn_cast<CStyleCastExpr>(E)) {
212     TypeSourceInfo *TI = CE->getTypeInfoAsWritten();
213     QualType T = TI->getType();
214 
215     // We really do want to use the non-canonical type here.
216     if (T == Context.VoidPtrTy) {
217       PointerTypeLoc TL = cast<PointerTypeLoc>(TI->getTypeLoc());
218 
219       Diag(Loc, diag::warn_unused_voidptr)
220         << FixItHint::CreateRemoval(TL.getStarLoc());
221       return;
222     }
223   }
224 
225   DiagRuntimeBehavior(Loc, 0, PDiag(DiagID) << R1 << R2);
226 }
227 
228 StmtResult
229 Sema::ActOnCompoundStmt(SourceLocation L, SourceLocation R,
230                         MultiStmtArg elts, bool isStmtExpr) {
231   unsigned NumElts = elts.size();
232   Stmt **Elts = reinterpret_cast<Stmt**>(elts.release());
233   // If we're in C89 mode, check that we don't have any decls after stmts.  If
234   // so, emit an extension diagnostic.
235   if (!getLangOptions().C99 && !getLangOptions().CPlusPlus) {
236     // Note that __extension__ can be around a decl.
237     unsigned i = 0;
238     // Skip over all declarations.
239     for (; i != NumElts && isa<DeclStmt>(Elts[i]); ++i)
240       /*empty*/;
241 
242     // We found the end of the list or a statement.  Scan for another declstmt.
243     for (; i != NumElts && !isa<DeclStmt>(Elts[i]); ++i)
244       /*empty*/;
245 
246     if (i != NumElts) {
247       Decl *D = *cast<DeclStmt>(Elts[i])->decl_begin();
248       Diag(D->getLocation(), diag::ext_mixed_decls_code);
249     }
250   }
251   // Warn about unused expressions in statements.
252   for (unsigned i = 0; i != NumElts; ++i) {
253     // Ignore statements that are last in a statement expression.
254     if (isStmtExpr && i == NumElts - 1)
255       continue;
256 
257     DiagnoseUnusedExprResult(Elts[i]);
258   }
259 
260   return Owned(new (Context) CompoundStmt(Context, Elts, NumElts, L, R));
261 }
262 
263 StmtResult
264 Sema::ActOnCaseStmt(SourceLocation CaseLoc, Expr *LHSVal,
265                     SourceLocation DotDotDotLoc, Expr *RHSVal,
266                     SourceLocation ColonLoc) {
267   assert((LHSVal != 0) && "missing expression in case statement");
268 
269   if (getCurFunction()->SwitchStack.empty()) {
270     Diag(CaseLoc, diag::err_case_not_in_switch);
271     return StmtError();
272   }
273 
274   if (!getLangOptions().CPlusPlus0x) {
275     // C99 6.8.4.2p3: The expression shall be an integer constant.
276     // However, GCC allows any evaluatable integer expression.
277     if (!LHSVal->isTypeDependent() && !LHSVal->isValueDependent() &&
278         VerifyIntegerConstantExpression(LHSVal))
279       return StmtError();
280 
281     // GCC extension: The expression shall be an integer constant.
282 
283     if (RHSVal && !RHSVal->isTypeDependent() && !RHSVal->isValueDependent() &&
284         VerifyIntegerConstantExpression(RHSVal)) {
285       RHSVal = 0;  // Recover by just forgetting about it.
286     }
287   }
288 
289   CaseStmt *CS = new (Context) CaseStmt(LHSVal, RHSVal, CaseLoc, DotDotDotLoc,
290                                         ColonLoc);
291   getCurFunction()->SwitchStack.back()->addSwitchCase(CS);
292   return Owned(CS);
293 }
294 
295 /// ActOnCaseStmtBody - This installs a statement as the body of a case.
296 void Sema::ActOnCaseStmtBody(Stmt *caseStmt, Stmt *SubStmt) {
297   DiagnoseUnusedExprResult(SubStmt);
298 
299   CaseStmt *CS = static_cast<CaseStmt*>(caseStmt);
300   CS->setSubStmt(SubStmt);
301 }
302 
303 StmtResult
304 Sema::ActOnDefaultStmt(SourceLocation DefaultLoc, SourceLocation ColonLoc,
305                        Stmt *SubStmt, Scope *CurScope) {
306   DiagnoseUnusedExprResult(SubStmt);
307 
308   if (getCurFunction()->SwitchStack.empty()) {
309     Diag(DefaultLoc, diag::err_default_not_in_switch);
310     return Owned(SubStmt);
311   }
312 
313   DefaultStmt *DS = new (Context) DefaultStmt(DefaultLoc, ColonLoc, SubStmt);
314   getCurFunction()->SwitchStack.back()->addSwitchCase(DS);
315   return Owned(DS);
316 }
317 
318 StmtResult
319 Sema::ActOnLabelStmt(SourceLocation IdentLoc, LabelDecl *TheDecl,
320                      SourceLocation ColonLoc, Stmt *SubStmt) {
321 
322   // If the label was multiply defined, reject it now.
323   if (TheDecl->getStmt()) {
324     Diag(IdentLoc, diag::err_redefinition_of_label) << TheDecl->getDeclName();
325     Diag(TheDecl->getLocation(), diag::note_previous_definition);
326     return Owned(SubStmt);
327   }
328 
329   // Otherwise, things are good.  Fill in the declaration and return it.
330   LabelStmt *LS = new (Context) LabelStmt(IdentLoc, TheDecl, SubStmt);
331   TheDecl->setStmt(LS);
332   if (!TheDecl->isGnuLocal())
333     TheDecl->setLocation(IdentLoc);
334   return Owned(LS);
335 }
336 
337 StmtResult
338 Sema::ActOnIfStmt(SourceLocation IfLoc, FullExprArg CondVal, Decl *CondVar,
339                   Stmt *thenStmt, SourceLocation ElseLoc,
340                   Stmt *elseStmt) {
341   ExprResult CondResult(CondVal.release());
342 
343   VarDecl *ConditionVar = 0;
344   if (CondVar) {
345     ConditionVar = cast<VarDecl>(CondVar);
346     CondResult = CheckConditionVariable(ConditionVar, IfLoc, true);
347     if (CondResult.isInvalid())
348       return StmtError();
349   }
350   Expr *ConditionExpr = CondResult.takeAs<Expr>();
351   if (!ConditionExpr)
352     return StmtError();
353 
354   DiagnoseUnusedExprResult(thenStmt);
355 
356   // Warn if the if block has a null body without an else value.
357   // this helps prevent bugs due to typos, such as
358   // if (condition);
359   //   do_stuff();
360   //
361   if (!elseStmt) {
362     if (NullStmt* stmt = dyn_cast<NullStmt>(thenStmt))
363       // But do not warn if the body is a macro that expands to nothing, e.g:
364       //
365       // #define CALL(x)
366       // if (condition)
367       //   CALL(0);
368       //
369       if (!stmt->hasLeadingEmptyMacro())
370         Diag(stmt->getSemiLoc(), diag::warn_empty_if_body);
371   }
372 
373   DiagnoseUnusedExprResult(elseStmt);
374 
375   return Owned(new (Context) IfStmt(Context, IfLoc, ConditionVar, ConditionExpr,
376                                     thenStmt, ElseLoc, elseStmt));
377 }
378 
379 /// ConvertIntegerToTypeWarnOnOverflow - Convert the specified APInt to have
380 /// the specified width and sign.  If an overflow occurs, detect it and emit
381 /// the specified diagnostic.
382 void Sema::ConvertIntegerToTypeWarnOnOverflow(llvm::APSInt &Val,
383                                               unsigned NewWidth, bool NewSign,
384                                               SourceLocation Loc,
385                                               unsigned DiagID) {
386   // Perform a conversion to the promoted condition type if needed.
387   if (NewWidth > Val.getBitWidth()) {
388     // If this is an extension, just do it.
389     Val = Val.extend(NewWidth);
390     Val.setIsSigned(NewSign);
391 
392     // If the input was signed and negative and the output is
393     // unsigned, don't bother to warn: this is implementation-defined
394     // behavior.
395     // FIXME: Introduce a second, default-ignored warning for this case?
396   } else if (NewWidth < Val.getBitWidth()) {
397     // If this is a truncation, check for overflow.
398     llvm::APSInt ConvVal(Val);
399     ConvVal = ConvVal.trunc(NewWidth);
400     ConvVal.setIsSigned(NewSign);
401     ConvVal = ConvVal.extend(Val.getBitWidth());
402     ConvVal.setIsSigned(Val.isSigned());
403     if (ConvVal != Val)
404       Diag(Loc, DiagID) << Val.toString(10) << ConvVal.toString(10);
405 
406     // Regardless of whether a diagnostic was emitted, really do the
407     // truncation.
408     Val = Val.trunc(NewWidth);
409     Val.setIsSigned(NewSign);
410   } else if (NewSign != Val.isSigned()) {
411     // Convert the sign to match the sign of the condition.  This can cause
412     // overflow as well: unsigned(INTMIN)
413     // We don't diagnose this overflow, because it is implementation-defined
414     // behavior.
415     // FIXME: Introduce a second, default-ignored warning for this case?
416     llvm::APSInt OldVal(Val);
417     Val.setIsSigned(NewSign);
418   }
419 }
420 
421 namespace {
422   struct CaseCompareFunctor {
423     bool operator()(const std::pair<llvm::APSInt, CaseStmt*> &LHS,
424                     const llvm::APSInt &RHS) {
425       return LHS.first < RHS;
426     }
427     bool operator()(const std::pair<llvm::APSInt, CaseStmt*> &LHS,
428                     const std::pair<llvm::APSInt, CaseStmt*> &RHS) {
429       return LHS.first < RHS.first;
430     }
431     bool operator()(const llvm::APSInt &LHS,
432                     const std::pair<llvm::APSInt, CaseStmt*> &RHS) {
433       return LHS < RHS.first;
434     }
435   };
436 }
437 
438 /// CmpCaseVals - Comparison predicate for sorting case values.
439 ///
440 static bool CmpCaseVals(const std::pair<llvm::APSInt, CaseStmt*>& lhs,
441                         const std::pair<llvm::APSInt, CaseStmt*>& rhs) {
442   if (lhs.first < rhs.first)
443     return true;
444 
445   if (lhs.first == rhs.first &&
446       lhs.second->getCaseLoc().getRawEncoding()
447        < rhs.second->getCaseLoc().getRawEncoding())
448     return true;
449   return false;
450 }
451 
452 /// CmpEnumVals - Comparison predicate for sorting enumeration values.
453 ///
454 static bool CmpEnumVals(const std::pair<llvm::APSInt, EnumConstantDecl*>& lhs,
455                         const std::pair<llvm::APSInt, EnumConstantDecl*>& rhs)
456 {
457   return lhs.first < rhs.first;
458 }
459 
460 /// EqEnumVals - Comparison preficate for uniqing enumeration values.
461 ///
462 static bool EqEnumVals(const std::pair<llvm::APSInt, EnumConstantDecl*>& lhs,
463                        const std::pair<llvm::APSInt, EnumConstantDecl*>& rhs)
464 {
465   return lhs.first == rhs.first;
466 }
467 
468 /// GetTypeBeforeIntegralPromotion - Returns the pre-promotion type of
469 /// potentially integral-promoted expression @p expr.
470 static QualType GetTypeBeforeIntegralPromotion(Expr *&expr) {
471   if (ExprWithCleanups *cleanups = dyn_cast<ExprWithCleanups>(expr))
472     expr = cleanups->getSubExpr();
473   while (ImplicitCastExpr *impcast = dyn_cast<ImplicitCastExpr>(expr)) {
474     if (impcast->getCastKind() != CK_IntegralCast) break;
475     expr = impcast->getSubExpr();
476   }
477   return expr->getType();
478 }
479 
480 StmtResult
481 Sema::ActOnStartOfSwitchStmt(SourceLocation SwitchLoc, Expr *Cond,
482                              Decl *CondVar) {
483   ExprResult CondResult;
484 
485   VarDecl *ConditionVar = 0;
486   if (CondVar) {
487     ConditionVar = cast<VarDecl>(CondVar);
488     CondResult = CheckConditionVariable(ConditionVar, SourceLocation(), false);
489     if (CondResult.isInvalid())
490       return StmtError();
491 
492     Cond = CondResult.release();
493   }
494 
495   if (!Cond)
496     return StmtError();
497 
498   CondResult = DefaultFunctionArrayLvalueConversion(Cond);
499   if (CondResult.isInvalid())
500     return StmtError();
501 
502   CondResult
503     = ConvertToIntegralOrEnumerationType(SwitchLoc, CondResult.take(),
504                           PDiag(diag::err_typecheck_statement_requires_integer),
505                                    PDiag(diag::err_switch_incomplete_class_type)
506                                      << Cond->getSourceRange(),
507                                    PDiag(diag::err_switch_explicit_conversion),
508                                          PDiag(diag::note_switch_conversion),
509                                    PDiag(diag::err_switch_multiple_conversions),
510                                          PDiag(diag::note_switch_conversion),
511                                          PDiag(0));
512   if (CondResult.isInvalid()) return StmtError();
513   Cond = CondResult.take();
514 
515   // C99 6.8.4.2p5 - Integer promotions are performed on the controlling expr.
