1 //===------- CGObjCGNU.cpp - Emit LLVM Code from ASTs for a Module --------===//
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 provides Objective-C code generation targeting the GNU runtime.  The
11 // class in this file generates structures used by the GNU Objective-C runtime
12 // library.  These structures are defined in objc/objc.h and objc/objc-api.h in
13 // the GNU runtime distribution.
14 //
15 //===----------------------------------------------------------------------===//
16 
17 #include "CGObjCRuntime.h"
18 #include "CGCleanup.h"
19 #include "CodeGenFunction.h"
20 #include "CodeGenModule.h"
21 #include "clang/AST/ASTContext.h"
22 #include "clang/AST/Decl.h"
23 #include "clang/AST/DeclObjC.h"
24 #include "clang/AST/RecordLayout.h"
25 #include "clang/AST/StmtObjC.h"
26 #include "clang/Basic/FileManager.h"
27 #include "clang/Basic/SourceManager.h"
28 #include "llvm/ADT/SmallVector.h"
29 #include "llvm/ADT/StringMap.h"
30 #include "llvm/IR/DataLayout.h"
31 #include "llvm/IR/Intrinsics.h"
32 #include "llvm/IR/LLVMContext.h"
33 #include "llvm/IR/Module.h"
34 #include "llvm/Support/CallSite.h"
35 #include "llvm/Support/Compiler.h"
36 #include <cstdarg>
37 
38 
39 using namespace clang;
40 using namespace CodeGen;
41 
42 
43 namespace {
44 /// Class that lazily initialises the runtime function.  Avoids inserting the
45 /// types and the function declaration into a module if they're not used, and
46 /// avoids constructing the type more than once if it's used more than once.
47 class LazyRuntimeFunction {
48   CodeGenModule *CGM;
49   std::vector<llvm::Type*> ArgTys;
50   const char *FunctionName;
51   llvm::Constant *Function;
52   public:
53     /// Constructor leaves this class uninitialized, because it is intended to
54     /// be used as a field in another class and not all of the types that are
55     /// used as arguments will necessarily be available at construction time.
56     LazyRuntimeFunction() : CGM(0), FunctionName(0), Function(0) {}
57 
58     /// Initialises the lazy function with the name, return type, and the types
59     /// of the arguments.
60     END_WITH_NULL
61     void init(CodeGenModule *Mod, const char *name,
62         llvm::Type *RetTy, ...) {
63        CGM =Mod;
64        FunctionName = name;
65        Function = 0;
66        ArgTys.clear();
67        va_list Args;
68        va_start(Args, RetTy);
69          while (llvm::Type *ArgTy = va_arg(Args, llvm::Type*))
70            ArgTys.push_back(ArgTy);
71        va_end(Args);
72        // Push the return type on at the end so we can pop it off easily
73        ArgTys.push_back(RetTy);
74    }
75    /// Overloaded cast operator, allows the class to be implicitly cast to an
76    /// LLVM constant.
77    operator llvm::Constant*() {
78      if (!Function) {
79        if (0 == FunctionName) return 0;
80        // We put the return type on the end of the vector, so pop it back off
81        llvm::Type *RetTy = ArgTys.back();
82        ArgTys.pop_back();
83        llvm::FunctionType *FTy = llvm::FunctionType::get(RetTy, ArgTys, false);
84        Function =
85          cast<llvm::Constant>(CGM->CreateRuntimeFunction(FTy, FunctionName));
86        // We won't need to use the types again, so we may as well clean up the
87        // vector now
88        ArgTys.resize(0);
89      }
90      return Function;
91    }
92    operator llvm::Function*() {
93      return cast<llvm::Function>((llvm::Constant*)*this);
94    }
95 
96 };
97 
98 
99 /// GNU Objective-C runtime code generation.  This class implements the parts of
100 /// Objective-C support that are specific to the GNU family of runtimes (GCC,
101 /// GNUstep and ObjFW).
102 class CGObjCGNU : public CGObjCRuntime {
103 protected:
104   /// The LLVM module into which output is inserted
105   llvm::Module &TheModule;
106   /// strut objc_super.  Used for sending messages to super.  This structure
107   /// contains the receiver (object) and the expected class.
108   llvm::StructType *ObjCSuperTy;
109   /// struct objc_super*.  The type of the argument to the superclass message
110   /// lookup functions.
111   llvm::PointerType *PtrToObjCSuperTy;
112   /// LLVM type for selectors.  Opaque pointer (i8*) unless a header declaring
113   /// SEL is included in a header somewhere, in which case it will be whatever
114   /// type is declared in that header, most likely {i8*, i8*}.
115   llvm::PointerType *SelectorTy;
116   /// LLVM i8 type.  Cached here to avoid repeatedly getting it in all of the
117   /// places where it's used
118   llvm::IntegerType *Int8Ty;
119   /// Pointer to i8 - LLVM type of char*, for all of the places where the
120   /// runtime needs to deal with C strings.
121   llvm::PointerType *PtrToInt8Ty;
122   /// Instance Method Pointer type.  This is a pointer to a function that takes,
123   /// at a minimum, an object and a selector, and is the generic type for
124   /// Objective-C methods.  Due to differences between variadic / non-variadic
125   /// calling conventions, it must always be cast to the correct type before
126   /// actually being used.
127   llvm::PointerType *IMPTy;
128   /// Type of an untyped Objective-C object.  Clang treats id as a built-in type
129   /// when compiling Objective-C code, so this may be an opaque pointer (i8*),
130   /// but if the runtime header declaring it is included then it may be a
131   /// pointer to a structure.
132   llvm::PointerType *IdTy;
133   /// Pointer to a pointer to an Objective-C object.  Used in the new ABI
134   /// message lookup function and some GC-related functions.
135   llvm::PointerType *PtrToIdTy;
136   /// The clang type of id.  Used when using the clang CGCall infrastructure to
137   /// call Objective-C methods.
138   CanQualType ASTIdTy;
139   /// LLVM type for C int type.
140   llvm::IntegerType *IntTy;
141   /// LLVM type for an opaque pointer.  This is identical to PtrToInt8Ty, but is
142   /// used in the code to document the difference between i8* meaning a pointer
143   /// to a C string and i8* meaning a pointer to some opaque type.
144   llvm::PointerType *PtrTy;
145   /// LLVM type for C long type.  The runtime uses this in a lot of places where
146   /// it should be using intptr_t, but we can't fix this without breaking
147   /// compatibility with GCC...
148   llvm::IntegerType *LongTy;
149   /// LLVM type for C size_t.  Used in various runtime data structures.
150   llvm::IntegerType *SizeTy;
151   /// LLVM type for C intptr_t.
152   llvm::IntegerType *IntPtrTy;
153   /// LLVM type for C ptrdiff_t.  Mainly used in property accessor functions.
154   llvm::IntegerType *PtrDiffTy;
155   /// LLVM type for C int*.  Used for GCC-ABI-compatible non-fragile instance
156   /// variables.
157   llvm::PointerType *PtrToIntTy;
158   /// LLVM type for Objective-C BOOL type.
159   llvm::Type *BoolTy;
160   /// 32-bit integer type, to save us needing to look it up every time it's used.
161   llvm::IntegerType *Int32Ty;
162   /// 64-bit integer type, to save us needing to look it up every time it's used.
163   llvm::IntegerType *Int64Ty;
164   /// Metadata kind used to tie method lookups to message sends.  The GNUstep
165   /// runtime provides some LLVM passes that can use this to do things like
166   /// automatic IMP caching and speculative inlining.
167   unsigned msgSendMDKind;
168   /// Helper function that generates a constant string and returns a pointer to
169   /// the start of the string.  The result of this function can be used anywhere
170   /// where the C code specifies const char*.
171   llvm::Constant *MakeConstantString(const std::string &Str,
172                                      const std::string &Name="") {
173     llvm::Constant *ConstStr = CGM.GetAddrOfConstantCString(Str, Name.c_str());
174     return llvm::ConstantExpr::getGetElementPtr(ConstStr, Zeros);
175   }
176   /// Emits a linkonce_odr string, whose name is the prefix followed by the
177   /// string value.  This allows the linker to combine the strings between
178   /// different modules.  Used for EH typeinfo names, selector strings, and a
179   /// few other things.
180   llvm::Constant *ExportUniqueString(const std::string &Str,
181                                      const std::string prefix) {
182     std::string name = prefix + Str;
183     llvm::Constant *ConstStr = TheModule.getGlobalVariable(name);
184     if (!ConstStr) {
185       llvm::Constant *value = llvm::ConstantDataArray::getString(VMContext,Str);
186       ConstStr = new llvm::GlobalVariable(TheModule, value->getType(), true,
187               llvm::GlobalValue::LinkOnceODRLinkage, value, prefix + Str);
188     }
189     return llvm::ConstantExpr::getGetElementPtr(ConstStr, Zeros);
190   }
191   /// Generates a global structure, initialized by the elements in the vector.
192   /// The element types must match the types of the structure elements in the
193   /// first argument.
194   llvm::GlobalVariable *MakeGlobal(llvm::StructType *Ty,
195                                    ArrayRef<llvm::Constant *> V,
196                                    StringRef Name="",
197                                    llvm::GlobalValue::LinkageTypes linkage
198                                          =llvm::GlobalValue::InternalLinkage) {
199     llvm::Constant *C = llvm::ConstantStruct::get(Ty, V);
200     return new llvm::GlobalVariable(TheModule, Ty, false,
201         linkage, C, Name);
202   }
203   /// Generates a global array.  The vector must contain the same number of
204   /// elements that the array type declares, of the type specified as the array
205   /// element type.
206   llvm::GlobalVariable *MakeGlobal(llvm::ArrayType *Ty,
207                                    ArrayRef<llvm::Constant *> V,
208                                    StringRef Name="",
209                                    llvm::GlobalValue::LinkageTypes linkage
210                                          =llvm::GlobalValue::InternalLinkage) {
211     llvm::Constant *C = llvm::ConstantArray::get(Ty, V);
212     return new llvm::GlobalVariable(TheModule, Ty, false,
213                                     linkage, C, Name);
214   }
215   /// Generates a global array, inferring the array type from the specified
216   /// element type and the size of the initialiser.
217   llvm::GlobalVariable *MakeGlobalArray(llvm::Type *Ty,
218                                         ArrayRef<llvm::Constant *> V,
219                                         StringRef Name="",
220                                         llvm::GlobalValue::LinkageTypes linkage
221                                          =llvm::GlobalValue::InternalLinkage) {
222     llvm::ArrayType *ArrayTy = llvm::ArrayType::get(Ty, V.size());
223     return MakeGlobal(ArrayTy, V, Name, linkage);
224   }
225   /// Returns a property name and encoding string.
226   llvm::Constant *MakePropertyEncodingString(const ObjCPropertyDecl *PD,
227                                              const Decl *Container) {
228     const ObjCRuntime &R = CGM.getLangOpts().ObjCRuntime;
229     if ((R.getKind() == ObjCRuntime::GNUstep) &&
230         (R.getVersion() >= VersionTuple(1, 6))) {
231       std::string NameAndAttributes;
232       std::string TypeStr;
233       CGM.getContext().getObjCEncodingForPropertyDecl(PD, Container, TypeStr);
234       NameAndAttributes += '\0';
235       NameAndAttributes += TypeStr.length() + 3;
236       NameAndAttributes += TypeStr;
237       NameAndAttributes += '\0';
238       NameAndAttributes += PD->getNameAsString();
239       NameAndAttributes += '\0';
240       return llvm::ConstantExpr::getGetElementPtr(
241           CGM.GetAddrOfConstantString(NameAndAttributes), Zeros);
242     }
243     return MakeConstantString(PD->getNameAsString());
244   }
245   /// Push the property attributes into two structure fields.
246   void PushPropertyAttributes(std::vector<llvm::Constant*> &Fields,
247       ObjCPropertyDecl *property, bool isSynthesized=true, bool
248       isDynamic=true) {
249     int attrs = property->getPropertyAttributes();
250     // For read-only properties, clear the copy and retain flags
251     if (attrs & ObjCPropertyDecl::OBJC_PR_readonly) {
252       attrs &= ~ObjCPropertyDecl::OBJC_PR_copy;
253       attrs &= ~ObjCPropertyDecl::OBJC_PR_retain;
254       attrs &= ~ObjCPropertyDecl::OBJC_PR_weak;
255       attrs &= ~ObjCPropertyDecl::OBJC_PR_strong;
256     }
257     // The first flags field has the same attribute values as clang uses internally
258     Fields.push_back(llvm::ConstantInt::get(Int8Ty, attrs & 0xff));
259     attrs >>= 8;
260     attrs <<= 2;
261     // For protocol properties, synthesized and dynamic have no meaning, so we
262     // reuse these flags to indicate that this is a protocol property (both set
263     // has no meaning, as a property can't be both synthesized and dynamic)
264     attrs |= isSynthesized ? (1<<0) : 0;
265     attrs |= isDynamic ? (1<<1) : 0;
266     // The second field is the next four fields left shifted by two, with the
267     // low bit set to indicate whether the field is synthesized or dynamic.
268     Fields.push_back(llvm::ConstantInt::get(Int8Ty, attrs & 0xff));
269     // Two padding fields
270     Fields.push_back(llvm::ConstantInt::get(Int8Ty, 0));
271     Fields.push_back(llvm::ConstantInt::get(Int8Ty, 0));
272   }
273   /// Ensures that the value has the required type, by inserting a bitcast if
274   /// required.  This function lets us avoid inserting bitcasts that are
275   /// redundant.
276   llvm::Value* EnforceType(CGBuilderTy &B, llvm::Value *V, llvm::Type *Ty) {
277     if (V->getType() == Ty) return V;
278     return B.CreateBitCast(V, Ty);
279   }
280   // Some zeros used for GEPs in lots of places.
281   llvm::Constant *Zeros[2];
282   /// Null pointer value.  Mainly used as a terminator in various arrays.
283   llvm::Constant *NULLPtr;
284   /// LLVM context.
285   llvm::LLVMContext &VMContext;
286 private:
287   /// Placeholder for the class.  Lots of things refer to the class before we've
288   /// actually emitted it.  We use this alias as a placeholder, and then replace
289   /// it with a pointer to the class structure before finally emitting the
290   /// module.
291   llvm::GlobalAlias *ClassPtrAlias;
292   /// Placeholder for the metaclass.  Lots of things refer to the class before
293   /// we've / actually emitted it.  We use this alias as a placeholder, and then
294   /// replace / it with a pointer to the metaclass structure before finally
295   /// emitting the / module.
296   llvm::GlobalAlias *MetaClassPtrAlias;
297   /// All of the classes that have been generated for this compilation units.
298   std::vector<llvm::Constant*> Classes;
299   /// All of the categories that have been generated for this compilation units.
300   std::vector<llvm::Constant*> Categories;
301   /// All of the Objective-C constant strings that have been generated for this
302   /// compilation units.
303   std::vector<llvm::Constant*> ConstantStrings;
304   /// Map from string values to Objective-C constant strings in the output.
305   /// Used to prevent emitting Objective-C strings more than once.  This should
306   /// not be required at all - CodeGenModule should manage this list.
307   llvm::StringMap<llvm::Constant*> ObjCStrings;
308   /// All of the protocols that have been declared.
309   llvm::StringMap<llvm::Constant*> ExistingProtocols;
310   /// For each variant of a selector, we store the type encoding and a
311   /// placeholder value.  For an untyped selector, the type will be the empty
312   /// string.  Selector references are all done via the module's selector table,
313   /// so we create an alias as a placeholder and then replace it with the real
314   /// value later.
315   typedef std::pair<std::string, llvm::GlobalAlias*> TypedSelector;
316   /// Type of the selector map.  This is roughly equivalent to the structure
317   /// used in the GNUstep runtime, which maintains a list of all of the valid
318   /// types for a selector in a table.
319   typedef llvm::DenseMap<Selector, SmallVector<TypedSelector, 2> >
320     SelectorMap;
321   /// A map from selectors to selector types.  This allows us to emit all
322   /// selectors of the same name and type together.
323   SelectorMap SelectorTable;
324 
325   /// Selectors related to memory management.  When compiling in GC mode, we
326   /// omit these.
327   Selector RetainSel, ReleaseSel, AutoreleaseSel;
328   /// Runtime functions used for memory management in GC mode.  Note that clang
329   /// supports code generation for calling these functions, but neither GNU
330   /// runtime actually supports this API properly yet.
331   LazyRuntimeFunction IvarAssignFn, StrongCastAssignFn, MemMoveFn, WeakReadFn,
332     WeakAssignFn, GlobalAssignFn;
333 
334   typedef std::pair<std::string, std::string> ClassAliasPair;
335   /// All classes that have aliases set for them.
336   std::vector<ClassAliasPair> ClassAliases;
337 
338 protected:
339   /// Function used for throwing Objective-C exceptions.
340   LazyRuntimeFunction ExceptionThrowFn;
341   /// Function used for rethrowing exceptions, used at the end of \@finally or
342   /// \@synchronize blocks.
343   LazyRuntimeFunction ExceptionReThrowFn;
344   /// Function called when entering a catch function.  This is required for
345   /// differentiating Objective-C exceptions and foreign exceptions.
346   LazyRuntimeFunction EnterCatchFn;
347   /// Function called when exiting from a catch block.  Used to do exception
348   /// cleanup.
349   LazyRuntimeFunction ExitCatchFn;
350   /// Function called when entering an \@synchronize block.  Acquires the lock.
351   LazyRuntimeFunction SyncEnterFn;
352   /// Function called when exiting an \@synchronize block.  Releases the lock.
353   LazyRuntimeFunction SyncExitFn;
354 
355 private:
356 
357   /// Function called if fast enumeration detects that the collection is
358   /// modified during the update.
359   LazyRuntimeFunction EnumerationMutationFn;
360   /// Function for implementing synthesized property getters that return an
361   /// object.
362   LazyRuntimeFunction GetPropertyFn;
363   /// Function for implementing synthesized property setters that return an
364   /// object.
365   LazyRuntimeFunction SetPropertyFn;
366   /// Function used for non-object declared property getters.
367   LazyRuntimeFunction GetStructPropertyFn;
368   /// Function used for non-object declared property setters.
369   LazyRuntimeFunction SetStructPropertyFn;
370 
371   /// The version of the runtime that this class targets.  Must match the
372   /// version in the runtime.
373   int RuntimeVersion;
374   /// The version of the protocol class.  Used to differentiate between ObjC1
375   /// and ObjC2 protocols.  Objective-C 1 protocols can not contain optional
376   /// components and can not contain declared properties.  We always emit
377   /// Objective-C 2 property structures, but we have to pretend that they're
378   /// Objective-C 1 property structures when targeting the GCC runtime or it
379   /// will abort.
380   const int ProtocolVersion;
381 private:
382   /// Generates an instance variable list structure.  This is a structure
383   /// containing a size and an array of structures containing instance variable
384   /// metadata.  This is used purely for introspection in the fragile ABI.  In
385   /// the non-fragile ABI, it's used for instance variable fixup.
