1 //===--- SemaDeclObjC.cpp - Semantic Analysis for ObjC Declarations -------===//
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 Objective C declarations.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "clang/Sema/SemaInternal.h"
15 #include "clang/Sema/Lookup.h"
16 #include "clang/Sema/ExternalSemaSource.h"
17 #include "clang/Sema/Scope.h"
18 #include "clang/Sema/ScopeInfo.h"
19 #include "clang/AST/ASTConsumer.h"
20 #include "clang/AST/Expr.h"
21 #include "clang/AST/ExprObjC.h"
22 #include "clang/AST/ASTContext.h"
23 #include "clang/AST/DeclObjC.h"
24 #include "clang/AST/ASTMutationListener.h"
25 #include "clang/Basic/SourceManager.h"
26 #include "clang/Sema/DeclSpec.h"
27 #include "clang/Lex/Preprocessor.h"
28 #include "llvm/ADT/DenseSet.h"
29 
30 using namespace clang;
31 
32 /// Check whether the given method, which must be in the 'init'
33 /// family, is a valid member of that family.
34 ///
35 /// \param receiverTypeIfCall - if null, check this as if declaring it;
36 ///   if non-null, check this as if making a call to it with the given
37 ///   receiver type
38 ///
39 /// \return true to indicate that there was an error and appropriate
40 ///   actions were taken
41 bool Sema::checkInitMethod(ObjCMethodDecl *method,
42                            QualType receiverTypeIfCall) {
43   if (method->isInvalidDecl()) return true;
44 
45   // This castAs is safe: methods that don't return an object
46   // pointer won't be inferred as inits and will reject an explicit
47   // objc_method_family(init).
48 
49   // We ignore protocols here.  Should we?  What about Class?
50 
51   const ObjCObjectType *result = method->getResultType()
52     ->castAs<ObjCObjectPointerType>()->getObjectType();
53 
54   if (result->isObjCId()) {
55     return false;
56   } else if (result->isObjCClass()) {
57     // fall through: always an error
58   } else {
59     ObjCInterfaceDecl *resultClass = result->getInterface();
60     assert(resultClass && "unexpected object type!");
61 
62     // It's okay for the result type to still be a forward declaration
63     // if we're checking an interface declaration.
64     if (!resultClass->hasDefinition()) {
65       if (receiverTypeIfCall.isNull() &&
66           !isa<ObjCImplementationDecl>(method->getDeclContext()))
67         return false;
68 
69     // Otherwise, we try to compare class types.
70     } else {
71       // If this method was declared in a protocol, we can't check
72       // anything unless we have a receiver type that's an interface.
73       const ObjCInterfaceDecl *receiverClass = 0;
74       if (isa<ObjCProtocolDecl>(method->getDeclContext())) {
75         if (receiverTypeIfCall.isNull())
76           return false;
77 
78         receiverClass = receiverTypeIfCall->castAs<ObjCObjectPointerType>()
79           ->getInterfaceDecl();
80 
81         // This can be null for calls to e.g. id<Foo>.
82         if (!receiverClass) return false;
83       } else {
84         receiverClass = method->getClassInterface();
85         assert(receiverClass && "method not associated with a class!");
86       }
87 
88       // If either class is a subclass of the other, it's fine.
89       if (receiverClass->isSuperClassOf(resultClass) ||
90           resultClass->isSuperClassOf(receiverClass))
91         return false;
92     }
93   }
94 
95   SourceLocation loc = method->getLocation();
96 
97   // If we're in a system header, and this is not a call, just make
98   // the method unusable.
99   if (receiverTypeIfCall.isNull() && getSourceManager().isInSystemHeader(loc)) {
100     method->addAttr(new (Context) UnavailableAttr(loc, Context,
101                 "init method returns a type unrelated to its receiver type"));
102     return true;
103   }
104 
105   // Otherwise, it's an error.
106   Diag(loc, diag::err_arc_init_method_unrelated_result_type);
107   method->setInvalidDecl();
108   return true;
109 }
110 
111 void Sema::CheckObjCMethodOverride(ObjCMethodDecl *NewMethod,
112                                    const ObjCMethodDecl *Overridden,
113                                    bool IsImplementation) {
114   if (Overridden->hasRelatedResultType() &&
115       !NewMethod->hasRelatedResultType()) {
116     // This can only happen when the method follows a naming convention that
117     // implies a related result type, and the original (overridden) method has
118     // a suitable return type, but the new (overriding) method does not have
119     // a suitable return type.
120     QualType ResultType = NewMethod->getResultType();
121     SourceRange ResultTypeRange;
122     if (const TypeSourceInfo *ResultTypeInfo
123                                         = NewMethod->getResultTypeSourceInfo())
124       ResultTypeRange = ResultTypeInfo->getTypeLoc().getSourceRange();
125 
126     // Figure out which class this method is part of, if any.
127     ObjCInterfaceDecl *CurrentClass
128       = dyn_cast<ObjCInterfaceDecl>(NewMethod->getDeclContext());
129     if (!CurrentClass) {
130       DeclContext *DC = NewMethod->getDeclContext();
131       if (ObjCCategoryDecl *Cat = dyn_cast<ObjCCategoryDecl>(DC))
132         CurrentClass = Cat->getClassInterface();
133       else if (ObjCImplDecl *Impl = dyn_cast<ObjCImplDecl>(DC))
134         CurrentClass = Impl->getClassInterface();
135       else if (ObjCCategoryImplDecl *CatImpl
136                = dyn_cast<ObjCCategoryImplDecl>(DC))
137         CurrentClass = CatImpl->getClassInterface();
138     }
139 
140     if (CurrentClass) {
141       Diag(NewMethod->getLocation(),
142            diag::warn_related_result_type_compatibility_class)
143         << Context.getObjCInterfaceType(CurrentClass)
144         << ResultType
145         << ResultTypeRange;
146     } else {
147       Diag(NewMethod->getLocation(),
148            diag::warn_related_result_type_compatibility_protocol)
149         << ResultType
150         << ResultTypeRange;
151     }
152 
153     if (ObjCMethodFamily Family = Overridden->getMethodFamily())
154       Diag(Overridden->getLocation(),
155            diag::note_related_result_type_overridden_family)
156         << Family;
157     else
158       Diag(Overridden->getLocation(),
159            diag::note_related_result_type_overridden);
160   }
161   if (getLangOpts().ObjCAutoRefCount) {
162     if ((NewMethod->hasAttr<NSReturnsRetainedAttr>() !=
163          Overridden->hasAttr<NSReturnsRetainedAttr>())) {
164         Diag(NewMethod->getLocation(),
165              diag::err_nsreturns_retained_attribute_mismatch) << 1;
166         Diag(Overridden->getLocation(), diag::note_previous_decl)
167         << "method";
168     }
169     if ((NewMethod->hasAttr<NSReturnsNotRetainedAttr>() !=
170               Overridden->hasAttr<NSReturnsNotRetainedAttr>())) {
171         Diag(NewMethod->getLocation(),
172              diag::err_nsreturns_retained_attribute_mismatch) << 0;
173         Diag(Overridden->getLocation(), diag::note_previous_decl)
174         << "method";
175     }
176     ObjCMethodDecl::param_const_iterator oi = Overridden->param_begin(),
177                                          oe = Overridden->param_end();
178     for (ObjCMethodDecl::param_iterator
179            ni = NewMethod->param_begin(), ne = NewMethod->param_end();
180          ni != ne && oi != oe; ++ni, ++oi) {
181       const ParmVarDecl *oldDecl = (*oi);
182       ParmVarDecl *newDecl = (*ni);
183       if (newDecl->hasAttr<NSConsumedAttr>() !=
184           oldDecl->hasAttr<NSConsumedAttr>()) {
185         Diag(newDecl->getLocation(),
186              diag::err_nsconsumed_attribute_mismatch);
187         Diag(oldDecl->getLocation(), diag::note_previous_decl)
188           << "parameter";
189       }
190     }
191   }
192 }
193 
194 /// \brief Check a method declaration for compatibility with the Objective-C
195 /// ARC conventions.
196 static bool CheckARCMethodDecl(Sema &S, ObjCMethodDecl *method) {
197   ObjCMethodFamily family = method->getMethodFamily();
198   switch (family) {
199   case OMF_None:
200   case OMF_finalize:
201   case OMF_retain:
202   case OMF_release:
203   case OMF_autorelease:
204   case OMF_retainCount:
205   case OMF_self:
206   case OMF_performSelector:
207     return false;
208 
209   case OMF_dealloc:
210     if (!S.Context.hasSameType(method->getResultType(), S.Context.VoidTy)) {
211       SourceRange ResultTypeRange;
212       if (const TypeSourceInfo *ResultTypeInfo
213           = method->getResultTypeSourceInfo())
214         ResultTypeRange = ResultTypeInfo->getTypeLoc().getSourceRange();
215       if (ResultTypeRange.isInvalid())
216         S.Diag(method->getLocation(), diag::error_dealloc_bad_result_type)
217           << method->getResultType()
218           << FixItHint::CreateInsertion(method->getSelectorLoc(0), "(void)");
219       else
220         S.Diag(method->getLocation(), diag::error_dealloc_bad_result_type)
221           << method->getResultType()
222           << FixItHint::CreateReplacement(ResultTypeRange, "void");
223       return true;
224     }
225     return false;
226 
227   case OMF_init:
228     // If the method doesn't obey the init rules, don't bother annotating it.
229     if (S.checkInitMethod(method, QualType()))
230       return true;
231 
232     method->addAttr(new (S.Context) NSConsumesSelfAttr(SourceLocation(),
233                                                        S.Context));
234 
235     // Don't add a second copy of this attribute, but otherwise don't
236     // let it be suppressed.
237     if (method->hasAttr<NSReturnsRetainedAttr>())
238       return false;
239     break;
240 
241   case OMF_alloc:
242   case OMF_copy:
243   case OMF_mutableCopy:
244   case OMF_new:
245     if (method->hasAttr<NSReturnsRetainedAttr>() ||
246         method->hasAttr<NSReturnsNotRetainedAttr>() ||
247         method->hasAttr<NSReturnsAutoreleasedAttr>())
248       return false;
249     break;
250   }
251 
252   method->addAttr(new (S.Context) NSReturnsRetainedAttr(SourceLocation(),
253                                                         S.Context));
254   return false;
255 }
256 
257 static void DiagnoseObjCImplementedDeprecations(Sema &S,
258                                                 NamedDecl *ND,
259                                                 SourceLocation ImplLoc,
260                                                 int select) {
261   if (ND && ND->isDeprecated()) {
262     S.Diag(ImplLoc, diag::warn_deprecated_def) << select;
263     if (select == 0)
264       S.Diag(ND->getLocation(), diag::note_method_declared_at)
265         << ND->getDeclName();
266     else
267       S.Diag(ND->getLocation(), diag::note_previous_decl) << "class";
268   }
269 }
270 
271 /// AddAnyMethodToGlobalPool - Add any method, instance or factory to global
272 /// pool.
273 void Sema::AddAnyMethodToGlobalPool(Decl *D) {
274   ObjCMethodDecl *MDecl = dyn_cast_or_null<ObjCMethodDecl>(D);
275 
276   // If we don't have a valid method decl, simply return.
277   if (!MDecl)
278     return;
279   if (MDecl->isInstanceMethod())
280     AddInstanceMethodToGlobalPool(MDecl, true);
281   else
282     AddFactoryMethodToGlobalPool(MDecl, true);
283 }
284 
285 /// ActOnStartOfObjCMethodOrCFunctionDef - This routine sets up parameters; invisible
286 /// and user declared, in the method definition's AST. This routine is also  called
287 /// for C-functions defined in an Objective-c class implementation.
288 void Sema::ActOnStartOfObjCMethodOrCFunctionDef(Scope *FnBodyScope, Decl *D,
289                                                 bool parseMethod) {
290   assert((getCurMethodDecl() == 0 && getCurFunctionDecl() == 0) &&
291          "Method/c-function parsing confused");
292   if (!parseMethod) {
293     FunctionDecl *FDecl = dyn_cast_or_null<FunctionDecl>(D);
294     // If we don't have a valid c-function decl, simply return.
295     if (!FDecl)
296       return;
297     PushDeclContext(FnBodyScope, FDecl);
298     PushFunctionScope();
299 
300     for (FunctionDecl::param_const_iterator PI = FDecl->param_begin(),
301          E = FDecl->param_end(); PI != E; ++PI) {
302       ParmVarDecl *Param = (*PI);
303       if (!Param->isInvalidDecl() &&
304           RequireCompleteType(Param->getLocation(), Param->getType(),
305                               diag::err_typecheck_decl_incomplete_type))
306         Param->setInvalidDecl();
307       if ((*PI)->getIdentifier())
308         PushOnScopeChains(*PI, FnBodyScope);
309     }
310     return;
311   }
312 
313   ObjCMethodDecl *MDecl = dyn_cast_or_null<ObjCMethodDecl>(D);
314 
315   // If we don't have a valid method decl, simply return.
316   if (!MDecl)
317     return;
318 
319   // Allow all of Sema to see that we are entering a method definition.
320   PushDeclContext(FnBodyScope, MDecl);
321   PushFunctionScope();
322 
323   // Create Decl objects for each parameter, entrring them in the scope for
324   // binding to their use.
325 
326   // Insert the invisible arguments, self and _cmd!
327   MDecl->createImplicitParams(Context, MDecl->getClassInterface());
328 
329   PushOnScopeChains(MDecl->getSelfDecl(), FnBodyScope);
330   PushOnScopeChains(MDecl->getCmdDecl(), FnBodyScope);
331 
332   // Introduce all of the other parameters into this scope.
333   for (ObjCMethodDecl::param_iterator PI = MDecl->param_begin(),
334        E = MDecl->param_end(); PI != E; ++PI) {
335     ParmVarDecl *Param = (*PI);
336     if (!Param->isInvalidDecl() &&
337         RequireCompleteType(Param->getLocation(), Param->getType(),
338                             diag::err_typecheck_decl_incomplete_type))
339           Param->setInvalidDecl();
340     if ((*PI)->getIdentifier())
341       PushOnScopeChains(*PI, FnBodyScope);
342   }
343 
344   // In ARC, disallow definition of retain/release/autorelease/retainCount
345   if (getLangOpts().ObjCAutoRefCount) {
346     switch (MDecl->getMethodFamily()) {
347     case OMF_retain:
348     case OMF_retainCount:
349     case OMF_release:
350     case OMF_autorelease:
351       Diag(MDecl->getLocation(), diag::err_arc_illegal_method_def)
352         << MDecl->getSelector();
353       break;
354 
355     case OMF_None:
356     case OMF_dealloc:
357     case OMF_finalize:
358     case OMF_alloc:
359     case OMF_init:
360     case OMF_mutableCopy:
361     case OMF_copy:
362     case OMF_new:
363     case OMF_self:
364     case OMF_performSelector:
365       break;
366     }
367   }
368 
369   // Warn on deprecated methods under -Wdeprecated-implementations,
370   // and prepare for warning on missing super calls.
371   if (ObjCInterfaceDecl *IC = MDecl->getClassInterface()) {
372     if (ObjCMethodDecl *IMD =
373           IC->lookupMethod(MDecl->getSelector(), MDecl->isInstanceMethod()))
374       DiagnoseObjCImplementedDeprecations(*this,
375                                           dyn_cast<NamedDecl>(IMD),
376                                           MDecl->getLocation(), 0);
377 
378     // If this is "dealloc" or "finalize", set some bit here.
379     // Then in ActOnSuperMessage() (SemaExprObjC), set it back to false.
380     // Finally, in ActOnFinishFunctionBody() (SemaDecl), warn if flag is set.
381     // Only do this if the current class actually has a superclass.
382     if (IC->getSuperClass()) {
383       getCurFunction()->ObjCShouldCallSuperDealloc =
384         !(Context.getLangOpts().ObjCAutoRefCount ||
385           Context.getLangOpts().getGC() == LangOptions::GCOnly) &&
386         MDecl->getMethodFamily() == OMF_dealloc;
387       getCurFunction()->ObjCShouldCallSuperFinalize =
388         Context.getLangOpts().getGC() != LangOptions::NonGC &&
389         MDecl->getMethodFamily() == OMF_finalize;
390     }
391   }
392 }
393 
394 namespace {
395 
396 // Callback to only accept typo corrections that are Objective-C classes.
397 // If an ObjCInterfaceDecl* is given to the constructor, then the validation
398 // function will reject corrections to that class.
399 class ObjCInterfaceValidatorCCC : public CorrectionCandidateCallback {
400  public:
401   ObjCInterfaceValidatorCCC() : CurrentIDecl(0) {}
402   explicit ObjCInterfaceValidatorCCC(ObjCInterfaceDecl *IDecl)
403       : CurrentIDecl(IDecl) {}
404 
405   virtual bool ValidateCandidate(const TypoCorrection &candidate) {
406     ObjCInterfaceDecl *ID = candidate.getCorrectionDeclAs<ObjCInterfaceDecl>();
407     return ID && !declaresSameEntity(ID, CurrentIDecl);
408   }
409 
410  private:
411   ObjCInterfaceDecl *CurrentIDecl;
412 };
413 
414 }
415 
416 Decl *Sema::
417 ActOnStartClassInterface(SourceLocation AtInterfaceLoc,
418                          IdentifierInfo *ClassName, SourceLocation ClassLoc,
419                          IdentifierInfo *SuperName, SourceLocation SuperLoc,
420                          Decl * const *ProtoRefs, unsigned NumProtoRefs,
421                          const SourceLocation *ProtoLocs,
422                          SourceLocation EndProtoLoc, AttributeList *AttrList) {
423   assert(ClassName && "Missing class identifier");
424 
425   // Check for another declaration kind with the same name.
426   NamedDecl *PrevDecl = LookupSingleName(TUScope, ClassName, ClassLoc,
427                                          LookupOrdinaryName, ForRedeclaration);
428 
429   if (PrevDecl && !isa<ObjCInterfaceDecl>(PrevDecl)) {
430     Diag(ClassLoc, diag::err_redefinition_different_kind) << ClassName;
431     Diag(PrevDecl->getLocation(), diag::note_previous_definition);
432   }
433 
434   // Create a declaration to describe this @interface.
435   ObjCInterfaceDecl* PrevIDecl = dyn_cast_or_null<ObjCInterfaceDecl>(PrevDecl);
436   ObjCInterfaceDecl *IDecl
437     = ObjCInterfaceDecl::Create(Context, CurContext, AtInterfaceLoc, ClassName,
438                                 PrevIDecl, ClassLoc);
439 
440   if (PrevIDecl) {
441     // Class already seen. Was it a definition?