516   CondResult = UsualUnaryConversions(Cond);
517   if (CondResult.isInvalid()) return StmtError();
518   Cond = CondResult.take();
519 
520   if (!CondVar) {
521     CheckImplicitConversions(Cond, SwitchLoc);
522     CondResult = MaybeCreateExprWithCleanups(Cond);
523     if (CondResult.isInvalid())
524       return StmtError();
525     Cond = CondResult.take();
526   }
527 
528   getCurFunction()->setHasBranchIntoScope();
529 
530   SwitchStmt *SS = new (Context) SwitchStmt(Context, ConditionVar, Cond);
531   getCurFunction()->SwitchStack.push_back(SS);
532   return Owned(SS);
533 }
534 
535 static void AdjustAPSInt(llvm::APSInt &Val, unsigned BitWidth, bool IsSigned) {
536   if (Val.getBitWidth() < BitWidth)
537     Val = Val.extend(BitWidth);
538   else if (Val.getBitWidth() > BitWidth)
539     Val = Val.trunc(BitWidth);
540   Val.setIsSigned(IsSigned);
541 }
542 
543 StmtResult
544 Sema::ActOnFinishSwitchStmt(SourceLocation SwitchLoc, Stmt *Switch,
545                             Stmt *BodyStmt) {
546   SwitchStmt *SS = cast<SwitchStmt>(Switch);
547   assert(SS == getCurFunction()->SwitchStack.back() &&
548          "switch stack missing push/pop!");
549 
550   SS->setBody(BodyStmt, SwitchLoc);
551   getCurFunction()->SwitchStack.pop_back();
552 
553   Expr *CondExpr = SS->getCond();
554   if (!CondExpr) return StmtError();
555 
556   QualType CondType = CondExpr->getType();
557 
558   Expr *CondExprBeforePromotion = CondExpr;
559   QualType CondTypeBeforePromotion =
560       GetTypeBeforeIntegralPromotion(CondExprBeforePromotion);
561 
562   // C++ 6.4.2.p2:
563   // Integral promotions are performed (on the switch condition).
564   //
565   // A case value unrepresentable by the original switch condition
566   // type (before the promotion) doesn't make sense, even when it can
567   // be represented by the promoted type.  Therefore we need to find
568   // the pre-promotion type of the switch condition.
569   if (!CondExpr->isTypeDependent()) {
570     // We have already converted the expression to an integral or enumeration
571     // type, when we started the switch statement. If we don't have an
572     // appropriate type now, just return an error.
573     if (!CondType->isIntegralOrEnumerationType())
574       return StmtError();
575 
576     if (CondExpr->isKnownToHaveBooleanValue()) {
577       // switch(bool_expr) {...} is often a programmer error, e.g.
578       //   switch(n && mask) { ... }  // Doh - should be "n & mask".
579       // One can always use an if statement instead of switch(bool_expr).
580       Diag(SwitchLoc, diag::warn_bool_switch_condition)
581           << CondExpr->getSourceRange();
582     }
583   }
584 
585   // Get the bitwidth of the switched-on value before promotions.  We must
586   // convert the integer case values to this width before comparison.
587   bool HasDependentValue
588     = CondExpr->isTypeDependent() || CondExpr->isValueDependent();
589   unsigned CondWidth
590     = HasDependentValue ? 0 : Context.getIntWidth(CondTypeBeforePromotion);
591   bool CondIsSigned
592     = CondTypeBeforePromotion->isSignedIntegerOrEnumerationType();
593 
594   // Accumulate all of the case values in a vector so that we can sort them
595   // and detect duplicates.  This vector contains the APInt for the case after
596   // it has been converted to the condition type.
597   typedef SmallVector<std::pair<llvm::APSInt, CaseStmt*>, 64> CaseValsTy;
598   CaseValsTy CaseVals;
599 
600   // Keep track of any GNU case ranges we see.  The APSInt is the low value.
601   typedef std::vector<std::pair<llvm::APSInt, CaseStmt*> > CaseRangesTy;
602   CaseRangesTy CaseRanges;
603 
604   DefaultStmt *TheDefaultStmt = 0;
605 
606   bool CaseListIsErroneous = false;
607 
608   for (SwitchCase *SC = SS->getSwitchCaseList(); SC && !HasDependentValue;
609        SC = SC->getNextSwitchCase()) {
610 
611     if (DefaultStmt *DS = dyn_cast<DefaultStmt>(SC)) {
612       if (TheDefaultStmt) {
613         Diag(DS->getDefaultLoc(), diag::err_multiple_default_labels_defined);
614         Diag(TheDefaultStmt->getDefaultLoc(), diag::note_duplicate_case_prev);
615 
616         // FIXME: Remove the default statement from the switch block so that
617         // we'll return a valid AST.  This requires recursing down the AST and
618         // finding it, not something we are set up to do right now.  For now,
619         // just lop the entire switch stmt out of the AST.
620         CaseListIsErroneous = true;
621       }
622       TheDefaultStmt = DS;
623 
624     } else {
625       CaseStmt *CS = cast<CaseStmt>(SC);
626 
627       Expr *Lo = CS->getLHS();
628 
629       if (Lo->isTypeDependent() || Lo->isValueDependent()) {
630         HasDependentValue = true;
631         break;
632       }
633 
634       llvm::APSInt LoVal;
635 
636       if (getLangOptions().CPlusPlus0x) {
637         // C++11 [stmt.switch]p2: the constant-expression shall be a converted
638         // constant expression of the promoted type of the switch condition.
639         ExprResult ConvLo =
640           CheckConvertedConstantExpression(Lo, CondType, LoVal, CCEK_CaseValue);
641         if (ConvLo.isInvalid()) {
642           CaseListIsErroneous = true;
643           continue;
644         }
645         Lo = ConvLo.take();
646       } else {
647         // We already verified that the expression has a i-c-e value (C99
648         // 6.8.4.2p3) - get that value now.
649         LoVal = Lo->EvaluateKnownConstInt(Context);
650 
651         // If the LHS is not the same type as the condition, insert an implicit
652         // cast.
653         Lo = DefaultLvalueConversion(Lo).take();
654         Lo = ImpCastExprToType(Lo, CondType, CK_IntegralCast).take();
655       }
656 
657       // Convert the value to the same width/sign as the condition had prior to
658       // integral promotions.
659       //
660       // FIXME: This causes us to reject valid code:
661       //   switch ((char)c) { case 256: case 0: return 0; }
662       // Here we claim there is a duplicated condition value, but there is not.
663       ConvertIntegerToTypeWarnOnOverflow(LoVal, CondWidth, CondIsSigned,
664                                          Lo->getLocStart(),
665                                          diag::warn_case_value_overflow);
666 
667       CS->setLHS(Lo);
668 
669       // If this is a case range, remember it in CaseRanges, otherwise CaseVals.
670       if (CS->getRHS()) {
671         if (CS->getRHS()->isTypeDependent() ||
672             CS->getRHS()->isValueDependent()) {
673           HasDependentValue = true;
674           break;
675         }
676         CaseRanges.push_back(std::make_pair(LoVal, CS));
677       } else
678         CaseVals.push_back(std::make_pair(LoVal, CS));
679     }
680   }
681 
682   if (!HasDependentValue) {
683     // If we don't have a default statement, check whether the
684     // condition is constant.
685     llvm::APSInt ConstantCondValue;
686     bool HasConstantCond = false;
687     if (!HasDependentValue && !TheDefaultStmt) {
688       HasConstantCond
689         = CondExprBeforePromotion->EvaluateAsInt(ConstantCondValue, Context,
690                                                  Expr::SE_AllowSideEffects);
691       assert(!HasConstantCond ||
692              (ConstantCondValue.getBitWidth() == CondWidth &&
693               ConstantCondValue.isSigned() == CondIsSigned));
694     }
695     bool ShouldCheckConstantCond = HasConstantCond;
696 
697     // Sort all the scalar case values so we can easily detect duplicates.
698     std::stable_sort(CaseVals.begin(), CaseVals.end(), CmpCaseVals);
699 
700     if (!CaseVals.empty()) {
701       for (unsigned i = 0, e = CaseVals.size(); i != e; ++i) {
702         if (ShouldCheckConstantCond &&
703             CaseVals[i].first == ConstantCondValue)
704           ShouldCheckConstantCond = false;
705 
706         if (i != 0 && CaseVals[i].first == CaseVals[i-1].first) {
707           // If we have a duplicate, report it.
708           Diag(CaseVals[i].second->getLHS()->getLocStart(),
709                diag::err_duplicate_case) << CaseVals[i].first.toString(10);
710           Diag(CaseVals[i-1].second->getLHS()->getLocStart(),
711                diag::note_duplicate_case_prev);
712           // FIXME: We really want to remove the bogus case stmt from the
713           // substmt, but we have no way to do this right now.
714           CaseListIsErroneous = true;
715         }
716       }
717     }
718 
719     // Detect duplicate case ranges, which usually don't exist at all in
720     // the first place.
721     if (!CaseRanges.empty()) {
722       // Sort all the case ranges by their low value so we can easily detect
723       // overlaps between ranges.
724       std::stable_sort(CaseRanges.begin(), CaseRanges.end());
725 
726       // Scan the ranges, computing the high values and removing empty ranges.
727       std::vector<llvm::APSInt> HiVals;
728       for (unsigned i = 0, e = CaseRanges.size(); i != e; ++i) {
729         llvm::APSInt &LoVal = CaseRanges[i].first;
730         CaseStmt *CR = CaseRanges[i].second;
731         Expr *Hi = CR->getRHS();
732         llvm::APSInt HiVal;
733 
734         if (getLangOptions().CPlusPlus0x) {
735           // C++11 [stmt.switch]p2: the constant-expression shall be a converted
736           // constant expression of the promoted type of the switch condition.
737           ExprResult ConvHi =
738             CheckConvertedConstantExpression(Hi, CondType, HiVal,
739                                              CCEK_CaseValue);
740           if (ConvHi.isInvalid()) {
741             CaseListIsErroneous = true;
742             continue;
743           }
744           Hi = ConvHi.take();
745         } else {
746           HiVal = Hi->EvaluateKnownConstInt(Context);
747 
748           // If the RHS is not the same type as the condition, insert an
749           // implicit cast.
750           Hi = DefaultLvalueConversion(Hi).take();
751           Hi = ImpCastExprToType(Hi, CondType, CK_IntegralCast).take();
752         }
753 
754         // Convert the value to the same width/sign as the condition.
755         ConvertIntegerToTypeWarnOnOverflow(HiVal, CondWidth, CondIsSigned,
756                                            Hi->getLocStart(),
757                                            diag::warn_case_value_overflow);
758 
759         CR->setRHS(Hi);
760 
761         // If the low value is bigger than the high value, the case is empty.
762         if (LoVal > HiVal) {
763           Diag(CR->getLHS()->getLocStart(), diag::warn_case_empty_range)
764             << SourceRange(CR->getLHS()->getLocStart(),
765                            Hi->getLocEnd());
766           CaseRanges.erase(CaseRanges.begin()+i);
767           --i, --e;
768           continue;
769         }
770 
771         if (ShouldCheckConstantCond &&
772             LoVal <= ConstantCondValue &&
773             ConstantCondValue <= HiVal)
774           ShouldCheckConstantCond = false;
775 
776         HiVals.push_back(HiVal);
777       }
778 
779       // Rescan the ranges, looking for overlap with singleton values and other
780       // ranges.  Since the range list is sorted, we only need to compare case
781       // ranges with their neighbors.
782       for (unsigned i = 0, e = CaseRanges.size(); i != e; ++i) {
783         llvm::APSInt &CRLo = CaseRanges[i].first;
784         llvm::APSInt &CRHi = HiVals[i];
785         CaseStmt *CR = CaseRanges[i].second;
786 
787         // Check to see whether the case range overlaps with any
788         // singleton cases.
789         CaseStmt *OverlapStmt = 0;
790         llvm::APSInt OverlapVal(32);
791 
792         // Find the smallest value >= the lower bound.  If I is in the
793         // case range, then we have overlap.
794         CaseValsTy::iterator I = std::lower_bound(CaseVals.begin(),
795                                                   CaseVals.end(), CRLo,
796                                                   CaseCompareFunctor());
797         if (I != CaseVals.end() && I->first < CRHi) {
798           OverlapVal  = I->first;   // Found overlap with scalar.
799           OverlapStmt = I->second;
800         }
801 
802         // Find the smallest value bigger than the upper bound.
803         I = std::upper_bound(I, CaseVals.end(), CRHi, CaseCompareFunctor());
804         if (I != CaseVals.begin() && (I-1)->first >= CRLo) {
805           OverlapVal  = (I-1)->first;      // Found overlap with scalar.
806           OverlapStmt = (I-1)->second;
807         }
808 
809         // Check to see if this case stmt overlaps with the subsequent
810         // case range.
811         if (i && CRLo <= HiVals[i-1]) {
812           OverlapVal  = HiVals[i-1];       // Found overlap with range.
813           OverlapStmt = CaseRanges[i-1].second;
814         }
815 
816         if (OverlapStmt) {
817           // If we have a duplicate, report it.
818           Diag(CR->getLHS()->getLocStart(), diag::err_duplicate_case)
819             << OverlapVal.toString(10);
820           Diag(OverlapStmt->getLHS()->getLocStart(),
821                diag::note_duplicate_case_prev);
822           // FIXME: We really want to remove the bogus case stmt from the
823           // substmt, but we have no way to do this right now.
824           CaseListIsErroneous = true;
825         }
826       }
827     }
828 
829     // Complain if we have a constant condition and we didn't find a match.
830     if (!CaseListIsErroneous && ShouldCheckConstantCond) {
831       // TODO: it would be nice if we printed enums as enums, chars as
832       // chars, etc.