386   llvm::Constant *GenerateIvarList(ArrayRef<llvm::Constant *> IvarNames,
387                                    ArrayRef<llvm::Constant *> IvarTypes,
388                                    ArrayRef<llvm::Constant *> IvarOffsets);
389   /// Generates a method list structure.  This is a structure containing a size
390   /// and an array of structures containing method metadata.
391   ///
392   /// This structure is used by both classes and categories, and contains a next
393   /// pointer allowing them to be chained together in a linked list.
394   llvm::Constant *GenerateMethodList(const StringRef &ClassName,
395       const StringRef &CategoryName,
396       ArrayRef<Selector> MethodSels,
397       ArrayRef<llvm::Constant *> MethodTypes,
398       bool isClassMethodList);
399   /// Emits an empty protocol.  This is used for \@protocol() where no protocol
400   /// is found.  The runtime will (hopefully) fix up the pointer to refer to the
401   /// real protocol.
402   llvm::Constant *GenerateEmptyProtocol(const std::string &ProtocolName);
403   /// Generates a list of property metadata structures.  This follows the same
404   /// pattern as method and instance variable metadata lists.
405   llvm::Constant *GeneratePropertyList(const ObjCImplementationDecl *OID,
406         SmallVectorImpl<Selector> &InstanceMethodSels,
407         SmallVectorImpl<llvm::Constant*> &InstanceMethodTypes);
408   /// Generates a list of referenced protocols.  Classes, categories, and
409   /// protocols all use this structure.
410   llvm::Constant *GenerateProtocolList(ArrayRef<std::string> Protocols);
411   /// To ensure that all protocols are seen by the runtime, we add a category on
412   /// a class defined in the runtime, declaring no methods, but adopting the
413   /// protocols.  This is a horribly ugly hack, but it allows us to collect all
414   /// of the protocols without changing the ABI.
415   void GenerateProtocolHolderCategory();
416   /// Generates a class structure.
417   llvm::Constant *GenerateClassStructure(
418       llvm::Constant *MetaClass,
419       llvm::Constant *SuperClass,
420       unsigned info,
421       const char *Name,
422       llvm::Constant *Version,
423       llvm::Constant *InstanceSize,
424       llvm::Constant *IVars,
425       llvm::Constant *Methods,
426       llvm::Constant *Protocols,
427       llvm::Constant *IvarOffsets,
428       llvm::Constant *Properties,
429       llvm::Constant *StrongIvarBitmap,
430       llvm::Constant *WeakIvarBitmap,
431       bool isMeta=false);
432   /// Generates a method list.  This is used by protocols to define the required
433   /// and optional methods.
434   llvm::Constant *GenerateProtocolMethodList(
435       ArrayRef<llvm::Constant *> MethodNames,
436       ArrayRef<llvm::Constant *> MethodTypes);
437   /// Returns a selector with the specified type encoding.  An empty string is
438   /// used to return an untyped selector (with the types field set to NULL).
439   llvm::Value *GetSelector(CodeGenFunction &CGF, Selector Sel,
440     const std::string &TypeEncoding, bool lval);
441   /// Returns the variable used to store the offset of an instance variable.
442   llvm::GlobalVariable *ObjCIvarOffsetVariable(const ObjCInterfaceDecl *ID,
443       const ObjCIvarDecl *Ivar);
444   /// Emits a reference to a class.  This allows the linker to object if there
445   /// is no class of the matching name.
446 protected:
447   void EmitClassRef(const std::string &className);
448   /// Emits a pointer to the named class
449   virtual llvm::Value *GetClassNamed(CodeGenFunction &CGF,
450                                      const std::string &Name, bool isWeak);
451   /// Looks up the method for sending a message to the specified object.  This
452   /// mechanism differs between the GCC and GNU runtimes, so this method must be
453   /// overridden in subclasses.
454   virtual llvm::Value *LookupIMP(CodeGenFunction &CGF,
455                                  llvm::Value *&Receiver,
456                                  llvm::Value *cmd,
457                                  llvm::MDNode *node,
458                                  MessageSendInfo &MSI) = 0;
459   /// Looks up the method for sending a message to a superclass.  This
460   /// mechanism differs between the GCC and GNU runtimes, so this method must
461   /// be overridden in subclasses.
462   virtual llvm::Value *LookupIMPSuper(CodeGenFunction &CGF,
463                                       llvm::Value *ObjCSuper,
464                                       llvm::Value *cmd,
465                                       MessageSendInfo &MSI) = 0;
466   /// Libobjc2 uses a bitfield representation where small(ish) bitfields are
467   /// stored in a 64-bit value with the low bit set to 1 and the remaining 63
468   /// bits set to their values, LSB first, while larger ones are stored in a
469   /// structure of this / form:
470   ///
471   /// struct { int32_t length; int32_t values[length]; };
472   ///
473   /// The values in the array are stored in host-endian format, with the least
474   /// significant bit being assumed to come first in the bitfield.  Therefore,
475   /// a bitfield with the 64th bit set will be (int64_t)&{ 2, [0, 1<<31] },
476   /// while a bitfield / with the 63rd bit set will be 1<<64.
477   llvm::Constant *MakeBitField(ArrayRef<bool> bits);
478 public:
479   CGObjCGNU(CodeGenModule &cgm, unsigned runtimeABIVersion,
480       unsigned protocolClassVersion);
481 
482   virtual llvm::Constant *GenerateConstantString(const StringLiteral *);
483 
484   virtual RValue
485   GenerateMessageSend(CodeGenFunction &CGF,
486                       ReturnValueSlot Return,
487                       QualType ResultType,
488                       Selector Sel,
489                       llvm::Value *Receiver,
490                       const CallArgList &CallArgs,
491                       const ObjCInterfaceDecl *Class,
492                       const ObjCMethodDecl *Method);
493   virtual RValue
494   GenerateMessageSendSuper(CodeGenFunction &CGF,
495                            ReturnValueSlot Return,
496                            QualType ResultType,
497                            Selector Sel,
498                            const ObjCInterfaceDecl *Class,
499                            bool isCategoryImpl,
500                            llvm::Value *Receiver,
501                            bool IsClassMessage,
502                            const CallArgList &CallArgs,
503                            const ObjCMethodDecl *Method);
504   virtual llvm::Value *GetClass(CodeGenFunction &CGF,
505                                 const ObjCInterfaceDecl *OID);
506   virtual llvm::Value *GetSelector(CodeGenFunction &CGF, Selector Sel,
507                                    bool lval = false);
508   virtual llvm::Value *GetSelector(CodeGenFunction &CGF, const ObjCMethodDecl
509       *Method);
510   virtual llvm::Constant *GetEHType(QualType T);
511 
512   virtual llvm::Function *GenerateMethod(const ObjCMethodDecl *OMD,
513                                          const ObjCContainerDecl *CD);
514   virtual void GenerateCategory(const ObjCCategoryImplDecl *CMD);
515   virtual void GenerateClass(const ObjCImplementationDecl *ClassDecl);
516   virtual void RegisterAlias(const ObjCCompatibleAliasDecl *OAD);
517   virtual llvm::Value *GenerateProtocolRef(CodeGenFunction &CGF,
518                                            const ObjCProtocolDecl *PD);
519   virtual void GenerateProtocol(const ObjCProtocolDecl *PD);
520   virtual llvm::Function *ModuleInitFunction();
521   virtual llvm::Constant *GetPropertyGetFunction();
522   virtual llvm::Constant *GetPropertySetFunction();
523   virtual llvm::Constant *GetOptimizedPropertySetFunction(bool atomic,
524                                                           bool copy);
525   virtual llvm::Constant *GetSetStructFunction();
526   virtual llvm::Constant *GetGetStructFunction();
527   virtual llvm::Constant *GetCppAtomicObjectGetFunction();
528   virtual llvm::Constant *GetCppAtomicObjectSetFunction();
529   virtual llvm::Constant *EnumerationMutationFunction();
530 
531   virtual void EmitTryStmt(CodeGenFunction &CGF,
532                            const ObjCAtTryStmt &S);
533   virtual void EmitSynchronizedStmt(CodeGenFunction &CGF,
534                                     const ObjCAtSynchronizedStmt &S);
535   virtual void EmitThrowStmt(CodeGenFunction &CGF,
536                              const ObjCAtThrowStmt &S,
537                              bool ClearInsertionPoint=true);
538   virtual llvm::Value * EmitObjCWeakRead(CodeGenFunction &CGF,
539                                          llvm::Value *AddrWeakObj);
540   virtual void EmitObjCWeakAssign(CodeGenFunction &CGF,
541                                   llvm::Value *src, llvm::Value *dst);
542   virtual void EmitObjCGlobalAssign(CodeGenFunction &CGF,
543                                     llvm::Value *src, llvm::Value *dest,
544                                     bool threadlocal=false);
545   virtual void EmitObjCIvarAssign(CodeGenFunction &CGF,
546                                     llvm::Value *src, llvm::Value *dest,
547                                     llvm::Value *ivarOffset);
548   virtual void EmitObjCStrongCastAssign(CodeGenFunction &CGF,
549                                         llvm::Value *src, llvm::Value *dest);
550   virtual void EmitGCMemmoveCollectable(CodeGenFunction &CGF,
551                                         llvm::Value *DestPtr,
552                                         llvm::Value *SrcPtr,
553                                         llvm::Value *Size);
554   virtual LValue EmitObjCValueForIvar(CodeGenFunction &CGF,
555                                       QualType ObjectTy,
556                                       llvm::Value *BaseValue,
557                                       const ObjCIvarDecl *Ivar,
558                                       unsigned CVRQualifiers);
559   virtual llvm::Value *EmitIvarOffset(CodeGenFunction &CGF,
560                                       const ObjCInterfaceDecl *Interface,
561                                       const ObjCIvarDecl *Ivar);
562   virtual llvm::Value *EmitNSAutoreleasePoolClassRef(CodeGenFunction &CGF);
563   virtual llvm::Constant *BuildGCBlockLayout(CodeGenModule &CGM,
564                                              const CGBlockInfo &blockInfo) {
565     return NULLPtr;
566   }
567   virtual llvm::Constant *BuildRCBlockLayout(CodeGenModule &CGM,
568                                              const CGBlockInfo &blockInfo) {
569     return NULLPtr;
570   }
571 
572   virtual llvm::Constant *BuildByrefLayout(CodeGenModule &CGM,
573                                            QualType T) {
574     return NULLPtr;
575   }
576 
577   virtual llvm::GlobalVariable *GetClassGlobal(const std::string &Name) {
578     return 0;
579   }
580 };
581 /// Class representing the legacy GCC Objective-C ABI.  This is the default when
582 /// -fobjc-nonfragile-abi is not specified.
583 ///
584 /// The GCC ABI target actually generates code that is approximately compatible
585 /// with the new GNUstep runtime ABI, but refrains from using any features that
586 /// would not work with the GCC runtime.  For example, clang always generates
587 /// the extended form of the class structure, and the extra fields are simply
588 /// ignored by GCC libobjc.
589 class CGObjCGCC : public CGObjCGNU {
590   /// The GCC ABI message lookup function.  Returns an IMP pointing to the
591   /// method implementation for this message.
592   LazyRuntimeFunction MsgLookupFn;
593   /// The GCC ABI superclass message lookup function.  Takes a pointer to a
594   /// structure describing the receiver and the class, and a selector as
595   /// arguments.  Returns the IMP for the corresponding method.
596   LazyRuntimeFunction MsgLookupSuperFn;
597 protected:
598   virtual llvm::Value *LookupIMP(CodeGenFunction &CGF,
599                                  llvm::Value *&Receiver,
600                                  llvm::Value *cmd,
601                                  llvm::MDNode *node,
602                                  MessageSendInfo &MSI) {
603     CGBuilderTy &Builder = CGF.Builder;
604     llvm::Value *args[] = {
605             EnforceType(Builder, Receiver, IdTy),
606             EnforceType(Builder, cmd, SelectorTy) };
607     llvm::CallSite imp = CGF.EmitRuntimeCallOrInvoke(MsgLookupFn, args);
608     imp->setMetadata(msgSendMDKind, node);
609     return imp.getInstruction();
610   }
611   virtual llvm::Value *LookupIMPSuper(CodeGenFunction &CGF,
612                                       llvm::Value *ObjCSuper,
613                                       llvm::Value *cmd,
614                                       MessageSendInfo &MSI) {
615       CGBuilderTy &Builder = CGF.Builder;
616       llvm::Value *lookupArgs[] = {EnforceType(Builder, ObjCSuper,
617           PtrToObjCSuperTy), cmd};
618       return CGF.EmitNounwindRuntimeCall(MsgLookupSuperFn, lookupArgs);
619     }
620   public:
621     CGObjCGCC(CodeGenModule &Mod) : CGObjCGNU(Mod, 8, 2) {
622       // IMP objc_msg_lookup(id, SEL);
623       MsgLookupFn.init(&CGM, "objc_msg_lookup", IMPTy, IdTy, SelectorTy, NULL);
624       // IMP objc_msg_lookup_super(struct objc_super*, SEL);
625       MsgLookupSuperFn.init(&CGM, "objc_msg_lookup_super", IMPTy,
626               PtrToObjCSuperTy, SelectorTy, NULL);
627     }
628 };
629 /// Class used when targeting the new GNUstep runtime ABI.
630 class CGObjCGNUstep : public CGObjCGNU {
631     /// The slot lookup function.  Returns a pointer to a cacheable structure
632     /// that contains (among other things) the IMP.
633     LazyRuntimeFunction SlotLookupFn;
634     /// The GNUstep ABI superclass message lookup function.  Takes a pointer to
635     /// a structure describing the receiver and the class, and a selector as
636     /// arguments.  Returns the slot for the corresponding method.  Superclass
637     /// message lookup rarely changes, so this is a good caching opportunity.
638     LazyRuntimeFunction SlotLookupSuperFn;
639     /// Specialised function for setting atomic retain properties
640     LazyRuntimeFunction SetPropertyAtomic;
641     /// Specialised function for setting atomic copy properties
642     LazyRuntimeFunction SetPropertyAtomicCopy;
643     /// Specialised function for setting nonatomic retain properties
644     LazyRuntimeFunction SetPropertyNonAtomic;
645     /// Specialised function for setting nonatomic copy properties
646     LazyRuntimeFunction SetPropertyNonAtomicCopy;
647     /// Function to perform atomic copies of C++ objects with nontrivial copy
648     /// constructors from Objective-C ivars.
649     LazyRuntimeFunction CxxAtomicObjectGetFn;
650     /// Function to perform atomic copies of C++ objects with nontrivial copy
651     /// constructors to Objective-C ivars.
652     LazyRuntimeFunction CxxAtomicObjectSetFn;
653     /// Type of an slot structure pointer.  This is returned by the various
654     /// lookup functions.
655     llvm::Type *SlotTy;
656   public:
657     virtual llvm::Constant *GetEHType(QualType T);
658   protected:
659     virtual llvm::Value *LookupIMP(CodeGenFunction &CGF,
660                                    llvm::Value *&Receiver,
661                                    llvm::Value *cmd,
662                                    llvm::MDNode *node,
663                                    MessageSendInfo &MSI) {
664       CGBuilderTy &Builder = CGF.Builder;
665       llvm::Function *LookupFn = SlotLookupFn;
666 
667       // Store the receiver on the stack so that we can reload it later
668       llvm::Value *ReceiverPtr = CGF.CreateTempAlloca(Receiver->getType());
669       Builder.CreateStore(Receiver, ReceiverPtr);
670 
671       llvm::Value *self;
672 
673       if (isa<ObjCMethodDecl>(CGF.CurCodeDecl)) {
674         self = CGF.LoadObjCSelf();
675       } else {
676         self = llvm::ConstantPointerNull::get(IdTy);
677       }
678 
679       // The lookup function is guaranteed not to capture the receiver pointer.
680       LookupFn->setDoesNotCapture(1);
681 
682       llvm::Value *args[] = {
683               EnforceType(Builder, ReceiverPtr, PtrToIdTy),
684               EnforceType(Builder, cmd, SelectorTy),
685               EnforceType(Builder, self, IdTy) };
686       llvm::CallSite slot = CGF.EmitRuntimeCallOrInvoke(LookupFn, args);
687       slot.setOnlyReadsMemory();
688       slot->setMetadata(msgSendMDKind, node);
689 
690       // Load the imp from the slot
691       llvm::Value *imp =
692         Builder.CreateLoad(Builder.CreateStructGEP(slot.getInstruction(), 4));
693 
694       // The lookup function may have changed the receiver, so make sure we use
695       // the new one.
696       Receiver = Builder.CreateLoad(ReceiverPtr, true);
697       return imp;
698     }
699     virtual llvm::Value *LookupIMPSuper(CodeGenFunction &CGF,
700                                         llvm::Value *ObjCSuper,
701                                         llvm::Value *cmd,
702                                         MessageSendInfo &MSI) {
703       CGBuilderTy &Builder = CGF.Builder;
704       llvm::Value *lookupArgs[] = {ObjCSuper, cmd};
705 
706       llvm::CallInst *slot =
707         CGF.EmitNounwindRuntimeCall(SlotLookupSuperFn, lookupArgs);
708       slot->setOnlyReadsMemory();
709 
710       return Builder.CreateLoad(Builder.CreateStructGEP(slot, 4));
711     }
712   public:
713     CGObjCGNUstep(CodeGenModule &Mod) : CGObjCGNU(Mod, 9, 3) {
714       const ObjCRuntime &R = CGM.getLangOpts().ObjCRuntime;
715 
716       llvm::StructType *SlotStructTy = llvm::StructType::get(PtrTy,
717           PtrTy, PtrTy, IntTy, IMPTy, NULL);
718       SlotTy = llvm::PointerType::getUnqual(SlotStructTy);
719       // Slot_t objc_msg_lookup_sender(id *receiver, SEL selector, id sender);
720       SlotLookupFn.init(&CGM, "objc_msg_lookup_sender", SlotTy, PtrToIdTy,
721           SelectorTy, IdTy, NULL);
722       // Slot_t objc_msg_lookup_super(struct objc_super*, SEL);
723       SlotLookupSuperFn.init(&CGM, "objc_slot_lookup_super", SlotTy,
724               PtrToObjCSuperTy, SelectorTy, NULL);
725       // If we're in ObjC++ mode, then we want to make
726       if (CGM.getLangOpts().CPlusPlus) {
727         llvm::Type *VoidTy = llvm::Type::getVoidTy(VMContext);
728         // void *__cxa_begin_catch(void *e)
729         EnterCatchFn.init(&CGM, "__cxa_begin_catch", PtrTy, PtrTy, NULL);
730         // void __cxa_end_catch(void)
731         ExitCatchFn.init(&CGM, "__cxa_end_catch", VoidTy, NULL);
732         // void _Unwind_Resume_or_Rethrow(void*)
733         ExceptionReThrowFn.init(&CGM, "_Unwind_Resume_or_Rethrow", VoidTy,
734             PtrTy, NULL);
735       } else if (R.getVersion() >= VersionTuple(1, 7)) {
736         llvm::Type *VoidTy = llvm::Type::getVoidTy(VMContext);
737         // id objc_begin_catch(void *e)
738         EnterCatchFn.init(&CGM, "objc_begin_catch", IdTy, PtrTy, NULL);
739         // void objc_end_catch(void)
740         ExitCatchFn.init(&CGM, "objc_end_catch", VoidTy, NULL);
741         // void _Unwind_Resume_or_Rethrow(void*)
742         ExceptionReThrowFn.init(&CGM, "objc_exception_rethrow", VoidTy,
743             PtrTy, NULL);
744       }
745       llvm::Type *VoidTy = llvm::Type::getVoidTy(VMContext);
746       SetPropertyAtomic.init(&CGM, "objc_setProperty_atomic", VoidTy, IdTy,
747           SelectorTy, IdTy, PtrDiffTy, NULL);
748       SetPropertyAtomicCopy.init(&CGM, "objc_setProperty_atomic_copy", VoidTy,
749           IdTy, SelectorTy, IdTy, PtrDiffTy, NULL);
750       SetPropertyNonAtomic.init(&CGM, "objc_setProperty_nonatomic", VoidTy,
751           IdTy, SelectorTy, IdTy, PtrDiffTy, NULL);
752       SetPropertyNonAtomicCopy.init(&CGM, "objc_setProperty_nonatomic_copy",
753           VoidTy, IdTy, SelectorTy, IdTy, PtrDiffTy, NULL);
754       // void objc_setCppObjectAtomic(void *dest, const void *src, void
755       // *helper);
756       CxxAtomicObjectSetFn.init(&CGM, "objc_setCppObjectAtomic", VoidTy, PtrTy,
757           PtrTy, PtrTy, NULL);
758       // void objc_getCppObjectAtomic(void *dest, const void *src, void
759       // *helper);
760       CxxAtomicObjectGetFn.init(&CGM, "objc_getCppObjectAtomic", VoidTy, PtrTy,
761           PtrTy, PtrTy, NULL);
762     }
763     virtual llvm::Constant *GetCppAtomicObjectGetFunction() {
764       // The optimised functions were added in version 1.7 of the GNUstep
765       // runtime.