442     if (ObjCInterfaceDecl *Def = PrevIDecl->getDefinition()) {
443       Diag(AtInterfaceLoc, diag::err_duplicate_class_def)
444         << PrevIDecl->getDeclName();
445       Diag(Def->getLocation(), diag::note_previous_definition);
446       IDecl->setInvalidDecl();
447     }
448   }
449 
450   if (AttrList)
451     ProcessDeclAttributeList(TUScope, IDecl, AttrList);
452   PushOnScopeChains(IDecl, TUScope);
453 
454   // Start the definition of this class. If we're in a redefinition case, there
455   // may already be a definition, so we'll end up adding to it.
456   if (!IDecl->hasDefinition())
457     IDecl->startDefinition();
458 
459   if (SuperName) {
460     // Check if a different kind of symbol declared in this scope.
461     PrevDecl = LookupSingleName(TUScope, SuperName, SuperLoc,
462                                 LookupOrdinaryName);
463 
464     if (!PrevDecl) {
465       // Try to correct for a typo in the superclass name without correcting
466       // to the class we're defining.
467       ObjCInterfaceValidatorCCC Validator(IDecl);
468       if (TypoCorrection Corrected = CorrectTypo(
469           DeclarationNameInfo(SuperName, SuperLoc), LookupOrdinaryName, TUScope,
470           NULL, Validator)) {
471         PrevDecl = Corrected.getCorrectionDeclAs<ObjCInterfaceDecl>();
472         Diag(SuperLoc, diag::err_undef_superclass_suggest)
473           << SuperName << ClassName << PrevDecl->getDeclName();
474         Diag(PrevDecl->getLocation(), diag::note_previous_decl)
475           << PrevDecl->getDeclName();
476       }
477     }
478 
479     if (declaresSameEntity(PrevDecl, IDecl)) {
480       Diag(SuperLoc, diag::err_recursive_superclass)
481         << SuperName << ClassName << SourceRange(AtInterfaceLoc, ClassLoc);
482       IDecl->setEndOfDefinitionLoc(ClassLoc);
483     } else {
484       ObjCInterfaceDecl *SuperClassDecl =
485                                 dyn_cast_or_null<ObjCInterfaceDecl>(PrevDecl);
486 
487       // Diagnose classes that inherit from deprecated classes.
488       if (SuperClassDecl)
489         (void)DiagnoseUseOfDecl(SuperClassDecl, SuperLoc);
490 
491       if (PrevDecl && SuperClassDecl == 0) {
492         // The previous declaration was not a class decl. Check if we have a
493         // typedef. If we do, get the underlying class type.
494         if (const TypedefNameDecl *TDecl =
495               dyn_cast_or_null<TypedefNameDecl>(PrevDecl)) {
496           QualType T = TDecl->getUnderlyingType();
497           if (T->isObjCObjectType()) {
498             if (NamedDecl *IDecl = T->getAs<ObjCObjectType>()->getInterface())
499               SuperClassDecl = dyn_cast<ObjCInterfaceDecl>(IDecl);
500           }
501         }
502 
503         // This handles the following case:
504         //
505         // typedef int SuperClass;
506         // @interface MyClass : SuperClass {} @end
507         //
508         if (!SuperClassDecl) {
509           Diag(SuperLoc, diag::err_redefinition_different_kind) << SuperName;
510           Diag(PrevDecl->getLocation(), diag::note_previous_definition);
511         }
512       }
513 
514       if (!dyn_cast_or_null<TypedefNameDecl>(PrevDecl)) {
515         if (!SuperClassDecl)
516           Diag(SuperLoc, diag::err_undef_superclass)
517             << SuperName << ClassName << SourceRange(AtInterfaceLoc, ClassLoc);
518         else if (RequireCompleteType(SuperLoc,
519                                   Context.getObjCInterfaceType(SuperClassDecl),
520                                      diag::err_forward_superclass,
521                                      SuperClassDecl->getDeclName(),
522                                      ClassName,
523                                      SourceRange(AtInterfaceLoc, ClassLoc))) {
524           SuperClassDecl = 0;
525         }
526       }
527       IDecl->setSuperClass(SuperClassDecl);
528       IDecl->setSuperClassLoc(SuperLoc);
529       IDecl->setEndOfDefinitionLoc(SuperLoc);
530     }
531   } else { // we have a root class.
532     IDecl->setEndOfDefinitionLoc(ClassLoc);
533   }
534 
535   // Check then save referenced protocols.
536   if (NumProtoRefs) {
537     IDecl->setProtocolList((ObjCProtocolDecl**)ProtoRefs, NumProtoRefs,
538                            ProtoLocs, Context);
539     IDecl->setEndOfDefinitionLoc(EndProtoLoc);
540   }
541 
542   CheckObjCDeclScope(IDecl);
543   return ActOnObjCContainerStartDefinition(IDecl);
544 }
545 
546 /// ActOnCompatiblityAlias - this action is called after complete parsing of
547 /// a \@compatibility_alias declaration. It sets up the alias relationships.
548 Decl *Sema::ActOnCompatiblityAlias(SourceLocation AtLoc,
549                                         IdentifierInfo *AliasName,
550                                         SourceLocation AliasLocation,
551                                         IdentifierInfo *ClassName,
552                                         SourceLocation ClassLocation) {
553   // Look for previous declaration of alias name
554   NamedDecl *ADecl = LookupSingleName(TUScope, AliasName, AliasLocation,
555                                       LookupOrdinaryName, ForRedeclaration);
556   if (ADecl) {
557     if (isa<ObjCCompatibleAliasDecl>(ADecl))
558       Diag(AliasLocation, diag::warn_previous_alias_decl);
559     else
560       Diag(AliasLocation, diag::err_conflicting_aliasing_type) << AliasName;
561     Diag(ADecl->getLocation(), diag::note_previous_declaration);
562     return 0;
563   }
564   // Check for class declaration
565   NamedDecl *CDeclU = LookupSingleName(TUScope, ClassName, ClassLocation,
566                                        LookupOrdinaryName, ForRedeclaration);
567   if (const TypedefNameDecl *TDecl =
568         dyn_cast_or_null<TypedefNameDecl>(CDeclU)) {
569     QualType T = TDecl->getUnderlyingType();
570     if (T->isObjCObjectType()) {
571       if (NamedDecl *IDecl = T->getAs<ObjCObjectType>()->getInterface()) {
572         ClassName = IDecl->getIdentifier();
573         CDeclU = LookupSingleName(TUScope, ClassName, ClassLocation,
574                                   LookupOrdinaryName, ForRedeclaration);
575       }
576     }
577   }
578   ObjCInterfaceDecl *CDecl = dyn_cast_or_null<ObjCInterfaceDecl>(CDeclU);
579   if (CDecl == 0) {
580     Diag(ClassLocation, diag::warn_undef_interface) << ClassName;
581     if (CDeclU)
582       Diag(CDeclU->getLocation(), diag::note_previous_declaration);
583     return 0;
584   }
585 
586   // Everything checked out, instantiate a new alias declaration AST.
587   ObjCCompatibleAliasDecl *AliasDecl =
588     ObjCCompatibleAliasDecl::Create(Context, CurContext, AtLoc, AliasName, CDecl);
589 
590   if (!CheckObjCDeclScope(AliasDecl))
591     PushOnScopeChains(AliasDecl, TUScope);
592 
593   return AliasDecl;
594 }
595 
596 bool Sema::CheckForwardProtocolDeclarationForCircularDependency(
597   IdentifierInfo *PName,
598   SourceLocation &Ploc, SourceLocation PrevLoc,
599   const ObjCList<ObjCProtocolDecl> &PList) {
600 
601   bool res = false;
602   for (ObjCList<ObjCProtocolDecl>::iterator I = PList.begin(),
603        E = PList.end(); I != E; ++I) {
604     if (ObjCProtocolDecl *PDecl = LookupProtocol((*I)->getIdentifier(),
605                                                  Ploc)) {
606       if (PDecl->getIdentifier() == PName) {
607         Diag(Ploc, diag::err_protocol_has_circular_dependency);
608         Diag(PrevLoc, diag::note_previous_definition);
609         res = true;
610       }
611 
612       if (!PDecl->hasDefinition())
613         continue;
614 
615       if (CheckForwardProtocolDeclarationForCircularDependency(PName, Ploc,
616             PDecl->getLocation(), PDecl->getReferencedProtocols()))
617         res = true;
618     }
619   }
620   return res;
621 }
622 
623 Decl *
624 Sema::ActOnStartProtocolInterface(SourceLocation AtProtoInterfaceLoc,
625                                   IdentifierInfo *ProtocolName,
626                                   SourceLocation ProtocolLoc,
627                                   Decl * const *ProtoRefs,
628                                   unsigned NumProtoRefs,
629                                   const SourceLocation *ProtoLocs,
630                                   SourceLocation EndProtoLoc,
631                                   AttributeList *AttrList) {
632   bool err = false;
633   // FIXME: Deal with AttrList.
634   assert(ProtocolName && "Missing protocol identifier");
635   ObjCProtocolDecl *PrevDecl = LookupProtocol(ProtocolName, ProtocolLoc,
636                                               ForRedeclaration);
637   ObjCProtocolDecl *PDecl = 0;
638   if (ObjCProtocolDecl *Def = PrevDecl? PrevDecl->getDefinition() : 0) {
639     // If we already have a definition, complain.
640     Diag(ProtocolLoc, diag::warn_duplicate_protocol_def) << ProtocolName;
641     Diag(Def->getLocation(), diag::note_previous_definition);
642 
643     // Create a new protocol that is completely distinct from previous
644     // declarations, and do not make this protocol available for name lookup.
645     // That way, we'll end up completely ignoring the duplicate.
646     // FIXME: Can we turn this into an error?
647     PDecl = ObjCProtocolDecl::Create(Context, CurContext, ProtocolName,
648                                      ProtocolLoc, AtProtoInterfaceLoc,
649                                      /*PrevDecl=*/0);
650     PDecl->startDefinition();
651   } else {
652     if (PrevDecl) {
653       // Check for circular dependencies among protocol declarations. This can
654       // only happen if this protocol was forward-declared.
655       ObjCList<ObjCProtocolDecl> PList;
656       PList.set((ObjCProtocolDecl *const*)ProtoRefs, NumProtoRefs, Context);
657       err = CheckForwardProtocolDeclarationForCircularDependency(
658               ProtocolName, ProtocolLoc, PrevDecl->getLocation(), PList);
659     }
660 
661     // Create the new declaration.
662     PDecl = ObjCProtocolDecl::Create(Context, CurContext, ProtocolName,
663                                      ProtocolLoc, AtProtoInterfaceLoc,
664                                      /*PrevDecl=*/PrevDecl);
665 
666     PushOnScopeChains(PDecl, TUScope);
667     PDecl->startDefinition();
668   }
669 
670   if (AttrList)
671     ProcessDeclAttributeList(TUScope, PDecl, AttrList);
672 
673   // Merge attributes from previous declarations.
674   if (PrevDecl)
675     mergeDeclAttributes(PDecl, PrevDecl);
676 
677   if (!err && NumProtoRefs ) {
678     /// Check then save referenced protocols.
679     PDecl->setProtocolList((ObjCProtocolDecl**)ProtoRefs, NumProtoRefs,
680                            ProtoLocs, Context);
681   }
682 
683   CheckObjCDeclScope(PDecl);
684   return ActOnObjCContainerStartDefinition(PDecl);
685 }
686 
687 /// FindProtocolDeclaration - This routine looks up protocols and
688 /// issues an error if they are not declared. It returns list of
689 /// protocol declarations in its 'Protocols' argument.
690 void
691 Sema::FindProtocolDeclaration(bool WarnOnDeclarations,
692                               const IdentifierLocPair *ProtocolId,
693                               unsigned NumProtocols,
694                               SmallVectorImpl<Decl *> &Protocols) {
695   for (unsigned i = 0; i != NumProtocols; ++i) {
696     ObjCProtocolDecl *PDecl = LookupProtocol(ProtocolId[i].first,
697                                              ProtocolId[i].second);
698     if (!PDecl) {
699       DeclFilterCCC<ObjCProtocolDecl> Validator;
700       TypoCorrection Corrected = CorrectTypo(
701           DeclarationNameInfo(ProtocolId[i].first, ProtocolId[i].second),
702           LookupObjCProtocolName, TUScope, NULL, Validator);
703       if ((PDecl = Corrected.getCorrectionDeclAs<ObjCProtocolDecl>())) {
704         Diag(ProtocolId[i].second, diag::err_undeclared_protocol_suggest)
705           << ProtocolId[i].first << Corrected.getCorrection();
706         Diag(PDecl->getLocation(), diag::note_previous_decl)
707           << PDecl->getDeclName();
708       }
709     }
710 
711     if (!PDecl) {
712       Diag(ProtocolId[i].second, diag::err_undeclared_protocol)
713         << ProtocolId[i].first;
714       continue;
715     }
716 
717     (void)DiagnoseUseOfDecl(PDecl, ProtocolId[i].second);
718 
719     // If this is a forward declaration and we are supposed to warn in this
720     // case, do it.
721     if (WarnOnDeclarations && !PDecl->hasDefinition())
722       Diag(ProtocolId[i].second, diag::warn_undef_protocolref)
723         << ProtocolId[i].first;
724     Protocols.push_back(PDecl);
725   }
726 }
727 
728 /// DiagnoseClassExtensionDupMethods - Check for duplicate declaration of
729 /// a class method in its extension.
730 ///
731 void Sema::DiagnoseClassExtensionDupMethods(ObjCCategoryDecl *CAT,
732                                             ObjCInterfaceDecl *ID) {
733   if (!ID)
734     return;  // Possibly due to previous error
735 
736   llvm::DenseMap<Selector, const ObjCMethodDecl*> MethodMap;
737   for (ObjCInterfaceDecl::method_iterator i = ID->meth_begin(),
738        e =  ID->meth_end(); i != e; ++i) {
739     ObjCMethodDecl *MD = *i;
740     MethodMap[MD->getSelector()] = MD;
741   }
742 
743   if (MethodMap.empty())
744     return;
745   for (ObjCCategoryDecl::method_iterator i = CAT->meth_begin(),
746        e =  CAT->meth_end(); i != e; ++i) {
747     ObjCMethodDecl *Method = *i;
748     const ObjCMethodDecl *&PrevMethod = MethodMap[Method->getSelector()];
749     if (PrevMethod && !MatchTwoMethodDeclarations(Method, PrevMethod)) {
750       Diag(Method->getLocation(), diag::err_duplicate_method_decl)
751             << Method->getDeclName();
752       Diag(PrevMethod->getLocation(), diag::note_previous_declaration);
753     }
754   }
755 }
756 
757 /// ActOnForwardProtocolDeclaration - Handle \@protocol foo;
758 Sema::DeclGroupPtrTy
759 Sema::ActOnForwardProtocolDeclaration(SourceLocation AtProtocolLoc,
760                                       const IdentifierLocPair *IdentList,
761                                       unsigned NumElts,
762                                       AttributeList *attrList) {
763   SmallVector<Decl *, 8> DeclsInGroup;
764   for (unsigned i = 0; i != NumElts; ++i) {
765     IdentifierInfo *Ident = IdentList[i].first;
766     ObjCProtocolDecl *PrevDecl = LookupProtocol(Ident, IdentList[i].second,
767                                                 ForRedeclaration);
768     ObjCProtocolDecl *PDecl
769       = ObjCProtocolDecl::Create(Context, CurContext, Ident,
770                                  IdentList[i].second, AtProtocolLoc,
771                                  PrevDecl);
772 
773     PushOnScopeChains(PDecl, TUScope);
774     CheckObjCDeclScope(PDecl);
775 
776     if (attrList)
777       ProcessDeclAttributeList(TUScope, PDecl, attrList);
778 
779     if (PrevDecl)
780       mergeDeclAttributes(PDecl, PrevDecl);
781 
782     DeclsInGroup.push_back(PDecl);
783   }
784 
785   return BuildDeclaratorGroup(DeclsInGroup.data(), DeclsInGroup.size(), false);
786 }
787 
788 Decl *Sema::
789 ActOnStartCategoryInterface(SourceLocation AtInterfaceLoc,
790                             IdentifierInfo *ClassName, SourceLocation ClassLoc,
791                             IdentifierInfo *CategoryName,
792                             SourceLocation CategoryLoc,
793                             Decl * const *ProtoRefs,
794                             unsigned NumProtoRefs,
795                             const SourceLocation *ProtoLocs,
796                             SourceLocation EndProtoLoc) {
797   ObjCCategoryDecl *CDecl;
798   ObjCInterfaceDecl *IDecl = getObjCInterfaceDecl(ClassName, ClassLoc, true);
799 
800   /// Check that class of this category is already completely declared.
801 
802   if (!IDecl
803       || RequireCompleteType(ClassLoc, Context.getObjCInterfaceType(IDecl),
804                              diag::err_category_forward_interface,
805                              CategoryName == 0)) {
806     // Create an invalid ObjCCategoryDecl to serve as context for
807     // the enclosing method declarations.  We mark the decl invalid
808     // to make it clear that this isn't a valid AST.
809     CDecl = ObjCCategoryDecl::Create(Context, CurContext, AtInterfaceLoc,
810                                      ClassLoc, CategoryLoc, CategoryName,IDecl);
811     CDecl->setInvalidDecl();
812     CurContext->addDecl(CDecl);
813 
814     if (!IDecl)
815       Diag(ClassLoc, diag::err_undef_interface) << ClassName;
816     return ActOnObjCContainerStartDefinition(CDecl);
817   }
818 
819   if (!CategoryName && IDecl->getImplementation()) {
820     Diag(ClassLoc, diag::err_class_extension_after_impl) << ClassName;
821     Diag(IDecl->getImplementation()->getLocation(),
822           diag::note_implementation_declared);
823   }
824 
825   if (CategoryName) {
826     /// Check for duplicate interface declaration for this category
827     ObjCCategoryDecl *CDeclChain;
828     for (CDeclChain = IDecl->getCategoryList(); CDeclChain;
829          CDeclChain = CDeclChain->getNextClassCategory()) {
830       if (CDeclChain->getIdentifier() == CategoryName) {
831         // Class extensions can be declared multiple times.
832         Diag(CategoryLoc, diag::warn_dup_category_def)
833           << ClassName << CategoryName;
834         Diag(CDeclChain->getLocation(), diag::note_previous_definition);
835         break;
836       }
837     }
838   }
839 
840   CDecl = ObjCCategoryDecl::Create(Context, CurContext, AtInterfaceLoc,
841                                    ClassLoc, CategoryLoc, CategoryName, IDecl);
842   // FIXME: PushOnScopeChains?