833       Diag(CondExpr->getExprLoc(), diag::warn_missing_case_for_condition)
834         << ConstantCondValue.toString(10)
835         << CondExpr->getSourceRange();
836     }
837 
838     // Check to see if switch is over an Enum and handles all of its
839     // values.  We only issue a warning if there is not 'default:', but
840     // we still do the analysis to preserve this information in the AST
841     // (which can be used by flow-based analyes).
842     //
843     const EnumType *ET = CondTypeBeforePromotion->getAs<EnumType>();
844 
845     // If switch has default case, then ignore it.
846     if (!CaseListIsErroneous  && !HasConstantCond && ET) {
847       const EnumDecl *ED = ET->getDecl();
848       typedef SmallVector<std::pair<llvm::APSInt, EnumConstantDecl*>, 64>
849         EnumValsTy;
850       EnumValsTy EnumVals;
851 
852       // Gather all enum values, set their type and sort them,
853       // allowing easier comparison with CaseVals.
854       for (EnumDecl::enumerator_iterator EDI = ED->enumerator_begin();
855            EDI != ED->enumerator_end(); ++EDI) {
856         llvm::APSInt Val = EDI->getInitVal();
857         AdjustAPSInt(Val, CondWidth, CondIsSigned);
858         EnumVals.push_back(std::make_pair(Val, *EDI));
859       }
860       std::stable_sort(EnumVals.begin(), EnumVals.end(), CmpEnumVals);
861       EnumValsTy::iterator EIend =
862         std::unique(EnumVals.begin(), EnumVals.end(), EqEnumVals);
863 
864       // See which case values aren't in enum.
865       EnumValsTy::const_iterator EI = EnumVals.begin();
866       for (CaseValsTy::const_iterator CI = CaseVals.begin();
867            CI != CaseVals.end(); CI++) {
868         while (EI != EIend && EI->first < CI->first)
869           EI++;
870         if (EI == EIend || EI->first > CI->first)
871           Diag(CI->second->getLHS()->getExprLoc(), diag::warn_not_in_enum)
872             << ED->getDeclName();
873       }
874       // See which of case ranges aren't in enum
875       EI = EnumVals.begin();
876       for (CaseRangesTy::const_iterator RI = CaseRanges.begin();
877            RI != CaseRanges.end() && EI != EIend; RI++) {
878         while (EI != EIend && EI->first < RI->first)
879           EI++;
880 
881         if (EI == EIend || EI->first != RI->first) {
882           Diag(RI->second->getLHS()->getExprLoc(), diag::warn_not_in_enum)
883             << ED->getDeclName();
884         }
885 
886         llvm::APSInt Hi =
887           RI->second->getRHS()->EvaluateKnownConstInt(Context);
888         AdjustAPSInt(Hi, CondWidth, CondIsSigned);
889         while (EI != EIend && EI->first < Hi)
890           EI++;
891         if (EI == EIend || EI->first != Hi)
892           Diag(RI->second->getRHS()->getExprLoc(), diag::warn_not_in_enum)
893             << ED->getDeclName();
894       }
895 
896       // Check which enum vals aren't in switch
897       CaseValsTy::const_iterator CI = CaseVals.begin();
898       CaseRangesTy::const_iterator RI = CaseRanges.begin();
899       bool hasCasesNotInSwitch = false;
900 
901       SmallVector<DeclarationName,8> UnhandledNames;
902 
903       for (EI = EnumVals.begin(); EI != EIend; EI++){
904         // Drop unneeded case values
905         llvm::APSInt CIVal;
906         while (CI != CaseVals.end() && CI->first < EI->first)
907           CI++;
908 
909         if (CI != CaseVals.end() && CI->first == EI->first)
910           continue;
911 
912         // Drop unneeded case ranges
913         for (; RI != CaseRanges.end(); RI++) {
914           llvm::APSInt Hi =
915             RI->second->getRHS()->EvaluateKnownConstInt(Context);
916           AdjustAPSInt(Hi, CondWidth, CondIsSigned);
917           if (EI->first <= Hi)
918             break;
919         }
920 
921         if (RI == CaseRanges.end() || EI->first < RI->first) {
922           hasCasesNotInSwitch = true;
923           UnhandledNames.push_back(EI->second->getDeclName());
924         }
925       }
926 
927       if (TheDefaultStmt && UnhandledNames.empty())
928         Diag(TheDefaultStmt->getDefaultLoc(), diag::warn_unreachable_default);
929 
930       // Produce a nice diagnostic if multiple values aren't handled.
931       switch (UnhandledNames.size()) {
932       case 0: break;
933       case 1:
934         Diag(CondExpr->getExprLoc(), TheDefaultStmt
935           ? diag::warn_def_missing_case1 : diag::warn_missing_case1)
936           << UnhandledNames[0];
937         break;
938       case 2:
939         Diag(CondExpr->getExprLoc(), TheDefaultStmt
940           ? diag::warn_def_missing_case2 : diag::warn_missing_case2)
941           << UnhandledNames[0] << UnhandledNames[1];
942         break;
943       case 3:
944         Diag(CondExpr->getExprLoc(), TheDefaultStmt
945           ? diag::warn_def_missing_case3 : diag::warn_missing_case3)
946           << UnhandledNames[0] << UnhandledNames[1] << UnhandledNames[2];
947         break;
948       default:
949         Diag(CondExpr->getExprLoc(), TheDefaultStmt
950           ? diag::warn_def_missing_cases : diag::warn_missing_cases)
951           << (unsigned)UnhandledNames.size()
952           << UnhandledNames[0] << UnhandledNames[1] << UnhandledNames[2];
953         break;
954       }
955 
956       if (!hasCasesNotInSwitch)
957         SS->setAllEnumCasesCovered();
958     }
959   }
960 
961   // FIXME: If the case list was broken is some way, we don't have a good system
962   // to patch it up.  Instead, just return the whole substmt as broken.
963   if (CaseListIsErroneous)
964     return StmtError();
965 
966   return Owned(SS);
967 }
968 
969 StmtResult
970 Sema::ActOnWhileStmt(SourceLocation WhileLoc, FullExprArg Cond,
971                      Decl *CondVar, Stmt *Body) {
972   ExprResult CondResult(Cond.release());
973 
974   VarDecl *ConditionVar = 0;
975   if (CondVar) {
976     ConditionVar = cast<VarDecl>(CondVar);
977     CondResult = CheckConditionVariable(ConditionVar, WhileLoc, true);
978     if (CondResult.isInvalid())
979       return StmtError();
980   }
981   Expr *ConditionExpr = CondResult.take();
982   if (!ConditionExpr)
983     return StmtError();
984 
985   DiagnoseUnusedExprResult(Body);
986 
987   return Owned(new (Context) WhileStmt(Context, ConditionVar, ConditionExpr,
988                                        Body, WhileLoc));
989 }
990 
991 StmtResult
992 Sema::ActOnDoStmt(SourceLocation DoLoc, Stmt *Body,
993                   SourceLocation WhileLoc, SourceLocation CondLParen,
994                   Expr *Cond, SourceLocation CondRParen) {
995   assert(Cond && "ActOnDoStmt(): missing expression");
996 
997   ExprResult CondResult = CheckBooleanCondition(Cond, DoLoc);
998   if (CondResult.isInvalid() || CondResult.isInvalid())
999     return StmtError();
1000   Cond = CondResult.take();
1001 
1002   CheckImplicitConversions(Cond, DoLoc);
1003   CondResult = MaybeCreateExprWithCleanups(Cond);
1004   if (CondResult.isInvalid())
1005     return StmtError();
1006   Cond = CondResult.take();
1007 
1008   DiagnoseUnusedExprResult(Body);
1009 
1010   return Owned(new (Context) DoStmt(Body, Cond, DoLoc, WhileLoc, CondRParen));
1011 }
1012 
1013 StmtResult
1014 Sema::ActOnForStmt(SourceLocation ForLoc, SourceLocation LParenLoc,
1015                    Stmt *First, FullExprArg second, Decl *secondVar,
1016                    FullExprArg third,
1017                    SourceLocation RParenLoc, Stmt *Body) {
1018   if (!getLangOptions().CPlusPlus) {
1019     if (DeclStmt *DS = dyn_cast_or_null<DeclStmt>(First)) {
1020       // C99 6.8.5p3: The declaration part of a 'for' statement shall only
1021       // declare identifiers for objects having storage class 'auto' or
1022       // 'register'.
1023       for (DeclStmt::decl_iterator DI=DS->decl_begin(), DE=DS->decl_end();
1024            DI!=DE; ++DI) {
1025         VarDecl *VD = dyn_cast<VarDecl>(*DI);
1026         if (VD && VD->isLocalVarDecl() && !VD->hasLocalStorage())
1027           VD = 0;
1028         if (VD == 0)
1029           Diag((*DI)->getLocation(), diag::err_non_variable_decl_in_for);
1030         // FIXME: mark decl erroneous!
1031       }
1032     }
1033   }
1034 
1035   ExprResult SecondResult(second.release());
1036   VarDecl *ConditionVar = 0;
1037   if (secondVar) {
1038     ConditionVar = cast<VarDecl>(secondVar);
1039     SecondResult = CheckConditionVariable(ConditionVar, ForLoc, true);
1040     if (SecondResult.isInvalid())
1041       return StmtError();
1042   }
1043 
1044   Expr *Third  = third.release().takeAs<Expr>();
1045 
1046   DiagnoseUnusedExprResult(First);
1047   DiagnoseUnusedExprResult(Third);
1048   DiagnoseUnusedExprResult(Body);
1049 
1050   return Owned(new (Context) ForStmt(Context, First,
1051                                      SecondResult.take(), ConditionVar,
1052                                      Third, Body, ForLoc, LParenLoc,
1053                                      RParenLoc));
1054 }
1055 
1056 /// In an Objective C collection iteration statement:
1057 ///   for (x in y)
1058 /// x can be an arbitrary l-value expression.  Bind it up as a
1059 /// full-expression.
1060 StmtResult Sema::ActOnForEachLValueExpr(Expr *E) {
1061   CheckImplicitConversions(E);
1062   ExprResult Result = MaybeCreateExprWithCleanups(E);
1063   if (Result.isInvalid()) return StmtError();
1064   return Owned(static_cast<Stmt*>(Result.get()));
1065 }
1066 
1067 ExprResult
1068 Sema::ActOnObjCForCollectionOperand(SourceLocation forLoc, Expr *collection) {
1069   assert(collection);
1070 
1071   // Bail out early if we've got a type-dependent expression.
1072   if (collection->isTypeDependent()) return Owned(collection);
1073 
1074   // Perform normal l-value conversion.
1075   ExprResult result = DefaultFunctionArrayLvalueConversion(collection);
1076   if (result.isInvalid())
1077     return ExprError();
1078   collection = result.take();
1079 
1080   // The operand needs to have object-pointer type.
1081   // TODO: should we do a contextual conversion?
1082   const ObjCObjectPointerType *pointerType =
1083     collection->getType()->getAs<ObjCObjectPointerType>();
1084   if (!pointerType)
1085     return Diag(forLoc, diag::err_collection_expr_type)
1086              << collection->getType() << collection->getSourceRange();
1087 
1088   // Check that the operand provides
1089   //   - countByEnumeratingWithState:objects:count:
1090   const ObjCObjectType *objectType = pointerType->getObjectType();
1091   ObjCInterfaceDecl *iface = objectType->getInterface();
1092 
1093   // If we have a forward-declared type, we can't do this check.
1094   // Under ARC, it is an error not to have a forward-declared class.
1095   if (iface &&
1096       RequireCompleteType(forLoc, QualType(objectType, 0),
1097                           getLangOptions().ObjCAutoRefCount
1098                             ? PDiag(diag::err_arc_collection_forward)
1099                                 << collection->getSourceRange()
1100                           : PDiag(0))) {
1101     // Otherwise, if we have any useful type information, check that
1102     // the type declares the appropriate method.
1103   } else if (iface || !objectType->qual_empty()) {
1104     IdentifierInfo *selectorIdents[] = {
1105       &Context.Idents.get("countByEnumeratingWithState"),
1106       &Context.Idents.get("objects"),
1107       &Context.Idents.get("count")
1108     };
1109     Selector selector = Context.Selectors.getSelector(3, &selectorIdents[0]);
1110 
1111     ObjCMethodDecl *method = 0;
1112 
1113     // If there's an interface, look in both the public and private APIs.
1114     if (iface) {
1115       method = iface->lookupInstanceMethod(selector);
1116       if (!method) method = LookupPrivateInstanceMethod(selector, iface);
1117     }
1118 
1119     // Also check protocol qualifiers.
1120     if (!method)
1121       method = LookupMethodInQualifiedType(selector, pointerType,
1122                                            /*instance*/ true);
1123 
1124     // If we didn't find it anywhere, give up.
1125     if (!method) {
1126       Diag(forLoc, diag::warn_collection_expr_type)
1127         << collection->getType() << selector << collection->getSourceRange();
1128     }
1129 
1130     // TODO: check for an incompatible signature?
1131   }
1132 
1133   // Wrap up any cleanups in the expression.
1134   return Owned(MaybeCreateExprWithCleanups(collection));
1135 }
1136 
1137 StmtResult
1138 Sema::ActOnObjCForCollectionStmt(SourceLocation ForLoc,
1139                                  SourceLocation LParenLoc,
1140                                  Stmt *First, Expr *Second,
1141                                  SourceLocation RParenLoc, Stmt *Body) {
1142   if (First) {
1143     QualType FirstType;
1144     if (DeclStmt *DS = dyn_cast<DeclStmt>(First)) {
1145       if (!DS->isSingleDecl())
1146         return StmtError(Diag((*DS->decl_begin())->getLocation(),
1147                          diag::err_toomany_element_decls));
1148 
1149       VarDecl *D = cast<VarDecl>(DS->getSingleDecl());
1150       FirstType = D->getType();
1151       // C99 6.8.5p3: The declaration part of a 'for' statement shall only
1152       // declare identifiers for objects having storage class 'auto' or
1153       // 'register'.