766       assert (CGM.getLangOpts().ObjCRuntime.getVersion() >=
767           VersionTuple(1, 7));
768       return CxxAtomicObjectGetFn;
769     }
770     virtual llvm::Constant *GetCppAtomicObjectSetFunction() {
771       // The optimised functions were added in version 1.7 of the GNUstep
772       // runtime.
773       assert (CGM.getLangOpts().ObjCRuntime.getVersion() >=
774           VersionTuple(1, 7));
775       return CxxAtomicObjectSetFn;
776     }
777     virtual llvm::Constant *GetOptimizedPropertySetFunction(bool atomic,
778                                                             bool copy) {
779       // The optimised property functions omit the GC check, and so are not
780       // safe to use in GC mode.  The standard functions are fast in GC mode,
781       // so there is less advantage in using them.
782       assert ((CGM.getLangOpts().getGC() == LangOptions::NonGC));
783       // The optimised functions were added in version 1.7 of the GNUstep
784       // runtime.
785       assert (CGM.getLangOpts().ObjCRuntime.getVersion() >=
786           VersionTuple(1, 7));
787 
788       if (atomic) {
789         if (copy) return SetPropertyAtomicCopy;
790         return SetPropertyAtomic;
791       }
792       if (copy) return SetPropertyNonAtomicCopy;
793       return SetPropertyNonAtomic;
794 
795       return 0;
796     }
797 };
798 
799 /// Support for the ObjFW runtime. Support here is due to
800 /// Jonathan Schleifer <[email protected]>, the ObjFW maintainer.
801 class CGObjCObjFW: public CGObjCGNU {
802 protected:
803   /// The GCC ABI message lookup function.  Returns an IMP pointing to the
804   /// method implementation for this message.
805   LazyRuntimeFunction MsgLookupFn;
806   /// stret lookup function.  While this does not seem to make sense at the
807   /// first look, this is required to call the correct forwarding function.
808   LazyRuntimeFunction MsgLookupFnSRet;
809   /// The GCC ABI superclass message lookup function.  Takes a pointer to a
810   /// structure describing the receiver and the class, and a selector as
811   /// arguments.  Returns the IMP for the corresponding method.
812   LazyRuntimeFunction MsgLookupSuperFn, MsgLookupSuperFnSRet;
813 
814   virtual llvm::Value *LookupIMP(CodeGenFunction &CGF,
815                                  llvm::Value *&Receiver,
816                                  llvm::Value *cmd,
817                                  llvm::MDNode *node,
818                                  MessageSendInfo &MSI) {
819     CGBuilderTy &Builder = CGF.Builder;
820     llvm::Value *args[] = {
821             EnforceType(Builder, Receiver, IdTy),
822             EnforceType(Builder, cmd, SelectorTy) };
823 
824     llvm::CallSite imp;
825     if (CGM.ReturnTypeUsesSRet(MSI.CallInfo))
826       imp = CGF.EmitRuntimeCallOrInvoke(MsgLookupFnSRet, args);
827     else
828       imp = CGF.EmitRuntimeCallOrInvoke(MsgLookupFn, args);
829 
830     imp->setMetadata(msgSendMDKind, node);
831     return imp.getInstruction();
832   }
833 
834   virtual llvm::Value *LookupIMPSuper(CodeGenFunction &CGF,
835                                       llvm::Value *ObjCSuper,
836                                       llvm::Value *cmd,
837                                       MessageSendInfo &MSI) {
838       CGBuilderTy &Builder = CGF.Builder;
839       llvm::Value *lookupArgs[] = {EnforceType(Builder, ObjCSuper,
840           PtrToObjCSuperTy), cmd};
841 
842       if (CGM.ReturnTypeUsesSRet(MSI.CallInfo))
843         return CGF.EmitNounwindRuntimeCall(MsgLookupSuperFnSRet, lookupArgs);
844       else
845         return CGF.EmitNounwindRuntimeCall(MsgLookupSuperFn, lookupArgs);
846     }
847 
848   virtual llvm::Value *GetClassNamed(CodeGenFunction &CGF,
849                                      const std::string &Name, bool isWeak) {
850     if (isWeak)
851       return CGObjCGNU::GetClassNamed(CGF, Name, isWeak);
852 
853     EmitClassRef(Name);
854 
855     std::string SymbolName = "_OBJC_CLASS_" + Name;
856 
857     llvm::GlobalVariable *ClassSymbol = TheModule.getGlobalVariable(SymbolName);
858 
859     if (!ClassSymbol)
860       ClassSymbol = new llvm::GlobalVariable(TheModule, LongTy, false,
861                                              llvm::GlobalValue::ExternalLinkage,
862                                              0, SymbolName);
863 
864     return ClassSymbol;
865   }
866 
867 public:
868   CGObjCObjFW(CodeGenModule &Mod): CGObjCGNU(Mod, 9, 3) {
869     // IMP objc_msg_lookup(id, SEL);
870     MsgLookupFn.init(&CGM, "objc_msg_lookup", IMPTy, IdTy, SelectorTy, NULL);
871     MsgLookupFnSRet.init(&CGM, "objc_msg_lookup_stret", IMPTy, IdTy,
872                          SelectorTy, NULL);
873     // IMP objc_msg_lookup_super(struct objc_super*, SEL);
874     MsgLookupSuperFn.init(&CGM, "objc_msg_lookup_super", IMPTy,
875                           PtrToObjCSuperTy, SelectorTy, NULL);
876     MsgLookupSuperFnSRet.init(&CGM, "objc_msg_lookup_super_stret", IMPTy,
877                               PtrToObjCSuperTy, SelectorTy, NULL);
878   }
879 };
880 } // end anonymous namespace
881 
882 
883 /// Emits a reference to a dummy variable which is emitted with each class.
884 /// This ensures that a linker error will be generated when trying to link
885 /// together modules where a referenced class is not defined.
886 void CGObjCGNU::EmitClassRef(const std::string &className) {
887   std::string symbolRef = "__objc_class_ref_" + className;
888   // Don't emit two copies of the same symbol
889   if (TheModule.getGlobalVariable(symbolRef))
890     return;
891   std::string symbolName = "__objc_class_name_" + className;
892   llvm::GlobalVariable *ClassSymbol = TheModule.getGlobalVariable(symbolName);
893   if (!ClassSymbol) {
894     ClassSymbol = new llvm::GlobalVariable(TheModule, LongTy, false,
895         llvm::GlobalValue::ExternalLinkage, 0, symbolName);
896   }
897   new llvm::GlobalVariable(TheModule, ClassSymbol->getType(), true,
898     llvm::GlobalValue::WeakAnyLinkage, ClassSymbol, symbolRef);
899 }
900 
901 static std::string SymbolNameForMethod(const StringRef &ClassName,
902     const StringRef &CategoryName, const Selector MethodName,
903     bool isClassMethod) {
904   std::string MethodNameColonStripped = MethodName.getAsString();
905   std::replace(MethodNameColonStripped.begin(), MethodNameColonStripped.end(),
906       ':', '_');
907   return (Twine(isClassMethod ? "_c_" : "_i_") + ClassName + "_" +
908     CategoryName + "_" + MethodNameColonStripped).str();
909 }
910 
911 CGObjCGNU::CGObjCGNU(CodeGenModule &cgm, unsigned runtimeABIVersion,
912     unsigned protocolClassVersion)
913   : CGObjCRuntime(cgm), TheModule(CGM.getModule()),
914     VMContext(cgm.getLLVMContext()), ClassPtrAlias(0), MetaClassPtrAlias(0),
915     RuntimeVersion(runtimeABIVersion), ProtocolVersion(protocolClassVersion) {
916 
917   msgSendMDKind = VMContext.getMDKindID("GNUObjCMessageSend");
918 
919   CodeGenTypes &Types = CGM.getTypes();
920   IntTy = cast<llvm::IntegerType>(
921       Types.ConvertType(CGM.getContext().IntTy));
922   LongTy = cast<llvm::IntegerType>(
923       Types.ConvertType(CGM.getContext().LongTy));
924   SizeTy = cast<llvm::IntegerType>(
925       Types.ConvertType(CGM.getContext().getSizeType()));
926   PtrDiffTy = cast<llvm::IntegerType>(
927       Types.ConvertType(CGM.getContext().getPointerDiffType()));
928   BoolTy = CGM.getTypes().ConvertType(CGM.getContext().BoolTy);
929 
930   Int8Ty = llvm::Type::getInt8Ty(VMContext);
931   // C string type.  Used in lots of places.
932   PtrToInt8Ty = llvm::PointerType::getUnqual(Int8Ty);
933 
934   Zeros[0] = llvm::ConstantInt::get(LongTy, 0);
935   Zeros[1] = Zeros[0];
936   NULLPtr = llvm::ConstantPointerNull::get(PtrToInt8Ty);
937   // Get the selector Type.
938   QualType selTy = CGM.getContext().getObjCSelType();
939   if (QualType() == selTy) {
940     SelectorTy = PtrToInt8Ty;
941   } else {
942     SelectorTy = cast<llvm::PointerType>(CGM.getTypes().ConvertType(selTy));
943   }
944 
945   PtrToIntTy = llvm::PointerType::getUnqual(IntTy);
946   PtrTy = PtrToInt8Ty;
947 
948   Int32Ty = llvm::Type::getInt32Ty(VMContext);
949   Int64Ty = llvm::Type::getInt64Ty(VMContext);
950 
951   IntPtrTy =
952       TheModule.getPointerSize() == llvm::Module::Pointer32 ? Int32Ty : Int64Ty;
953 
954   // Object type
955   QualType UnqualIdTy = CGM.getContext().getObjCIdType();
956   ASTIdTy = CanQualType();
957   if (UnqualIdTy != QualType()) {
958     ASTIdTy = CGM.getContext().getCanonicalType(UnqualIdTy);
959     IdTy = cast<llvm::PointerType>(CGM.getTypes().ConvertType(ASTIdTy));
960   } else {
961     IdTy = PtrToInt8Ty;
962   }
963   PtrToIdTy = llvm::PointerType::getUnqual(IdTy);
964 
965   ObjCSuperTy = llvm::StructType::get(IdTy, IdTy, NULL);
966   PtrToObjCSuperTy = llvm::PointerType::getUnqual(ObjCSuperTy);
967 
968   llvm::Type *VoidTy = llvm::Type::getVoidTy(VMContext);
969 
970   // void objc_exception_throw(id);
971   ExceptionThrowFn.init(&CGM, "objc_exception_throw", VoidTy, IdTy, NULL);
972   ExceptionReThrowFn.init(&CGM, "objc_exception_throw", VoidTy, IdTy, NULL);
973   // int objc_sync_enter(id);
974   SyncEnterFn.init(&CGM, "objc_sync_enter", IntTy, IdTy, NULL);
975   // int objc_sync_exit(id);
976   SyncExitFn.init(&CGM, "objc_sync_exit", IntTy, IdTy, NULL);
977 
978   // void objc_enumerationMutation (id)
979   EnumerationMutationFn.init(&CGM, "objc_enumerationMutation", VoidTy,
980       IdTy, NULL);
981 
982   // id objc_getProperty(id, SEL, ptrdiff_t, BOOL)
983   GetPropertyFn.init(&CGM, "objc_getProperty", IdTy, IdTy, SelectorTy,
984       PtrDiffTy, BoolTy, NULL);
985   // void objc_setProperty(id, SEL, ptrdiff_t, id, BOOL, BOOL)
986   SetPropertyFn.init(&CGM, "objc_setProperty", VoidTy, IdTy, SelectorTy,
987       PtrDiffTy, IdTy, BoolTy, BoolTy, NULL);
988   // void objc_setPropertyStruct(void*, void*, ptrdiff_t, BOOL, BOOL)
989   GetStructPropertyFn.init(&CGM, "objc_getPropertyStruct", VoidTy, PtrTy, PtrTy,
990       PtrDiffTy, BoolTy, BoolTy, NULL);
991   // void objc_setPropertyStruct(void*, void*, ptrdiff_t, BOOL, BOOL)
992   SetStructPropertyFn.init(&CGM, "objc_setPropertyStruct", VoidTy, PtrTy, PtrTy,
993       PtrDiffTy, BoolTy, BoolTy, NULL);
994 
995   // IMP type
996   llvm::Type *IMPArgs[] = { IdTy, SelectorTy };
997   IMPTy = llvm::PointerType::getUnqual(llvm::FunctionType::get(IdTy, IMPArgs,
998               true));
999 
1000   const LangOptions &Opts = CGM.getLangOpts();
1001   if ((Opts.getGC() != LangOptions::NonGC) || Opts.ObjCAutoRefCount)
1002     RuntimeVersion = 10;
1003 
1004   // Don't bother initialising the GC stuff unless we're compiling in GC mode
1005   if (Opts.getGC() != LangOptions::NonGC) {
1006     // This is a bit of an hack.  We should sort this out by having a proper
1007     // CGObjCGNUstep subclass for GC, but we may want to really support the old
1008     // ABI and GC added in ObjectiveC2.framework, so we fudge it a bit for now
1009     // Get selectors needed in GC mode
1010     RetainSel = GetNullarySelector("retain", CGM.getContext());
1011     ReleaseSel = GetNullarySelector("release", CGM.getContext());
1012     AutoreleaseSel = GetNullarySelector("autorelease", CGM.getContext());
1013 
1014     // Get functions needed in GC mode
1015 
1016     // id objc_assign_ivar(id, id, ptrdiff_t);
1017     IvarAssignFn.init(&CGM, "objc_assign_ivar", IdTy, IdTy, IdTy, PtrDiffTy,
1018         NULL);
1019     // id objc_assign_strongCast (id, id*)
1020     StrongCastAssignFn.init(&CGM, "objc_assign_strongCast", IdTy, IdTy,
1021         PtrToIdTy, NULL);
1022     // id objc_assign_global(id, id*);
1023     GlobalAssignFn.init(&CGM, "objc_assign_global", IdTy, IdTy, PtrToIdTy,
1024         NULL);
1025     // id objc_assign_weak(id, id*);
1026     WeakAssignFn.init(&CGM, "objc_assign_weak", IdTy, IdTy, PtrToIdTy, NULL);
1027     // id objc_read_weak(id*);
1028     WeakReadFn.init(&CGM, "objc_read_weak", IdTy, PtrToIdTy, NULL);
1029     // void *objc_memmove_collectable(void*, void *, size_t);
1030     MemMoveFn.init(&CGM, "objc_memmove_collectable", PtrTy, PtrTy, PtrTy,
1031         SizeTy, NULL);
1032   }
1033 }
1034 
1035 llvm::Value *CGObjCGNU::GetClassNamed(CodeGenFunction &CGF,
1036                                       const std::string &Name,
1037                                       bool isWeak) {
1038   llvm::Value *ClassName = CGM.GetAddrOfConstantCString(Name);
1039   // With the incompatible ABI, this will need to be replaced with a direct
1040   // reference to the class symbol.  For the compatible nonfragile ABI we are
1041   // still performing this lookup at run time but emitting the symbol for the
1042   // class externally so that we can make the switch later.
1043   //
1044   // Libobjc2 contains an LLVM pass that replaces calls to objc_lookup_class
1045   // with memoized versions or with static references if it's safe to do so.
1046   if (!isWeak)
1047     EmitClassRef(Name);
1048   ClassName = CGF.Builder.CreateStructGEP(ClassName, 0);
1049 
1050   llvm::Constant *ClassLookupFn =
1051     CGM.CreateRuntimeFunction(llvm::FunctionType::get(IdTy, PtrToInt8Ty, true),
1052                               "objc_lookup_class");
1053   return CGF.EmitNounwindRuntimeCall(ClassLookupFn, ClassName);
1054 }
1055 
1056 // This has to perform the lookup every time, since posing and related
1057 // techniques can modify the name -> class mapping.