843   CurContext->addDecl(CDecl);
844 
845   if (NumProtoRefs) {
846     CDecl->setProtocolList((ObjCProtocolDecl**)ProtoRefs, NumProtoRefs,
847                            ProtoLocs, Context);
848     // Protocols in the class extension belong to the class.
849     if (CDecl->IsClassExtension())
850      IDecl->mergeClassExtensionProtocolList((ObjCProtocolDecl**)ProtoRefs,
851                                             NumProtoRefs, Context);
852   }
853 
854   CheckObjCDeclScope(CDecl);
855   return ActOnObjCContainerStartDefinition(CDecl);
856 }
857 
858 /// ActOnStartCategoryImplementation - Perform semantic checks on the
859 /// category implementation declaration and build an ObjCCategoryImplDecl
860 /// object.
861 Decl *Sema::ActOnStartCategoryImplementation(
862                       SourceLocation AtCatImplLoc,
863                       IdentifierInfo *ClassName, SourceLocation ClassLoc,
864                       IdentifierInfo *CatName, SourceLocation CatLoc) {
865   ObjCInterfaceDecl *IDecl = getObjCInterfaceDecl(ClassName, ClassLoc, true);
866   ObjCCategoryDecl *CatIDecl = 0;
867   if (IDecl && IDecl->hasDefinition()) {
868     CatIDecl = IDecl->FindCategoryDeclaration(CatName);
869     if (!CatIDecl) {
870       // Category @implementation with no corresponding @interface.
871       // Create and install one.
872       CatIDecl = ObjCCategoryDecl::Create(Context, CurContext, AtCatImplLoc,
873                                           ClassLoc, CatLoc,
874                                           CatName, IDecl);
875       CatIDecl->setImplicit();
876     }
877   }
878 
879   ObjCCategoryImplDecl *CDecl =
880     ObjCCategoryImplDecl::Create(Context, CurContext, CatName, IDecl,
881                                  ClassLoc, AtCatImplLoc, CatLoc);
882   /// Check that class of this category is already completely declared.
883   if (!IDecl) {
884     Diag(ClassLoc, diag::err_undef_interface) << ClassName;
885     CDecl->setInvalidDecl();
886   } else if (RequireCompleteType(ClassLoc, Context.getObjCInterfaceType(IDecl),
887                                  diag::err_undef_interface)) {
888     CDecl->setInvalidDecl();
889   }
890 
891   // FIXME: PushOnScopeChains?
892   CurContext->addDecl(CDecl);
893 
894   // If the interface is deprecated/unavailable, warn/error about it.
895   if (IDecl)
896     DiagnoseUseOfDecl(IDecl, ClassLoc);
897 
898   /// Check that CatName, category name, is not used in another implementation.
899   if (CatIDecl) {
900     if (CatIDecl->getImplementation()) {
901       Diag(ClassLoc, diag::err_dup_implementation_category) << ClassName
902         << CatName;
903       Diag(CatIDecl->getImplementation()->getLocation(),
904            diag::note_previous_definition);
905     } else {
906       CatIDecl->setImplementation(CDecl);
907       // Warn on implementating category of deprecated class under
908       // -Wdeprecated-implementations flag.
909       DiagnoseObjCImplementedDeprecations(*this,
910                                           dyn_cast<NamedDecl>(IDecl),
911                                           CDecl->getLocation(), 2);
912     }
913   }
914 
915   CheckObjCDeclScope(CDecl);
916   return ActOnObjCContainerStartDefinition(CDecl);
917 }
918 
919 Decl *Sema::ActOnStartClassImplementation(
920                       SourceLocation AtClassImplLoc,
921                       IdentifierInfo *ClassName, SourceLocation ClassLoc,
922                       IdentifierInfo *SuperClassname,
923                       SourceLocation SuperClassLoc) {
924   ObjCInterfaceDecl* IDecl = 0;
925   // Check for another declaration kind with the same name.
926   NamedDecl *PrevDecl
927     = LookupSingleName(TUScope, ClassName, ClassLoc, LookupOrdinaryName,
928                        ForRedeclaration);
929   if (PrevDecl && !isa<ObjCInterfaceDecl>(PrevDecl)) {
930     Diag(ClassLoc, diag::err_redefinition_different_kind) << ClassName;
931     Diag(PrevDecl->getLocation(), diag::note_previous_definition);
932   } else if ((IDecl = dyn_cast_or_null<ObjCInterfaceDecl>(PrevDecl))) {
933     RequireCompleteType(ClassLoc, Context.getObjCInterfaceType(IDecl),
934                         diag::warn_undef_interface);
935   } else {
936     // We did not find anything with the name ClassName; try to correct for
937     // typos in the class name.
938     ObjCInterfaceValidatorCCC Validator;
939     if (TypoCorrection Corrected = CorrectTypo(
940         DeclarationNameInfo(ClassName, ClassLoc), LookupOrdinaryName, TUScope,
941         NULL, Validator)) {
942       // Suggest the (potentially) correct interface name. However, put the
943       // fix-it hint itself in a separate note, since changing the name in
944       // the warning would make the fix-it change semantics.However, don't
945       // provide a code-modification hint or use the typo name for recovery,
946       // because this is just a warning. The program may actually be correct.
947       IDecl = Corrected.getCorrectionDeclAs<ObjCInterfaceDecl>();
948       DeclarationName CorrectedName = Corrected.getCorrection();
949       Diag(ClassLoc, diag::warn_undef_interface_suggest)
950         << ClassName << CorrectedName;
951       Diag(IDecl->getLocation(), diag::note_previous_decl) << CorrectedName
952         << FixItHint::CreateReplacement(ClassLoc, CorrectedName.getAsString());
953       IDecl = 0;
954     } else {
955       Diag(ClassLoc, diag::warn_undef_interface) << ClassName;
956     }
957   }
958 
959   // Check that super class name is valid class name
960   ObjCInterfaceDecl* SDecl = 0;
961   if (SuperClassname) {
962     // Check if a different kind of symbol declared in this scope.
963     PrevDecl = LookupSingleName(TUScope, SuperClassname, SuperClassLoc,
964                                 LookupOrdinaryName);
965     if (PrevDecl && !isa<ObjCInterfaceDecl>(PrevDecl)) {
966       Diag(SuperClassLoc, diag::err_redefinition_different_kind)
967         << SuperClassname;
968       Diag(PrevDecl->getLocation(), diag::note_previous_definition);
969     } else {
970       SDecl = dyn_cast_or_null<ObjCInterfaceDecl>(PrevDecl);
971       if (SDecl && !SDecl->hasDefinition())
972         SDecl = 0;
973       if (!SDecl)
974         Diag(SuperClassLoc, diag::err_undef_superclass)
975           << SuperClassname << ClassName;
976       else if (IDecl && !declaresSameEntity(IDecl->getSuperClass(), SDecl)) {
977         // This implementation and its interface do not have the same
978         // super class.
979         Diag(SuperClassLoc, diag::err_conflicting_super_class)
980           << SDecl->getDeclName();
981         Diag(SDecl->getLocation(), diag::note_previous_definition);
982       }
983     }
984   }
985 
986   if (!IDecl) {
987     // Legacy case of @implementation with no corresponding @interface.
988     // Build, chain & install the interface decl into the identifier.
989 
990     // FIXME: Do we support attributes on the @implementation? If so we should
991     // copy them over.
992     IDecl = ObjCInterfaceDecl::Create(Context, CurContext, AtClassImplLoc,
993                                       ClassName, /*PrevDecl=*/0, ClassLoc,
994                                       true);
995     IDecl->startDefinition();
996     if (SDecl) {
997       IDecl->setSuperClass(SDecl);
998       IDecl->setSuperClassLoc(SuperClassLoc);
999       IDecl->setEndOfDefinitionLoc(SuperClassLoc);
1000     } else {
1001       IDecl->setEndOfDefinitionLoc(ClassLoc);
1002     }
1003 
1004     PushOnScopeChains(IDecl, TUScope);
1005   } else {
1006     // Mark the interface as being completed, even if it was just as
1007     //   @class ....;
1008     // declaration; the user cannot reopen it.
1009     if (!IDecl->hasDefinition())
1010       IDecl->startDefinition();
1011   }
1012 
1013   ObjCImplementationDecl* IMPDecl =
1014     ObjCImplementationDecl::Create(Context, CurContext, IDecl, SDecl,
1015                                    ClassLoc, AtClassImplLoc);
1016 
1017   if (CheckObjCDeclScope(IMPDecl))
1018     return ActOnObjCContainerStartDefinition(IMPDecl);
1019 
1020   // Check that there is no duplicate implementation of this class.
1021   if (IDecl->getImplementation()) {
1022     // FIXME: Don't leak everything!
1023     Diag(ClassLoc, diag::err_dup_implementation_class) << ClassName;
1024     Diag(IDecl->getImplementation()->getLocation(),
1025          diag::note_previous_definition);
1026   } else { // add it to the list.
1027     IDecl->setImplementation(IMPDecl);
1028     PushOnScopeChains(IMPDecl, TUScope);
1029     // Warn on implementating deprecated class under
1030     // -Wdeprecated-implementations flag.
1031     DiagnoseObjCImplementedDeprecations(*this,
1032                                         dyn_cast<NamedDecl>(IDecl),
1033                                         IMPDecl->getLocation(), 1);
1034   }
1035   return ActOnObjCContainerStartDefinition(IMPDecl);
1036 }
1037 
1038 Sema::DeclGroupPtrTy
1039 Sema::ActOnFinishObjCImplementation(Decl *ObjCImpDecl, ArrayRef<Decl *> Decls) {
1040   SmallVector<Decl *, 64> DeclsInGroup;
1041   DeclsInGroup.reserve(Decls.size() + 1);
1042 
1043   for (unsigned i = 0, e = Decls.size(); i != e; ++i) {
1044     Decl *Dcl = Decls[i];
1045     if (!Dcl)
1046       continue;
1047     if (Dcl->getDeclContext()->isFileContext())
1048       Dcl->setTopLevelDeclInObjCContainer();
1049     DeclsInGroup.push_back(Dcl);
1050   }
1051 
1052   DeclsInGroup.push_back(ObjCImpDecl);
1053 
1054   return BuildDeclaratorGroup(DeclsInGroup.data(), DeclsInGroup.size(), false);
1055 }
1056 
1057 void Sema::CheckImplementationIvars(ObjCImplementationDecl *ImpDecl,
1058                                     ObjCIvarDecl **ivars, unsigned numIvars,
1059                                     SourceLocation RBrace) {
1060   assert(ImpDecl && "missing implementation decl");
1061   ObjCInterfaceDecl* IDecl = ImpDecl->getClassInterface();
1062   if (!IDecl)
1063     return;
1064   /// Check case of non-existing \@interface decl.
1065   /// (legacy objective-c \@implementation decl without an \@interface decl).
1066   /// Add implementations's ivar to the synthesize class's ivar list.
1067   if (IDecl->isImplicitInterfaceDecl()) {
1068     IDecl->setEndOfDefinitionLoc(RBrace);
1069     // Add ivar's to class's DeclContext.
1070     for (unsigned i = 0, e = numIvars; i != e; ++i) {
1071       ivars[i]->setLexicalDeclContext(ImpDecl);
1072       IDecl->makeDeclVisibleInContext(ivars[i]);
1073       ImpDecl->addDecl(ivars[i]);
1074     }
1075 
1076     return;
1077   }
1078   // If implementation has empty ivar list, just return.
1079   if (numIvars == 0)
1080     return;
1081 
1082   assert(ivars && "missing @implementation ivars");
1083   if (LangOpts.ObjCRuntime.isNonFragile()) {
1084     if (ImpDecl->getSuperClass())
1085       Diag(ImpDecl->getLocation(), diag::warn_on_superclass_use);
1086     for (unsigned i = 0; i < numIvars; i++) {
1087       ObjCIvarDecl* ImplIvar = ivars[i];
1088       if (const ObjCIvarDecl *ClsIvar =
1089             IDecl->getIvarDecl(ImplIvar->getIdentifier())) {
1090         Diag(ImplIvar->getLocation(), diag::err_duplicate_ivar_declaration);
1091         Diag(ClsIvar->getLocation(), diag::note_previous_definition);
1092         continue;
1093       }
1094       // Instance ivar to Implementation's DeclContext.
1095       ImplIvar->setLexicalDeclContext(ImpDecl);
1096       IDecl->makeDeclVisibleInContext(ImplIvar);
1097       ImpDecl->addDecl(ImplIvar);
1098     }
1099     return;
1100   }
1101   // Check interface's Ivar list against those in the implementation.
1102   // names and types must match.
1103   //
1104   unsigned j = 0;
1105   ObjCInterfaceDecl::ivar_iterator
1106     IVI = IDecl->ivar_begin(), IVE = IDecl->ivar_end();
1107   for (; numIvars > 0 && IVI != IVE; ++IVI) {
1108     ObjCIvarDecl* ImplIvar = ivars[j++];
1109     ObjCIvarDecl* ClsIvar = *IVI;
1110     assert (ImplIvar && "missing implementation ivar");
1111     assert (ClsIvar && "missing class ivar");
1112 
1113     // First, make sure the types match.
1114     if (!Context.hasSameType(ImplIvar->getType(), ClsIvar->getType())) {
1115       Diag(ImplIvar->getLocation(), diag::err_conflicting_ivar_type)
1116         << ImplIvar->getIdentifier()
1117         << ImplIvar->getType() << ClsIvar->getType();
1118       Diag(ClsIvar->getLocation(), diag::note_previous_definition);
1119     } else if (ImplIvar->isBitField() && ClsIvar->isBitField() &&
1120                ImplIvar->getBitWidthValue(Context) !=
1121                ClsIvar->getBitWidthValue(Context)) {
1122       Diag(ImplIvar->getBitWidth()->getLocStart(),
1123            diag::err_conflicting_ivar_bitwidth) << ImplIvar->getIdentifier();
1124       Diag(ClsIvar->getBitWidth()->getLocStart(),
1125            diag::note_previous_definition);
1126     }
1127     // Make sure the names are identical.
1128     if (ImplIvar->getIdentifier() != ClsIvar->getIdentifier()) {
1129       Diag(ImplIvar->getLocation(), diag::err_conflicting_ivar_name)
1130         << ImplIvar->getIdentifier() << ClsIvar->getIdentifier();
1131       Diag(ClsIvar->getLocation(), diag::note_previous_definition);
1132     }
1133     --numIvars;
1134   }
1135 
1136   if (numIvars > 0)
1137     Diag(ivars[j]->getLocation(), diag::err_inconsistant_ivar_count);
1138   else if (IVI != IVE)
1139     Diag(IVI->getLocation(), diag::err_inconsistant_ivar_count);
1140 }
1141 
1142 void Sema::WarnUndefinedMethod(SourceLocation ImpLoc, ObjCMethodDecl *method,
1143                                bool &IncompleteImpl, unsigned DiagID) {
1144   // No point warning no definition of method which is 'unavailable'.
1145   if (method->hasAttr<UnavailableAttr>())
1146     return;
1147   if (!IncompleteImpl) {
1148     Diag(ImpLoc, diag::warn_incomplete_impl);
1149     IncompleteImpl = true;
1150   }
1151   if (DiagID == diag::warn_unimplemented_protocol_method)
1152     Diag(ImpLoc, DiagID) << method->getDeclName();
1153   else
1154     Diag(method->getLocation(), DiagID) << method->getDeclName();
1155 }
1156 
1157 /// Determines if type B can be substituted for type A.  Returns true if we can
1158 /// guarantee that anything that the user will do to an object of type A can
1159 /// also be done to an object of type B.  This is trivially true if the two
1160 /// types are the same, or if B is a subclass of A.  It becomes more complex
1161 /// in cases where protocols are involved.
1162 ///
1163 /// Object types in Objective-C describe the minimum requirements for an
1164 /// object, rather than providing a complete description of a type.  For
1165 /// example, if A is a subclass of B, then B* may refer to an instance of A.
1166 /// The principle of substitutability means that we may use an instance of A
1167 /// anywhere that we may use an instance of B - it will implement all of the
1168 /// ivars of B and all of the methods of B.
1169 ///
1170 /// This substitutability is important when type checking methods, because
1171 /// the implementation may have stricter type definitions than the interface.
1172 /// The interface specifies minimum requirements, but the implementation may
1173 /// have more accurate ones.  For example, a method may privately accept
1174 /// instances of B, but only publish that it accepts instances of A.  Any
1175 /// object passed to it will be type checked against B, and so will implicitly
1176 /// by a valid A*.  Similarly, a method may return a subclass of the class that
1177 /// it is declared as returning.
1178 ///
1179 /// This is most important when considering subclassing.  A method in a
1180 /// subclass must accept any object as an argument that its superclass's
1181 /// implementation accepts.  It may, however, accept a more general type
1182 /// without breaking substitutability (i.e. you can still use the subclass
1183 /// anywhere that you can use the superclass, but not vice versa).  The
1184 /// converse requirement applies to return types: the return type for a
1185 /// subclass method must be a valid object of the kind that the superclass
1186 /// advertises, but it may be specified more accurately.  This avoids the need
1187 /// for explicit down-casting by callers.
1188 ///
1189 /// Note: This is a stricter requirement than for assignment.
1190 static bool isObjCTypeSubstitutable(ASTContext &Context,
1191                                     const ObjCObjectPointerType *A,
1192                                     const ObjCObjectPointerType *B,
1193                                     bool rejectId) {
1194   // Reject a protocol-unqualified id.
1195   if (rejectId && B->isObjCIdType()) return false;
1196 
1197   // If B is a qualified id, then A must also be a qualified id and it must
1198   // implement all of the protocols in B.  It may not be a qualified class.
1199   // For example, MyClass<A> can be assigned to id<A>, but MyClass<A> is a
1200   // stricter definition so it is not substitutable for id<A>.
1201   if (B->isObjCQualifiedIdType()) {
1202     return A->isObjCQualifiedIdType() &&
1203            Context.ObjCQualifiedIdTypesAreCompatible(QualType(A, 0),
1204                                                      QualType(B,0),
1205                                                      false);
1206   }
1207 
1208   /*
1209   // id is a special type that bypasses type checking completely.  We want a
1210   // warning when it is used in one place but not another.
1211   if (C.isObjCIdType(A) || C.isObjCIdType(B)) return false;
1212 
1213 
1214   // If B is a qualified id, then A must also be a qualified id (which it isn't
1215   // if we've got this far)
1216   if (B->isObjCQualifiedIdType()) return false;
1217   */
1218 
1219   // Now we know that A and B are (potentially-qualified) class types.  The
1220   // normal rules for assignment apply.