1154       if (!D->hasLocalStorage())
1155         return StmtError(Diag(D->getLocation(),
1156                               diag::err_non_variable_decl_in_for));
1157     } else {
1158       Expr *FirstE = cast<Expr>(First);
1159       if (!FirstE->isTypeDependent() && !FirstE->isLValue())
1160         return StmtError(Diag(First->getLocStart(),
1161                    diag::err_selector_element_not_lvalue)
1162           << First->getSourceRange());
1163 
1164       FirstType = static_cast<Expr*>(First)->getType();
1165     }
1166     if (!FirstType->isDependentType() &&
1167         !FirstType->isObjCObjectPointerType() &&
1168         !FirstType->isBlockPointerType())
1169         Diag(ForLoc, diag::err_selector_element_type)
1170           << FirstType << First->getSourceRange();
1171   }
1172 
1173   return Owned(new (Context) ObjCForCollectionStmt(First, Second, Body,
1174                                                    ForLoc, RParenLoc));
1175 }
1176 
1177 namespace {
1178 
1179 enum BeginEndFunction {
1180   BEF_begin,
1181   BEF_end
1182 };
1183 
1184 /// Build a variable declaration for a for-range statement.
1185 static VarDecl *BuildForRangeVarDecl(Sema &SemaRef, SourceLocation Loc,
1186                                      QualType Type, const char *Name) {
1187   DeclContext *DC = SemaRef.CurContext;
1188   IdentifierInfo *II = &SemaRef.PP.getIdentifierTable().get(Name);
1189   TypeSourceInfo *TInfo = SemaRef.Context.getTrivialTypeSourceInfo(Type, Loc);
1190   VarDecl *Decl = VarDecl::Create(SemaRef.Context, DC, Loc, Loc, II, Type,
1191                                   TInfo, SC_Auto, SC_None);
1192   Decl->setImplicit();
1193   return Decl;
1194 }
1195 
1196 /// Finish building a variable declaration for a for-range statement.
1197 /// \return true if an error occurs.
1198 static bool FinishForRangeVarDecl(Sema &SemaRef, VarDecl *Decl, Expr *Init,
1199                                   SourceLocation Loc, int diag) {
1200   // Deduce the type for the iterator variable now rather than leaving it to
1201   // AddInitializerToDecl, so we can produce a more suitable diagnostic.
1202   TypeSourceInfo *InitTSI = 0;
1203   if ((!isa<InitListExpr>(Init) && Init->getType()->isVoidType()) ||
1204       SemaRef.DeduceAutoType(Decl->getTypeSourceInfo(), Init, InitTSI) ==
1205           Sema::DAR_Failed)
1206     SemaRef.Diag(Loc, diag) << Init->getType();
1207   if (!InitTSI) {
1208     Decl->setInvalidDecl();
1209     return true;
1210   }
1211   Decl->setTypeSourceInfo(InitTSI);
1212   Decl->setType(InitTSI->getType());
1213 
1214   // In ARC, infer lifetime.
1215   // FIXME: ARC may want to turn this into 'const __unsafe_unretained' if
1216   // we're doing the equivalent of fast iteration.
1217   if (SemaRef.getLangOptions().ObjCAutoRefCount &&
1218       SemaRef.inferObjCARCLifetime(Decl))
1219     Decl->setInvalidDecl();
1220 
1221   SemaRef.AddInitializerToDecl(Decl, Init, /*DirectInit=*/false,
1222                                /*TypeMayContainAuto=*/false);
1223   SemaRef.FinalizeDeclaration(Decl);
1224   SemaRef.CurContext->addHiddenDecl(Decl);
1225   return false;
1226 }
1227 
1228 /// Produce a note indicating which begin/end function was implicitly called
1229 /// by a C++0x for-range statement. This is often not obvious from the code,
1230 /// nor from the diagnostics produced when analysing the implicit expressions
1231 /// required in a for-range statement.
1232 void NoteForRangeBeginEndFunction(Sema &SemaRef, Expr *E,
1233                                   BeginEndFunction BEF) {
1234   CallExpr *CE = dyn_cast<CallExpr>(E);
1235   if (!CE)
1236     return;
1237   FunctionDecl *D = dyn_cast<FunctionDecl>(CE->getCalleeDecl());
1238   if (!D)
1239     return;
1240   SourceLocation Loc = D->getLocation();
1241 
1242   std::string Description;
1243   bool IsTemplate = false;
1244   if (FunctionTemplateDecl *FunTmpl = D->getPrimaryTemplate()) {
1245     Description = SemaRef.getTemplateArgumentBindingsText(
1246       FunTmpl->getTemplateParameters(), *D->getTemplateSpecializationArgs());
1247     IsTemplate = true;
1248   }
1249 
1250   SemaRef.Diag(Loc, diag::note_for_range_begin_end)
1251     << BEF << IsTemplate << Description << E->getType();
1252 }
1253 
1254 /// Build a call to 'begin' or 'end' for a C++0x for-range statement. If the
1255 /// given LookupResult is non-empty, it is assumed to describe a member which
1256 /// will be invoked. Otherwise, the function will be found via argument
1257 /// dependent lookup.
1258 static ExprResult BuildForRangeBeginEndCall(Sema &SemaRef, Scope *S,
1259                                             SourceLocation Loc,
1260                                             VarDecl *Decl,
1261                                             BeginEndFunction BEF,
1262                                             const DeclarationNameInfo &NameInfo,
1263                                             LookupResult &MemberLookup,
1264                                             Expr *Range) {
1265   ExprResult CallExpr;
1266   if (!MemberLookup.empty()) {
1267     ExprResult MemberRef =
1268       SemaRef.BuildMemberReferenceExpr(Range, Range->getType(), Loc,
1269                                        /*IsPtr=*/false, CXXScopeSpec(),
1270                                        /*Qualifier=*/0, MemberLookup,
1271                                        /*TemplateArgs=*/0);
1272     if (MemberRef.isInvalid())
1273       return ExprError();
1274     CallExpr = SemaRef.ActOnCallExpr(S, MemberRef.get(), Loc, MultiExprArg(),
1275                                      Loc, 0);
1276     if (CallExpr.isInvalid())
1277       return ExprError();
1278   } else {
1279     UnresolvedSet<0> FoundNames;
1280     // C++0x [stmt.ranged]p1: For the purposes of this name lookup, namespace
1281     // std is an associated namespace.
1282     UnresolvedLookupExpr *Fn =
1283       UnresolvedLookupExpr::Create(SemaRef.Context, /*NamingClass=*/0,
1284                                    NestedNameSpecifierLoc(), NameInfo,
1285                                    /*NeedsADL=*/true, /*Overloaded=*/false,
1286                                    FoundNames.begin(), FoundNames.end(),
1287                                    /*LookInStdNamespace=*/true);
1288     CallExpr = SemaRef.BuildOverloadedCallExpr(S, Fn, Fn, Loc, &Range, 1, Loc,
1289                                                0, /*AllowTypoCorrection=*/false);
1290     if (CallExpr.isInvalid()) {
1291       SemaRef.Diag(Range->getLocStart(), diag::note_for_range_type)
1292         << Range->getType();
1293       return ExprError();
1294     }
1295   }
1296   if (FinishForRangeVarDecl(SemaRef, Decl, CallExpr.get(), Loc,
1297                             diag::err_for_range_iter_deduction_failure)) {
1298     NoteForRangeBeginEndFunction(SemaRef, CallExpr.get(), BEF);
1299     return ExprError();
1300   }
1301   return CallExpr;
1302 }
1303 
1304 }
1305 
1306 /// ActOnCXXForRangeStmt - Check and build a C++0x for-range statement.
1307 ///
1308 /// C++0x [stmt.ranged]:
1309 ///   A range-based for statement is equivalent to
1310 ///
1311 ///   {
1312 ///     auto && __range = range-init;
1313 ///     for ( auto __begin = begin-expr,
1314 ///           __end = end-expr;
1315 ///           __begin != __end;
1316 ///           ++__begin ) {
1317 ///       for-range-declaration = *__begin;
1318 ///       statement
1319 ///     }
1320 ///   }
1321 ///
1322 /// The body of the loop is not available yet, since it cannot be analysed until
1323 /// we have determined the type of the for-range-declaration.
1324 StmtResult
1325 Sema::ActOnCXXForRangeStmt(SourceLocation ForLoc, SourceLocation LParenLoc,
1326                            Stmt *First, SourceLocation ColonLoc, Expr *Range,
1327                            SourceLocation RParenLoc) {
1328   if (!First || !Range)
1329     return StmtError();
1330 
1331   DeclStmt *DS = dyn_cast<DeclStmt>(First);
1332   assert(DS && "first part of for range not a decl stmt");
1333 
1334   if (!DS->isSingleDecl()) {
1335     Diag(DS->getStartLoc(), diag::err_type_defined_in_for_range);
1336     return StmtError();
1337   }
1338   if (DS->getSingleDecl()->isInvalidDecl())
1339     return StmtError();
1340 
1341   if (DiagnoseUnexpandedParameterPack(Range, UPPC_Expression))
1342     return StmtError();
1343 
1344   // Build  auto && __range = range-init
1345   SourceLocation RangeLoc = Range->getLocStart();
1346   VarDecl *RangeVar = BuildForRangeVarDecl(*this, RangeLoc,
1347                                            Context.getAutoRRefDeductType(),
1348                                            "__range");
1349   if (FinishForRangeVarDecl(*this, RangeVar, Range, RangeLoc,
1350                             diag::err_for_range_deduction_failure))
1351     return StmtError();
1352 
1353   // Claim the type doesn't contain auto: we've already done the checking.
1354   DeclGroupPtrTy RangeGroup =
1355     BuildDeclaratorGroup((Decl**)&RangeVar, 1, /*TypeMayContainAuto=*/false);
1356   StmtResult RangeDecl = ActOnDeclStmt(RangeGroup, RangeLoc, RangeLoc);
1357   if (RangeDecl.isInvalid())
1358     return StmtError();
1359 
1360   return BuildCXXForRangeStmt(ForLoc, ColonLoc, RangeDecl.get(),
1361                               /*BeginEndDecl=*/0, /*Cond=*/0, /*Inc=*/0, DS,
1362                               RParenLoc);
1363 }
1364 
1365 /// BuildCXXForRangeStmt - Build or instantiate a C++0x for-range statement.
1366 StmtResult
1367 Sema::BuildCXXForRangeStmt(SourceLocation ForLoc, SourceLocation ColonLoc,
1368                            Stmt *RangeDecl, Stmt *BeginEnd, Expr *Cond,
1369                            Expr *Inc, Stmt *LoopVarDecl,
1370                            SourceLocation RParenLoc) {
1371   Scope *S = getCurScope();
1372 
1373   DeclStmt *RangeDS = cast<DeclStmt>(RangeDecl);
1374   VarDecl *RangeVar = cast<VarDecl>(RangeDS->getSingleDecl());
1375   QualType RangeVarType = RangeVar->getType();
1376 
1377   DeclStmt *LoopVarDS = cast<DeclStmt>(LoopVarDecl);
1378   VarDecl *LoopVar = cast<VarDecl>(LoopVarDS->getSingleDecl());
1379 
1380   StmtResult BeginEndDecl = BeginEnd;
1381   ExprResult NotEqExpr = Cond, IncrExpr = Inc;
1382 
1383   if (!BeginEndDecl.get() && !RangeVarType->isDependentType()) {
1384     SourceLocation RangeLoc = RangeVar->getLocation();
1385 
1386     const QualType RangeVarNonRefType = RangeVarType.getNonReferenceType();
1387 
1388     ExprResult BeginRangeRef = BuildDeclRefExpr(RangeVar, RangeVarNonRefType,
1389                                                 VK_LValue, ColonLoc);
1390     if (BeginRangeRef.isInvalid())
1391       return StmtError();
1392 
1393     ExprResult EndRangeRef = BuildDeclRefExpr(RangeVar, RangeVarNonRefType,
1394                                               VK_LValue, ColonLoc);
1395     if (EndRangeRef.isInvalid())
1396       return StmtError();
1397 
1398     QualType AutoType = Context.getAutoDeductType();
1399     Expr *Range = RangeVar->getInit();
1400     if (!Range)
1401       return StmtError();
1402     QualType RangeType = Range->getType();
1403 
1404     if (RequireCompleteType(RangeLoc, RangeType,
1405                             PDiag(diag::err_for_range_incomplete_type)))
1406       return StmtError();
1407 
1408     // Build auto __begin = begin-expr, __end = end-expr.
1409     VarDecl *BeginVar = BuildForRangeVarDecl(*this, ColonLoc, AutoType,
1410                                              "__begin");
1411     VarDecl *EndVar = BuildForRangeVarDecl(*this, ColonLoc, AutoType,
1412                                            "__end");
1413 
1414     // Build begin-expr and end-expr and attach to __begin and __end variables.
1415     ExprResult BeginExpr, EndExpr;
1416     if (const ArrayType *UnqAT = RangeType->getAsArrayTypeUnsafe()) {
1417       // - if _RangeT is an array type, begin-expr and end-expr are __range and
1418       //   __range + __bound, respectively, where __bound is the array bound. If
1419       //   _RangeT is an array of unknown size or an array of incomplete type,
1420       //   the program is ill-formed;
1421 
1422       // begin-expr is __range.