1058 llvm::Value *CGObjCGNU::GetClass(CodeGenFunction &CGF,
1059                                  const ObjCInterfaceDecl *OID) {
1060   return GetClassNamed(CGF, OID->getNameAsString(), OID->isWeakImported());
1061 }
1062 llvm::Value *CGObjCGNU::EmitNSAutoreleasePoolClassRef(CodeGenFunction &CGF) {
1063   return GetClassNamed(CGF, "NSAutoreleasePool", false);
1064 }
1065 
1066 llvm::Value *CGObjCGNU::GetSelector(CodeGenFunction &CGF, Selector Sel,
1067     const std::string &TypeEncoding, bool lval) {
1068 
1069   SmallVectorImpl<TypedSelector> &Types = SelectorTable[Sel];
1070   llvm::GlobalAlias *SelValue = 0;
1071 
1072 
1073   for (SmallVectorImpl<TypedSelector>::iterator i = Types.begin(),
1074       e = Types.end() ; i!=e ; i++) {
1075     if (i->first == TypeEncoding) {
1076       SelValue = i->second;
1077       break;
1078     }
1079   }
1080   if (0 == SelValue) {
1081     SelValue = new llvm::GlobalAlias(SelectorTy,
1082                                      llvm::GlobalValue::PrivateLinkage,
1083                                      ".objc_selector_"+Sel.getAsString(), NULL,
1084                                      &TheModule);
1085     Types.push_back(TypedSelector(TypeEncoding, SelValue));
1086   }
1087 
1088   if (lval) {
1089     llvm::Value *tmp = CGF.CreateTempAlloca(SelValue->getType());
1090     CGF.Builder.CreateStore(SelValue, tmp);
1091     return tmp;
1092   }
1093   return SelValue;
1094 }
1095 
1096 llvm::Value *CGObjCGNU::GetSelector(CodeGenFunction &CGF, Selector Sel,
1097                                     bool lval) {
1098   return GetSelector(CGF, Sel, std::string(), lval);
1099 }
1100 
1101 llvm::Value *CGObjCGNU::GetSelector(CodeGenFunction &CGF,
1102                                     const ObjCMethodDecl *Method) {
1103   std::string SelTypes;
1104   CGM.getContext().getObjCEncodingForMethodDecl(Method, SelTypes);
1105   return GetSelector(CGF, Method->getSelector(), SelTypes, false);
1106 }
1107 
1108 llvm::Constant *CGObjCGNU::GetEHType(QualType T) {
1109   if (T->isObjCIdType() || T->isObjCQualifiedIdType()) {
1110     // With the old ABI, there was only one kind of catchall, which broke
1111     // foreign exceptions.  With the new ABI, we use __objc_id_typeinfo as
1112     // a pointer indicating object catchalls, and NULL to indicate real
1113     // catchalls
1114     if (CGM.getLangOpts().ObjCRuntime.isNonFragile()) {
1115       return MakeConstantString("@id");
1116     } else {
1117       return 0;
1118     }
1119   }
1120 
1121   // All other types should be Objective-C interface pointer types.
1122   const ObjCObjectPointerType *OPT = T->getAs<ObjCObjectPointerType>();
1123   assert(OPT && "Invalid @catch type.");
1124   const ObjCInterfaceDecl *IDecl = OPT->getObjectType()->getInterface();
1125   assert(IDecl && "Invalid @catch type.");
1126   return MakeConstantString(IDecl->getIdentifier()->getName());
1127 }
1128 
1129 llvm::Constant *CGObjCGNUstep::GetEHType(QualType T) {
1130   if (!CGM.getLangOpts().CPlusPlus)
1131     return CGObjCGNU::GetEHType(T);
1132 
1133   // For Objective-C++, we want to provide the ability to catch both C++ and
1134   // Objective-C objects in the same function.
1135 
1136   // There's a particular fixed type info for 'id'.
1137   if (T->isObjCIdType() ||
1138       T->isObjCQualifiedIdType()) {
1139     llvm::Constant *IDEHType =
1140       CGM.getModule().getGlobalVariable("__objc_id_type_info");
1141     if (!IDEHType)
1142       IDEHType =
1143         new llvm::GlobalVariable(CGM.getModule(), PtrToInt8Ty,
1144                                  false,
1145                                  llvm::GlobalValue::ExternalLinkage,
1146                                  0, "__objc_id_type_info");
1147     return llvm::ConstantExpr::getBitCast(IDEHType, PtrToInt8Ty);
1148   }
1149 
1150   const ObjCObjectPointerType *PT =
1151     T->getAs<ObjCObjectPointerType>();
1152   assert(PT && "Invalid @catch type.");
1153   const ObjCInterfaceType *IT = PT->getInterfaceType();
1154   assert(IT && "Invalid @catch type.");
1155   std::string className = IT->getDecl()->getIdentifier()->getName();
1156 
1157   std::string typeinfoName = "__objc_eh_typeinfo_" + className;
1158 
1159   // Return the existing typeinfo if it exists
1160   llvm::Constant *typeinfo = TheModule.getGlobalVariable(typeinfoName);
1161   if (typeinfo)
1162     return llvm::ConstantExpr::getBitCast(typeinfo, PtrToInt8Ty);
1163 
1164   // Otherwise create it.
1165 
1166   // vtable for gnustep::libobjc::__objc_class_type_info
1167   // It's quite ugly hard-coding this.  Ideally we'd generate it using the host
1168   // platform's name mangling.
1169   const char *vtableName = "_ZTVN7gnustep7libobjc22__objc_class_type_infoE";
1170   llvm::Constant *Vtable = TheModule.getGlobalVariable(vtableName);
1171   if (!Vtable) {
1172     Vtable = new llvm::GlobalVariable(TheModule, PtrToInt8Ty, true,
1173             llvm::GlobalValue::ExternalLinkage, 0, vtableName);
1174   }
1175   llvm::Constant *Two = llvm::ConstantInt::get(IntTy, 2);
1176   Vtable = llvm::ConstantExpr::getGetElementPtr(Vtable, Two);
1177   Vtable = llvm::ConstantExpr::getBitCast(Vtable, PtrToInt8Ty);
1178 
1179   llvm::Constant *typeName =
1180     ExportUniqueString(className, "__objc_eh_typename_");
1181 
1182   std::vector<llvm::Constant*> fields;
1183   fields.push_back(Vtable);
1184   fields.push_back(typeName);
1185   llvm::Constant *TI =
1186       MakeGlobal(llvm::StructType::get(PtrToInt8Ty, PtrToInt8Ty,
1187               NULL), fields, "__objc_eh_typeinfo_" + className,
1188           llvm::GlobalValue::LinkOnceODRLinkage);
1189   return llvm::ConstantExpr::getBitCast(TI, PtrToInt8Ty);
1190 }
1191 
1192 /// Generate an NSConstantString object.
1193 llvm::Constant *CGObjCGNU::GenerateConstantString(const StringLiteral *SL) {
1194 
1195   std::string Str = SL->getString().str();
1196 
1197   // Look for an existing one
1198   llvm::StringMap<llvm::Constant*>::iterator old = ObjCStrings.find(Str);
1199   if (old != ObjCStrings.end())
1200     return old->getValue();
1201 
1202   StringRef StringClass = CGM.getLangOpts().ObjCConstantStringClass;
1203 
1204   if (StringClass.empty()) StringClass = "NXConstantString";
1205 
1206   std::string Sym = "_OBJC_CLASS_";
1207   Sym += StringClass;
1208 
1209   llvm::Constant *isa = TheModule.getNamedGlobal(Sym);
1210 
1211   if (!isa)
1212     isa = new llvm::GlobalVariable(TheModule, IdTy, /* isConstant */false,
1213             llvm::GlobalValue::ExternalWeakLinkage, 0, Sym);
1214   else if (isa->getType() != PtrToIdTy)
1215     isa = llvm::ConstantExpr::getBitCast(isa, PtrToIdTy);
1216 
1217   std::vector<llvm::Constant*> Ivars;
1218   Ivars.push_back(isa);
1219   Ivars.push_back(MakeConstantString(Str));
1220   Ivars.push_back(llvm::ConstantInt::get(IntTy, Str.size()));
1221   llvm::Constant *ObjCStr = MakeGlobal(
1222     llvm::StructType::get(PtrToIdTy, PtrToInt8Ty, IntTy, NULL),
1223     Ivars, ".objc_str");
1224   ObjCStr = llvm::ConstantExpr::getBitCast(ObjCStr, PtrToInt8Ty);
1225   ObjCStrings[Str] = ObjCStr;
1226   ConstantStrings.push_back(ObjCStr);
1227   return ObjCStr;
1228 }
1229 
1230 ///Generates a message send where the super is the receiver.  This is a message
1231 ///send to self with special delivery semantics indicating which class's method
1232 ///should be called.
1233 RValue
1234 CGObjCGNU::GenerateMessageSendSuper(CodeGenFunction &CGF,
1235                                     ReturnValueSlot Return,
1236                                     QualType ResultType,
1237                                     Selector Sel,
1238                                     const ObjCInterfaceDecl *Class,
1239                                     bool isCategoryImpl,
1240                                     llvm::Value *Receiver,
1241                                     bool IsClassMessage,
1242                                     const CallArgList &CallArgs,
1243                                     const ObjCMethodDecl *Method) {
1244   CGBuilderTy &Builder = CGF.Builder;
1245   if (CGM.getLangOpts().getGC() == LangOptions::GCOnly) {
1246     if (Sel == RetainSel || Sel == AutoreleaseSel) {
1247       return RValue::get(EnforceType(Builder, Receiver,
1248                   CGM.getTypes().ConvertType(ResultType)));
1249     }
1250     if (Sel == ReleaseSel) {
1251       return RValue::get(0);
1252     }
1253   }
1254 
1255   llvm::Value *cmd = GetSelector(CGF, Sel);
1256 
1257 
1258   CallArgList ActualArgs;
1259 
1260   ActualArgs.add(RValue::get(EnforceType(Builder, Receiver, IdTy)), ASTIdTy);
1261   ActualArgs.add(RValue::get(cmd), CGF.getContext().getObjCSelType());
1262   ActualArgs.addFrom(CallArgs);
1263 
1264   MessageSendInfo MSI = getMessageSendInfo(Method, ResultType, ActualArgs);
1265 
1266   llvm::Value *ReceiverClass = 0;
1267   if (isCategoryImpl) {
1268     llvm::Constant *classLookupFunction = 0;
1269     if (IsClassMessage)  {
1270       classLookupFunction = CGM.CreateRuntimeFunction(llvm::FunctionType::get(
1271             IdTy, PtrTy, true), "objc_get_meta_class");
1272     } else {
1273       classLookupFunction = CGM.CreateRuntimeFunction(llvm::FunctionType::get(
1274             IdTy, PtrTy, true), "objc_get_class");
1275     }
1276     ReceiverClass = Builder.CreateCall(classLookupFunction,
1277         MakeConstantString(Class->getNameAsString()));
1278   } else {
1279     // Set up global aliases for the metaclass or class pointer if they do not
1280     // already exist.  These will are forward-references which will be set to
1281     // pointers to the class and metaclass structure created for the runtime
1282     // load function.  To send a message to super, we look up the value of the
1283     // super_class pointer from either the class or metaclass structure.
1284     if (IsClassMessage)  {
1285       if (!MetaClassPtrAlias) {
1286         MetaClassPtrAlias = new llvm::GlobalAlias(IdTy,
1287             llvm::GlobalValue::InternalLinkage, ".objc_metaclass_ref" +
1288             Class->getNameAsString(), NULL, &TheModule);
1289       }
1290       ReceiverClass = MetaClassPtrAlias;
1291     } else {
1292       if (!ClassPtrAlias) {
1293         ClassPtrAlias = new llvm::GlobalAlias(IdTy,
1294             llvm::GlobalValue::InternalLinkage, ".objc_class_ref" +
1295             Class->getNameAsString(), NULL, &TheModule);
1296       }
1297       ReceiverClass = ClassPtrAlias;
1298     }
1299   }
1300   // Cast the pointer to a simplified version of the class structure
1301   ReceiverClass = Builder.CreateBitCast(ReceiverClass,
1302       llvm::PointerType::getUnqual(
1303         llvm::StructType::get(IdTy, IdTy, NULL)));
1304   // Get the superclass pointer
1305   ReceiverClass = Builder.CreateStructGEP(ReceiverClass, 1);
1306   // Load the superclass pointer
1307   ReceiverClass = Builder.CreateLoad(ReceiverClass);
1308   // Construct the structure used to look up the IMP
1309   llvm::StructType *ObjCSuperTy = llvm::StructType::get(
1310       Receiver->getType(), IdTy, NULL);
1311   llvm::Value *ObjCSuper = Builder.CreateAlloca(ObjCSuperTy);
1312 
1313   Builder.CreateStore(Receiver, Builder.CreateStructGEP(ObjCSuper, 0));
1314   Builder.CreateStore(ReceiverClass, Builder.CreateStructGEP(ObjCSuper, 1));
1315 
1316   ObjCSuper = EnforceType(Builder, ObjCSuper, PtrToObjCSuperTy);
1317 
1318   // Get the IMP
1319   llvm::Value *imp = LookupIMPSuper(CGF, ObjCSuper, cmd, MSI);
1320   imp = EnforceType(Builder, imp, MSI.MessengerType);
1321 
1322   llvm::Value *impMD[] = {
1323       llvm::MDString::get(VMContext, Sel.getAsString()),
1324       llvm::MDString::get(VMContext, Class->getSuperClass()->getNameAsString()),
1325       llvm::ConstantInt::get(llvm::Type::getInt1Ty(VMContext), IsClassMessage)
1326    };
1327   llvm::MDNode *node = llvm::MDNode::get(VMContext, impMD);
1328 
1329   llvm::Instruction *call;
1330   RValue msgRet = CGF.EmitCall(MSI.CallInfo, imp, Return, ActualArgs, 0, &call);
1331   call->setMetadata(msgSendMDKind, node);
1332   return msgRet;
1333 }
1334 
1335 /// Generate code for a message send expression.
1336 RValue
1337 CGObjCGNU::GenerateMessageSend(CodeGenFunction &CGF,
1338                                ReturnValueSlot Return,
1339                                QualType ResultType,
1340                                Selector Sel,
1341                                llvm::Value *Receiver,
1342                                const CallArgList &CallArgs,
1343                                const ObjCInterfaceDecl *Class,
1344                                const ObjCMethodDecl *Method) {
1345   CGBuilderTy &Builder = CGF.Builder;
1346 
1347   // Strip out message sends to retain / release in GC mode
1348   if (CGM.getLangOpts().getGC() == LangOptions::GCOnly) {
1349     if (Sel == RetainSel || Sel == AutoreleaseSel) {
1350       return RValue::get(EnforceType(Builder, Receiver,
1351                   CGM.getTypes().ConvertType(ResultType)));
1352     }
1353     if (Sel == ReleaseSel) {
1354       return RValue::get(0);
1355     }
1356   }
1357 
1358   // If the return type is something that goes in an integer register, the
1359   // runtime will handle 0 returns.  For other cases, we fill in the 0 value
1360   // ourselves.
1361   //
1362   // The language spec says the result of this kind of message send is
1363   // undefined, but lots of people seem to have forgotten to read that
1364   // paragraph and insist on sending messages to nil that have structure
1365   // returns.  With GCC, this generates a random return value (whatever happens
1366   // to be on the stack / in those registers at the time) on most platforms,
1367   // and generates an illegal instruction trap on SPARC.  With LLVM it corrupts
1368   // the stack.
1369   bool isPointerSizedReturn = (ResultType->isAnyPointerType() ||
1370       ResultType->isIntegralOrEnumerationType() || ResultType->isVoidType());
1371 
1372   llvm::BasicBlock *startBB = 0;
1373   llvm::BasicBlock *messageBB = 0;
1374   llvm::BasicBlock *continueBB = 0;
1375 
1376   if (!isPointerSizedReturn) {
1377     startBB = Builder.GetInsertBlock();
1378     messageBB = CGF.createBasicBlock("msgSend");
1379     continueBB = CGF.createBasicBlock("continue");
1380 
1381     llvm::Value *isNil = Builder.CreateICmpEQ(Receiver,
1382             llvm::Constant::getNullValue(Receiver->getType()));
1383     Builder.CreateCondBr(isNil, continueBB, messageBB);
1384     CGF.EmitBlock(messageBB);
1385   }
1386 
1387   IdTy = cast<llvm::PointerType>(CGM.getTypes().ConvertType(ASTIdTy));
1388   llvm::Value *cmd;
1389   if (Method)
1390     cmd = GetSelector(CGF, Method);
1391   else
1392     cmd = GetSelector(CGF, Sel);
1393   cmd = EnforceType(Builder, cmd, SelectorTy);
1394   Receiver = EnforceType(Builder, Receiver, IdTy);
1395 
1396   llvm::Value *impMD[] = {
1397         llvm::MDString::get(VMContext, Sel.getAsString()),
1398         llvm::MDString::get(VMContext, Class ? Class->getNameAsString() :""),
1399         llvm::ConstantInt::get(llvm::Type::getInt1Ty(VMContext), Class!=0)
1400    };
1401   llvm::MDNode *node = llvm::MDNode::get(VMContext, impMD);
1402 
1403   CallArgList ActualArgs;
1404   ActualArgs.add(RValue::get(Receiver), ASTIdTy);
1405   ActualArgs.add(RValue::get(cmd), CGF.getContext().getObjCSelType());
1406   ActualArgs.addFrom(CallArgs);
1407 
1408   MessageSendInfo MSI = getMessageSendInfo(Method, ResultType, ActualArgs);
1409 
1410   // Get the IMP to call
1411   llvm::Value *imp;
1412 
1413   // If we have non-legacy dispatch specified, we try using the objc_msgSend()
1414   // functions.  These are not supported on all platforms (or all runtimes on a
1415   // given platform), so we
1416   switch (CGM.getCodeGenOpts().getObjCDispatchMethod()) {
1417     case CodeGenOptions::Legacy:
1418       imp = LookupIMP(CGF, Receiver, cmd, node, MSI);
1419       break;
1420     case CodeGenOptions::Mixed:
1421     case CodeGenOptions::NonLegacy:
1422       if (CGM.ReturnTypeUsesFPRet(ResultType)) {
1423         imp = CGM.CreateRuntimeFunction(llvm::FunctionType::get(IdTy, IdTy, true),
1424                                   "objc_msgSend_fpret");
1425       } else if (CGM.ReturnTypeUsesSRet(MSI.CallInfo)) {
1426         // The actual types here don't matter - we're going to bitcast the
1427         // function anyway
1428         imp = CGM.CreateRuntimeFunction(llvm::FunctionType::get(IdTy, IdTy, true),
1429                                   "objc_msgSend_stret");
1430       } else {
1431         imp = CGM.CreateRuntimeFunction(llvm::FunctionType::get(IdTy, IdTy, true),
1432                                   "objc_msgSend");
1433       }
1434   }
1435 
1436   // Reset the receiver in case the lookup modified it
1437   ActualArgs[0] = CallArg(RValue::get(Receiver), ASTIdTy, false);
1438 
1439   imp = EnforceType(Builder, imp, MSI.MessengerType);
1440 
1441   llvm::Instruction *call;
1442   RValue msgRet = CGF.EmitCall(MSI.CallInfo, imp, Return, ActualArgs,
1443       0, &call);
1444   call->setMetadata(msgSendMDKind, node);
1445 
1446 
1447   if (!isPointerSizedReturn) {
1448     messageBB = CGF.Builder.GetInsertBlock();
1449     CGF.Builder.CreateBr(continueBB);
1450     CGF.EmitBlock(continueBB);
1451     if (msgRet.isScalar()) {
1452       llvm::Value *v = msgRet.getScalarVal();
1453       llvm::PHINode *phi = Builder.CreatePHI(v->getType(), 2);
1454       phi->addIncoming(v, messageBB);
1455       phi->addIncoming(llvm::Constant::getNullValue(v->getType()), startBB);
1456       msgRet = RValue::get(phi);
1457     } else if (msgRet.isAggregate()) {
1458       llvm::Value *v = msgRet.getAggregateAddr();
1459       llvm::PHINode *phi = Builder.CreatePHI(v->getType(), 2);
1460       llvm::PointerType *RetTy = cast<llvm::PointerType>(v->getType());
1461       llvm::AllocaInst *NullVal =
1462           CGF.CreateTempAlloca(RetTy->getElementType(), "null");
1463       CGF.InitTempAlloca(NullVal,
1464           llvm::Constant::getNullValue(RetTy->getElementType()));
1465       phi->addIncoming(v, messageBB);
1466       phi->addIncoming(NullVal, startBB);
1467       msgRet = RValue::getAggregate(phi);
1468     } else /* isComplex() */ {
1469       std::pair<llvm::Value*,llvm::Value*> v = msgRet.getComplexVal();
1470       llvm::PHINode *phi = Builder.CreatePHI(v.first->getType(), 2);
1471       phi->addIncoming(v.first, messageBB);
1472       phi->addIncoming(llvm::Constant::getNullValue(v.first->getType()),
1473           startBB);
1474       llvm::PHINode *phi2 = Builder.CreatePHI(v.second->getType(), 2);
1475       phi2->addIncoming(v.second, messageBB);
1476       phi2->addIncoming(llvm::Constant::getNullValue(v.second->getType()),
1477           startBB);
1478       msgRet = RValue::getComplex(phi, phi2);
1479     }
1480   }
1481   return msgRet;
1482 }
1483 
1484 /// Generates a MethodList.  Used in construction of a objc_class and
1485 /// objc_category structures.