1221   return Context.canAssignObjCInterfaces(A, B);
1222 }
1223 
1224 static SourceRange getTypeRange(TypeSourceInfo *TSI) {
1225   return (TSI ? TSI->getTypeLoc().getSourceRange() : SourceRange());
1226 }
1227 
1228 static bool CheckMethodOverrideReturn(Sema &S,
1229                                       ObjCMethodDecl *MethodImpl,
1230                                       ObjCMethodDecl *MethodDecl,
1231                                       bool IsProtocolMethodDecl,
1232                                       bool IsOverridingMode,
1233                                       bool Warn) {
1234   if (IsProtocolMethodDecl &&
1235       (MethodDecl->getObjCDeclQualifier() !=
1236        MethodImpl->getObjCDeclQualifier())) {
1237     if (Warn) {
1238         S.Diag(MethodImpl->getLocation(),
1239                (IsOverridingMode ?
1240                  diag::warn_conflicting_overriding_ret_type_modifiers
1241                  : diag::warn_conflicting_ret_type_modifiers))
1242           << MethodImpl->getDeclName()
1243           << getTypeRange(MethodImpl->getResultTypeSourceInfo());
1244         S.Diag(MethodDecl->getLocation(), diag::note_previous_declaration)
1245           << getTypeRange(MethodDecl->getResultTypeSourceInfo());
1246     }
1247     else
1248       return false;
1249   }
1250 
1251   if (S.Context.hasSameUnqualifiedType(MethodImpl->getResultType(),
1252                                        MethodDecl->getResultType()))
1253     return true;
1254   if (!Warn)
1255     return false;
1256 
1257   unsigned DiagID =
1258     IsOverridingMode ? diag::warn_conflicting_overriding_ret_types
1259                      : diag::warn_conflicting_ret_types;
1260 
1261   // Mismatches between ObjC pointers go into a different warning
1262   // category, and sometimes they're even completely whitelisted.
1263   if (const ObjCObjectPointerType *ImplPtrTy =
1264         MethodImpl->getResultType()->getAs<ObjCObjectPointerType>()) {
1265     if (const ObjCObjectPointerType *IfacePtrTy =
1266           MethodDecl->getResultType()->getAs<ObjCObjectPointerType>()) {
1267       // Allow non-matching return types as long as they don't violate
1268       // the principle of substitutability.  Specifically, we permit
1269       // return types that are subclasses of the declared return type,
1270       // or that are more-qualified versions of the declared type.
1271       if (isObjCTypeSubstitutable(S.Context, IfacePtrTy, ImplPtrTy, false))
1272         return false;
1273 
1274       DiagID =
1275         IsOverridingMode ? diag::warn_non_covariant_overriding_ret_types
1276                           : diag::warn_non_covariant_ret_types;
1277     }
1278   }
1279 
1280   S.Diag(MethodImpl->getLocation(), DiagID)
1281     << MethodImpl->getDeclName()
1282     << MethodDecl->getResultType()
1283     << MethodImpl->getResultType()
1284     << getTypeRange(MethodImpl->getResultTypeSourceInfo());
1285   S.Diag(MethodDecl->getLocation(),
1286          IsOverridingMode ? diag::note_previous_declaration
1287                           : diag::note_previous_definition)
1288     << getTypeRange(MethodDecl->getResultTypeSourceInfo());
1289   return false;
1290 }
1291 
1292 static bool CheckMethodOverrideParam(Sema &S,
1293                                      ObjCMethodDecl *MethodImpl,
1294                                      ObjCMethodDecl *MethodDecl,
1295                                      ParmVarDecl *ImplVar,
1296                                      ParmVarDecl *IfaceVar,
1297                                      bool IsProtocolMethodDecl,
1298                                      bool IsOverridingMode,
1299                                      bool Warn) {
1300   if (IsProtocolMethodDecl &&
1301       (ImplVar->getObjCDeclQualifier() !=
1302        IfaceVar->getObjCDeclQualifier())) {
1303     if (Warn) {
1304       if (IsOverridingMode)
1305         S.Diag(ImplVar->getLocation(),
1306                diag::warn_conflicting_overriding_param_modifiers)
1307             << getTypeRange(ImplVar->getTypeSourceInfo())
1308             << MethodImpl->getDeclName();
1309       else S.Diag(ImplVar->getLocation(),
1310              diag::warn_conflicting_param_modifiers)
1311           << getTypeRange(ImplVar->getTypeSourceInfo())
1312           << MethodImpl->getDeclName();
1313       S.Diag(IfaceVar->getLocation(), diag::note_previous_declaration)
1314           << getTypeRange(IfaceVar->getTypeSourceInfo());
1315     }
1316     else
1317       return false;
1318   }
1319 
1320   QualType ImplTy = ImplVar->getType();
1321   QualType IfaceTy = IfaceVar->getType();
1322 
1323   if (S.Context.hasSameUnqualifiedType(ImplTy, IfaceTy))
1324     return true;
1325 
1326   if (!Warn)
1327     return false;
1328   unsigned DiagID =
1329     IsOverridingMode ? diag::warn_conflicting_overriding_param_types
1330                      : diag::warn_conflicting_param_types;
1331 
1332   // Mismatches between ObjC pointers go into a different warning
1333   // category, and sometimes they're even completely whitelisted.
1334   if (const ObjCObjectPointerType *ImplPtrTy =
1335         ImplTy->getAs<ObjCObjectPointerType>()) {
1336     if (const ObjCObjectPointerType *IfacePtrTy =
1337           IfaceTy->getAs<ObjCObjectPointerType>()) {
1338       // Allow non-matching argument types as long as they don't
1339       // violate the principle of substitutability.  Specifically, the
1340       // implementation must accept any objects that the superclass
1341       // accepts, however it may also accept others.
1342       if (isObjCTypeSubstitutable(S.Context, ImplPtrTy, IfacePtrTy, true))
1343         return false;
1344 
1345       DiagID =
1346       IsOverridingMode ? diag::warn_non_contravariant_overriding_param_types
1347                        :  diag::warn_non_contravariant_param_types;
1348     }
1349   }
1350 
1351   S.Diag(ImplVar->getLocation(), DiagID)
1352     << getTypeRange(ImplVar->getTypeSourceInfo())
1353     << MethodImpl->getDeclName() << IfaceTy << ImplTy;
1354   S.Diag(IfaceVar->getLocation(),
1355          (IsOverridingMode ? diag::note_previous_declaration
1356                         : diag::note_previous_definition))
1357     << getTypeRange(IfaceVar->getTypeSourceInfo());
1358   return false;
1359 }
1360 
1361 /// In ARC, check whether the conventional meanings of the two methods
1362 /// match.  If they don't, it's a hard error.
1363 static bool checkMethodFamilyMismatch(Sema &S, ObjCMethodDecl *impl,
1364                                       ObjCMethodDecl *decl) {
1365   ObjCMethodFamily implFamily = impl->getMethodFamily();
1366   ObjCMethodFamily declFamily = decl->getMethodFamily();
1367   if (implFamily == declFamily) return false;
1368 
1369   // Since conventions are sorted by selector, the only possibility is
1370   // that the types differ enough to cause one selector or the other
1371   // to fall out of the family.
1372   assert(implFamily == OMF_None || declFamily == OMF_None);
1373 
1374   // No further diagnostics required on invalid declarations.
1375   if (impl->isInvalidDecl() || decl->isInvalidDecl()) return true;
1376 
1377   const ObjCMethodDecl *unmatched = impl;
1378   ObjCMethodFamily family = declFamily;
1379   unsigned errorID = diag::err_arc_lost_method_convention;
1380   unsigned noteID = diag::note_arc_lost_method_convention;
1381   if (declFamily == OMF_None) {
1382     unmatched = decl;
1383     family = implFamily;
1384     errorID = diag::err_arc_gained_method_convention;
1385     noteID = diag::note_arc_gained_method_convention;
1386   }
1387 
1388   // Indexes into a %select clause in the diagnostic.
1389   enum FamilySelector {
1390     F_alloc, F_copy, F_mutableCopy = F_copy, F_init, F_new
1391   };
1392   FamilySelector familySelector = FamilySelector();
1393 
1394   switch (family) {
1395   case OMF_None: llvm_unreachable("logic error, no method convention");
1396   case OMF_retain:
1397   case OMF_release:
1398   case OMF_autorelease:
1399   case OMF_dealloc:
1400   case OMF_finalize:
1401   case OMF_retainCount:
1402   case OMF_self:
1403   case OMF_performSelector:
1404     // Mismatches for these methods don't change ownership
1405     // conventions, so we don't care.
1406     return false;
1407 
1408   case OMF_init: familySelector = F_init; break;
1409   case OMF_alloc: familySelector = F_alloc; break;
1410   case OMF_copy: familySelector = F_copy; break;
1411   case OMF_mutableCopy: familySelector = F_mutableCopy; break;
1412   case OMF_new: familySelector = F_new; break;
1413   }
1414 
1415   enum ReasonSelector { R_NonObjectReturn, R_UnrelatedReturn };
1416   ReasonSelector reasonSelector;
1417 
1418   // The only reason these methods don't fall within their families is
1419   // due to unusual result types.
1420   if (unmatched->getResultType()->isObjCObjectPointerType()) {
1421     reasonSelector = R_UnrelatedReturn;
1422   } else {
1423     reasonSelector = R_NonObjectReturn;
1424   }
1425 
1426   S.Diag(impl->getLocation(), errorID) << familySelector << reasonSelector;
1427   S.Diag(decl->getLocation(), noteID) << familySelector << reasonSelector;
1428 
1429   return true;
1430 }
1431 
1432 void Sema::WarnConflictingTypedMethods(ObjCMethodDecl *ImpMethodDecl,
1433                                        ObjCMethodDecl *MethodDecl,
1434                                        bool IsProtocolMethodDecl) {
1435   if (getLangOpts().ObjCAutoRefCount &&
1436       checkMethodFamilyMismatch(*this, ImpMethodDecl, MethodDecl))
1437     return;
1438 
1439   CheckMethodOverrideReturn(*this, ImpMethodDecl, MethodDecl,
1440                             IsProtocolMethodDecl, false,
1441                             true);
1442 
1443   for (ObjCMethodDecl::param_iterator IM = ImpMethodDecl->param_begin(),
1444        IF = MethodDecl->param_begin(), EM = ImpMethodDecl->param_end(),
1445        EF = MethodDecl->param_end();
1446        IM != EM && IF != EF; ++IM, ++IF) {
1447     CheckMethodOverrideParam(*this, ImpMethodDecl, MethodDecl, *IM, *IF,
1448                              IsProtocolMethodDecl, false, true);
1449   }
1450 
1451   if (ImpMethodDecl->isVariadic() != MethodDecl->isVariadic()) {
1452     Diag(ImpMethodDecl->getLocation(),
1453          diag::warn_conflicting_variadic);
1454     Diag(MethodDecl->getLocation(), diag::note_previous_declaration);
1455   }
1456 }
1457 
1458 void Sema::CheckConflictingOverridingMethod(ObjCMethodDecl *Method,
1459                                        ObjCMethodDecl *Overridden,
1460                                        bool IsProtocolMethodDecl) {
1461 
1462   CheckMethodOverrideReturn(*this, Method, Overridden,
1463                             IsProtocolMethodDecl, true,
1464                             true);
1465 
1466   for (ObjCMethodDecl::param_iterator IM = Method->param_begin(),
1467        IF = Overridden->param_begin(), EM = Method->param_end(),
1468        EF = Overridden->param_end();
1469        IM != EM && IF != EF; ++IM, ++IF) {
1470     CheckMethodOverrideParam(*this, Method, Overridden, *IM, *IF,
1471                              IsProtocolMethodDecl, true, true);
1472   }
1473 
1474   if (Method->isVariadic() != Overridden->isVariadic()) {
1475     Diag(Method->getLocation(),
1476          diag::warn_conflicting_overriding_variadic);
1477     Diag(Overridden->getLocation(), diag::note_previous_declaration);
1478   }
1479 }
1480 
1481 /// WarnExactTypedMethods - This routine issues a warning if method
1482 /// implementation declaration matches exactly that of its declaration.
1483 void Sema::WarnExactTypedMethods(ObjCMethodDecl *ImpMethodDecl,
1484                                  ObjCMethodDecl *MethodDecl,
1485                                  bool IsProtocolMethodDecl) {
1486   // don't issue warning when protocol method is optional because primary
1487   // class is not required to implement it and it is safe for protocol
1488   // to implement it.
1489   if (MethodDecl->getImplementationControl() == ObjCMethodDecl::Optional)
1490     return;
1491   // don't issue warning when primary class's method is
1492   // depecated/unavailable.
1493   if (MethodDecl->hasAttr<UnavailableAttr>() ||
1494       MethodDecl->hasAttr<DeprecatedAttr>())
1495     return;
1496 
1497   bool match = CheckMethodOverrideReturn(*this, ImpMethodDecl, MethodDecl,
1498                                       IsProtocolMethodDecl, false, false);
1499   if (match)
1500     for (ObjCMethodDecl::param_iterator IM = ImpMethodDecl->param_begin(),
1501          IF = MethodDecl->param_begin(), EM = ImpMethodDecl->param_end(),
1502          EF = MethodDecl->param_end();
1503          IM != EM && IF != EF; ++IM, ++IF) {
1504       match = CheckMethodOverrideParam(*this, ImpMethodDecl, MethodDecl,
1505                                        *IM, *IF,
1506                                        IsProtocolMethodDecl, false, false);
1507       if (!match)
1508         break;
1509     }
1510   if (match)
1511     match = (ImpMethodDecl->isVariadic() == MethodDecl->isVariadic());
1512   if (match)
1513     match = !(MethodDecl->isClassMethod() &&
1514               MethodDecl->getSelector() == GetNullarySelector("load", Context));
1515 
1516   if (match) {
1517     Diag(ImpMethodDecl->getLocation(),
1518          diag::warn_category_method_impl_match);
1519     Diag(MethodDecl->getLocation(), diag::note_method_declared_at)
1520       << MethodDecl->getDeclName();
1521   }
1522 }
1523 
1524 /// FIXME: Type hierarchies in Objective-C can be deep. We could most likely
1525 /// improve the efficiency of selector lookups and type checking by associating
1526 /// with each protocol / interface / category the flattened instance tables. If
1527 /// we used an immutable set to keep the table then it wouldn't add significant
1528 /// memory cost and it would be handy for lookups.
1529 
1530 /// CheckProtocolMethodDefs - This routine checks unimplemented methods
1531 /// Declared in protocol, and those referenced by it.
1532 void Sema::CheckProtocolMethodDefs(SourceLocation ImpLoc,
1533                                    ObjCProtocolDecl *PDecl,
1534                                    bool& IncompleteImpl,
1535                                    const SelectorSet &InsMap,
1536                                    const SelectorSet &ClsMap,
1537                                    ObjCContainerDecl *CDecl) {
1538   ObjCCategoryDecl *C = dyn_cast<ObjCCategoryDecl>(CDecl);
1539   ObjCInterfaceDecl *IDecl = C ? C->getClassInterface()
1540                                : dyn_cast<ObjCInterfaceDecl>(CDecl);
1541   assert (IDecl && "CheckProtocolMethodDefs - IDecl is null");
1542 
1543   ObjCInterfaceDecl *Super = IDecl->getSuperClass();
1544   ObjCInterfaceDecl *NSIDecl = 0;
1545   if (getLangOpts().ObjCRuntime.isNeXTFamily()) {
1546     // check to see if class implements forwardInvocation method and objects
1547     // of this class are derived from 'NSProxy' so that to forward requests
1548     // from one object to another.
1549     // Under such conditions, which means that every method possible is
1550     // implemented in the class, we should not issue "Method definition not
1551     // found" warnings.
1552     // FIXME: Use a general GetUnarySelector method for this.
1553     IdentifierInfo* II = &Context.Idents.get("forwardInvocation");
1554     Selector fISelector = Context.Selectors.getSelector(1, &II);
1555     if (InsMap.count(fISelector))
1556       // Is IDecl derived from 'NSProxy'? If so, no instance methods
1557       // need be implemented in the implementation.
1558       NSIDecl = IDecl->lookupInheritedClass(&Context.Idents.get("NSProxy"));
1559   }
1560 
1561   // If a method lookup fails locally we still need to look and see if
1562   // the method was implemented by a base class or an inherited
1563   // protocol. This lookup is slow, but occurs rarely in correct code
1564   // and otherwise would terminate in a warning.
1565 
1566   // check unimplemented instance methods.
1567   if (!NSIDecl)
1568     for (ObjCProtocolDecl::instmeth_iterator I = PDecl->instmeth_begin(),
1569          E = PDecl->instmeth_end(); I != E; ++I) {
1570       ObjCMethodDecl *method = *I;
1571       if (method->getImplementationControl() != ObjCMethodDecl::Optional &&
1572           !method->isSynthesized() && !InsMap.count(method->getSelector()) &&
1573           (!Super ||
1574            !Super->lookupInstanceMethod(method->getSelector()))) {
1575             // If a method is not implemented in the category implementation but
1576             // has been declared in its primary class, superclass,
1577             // or in one of their protocols, no need to issue the warning.
1578             // This is because method will be implemented in the primary class
1579             // or one of its super class implementation.
1580 
1581             // Ugly, but necessary. Method declared in protcol might have
1582             // have been synthesized due to a property declared in the class which
1583             // uses the protocol.
1584             if (ObjCMethodDecl *MethodInClass =
1585                   IDecl->lookupInstanceMethod(method->getSelector(),
1586                                               true /*shallowCategoryLookup*/))
1587               if (C || MethodInClass->isSynthesized())
1588                 continue;
1589             unsigned DIAG = diag::warn_unimplemented_protocol_method;
1590             if (Diags.getDiagnosticLevel(DIAG, ImpLoc)
1591                 != DiagnosticsEngine::Ignored) {
1592               WarnUndefinedMethod(ImpLoc, method, IncompleteImpl, DIAG);
1593               Diag(method->getLocation(), diag::note_method_declared_at)
1594                 << method->getDeclName();
1595               Diag(CDecl->getLocation(), diag::note_required_for_protocol_at)
1596                 << PDecl->getDeclName();
1597             }
1598           }
1599     }
1600   // check unimplemented class methods
1601   for (ObjCProtocolDecl::classmeth_iterator
1602          I = PDecl->classmeth_begin(), E = PDecl->classmeth_end();
1603        I != E; ++I) {
1604     ObjCMethodDecl *method = *I;
1605     if (method->getImplementationControl() != ObjCMethodDecl::Optional &&
1606         !ClsMap.count(method->getSelector()) &&
1607         (!Super || !Super->lookupClassMethod(method->getSelector()))) {
1608       // See above comment for instance method lookups.