1423       BeginExpr = BeginRangeRef;
1424       if (FinishForRangeVarDecl(*this, BeginVar, BeginRangeRef.get(), ColonLoc,
1425                                 diag::err_for_range_iter_deduction_failure)) {
1426         NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin);
1427         return StmtError();
1428       }
1429 
1430       // Find the array bound.
1431       ExprResult BoundExpr;
1432       if (const ConstantArrayType *CAT = dyn_cast<ConstantArrayType>(UnqAT))
1433         BoundExpr = Owned(IntegerLiteral::Create(Context, CAT->getSize(),
1434                                                  Context.getPointerDiffType(),
1435                                                  RangeLoc));
1436       else if (const VariableArrayType *VAT =
1437                dyn_cast<VariableArrayType>(UnqAT))
1438         BoundExpr = VAT->getSizeExpr();
1439       else {
1440         // Can't be a DependentSizedArrayType or an IncompleteArrayType since
1441         // UnqAT is not incomplete and Range is not type-dependent.
1442         llvm_unreachable("Unexpected array type in for-range");
1443       }
1444 
1445       // end-expr is __range + __bound.
1446       EndExpr = ActOnBinOp(S, ColonLoc, tok::plus, EndRangeRef.get(),
1447                            BoundExpr.get());
1448       if (EndExpr.isInvalid())
1449         return StmtError();
1450       if (FinishForRangeVarDecl(*this, EndVar, EndExpr.get(), ColonLoc,
1451                                 diag::err_for_range_iter_deduction_failure)) {
1452         NoteForRangeBeginEndFunction(*this, EndExpr.get(), BEF_end);
1453         return StmtError();
1454       }
1455     } else {
1456       DeclarationNameInfo BeginNameInfo(&PP.getIdentifierTable().get("begin"),
1457                                         ColonLoc);
1458       DeclarationNameInfo EndNameInfo(&PP.getIdentifierTable().get("end"),
1459                                       ColonLoc);
1460 
1461       LookupResult BeginMemberLookup(*this, BeginNameInfo, LookupMemberName);
1462       LookupResult EndMemberLookup(*this, EndNameInfo, LookupMemberName);
1463 
1464       if (CXXRecordDecl *D = RangeType->getAsCXXRecordDecl()) {
1465         // - if _RangeT is a class type, the unqualified-ids begin and end are
1466         //   looked up in the scope of class _RangeT as if by class member access
1467         //   lookup (3.4.5), and if either (or both) finds at least one
1468         //   declaration, begin-expr and end-expr are __range.begin() and
1469         //   __range.end(), respectively;
1470         LookupQualifiedName(BeginMemberLookup, D);
1471         LookupQualifiedName(EndMemberLookup, D);
1472 
1473         if (BeginMemberLookup.empty() != EndMemberLookup.empty()) {
1474           Diag(ColonLoc, diag::err_for_range_member_begin_end_mismatch)
1475             << RangeType << BeginMemberLookup.empty();
1476           return StmtError();
1477         }
1478       } else {
1479         // - otherwise, begin-expr and end-expr are begin(__range) and
1480         //   end(__range), respectively, where begin and end are looked up with
1481         //   argument-dependent lookup (3.4.2). For the purposes of this name
1482         //   lookup, namespace std is an associated namespace.
1483       }
1484 
1485       BeginExpr = BuildForRangeBeginEndCall(*this, S, ColonLoc, BeginVar,
1486                                             BEF_begin, BeginNameInfo,
1487                                             BeginMemberLookup,
1488                                             BeginRangeRef.get());
1489       if (BeginExpr.isInvalid())
1490         return StmtError();
1491 
1492       EndExpr = BuildForRangeBeginEndCall(*this, S, ColonLoc, EndVar,
1493                                           BEF_end, EndNameInfo,
1494                                           EndMemberLookup, EndRangeRef.get());
1495       if (EndExpr.isInvalid())
1496         return StmtError();
1497     }
1498 
1499     // C++0x [decl.spec.auto]p6: BeginType and EndType must be the same.
1500     QualType BeginType = BeginVar->getType(), EndType = EndVar->getType();
1501     if (!Context.hasSameType(BeginType, EndType)) {
1502       Diag(RangeLoc, diag::err_for_range_begin_end_types_differ)
1503         << BeginType << EndType;
1504       NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin);
1505       NoteForRangeBeginEndFunction(*this, EndExpr.get(), BEF_end);
1506     }
1507 
1508     Decl *BeginEndDecls[] = { BeginVar, EndVar };
1509     // Claim the type doesn't contain auto: we've already done the checking.
1510     DeclGroupPtrTy BeginEndGroup =
1511       BuildDeclaratorGroup(BeginEndDecls, 2, /*TypeMayContainAuto=*/false);
1512     BeginEndDecl = ActOnDeclStmt(BeginEndGroup, ColonLoc, ColonLoc);
1513 
1514     const QualType BeginRefNonRefType = BeginType.getNonReferenceType();
1515     ExprResult BeginRef = BuildDeclRefExpr(BeginVar, BeginRefNonRefType,
1516                                            VK_LValue, ColonLoc);
1517     if (BeginRef.isInvalid())
1518       return StmtError();
1519 
1520     ExprResult EndRef = BuildDeclRefExpr(EndVar, EndType.getNonReferenceType(),
1521                                          VK_LValue, ColonLoc);
1522     if (EndRef.isInvalid())
1523       return StmtError();
1524 
1525     // Build and check __begin != __end expression.
1526     NotEqExpr = ActOnBinOp(S, ColonLoc, tok::exclaimequal,
1527                            BeginRef.get(), EndRef.get());
1528     NotEqExpr = ActOnBooleanCondition(S, ColonLoc, NotEqExpr.get());
1529     NotEqExpr = ActOnFinishFullExpr(NotEqExpr.get());
1530     if (NotEqExpr.isInvalid()) {
1531       NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin);
1532       if (!Context.hasSameType(BeginType, EndType))
1533         NoteForRangeBeginEndFunction(*this, EndExpr.get(), BEF_end);
1534       return StmtError();
1535     }
1536 
1537     // Build and check ++__begin expression.
1538     BeginRef = BuildDeclRefExpr(BeginVar, BeginRefNonRefType,
1539                                 VK_LValue, ColonLoc);
1540     if (BeginRef.isInvalid())
1541       return StmtError();
1542 
1543     IncrExpr = ActOnUnaryOp(S, ColonLoc, tok::plusplus, BeginRef.get());
1544     IncrExpr = ActOnFinishFullExpr(IncrExpr.get());
1545     if (IncrExpr.isInvalid()) {
1546       NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin);
1547       return StmtError();
1548     }
1549 
1550     // Build and check *__begin  expression.
1551     BeginRef = BuildDeclRefExpr(BeginVar, BeginRefNonRefType,
1552                                 VK_LValue, ColonLoc);
1553     if (BeginRef.isInvalid())
1554       return StmtError();
1555 
1556     ExprResult DerefExpr = ActOnUnaryOp(S, ColonLoc, tok::star, BeginRef.get());
1557     if (DerefExpr.isInvalid()) {
1558       NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin);
1559       return StmtError();
1560     }
1561 
1562     // Attach  *__begin  as initializer for VD.
1563     if (!LoopVar->isInvalidDecl()) {
1564       AddInitializerToDecl(LoopVar, DerefExpr.get(), /*DirectInit=*/false,
1565                            /*TypeMayContainAuto=*/true);
1566       if (LoopVar->isInvalidDecl())
1567         NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin);
1568     }
1569   } else {
1570     // The range is implicitly used as a placeholder when it is dependent.
1571     RangeVar->setUsed();
1572   }
1573 
1574   return Owned(new (Context) CXXForRangeStmt(RangeDS,
1575                                      cast_or_null<DeclStmt>(BeginEndDecl.get()),
1576                                              NotEqExpr.take(), IncrExpr.take(),
1577                                              LoopVarDS, /*Body=*/0, ForLoc,
1578                                              ColonLoc, RParenLoc));
1579 }
1580 
1581 /// FinishCXXForRangeStmt - Attach the body to a C++0x for-range statement.
1582 /// This is a separate step from ActOnCXXForRangeStmt because analysis of the
1583 /// body cannot be performed until after the type of the range variable is
1584 /// determined.
1585 StmtResult Sema::FinishCXXForRangeStmt(Stmt *S, Stmt *B) {
1586   if (!S || !B)
1587     return StmtError();
1588 
1589   cast<CXXForRangeStmt>(S)->setBody(B);
1590   return S;
1591 }
1592 
1593 StmtResult Sema::ActOnGotoStmt(SourceLocation GotoLoc,
1594                                SourceLocation LabelLoc,
1595                                LabelDecl *TheDecl) {
1596   getCurFunction()->setHasBranchIntoScope();
1597   TheDecl->setUsed();
1598   return Owned(new (Context) GotoStmt(TheDecl, GotoLoc, LabelLoc));
1599 }
1600 
1601 StmtResult
1602 Sema::ActOnIndirectGotoStmt(SourceLocation GotoLoc, SourceLocation StarLoc,
1603                             Expr *E) {
1604   // Convert operand to void*
1605   if (!E->isTypeDependent()) {
1606     QualType ETy = E->getType();
1607     QualType DestTy = Context.getPointerType(Context.VoidTy.withConst());
1608     ExprResult ExprRes = Owned(E);
1609     AssignConvertType ConvTy =
1610       CheckSingleAssignmentConstraints(DestTy, ExprRes);
1611     if (ExprRes.isInvalid())
1612       return StmtError();
1613     E = ExprRes.take();
1614     if (DiagnoseAssignmentResult(ConvTy, StarLoc, DestTy, ETy, E, AA_Passing))
1615       return StmtError();
1616   }
1617 
1618   getCurFunction()->setHasIndirectGoto();
1619 
1620   return Owned(new (Context) IndirectGotoStmt(GotoLoc, StarLoc, E));
1621 }
1622 
1623 StmtResult
1624 Sema::ActOnContinueStmt(SourceLocation ContinueLoc, Scope *CurScope) {
1625   Scope *S = CurScope->getContinueParent();
1626   if (!S) {
1627     // C99 6.8.6.2p1: A break shall appear only in or as a loop body.
1628     return StmtError(Diag(ContinueLoc, diag::err_continue_not_in_loop));
1629   }
1630 
1631   return Owned(new (Context) ContinueStmt(ContinueLoc));
1632 }
1633 
1634 StmtResult
1635 Sema::ActOnBreakStmt(SourceLocation BreakLoc, Scope *CurScope) {
1636   Scope *S = CurScope->getBreakParent();
1637   if (!S) {
1638     // C99 6.8.6.3p1: A break shall appear only in or as a switch/loop body.
1639     return StmtError(Diag(BreakLoc, diag::err_break_not_in_loop_or_switch));
1640   }
1641 
1642   return Owned(new (Context) BreakStmt(BreakLoc));
1643 }
1644 
1645 /// \brief Determine whether the given expression is a candidate for
1646 /// copy elision in either a return statement or a throw expression.
1647 ///
1648 /// \param ReturnType If we're determining the copy elision candidate for
1649 /// a return statement, this is the return type of the function. If we're
1650 /// determining the copy elision candidate for a throw expression, this will
1651 /// be a NULL type.
1652 ///
1653 /// \param E The expression being returned from the function or block, or
1654 /// being thrown.
1655 ///
1656 /// \param AllowFunctionParameter Whether we allow function parameters to
1657 /// be considered NRVO candidates. C++ prohibits this for NRVO itself, but
1658 /// we re-use this logic to determine whether we should try to move as part of
1659 /// a return or throw (which does allow function parameters).
1660 ///
1661 /// \returns The NRVO candidate variable, if the return statement may use the
1662 /// NRVO, or NULL if there is no such candidate.
1663 const VarDecl *Sema::getCopyElisionCandidate(QualType ReturnType,
1664                                              Expr *E,
1665                                              bool AllowFunctionParameter) {
1666   QualType ExprType = E->getType();
1667   // - in a return statement in a function with ...
1668   // ... a class return type ...
1669   if (!ReturnType.isNull()) {
1670     if (!ReturnType->isRecordType())
1671       return 0;
1672     // ... the same cv-unqualified type as the function return type ...
1673     if (!Context.hasSameUnqualifiedType(ReturnType, ExprType))
1674       return 0;
1675   }
1676 
1677   // ... the expression is the name of a non-volatile automatic object
1678   // (other than a function or catch-clause parameter)) ...
1679   const DeclRefExpr *DR = dyn_cast<DeclRefExpr>(E->IgnoreParens());
1680   if (!DR)
1681     return 0;
1682   const VarDecl *VD = dyn_cast<VarDecl>(DR->getDecl());
1683   if (!VD)
1684     return 0;
1685 
1686   // ...object (other than a function or catch-clause parameter)...
1687   if (VD->getKind() != Decl::Var &&
1688       !(AllowFunctionParameter && VD->getKind() == Decl::ParmVar))
1689     return 0;
1690   if (VD->isExceptionVariable()) return 0;
1691 
1692   // ...automatic...
1693   if (!VD->hasLocalStorage()) return 0;
1694 
1695   // ...non-volatile...
1696   if (VD->getType().isVolatileQualified()) return 0;
1697   if (VD->getType()->isReferenceType()) return 0;
1698 
1699   // __block variables can't be allocated in a way that permits NRVO.