1486 llvm::Constant *CGObjCGNU::
1487 GenerateMethodList(const StringRef &ClassName,
1488                    const StringRef &CategoryName,
1489                    ArrayRef<Selector> MethodSels,
1490                    ArrayRef<llvm::Constant *> MethodTypes,
1491                    bool isClassMethodList) {
1492   if (MethodSels.empty())
1493     return NULLPtr;
1494   // Get the method structure type.
1495   llvm::StructType *ObjCMethodTy = llvm::StructType::get(
1496     PtrToInt8Ty, // Really a selector, but the runtime creates it us.
1497     PtrToInt8Ty, // Method types
1498     IMPTy, //Method pointer
1499     NULL);
1500   std::vector<llvm::Constant*> Methods;
1501   std::vector<llvm::Constant*> Elements;
1502   for (unsigned int i = 0, e = MethodTypes.size(); i < e; ++i) {
1503     Elements.clear();
1504     llvm::Constant *Method =
1505       TheModule.getFunction(SymbolNameForMethod(ClassName, CategoryName,
1506                                                 MethodSels[i],
1507                                                 isClassMethodList));
1508     assert(Method && "Can't generate metadata for method that doesn't exist");
1509     llvm::Constant *C = MakeConstantString(MethodSels[i].getAsString());
1510     Elements.push_back(C);
1511     Elements.push_back(MethodTypes[i]);
1512     Method = llvm::ConstantExpr::getBitCast(Method,
1513         IMPTy);
1514     Elements.push_back(Method);
1515     Methods.push_back(llvm::ConstantStruct::get(ObjCMethodTy, Elements));
1516   }
1517 
1518   // Array of method structures
1519   llvm::ArrayType *ObjCMethodArrayTy = llvm::ArrayType::get(ObjCMethodTy,
1520                                                             Methods.size());
1521   llvm::Constant *MethodArray = llvm::ConstantArray::get(ObjCMethodArrayTy,
1522                                                          Methods);
1523 
1524   // Structure containing list pointer, array and array count
1525   llvm::StructType *ObjCMethodListTy = llvm::StructType::create(VMContext);
1526   llvm::Type *NextPtrTy = llvm::PointerType::getUnqual(ObjCMethodListTy);
1527   ObjCMethodListTy->setBody(
1528       NextPtrTy,
1529       IntTy,
1530       ObjCMethodArrayTy,
1531       NULL);
1532 
1533   Methods.clear();
1534   Methods.push_back(llvm::ConstantPointerNull::get(
1535         llvm::PointerType::getUnqual(ObjCMethodListTy)));
1536   Methods.push_back(llvm::ConstantInt::get(Int32Ty, MethodTypes.size()));
1537   Methods.push_back(MethodArray);
1538 
1539   // Create an instance of the structure
1540   return MakeGlobal(ObjCMethodListTy, Methods, ".objc_method_list");
1541 }
1542 
1543 /// Generates an IvarList.  Used in construction of a objc_class.
1544 llvm::Constant *CGObjCGNU::
1545 GenerateIvarList(ArrayRef<llvm::Constant *> IvarNames,
1546                  ArrayRef<llvm::Constant *> IvarTypes,
1547                  ArrayRef<llvm::Constant *> IvarOffsets) {
1548   if (IvarNames.size() == 0)
1549     return NULLPtr;
1550   // Get the method structure type.
1551   llvm::StructType *ObjCIvarTy = llvm::StructType::get(
1552     PtrToInt8Ty,
1553     PtrToInt8Ty,
1554     IntTy,
1555     NULL);
1556   std::vector<llvm::Constant*> Ivars;
1557   std::vector<llvm::Constant*> Elements;
1558   for (unsigned int i = 0, e = IvarNames.size() ; i < e ; i++) {
1559     Elements.clear();
1560     Elements.push_back(IvarNames[i]);
1561     Elements.push_back(IvarTypes[i]);
1562     Elements.push_back(IvarOffsets[i]);
1563     Ivars.push_back(llvm::ConstantStruct::get(ObjCIvarTy, Elements));
1564   }
1565 
1566   // Array of method structures
1567   llvm::ArrayType *ObjCIvarArrayTy = llvm::ArrayType::get(ObjCIvarTy,
1568       IvarNames.size());
1569 
1570 
1571   Elements.clear();
1572   Elements.push_back(llvm::ConstantInt::get(IntTy, (int)IvarNames.size()));
1573   Elements.push_back(llvm::ConstantArray::get(ObjCIvarArrayTy, Ivars));
1574   // Structure containing array and array count
1575   llvm::StructType *ObjCIvarListTy = llvm::StructType::get(IntTy,
1576     ObjCIvarArrayTy,
1577     NULL);
1578 
1579   // Create an instance of the structure
1580   return MakeGlobal(ObjCIvarListTy, Elements, ".objc_ivar_list");
1581 }
1582 
1583 /// Generate a class structure
1584 llvm::Constant *CGObjCGNU::GenerateClassStructure(
1585     llvm::Constant *MetaClass,
1586     llvm::Constant *SuperClass,
1587     unsigned info,
1588     const char *Name,
1589     llvm::Constant *Version,
1590     llvm::Constant *InstanceSize,
1591     llvm::Constant *IVars,
1592     llvm::Constant *Methods,
1593     llvm::Constant *Protocols,
1594     llvm::Constant *IvarOffsets,
1595     llvm::Constant *Properties,
1596     llvm::Constant *StrongIvarBitmap,
1597     llvm::Constant *WeakIvarBitmap,
1598     bool isMeta) {
1599   // Set up the class structure
1600   // Note:  Several of these are char*s when they should be ids.  This is
1601   // because the runtime performs this translation on load.
1602   //
1603   // Fields marked New ABI are part of the GNUstep runtime.  We emit them
1604   // anyway; the classes will still work with the GNU runtime, they will just
1605   // be ignored.
1606   llvm::StructType *ClassTy = llvm::StructType::get(
1607       PtrToInt8Ty,        // isa
1608       PtrToInt8Ty,        // super_class
1609       PtrToInt8Ty,        // name
1610       LongTy,             // version
1611       LongTy,             // info
1612       LongTy,             // instance_size
1613       IVars->getType(),   // ivars
1614       Methods->getType(), // methods
1615       // These are all filled in by the runtime, so we pretend
1616       PtrTy,              // dtable
1617       PtrTy,              // subclass_list
1618       PtrTy,              // sibling_class
1619       PtrTy,              // protocols
1620       PtrTy,              // gc_object_type
1621       // New ABI:
1622       LongTy,                 // abi_version
1623       IvarOffsets->getType(), // ivar_offsets
1624       Properties->getType(),  // properties
1625       IntPtrTy,               // strong_pointers
1626       IntPtrTy,               // weak_pointers
1627       NULL);
1628   llvm::Constant *Zero = llvm::ConstantInt::get(LongTy, 0);
1629   // Fill in the structure
1630   std::vector<llvm::Constant*> Elements;
1631   Elements.push_back(llvm::ConstantExpr::getBitCast(MetaClass, PtrToInt8Ty));
1632   Elements.push_back(SuperClass);
1633   Elements.push_back(MakeConstantString(Name, ".class_name"));
1634   Elements.push_back(Zero);
1635   Elements.push_back(llvm::ConstantInt::get(LongTy, info));
1636   if (isMeta) {
1637     llvm::DataLayout td(&TheModule);
1638     Elements.push_back(
1639         llvm::ConstantInt::get(LongTy,
1640                                td.getTypeSizeInBits(ClassTy) /
1641                                  CGM.getContext().getCharWidth()));
1642   } else
1643     Elements.push_back(InstanceSize);
1644   Elements.push_back(IVars);
1645   Elements.push_back(Methods);
1646   Elements.push_back(NULLPtr);
1647   Elements.push_back(NULLPtr);
1648   Elements.push_back(NULLPtr);
1649   Elements.push_back(llvm::ConstantExpr::getBitCast(Protocols, PtrTy));
1650   Elements.push_back(NULLPtr);
1651   Elements.push_back(llvm::ConstantInt::get(LongTy, 1));
1652   Elements.push_back(IvarOffsets);
1653   Elements.push_back(Properties);
1654   Elements.push_back(StrongIvarBitmap);
1655   Elements.push_back(WeakIvarBitmap);
1656   // Create an instance of the structure
1657   // This is now an externally visible symbol, so that we can speed up class
1658   // messages in the next ABI.  We may already have some weak references to
1659   // this, so check and fix them properly.
1660   std::string ClassSym((isMeta ? "_OBJC_METACLASS_": "_OBJC_CLASS_") +
1661           std::string(Name));
1662   llvm::GlobalVariable *ClassRef = TheModule.getNamedGlobal(ClassSym);
1663   llvm::Constant *Class = MakeGlobal(ClassTy, Elements, ClassSym,
1664           llvm::GlobalValue::ExternalLinkage);
1665   if (ClassRef) {
1666       ClassRef->replaceAllUsesWith(llvm::ConstantExpr::getBitCast(Class,
1667                   ClassRef->getType()));
1668       ClassRef->removeFromParent();
1669       Class->setName(ClassSym);
1670   }
1671   return Class;
1672 }
1673 
1674 llvm::Constant *CGObjCGNU::
1675 GenerateProtocolMethodList(ArrayRef<llvm::Constant *> MethodNames,
1676                            ArrayRef<llvm::Constant *> MethodTypes) {
1677   // Get the method structure type.
1678   llvm::StructType *ObjCMethodDescTy = llvm::StructType::get(
1679     PtrToInt8Ty, // Really a selector, but the runtime does the casting for us.
1680     PtrToInt8Ty,
1681     NULL);
1682   std::vector<llvm::Constant*> Methods;
1683   std::vector<llvm::Constant*> Elements;
1684   for (unsigned int i = 0, e = MethodTypes.size() ; i < e ; i++) {
1685     Elements.clear();
1686     Elements.push_back(MethodNames[i]);
1687     Elements.push_back(MethodTypes[i]);
1688     Methods.push_back(llvm::ConstantStruct::get(ObjCMethodDescTy, Elements));
1689   }
1690   llvm::ArrayType *ObjCMethodArrayTy = llvm::ArrayType::get(ObjCMethodDescTy,
1691       MethodNames.size());
1692   llvm::Constant *Array = llvm::ConstantArray::get(ObjCMethodArrayTy,
1693                                                    Methods);
1694   llvm::StructType *ObjCMethodDescListTy = llvm::StructType::get(
1695       IntTy, ObjCMethodArrayTy, NULL);
1696   Methods.clear();
1697   Methods.push_back(llvm::ConstantInt::get(IntTy, MethodNames.size()));
1698   Methods.push_back(Array);
1699   return MakeGlobal(ObjCMethodDescListTy, Methods, ".objc_method_list");
1700 }
1701 
1702 // Create the protocol list structure used in classes, categories and so on
1703 llvm::Constant *CGObjCGNU::GenerateProtocolList(ArrayRef<std::string>Protocols){
1704   llvm::ArrayType *ProtocolArrayTy = llvm::ArrayType::get(PtrToInt8Ty,
1705       Protocols.size());
1706   llvm::StructType *ProtocolListTy = llvm::StructType::get(
1707       PtrTy, //Should be a recurisve pointer, but it's always NULL here.
1708       SizeTy,
1709       ProtocolArrayTy,
1710       NULL);
1711   std::vector<llvm::Constant*> Elements;
1712   for (const std::string *iter = Protocols.begin(), *endIter = Protocols.end();
1713       iter != endIter ; iter++) {
1714     llvm::Constant *protocol = 0;
1715     llvm::StringMap<llvm::Constant*>::iterator value =
1716       ExistingProtocols.find(*iter);
1717     if (value == ExistingProtocols.end()) {
1718       protocol = GenerateEmptyProtocol(*iter);
1719     } else {
1720       protocol = value->getValue();
1721     }
1722     llvm::Constant *Ptr = llvm::ConstantExpr::getBitCast(protocol,
1723                                                            PtrToInt8Ty);
1724     Elements.push_back(Ptr);
1725   }
1726   llvm::Constant * ProtocolArray = llvm::ConstantArray::get(ProtocolArrayTy,
1727       Elements);
1728   Elements.clear();
1729   Elements.push_back(NULLPtr);
1730   Elements.push_back(llvm::ConstantInt::get(LongTy, Protocols.size()));
1731   Elements.push_back(ProtocolArray);
1732   return MakeGlobal(ProtocolListTy, Elements, ".objc_protocol_list");
1733 }
1734 
1735 llvm::Value *CGObjCGNU::GenerateProtocolRef(CodeGenFunction &CGF,
1736                                             const ObjCProtocolDecl *PD) {
1737   llvm::Value *protocol = ExistingProtocols[PD->getNameAsString()];
1738   llvm::Type *T =
1739     CGM.getTypes().ConvertType(CGM.getContext().getObjCProtoType());
1740   return CGF.Builder.CreateBitCast(protocol, llvm::PointerType::getUnqual(T));
1741 }
1742 
1743 llvm::Constant *CGObjCGNU::GenerateEmptyProtocol(
1744   const std::string &ProtocolName) {
1745   SmallVector<std::string, 0> EmptyStringVector;
1746   SmallVector<llvm::Constant*, 0> EmptyConstantVector;
1747 
1748   llvm::Constant *ProtocolList = GenerateProtocolList(EmptyStringVector);
1749   llvm::Constant *MethodList =
1750     GenerateProtocolMethodList(EmptyConstantVector, EmptyConstantVector);
1751   // Protocols are objects containing lists of the methods implemented and
1752   // protocols adopted.
1753   llvm::StructType *ProtocolTy = llvm::StructType::get(IdTy,
1754       PtrToInt8Ty,
1755       ProtocolList->getType(),
1756       MethodList->getType(),
1757       MethodList->getType(),
1758       MethodList->getType(),
1759       MethodList->getType(),
1760       NULL);
1761   std::vector<llvm::Constant*> Elements;
1762   // The isa pointer must be set to a magic number so the runtime knows it's
1763   // the correct layout.
1764   Elements.push_back(llvm::ConstantExpr::getIntToPtr(
1765         llvm::ConstantInt::get(Int32Ty, ProtocolVersion), IdTy));
1766   Elements.push_back(MakeConstantString(ProtocolName, ".objc_protocol_name"));
1767   Elements.push_back(ProtocolList);
1768   Elements.push_back(MethodList);
1769   Elements.push_back(MethodList);
1770   Elements.push_back(MethodList);
1771   Elements.push_back(MethodList);
1772   return MakeGlobal(ProtocolTy, Elements, ".objc_protocol");
1773 }
1774 
1775 void CGObjCGNU::GenerateProtocol(const ObjCProtocolDecl *PD) {
1776   ASTContext &Context = CGM.getContext();
1777   std::string ProtocolName = PD->getNameAsString();
1778 
1779   // Use the protocol definition, if there is one.
1780   if (const ObjCProtocolDecl *Def = PD->getDefinition())
1781     PD = Def;
1782 
1783   SmallVector<std::string, 16> Protocols;
1784   for (ObjCProtocolDecl::protocol_iterator PI = PD->protocol_begin(),
1785        E = PD->protocol_end(); PI != E; ++PI)
1786     Protocols.push_back((*PI)->getNameAsString());
1787   SmallVector<llvm::Constant*, 16> InstanceMethodNames;
1788   SmallVector<llvm::Constant*, 16> InstanceMethodTypes;
1789   SmallVector<llvm::Constant*, 16> OptionalInstanceMethodNames;
1790   SmallVector<llvm::Constant*, 16> OptionalInstanceMethodTypes;
1791   for (ObjCProtocolDecl::instmeth_iterator iter = PD->instmeth_begin(),
1792        E = PD->instmeth_end(); iter != E; iter++) {
1793     std::string TypeStr;
1794     Context.getObjCEncodingForMethodDecl(*iter, TypeStr);
1795     if ((*iter)->getImplementationControl() == ObjCMethodDecl::Optional) {
1796       OptionalInstanceMethodNames.push_back(
1797           MakeConstantString((*iter)->getSelector().getAsString()));
1798       OptionalInstanceMethodTypes.push_back(MakeConstantString(TypeStr));
1799     } else {
1800       InstanceMethodNames.push_back(
1801           MakeConstantString((*iter)->getSelector().getAsString()));
1802       InstanceMethodTypes.push_back(MakeConstantString(TypeStr));
1803     }
1804   }
1805   // Collect information about class methods:
1806   SmallVector<llvm::Constant*, 16> ClassMethodNames;
1807   SmallVector<llvm::Constant*, 16> ClassMethodTypes;
1808   SmallVector<llvm::Constant*, 16> OptionalClassMethodNames;
1809   SmallVector<llvm::Constant*, 16> OptionalClassMethodTypes;
1810   for (ObjCProtocolDecl::classmeth_iterator
1811          iter = PD->classmeth_begin(), endIter = PD->classmeth_end();
1812        iter != endIter ; iter++) {
1813     std::string TypeStr;
1814     Context.getObjCEncodingForMethodDecl((*iter),TypeStr);
1815     if ((*iter)->getImplementationControl() == ObjCMethodDecl::Optional) {
1816       OptionalClassMethodNames.push_back(
1817           MakeConstantString((*iter)->getSelector().getAsString()));
1818       OptionalClassMethodTypes.push_back(MakeConstantString(TypeStr));
1819     } else {
1820       ClassMethodNames.push_back(
1821           MakeConstantString((*iter)->getSelector().getAsString()));
1822       ClassMethodTypes.push_back(MakeConstantString(TypeStr));
1823     }
1824   }
1825 
1826   llvm::Constant *ProtocolList = GenerateProtocolList(Protocols);
1827   llvm::Constant *InstanceMethodList =
1828     GenerateProtocolMethodList(InstanceMethodNames, InstanceMethodTypes);
1829   llvm::Constant *ClassMethodList =
1830     GenerateProtocolMethodList(ClassMethodNames, ClassMethodTypes);
1831   llvm::Constant *OptionalInstanceMethodList =
1832     GenerateProtocolMethodList(OptionalInstanceMethodNames,
1833             OptionalInstanceMethodTypes);
1834   llvm::Constant *OptionalClassMethodList =
1835     GenerateProtocolMethodList(OptionalClassMethodNames,
1836             OptionalClassMethodTypes);
1837 
1838   // Property metadata: name, attributes, isSynthesized, setter name, setter
1839   // types, getter name, getter types.