1609       if (C && IDecl->lookupClassMethod(method->getSelector(),
1610                                         true /*shallowCategoryLookup*/))
1611         continue;
1612       unsigned DIAG = diag::warn_unimplemented_protocol_method;
1613       if (Diags.getDiagnosticLevel(DIAG, ImpLoc) !=
1614             DiagnosticsEngine::Ignored) {
1615         WarnUndefinedMethod(ImpLoc, method, IncompleteImpl, DIAG);
1616         Diag(method->getLocation(), diag::note_method_declared_at)
1617           << method->getDeclName();
1618         Diag(IDecl->getLocation(), diag::note_required_for_protocol_at) <<
1619           PDecl->getDeclName();
1620       }
1621     }
1622   }
1623   // Check on this protocols's referenced protocols, recursively.
1624   for (ObjCProtocolDecl::protocol_iterator PI = PDecl->protocol_begin(),
1625        E = PDecl->protocol_end(); PI != E; ++PI)
1626     CheckProtocolMethodDefs(ImpLoc, *PI, IncompleteImpl, InsMap, ClsMap, CDecl);
1627 }
1628 
1629 /// MatchAllMethodDeclarations - Check methods declared in interface
1630 /// or protocol against those declared in their implementations.
1631 ///
1632 void Sema::MatchAllMethodDeclarations(const SelectorSet &InsMap,
1633                                       const SelectorSet &ClsMap,
1634                                       SelectorSet &InsMapSeen,
1635                                       SelectorSet &ClsMapSeen,
1636                                       ObjCImplDecl* IMPDecl,
1637                                       ObjCContainerDecl* CDecl,
1638                                       bool &IncompleteImpl,
1639                                       bool ImmediateClass,
1640                                       bool WarnCategoryMethodImpl) {
1641   // Check and see if instance methods in class interface have been
1642   // implemented in the implementation class. If so, their types match.
1643   for (ObjCInterfaceDecl::instmeth_iterator I = CDecl->instmeth_begin(),
1644        E = CDecl->instmeth_end(); I != E; ++I) {
1645     if (InsMapSeen.count((*I)->getSelector()))
1646         continue;
1647     InsMapSeen.insert((*I)->getSelector());
1648     if (!(*I)->isSynthesized() &&
1649         !InsMap.count((*I)->getSelector())) {
1650       if (ImmediateClass)
1651         WarnUndefinedMethod(IMPDecl->getLocation(), *I, IncompleteImpl,
1652                             diag::note_undef_method_impl);
1653       continue;
1654     } else {
1655       ObjCMethodDecl *ImpMethodDecl =
1656         IMPDecl->getInstanceMethod((*I)->getSelector());
1657       assert(CDecl->getInstanceMethod((*I)->getSelector()) &&
1658              "Expected to find the method through lookup as well");
1659       ObjCMethodDecl *MethodDecl = *I;
1660       // ImpMethodDecl may be null as in a @dynamic property.
1661       if (ImpMethodDecl) {
1662         if (!WarnCategoryMethodImpl)
1663           WarnConflictingTypedMethods(ImpMethodDecl, MethodDecl,
1664                                       isa<ObjCProtocolDecl>(CDecl));
1665         else if (!MethodDecl->isSynthesized())
1666           WarnExactTypedMethods(ImpMethodDecl, MethodDecl,
1667                                 isa<ObjCProtocolDecl>(CDecl));
1668       }
1669     }
1670   }
1671 
1672   // Check and see if class methods in class interface have been
1673   // implemented in the implementation class. If so, their types match.
1674    for (ObjCInterfaceDecl::classmeth_iterator
1675        I = CDecl->classmeth_begin(), E = CDecl->classmeth_end(); I != E; ++I) {
1676      if (ClsMapSeen.count((*I)->getSelector()))
1677        continue;
1678      ClsMapSeen.insert((*I)->getSelector());
1679     if (!ClsMap.count((*I)->getSelector())) {
1680       if (ImmediateClass)
1681         WarnUndefinedMethod(IMPDecl->getLocation(), *I, IncompleteImpl,
1682                             diag::note_undef_method_impl);
1683     } else {
1684       ObjCMethodDecl *ImpMethodDecl =
1685         IMPDecl->getClassMethod((*I)->getSelector());
1686       assert(CDecl->getClassMethod((*I)->getSelector()) &&
1687              "Expected to find the method through lookup as well");
1688       ObjCMethodDecl *MethodDecl = *I;
1689       if (!WarnCategoryMethodImpl)
1690         WarnConflictingTypedMethods(ImpMethodDecl, MethodDecl,
1691                                     isa<ObjCProtocolDecl>(CDecl));
1692       else
1693         WarnExactTypedMethods(ImpMethodDecl, MethodDecl,
1694                               isa<ObjCProtocolDecl>(CDecl));
1695     }
1696   }
1697 
1698   if (ObjCInterfaceDecl *I = dyn_cast<ObjCInterfaceDecl> (CDecl)) {
1699     // Also methods in class extensions need be looked at next.
1700     for (const ObjCCategoryDecl *ClsExtDecl = I->getFirstClassExtension();
1701          ClsExtDecl; ClsExtDecl = ClsExtDecl->getNextClassExtension())
1702       MatchAllMethodDeclarations(InsMap, ClsMap, InsMapSeen, ClsMapSeen,
1703                                  IMPDecl,
1704                                  const_cast<ObjCCategoryDecl *>(ClsExtDecl),
1705                                  IncompleteImpl, false,
1706                                  WarnCategoryMethodImpl);
1707 
1708     // Check for any implementation of a methods declared in protocol.
1709     for (ObjCInterfaceDecl::all_protocol_iterator
1710           PI = I->all_referenced_protocol_begin(),
1711           E = I->all_referenced_protocol_end(); PI != E; ++PI)
1712       MatchAllMethodDeclarations(InsMap, ClsMap, InsMapSeen, ClsMapSeen,
1713                                  IMPDecl,
1714                                  (*PI), IncompleteImpl, false,
1715                                  WarnCategoryMethodImpl);
1716 
1717     // FIXME. For now, we are not checking for extact match of methods
1718     // in category implementation and its primary class's super class.
1719     if (!WarnCategoryMethodImpl && I->getSuperClass())
1720       MatchAllMethodDeclarations(InsMap, ClsMap, InsMapSeen, ClsMapSeen,
1721                                  IMPDecl,
1722                                  I->getSuperClass(), IncompleteImpl, false);
1723   }
1724 }
1725 
1726 /// CheckCategoryVsClassMethodMatches - Checks that methods implemented in
1727 /// category matches with those implemented in its primary class and
1728 /// warns each time an exact match is found.
1729 void Sema::CheckCategoryVsClassMethodMatches(
1730                                   ObjCCategoryImplDecl *CatIMPDecl) {
1731   SelectorSet InsMap, ClsMap;
1732 
1733   for (ObjCImplementationDecl::instmeth_iterator
1734        I = CatIMPDecl->instmeth_begin(),
1735        E = CatIMPDecl->instmeth_end(); I!=E; ++I)
1736     InsMap.insert((*I)->getSelector());
1737 
1738   for (ObjCImplementationDecl::classmeth_iterator
1739        I = CatIMPDecl->classmeth_begin(),
1740        E = CatIMPDecl->classmeth_end(); I != E; ++I)
1741     ClsMap.insert((*I)->getSelector());
1742   if (InsMap.empty() && ClsMap.empty())
1743     return;
1744 
1745   // Get category's primary class.
1746   ObjCCategoryDecl *CatDecl = CatIMPDecl->getCategoryDecl();
1747   if (!CatDecl)
1748     return;
1749   ObjCInterfaceDecl *IDecl = CatDecl->getClassInterface();
1750   if (!IDecl)
1751     return;
1752   SelectorSet InsMapSeen, ClsMapSeen;
1753   bool IncompleteImpl = false;
1754   MatchAllMethodDeclarations(InsMap, ClsMap, InsMapSeen, ClsMapSeen,
1755                              CatIMPDecl, IDecl,
1756                              IncompleteImpl, false,
1757                              true /*WarnCategoryMethodImpl*/);
1758 }
1759 
1760 void Sema::ImplMethodsVsClassMethods(Scope *S, ObjCImplDecl* IMPDecl,
1761                                      ObjCContainerDecl* CDecl,
1762                                      bool IncompleteImpl) {
1763   SelectorSet InsMap;
1764   // Check and see if instance methods in class interface have been
1765   // implemented in the implementation class.
1766   for (ObjCImplementationDecl::instmeth_iterator
1767          I = IMPDecl->instmeth_begin(), E = IMPDecl->instmeth_end(); I!=E; ++I)
1768     InsMap.insert((*I)->getSelector());
1769 
1770   // Check and see if properties declared in the interface have either 1)
1771   // an implementation or 2) there is a @synthesize/@dynamic implementation
1772   // of the property in the @implementation.
1773   if (const ObjCInterfaceDecl *IDecl = dyn_cast<ObjCInterfaceDecl>(CDecl))
1774     if  (!(LangOpts.ObjCDefaultSynthProperties &&
1775            LangOpts.ObjCRuntime.isNonFragile()) ||
1776          IDecl->isObjCRequiresPropertyDefs())
1777       DiagnoseUnimplementedProperties(S, IMPDecl, CDecl, InsMap);
1778 
1779   SelectorSet ClsMap;
1780   for (ObjCImplementationDecl::classmeth_iterator
1781        I = IMPDecl->classmeth_begin(),
1782        E = IMPDecl->classmeth_end(); I != E; ++I)
1783     ClsMap.insert((*I)->getSelector());
1784 
1785   // Check for type conflict of methods declared in a class/protocol and
1786   // its implementation; if any.
1787   SelectorSet InsMapSeen, ClsMapSeen;
1788   MatchAllMethodDeclarations(InsMap, ClsMap, InsMapSeen, ClsMapSeen,
1789                              IMPDecl, CDecl,
1790                              IncompleteImpl, true);
1791 
1792   // check all methods implemented in category against those declared
1793   // in its primary class.
1794   if (ObjCCategoryImplDecl *CatDecl =
1795         dyn_cast<ObjCCategoryImplDecl>(IMPDecl))
1796     CheckCategoryVsClassMethodMatches(CatDecl);
1797 
1798   // Check the protocol list for unimplemented methods in the @implementation
1799   // class.
1800   // Check and see if class methods in class interface have been
1801   // implemented in the implementation class.
1802 
1803   if (ObjCInterfaceDecl *I = dyn_cast<ObjCInterfaceDecl> (CDecl)) {
1804     for (ObjCInterfaceDecl::all_protocol_iterator
1805           PI = I->all_referenced_protocol_begin(),
1806           E = I->all_referenced_protocol_end(); PI != E; ++PI)
1807       CheckProtocolMethodDefs(IMPDecl->getLocation(), *PI, IncompleteImpl,
1808                               InsMap, ClsMap, I);
1809     // Check class extensions (unnamed categories)
1810     for (const ObjCCategoryDecl *Categories = I->getFirstClassExtension();
1811          Categories; Categories = Categories->getNextClassExtension())
1812       ImplMethodsVsClassMethods(S, IMPDecl,
1813                                 const_cast<ObjCCategoryDecl*>(Categories),
1814                                 IncompleteImpl);
1815   } else if (ObjCCategoryDecl *C = dyn_cast<ObjCCategoryDecl>(CDecl)) {
1816     // For extended class, unimplemented methods in its protocols will
1817     // be reported in the primary class.
1818     if (!C->IsClassExtension()) {
1819       for (ObjCCategoryDecl::protocol_iterator PI = C->protocol_begin(),
1820            E = C->protocol_end(); PI != E; ++PI)
1821         CheckProtocolMethodDefs(IMPDecl->getLocation(), *PI, IncompleteImpl,
1822                                 InsMap, ClsMap, CDecl);
1823       // Report unimplemented properties in the category as well.
1824       // When reporting on missing setter/getters, do not report when
1825       // setter/getter is implemented in category's primary class
1826       // implementation.
1827       if (ObjCInterfaceDecl *ID = C->getClassInterface())
1828         if (ObjCImplDecl *IMP = ID->getImplementation()) {
1829           for (ObjCImplementationDecl::instmeth_iterator
1830                I = IMP->instmeth_begin(), E = IMP->instmeth_end(); I!=E; ++I)
1831             InsMap.insert((*I)->getSelector());
1832         }
1833       DiagnoseUnimplementedProperties(S, IMPDecl, CDecl, InsMap);
1834     }
1835   } else
1836     llvm_unreachable("invalid ObjCContainerDecl type.");
1837 }
1838 
1839 /// ActOnForwardClassDeclaration -
1840 Sema::DeclGroupPtrTy
1841 Sema::ActOnForwardClassDeclaration(SourceLocation AtClassLoc,
1842                                    IdentifierInfo **IdentList,
1843                                    SourceLocation *IdentLocs,
1844                                    unsigned NumElts) {
1845   SmallVector<Decl *, 8> DeclsInGroup;
1846   for (unsigned i = 0; i != NumElts; ++i) {
1847     // Check for another declaration kind with the same name.
1848     NamedDecl *PrevDecl
1849       = LookupSingleName(TUScope, IdentList[i], IdentLocs[i],
1850                          LookupOrdinaryName, ForRedeclaration);
1851     if (PrevDecl && PrevDecl->isTemplateParameter()) {
1852       // Maybe we will complain about the shadowed template parameter.
1853       DiagnoseTemplateParameterShadow(AtClassLoc, PrevDecl);
1854       // Just pretend that we didn't see the previous declaration.
1855       PrevDecl = 0;
1856     }
1857 
1858     if (PrevDecl && !isa<ObjCInterfaceDecl>(PrevDecl)) {
1859       // GCC apparently allows the following idiom:
1860       //
1861       // typedef NSObject < XCElementTogglerP > XCElementToggler;
1862       // @class XCElementToggler;
1863       //
1864       // Here we have chosen to ignore the forward class declaration
1865       // with a warning. Since this is the implied behavior.
1866       TypedefNameDecl *TDD = dyn_cast<TypedefNameDecl>(PrevDecl);
1867       if (!TDD || !TDD->getUnderlyingType()->isObjCObjectType()) {
1868         Diag(AtClassLoc, diag::err_redefinition_different_kind) << IdentList[i];
1869         Diag(PrevDecl->getLocation(), diag::note_previous_definition);
1870       } else {
1871         // a forward class declaration matching a typedef name of a class refers
1872         // to the underlying class. Just ignore the forward class with a warning
1873         // as this will force the intended behavior which is to lookup the typedef
1874         // name.
1875         if (isa<ObjCObjectType>(TDD->getUnderlyingType())) {
1876           Diag(AtClassLoc, diag::warn_forward_class_redefinition) << IdentList[i];
1877           Diag(PrevDecl->getLocation(), diag::note_previous_definition);
1878           continue;
1879         }
1880       }
1881     }
1882 
1883     // Create a declaration to describe this forward declaration.
1884     ObjCInterfaceDecl *PrevIDecl
1885       = dyn_cast_or_null<ObjCInterfaceDecl>(PrevDecl);
1886     ObjCInterfaceDecl *IDecl
1887       = ObjCInterfaceDecl::Create(Context, CurContext, AtClassLoc,
1888                                   IdentList[i], PrevIDecl, IdentLocs[i]);
1889     IDecl->setAtEndRange(IdentLocs[i]);
1890 
1891     PushOnScopeChains(IDecl, TUScope);
1892     CheckObjCDeclScope(IDecl);
1893     DeclsInGroup.push_back(IDecl);
1894   }
1895 
1896   return BuildDeclaratorGroup(DeclsInGroup.data(), DeclsInGroup.size(), false);
1897 }
1898 
1899 static bool tryMatchRecordTypes(ASTContext &Context,
1900                                 Sema::MethodMatchStrategy strategy,
1901                                 const Type *left, const Type *right);
1902 
1903 static bool matchTypes(ASTContext &Context, Sema::MethodMatchStrategy strategy,
1904                        QualType leftQT, QualType rightQT) {
1905   const Type *left =
1906     Context.getCanonicalType(leftQT).getUnqualifiedType().getTypePtr();
1907   const Type *right =
1908     Context.getCanonicalType(rightQT).getUnqualifiedType().getTypePtr();
1909 
1910   if (left == right) return true;
1911 
1912   // If we're doing a strict match, the types have to match exactly.
1913   if (strategy == Sema::MMS_strict) return false;
1914 
1915   if (left->isIncompleteType() || right->isIncompleteType()) return false;
1916 
1917   // Otherwise, use this absurdly complicated algorithm to try to
1918   // validate the basic, low-level compatibility of the two types.
1919 
1920   // As a minimum, require the sizes and alignments to match.
1921   if (Context.getTypeInfo(left) != Context.getTypeInfo(right))
1922     return false;
1923 
1924   // Consider all the kinds of non-dependent canonical types:
1925   // - functions and arrays aren't possible as return and parameter types
1926 
1927   // - vector types of equal size can be arbitrarily mixed
1928   if (isa<VectorType>(left)) return isa<VectorType>(right);
1929   if (isa<VectorType>(right)) return false;
1930 
1931   // - references should only match references of identical type
1932   // - structs, unions, and Objective-C objects must match more-or-less
1933   //   exactly
1934   // - everything else should be a scalar
1935   if (!left->isScalarType() || !right->isScalarType())
1936     return tryMatchRecordTypes(Context, strategy, left, right);
1937 
1938   // Make scalars agree in kind, except count bools as chars, and group
1939   // all non-member pointers together.
1940   Type::ScalarTypeKind leftSK = left->getScalarTypeKind();
1941   Type::ScalarTypeKind rightSK = right->getScalarTypeKind();
1942   if (leftSK == Type::STK_Bool) leftSK = Type::STK_Integral;
1943   if (rightSK == Type::STK_Bool) rightSK = Type::STK_Integral;
1944   if (leftSK == Type::STK_CPointer || leftSK == Type::STK_BlockPointer)
1945     leftSK = Type::STK_ObjCObjectPointer;
1946   if (rightSK == Type::STK_CPointer || rightSK == Type::STK_BlockPointer)
1947     rightSK = Type::STK_ObjCObjectPointer;
1948 
1949   // Note that data member pointers and function member pointers don't
1950   // intermix because of the size differences.