1700   if (VD->hasAttr<BlocksAttr>()) return 0;
1701 
1702   // Variables with higher required alignment than their type's ABI
1703   // alignment cannot use NRVO.
1704   if (VD->hasAttr<AlignedAttr>() &&
1705       Context.getDeclAlign(VD) > Context.getTypeAlignInChars(VD->getType()))
1706     return 0;
1707 
1708   return VD;
1709 }
1710 
1711 /// \brief Perform the initialization of a potentially-movable value, which
1712 /// is the result of return value.
1713 ///
1714 /// This routine implements C++0x [class.copy]p33, which attempts to treat
1715 /// returned lvalues as rvalues in certain cases (to prefer move construction),
1716 /// then falls back to treating them as lvalues if that failed.
1717 ExprResult
1718 Sema::PerformMoveOrCopyInitialization(const InitializedEntity &Entity,
1719                                       const VarDecl *NRVOCandidate,
1720                                       QualType ResultType,
1721                                       Expr *Value,
1722                                       bool AllowNRVO) {
1723   // C++0x [class.copy]p33:
1724   //   When the criteria for elision of a copy operation are met or would
1725   //   be met save for the fact that the source object is a function
1726   //   parameter, and the object to be copied is designated by an lvalue,
1727   //   overload resolution to select the constructor for the copy is first
1728   //   performed as if the object were designated by an rvalue.
1729   ExprResult Res = ExprError();
1730   if (AllowNRVO &&
1731       (NRVOCandidate || getCopyElisionCandidate(ResultType, Value, true))) {
1732     ImplicitCastExpr AsRvalue(ImplicitCastExpr::OnStack,
1733                               Value->getType(), CK_LValueToRValue,
1734                               Value, VK_XValue);
1735 
1736     Expr *InitExpr = &AsRvalue;
1737     InitializationKind Kind
1738       = InitializationKind::CreateCopy(Value->getLocStart(),
1739                                        Value->getLocStart());
1740     InitializationSequence Seq(*this, Entity, Kind, &InitExpr, 1);
1741 
1742     //   [...] If overload resolution fails, or if the type of the first
1743     //   parameter of the selected constructor is not an rvalue reference
1744     //   to the object's type (possibly cv-qualified), overload resolution
1745     //   is performed again, considering the object as an lvalue.
1746     if (Seq) {
1747       for (InitializationSequence::step_iterator Step = Seq.step_begin(),
1748            StepEnd = Seq.step_end();
1749            Step != StepEnd; ++Step) {
1750         if (Step->Kind != InitializationSequence::SK_ConstructorInitialization)
1751           continue;
1752 
1753         CXXConstructorDecl *Constructor
1754         = cast<CXXConstructorDecl>(Step->Function.Function);
1755 
1756         const RValueReferenceType *RRefType
1757           = Constructor->getParamDecl(0)->getType()
1758                                                  ->getAs<RValueReferenceType>();
1759 
1760         // If we don't meet the criteria, break out now.
1761         if (!RRefType ||
1762             !Context.hasSameUnqualifiedType(RRefType->getPointeeType(),
1763                             Context.getTypeDeclType(Constructor->getParent())))
1764           break;
1765 
1766         // Promote "AsRvalue" to the heap, since we now need this
1767         // expression node to persist.
1768         Value = ImplicitCastExpr::Create(Context, Value->getType(),
1769                                          CK_LValueToRValue, Value, 0,
1770                                          VK_XValue);
1771 
1772         // Complete type-checking the initialization of the return type
1773         // using the constructor we found.
1774         Res = Seq.Perform(*this, Entity, Kind, MultiExprArg(&Value, 1));
1775       }
1776     }
1777   }
1778 
1779   // Either we didn't meet the criteria for treating an lvalue as an rvalue,
1780   // above, or overload resolution failed. Either way, we need to try
1781   // (again) now with the return value expression as written.
1782   if (Res.isInvalid())
1783     Res = PerformCopyInitialization(Entity, SourceLocation(), Value);
1784 
1785   return Res;
1786 }
1787 
1788 /// ActOnBlockReturnStmt - Utility routine to figure out block's return type.
1789 ///
1790 StmtResult
1791 Sema::ActOnBlockReturnStmt(SourceLocation ReturnLoc, Expr *RetValExp) {
1792   // If this is the first return we've seen in the block, infer the type of
1793   // the block from it.
1794   BlockScopeInfo *CurBlock = getCurBlock();
1795   if (CurBlock->TheDecl->blockMissingReturnType()) {
1796     QualType BlockReturnT;
1797     if (RetValExp) {
1798       // Don't call UsualUnaryConversions(), since we don't want to do
1799       // integer promotions here.
1800       ExprResult Result = DefaultFunctionArrayLvalueConversion(RetValExp);
1801       if (Result.isInvalid())
1802         return StmtError();
1803       RetValExp = Result.take();
1804 
1805       if (!RetValExp->isTypeDependent()) {
1806         BlockReturnT = RetValExp->getType();
1807         if (BlockDeclRefExpr *CDRE = dyn_cast<BlockDeclRefExpr>(RetValExp)) {
1808           // We have to remove a 'const' added to copied-in variable which was
1809           // part of the implementation spec. and not the actual qualifier for
1810           // the variable.
1811           if (CDRE->isConstQualAdded())
1812             CurBlock->ReturnType.removeLocalConst(); // FIXME: local???
1813         }
1814       } else
1815         BlockReturnT = Context.DependentTy;
1816     } else
1817         BlockReturnT = Context.VoidTy;
1818     if (!CurBlock->ReturnType.isNull() && !CurBlock->ReturnType->isDependentType()
1819         && !BlockReturnT->isDependentType()
1820         // when block's return type is not specified, all return types
1821         // must strictly match.
1822         && !Context.hasSameType(BlockReturnT, CurBlock->ReturnType)) {
1823         Diag(ReturnLoc, diag::err_typecheck_missing_return_type_incompatible)
1824             << BlockReturnT << CurBlock->ReturnType;
1825         return StmtError();
1826     }
1827     CurBlock->ReturnType = BlockReturnT;
1828   }
1829   QualType FnRetType = CurBlock->ReturnType;
1830 
1831   if (CurBlock->FunctionType->getAs<FunctionType>()->getNoReturnAttr()) {
1832     Diag(ReturnLoc, diag::err_noreturn_block_has_return_expr);
1833     return StmtError();
1834   }
1835 
1836   // Otherwise, verify that this result type matches the previous one.  We are
1837   // pickier with blocks than for normal functions because we don't have GCC
1838   // compatibility to worry about here.
1839   const VarDecl *NRVOCandidate = 0;
1840   if (FnRetType->isDependentType()) {
1841     // Delay processing for now.  TODO: there are lots of dependent
1842     // types we can conclusively prove aren't void.
1843   } else if (FnRetType->isVoidType()) {
1844     if (RetValExp &&
1845         !(getLangOptions().CPlusPlus &&
1846           (RetValExp->isTypeDependent() ||
1847            RetValExp->getType()->isVoidType()))) {
1848       Diag(ReturnLoc, diag::err_return_block_has_expr);
1849       RetValExp = 0;
1850     }
1851   } else if (!RetValExp) {
1852     return StmtError(Diag(ReturnLoc, diag::err_block_return_missing_expr));
1853   } else if (!RetValExp->isTypeDependent()) {
1854     // we have a non-void block with an expression, continue checking
1855 
1856     // C99 6.8.6.4p3(136): The return statement is not an assignment. The
1857     // overlap restriction of subclause 6.5.16.1 does not apply to the case of
1858     // function return.
1859 
1860     // In C++ the return statement is handled via a copy initialization.
1861     // the C version of which boils down to CheckSingleAssignmentConstraints.
1862     NRVOCandidate = getCopyElisionCandidate(FnRetType, RetValExp, false);
1863     InitializedEntity Entity = InitializedEntity::InitializeResult(ReturnLoc,
1864                                                                    FnRetType,
1865                                                           NRVOCandidate != 0);
1866     ExprResult Res = PerformMoveOrCopyInitialization(Entity, NRVOCandidate,
1867                                                      FnRetType, RetValExp);
1868     if (Res.isInvalid()) {
1869       // FIXME: Cleanup temporaries here, anyway?
1870       return StmtError();
1871     }
1872     RetValExp = Res.take();
1873     CheckReturnStackAddr(RetValExp, FnRetType, ReturnLoc);
1874   }
1875 
1876   if (RetValExp) {
1877     CheckImplicitConversions(RetValExp, ReturnLoc);
1878     RetValExp = MaybeCreateExprWithCleanups(RetValExp);
1879   }
1880   ReturnStmt *Result = new (Context) ReturnStmt(ReturnLoc, RetValExp,
1881                                                 NRVOCandidate);
1882 
1883   // If we need to check for the named return value optimization, save the
1884   // return statement in our scope for later processing.
1885   if (getLangOptions().CPlusPlus && FnRetType->isRecordType() &&
1886       !CurContext->isDependentContext())
1887     FunctionScopes.back()->Returns.push_back(Result);
1888 
1889   return Owned(Result);
1890 }
1891 
1892 StmtResult
1893 Sema::ActOnReturnStmt(SourceLocation ReturnLoc, Expr *RetValExp) {
1894   // Check for unexpanded parameter packs.
1895   if (RetValExp && DiagnoseUnexpandedParameterPack(RetValExp))
1896     return StmtError();
1897 
1898   if (getCurBlock())
1899     return ActOnBlockReturnStmt(ReturnLoc, RetValExp);
1900 
1901   QualType FnRetType;
1902   QualType DeclaredRetType;
1903   if (const FunctionDecl *FD = getCurFunctionDecl()) {
1904     FnRetType = FD->getResultType();
1905     DeclaredRetType = FnRetType;
1906     if (FD->hasAttr<NoReturnAttr>() ||
1907         FD->getType()->getAs<FunctionType>()->getNoReturnAttr())
1908       Diag(ReturnLoc, diag::warn_noreturn_function_has_return_expr)
1909         << FD->getDeclName();
1910   } else if (ObjCMethodDecl *MD = getCurMethodDecl()) {
1911     DeclaredRetType = MD->getResultType();
1912     if (MD->hasRelatedResultType() && MD->getClassInterface()) {
1913       // In the implementation of a method with a related return type, the
1914       // type used to type-check the validity of return statements within the
1915       // method body is a pointer to the type of the class being implemented.
1916       FnRetType = Context.getObjCInterfaceType(MD->getClassInterface());
1917       FnRetType = Context.getObjCObjectPointerType(FnRetType);
1918     } else {
1919       FnRetType = DeclaredRetType;
1920     }
1921   } else // If we don't have a function/method context, bail.
1922     return StmtError();
1923 
1924   ReturnStmt *Result = 0;
1925   if (FnRetType->isVoidType()) {
1926     if (RetValExp) {
1927       if (!RetValExp->isTypeDependent()) {
1928         // C99 6.8.6.4p1 (ext_ since GCC warns)
1929         unsigned D = diag::ext_return_has_expr;
1930         if (RetValExp->getType()->isVoidType())
1931           D = diag::ext_return_has_void_expr;
1932         else {
1933           ExprResult Result = Owned(RetValExp);
1934           Result = IgnoredValueConversions(Result.take());
1935           if (Result.isInvalid())
1936             return StmtError();
1937           RetValExp = Result.take();
1938           RetValExp = ImpCastExprToType(RetValExp,
1939                                         Context.VoidTy, CK_ToVoid).take();
1940         }
1941 
1942         // return (some void expression); is legal in C++.
1943         if (D != diag::ext_return_has_void_expr ||
1944             !getLangOptions().CPlusPlus) {
1945           NamedDecl *CurDecl = getCurFunctionOrMethodDecl();
1946 
1947           int FunctionKind = 0;
1948           if (isa<ObjCMethodDecl>(CurDecl))
1949             FunctionKind = 1;
1950           else if (isa<CXXConstructorDecl>(CurDecl))
1951             FunctionKind = 2;
1952           else if (isa<CXXDestructorDecl>(CurDecl))
1953             FunctionKind = 3;
1954 
1955           Diag(ReturnLoc, D)
1956             << CurDecl->getDeclName() << FunctionKind
1957             << RetValExp->getSourceRange();
1958         }
1959       }
1960 
1961       CheckImplicitConversions(RetValExp, ReturnLoc);
1962       RetValExp = MaybeCreateExprWithCleanups(RetValExp);
1963     }
1964 
1965     Result = new (Context) ReturnStmt(ReturnLoc, RetValExp, 0);
1966   } else if (!RetValExp && !FnRetType->isDependentType()) {
1967     unsigned DiagID = diag::warn_return_missing_expr;  // C90 6.6.6.4p4
1968     // C99 6.8.6.4p1 (ext_ since GCC warns)
1969     if (getLangOptions().C99) DiagID = diag::ext_return_missing_expr;
1970 
1971     if (FunctionDecl *FD = getCurFunctionDecl())
1972       Diag(ReturnLoc, DiagID) << FD->getIdentifier() << 0/*fn*/;
1973     else
1974       Diag(ReturnLoc, DiagID) << getCurMethodDecl()->getDeclName() << 1/*meth*/;
1975     Result = new (Context) ReturnStmt(ReturnLoc);
1976   } else {
1977     const VarDecl *NRVOCandidate = 0;
1978     if (!FnRetType->isDependentType() && !RetValExp->isTypeDependent()) {
1979       // we have a non-void function with an expression, continue checking
1980 
1981       // C99 6.8.6.4p3(136): The return statement is not an assignment. The
1982       // overlap restriction of subclause 6.5.16.1 does not apply to the case of
1983       // function return.