1840   // The isSynthesized value is always set to 0 in a protocol.  It exists to
1841   // simplify the runtime library by allowing it to use the same data
1842   // structures for protocol metadata everywhere.
1843   llvm::StructType *PropertyMetadataTy = llvm::StructType::get(
1844           PtrToInt8Ty, Int8Ty, Int8Ty, Int8Ty, Int8Ty, PtrToInt8Ty,
1845           PtrToInt8Ty, PtrToInt8Ty, PtrToInt8Ty, NULL);
1846   std::vector<llvm::Constant*> Properties;
1847   std::vector<llvm::Constant*> OptionalProperties;
1848 
1849   // Add all of the property methods need adding to the method list and to the
1850   // property metadata list.
1851   for (ObjCContainerDecl::prop_iterator
1852          iter = PD->prop_begin(), endIter = PD->prop_end();
1853        iter != endIter ; iter++) {
1854     std::vector<llvm::Constant*> Fields;
1855     ObjCPropertyDecl *property = *iter;
1856 
1857     Fields.push_back(MakePropertyEncodingString(property, 0));
1858     PushPropertyAttributes(Fields, property);
1859 
1860     if (ObjCMethodDecl *getter = property->getGetterMethodDecl()) {
1861       std::string TypeStr;
1862       Context.getObjCEncodingForMethodDecl(getter,TypeStr);
1863       llvm::Constant *TypeEncoding = MakeConstantString(TypeStr);
1864       InstanceMethodTypes.push_back(TypeEncoding);
1865       Fields.push_back(MakeConstantString(getter->getSelector().getAsString()));
1866       Fields.push_back(TypeEncoding);
1867     } else {
1868       Fields.push_back(NULLPtr);
1869       Fields.push_back(NULLPtr);
1870     }
1871     if (ObjCMethodDecl *setter = property->getSetterMethodDecl()) {
1872       std::string TypeStr;
1873       Context.getObjCEncodingForMethodDecl(setter,TypeStr);
1874       llvm::Constant *TypeEncoding = MakeConstantString(TypeStr);
1875       InstanceMethodTypes.push_back(TypeEncoding);
1876       Fields.push_back(MakeConstantString(setter->getSelector().getAsString()));
1877       Fields.push_back(TypeEncoding);
1878     } else {
1879       Fields.push_back(NULLPtr);
1880       Fields.push_back(NULLPtr);
1881     }
1882     if (property->getPropertyImplementation() == ObjCPropertyDecl::Optional) {
1883       OptionalProperties.push_back(llvm::ConstantStruct::get(PropertyMetadataTy, Fields));
1884     } else {
1885       Properties.push_back(llvm::ConstantStruct::get(PropertyMetadataTy, Fields));
1886     }
1887   }
1888   llvm::Constant *PropertyArray = llvm::ConstantArray::get(
1889       llvm::ArrayType::get(PropertyMetadataTy, Properties.size()), Properties);
1890   llvm::Constant* PropertyListInitFields[] =
1891     {llvm::ConstantInt::get(IntTy, Properties.size()), NULLPtr, PropertyArray};
1892 
1893   llvm::Constant *PropertyListInit =
1894       llvm::ConstantStruct::getAnon(PropertyListInitFields);
1895   llvm::Constant *PropertyList = new llvm::GlobalVariable(TheModule,
1896       PropertyListInit->getType(), false, llvm::GlobalValue::InternalLinkage,
1897       PropertyListInit, ".objc_property_list");
1898 
1899   llvm::Constant *OptionalPropertyArray =
1900       llvm::ConstantArray::get(llvm::ArrayType::get(PropertyMetadataTy,
1901           OptionalProperties.size()) , OptionalProperties);
1902   llvm::Constant* OptionalPropertyListInitFields[] = {
1903       llvm::ConstantInt::get(IntTy, OptionalProperties.size()), NULLPtr,
1904       OptionalPropertyArray };
1905 
1906   llvm::Constant *OptionalPropertyListInit =
1907       llvm::ConstantStruct::getAnon(OptionalPropertyListInitFields);
1908   llvm::Constant *OptionalPropertyList = new llvm::GlobalVariable(TheModule,
1909           OptionalPropertyListInit->getType(), false,
1910           llvm::GlobalValue::InternalLinkage, OptionalPropertyListInit,
1911           ".objc_property_list");
1912 
1913   // Protocols are objects containing lists of the methods implemented and
1914   // protocols adopted.
1915   llvm::StructType *ProtocolTy = llvm::StructType::get(IdTy,
1916       PtrToInt8Ty,
1917       ProtocolList->getType(),
1918       InstanceMethodList->getType(),
1919       ClassMethodList->getType(),
1920       OptionalInstanceMethodList->getType(),
1921       OptionalClassMethodList->getType(),
1922       PropertyList->getType(),
1923       OptionalPropertyList->getType(),
1924       NULL);
1925   std::vector<llvm::Constant*> Elements;
1926   // The isa pointer must be set to a magic number so the runtime knows it's
1927   // the correct layout.
1928   Elements.push_back(llvm::ConstantExpr::getIntToPtr(
1929         llvm::ConstantInt::get(Int32Ty, ProtocolVersion), IdTy));
1930   Elements.push_back(MakeConstantString(ProtocolName, ".objc_protocol_name"));
1931   Elements.push_back(ProtocolList);
1932   Elements.push_back(InstanceMethodList);
1933   Elements.push_back(ClassMethodList);
1934   Elements.push_back(OptionalInstanceMethodList);
1935   Elements.push_back(OptionalClassMethodList);
1936   Elements.push_back(PropertyList);
1937   Elements.push_back(OptionalPropertyList);
1938   ExistingProtocols[ProtocolName] =
1939     llvm::ConstantExpr::getBitCast(MakeGlobal(ProtocolTy, Elements,
1940           ".objc_protocol"), IdTy);
1941 }
1942 void CGObjCGNU::GenerateProtocolHolderCategory() {
1943   // Collect information about instance methods
1944   SmallVector<Selector, 1> MethodSels;
1945   SmallVector<llvm::Constant*, 1> MethodTypes;
1946 
1947   std::vector<llvm::Constant*> Elements;
1948   const std::string ClassName = "__ObjC_Protocol_Holder_Ugly_Hack";
1949   const std::string CategoryName = "AnotherHack";
1950   Elements.push_back(MakeConstantString(CategoryName));
1951   Elements.push_back(MakeConstantString(ClassName));
1952   // Instance method list
1953   Elements.push_back(llvm::ConstantExpr::getBitCast(GenerateMethodList(
1954           ClassName, CategoryName, MethodSels, MethodTypes, false), PtrTy));
1955   // Class method list
1956   Elements.push_back(llvm::ConstantExpr::getBitCast(GenerateMethodList(
1957           ClassName, CategoryName, MethodSels, MethodTypes, true), PtrTy));
1958   // Protocol list
1959   llvm::ArrayType *ProtocolArrayTy = llvm::ArrayType::get(PtrTy,
1960       ExistingProtocols.size());
1961   llvm::StructType *ProtocolListTy = llvm::StructType::get(
1962       PtrTy, //Should be a recurisve pointer, but it's always NULL here.
1963       SizeTy,
1964       ProtocolArrayTy,
1965       NULL);
1966   std::vector<llvm::Constant*> ProtocolElements;
1967   for (llvm::StringMapIterator<llvm::Constant*> iter =
1968        ExistingProtocols.begin(), endIter = ExistingProtocols.end();
1969        iter != endIter ; iter++) {
1970     llvm::Constant *Ptr = llvm::ConstantExpr::getBitCast(iter->getValue(),
1971             PtrTy);
1972     ProtocolElements.push_back(Ptr);
1973   }
1974   llvm::Constant * ProtocolArray = llvm::ConstantArray::get(ProtocolArrayTy,
1975       ProtocolElements);
1976   ProtocolElements.clear();
1977   ProtocolElements.push_back(NULLPtr);
1978   ProtocolElements.push_back(llvm::ConstantInt::get(LongTy,
1979               ExistingProtocols.size()));
1980   ProtocolElements.push_back(ProtocolArray);
1981   Elements.push_back(llvm::ConstantExpr::getBitCast(MakeGlobal(ProtocolListTy,
1982                   ProtocolElements, ".objc_protocol_list"), PtrTy));
1983   Categories.push_back(llvm::ConstantExpr::getBitCast(
1984         MakeGlobal(llvm::StructType::get(PtrToInt8Ty, PtrToInt8Ty,
1985             PtrTy, PtrTy, PtrTy, NULL), Elements), PtrTy));
1986 }
1987 
1988 /// Libobjc2 uses a bitfield representation where small(ish) bitfields are
1989 /// stored in a 64-bit value with the low bit set to 1 and the remaining 63
1990 /// bits set to their values, LSB first, while larger ones are stored in a
1991 /// structure of this / form:
1992 ///
1993 /// struct { int32_t length; int32_t values[length]; };
1994 ///
1995 /// The values in the array are stored in host-endian format, with the least
1996 /// significant bit being assumed to come first in the bitfield.  Therefore, a
1997 /// bitfield with the 64th bit set will be (int64_t)&{ 2, [0, 1<<31] }, while a
1998 /// bitfield / with the 63rd bit set will be 1<<64.
1999 llvm::Constant *CGObjCGNU::MakeBitField(ArrayRef<bool> bits) {
2000   int bitCount = bits.size();
2001   int ptrBits =
2002         (TheModule.getPointerSize() == llvm::Module::Pointer32) ? 32 : 64;
2003   if (bitCount < ptrBits) {
2004     uint64_t val = 1;
2005     for (int i=0 ; i<bitCount ; ++i) {
2006       if (bits[i]) val |= 1ULL<<(i+1);
2007     }
2008     return llvm::ConstantInt::get(IntPtrTy, val);
2009   }
2010   SmallVector<llvm::Constant *, 8> values;
2011   int v=0;
2012   while (v < bitCount) {
2013     int32_t word = 0;
2014     for (int i=0 ; (i<32) && (v<bitCount)  ; ++i) {
2015       if (bits[v]) word |= 1<<i;
2016       v++;
2017     }
2018     values.push_back(llvm::ConstantInt::get(Int32Ty, word));
2019   }
2020   llvm::ArrayType *arrayTy = llvm::ArrayType::get(Int32Ty, values.size());
2021   llvm::Constant *array = llvm::ConstantArray::get(arrayTy, values);
2022   llvm::Constant *fields[2] = {
2023       llvm::ConstantInt::get(Int32Ty, values.size()),
2024       array };
2025   llvm::Constant *GS = MakeGlobal(llvm::StructType::get(Int32Ty, arrayTy,
2026         NULL), fields);
2027   llvm::Constant *ptr = llvm::ConstantExpr::getPtrToInt(GS, IntPtrTy);
2028   return ptr;
2029 }
2030 
2031 void CGObjCGNU::GenerateCategory(const ObjCCategoryImplDecl *OCD) {
2032   std::string ClassName = OCD->getClassInterface()->getNameAsString();
2033   std::string CategoryName = OCD->getNameAsString();
2034   // Collect information about instance methods
2035   SmallVector<Selector, 16> InstanceMethodSels;
2036   SmallVector<llvm::Constant*, 16> InstanceMethodTypes;
2037   for (ObjCCategoryImplDecl::instmeth_iterator
2038          iter = OCD->instmeth_begin(), endIter = OCD->instmeth_end();
2039        iter != endIter ; iter++) {
2040     InstanceMethodSels.push_back((*iter)->getSelector());
2041     std::string TypeStr;
2042     CGM.getContext().getObjCEncodingForMethodDecl(*iter,TypeStr);
2043     InstanceMethodTypes.push_back(MakeConstantString(TypeStr));
2044   }
2045 
2046   // Collect information about class methods
2047   SmallVector<Selector, 16> ClassMethodSels;
2048   SmallVector<llvm::Constant*, 16> ClassMethodTypes;
2049   for (ObjCCategoryImplDecl::classmeth_iterator
2050          iter = OCD->classmeth_begin(), endIter = OCD->classmeth_end();
2051        iter != endIter ; iter++) {
2052     ClassMethodSels.push_back((*iter)->getSelector());
2053     std::string TypeStr;
2054     CGM.getContext().getObjCEncodingForMethodDecl(*iter,TypeStr);
2055     ClassMethodTypes.push_back(MakeConstantString(TypeStr));
2056   }
2057 
2058   // Collect the names of referenced protocols
2059   SmallVector<std::string, 16> Protocols;
2060   const ObjCCategoryDecl *CatDecl = OCD->getCategoryDecl();
2061   const ObjCList<ObjCProtocolDecl> &Protos = CatDecl->getReferencedProtocols();
2062   for (ObjCList<ObjCProtocolDecl>::iterator I = Protos.begin(),
2063        E = Protos.end(); I != E; ++I)
2064     Protocols.push_back((*I)->getNameAsString());
2065 
2066   std::vector<llvm::Constant*> Elements;
2067   Elements.push_back(MakeConstantString(CategoryName));
2068   Elements.push_back(MakeConstantString(ClassName));
2069   // Instance method list
2070   Elements.push_back(llvm::ConstantExpr::getBitCast(GenerateMethodList(
2071           ClassName, CategoryName, InstanceMethodSels, InstanceMethodTypes,
2072           false), PtrTy));
2073   // Class method list
2074   Elements.push_back(llvm::ConstantExpr::getBitCast(GenerateMethodList(
2075           ClassName, CategoryName, ClassMethodSels, ClassMethodTypes, true),
2076         PtrTy));
2077   // Protocol list
2078   Elements.push_back(llvm::ConstantExpr::getBitCast(
2079         GenerateProtocolList(Protocols), PtrTy));
2080   Categories.push_back(llvm::ConstantExpr::getBitCast(
2081         MakeGlobal(llvm::StructType::get(PtrToInt8Ty, PtrToInt8Ty,
2082             PtrTy, PtrTy, PtrTy, NULL), Elements), PtrTy));
2083 }
2084 
2085 llvm::Constant *CGObjCGNU::GeneratePropertyList(const ObjCImplementationDecl *OID,
2086         SmallVectorImpl<Selector> &InstanceMethodSels,
2087         SmallVectorImpl<llvm::Constant*> &InstanceMethodTypes) {
2088   ASTContext &Context = CGM.getContext();
2089   // Property metadata: name, attributes, attributes2, padding1, padding2,
2090   // setter name, setter types, getter name, getter types.
2091   llvm::StructType *PropertyMetadataTy = llvm::StructType::get(
2092           PtrToInt8Ty, Int8Ty, Int8Ty, Int8Ty, Int8Ty, PtrToInt8Ty,
2093           PtrToInt8Ty, PtrToInt8Ty, PtrToInt8Ty, NULL);
2094   std::vector<llvm::Constant*> Properties;
2095 
2096   // Add all of the property methods need adding to the method list and to the
2097   // property metadata list.
2098   for (ObjCImplDecl::propimpl_iterator
2099          iter = OID->propimpl_begin(), endIter = OID->propimpl_end();
2100        iter != endIter ; iter++) {
2101     std::vector<llvm::Constant*> Fields;
2102     ObjCPropertyDecl *property = iter->getPropertyDecl();
2103     ObjCPropertyImplDecl *propertyImpl = *iter;
2104     bool isSynthesized = (propertyImpl->getPropertyImplementation() ==
2105         ObjCPropertyImplDecl::Synthesize);
2106     bool isDynamic = (propertyImpl->getPropertyImplementation() ==
2107         ObjCPropertyImplDecl::Dynamic);
2108 
2109     Fields.push_back(MakePropertyEncodingString(property, OID));
2110     PushPropertyAttributes(Fields, property, isSynthesized, isDynamic);
2111     if (ObjCMethodDecl *getter = property->getGetterMethodDecl()) {
2112       std::string TypeStr;
2113       Context.getObjCEncodingForMethodDecl(getter,TypeStr);
2114       llvm::Constant *TypeEncoding = MakeConstantString(TypeStr);
2115       if (isSynthesized) {
2116         InstanceMethodTypes.push_back(TypeEncoding);
2117         InstanceMethodSels.push_back(getter->getSelector());
2118       }
2119       Fields.push_back(MakeConstantString(getter->getSelector().getAsString()));
2120       Fields.push_back(TypeEncoding);
2121     } else {
2122       Fields.push_back(NULLPtr);
2123       Fields.push_back(NULLPtr);
2124     }
2125     if (ObjCMethodDecl *setter = property->getSetterMethodDecl()) {
2126       std::string TypeStr;
2127       Context.getObjCEncodingForMethodDecl(setter,TypeStr);
2128       llvm::Constant *TypeEncoding = MakeConstantString(TypeStr);
2129       if (isSynthesized) {
2130         InstanceMethodTypes.push_back(TypeEncoding);
2131         InstanceMethodSels.push_back(setter->getSelector());
2132       }
2133       Fields.push_back(MakeConstantString(setter->getSelector().getAsString()));
2134       Fields.push_back(TypeEncoding);
2135     } else {
2136       Fields.push_back(NULLPtr);
2137       Fields.push_back(NULLPtr);
2138     }
2139     Properties.push_back(llvm::ConstantStruct::get(PropertyMetadataTy, Fields));
2140   }
2141   llvm::ArrayType *PropertyArrayTy =
2142       llvm::ArrayType::get(PropertyMetadataTy, Properties.size());
2143   llvm::Constant *PropertyArray = llvm::ConstantArray::get(PropertyArrayTy,
2144           Properties);
2145   llvm::Constant* PropertyListInitFields[] =
2146     {llvm::ConstantInt::get(IntTy, Properties.size()), NULLPtr, PropertyArray};
2147 
2148   llvm::Constant *PropertyListInit =
2149       llvm::ConstantStruct::getAnon(PropertyListInitFields);
2150   return new llvm::GlobalVariable(TheModule, PropertyListInit->getType(), false,
2151           llvm::GlobalValue::InternalLinkage, PropertyListInit,
2152           ".objc_property_list");
2153 }
2154 
2155 void CGObjCGNU::RegisterAlias(const ObjCCompatibleAliasDecl *OAD) {
2156   // Get the class declaration for which the alias is specified.
2157   ObjCInterfaceDecl *ClassDecl =
2158     const_cast<ObjCInterfaceDecl *>(OAD->getClassInterface());
2159   std::string ClassName = ClassDecl->getNameAsString();
2160   std::string AliasName = OAD->getNameAsString();
2161   ClassAliases.push_back(ClassAliasPair(ClassName,AliasName));
2162 }
2163 
2164 void CGObjCGNU::GenerateClass(const ObjCImplementationDecl *OID) {
2165   ASTContext &Context = CGM.getContext();
2166 
2167   // Get the superclass name.