1951 
1952   return (leftSK == rightSK);
1953 }
1954 
1955 static bool tryMatchRecordTypes(ASTContext &Context,
1956                                 Sema::MethodMatchStrategy strategy,
1957                                 const Type *lt, const Type *rt) {
1958   assert(lt && rt && lt != rt);
1959 
1960   if (!isa<RecordType>(lt) || !isa<RecordType>(rt)) return false;
1961   RecordDecl *left = cast<RecordType>(lt)->getDecl();
1962   RecordDecl *right = cast<RecordType>(rt)->getDecl();
1963 
1964   // Require union-hood to match.
1965   if (left->isUnion() != right->isUnion()) return false;
1966 
1967   // Require an exact match if either is non-POD.
1968   if ((isa<CXXRecordDecl>(left) && !cast<CXXRecordDecl>(left)->isPOD()) ||
1969       (isa<CXXRecordDecl>(right) && !cast<CXXRecordDecl>(right)->isPOD()))
1970     return false;
1971 
1972   // Require size and alignment to match.
1973   if (Context.getTypeInfo(lt) != Context.getTypeInfo(rt)) return false;
1974 
1975   // Require fields to match.
1976   RecordDecl::field_iterator li = left->field_begin(), le = left->field_end();
1977   RecordDecl::field_iterator ri = right->field_begin(), re = right->field_end();
1978   for (; li != le && ri != re; ++li, ++ri) {
1979     if (!matchTypes(Context, strategy, li->getType(), ri->getType()))
1980       return false;
1981   }
1982   return (li == le && ri == re);
1983 }
1984 
1985 /// MatchTwoMethodDeclarations - Checks that two methods have matching type and
1986 /// returns true, or false, accordingly.
1987 /// TODO: Handle protocol list; such as id<p1,p2> in type comparisons
1988 bool Sema::MatchTwoMethodDeclarations(const ObjCMethodDecl *left,
1989                                       const ObjCMethodDecl *right,
1990                                       MethodMatchStrategy strategy) {
1991   if (!matchTypes(Context, strategy,
1992                   left->getResultType(), right->getResultType()))
1993     return false;
1994 
1995   if (getLangOpts().ObjCAutoRefCount &&
1996       (left->hasAttr<NSReturnsRetainedAttr>()
1997          != right->hasAttr<NSReturnsRetainedAttr>() ||
1998        left->hasAttr<NSConsumesSelfAttr>()
1999          != right->hasAttr<NSConsumesSelfAttr>()))
2000     return false;
2001 
2002   ObjCMethodDecl::param_const_iterator
2003     li = left->param_begin(), le = left->param_end(), ri = right->param_begin(),
2004     re = right->param_end();
2005 
2006   for (; li != le && ri != re; ++li, ++ri) {
2007     assert(ri != right->param_end() && "Param mismatch");
2008     const ParmVarDecl *lparm = *li, *rparm = *ri;
2009 
2010     if (!matchTypes(Context, strategy, lparm->getType(), rparm->getType()))
2011       return false;
2012 
2013     if (getLangOpts().ObjCAutoRefCount &&
2014         lparm->hasAttr<NSConsumedAttr>() != rparm->hasAttr<NSConsumedAttr>())
2015       return false;
2016   }
2017   return true;
2018 }
2019 
2020 void Sema::addMethodToGlobalList(ObjCMethodList *List, ObjCMethodDecl *Method) {
2021   // If the list is empty, make it a singleton list.
2022   if (List->Method == 0) {
2023     List->Method = Method;
2024     List->Next = 0;
2025     return;
2026   }
2027 
2028   // We've seen a method with this name, see if we have already seen this type
2029   // signature.
2030   ObjCMethodList *Previous = List;
2031   for (; List; Previous = List, List = List->Next) {
2032     if (!MatchTwoMethodDeclarations(Method, List->Method))
2033       continue;
2034 
2035     ObjCMethodDecl *PrevObjCMethod = List->Method;
2036 
2037     // Propagate the 'defined' bit.
2038     if (Method->isDefined())
2039       PrevObjCMethod->setDefined(true);
2040 
2041     // If a method is deprecated, push it in the global pool.
2042     // This is used for better diagnostics.
2043     if (Method->isDeprecated()) {
2044       if (!PrevObjCMethod->isDeprecated())
2045         List->Method = Method;
2046     }
2047     // If new method is unavailable, push it into global pool
2048     // unless previous one is deprecated.
2049     if (Method->isUnavailable()) {
2050       if (PrevObjCMethod->getAvailability() < AR_Deprecated)
2051         List->Method = Method;
2052     }
2053 
2054     return;
2055   }
2056 
2057   // We have a new signature for an existing method - add it.
2058   // This is extremely rare. Only 1% of Cocoa selectors are "overloaded".
2059   ObjCMethodList *Mem = BumpAlloc.Allocate<ObjCMethodList>();
2060   Previous->Next = new (Mem) ObjCMethodList(Method, 0);
2061 }
2062 
2063 /// \brief Read the contents of the method pool for a given selector from
2064 /// external storage.
2065 void Sema::ReadMethodPool(Selector Sel) {
2066   assert(ExternalSource && "We need an external AST source");
2067   ExternalSource->ReadMethodPool(Sel);
2068 }
2069 
2070 void Sema::AddMethodToGlobalPool(ObjCMethodDecl *Method, bool impl,
2071                                  bool instance) {
2072   // Ignore methods of invalid containers.
2073   if (cast<Decl>(Method->getDeclContext())->isInvalidDecl())
2074     return;
2075 
2076   if (ExternalSource)
2077     ReadMethodPool(Method->getSelector());
2078 
2079   GlobalMethodPool::iterator Pos = MethodPool.find(Method->getSelector());
2080   if (Pos == MethodPool.end())
2081     Pos = MethodPool.insert(std::make_pair(Method->getSelector(),
2082                                            GlobalMethods())).first;
2083 
2084   Method->setDefined(impl);
2085 
2086   ObjCMethodList &Entry = instance ? Pos->second.first : Pos->second.second;
2087   addMethodToGlobalList(&Entry, Method);
2088 }
2089 
2090 /// Determines if this is an "acceptable" loose mismatch in the global
2091 /// method pool.  This exists mostly as a hack to get around certain
2092 /// global mismatches which we can't afford to make warnings / errors.
2093 /// Really, what we want is a way to take a method out of the global
2094 /// method pool.
2095 static bool isAcceptableMethodMismatch(ObjCMethodDecl *chosen,
2096                                        ObjCMethodDecl *other) {
2097   if (!chosen->isInstanceMethod())
2098     return false;
2099 
2100   Selector sel = chosen->getSelector();
2101   if (!sel.isUnarySelector() || sel.getNameForSlot(0) != "length")
2102     return false;
2103 
2104   // Don't complain about mismatches for -length if the method we
2105   // chose has an integral result type.
2106   return (chosen->getResultType()->isIntegerType());
2107 }
2108 
2109 ObjCMethodDecl *Sema::LookupMethodInGlobalPool(Selector Sel, SourceRange R,
2110                                                bool receiverIdOrClass,
2111                                                bool warn, bool instance) {
2112   if (ExternalSource)
2113     ReadMethodPool(Sel);
2114 
2115   GlobalMethodPool::iterator Pos = MethodPool.find(Sel);
2116   if (Pos == MethodPool.end())
2117     return 0;
2118 
2119   ObjCMethodList &MethList = instance ? Pos->second.first : Pos->second.second;
2120 
2121   if (warn && MethList.Method && MethList.Next) {
2122     bool issueDiagnostic = false, issueError = false;
2123 
2124     // We support a warning which complains about *any* difference in
2125     // method signature.
2126     bool strictSelectorMatch =
2127       (receiverIdOrClass && warn &&
2128        (Diags.getDiagnosticLevel(diag::warn_strict_multiple_method_decl,
2129                                  R.getBegin()) !=
2130       DiagnosticsEngine::Ignored));
2131     if (strictSelectorMatch)
2132       for (ObjCMethodList *Next = MethList.Next; Next; Next = Next->Next) {
2133         if (!MatchTwoMethodDeclarations(MethList.Method, Next->Method,
2134                                         MMS_strict)) {
2135           issueDiagnostic = true;
2136           break;
2137         }
2138       }
2139 
2140     // If we didn't see any strict differences, we won't see any loose
2141     // differences.  In ARC, however, we also need to check for loose
2142     // mismatches, because most of them are errors.
2143     if (!strictSelectorMatch ||
2144         (issueDiagnostic && getLangOpts().ObjCAutoRefCount))
2145       for (ObjCMethodList *Next = MethList.Next; Next; Next = Next->Next) {
2146         // This checks if the methods differ in type mismatch.
2147         if (!MatchTwoMethodDeclarations(MethList.Method, Next->Method,
2148                                         MMS_loose) &&
2149             !isAcceptableMethodMismatch(MethList.Method, Next->Method)) {
2150           issueDiagnostic = true;
2151           if (getLangOpts().ObjCAutoRefCount)
2152             issueError = true;
2153           break;
2154         }
2155       }
2156 
2157     if (issueDiagnostic) {
2158       if (issueError)
2159         Diag(R.getBegin(), diag::err_arc_multiple_method_decl) << Sel << R;
2160       else if (strictSelectorMatch)
2161         Diag(R.getBegin(), diag::warn_strict_multiple_method_decl) << Sel << R;
2162       else
2163         Diag(R.getBegin(), diag::warn_multiple_method_decl) << Sel << R;
2164 
2165       Diag(MethList.Method->getLocStart(),
2166            issueError ? diag::note_possibility : diag::note_using)
2167         << MethList.Method->getSourceRange();
2168       for (ObjCMethodList *Next = MethList.Next; Next; Next = Next->Next)
2169         Diag(Next->Method->getLocStart(), diag::note_also_found)
2170           << Next->Method->getSourceRange();
2171     }
2172   }
2173   return MethList.Method;
2174 }
2175 
2176 ObjCMethodDecl *Sema::LookupImplementedMethodInGlobalPool(Selector Sel) {
2177   GlobalMethodPool::iterator Pos = MethodPool.find(Sel);
2178   if (Pos == MethodPool.end())
2179     return 0;
2180 
2181   GlobalMethods &Methods = Pos->second;
2182 
2183   if (Methods.first.Method && Methods.first.Method->isDefined())
2184     return Methods.first.Method;
2185   if (Methods.second.Method && Methods.second.Method->isDefined())
2186     return Methods.second.Method;
2187   return 0;
2188 }
2189 
2190 /// DiagnoseDuplicateIvars -
2191 /// Check for duplicate ivars in the entire class at the start of
2192 /// \@implementation. This becomes necesssary because class extension can
2193 /// add ivars to a class in random order which will not be known until
2194 /// class's \@implementation is seen.
2195 void Sema::DiagnoseDuplicateIvars(ObjCInterfaceDecl *ID,
2196                                   ObjCInterfaceDecl *SID) {
2197   for (ObjCInterfaceDecl::ivar_iterator IVI = ID->ivar_begin(),
2198        IVE = ID->ivar_end(); IVI != IVE; ++IVI) {
2199     ObjCIvarDecl* Ivar = *IVI;
2200     if (Ivar->isInvalidDecl())
2201       continue;
2202     if (IdentifierInfo *II = Ivar->getIdentifier()) {
2203       ObjCIvarDecl* prevIvar = SID->lookupInstanceVariable(II);
2204       if (prevIvar) {
2205         Diag(Ivar->getLocation(), diag::err_duplicate_member) << II;
2206         Diag(prevIvar->getLocation(), diag::note_previous_declaration);
2207         Ivar->setInvalidDecl();
2208       }
2209     }
2210   }
2211 }
2212 
2213 Sema::ObjCContainerKind Sema::getObjCContainerKind() const {
2214   switch (CurContext->getDeclKind()) {
2215     case Decl::ObjCInterface:
2216       return Sema::OCK_Interface;
2217     case Decl::ObjCProtocol:
2218       return Sema::OCK_Protocol;
2219     case Decl::ObjCCategory:
2220       if (dyn_cast<ObjCCategoryDecl>(CurContext)->IsClassExtension())
2221         return Sema::OCK_ClassExtension;
2222       else
2223         return Sema::OCK_Category;
2224     case Decl::ObjCImplementation:
2225       return Sema::OCK_Implementation;
2226     case Decl::ObjCCategoryImpl:
2227       return Sema::OCK_CategoryImplementation;
2228 
2229     default:
2230       return Sema::OCK_None;
2231   }
2232 }
2233 
2234 // Note: For class/category implemenations, allMethods/allProperties is
2235 // always null.
2236 Decl *Sema::ActOnAtEnd(Scope *S, SourceRange AtEnd,
2237                        Decl **allMethods, unsigned allNum,
2238                        Decl **allProperties, unsigned pNum,
2239                        DeclGroupPtrTy *allTUVars, unsigned tuvNum) {
2240 
2241   if (getObjCContainerKind() == Sema::OCK_None)
2242     return 0;
2243 
2244   assert(AtEnd.isValid() && "Invalid location for '@end'");
2245 
2246   ObjCContainerDecl *OCD = dyn_cast<ObjCContainerDecl>(CurContext);
2247   Decl *ClassDecl = cast<Decl>(OCD);
2248 
2249   bool isInterfaceDeclKind =
2250         isa<ObjCInterfaceDecl>(ClassDecl) || isa<ObjCCategoryDecl>(ClassDecl)
2251          || isa<ObjCProtocolDecl>(ClassDecl);
2252   bool checkIdenticalMethods = isa<ObjCImplementationDecl>(ClassDecl);
2253 
2254   // FIXME: Remove these and use the ObjCContainerDecl/DeclContext.
2255   llvm::DenseMap<Selector, const ObjCMethodDecl*> InsMap;
2256   llvm::DenseMap<Selector, const ObjCMethodDecl*> ClsMap;
2257 
2258   for (unsigned i = 0; i < allNum; i++ ) {
2259     ObjCMethodDecl *Method =
2260       cast_or_null<ObjCMethodDecl>(allMethods[i]);
2261 
2262     if (!Method) continue;  // Already issued a diagnostic.
2263     if (Method->isInstanceMethod()) {
2264       /// Check for instance method of the same name with incompatible types
2265       const ObjCMethodDecl *&PrevMethod = InsMap[Method->getSelector()];
2266       bool match = PrevMethod ? MatchTwoMethodDeclarations(Method, PrevMethod)
2267                               : false;
2268       if ((isInterfaceDeclKind && PrevMethod && !match)
2269           || (checkIdenticalMethods && match)) {
2270           Diag(Method->getLocation(), diag::err_duplicate_method_decl)
2271             << Method->getDeclName();
2272           Diag(PrevMethod->getLocation(), diag::note_previous_declaration);
2273         Method->setInvalidDecl();
2274       } else {
2275         if (PrevMethod) {
2276           Method->setAsRedeclaration(PrevMethod);
2277           if (!Context.getSourceManager().isInSystemHeader(
2278                  Method->getLocation()))
2279             Diag(Method->getLocation(), diag::warn_duplicate_method_decl)
2280               << Method->getDeclName();
2281           Diag(PrevMethod->getLocation(), diag::note_previous_declaration);
2282         }
2283         InsMap[Method->getSelector()] = Method;
2284         /// The following allows us to typecheck messages to "id".
2285         AddInstanceMethodToGlobalPool(Method);
2286       }
2287     } else {
2288       /// Check for class method of the same name with incompatible types
2289       const ObjCMethodDecl *&PrevMethod = ClsMap[Method->getSelector()];
2290       bool match = PrevMethod ? MatchTwoMethodDeclarations(Method, PrevMethod)
2291                               : false;
2292       if ((isInterfaceDeclKind && PrevMethod && !match)
2293           || (checkIdenticalMethods && match)) {
2294         Diag(Method->getLocation(), diag::err_duplicate_method_decl)
2295           << Method->getDeclName();
2296         Diag(PrevMethod->getLocation(), diag::note_previous_declaration);
2297         Method->setInvalidDecl();
2298       } else {
2299         if (PrevMethod) {
2300           Method->setAsRedeclaration(PrevMethod);
2301           if (!Context.getSourceManager().isInSystemHeader(
2302                  Method->getLocation()))
2303             Diag(Method->getLocation(), diag::warn_duplicate_method_decl)
2304               << Method->getDeclName();
2305           Diag(PrevMethod->getLocation(), diag::note_previous_declaration);
2306         }
2307         ClsMap[Method->getSelector()] = Method;
2308         AddFactoryMethodToGlobalPool(Method);
2309       }
2310     }
2311   }
2312   if (ObjCInterfaceDecl *I = dyn_cast<ObjCInterfaceDecl>(ClassDecl)) {
2313     // Compares properties declared in this class to those of its
2314     // super class.
2315     ComparePropertiesInBaseAndSuper(I);
2316     CompareProperties(I, I);
2317   } else if (ObjCCategoryDecl *C = dyn_cast<ObjCCategoryDecl>(ClassDecl)) {
2318     // Categories are used to extend the class by declaring new methods.
2319     // By the same token, they are also used to add new properties. No
2320     // need to compare the added property to those in the class.
2321 
2322     // Compare protocol properties with those in category
2323     CompareProperties(C, C);
2324     if (C->IsClassExtension()) {
2325       ObjCInterfaceDecl *CCPrimary = C->getClassInterface();
2326       DiagnoseClassExtensionDupMethods(C, CCPrimary);
2327     }
2328   }
2329   if (ObjCContainerDecl *CDecl = dyn_cast<ObjCContainerDecl>(ClassDecl)) {
2330     if (CDecl->getIdentifier())
2331       // ProcessPropertyDecl is responsible for diagnosing conflicts with any
2332       // user-defined setter/getter. It also synthesizes setter/getter methods
2333       // and adds them to the DeclContext and global method pools.
2334       for (ObjCContainerDecl::prop_iterator I = CDecl->prop_begin(),
2335                                             E = CDecl->prop_end();
2336            I != E; ++I)
2337         ProcessPropertyDecl(*I, CDecl);
2338     CDecl->setAtEndRange(AtEnd);
2339   }
2340   if (ObjCImplementationDecl *IC=dyn_cast<ObjCImplementationDecl>(ClassDecl)) {
2341     IC->setAtEndRange(AtEnd);
2342     if (ObjCInterfaceDecl* IDecl = IC->getClassInterface()) {
2343       // Any property declared in a class extension might have user
2344       // declared setter or getter in current class extension or one
2345       // of the other class extensions. Mark them as synthesized as
2346       // property will be synthesized when property with same name is
2347       // seen in the @implementation.