1984 
1985       // In C++ the return statement is handled via a copy initialization,
1986       // the C version of which boils down to CheckSingleAssignmentConstraints.
1987       NRVOCandidate = getCopyElisionCandidate(FnRetType, RetValExp, false);
1988       InitializedEntity Entity = InitializedEntity::InitializeResult(ReturnLoc,
1989                                                                      FnRetType,
1990                                                             NRVOCandidate != 0);
1991       ExprResult Res = PerformMoveOrCopyInitialization(Entity, NRVOCandidate,
1992                                                        FnRetType, RetValExp);
1993       if (Res.isInvalid()) {
1994         // FIXME: Cleanup temporaries here, anyway?
1995         return StmtError();
1996       }
1997 
1998       RetValExp = Res.takeAs<Expr>();
1999       if (RetValExp)
2000         CheckReturnStackAddr(RetValExp, FnRetType, ReturnLoc);
2001     }
2002 
2003     if (RetValExp) {
2004       // If we type-checked an Objective-C method's return type based
2005       // on a related return type, we may need to adjust the return
2006       // type again. Do so now.
2007       if (DeclaredRetType != FnRetType) {
2008         ExprResult result = PerformImplicitConversion(RetValExp,
2009                                                       DeclaredRetType,
2010                                                       AA_Returning);
2011         if (result.isInvalid()) return StmtError();
2012         RetValExp = result.take();
2013       }
2014 
2015       CheckImplicitConversions(RetValExp, ReturnLoc);
2016       RetValExp = MaybeCreateExprWithCleanups(RetValExp);
2017     }
2018     Result = new (Context) ReturnStmt(ReturnLoc, RetValExp, NRVOCandidate);
2019   }
2020 
2021   // If we need to check for the named return value optimization, save the
2022   // return statement in our scope for later processing.
2023   if (getLangOptions().CPlusPlus && FnRetType->isRecordType() &&
2024       !CurContext->isDependentContext())
2025     FunctionScopes.back()->Returns.push_back(Result);
2026 
2027   return Owned(Result);
2028 }
2029 
2030 /// CheckAsmLValue - GNU C has an extremely ugly extension whereby they silently
2031 /// ignore "noop" casts in places where an lvalue is required by an inline asm.
2032 /// We emulate this behavior when -fheinous-gnu-extensions is specified, but
2033 /// provide a strong guidance to not use it.
2034 ///
2035 /// This method checks to see if the argument is an acceptable l-value and
2036 /// returns false if it is a case we can handle.
2037 static bool CheckAsmLValue(const Expr *E, Sema &S) {
2038   // Type dependent expressions will be checked during instantiation.
2039   if (E->isTypeDependent())
2040     return false;
2041 
2042   if (E->isLValue())
2043     return false;  // Cool, this is an lvalue.
2044 
2045   // Okay, this is not an lvalue, but perhaps it is the result of a cast that we
2046   // are supposed to allow.
2047   const Expr *E2 = E->IgnoreParenNoopCasts(S.Context);
2048   if (E != E2 && E2->isLValue()) {
2049     if (!S.getLangOptions().HeinousExtensions)
2050       S.Diag(E2->getLocStart(), diag::err_invalid_asm_cast_lvalue)
2051         << E->getSourceRange();
2052     else
2053       S.Diag(E2->getLocStart(), diag::warn_invalid_asm_cast_lvalue)
2054         << E->getSourceRange();
2055     // Accept, even if we emitted an error diagnostic.
2056     return false;
2057   }
2058 
2059   // None of the above, just randomly invalid non-lvalue.
2060   return true;
2061 }
2062 
2063 /// isOperandMentioned - Return true if the specified operand # is mentioned
2064 /// anywhere in the decomposed asm string.
2065 static bool isOperandMentioned(unsigned OpNo,
2066                          ArrayRef<AsmStmt::AsmStringPiece> AsmStrPieces) {
2067   for (unsigned p = 0, e = AsmStrPieces.size(); p != e; ++p) {
2068     const AsmStmt::AsmStringPiece &Piece = AsmStrPieces[p];
2069     if (!Piece.isOperand()) continue;
2070 
2071     // If this is a reference to the input and if the input was the smaller
2072     // one, then we have to reject this asm.
2073     if (Piece.getOperandNo() == OpNo)
2074       return true;
2075   }
2076 
2077   return false;
2078 }
2079 
2080 StmtResult Sema::ActOnAsmStmt(SourceLocation AsmLoc, bool IsSimple,
2081                               bool IsVolatile, unsigned NumOutputs,
2082                               unsigned NumInputs, IdentifierInfo **Names,
2083                               MultiExprArg constraints, MultiExprArg exprs,
2084                               Expr *asmString, MultiExprArg clobbers,
2085                               SourceLocation RParenLoc, bool MSAsm) {
2086   unsigned NumClobbers = clobbers.size();
2087   StringLiteral **Constraints =
2088     reinterpret_cast<StringLiteral**>(constraints.get());
2089   Expr **Exprs = exprs.get();
2090   StringLiteral *AsmString = cast<StringLiteral>(asmString);
2091   StringLiteral **Clobbers = reinterpret_cast<StringLiteral**>(clobbers.get());
2092 
2093   SmallVector<TargetInfo::ConstraintInfo, 4> OutputConstraintInfos;
2094 
2095   // The parser verifies that there is a string literal here.
2096   if (!AsmString->isAscii())
2097     return StmtError(Diag(AsmString->getLocStart(),diag::err_asm_wide_character)
2098       << AsmString->getSourceRange());
2099 
2100   for (unsigned i = 0; i != NumOutputs; i++) {
2101     StringLiteral *Literal = Constraints[i];
2102     if (!Literal->isAscii())
2103       return StmtError(Diag(Literal->getLocStart(),diag::err_asm_wide_character)
2104         << Literal->getSourceRange());
2105 
2106     StringRef OutputName;
2107     if (Names[i])
2108       OutputName = Names[i]->getName();
2109 
2110     TargetInfo::ConstraintInfo Info(Literal->getString(), OutputName);
2111     if (!Context.getTargetInfo().validateOutputConstraint(Info))
2112       return StmtError(Diag(Literal->getLocStart(),
2113                             diag::err_asm_invalid_output_constraint)
2114                        << Info.getConstraintStr());
2115 
2116     // Check that the output exprs are valid lvalues.
2117     Expr *OutputExpr = Exprs[i];
2118     if (CheckAsmLValue(OutputExpr, *this)) {
2119       return StmtError(Diag(OutputExpr->getLocStart(),
2120                   diag::err_asm_invalid_lvalue_in_output)
2121         << OutputExpr->getSourceRange());
2122     }
2123 
2124     OutputConstraintInfos.push_back(Info);
2125   }
2126 
2127   SmallVector<TargetInfo::ConstraintInfo, 4> InputConstraintInfos;
2128 
2129   for (unsigned i = NumOutputs, e = NumOutputs + NumInputs; i != e; i++) {
2130     StringLiteral *Literal = Constraints[i];
2131     if (!Literal->isAscii())
2132       return StmtError(Diag(Literal->getLocStart(),diag::err_asm_wide_character)
2133         << Literal->getSourceRange());
2134 
2135     StringRef InputName;
2136     if (Names[i])
2137       InputName = Names[i]->getName();
2138 
2139     TargetInfo::ConstraintInfo Info(Literal->getString(), InputName);
2140     if (!Context.getTargetInfo().validateInputConstraint(OutputConstraintInfos.data(),
2141                                                 NumOutputs, Info)) {
2142       return StmtError(Diag(Literal->getLocStart(),
2143                             diag::err_asm_invalid_input_constraint)
2144                        << Info.getConstraintStr());
2145     }
2146 
2147     Expr *InputExpr = Exprs[i];
2148 
2149     // Only allow void types for memory constraints.
2150     if (Info.allowsMemory() && !Info.allowsRegister()) {
2151       if (CheckAsmLValue(InputExpr, *this))
2152         return StmtError(Diag(InputExpr->getLocStart(),
2153                               diag::err_asm_invalid_lvalue_in_input)
2154                          << Info.getConstraintStr()
2155                          << InputExpr->getSourceRange());
2156     }
2157 
2158     if (Info.allowsRegister()) {
2159       if (InputExpr->getType()->isVoidType()) {
2160         return StmtError(Diag(InputExpr->getLocStart(),
2161                               diag::err_asm_invalid_type_in_input)
2162           << InputExpr->getType() << Info.getConstraintStr()
2163           << InputExpr->getSourceRange());
2164       }
2165     }
2166 
2167     ExprResult Result = DefaultFunctionArrayLvalueConversion(Exprs[i]);
2168     if (Result.isInvalid())
2169       return StmtError();
2170 
2171     Exprs[i] = Result.take();
2172     InputConstraintInfos.push_back(Info);
2173   }
2174 
2175   // Check that the clobbers are valid.
2176   for (unsigned i = 0; i != NumClobbers; i++) {
2177     StringLiteral *Literal = Clobbers[i];
2178     if (!Literal->isAscii())
2179       return StmtError(Diag(Literal->getLocStart(),diag::err_asm_wide_character)
2180         << Literal->getSourceRange());
2181 
2182     StringRef Clobber = Literal->getString();
2183 
2184     if (!Context.getTargetInfo().isValidClobber(Clobber))
2185       return StmtError(Diag(Literal->getLocStart(),
2186                   diag::err_asm_unknown_register_name) << Clobber);
2187   }
2188 
2189   AsmStmt *NS =
2190     new (Context) AsmStmt(Context, AsmLoc, IsSimple, IsVolatile, MSAsm,
2191                           NumOutputs, NumInputs, Names, Constraints, Exprs,
2192                           AsmString, NumClobbers, Clobbers, RParenLoc);
2193   // Validate the asm string, ensuring it makes sense given the operands we
2194   // have.
2195   SmallVector<AsmStmt::AsmStringPiece, 8> Pieces;
2196   unsigned DiagOffs;
2197   if (unsigned DiagID = NS->AnalyzeAsmString(Pieces, Context, DiagOffs)) {
2198     Diag(getLocationOfStringLiteralByte(AsmString, DiagOffs), DiagID)
2199            << AsmString->getSourceRange();
2200     return StmtError();
2201   }
2202 
2203   // Validate tied input operands for type mismatches.
2204   for (unsigned i = 0, e = InputConstraintInfos.size(); i != e; ++i) {
2205     TargetInfo::ConstraintInfo &Info = InputConstraintInfos[i];
2206 
2207     // If this is a tied constraint, verify that the output and input have
2208     // either exactly the same type, or that they are int/ptr operands with the
2209     // same size (int/long, int*/long, are ok etc).
2210     if (!Info.hasTiedOperand()) continue;
2211 
2212     unsigned TiedTo = Info.getTiedOperand();
2213     unsigned InputOpNo = i+NumOutputs;
2214     Expr *OutputExpr = Exprs[TiedTo];
2215     Expr *InputExpr = Exprs[InputOpNo];
2216 
2217     if (OutputExpr->isTypeDependent() || InputExpr->isTypeDependent())
2218       continue;
2219 
2220     QualType InTy = InputExpr->getType();
2221     QualType OutTy = OutputExpr->getType();
2222     if (Context.hasSameType(InTy, OutTy))
2223       continue;  // All types can be tied to themselves.
2224 
2225     // Decide if the input and output are in the same domain (integer/ptr or
2226     // floating point.
2227     enum AsmDomain {
2228       AD_Int, AD_FP, AD_Other
2229     } InputDomain, OutputDomain;
2230 
2231     if (InTy->isIntegerType() || InTy->isPointerType())
2232       InputDomain = AD_Int;
2233     else if (InTy->isRealFloatingType())
2234       InputDomain = AD_FP;
2235     else
2236       InputDomain = AD_Other;
2237 
2238     if (OutTy->isIntegerType() || OutTy->isPointerType())
2239       OutputDomain = AD_Int;
2240     else if (OutTy->isRealFloatingType())
2241       OutputDomain = AD_FP;
2242     else
2243       OutputDomain = AD_Other;
2244 
2245     // They are ok if they are the same size and in the same domain.  This
2246     // allows tying things like:
2247     //   void* to int*
2248     //   void* to int            if they are the same size.
2249     //   double to long double   if they are the same size.
2250     //
2251     uint64_t OutSize = Context.getTypeSize(OutTy);
2252     uint64_t InSize = Context.getTypeSize(InTy);
2253     if (OutSize == InSize && InputDomain == OutputDomain &&
2254         InputDomain != AD_Other)
2255       continue;
2256 
2257     // If the smaller input/output operand is not mentioned in the asm string,
2258     // then we can promote the smaller one to a larger input and the asm string
2259     // won't notice.
2260     bool SmallerValueMentioned = false;
2261 
2262     // If this is a reference to the input and if the input was the smaller
2263     // one, then we have to reject this asm.
2264     if (isOperandMentioned(InputOpNo, Pieces)) {
2265       // This is a use in the asm string of the smaller operand.  Since we
2266       // codegen this by promoting to a wider value, the asm will get printed
2267       // "wrong".
2268       SmallerValueMentioned |= InSize < OutSize;
2269     }
2270     if (isOperandMentioned(TiedTo, Pieces)) {
2271       // If this is a reference to the output, and if the output is the larger
2272       // value, then it's ok because we'll promote the input to the larger type.
2273       SmallerValueMentioned |= OutSize < InSize;
2274     }
2275 
2276     // If the smaller value wasn't mentioned in the asm string, and if the
2277     // output was a register, just extend the shorter one to the size of the
2278     // larger one.