2168   const ObjCInterfaceDecl * SuperClassDecl =
2169     OID->getClassInterface()->getSuperClass();
2170   std::string SuperClassName;
2171   if (SuperClassDecl) {
2172     SuperClassName = SuperClassDecl->getNameAsString();
2173     EmitClassRef(SuperClassName);
2174   }
2175 
2176   // Get the class name
2177   ObjCInterfaceDecl *ClassDecl =
2178     const_cast<ObjCInterfaceDecl *>(OID->getClassInterface());
2179   std::string ClassName = ClassDecl->getNameAsString();
2180   // Emit the symbol that is used to generate linker errors if this class is
2181   // referenced in other modules but not declared.
2182   std::string classSymbolName = "__objc_class_name_" + ClassName;
2183   if (llvm::GlobalVariable *symbol =
2184       TheModule.getGlobalVariable(classSymbolName)) {
2185     symbol->setInitializer(llvm::ConstantInt::get(LongTy, 0));
2186   } else {
2187     new llvm::GlobalVariable(TheModule, LongTy, false,
2188     llvm::GlobalValue::ExternalLinkage, llvm::ConstantInt::get(LongTy, 0),
2189     classSymbolName);
2190   }
2191 
2192   // Get the size of instances.
2193   int instanceSize =
2194     Context.getASTObjCImplementationLayout(OID).getSize().getQuantity();
2195 
2196   // Collect information about instance variables.
2197   SmallVector<llvm::Constant*, 16> IvarNames;
2198   SmallVector<llvm::Constant*, 16> IvarTypes;
2199   SmallVector<llvm::Constant*, 16> IvarOffsets;
2200 
2201   std::vector<llvm::Constant*> IvarOffsetValues;
2202   SmallVector<bool, 16> WeakIvars;
2203   SmallVector<bool, 16> StrongIvars;
2204 
2205   int superInstanceSize = !SuperClassDecl ? 0 :
2206     Context.getASTObjCInterfaceLayout(SuperClassDecl).getSize().getQuantity();
2207   // For non-fragile ivars, set the instance size to 0 - {the size of just this
2208   // class}.  The runtime will then set this to the correct value on load.
2209   if (CGM.getLangOpts().ObjCRuntime.isNonFragile()) {
2210     instanceSize = 0 - (instanceSize - superInstanceSize);
2211   }
2212 
2213   for (const ObjCIvarDecl *IVD = ClassDecl->all_declared_ivar_begin(); IVD;
2214        IVD = IVD->getNextIvar()) {
2215       // Store the name
2216       IvarNames.push_back(MakeConstantString(IVD->getNameAsString()));
2217       // Get the type encoding for this ivar
2218       std::string TypeStr;
2219       Context.getObjCEncodingForType(IVD->getType(), TypeStr);
2220       IvarTypes.push_back(MakeConstantString(TypeStr));
2221       // Get the offset
2222       uint64_t BaseOffset = ComputeIvarBaseOffset(CGM, OID, IVD);
2223       uint64_t Offset = BaseOffset;
2224       if (CGM.getLangOpts().ObjCRuntime.isNonFragile()) {
2225         Offset = BaseOffset - superInstanceSize;
2226       }
2227       llvm::Constant *OffsetValue = llvm::ConstantInt::get(IntTy, Offset);
2228       // Create the direct offset value
2229       std::string OffsetName = "__objc_ivar_offset_value_" + ClassName +"." +
2230           IVD->getNameAsString();
2231       llvm::GlobalVariable *OffsetVar = TheModule.getGlobalVariable(OffsetName);
2232       if (OffsetVar) {
2233         OffsetVar->setInitializer(OffsetValue);
2234         // If this is the real definition, change its linkage type so that
2235         // different modules will use this one, rather than their private
2236         // copy.
2237         OffsetVar->setLinkage(llvm::GlobalValue::ExternalLinkage);
2238       } else
2239         OffsetVar = new llvm::GlobalVariable(TheModule, IntTy,
2240           false, llvm::GlobalValue::ExternalLinkage,
2241           OffsetValue,
2242           "__objc_ivar_offset_value_" + ClassName +"." +
2243           IVD->getNameAsString());
2244       IvarOffsets.push_back(OffsetValue);
2245       IvarOffsetValues.push_back(OffsetVar);
2246       Qualifiers::ObjCLifetime lt = IVD->getType().getQualifiers().getObjCLifetime();
2247       switch (lt) {
2248         case Qualifiers::OCL_Strong:
2249           StrongIvars.push_back(true);
2250           WeakIvars.push_back(false);
2251           break;
2252         case Qualifiers::OCL_Weak:
2253           StrongIvars.push_back(false);
2254           WeakIvars.push_back(true);
2255           break;
2256         default:
2257           StrongIvars.push_back(false);
2258           WeakIvars.push_back(false);
2259       }
2260   }
2261   llvm::Constant *StrongIvarBitmap = MakeBitField(StrongIvars);
2262   llvm::Constant *WeakIvarBitmap = MakeBitField(WeakIvars);
2263   llvm::GlobalVariable *IvarOffsetArray =
2264     MakeGlobalArray(PtrToIntTy, IvarOffsetValues, ".ivar.offsets");
2265 
2266 
2267   // Collect information about instance methods
2268   SmallVector<Selector, 16> InstanceMethodSels;
2269   SmallVector<llvm::Constant*, 16> InstanceMethodTypes;
2270   for (ObjCImplementationDecl::instmeth_iterator
2271          iter = OID->instmeth_begin(), endIter = OID->instmeth_end();
2272        iter != endIter ; iter++) {
2273     InstanceMethodSels.push_back((*iter)->getSelector());
2274     std::string TypeStr;
2275     Context.getObjCEncodingForMethodDecl((*iter),TypeStr);
2276     InstanceMethodTypes.push_back(MakeConstantString(TypeStr));
2277   }
2278 
2279   llvm::Constant *Properties = GeneratePropertyList(OID, InstanceMethodSels,
2280           InstanceMethodTypes);
2281 
2282 
2283   // Collect information about class methods
2284   SmallVector<Selector, 16> ClassMethodSels;
2285   SmallVector<llvm::Constant*, 16> ClassMethodTypes;
2286   for (ObjCImplementationDecl::classmeth_iterator
2287          iter = OID->classmeth_begin(), endIter = OID->classmeth_end();
2288        iter != endIter ; iter++) {
2289     ClassMethodSels.push_back((*iter)->getSelector());
2290     std::string TypeStr;
2291     Context.getObjCEncodingForMethodDecl((*iter),TypeStr);
2292     ClassMethodTypes.push_back(MakeConstantString(TypeStr));
2293   }
2294   // Collect the names of referenced protocols
2295   SmallVector<std::string, 16> Protocols;
2296   for (ObjCInterfaceDecl::protocol_iterator
2297          I = ClassDecl->protocol_begin(),
2298          E = ClassDecl->protocol_end(); I != E; ++I)
2299     Protocols.push_back((*I)->getNameAsString());
2300 
2301 
2302 
2303   // Get the superclass pointer.
2304   llvm::Constant *SuperClass;
2305   if (!SuperClassName.empty()) {
2306     SuperClass = MakeConstantString(SuperClassName, ".super_class_name");
2307   } else {
2308     SuperClass = llvm::ConstantPointerNull::get(PtrToInt8Ty);
2309   }
2310   // Empty vector used to construct empty method lists
2311   SmallVector<llvm::Constant*, 1>  empty;
2312   // Generate the method and instance variable lists
2313   llvm::Constant *MethodList = GenerateMethodList(ClassName, "",
2314       InstanceMethodSels, InstanceMethodTypes, false);
2315   llvm::Constant *ClassMethodList = GenerateMethodList(ClassName, "",
2316       ClassMethodSels, ClassMethodTypes, true);
2317   llvm::Constant *IvarList = GenerateIvarList(IvarNames, IvarTypes,
2318       IvarOffsets);
2319   // Irrespective of whether we are compiling for a fragile or non-fragile ABI,
2320   // we emit a symbol containing the offset for each ivar in the class.  This
2321   // allows code compiled for the non-Fragile ABI to inherit from code compiled
2322   // for the legacy ABI, without causing problems.  The converse is also
2323   // possible, but causes all ivar accesses to be fragile.
2324 
2325   // Offset pointer for getting at the correct field in the ivar list when
2326   // setting up the alias.  These are: The base address for the global, the
2327   // ivar array (second field), the ivar in this list (set for each ivar), and
2328   // the offset (third field in ivar structure)
2329   llvm::Type *IndexTy = Int32Ty;
2330   llvm::Constant *offsetPointerIndexes[] = {Zeros[0],
2331       llvm::ConstantInt::get(IndexTy, 1), 0,
2332       llvm::ConstantInt::get(IndexTy, 2) };
2333 
2334   unsigned ivarIndex = 0;
2335   for (const ObjCIvarDecl *IVD = ClassDecl->all_declared_ivar_begin(); IVD;
2336        IVD = IVD->getNextIvar()) {
2337       const std::string Name = "__objc_ivar_offset_" + ClassName + '.'
2338           + IVD->getNameAsString();
2339       offsetPointerIndexes[2] = llvm::ConstantInt::get(IndexTy, ivarIndex);
2340       // Get the correct ivar field
2341       llvm::Constant *offsetValue = llvm::ConstantExpr::getGetElementPtr(
2342               IvarList, offsetPointerIndexes);
2343       // Get the existing variable, if one exists.
2344       llvm::GlobalVariable *offset = TheModule.getNamedGlobal(Name);
2345       if (offset) {
2346         offset->setInitializer(offsetValue);
2347         // If this is the real definition, change its linkage type so that
2348         // different modules will use this one, rather than their private
2349         // copy.
2350         offset->setLinkage(llvm::GlobalValue::ExternalLinkage);
2351       } else {
2352         // Add a new alias if there isn't one already.
2353         offset = new llvm::GlobalVariable(TheModule, offsetValue->getType(),
2354                 false, llvm::GlobalValue::ExternalLinkage, offsetValue, Name);
2355         (void) offset; // Silence dead store warning.
2356       }
2357       ++ivarIndex;
2358   }
2359   llvm::Constant *ZeroPtr = llvm::ConstantInt::get(IntPtrTy, 0);
2360   //Generate metaclass for class methods
2361   llvm::Constant *MetaClassStruct = GenerateClassStructure(NULLPtr,
2362       NULLPtr, 0x12L, ClassName.c_str(), 0, Zeros[0], GenerateIvarList(
2363         empty, empty, empty), ClassMethodList, NULLPtr,
2364       NULLPtr, NULLPtr, ZeroPtr, ZeroPtr, true);
2365 
2366   // Generate the class structure
2367   llvm::Constant *ClassStruct =
2368     GenerateClassStructure(MetaClassStruct, SuperClass, 0x11L,
2369                            ClassName.c_str(), 0,
2370       llvm::ConstantInt::get(LongTy, instanceSize), IvarList,
2371       MethodList, GenerateProtocolList(Protocols), IvarOffsetArray,
2372       Properties, StrongIvarBitmap, WeakIvarBitmap);
2373 
2374   // Resolve the class aliases, if they exist.
2375   if (ClassPtrAlias) {
2376     ClassPtrAlias->replaceAllUsesWith(
2377         llvm::ConstantExpr::getBitCast(ClassStruct, IdTy));
2378     ClassPtrAlias->eraseFromParent();
2379     ClassPtrAlias = 0;
2380   }
2381   if (MetaClassPtrAlias) {
2382     MetaClassPtrAlias->replaceAllUsesWith(
2383         llvm::ConstantExpr::getBitCast(MetaClassStruct, IdTy));
2384     MetaClassPtrAlias->eraseFromParent();
2385     MetaClassPtrAlias = 0;
2386   }
2387 
2388   // Add class structure to list to be added to the symtab later
2389   ClassStruct = llvm::ConstantExpr::getBitCast(ClassStruct, PtrToInt8Ty);
2390   Classes.push_back(ClassStruct);
2391 }
2392 
2393 
2394 llvm::Function *CGObjCGNU::ModuleInitFunction() {
2395   // Only emit an ObjC load function if no Objective-C stuff has been called
2396   if (Classes.empty() && Categories.empty() && ConstantStrings.empty() &&
2397       ExistingProtocols.empty() && SelectorTable.empty())
2398     return NULL;
2399 
2400   // Add all referenced protocols to a category.
2401   GenerateProtocolHolderCategory();
2402 
2403   llvm::StructType *SelStructTy = dyn_cast<llvm::StructType>(
2404           SelectorTy->getElementType());
2405   llvm::Type *SelStructPtrTy = SelectorTy;
2406   if (SelStructTy == 0) {
2407     SelStructTy = llvm::StructType::get(PtrToInt8Ty, PtrToInt8Ty, NULL);
2408     SelStructPtrTy = llvm::PointerType::getUnqual(SelStructTy);
2409   }
2410 
2411   std::vector<llvm::Constant*> Elements;
2412   llvm::Constant *Statics = NULLPtr;
2413   // Generate statics list:
2414   if (ConstantStrings.size()) {
2415     llvm::ArrayType *StaticsArrayTy = llvm::ArrayType::get(PtrToInt8Ty,
2416         ConstantStrings.size() + 1);
2417     ConstantStrings.push_back(NULLPtr);
2418 
2419     StringRef StringClass = CGM.getLangOpts().ObjCConstantStringClass;
2420 
2421     if (StringClass.empty()) StringClass = "NXConstantString";
2422 
2423     Elements.push_back(MakeConstantString(StringClass,
2424                 ".objc_static_class_name"));
2425     Elements.push_back(llvm::ConstantArray::get(StaticsArrayTy,
2426        ConstantStrings));
2427     llvm::StructType *StaticsListTy =
2428       llvm::StructType::get(PtrToInt8Ty, StaticsArrayTy, NULL);
2429     llvm::Type *StaticsListPtrTy =
2430       llvm::PointerType::getUnqual(StaticsListTy);
2431     Statics = MakeGlobal(StaticsListTy, Elements, ".objc_statics");
2432     llvm::ArrayType *StaticsListArrayTy =
2433       llvm::ArrayType::get(StaticsListPtrTy, 2);
2434     Elements.clear();
2435     Elements.push_back(Statics);
2436     Elements.push_back(llvm::Constant::getNullValue(StaticsListPtrTy));
2437     Statics = MakeGlobal(StaticsListArrayTy, Elements, ".objc_statics_ptr");
2438     Statics = llvm::ConstantExpr::getBitCast(Statics, PtrTy);
2439   }
2440   // Array of classes, categories, and constant objects
2441   llvm::ArrayType *ClassListTy = llvm::ArrayType::get(PtrToInt8Ty,
2442       Classes.size() + Categories.size()  + 2);
2443   llvm::StructType *SymTabTy = llvm::StructType::get(LongTy, SelStructPtrTy,
2444                                                      llvm::Type::getInt16Ty(VMContext),
2445                                                      llvm::Type::getInt16Ty(VMContext),
2446                                                      ClassListTy, NULL);
2447 
2448   Elements.clear();
2449   // Pointer to an array of selectors used in this module.
2450   std::vector<llvm::Constant*> Selectors;
2451   std::vector<llvm::GlobalAlias*> SelectorAliases;
2452   for (SelectorMap::iterator iter = SelectorTable.begin(),
2453       iterEnd = SelectorTable.end(); iter != iterEnd ; ++iter) {
2454 
2455     std::string SelNameStr = iter->first.getAsString();
2456     llvm::Constant *SelName = ExportUniqueString(SelNameStr, ".objc_sel_name");
2457 
2458     SmallVectorImpl<TypedSelector> &Types = iter->second;
2459     for (SmallVectorImpl<TypedSelector>::iterator i = Types.begin(),
2460         e = Types.end() ; i!=e ; i++) {
2461 
2462       llvm::Constant *SelectorTypeEncoding = NULLPtr;
2463       if (!i->first.empty())
2464         SelectorTypeEncoding = MakeConstantString(i->first, ".objc_sel_types");
2465 
2466       Elements.push_back(SelName);
2467       Elements.push_back(SelectorTypeEncoding);
2468       Selectors.push_back(llvm::ConstantStruct::get(SelStructTy, Elements));
2469       Elements.clear();
2470 
2471       // Store the selector alias for later replacement
2472       SelectorAliases.push_back(i->second);
2473     }
2474   }
2475   unsigned SelectorCount = Selectors.size();
2476   // NULL-terminate the selector list.  This should not actually be required,
2477   // because the selector list has a length field.  Unfortunately, the GCC
2478   // runtime decides to ignore the length field and expects a NULL terminator,
2479   // and GCC cooperates with this by always setting the length to 0.
2480   Elements.push_back(NULLPtr);
2481   Elements.push_back(NULLPtr);
2482   Selectors.push_back(llvm::ConstantStruct::get(SelStructTy, Elements));
2483   Elements.clear();
2484 
2485   // Number of static selectors
2486   Elements.push_back(llvm::ConstantInt::get(LongTy, SelectorCount));
2487   llvm::Constant *SelectorList = MakeGlobalArray(SelStructTy, Selectors,
2488           ".objc_selector_list");
2489   Elements.push_back(llvm::ConstantExpr::getBitCast(SelectorList,
2490     SelStructPtrTy));
2491 
2492   // Now that all of the static selectors exist, create pointers to them.
2493   for (unsigned int i=0 ; i<SelectorCount ; i++) {
2494 
2495     llvm::Constant *Idxs[] = {Zeros[0],
2496       llvm::ConstantInt::get(Int32Ty, i), Zeros[0]};
2497     // FIXME: We're generating redundant loads and stores here!
2498     llvm::Constant *SelPtr = llvm::ConstantExpr::getGetElementPtr(SelectorList,
2499         makeArrayRef(Idxs, 2));
2500     // If selectors are defined as an opaque type, cast the pointer to this
2501     // type.
2502     SelPtr = llvm::ConstantExpr::getBitCast(SelPtr, SelectorTy);
2503     SelectorAliases[i]->replaceAllUsesWith(SelPtr);
2504     SelectorAliases[i]->eraseFromParent();
2505   }
2506 
2507   // Number of classes defined.
2508   Elements.push_back(llvm::ConstantInt::get(llvm::Type::getInt16Ty(VMContext),
2509         Classes.size()));
2510   // Number of categories defined
2511   Elements.push_back(llvm::ConstantInt::get(llvm::Type::getInt16Ty(VMContext),
2512         Categories.size()));
2513   // Create an array of classes, then categories, then static object instances
2514   Classes.insert(Classes.end(), Categories.begin(), Categories.end());
2515   //  NULL-terminated list of static object instances (mainly constant strings)
2516   Classes.push_back(Statics);
2517   Classes.push_back(NULLPtr);
2518   llvm::Constant *ClassList = llvm::ConstantArray::get(ClassListTy, Classes);
2519   Elements.push_back(ClassList);
2520   // Construct the symbol table
2521   llvm::Constant *SymTab= MakeGlobal(SymTabTy, Elements);
2522 
2523   // The symbol table is contained in a module which has some version-checking
2524   // constants
2525   llvm::StructType * ModuleTy = llvm::StructType::get(LongTy, LongTy,
2526       PtrToInt8Ty, llvm::PointerType::getUnqual(SymTabTy),
2527       (RuntimeVersion >= 10) ? IntTy : NULL, NULL);
2528   Elements.clear();
2529   // Runtime version, used for ABI compatibility checking.