2348       for (const ObjCCategoryDecl *ClsExtDecl =
2349            IDecl->getFirstClassExtension();
2350            ClsExtDecl; ClsExtDecl = ClsExtDecl->getNextClassExtension()) {
2351         for (ObjCContainerDecl::prop_iterator I = ClsExtDecl->prop_begin(),
2352              E = ClsExtDecl->prop_end(); I != E; ++I) {
2353           ObjCPropertyDecl *Property = *I;
2354           // Skip over properties declared @dynamic
2355           if (const ObjCPropertyImplDecl *PIDecl
2356               = IC->FindPropertyImplDecl(Property->getIdentifier()))
2357             if (PIDecl->getPropertyImplementation()
2358                   == ObjCPropertyImplDecl::Dynamic)
2359               continue;
2360 
2361           for (const ObjCCategoryDecl *CExtDecl =
2362                IDecl->getFirstClassExtension();
2363                CExtDecl; CExtDecl = CExtDecl->getNextClassExtension()) {
2364             if (ObjCMethodDecl *GetterMethod =
2365                 CExtDecl->getInstanceMethod(Property->getGetterName()))
2366               GetterMethod->setSynthesized(true);
2367             if (!Property->isReadOnly())
2368               if (ObjCMethodDecl *SetterMethod =
2369                   CExtDecl->getInstanceMethod(Property->getSetterName()))
2370                 SetterMethod->setSynthesized(true);
2371           }
2372         }
2373       }
2374       ImplMethodsVsClassMethods(S, IC, IDecl);
2375       AtomicPropertySetterGetterRules(IC, IDecl);
2376       DiagnoseOwningPropertyGetterSynthesis(IC);
2377 
2378       bool HasRootClassAttr = IDecl->hasAttr<ObjCRootClassAttr>();
2379       if (IDecl->getSuperClass() == NULL) {
2380         // This class has no superclass, so check that it has been marked with
2381         // __attribute((objc_root_class)).
2382         if (!HasRootClassAttr) {
2383           SourceLocation DeclLoc(IDecl->getLocation());
2384           SourceLocation SuperClassLoc(PP.getLocForEndOfToken(DeclLoc));
2385           Diag(DeclLoc, diag::warn_objc_root_class_missing)
2386             << IDecl->getIdentifier();
2387           // See if NSObject is in the current scope, and if it is, suggest
2388           // adding " : NSObject " to the class declaration.
2389           NamedDecl *IF = LookupSingleName(TUScope,
2390                                            NSAPIObj->getNSClassId(NSAPI::ClassId_NSObject),
2391                                            DeclLoc, LookupOrdinaryName);
2392           ObjCInterfaceDecl *NSObjectDecl = dyn_cast_or_null<ObjCInterfaceDecl>(IF);
2393           if (NSObjectDecl && NSObjectDecl->getDefinition()) {
2394             Diag(SuperClassLoc, diag::note_objc_needs_superclass)
2395               << FixItHint::CreateInsertion(SuperClassLoc, " : NSObject ");
2396           } else {
2397             Diag(SuperClassLoc, diag::note_objc_needs_superclass);
2398           }
2399         }
2400       } else if (HasRootClassAttr) {
2401         // Complain that only root classes may have this attribute.
2402         Diag(IDecl->getLocation(), diag::err_objc_root_class_subclass);
2403       }
2404 
2405       if (LangOpts.ObjCRuntime.isNonFragile()) {
2406         while (IDecl->getSuperClass()) {
2407           DiagnoseDuplicateIvars(IDecl, IDecl->getSuperClass());
2408           IDecl = IDecl->getSuperClass();
2409         }
2410       }
2411     }
2412     SetIvarInitializers(IC);
2413   } else if (ObjCCategoryImplDecl* CatImplClass =
2414                                    dyn_cast<ObjCCategoryImplDecl>(ClassDecl)) {
2415     CatImplClass->setAtEndRange(AtEnd);
2416 
2417     // Find category interface decl and then check that all methods declared
2418     // in this interface are implemented in the category @implementation.
2419     if (ObjCInterfaceDecl* IDecl = CatImplClass->getClassInterface()) {
2420       for (ObjCCategoryDecl *Categories = IDecl->getCategoryList();
2421            Categories; Categories = Categories->getNextClassCategory()) {
2422         if (Categories->getIdentifier() == CatImplClass->getIdentifier()) {
2423           ImplMethodsVsClassMethods(S, CatImplClass, Categories);
2424           break;
2425         }
2426       }
2427     }
2428   }
2429   if (isInterfaceDeclKind) {
2430     // Reject invalid vardecls.
2431     for (unsigned i = 0; i != tuvNum; i++) {
2432       DeclGroupRef DG = allTUVars[i].getAsVal<DeclGroupRef>();
2433       for (DeclGroupRef::iterator I = DG.begin(), E = DG.end(); I != E; ++I)
2434         if (VarDecl *VDecl = dyn_cast<VarDecl>(*I)) {
2435           if (!VDecl->hasExternalStorage())
2436             Diag(VDecl->getLocation(), diag::err_objc_var_decl_inclass);
2437         }
2438     }
2439   }
2440   ActOnObjCContainerFinishDefinition();
2441 
2442   for (unsigned i = 0; i != tuvNum; i++) {
2443     DeclGroupRef DG = allTUVars[i].getAsVal<DeclGroupRef>();
2444     for (DeclGroupRef::iterator I = DG.begin(), E = DG.end(); I != E; ++I)
2445       (*I)->setTopLevelDeclInObjCContainer();
2446     Consumer.HandleTopLevelDeclInObjCContainer(DG);
2447   }
2448 
2449   ActOnDocumentableDecl(ClassDecl);
2450   return ClassDecl;
2451 }
2452 
2453 
2454 /// CvtQTToAstBitMask - utility routine to produce an AST bitmask for
2455 /// objective-c's type qualifier from the parser version of the same info.
2456 static Decl::ObjCDeclQualifier
2457 CvtQTToAstBitMask(ObjCDeclSpec::ObjCDeclQualifier PQTVal) {
2458   return (Decl::ObjCDeclQualifier) (unsigned) PQTVal;
2459 }
2460 
2461 static inline
2462 bool containsInvalidMethodImplAttribute(ObjCMethodDecl *IMD,
2463                                         const AttrVec &A) {
2464   // If method is only declared in implementation (private method),
2465   // No need to issue any diagnostics on method definition with attributes.
2466   if (!IMD)
2467     return false;
2468 
2469   // method declared in interface has no attribute.
2470   // But implementation has attributes. This is invalid
2471   if (!IMD->hasAttrs())
2472     return true;
2473 
2474   const AttrVec &D = IMD->getAttrs();
2475   if (D.size() != A.size())
2476     return true;
2477 
2478   // attributes on method declaration and definition must match exactly.
2479   // Note that we have at most a couple of attributes on methods, so this
2480   // n*n search is good enough.
2481   for (AttrVec::const_iterator i = A.begin(), e = A.end(); i != e; ++i) {
2482     bool match = false;
2483     for (AttrVec::const_iterator i1 = D.begin(), e1 = D.end(); i1 != e1; ++i1) {
2484       if ((*i)->getKind() == (*i1)->getKind()) {
2485         match = true;
2486         break;
2487       }
2488     }
2489     if (!match)
2490       return true;
2491   }
2492   return false;
2493 }
2494 
2495 /// \brief Check whether the declared result type of the given Objective-C
2496 /// method declaration is compatible with the method's class.
2497 ///
2498 static Sema::ResultTypeCompatibilityKind
2499 CheckRelatedResultTypeCompatibility(Sema &S, ObjCMethodDecl *Method,
2500                                     ObjCInterfaceDecl *CurrentClass) {
2501   QualType ResultType = Method->getResultType();
2502 
2503   // If an Objective-C method inherits its related result type, then its
2504   // declared result type must be compatible with its own class type. The
2505   // declared result type is compatible if:
2506   if (const ObjCObjectPointerType *ResultObjectType
2507                                 = ResultType->getAs<ObjCObjectPointerType>()) {
2508     //   - it is id or qualified id, or
2509     if (ResultObjectType->isObjCIdType() ||
2510         ResultObjectType->isObjCQualifiedIdType())
2511       return Sema::RTC_Compatible;
2512 
2513     if (CurrentClass) {
2514       if (ObjCInterfaceDecl *ResultClass
2515                                       = ResultObjectType->getInterfaceDecl()) {
2516         //   - it is the same as the method's class type, or
2517         if (declaresSameEntity(CurrentClass, ResultClass))
2518           return Sema::RTC_Compatible;
2519 
2520         //   - it is a superclass of the method's class type
2521         if (ResultClass->isSuperClassOf(CurrentClass))
2522           return Sema::RTC_Compatible;
2523       }
2524     } else {
2525       // Any Objective-C pointer type might be acceptable for a protocol
2526       // method; we just don't know.
2527       return Sema::RTC_Unknown;
2528     }
2529   }
2530 
2531   return Sema::RTC_Incompatible;
2532 }
2533 
2534 namespace {
2535 /// A helper class for searching for methods which a particular method
2536 /// overrides.
2537 class OverrideSearch {
2538 public:
2539   Sema &S;
2540   ObjCMethodDecl *Method;
2541   llvm::SmallPtrSet<ObjCMethodDecl*, 4> Overridden;
2542   bool Recursive;
2543 
2544 public:
2545   OverrideSearch(Sema &S, ObjCMethodDecl *method) : S(S), Method(method) {
2546     Selector selector = method->getSelector();
2547 
2548     // Bypass this search if we've never seen an instance/class method
2549     // with this selector before.
2550     Sema::GlobalMethodPool::iterator it = S.MethodPool.find(selector);
2551     if (it == S.MethodPool.end()) {
2552       if (!S.ExternalSource) return;
2553       S.ReadMethodPool(selector);
2554 
2555       it = S.MethodPool.find(selector);
2556       if (it == S.MethodPool.end())
2557         return;
2558     }
2559     ObjCMethodList &list =
2560       method->isInstanceMethod() ? it->second.first : it->second.second;
2561     if (!list.Method) return;
2562 
2563     ObjCContainerDecl *container
2564       = cast<ObjCContainerDecl>(method->getDeclContext());
2565 
2566     // Prevent the search from reaching this container again.  This is
2567     // important with categories, which override methods from the
2568     // interface and each other.
2569     if (ObjCCategoryDecl *Category = dyn_cast<ObjCCategoryDecl>(container)) {
2570       searchFromContainer(container);
2571       if (ObjCInterfaceDecl *Interface = Category->getClassInterface())
2572         searchFromContainer(Interface);
2573     } else {
2574       searchFromContainer(container);
2575     }
2576   }
2577 
2578   typedef llvm::SmallPtrSet<ObjCMethodDecl*, 128>::iterator iterator;
2579   iterator begin() const { return Overridden.begin(); }
2580   iterator end() const { return Overridden.end(); }
2581 
2582 private:
2583   void searchFromContainer(ObjCContainerDecl *container) {
2584     if (container->isInvalidDecl()) return;
2585 
2586     switch (container->getDeclKind()) {
2587 #define OBJCCONTAINER(type, base) \
2588     case Decl::type: \
2589       searchFrom(cast<type##Decl>(container)); \
2590       break;
2591 #define ABSTRACT_DECL(expansion)
2592 #define DECL(type, base) \
2593     case Decl::type:
2594 #include "clang/AST/DeclNodes.inc"
2595       llvm_unreachable("not an ObjC container!");
2596     }
2597   }
2598 
2599   void searchFrom(ObjCProtocolDecl *protocol) {
2600     if (!protocol->hasDefinition())
2601       return;
2602 
2603     // A method in a protocol declaration overrides declarations from
2604     // referenced ("parent") protocols.
2605     search(protocol->getReferencedProtocols());
2606   }
2607 
2608   void searchFrom(ObjCCategoryDecl *category) {
2609     // A method in a category declaration overrides declarations from
2610     // the main class and from protocols the category references.
2611     // The main class is handled in the constructor.
2612     search(category->getReferencedProtocols());
2613   }
2614 
2615   void searchFrom(ObjCCategoryImplDecl *impl) {
2616     // A method in a category definition that has a category
2617     // declaration overrides declarations from the category
2618     // declaration.
2619     if (ObjCCategoryDecl *category = impl->getCategoryDecl()) {
2620       search(category);
2621       if (ObjCInterfaceDecl *Interface = category->getClassInterface())
2622         search(Interface);
2623 
2624     // Otherwise it overrides declarations from the class.
2625     } else if (ObjCInterfaceDecl *Interface = impl->getClassInterface()) {
2626       search(Interface);
2627     }
2628   }
2629 
2630   void searchFrom(ObjCInterfaceDecl *iface) {
2631     // A method in a class declaration overrides declarations from
2632     if (!iface->hasDefinition())
2633       return;
2634 
2635     //   - categories,
2636     for (ObjCCategoryDecl *category = iface->getCategoryList();
2637            category; category = category->getNextClassCategory())
2638       search(category);
2639 
2640     //   - the super class, and
2641     if (ObjCInterfaceDecl *super = iface->getSuperClass())
2642       search(super);
2643 
2644     //   - any referenced protocols.
2645     search(iface->getReferencedProtocols());
2646   }
2647 
2648   void searchFrom(ObjCImplementationDecl *impl) {
2649     // A method in a class implementation overrides declarations from
2650     // the class interface.
2651     if (ObjCInterfaceDecl *Interface = impl->getClassInterface())
2652       search(Interface);
2653   }
2654 
2655 
2656   void search(const ObjCProtocolList &protocols) {
2657     for (ObjCProtocolList::iterator i = protocols.begin(), e = protocols.end();
2658          i != e; ++i)
2659       search(*i);
2660   }
2661 
2662   void search(ObjCContainerDecl *container) {
2663     // Check for a method in this container which matches this selector.
2664     ObjCMethodDecl *meth = container->getMethod(Method->getSelector(),
2665                                                 Method->isInstanceMethod());
2666 
2667     // If we find one, record it and bail out.
2668     if (meth) {
2669       Overridden.insert(meth);
2670       return;
2671     }
2672 
2673     // Otherwise, search for methods that a hypothetical method here
2674     // would have overridden.
2675 
2676     // Note that we're now in a recursive case.
2677     Recursive = true;
2678 
2679     searchFromContainer(container);
2680   }
2681 };
2682 }
2683 
2684 void Sema::CheckObjCMethodOverrides(ObjCMethodDecl *ObjCMethod,
2685                                     ObjCInterfaceDecl *CurrentClass,
2686                                     ResultTypeCompatibilityKind RTC) {
2687   // Search for overridden methods and merge information down from them.
2688   OverrideSearch overrides(*this, ObjCMethod);
2689   // Keep track if the method overrides any method in the class's base classes,
2690   // its protocols, or its categories' protocols; we will keep that info
2691   // in the ObjCMethodDecl.
2692   // For this info, a method in an implementation is not considered as
2693   // overriding the same method in the interface or its categories.
2694   bool hasOverriddenMethodsInBaseOrProtocol = false;
2695   for (OverrideSearch::iterator
2696          i = overrides.begin(), e = overrides.end(); i != e; ++i) {
2697     ObjCMethodDecl *overridden = *i;
2698 
2699     if (isa<ObjCProtocolDecl>(overridden->getDeclContext()) ||
2700         CurrentClass != overridden->getClassInterface() ||
2701         overridden->isOverriding())
2702       hasOverriddenMethodsInBaseOrProtocol = true;
2703 
2704     // Propagate down the 'related result type' bit from overridden methods.
2705     if (RTC != Sema::RTC_Incompatible && overridden->hasRelatedResultType())
2706       ObjCMethod->SetRelatedResultType();
2707 
2708     // Then merge the declarations.
2709     mergeObjCMethodDecls(ObjCMethod, overridden);
2710 
2711     if (ObjCMethod->isImplicit() && overridden->isImplicit())
2712       continue; // Conflicting properties are detected elsewhere.
2713 
2714     // Check for overriding methods
2715     if (isa<ObjCInterfaceDecl>(ObjCMethod->getDeclContext()) ||
2716         isa<ObjCImplementationDecl>(ObjCMethod->getDeclContext()))
2717       CheckConflictingOverridingMethod(ObjCMethod, overridden,
2718               isa<ObjCProtocolDecl>(overridden->getDeclContext()));
2719 
2720     if (CurrentClass && overridden->getDeclContext() != CurrentClass &&
2721         isa<ObjCInterfaceDecl>(overridden->getDeclContext()) &&
2722         !overridden->isImplicit() /* not meant for properties */) {
2723       ObjCMethodDecl::param_iterator ParamI = ObjCMethod->param_begin(),
2724                                           E = ObjCMethod->param_end();
2725       ObjCMethodDecl::param_iterator PrevI = overridden->param_begin(),
2726                                      PrevE = overridden->param_end();
2727       for (; ParamI != E && PrevI != PrevE; ++ParamI, ++PrevI) {
2728         assert(PrevI != overridden->param_end() && "Param mismatch");
2729         QualType T1 = Context.getCanonicalType((*ParamI)->getType());
2730         QualType T2 = Context.getCanonicalType((*PrevI)->getType());
2731         // If type of argument of method in this class does not match its
2732         // respective argument type in the super class method, issue warning;
2733         if (!Context.typesAreCompatible(T1, T2)) {
2734           Diag((*ParamI)->getLocation(), diag::ext_typecheck_base_super)
2735             << T1 << T2;
2736           Diag(overridden->getLocation(), diag::note_previous_declaration);
2737           break;
2738         }
2739       }
2740     }
2741   }
2742 
2743   ObjCMethod->setOverriding(hasOverriddenMethodsInBaseOrProtocol);
2744 }
2745 
2746 Decl *Sema::ActOnMethodDeclaration(
2747     Scope *S,
2748     SourceLocation MethodLoc, SourceLocation EndLoc,
2749     tok::TokenKind MethodType,
2750     ObjCDeclSpec &ReturnQT, ParsedType ReturnType,
2751     ArrayRef<SourceLocation> SelectorLocs,
2752     Selector Sel,
2753     // optional arguments. The number of types/arguments is obtained
2754     // from the Sel.getNumArgs().
2755     ObjCArgInfo *ArgInfo,
2756     DeclaratorChunk::ParamInfo *CParamInfo, unsigned CNumArgs, // c-style args
2757     AttributeList *AttrList, tok::ObjCKeywordKind MethodDeclKind,
2758     bool isVariadic, bool MethodDefinition) {
2759   // Make sure we can establish a context for the method.
2760   if (!CurContext->isObjCContainer()) {
2761     Diag(MethodLoc, diag::error_missing_method_context);
2762     return 0;
2763   }
2764   ObjCContainerDecl *OCD = dyn_cast<ObjCContainerDecl>(CurContext);
2765   Decl *ClassDecl = cast<Decl>(OCD);
2766   QualType resultDeclType;
2767 
2768   bool HasRelatedResultType = false;
2769   TypeSourceInfo *ResultTInfo = 0;
2770   if (ReturnType) {
2771     resultDeclType = GetTypeFromParser(ReturnType, &ResultTInfo);
2772 
2773     // Methods cannot return interface types. All ObjC objects are
2774     // passed by reference.