2279     if (!SmallerValueMentioned && InputDomain != AD_Other &&
2280         OutputConstraintInfos[TiedTo].allowsRegister())
2281       continue;
2282 
2283     // Either both of the operands were mentioned or the smaller one was
2284     // mentioned.  One more special case that we'll allow: if the tied input is
2285     // integer, unmentioned, and is a constant, then we'll allow truncating it
2286     // down to the size of the destination.
2287     if (InputDomain == AD_Int && OutputDomain == AD_Int &&
2288         !isOperandMentioned(InputOpNo, Pieces) &&
2289         InputExpr->isEvaluatable(Context)) {
2290       CastKind castKind =
2291         (OutTy->isBooleanType() ? CK_IntegralToBoolean : CK_IntegralCast);
2292       InputExpr = ImpCastExprToType(InputExpr, OutTy, castKind).take();
2293       Exprs[InputOpNo] = InputExpr;
2294       NS->setInputExpr(i, InputExpr);
2295       continue;
2296     }
2297 
2298     Diag(InputExpr->getLocStart(),
2299          diag::err_asm_tying_incompatible_types)
2300       << InTy << OutTy << OutputExpr->getSourceRange()
2301       << InputExpr->getSourceRange();
2302     return StmtError();
2303   }
2304 
2305   return Owned(NS);
2306 }
2307 
2308 StmtResult
2309 Sema::ActOnObjCAtCatchStmt(SourceLocation AtLoc,
2310                            SourceLocation RParen, Decl *Parm,
2311                            Stmt *Body) {
2312   VarDecl *Var = cast_or_null<VarDecl>(Parm);
2313   if (Var && Var->isInvalidDecl())
2314     return StmtError();
2315 
2316   return Owned(new (Context) ObjCAtCatchStmt(AtLoc, RParen, Var, Body));
2317 }
2318 
2319 StmtResult
2320 Sema::ActOnObjCAtFinallyStmt(SourceLocation AtLoc, Stmt *Body) {
2321   return Owned(new (Context) ObjCAtFinallyStmt(AtLoc, Body));
2322 }
2323 
2324 StmtResult
2325 Sema::ActOnObjCAtTryStmt(SourceLocation AtLoc, Stmt *Try,
2326                          MultiStmtArg CatchStmts, Stmt *Finally) {
2327   if (!getLangOptions().ObjCExceptions)
2328     Diag(AtLoc, diag::err_objc_exceptions_disabled) << "@try";
2329 
2330   getCurFunction()->setHasBranchProtectedScope();
2331   unsigned NumCatchStmts = CatchStmts.size();
2332   return Owned(ObjCAtTryStmt::Create(Context, AtLoc, Try,
2333                                      CatchStmts.release(),
2334                                      NumCatchStmts,
2335                                      Finally));
2336 }
2337 
2338 StmtResult Sema::BuildObjCAtThrowStmt(SourceLocation AtLoc,
2339                                                   Expr *Throw) {
2340   if (Throw) {
2341     Throw = MaybeCreateExprWithCleanups(Throw);
2342     ExprResult Result = DefaultLvalueConversion(Throw);
2343     if (Result.isInvalid())
2344       return StmtError();
2345 
2346     Throw = Result.take();
2347     QualType ThrowType = Throw->getType();
2348     // Make sure the expression type is an ObjC pointer or "void *".
2349     if (!ThrowType->isDependentType() &&
2350         !ThrowType->isObjCObjectPointerType()) {
2351       const PointerType *PT = ThrowType->getAs<PointerType>();
2352       if (!PT || !PT->getPointeeType()->isVoidType())
2353         return StmtError(Diag(AtLoc, diag::error_objc_throw_expects_object)
2354                          << Throw->getType() << Throw->getSourceRange());
2355     }
2356   }
2357 
2358   return Owned(new (Context) ObjCAtThrowStmt(AtLoc, Throw));
2359 }
2360 
2361 StmtResult
2362 Sema::ActOnObjCAtThrowStmt(SourceLocation AtLoc, Expr *Throw,
2363                            Scope *CurScope) {
2364   if (!getLangOptions().ObjCExceptions)
2365     Diag(AtLoc, diag::err_objc_exceptions_disabled) << "@throw";
2366 
2367   if (!Throw) {
2368     // @throw without an expression designates a rethrow (which much occur
2369     // in the context of an @catch clause).
2370     Scope *AtCatchParent = CurScope;
2371     while (AtCatchParent && !AtCatchParent->isAtCatchScope())
2372       AtCatchParent = AtCatchParent->getParent();
2373     if (!AtCatchParent)
2374       return StmtError(Diag(AtLoc, diag::error_rethrow_used_outside_catch));
2375   }
2376 
2377   return BuildObjCAtThrowStmt(AtLoc, Throw);
2378 }
2379 
2380 ExprResult
2381 Sema::ActOnObjCAtSynchronizedOperand(SourceLocation atLoc, Expr *operand) {
2382   ExprResult result = DefaultLvalueConversion(operand);
2383   if (result.isInvalid())
2384     return ExprError();
2385   operand = result.take();
2386 
2387   // Make sure the expression type is an ObjC pointer or "void *".
2388   QualType type = operand->getType();
2389   if (!type->isDependentType() &&
2390       !type->isObjCObjectPointerType()) {
2391     const PointerType *pointerType = type->getAs<PointerType>();
2392     if (!pointerType || !pointerType->getPointeeType()->isVoidType())
2393       return Diag(atLoc, diag::error_objc_synchronized_expects_object)
2394                << type << operand->getSourceRange();
2395   }
2396 
2397   // The operand to @synchronized is a full-expression.
2398   return MaybeCreateExprWithCleanups(operand);
2399 }
2400 
2401 StmtResult
2402 Sema::ActOnObjCAtSynchronizedStmt(SourceLocation AtLoc, Expr *SyncExpr,
2403                                   Stmt *SyncBody) {
2404   // We can't jump into or indirect-jump out of a @synchronized block.
2405   getCurFunction()->setHasBranchProtectedScope();
2406   return Owned(new (Context) ObjCAtSynchronizedStmt(AtLoc, SyncExpr, SyncBody));
2407 }
2408 
2409 /// ActOnCXXCatchBlock - Takes an exception declaration and a handler block
2410 /// and creates a proper catch handler from them.
2411 StmtResult
2412 Sema::ActOnCXXCatchBlock(SourceLocation CatchLoc, Decl *ExDecl,
2413                          Stmt *HandlerBlock) {
2414   // There's nothing to test that ActOnExceptionDecl didn't already test.
2415   return Owned(new (Context) CXXCatchStmt(CatchLoc,
2416                                           cast_or_null<VarDecl>(ExDecl),
2417                                           HandlerBlock));
2418 }
2419 
2420 StmtResult
2421 Sema::ActOnObjCAutoreleasePoolStmt(SourceLocation AtLoc, Stmt *Body) {
2422   getCurFunction()->setHasBranchProtectedScope();
2423   return Owned(new (Context) ObjCAutoreleasePoolStmt(AtLoc, Body));
2424 }
2425 
2426 namespace {
2427 
2428 class TypeWithHandler {
2429   QualType t;
2430   CXXCatchStmt *stmt;
2431 public:
2432   TypeWithHandler(const QualType &type, CXXCatchStmt *statement)
2433   : t(type), stmt(statement) {}
2434 
2435   // An arbitrary order is fine as long as it places identical
2436   // types next to each other.
2437   bool operator<(const TypeWithHandler &y) const {
2438     if (t.getAsOpaquePtr() < y.t.getAsOpaquePtr())
2439       return true;
2440     if (t.getAsOpaquePtr() > y.t.getAsOpaquePtr())
2441       return false;
2442     else
2443       return getTypeSpecStartLoc() < y.getTypeSpecStartLoc();
2444   }
2445 
2446   bool operator==(const TypeWithHandler& other) const {
2447     return t == other.t;
2448   }
2449 
2450   CXXCatchStmt *getCatchStmt() const { return stmt; }
2451   SourceLocation getTypeSpecStartLoc() const {
2452     return stmt->getExceptionDecl()->getTypeSpecStartLoc();
2453   }
2454 };
2455 
2456 }
2457 
2458 /// ActOnCXXTryBlock - Takes a try compound-statement and a number of
2459 /// handlers and creates a try statement from them.
2460 StmtResult
2461 Sema::ActOnCXXTryBlock(SourceLocation TryLoc, Stmt *TryBlock,
2462                        MultiStmtArg RawHandlers) {
2463   // Don't report an error if 'try' is used in system headers.
2464   if (!getLangOptions().CXXExceptions &&
2465       !getSourceManager().isInSystemHeader(TryLoc))
2466       Diag(TryLoc, diag::err_exceptions_disabled) << "try";
2467 
2468   unsigned NumHandlers = RawHandlers.size();
2469   assert(NumHandlers > 0 &&
2470          "The parser shouldn't call this if there are no handlers.");
2471   Stmt **Handlers = RawHandlers.get();
2472 
2473   SmallVector<TypeWithHandler, 8> TypesWithHandlers;
2474 
2475   for (unsigned i = 0; i < NumHandlers; ++i) {
2476     CXXCatchStmt *Handler = cast<CXXCatchStmt>(Handlers[i]);
2477     if (!Handler->getExceptionDecl()) {
2478       if (i < NumHandlers - 1)
2479         return StmtError(Diag(Handler->getLocStart(),
2480                               diag::err_early_catch_all));
2481 
2482       continue;
2483     }
2484 
2485     const QualType CaughtType = Handler->getCaughtType();
2486     const QualType CanonicalCaughtType = Context.getCanonicalType(CaughtType);
2487     TypesWithHandlers.push_back(TypeWithHandler(CanonicalCaughtType, Handler));
2488   }
2489 
2490   // Detect handlers for the same type as an earlier one.
2491   if (NumHandlers > 1) {
2492     llvm::array_pod_sort(TypesWithHandlers.begin(), TypesWithHandlers.end());
2493 
2494     TypeWithHandler prev = TypesWithHandlers[0];
2495     for (unsigned i = 1; i < TypesWithHandlers.size(); ++i) {
2496       TypeWithHandler curr = TypesWithHandlers[i];
2497 
2498       if (curr == prev) {
2499         Diag(curr.getTypeSpecStartLoc(),
2500              diag::warn_exception_caught_by_earlier_handler)
2501           << curr.getCatchStmt()->getCaughtType().getAsString();
2502         Diag(prev.getTypeSpecStartLoc(),
2503              diag::note_previous_exception_handler)
2504           << prev.getCatchStmt()->getCaughtType().getAsString();
2505       }
2506 
2507       prev = curr;
2508     }
2509   }
2510 
2511   getCurFunction()->setHasBranchProtectedScope();
2512 
2513   // FIXME: We should detect handlers that cannot catch anything because an
2514   // earlier handler catches a superclass. Need to find a method that is not
2515   // quadratic for this.
2516   // Neither of these are explicitly forbidden, but every compiler detects them
2517   // and warns.
2518 
2519   return Owned(CXXTryStmt::Create(Context, TryLoc, TryBlock,
2520                                   Handlers, NumHandlers));
2521 }
2522 
2523 StmtResult
2524 Sema::ActOnSEHTryBlock(bool IsCXXTry,
2525                        SourceLocation TryLoc,
2526                        Stmt *TryBlock,
2527                        Stmt *Handler) {
2528   assert(TryBlock && Handler);
2529 
2530   getCurFunction()->setHasBranchProtectedScope();
2531 
2532   return Owned(SEHTryStmt::Create(Context,IsCXXTry,TryLoc,TryBlock,Handler));
2533 }
2534 
2535 StmtResult
2536 Sema::ActOnSEHExceptBlock(SourceLocation Loc,
2537                           Expr *FilterExpr,
2538                           Stmt *Block) {
2539   assert(FilterExpr && Block);
2540 
2541   if(!FilterExpr->getType()->isIntegerType()) {
2542     return StmtError(Diag(FilterExpr->getExprLoc(),
2543                      diag::err_filter_expression_integral)
2544                      << FilterExpr->getType());
2545   }
2546 
2547   return Owned(SEHExceptStmt::Create(Context,Loc,FilterExpr,Block));
2548 }
2549 
2550 StmtResult
2551 Sema::ActOnSEHFinallyBlock(SourceLocation Loc,
2552                            Stmt *Block) {
2553   assert(Block);
2554   return Owned(SEHFinallyStmt::Create(Context,Loc,Block));
2555 }
2556 
2557 StmtResult Sema::BuildMSDependentExistsStmt(SourceLocation KeywordLoc,
2558                                             bool IsIfExists,
2559                                             NestedNameSpecifierLoc QualifierLoc,
2560                                             DeclarationNameInfo NameInfo,
2561                                             Stmt *Nested)
2562 {
2563   return new (Context) MSDependentExistsStmt(KeywordLoc, IsIfExists,
2564                                              QualifierLoc, NameInfo,
2565                                              cast<CompoundStmt>(Nested));
2566 }
2567 
2568 
2569 StmtResult Sema::ActOnMSDependentExistsStmt(SourceLocation KeywordLoc,
2570                                             bool IsIfExists,
2571                                             CXXScopeSpec &SS,
2572                                             UnqualifiedId &Name,
2573                                             Stmt *Nested) {
2574   return BuildMSDependentExistsStmt(KeywordLoc, IsIfExists,
2575                                     SS.getWithLocInContext(Context),
2576                                     GetNameFromUnqualifiedId(Name),
2577                                     Nested);
2578 }
2579