2530   Elements.push_back(llvm::ConstantInt::get(LongTy, RuntimeVersion));
2531   // sizeof(ModuleTy)
2532   llvm::DataLayout td(&TheModule);
2533   Elements.push_back(
2534     llvm::ConstantInt::get(LongTy,
2535                            td.getTypeSizeInBits(ModuleTy) /
2536                              CGM.getContext().getCharWidth()));
2537 
2538   // The path to the source file where this module was declared
2539   SourceManager &SM = CGM.getContext().getSourceManager();
2540   const FileEntry *mainFile = SM.getFileEntryForID(SM.getMainFileID());
2541   std::string path =
2542     std::string(mainFile->getDir()->getName()) + '/' + mainFile->getName();
2543   Elements.push_back(MakeConstantString(path, ".objc_source_file_name"));
2544   Elements.push_back(SymTab);
2545 
2546   if (RuntimeVersion >= 10)
2547     switch (CGM.getLangOpts().getGC()) {
2548       case LangOptions::GCOnly:
2549         Elements.push_back(llvm::ConstantInt::get(IntTy, 2));
2550         break;
2551       case LangOptions::NonGC:
2552         if (CGM.getLangOpts().ObjCAutoRefCount)
2553           Elements.push_back(llvm::ConstantInt::get(IntTy, 1));
2554         else
2555           Elements.push_back(llvm::ConstantInt::get(IntTy, 0));
2556         break;
2557       case LangOptions::HybridGC:
2558           Elements.push_back(llvm::ConstantInt::get(IntTy, 1));
2559         break;
2560     }
2561 
2562   llvm::Value *Module = MakeGlobal(ModuleTy, Elements);
2563 
2564   // Create the load function calling the runtime entry point with the module
2565   // structure
2566   llvm::Function * LoadFunction = llvm::Function::Create(
2567       llvm::FunctionType::get(llvm::Type::getVoidTy(VMContext), false),
2568       llvm::GlobalValue::InternalLinkage, ".objc_load_function",
2569       &TheModule);
2570   llvm::BasicBlock *EntryBB =
2571       llvm::BasicBlock::Create(VMContext, "entry", LoadFunction);
2572   CGBuilderTy Builder(VMContext);
2573   Builder.SetInsertPoint(EntryBB);
2574 
2575   llvm::FunctionType *FT =
2576     llvm::FunctionType::get(Builder.getVoidTy(),
2577                             llvm::PointerType::getUnqual(ModuleTy), true);
2578   llvm::Value *Register = CGM.CreateRuntimeFunction(FT, "__objc_exec_class");
2579   Builder.CreateCall(Register, Module);
2580 
2581   if (!ClassAliases.empty()) {
2582     llvm::Type *ArgTypes[2] = {PtrTy, PtrToInt8Ty};
2583     llvm::FunctionType *RegisterAliasTy =
2584       llvm::FunctionType::get(Builder.getVoidTy(),
2585                               ArgTypes, false);
2586     llvm::Function *RegisterAlias = llvm::Function::Create(
2587       RegisterAliasTy,
2588       llvm::GlobalValue::ExternalWeakLinkage, "class_registerAlias_np",
2589       &TheModule);
2590     llvm::BasicBlock *AliasBB =
2591       llvm::BasicBlock::Create(VMContext, "alias", LoadFunction);
2592     llvm::BasicBlock *NoAliasBB =
2593       llvm::BasicBlock::Create(VMContext, "no_alias", LoadFunction);
2594 
2595     // Branch based on whether the runtime provided class_registerAlias_np()
2596     llvm::Value *HasRegisterAlias = Builder.CreateICmpNE(RegisterAlias,
2597             llvm::Constant::getNullValue(RegisterAlias->getType()));
2598     Builder.CreateCondBr(HasRegisterAlias, AliasBB, NoAliasBB);
2599 
2600     // The true branch (has alias registration fucntion):
2601     Builder.SetInsertPoint(AliasBB);
2602     // Emit alias registration calls:
2603     for (std::vector<ClassAliasPair>::iterator iter = ClassAliases.begin();
2604        iter != ClassAliases.end(); ++iter) {
2605        llvm::Constant *TheClass =
2606          TheModule.getGlobalVariable(("_OBJC_CLASS_" + iter->first).c_str(),
2607             true);
2608        if (0 != TheClass) {
2609          TheClass = llvm::ConstantExpr::getBitCast(TheClass, PtrTy);
2610          Builder.CreateCall2(RegisterAlias, TheClass,
2611             MakeConstantString(iter->second));
2612        }
2613     }
2614     // Jump to end:
2615     Builder.CreateBr(NoAliasBB);
2616 
2617     // Missing alias registration function, just return from the function:
2618     Builder.SetInsertPoint(NoAliasBB);
2619   }
2620   Builder.CreateRetVoid();
2621 
2622   return LoadFunction;
2623 }
2624 
2625 llvm::Function *CGObjCGNU::GenerateMethod(const ObjCMethodDecl *OMD,
2626                                           const ObjCContainerDecl *CD) {
2627   const ObjCCategoryImplDecl *OCD =
2628     dyn_cast<ObjCCategoryImplDecl>(OMD->getDeclContext());
2629   StringRef CategoryName = OCD ? OCD->getName() : "";
2630   StringRef ClassName = CD->getName();
2631   Selector MethodName = OMD->getSelector();
2632   bool isClassMethod = !OMD->isInstanceMethod();
2633 
2634   CodeGenTypes &Types = CGM.getTypes();
2635   llvm::FunctionType *MethodTy =
2636     Types.GetFunctionType(Types.arrangeObjCMethodDeclaration(OMD));
2637   std::string FunctionName = SymbolNameForMethod(ClassName, CategoryName,
2638       MethodName, isClassMethod);
2639 
2640   llvm::Function *Method
2641     = llvm::Function::Create(MethodTy,
2642                              llvm::GlobalValue::InternalLinkage,
2643                              FunctionName,
2644                              &TheModule);
2645   return Method;
2646 }
2647 
2648 llvm::Constant *CGObjCGNU::GetPropertyGetFunction() {
2649   return GetPropertyFn;
2650 }
2651 
2652 llvm::Constant *CGObjCGNU::GetPropertySetFunction() {
2653   return SetPropertyFn;
2654 }
2655 
2656 llvm::Constant *CGObjCGNU::GetOptimizedPropertySetFunction(bool atomic,
2657                                                            bool copy) {
2658   return 0;
2659 }
2660 
2661 llvm::Constant *CGObjCGNU::GetGetStructFunction() {
2662   return GetStructPropertyFn;
2663 }
2664 llvm::Constant *CGObjCGNU::GetSetStructFunction() {
2665   return SetStructPropertyFn;
2666 }
2667 llvm::Constant *CGObjCGNU::GetCppAtomicObjectGetFunction() {
2668   return 0;
2669 }
2670 llvm::Constant *CGObjCGNU::GetCppAtomicObjectSetFunction() {
2671   return 0;
2672 }
2673 
2674 llvm::Constant *CGObjCGNU::EnumerationMutationFunction() {
2675   return EnumerationMutationFn;
2676 }
2677 
2678 void CGObjCGNU::EmitSynchronizedStmt(CodeGenFunction &CGF,
2679                                      const ObjCAtSynchronizedStmt &S) {
2680   EmitAtSynchronizedStmt(CGF, S, SyncEnterFn, SyncExitFn);
2681 }
2682 
2683 
2684 void CGObjCGNU::EmitTryStmt(CodeGenFunction &CGF,
2685                             const ObjCAtTryStmt &S) {
2686   // Unlike the Apple non-fragile runtimes, which also uses
2687   // unwind-based zero cost exceptions, the GNU Objective C runtime's
2688   // EH support isn't a veneer over C++ EH.  Instead, exception
2689   // objects are created by objc_exception_throw and destroyed by
2690   // the personality function; this avoids the need for bracketing
2691   // catch handlers with calls to __blah_begin_catch/__blah_end_catch
2692   // (or even _Unwind_DeleteException), but probably doesn't
2693   // interoperate very well with foreign exceptions.
2694   //
2695   // In Objective-C++ mode, we actually emit something equivalent to the C++
2696   // exception handler.
2697   EmitTryCatchStmt(CGF, S, EnterCatchFn, ExitCatchFn, ExceptionReThrowFn);
2698   return ;
2699 }
2700 
2701 void CGObjCGNU::EmitThrowStmt(CodeGenFunction &CGF,
2702                               const ObjCAtThrowStmt &S,
2703                               bool ClearInsertionPoint) {
2704   llvm::Value *ExceptionAsObject;
2705 
2706   if (const Expr *ThrowExpr = S.getThrowExpr()) {
2707     llvm::Value *Exception = CGF.EmitObjCThrowOperand(ThrowExpr);
2708     ExceptionAsObject = Exception;
2709   } else {
2710     assert((!CGF.ObjCEHValueStack.empty() && CGF.ObjCEHValueStack.back()) &&
2711            "Unexpected rethrow outside @catch block.");
2712     ExceptionAsObject = CGF.ObjCEHValueStack.back();
2713   }
2714   ExceptionAsObject = CGF.Builder.CreateBitCast(ExceptionAsObject, IdTy);
2715   llvm::CallSite Throw =
2716       CGF.EmitRuntimeCallOrInvoke(ExceptionThrowFn, ExceptionAsObject);
2717   Throw.setDoesNotReturn();
2718   CGF.Builder.CreateUnreachable();
2719   if (ClearInsertionPoint)
2720     CGF.Builder.ClearInsertionPoint();
2721 }
2722 
2723 llvm::Value * CGObjCGNU::EmitObjCWeakRead(CodeGenFunction &CGF,
2724                                           llvm::Value *AddrWeakObj) {
2725   CGBuilderTy &B = CGF.Builder;
2726   AddrWeakObj = EnforceType(B, AddrWeakObj, PtrToIdTy);
2727   return B.CreateCall(WeakReadFn, AddrWeakObj);
2728 }
2729 
2730 void CGObjCGNU::EmitObjCWeakAssign(CodeGenFunction &CGF,
2731                                    llvm::Value *src, llvm::Value *dst) {
2732   CGBuilderTy &B = CGF.Builder;
2733   src = EnforceType(B, src, IdTy);
2734   dst = EnforceType(B, dst, PtrToIdTy);
2735   B.CreateCall2(WeakAssignFn, src, dst);
2736 }
2737 
2738 void CGObjCGNU::EmitObjCGlobalAssign(CodeGenFunction &CGF,
2739                                      llvm::Value *src, llvm::Value *dst,
2740                                      bool threadlocal) {
2741   CGBuilderTy &B = CGF.Builder;
2742   src = EnforceType(B, src, IdTy);
2743   dst = EnforceType(B, dst, PtrToIdTy);
2744   if (!threadlocal)
2745     B.CreateCall2(GlobalAssignFn, src, dst);
2746   else
2747     // FIXME. Add threadloca assign API
2748     llvm_unreachable("EmitObjCGlobalAssign - Threal Local API NYI");
2749 }
2750 
2751 void CGObjCGNU::EmitObjCIvarAssign(CodeGenFunction &CGF,
2752                                    llvm::Value *src, llvm::Value *dst,
2753                                    llvm::Value *ivarOffset) {
2754   CGBuilderTy &B = CGF.Builder;
2755   src = EnforceType(B, src, IdTy);
2756   dst = EnforceType(B, dst, IdTy);
2757   B.CreateCall3(IvarAssignFn, src, dst, ivarOffset);
2758 }
2759 
2760 void CGObjCGNU::EmitObjCStrongCastAssign(CodeGenFunction &CGF,
2761                                          llvm::Value *src, llvm::Value *dst) {
2762   CGBuilderTy &B = CGF.Builder;
2763   src = EnforceType(B, src, IdTy);
2764   dst = EnforceType(B, dst, PtrToIdTy);
2765   B.CreateCall2(StrongCastAssignFn, src, dst);
2766 }
2767 
2768 void CGObjCGNU::EmitGCMemmoveCollectable(CodeGenFunction &CGF,
2769                                          llvm::Value *DestPtr,
2770                                          llvm::Value *SrcPtr,
2771                                          llvm::Value *Size) {
2772   CGBuilderTy &B = CGF.Builder;
2773   DestPtr = EnforceType(B, DestPtr, PtrTy);
2774   SrcPtr = EnforceType(B, SrcPtr, PtrTy);
2775 
2776   B.CreateCall3(MemMoveFn, DestPtr, SrcPtr, Size);
2777 }
2778 
2779 llvm::GlobalVariable *CGObjCGNU::ObjCIvarOffsetVariable(
2780                               const ObjCInterfaceDecl *ID,
2781                               const ObjCIvarDecl *Ivar) {
2782   const std::string Name = "__objc_ivar_offset_" + ID->getNameAsString()
2783     + '.' + Ivar->getNameAsString();
2784   // Emit the variable and initialize it with what we think the correct value
2785   // is.  This allows code compiled with non-fragile ivars to work correctly
2786   // when linked against code which isn't (most of the time).
2787   llvm::GlobalVariable *IvarOffsetPointer = TheModule.getNamedGlobal(Name);
2788   if (!IvarOffsetPointer) {
2789     // This will cause a run-time crash if we accidentally use it.  A value of
2790     // 0 would seem more sensible, but will silently overwrite the isa pointer
2791     // causing a great deal of confusion.
2792     uint64_t Offset = -1;
2793     // We can't call ComputeIvarBaseOffset() here if we have the
2794     // implementation, because it will create an invalid ASTRecordLayout object
2795     // that we are then stuck with forever, so we only initialize the ivar
2796     // offset variable with a guess if we only have the interface.  The
2797     // initializer will be reset later anyway, when we are generating the class
2798     // description.
2799     if (!CGM.getContext().getObjCImplementation(
2800               const_cast<ObjCInterfaceDecl *>(ID)))
2801       Offset = ComputeIvarBaseOffset(CGM, ID, Ivar);
2802 
2803     llvm::ConstantInt *OffsetGuess = llvm::ConstantInt::get(Int32Ty, Offset,
2804                              /*isSigned*/true);
2805     // Don't emit the guess in non-PIC code because the linker will not be able
2806     // to replace it with the real version for a library.  In non-PIC code you
2807     // must compile with the fragile ABI if you want to use ivars from a
2808     // GCC-compiled class.
2809     if (CGM.getLangOpts().PICLevel || CGM.getLangOpts().PIELevel) {
2810       llvm::GlobalVariable *IvarOffsetGV = new llvm::GlobalVariable(TheModule,
2811             Int32Ty, false,
2812             llvm::GlobalValue::PrivateLinkage, OffsetGuess, Name+".guess");
2813       IvarOffsetPointer = new llvm::GlobalVariable(TheModule,
2814             IvarOffsetGV->getType(), false, llvm::GlobalValue::LinkOnceAnyLinkage,
2815             IvarOffsetGV, Name);
2816     } else {
2817       IvarOffsetPointer = new llvm::GlobalVariable(TheModule,
2818               llvm::Type::getInt32PtrTy(VMContext), false,
2819               llvm::GlobalValue::ExternalLinkage, 0, Name);
2820     }
2821   }
2822   return IvarOffsetPointer;
2823 }
2824 
2825 LValue CGObjCGNU::EmitObjCValueForIvar(CodeGenFunction &CGF,
2826                                        QualType ObjectTy,
2827                                        llvm::Value *BaseValue,
2828                                        const ObjCIvarDecl *Ivar,
2829                                        unsigned CVRQualifiers) {
2830   const ObjCInterfaceDecl *ID =
2831     ObjectTy->getAs<ObjCObjectType>()->getInterface();
2832   return EmitValueForIvarAtOffset(CGF, ID, BaseValue, Ivar, CVRQualifiers,
2833                                   EmitIvarOffset(CGF, ID, Ivar));
2834 }
2835 
2836 static const ObjCInterfaceDecl *FindIvarInterface(ASTContext &Context,
2837                                                   const ObjCInterfaceDecl *OID,
2838                                                   const ObjCIvarDecl *OIVD) {
2839   for (const ObjCIvarDecl *next = OID->all_declared_ivar_begin(); next;
2840        next = next->getNextIvar()) {
2841     if (OIVD == next)
2842       return OID;
2843   }
2844 
2845   // Otherwise check in the super class.
2846   if (const ObjCInterfaceDecl *Super = OID->getSuperClass())
2847     return FindIvarInterface(Context, Super, OIVD);
2848 
2849   return 0;
2850 }
2851 
2852 llvm::Value *CGObjCGNU::EmitIvarOffset(CodeGenFunction &CGF,
2853                          const ObjCInterfaceDecl *Interface,
2854                          const ObjCIvarDecl *Ivar) {
2855   if (CGM.getLangOpts().ObjCRuntime.isNonFragile()) {
2856     Interface = FindIvarInterface(CGM.getContext(), Interface, Ivar);
2857     if (RuntimeVersion < 10)
2858       return CGF.Builder.CreateZExtOrBitCast(
2859           CGF.Builder.CreateLoad(CGF.Builder.CreateLoad(
2860                   ObjCIvarOffsetVariable(Interface, Ivar), false, "ivar")),
2861           PtrDiffTy);
2862     std::string name = "__objc_ivar_offset_value_" +
2863       Interface->getNameAsString() +"." + Ivar->getNameAsString();
2864     llvm::Value *Offset = TheModule.getGlobalVariable(name);
2865     if (!Offset)
2866       Offset = new llvm::GlobalVariable(TheModule, IntTy,
2867           false, llvm::GlobalValue::LinkOnceAnyLinkage,
2868           llvm::Constant::getNullValue(IntTy), name);
2869     Offset = CGF.Builder.CreateLoad(Offset);
2870     if (Offset->getType() != PtrDiffTy)
2871       Offset = CGF.Builder.CreateZExtOrBitCast(Offset, PtrDiffTy);
2872     return Offset;
2873   }
2874   uint64_t Offset = ComputeIvarBaseOffset(CGF.CGM, Interface, Ivar);
2875   return llvm::ConstantInt::get(PtrDiffTy, Offset, /*isSigned*/true);
2876 }
2877 
2878 CGObjCRuntime *
2879 clang::CodeGen::CreateGNUObjCRuntime(CodeGenModule &CGM) {
2880   switch (CGM.getLangOpts().ObjCRuntime.getKind()) {
2881   case ObjCRuntime::GNUstep:
2882     return new CGObjCGNUstep(CGM);
2883 
2884   case ObjCRuntime::GCC:
2885     return new CGObjCGCC(CGM);
2886 
2887   case ObjCRuntime::ObjFW:
2888     return new CGObjCObjFW(CGM);
2889 
2890   case ObjCRuntime::FragileMacOSX:
2891   case ObjCRuntime::MacOSX:
2892   case ObjCRuntime::iOS:
2893     llvm_unreachable("these runtimes are not GNU runtimes");
2894   }
2895   llvm_unreachable("bad runtime");
2896 }
2897