2775     if (resultDeclType->isObjCObjectType()) {
2776       Diag(MethodLoc, diag::err_object_cannot_be_passed_returned_by_value)
2777         << 0 << resultDeclType;
2778       return 0;
2779     }
2780 
2781     HasRelatedResultType = (resultDeclType == Context.getObjCInstanceType());
2782   } else { // get the type for "id".
2783     resultDeclType = Context.getObjCIdType();
2784     Diag(MethodLoc, diag::warn_missing_method_return_type)
2785       << FixItHint::CreateInsertion(SelectorLocs.front(), "(id)");
2786   }
2787 
2788   ObjCMethodDecl* ObjCMethod =
2789     ObjCMethodDecl::Create(Context, MethodLoc, EndLoc, Sel,
2790                            resultDeclType,
2791                            ResultTInfo,
2792                            CurContext,
2793                            MethodType == tok::minus, isVariadic,
2794                            /*isSynthesized=*/false,
2795                            /*isImplicitlyDeclared=*/false, /*isDefined=*/false,
2796                            MethodDeclKind == tok::objc_optional
2797                              ? ObjCMethodDecl::Optional
2798                              : ObjCMethodDecl::Required,
2799                            HasRelatedResultType);
2800 
2801   SmallVector<ParmVarDecl*, 16> Params;
2802 
2803   for (unsigned i = 0, e = Sel.getNumArgs(); i != e; ++i) {
2804     QualType ArgType;
2805     TypeSourceInfo *DI;
2806 
2807     if (ArgInfo[i].Type == 0) {
2808       ArgType = Context.getObjCIdType();
2809       DI = 0;
2810     } else {
2811       ArgType = GetTypeFromParser(ArgInfo[i].Type, &DI);
2812       // Perform the default array/function conversions (C99 6.7.5.3p[7,8]).
2813       ArgType = Context.getAdjustedParameterType(ArgType);
2814     }
2815 
2816     LookupResult R(*this, ArgInfo[i].Name, ArgInfo[i].NameLoc,
2817                    LookupOrdinaryName, ForRedeclaration);
2818     LookupName(R, S);
2819     if (R.isSingleResult()) {
2820       NamedDecl *PrevDecl = R.getFoundDecl();
2821       if (S->isDeclScope(PrevDecl)) {
2822         Diag(ArgInfo[i].NameLoc,
2823              (MethodDefinition ? diag::warn_method_param_redefinition
2824                                : diag::warn_method_param_declaration))
2825           << ArgInfo[i].Name;
2826         Diag(PrevDecl->getLocation(),
2827              diag::note_previous_declaration);
2828       }
2829     }
2830 
2831     SourceLocation StartLoc = DI
2832       ? DI->getTypeLoc().getBeginLoc()
2833       : ArgInfo[i].NameLoc;
2834 
2835     ParmVarDecl* Param = CheckParameter(ObjCMethod, StartLoc,
2836                                         ArgInfo[i].NameLoc, ArgInfo[i].Name,
2837                                         ArgType, DI, SC_None, SC_None);
2838 
2839     Param->setObjCMethodScopeInfo(i);
2840 
2841     Param->setObjCDeclQualifier(
2842       CvtQTToAstBitMask(ArgInfo[i].DeclSpec.getObjCDeclQualifier()));
2843 
2844     // Apply the attributes to the parameter.
2845     ProcessDeclAttributeList(TUScope, Param, ArgInfo[i].ArgAttrs);
2846 
2847     if (Param->hasAttr<BlocksAttr>()) {
2848       Diag(Param->getLocation(), diag::err_block_on_nonlocal);
2849       Param->setInvalidDecl();
2850     }
2851     S->AddDecl(Param);
2852     IdResolver.AddDecl(Param);
2853 
2854     Params.push_back(Param);
2855   }
2856 
2857   for (unsigned i = 0, e = CNumArgs; i != e; ++i) {
2858     ParmVarDecl *Param = cast<ParmVarDecl>(CParamInfo[i].Param);
2859     QualType ArgType = Param->getType();
2860     if (ArgType.isNull())
2861       ArgType = Context.getObjCIdType();
2862     else
2863       // Perform the default array/function conversions (C99 6.7.5.3p[7,8]).
2864       ArgType = Context.getAdjustedParameterType(ArgType);
2865     if (ArgType->isObjCObjectType()) {
2866       Diag(Param->getLocation(),
2867            diag::err_object_cannot_be_passed_returned_by_value)
2868       << 1 << ArgType;
2869       Param->setInvalidDecl();
2870     }
2871     Param->setDeclContext(ObjCMethod);
2872 
2873     Params.push_back(Param);
2874   }
2875 
2876   ObjCMethod->setMethodParams(Context, Params, SelectorLocs);
2877   ObjCMethod->setObjCDeclQualifier(
2878     CvtQTToAstBitMask(ReturnQT.getObjCDeclQualifier()));
2879 
2880   if (AttrList)
2881     ProcessDeclAttributeList(TUScope, ObjCMethod, AttrList);
2882 
2883   // Add the method now.
2884   const ObjCMethodDecl *PrevMethod = 0;
2885   if (ObjCImplDecl *ImpDecl = dyn_cast<ObjCImplDecl>(ClassDecl)) {
2886     if (MethodType == tok::minus) {
2887       PrevMethod = ImpDecl->getInstanceMethod(Sel);
2888       ImpDecl->addInstanceMethod(ObjCMethod);
2889     } else {
2890       PrevMethod = ImpDecl->getClassMethod(Sel);
2891       ImpDecl->addClassMethod(ObjCMethod);
2892     }
2893 
2894     ObjCMethodDecl *IMD = 0;
2895     if (ObjCInterfaceDecl *IDecl = ImpDecl->getClassInterface())
2896       IMD = IDecl->lookupMethod(ObjCMethod->getSelector(),
2897                                 ObjCMethod->isInstanceMethod());
2898     if (ObjCMethod->hasAttrs() &&
2899         containsInvalidMethodImplAttribute(IMD, ObjCMethod->getAttrs())) {
2900       SourceLocation MethodLoc = IMD->getLocation();
2901       if (!getSourceManager().isInSystemHeader(MethodLoc)) {
2902         Diag(EndLoc, diag::warn_attribute_method_def);
2903         Diag(MethodLoc, diag::note_method_declared_at)
2904           << ObjCMethod->getDeclName();
2905       }
2906     }
2907   } else {
2908     cast<DeclContext>(ClassDecl)->addDecl(ObjCMethod);
2909   }
2910 
2911   if (PrevMethod) {
2912     // You can never have two method definitions with the same name.
2913     Diag(ObjCMethod->getLocation(), diag::err_duplicate_method_decl)
2914       << ObjCMethod->getDeclName();
2915     Diag(PrevMethod->getLocation(), diag::note_previous_declaration);
2916   }
2917 
2918   // If this Objective-C method does not have a related result type, but we
2919   // are allowed to infer related result types, try to do so based on the
2920   // method family.
2921   ObjCInterfaceDecl *CurrentClass = dyn_cast<ObjCInterfaceDecl>(ClassDecl);
2922   if (!CurrentClass) {
2923     if (ObjCCategoryDecl *Cat = dyn_cast<ObjCCategoryDecl>(ClassDecl))
2924       CurrentClass = Cat->getClassInterface();
2925     else if (ObjCImplDecl *Impl = dyn_cast<ObjCImplDecl>(ClassDecl))
2926       CurrentClass = Impl->getClassInterface();
2927     else if (ObjCCategoryImplDecl *CatImpl
2928                                    = dyn_cast<ObjCCategoryImplDecl>(ClassDecl))
2929       CurrentClass = CatImpl->getClassInterface();
2930   }
2931 
2932   ResultTypeCompatibilityKind RTC
2933     = CheckRelatedResultTypeCompatibility(*this, ObjCMethod, CurrentClass);
2934 
2935   CheckObjCMethodOverrides(ObjCMethod, CurrentClass, RTC);
2936 
2937   bool ARCError = false;
2938   if (getLangOpts().ObjCAutoRefCount)
2939     ARCError = CheckARCMethodDecl(*this, ObjCMethod);
2940 
2941   // Infer the related result type when possible.
2942   if (!ARCError && RTC == Sema::RTC_Compatible &&
2943       !ObjCMethod->hasRelatedResultType() &&
2944       LangOpts.ObjCInferRelatedResultType) {
2945     bool InferRelatedResultType = false;
2946     switch (ObjCMethod->getMethodFamily()) {
2947     case OMF_None:
2948     case OMF_copy:
2949     case OMF_dealloc:
2950     case OMF_finalize:
2951     case OMF_mutableCopy:
2952     case OMF_release:
2953     case OMF_retainCount:
2954     case OMF_performSelector:
2955       break;
2956 
2957     case OMF_alloc:
2958     case OMF_new:
2959       InferRelatedResultType = ObjCMethod->isClassMethod();
2960       break;
2961 
2962     case OMF_init:
2963     case OMF_autorelease:
2964     case OMF_retain:
2965     case OMF_self:
2966       InferRelatedResultType = ObjCMethod->isInstanceMethod();
2967       break;
2968     }
2969 
2970     if (InferRelatedResultType)
2971       ObjCMethod->SetRelatedResultType();
2972   }
2973 
2974   ActOnDocumentableDecl(ObjCMethod);
2975 
2976   return ObjCMethod;
2977 }
2978 
2979 bool Sema::CheckObjCDeclScope(Decl *D) {
2980   // Following is also an error. But it is caused by a missing @end
2981   // and diagnostic is issued elsewhere.
2982   if (isa<ObjCContainerDecl>(CurContext->getRedeclContext()))
2983     return false;
2984 
2985   // If we switched context to translation unit while we are still lexically in
2986   // an objc container, it means the parser missed emitting an error.
2987   if (isa<TranslationUnitDecl>(getCurLexicalContext()->getRedeclContext()))
2988     return false;
2989 
2990   Diag(D->getLocation(), diag::err_objc_decls_may_only_appear_in_global_scope);
2991   D->setInvalidDecl();
2992 
2993   return true;
2994 }
2995 
2996 /// Called whenever \@defs(ClassName) is encountered in the source.  Inserts the
2997 /// instance variables of ClassName into Decls.
2998 void Sema::ActOnDefs(Scope *S, Decl *TagD, SourceLocation DeclStart,
2999                      IdentifierInfo *ClassName,
3000                      SmallVectorImpl<Decl*> &Decls) {
3001   // Check that ClassName is a valid class
3002   ObjCInterfaceDecl *Class = getObjCInterfaceDecl(ClassName, DeclStart);
3003   if (!Class) {
3004     Diag(DeclStart, diag::err_undef_interface) << ClassName;
3005     return;
3006   }
3007   if (LangOpts.ObjCRuntime.isNonFragile()) {
3008     Diag(DeclStart, diag::err_atdef_nonfragile_interface);
3009     return;
3010   }
3011 
3012   // Collect the instance variables
3013   SmallVector<const ObjCIvarDecl*, 32> Ivars;
3014   Context.DeepCollectObjCIvars(Class, true, Ivars);
3015   // For each ivar, create a fresh ObjCAtDefsFieldDecl.
3016   for (unsigned i = 0; i < Ivars.size(); i++) {
3017     const FieldDecl* ID = cast<FieldDecl>(Ivars[i]);
3018     RecordDecl *Record = dyn_cast<RecordDecl>(TagD);
3019     Decl *FD = ObjCAtDefsFieldDecl::Create(Context, Record,
3020                                            /*FIXME: StartL=*/ID->getLocation(),
3021                                            ID->getLocation(),
3022                                            ID->getIdentifier(), ID->getType(),
3023                                            ID->getBitWidth());
3024     Decls.push_back(FD);
3025   }
3026 
3027   // Introduce all of these fields into the appropriate scope.
3028   for (SmallVectorImpl<Decl*>::iterator D = Decls.begin();
3029        D != Decls.end(); ++D) {
3030     FieldDecl *FD = cast<FieldDecl>(*D);
3031     if (getLangOpts().CPlusPlus)
3032       PushOnScopeChains(cast<FieldDecl>(FD), S);
3033     else if (RecordDecl *Record = dyn_cast<RecordDecl>(TagD))
3034       Record->addDecl(FD);
3035   }
3036 }
3037 
3038 /// \brief Build a type-check a new Objective-C exception variable declaration.
3039 VarDecl *Sema::BuildObjCExceptionDecl(TypeSourceInfo *TInfo, QualType T,
3040                                       SourceLocation StartLoc,
3041                                       SourceLocation IdLoc,
3042                                       IdentifierInfo *Id,
3043                                       bool Invalid) {
3044   // ISO/IEC TR 18037 S6.7.3: "The type of an object with automatic storage
3045   // duration shall not be qualified by an address-space qualifier."
3046   // Since all parameters have automatic store duration, they can not have
3047   // an address space.
3048   if (T.getAddressSpace() != 0) {
3049     Diag(IdLoc, diag::err_arg_with_address_space);
3050     Invalid = true;
3051   }
3052 
3053   // An @catch parameter must be an unqualified object pointer type;
3054   // FIXME: Recover from "NSObject foo" by inserting the * in "NSObject *foo"?
3055   if (Invalid) {
3056     // Don't do any further checking.
3057   } else if (T->isDependentType()) {
3058     // Okay: we don't know what this type will instantiate to.
3059   } else if (!T->isObjCObjectPointerType()) {
3060     Invalid = true;
3061     Diag(IdLoc ,diag::err_catch_param_not_objc_type);
3062   } else if (T->isObjCQualifiedIdType()) {
3063     Invalid = true;
3064     Diag(IdLoc, diag::err_illegal_qualifiers_on_catch_parm);
3065   }
3066 
3067   VarDecl *New = VarDecl::Create(Context, CurContext, StartLoc, IdLoc, Id,
3068                                  T, TInfo, SC_None, SC_None);
3069   New->setExceptionVariable(true);
3070 
3071   // In ARC, infer 'retaining' for variables of retainable type.
3072   if (getLangOpts().ObjCAutoRefCount && inferObjCARCLifetime(New))
3073     Invalid = true;
3074 
3075   if (Invalid)
3076     New->setInvalidDecl();
3077   return New;
3078 }
3079 
3080 Decl *Sema::ActOnObjCExceptionDecl(Scope *S, Declarator &D) {
3081   const DeclSpec &DS = D.getDeclSpec();
3082 
3083   // We allow the "register" storage class on exception variables because
3084   // GCC did, but we drop it completely. Any other storage class is an error.
3085   if (DS.getStorageClassSpec() == DeclSpec::SCS_register) {
3086     Diag(DS.getStorageClassSpecLoc(), diag::warn_register_objc_catch_parm)
3087       << FixItHint::CreateRemoval(SourceRange(DS.getStorageClassSpecLoc()));
3088   } else if (DS.getStorageClassSpec() != DeclSpec::SCS_unspecified) {
3089     Diag(DS.getStorageClassSpecLoc(), diag::err_storage_spec_on_catch_parm)
3090       << DS.getStorageClassSpec();
3091   }
3092   if (D.getDeclSpec().isThreadSpecified())
3093     Diag(D.getDeclSpec().getThreadSpecLoc(), diag::err_invalid_thread);
3094   D.getMutableDeclSpec().ClearStorageClassSpecs();
3095 
3096   DiagnoseFunctionSpecifiers(D);
3097 
3098   // Check that there are no default arguments inside the type of this
3099   // exception object (C++ only).
3100   if (getLangOpts().CPlusPlus)
3101     CheckExtraCXXDefaultArguments(D);
3102 
3103   TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S);
3104   QualType ExceptionType = TInfo->getType();
3105 
3106   VarDecl *New = BuildObjCExceptionDecl(TInfo, ExceptionType,
3107                                         D.getSourceRange().getBegin(),
3108                                         D.getIdentifierLoc(),
3109                                         D.getIdentifier(),
3110                                         D.isInvalidType());
3111 
3112   // Parameter declarators cannot be qualified (C++ [dcl.meaning]p1).
3113   if (D.getCXXScopeSpec().isSet()) {
3114     Diag(D.getIdentifierLoc(), diag::err_qualified_objc_catch_parm)
3115       << D.getCXXScopeSpec().getRange();
3116     New->setInvalidDecl();
3117   }
3118 
3119   // Add the parameter declaration into this scope.
3120   S->AddDecl(New);
3121   if (D.getIdentifier())
3122     IdResolver.AddDecl(New);
3123 
3124   ProcessDeclAttributes(S, New, D);
3125 
3126   if (New->hasAttr<BlocksAttr>())
3127     Diag(New->getLocation(), diag::err_block_on_nonlocal);
3128   return New;
3129 }
3130 
3131 /// CollectIvarsToConstructOrDestruct - Collect those ivars which require
3132 /// initialization.
3133 void Sema::CollectIvarsToConstructOrDestruct(ObjCInterfaceDecl *OI,
3134                                 SmallVectorImpl<ObjCIvarDecl*> &Ivars) {
3135   for (ObjCIvarDecl *Iv = OI->all_declared_ivar_begin(); Iv;
3136        Iv= Iv->getNextIvar()) {
3137     QualType QT = Context.getBaseElementType(Iv->getType());
3138     if (QT->isRecordType())
3139       Ivars.push_back(Iv);
3140   }
3141 }
3142 
3143 void Sema::DiagnoseUseOfUnimplementedSelectors() {
3144   // Load referenced selectors from the external source.
3145   if (ExternalSource) {
3146     SmallVector<std::pair<Selector, SourceLocation>, 4> Sels;
3147     ExternalSource->ReadReferencedSelectors(Sels);
3148     for (unsigned I = 0, N = Sels.size(); I != N; ++I)
3149       ReferencedSelectors[Sels[I].first] = Sels[I].second;
3150   }
3151 
3152   // Warning will be issued only when selector table is
3153   // generated (which means there is at lease one implementation
3154   // in the TU). This is to match gcc's behavior.
3155   if (ReferencedSelectors.empty() ||
3156       !Context.AnyObjCImplementation())
3157     return;
3158   for (llvm::DenseMap<Selector, SourceLocation>::iterator S =
3159         ReferencedSelectors.begin(),
3160        E = ReferencedSelectors.end(); S != E; ++S) {
3161     Selector Sel = (*S).first;
3162     if (!LookupImplementedMethodInGlobalPool(Sel))
3163       Diag((*S).second, diag::warn_unimplemented_selector) << Sel;
3164   }
3165   return;
3166 }
3167