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Michael Gottesman08904e32013-01-28 03:28:38 +00001//===- ObjCARC.h - ObjC ARC Optimization --------------*- mode: c++ -*-----===//
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/// \file
10/// This file defines common definitions/declarations used by the ObjC ARC
11/// Optimizer. ARC stands for Automatic Reference Counting and is a system for
12/// managing reference counts for objects in Objective C.
13///
14/// WARNING: This file knows about certain library functions. It recognizes them
15/// by name, and hardwires knowledge of their semantics.
16///
17/// WARNING: This file knows about how certain Objective-C library functions are
18/// used. Naive LLVM IR transformations which would otherwise be
19/// behavior-preserving may break these assumptions.
20///
21//===----------------------------------------------------------------------===//
22
23#ifndef LLVM_TRANSFORMS_SCALAR_OBJCARC_H
24#define LLVM_TRANSFORMS_SCALAR_OBJCARC_H
25
26#include "llvm/ADT/StringSwitch.h"
27#include "llvm/Analysis/AliasAnalysis.h"
28#include "llvm/Analysis/Passes.h"
Michael Gottesman294e7da2013-01-28 05:51:54 +000029#include "llvm/Analysis/ValueTracking.h"
Michael Gottesman08904e32013-01-28 03:28:38 +000030#include "llvm/IR/Module.h"
31#include "llvm/Pass.h"
Michael Gottesman778138e2013-01-29 03:03:03 +000032#include "llvm/Support/CallSite.h"
Michael Gottesman08904e32013-01-28 03:28:38 +000033#include "llvm/Support/Debug.h"
34#include "llvm/Support/InstIterator.h"
35#include "llvm/Support/raw_ostream.h"
36#include "llvm/Transforms/ObjCARC.h"
Michael Gottesman778138e2013-01-29 03:03:03 +000037#include "llvm/Transforms/Utils/Local.h"
Michael Gottesman08904e32013-01-28 03:28:38 +000038
39namespace llvm {
40namespace objcarc {
41
42/// \brief A handy option to enable/disable all ARC Optimizations.
43extern bool EnableARCOpts;
44
45/// \brief Test if the given module looks interesting to run ARC optimization
46/// on.
47static inline bool ModuleHasARC(const Module &M) {
48 return
49 M.getNamedValue("objc_retain") ||
50 M.getNamedValue("objc_release") ||
51 M.getNamedValue("objc_autorelease") ||
52 M.getNamedValue("objc_retainAutoreleasedReturnValue") ||
53 M.getNamedValue("objc_retainBlock") ||
54 M.getNamedValue("objc_autoreleaseReturnValue") ||
55 M.getNamedValue("objc_autoreleasePoolPush") ||
56 M.getNamedValue("objc_loadWeakRetained") ||
57 M.getNamedValue("objc_loadWeak") ||
58 M.getNamedValue("objc_destroyWeak") ||
59 M.getNamedValue("objc_storeWeak") ||
60 M.getNamedValue("objc_initWeak") ||
61 M.getNamedValue("objc_moveWeak") ||
62 M.getNamedValue("objc_copyWeak") ||
63 M.getNamedValue("objc_retainedObject") ||
64 M.getNamedValue("objc_unretainedObject") ||
65 M.getNamedValue("objc_unretainedPointer");
66}
67
68/// \enum InstructionClass
69/// \brief A simple classification for instructions.
70enum InstructionClass {
71 IC_Retain, ///< objc_retain
72 IC_RetainRV, ///< objc_retainAutoreleasedReturnValue
73 IC_RetainBlock, ///< objc_retainBlock
74 IC_Release, ///< objc_release
75 IC_Autorelease, ///< objc_autorelease
76 IC_AutoreleaseRV, ///< objc_autoreleaseReturnValue
77 IC_AutoreleasepoolPush, ///< objc_autoreleasePoolPush
78 IC_AutoreleasepoolPop, ///< objc_autoreleasePoolPop
79 IC_NoopCast, ///< objc_retainedObject, etc.
80 IC_FusedRetainAutorelease, ///< objc_retainAutorelease
81 IC_FusedRetainAutoreleaseRV, ///< objc_retainAutoreleaseReturnValue
82 IC_LoadWeakRetained, ///< objc_loadWeakRetained (primitive)
83 IC_StoreWeak, ///< objc_storeWeak (primitive)
84 IC_InitWeak, ///< objc_initWeak (derived)
85 IC_LoadWeak, ///< objc_loadWeak (derived)
86 IC_MoveWeak, ///< objc_moveWeak (derived)
87 IC_CopyWeak, ///< objc_copyWeak (derived)
88 IC_DestroyWeak, ///< objc_destroyWeak (derived)
89 IC_StoreStrong, ///< objc_storeStrong (derived)
90 IC_CallOrUser, ///< could call objc_release and/or "use" pointers
91 IC_Call, ///< could call objc_release
92 IC_User, ///< could "use" a pointer
93 IC_None ///< anything else
94};
95
Michael Gottesman5ed40af2013-01-28 06:39:31 +000096raw_ostream &operator<<(raw_ostream &OS, const InstructionClass Class);
Michael Gottesman08904e32013-01-28 03:28:38 +000097
Michael Gottesman294e7da2013-01-28 05:51:54 +000098/// \brief Test if the given class is objc_retain or equivalent.
99static inline bool IsRetain(InstructionClass Class) {
100 return Class == IC_Retain ||
101 Class == IC_RetainRV;
102}
103
104/// \brief Test if the given class is objc_autorelease or equivalent.
105static inline bool IsAutorelease(InstructionClass Class) {
106 return Class == IC_Autorelease ||
107 Class == IC_AutoreleaseRV;
108}
109
110/// \brief Test if the given class represents instructions which return their
111/// argument verbatim.
112static inline bool IsForwarding(InstructionClass Class) {
113 // objc_retainBlock technically doesn't always return its argument
114 // verbatim, but it doesn't matter for our purposes here.
115 return Class == IC_Retain ||
116 Class == IC_RetainRV ||
117 Class == IC_Autorelease ||
118 Class == IC_AutoreleaseRV ||
119 Class == IC_RetainBlock ||
120 Class == IC_NoopCast;
121}
122
123/// \brief Test if the given class represents instructions which do nothing if
124/// passed a null pointer.
125static inline bool IsNoopOnNull(InstructionClass Class) {
126 return Class == IC_Retain ||
127 Class == IC_RetainRV ||
128 Class == IC_Release ||
129 Class == IC_Autorelease ||
130 Class == IC_AutoreleaseRV ||
131 Class == IC_RetainBlock;
132}
133
134/// \brief Test if the given class represents instructions which are always safe
135/// to mark with the "tail" keyword.
136static inline bool IsAlwaysTail(InstructionClass Class) {
137 // IC_RetainBlock may be given a stack argument.
138 return Class == IC_Retain ||
139 Class == IC_RetainRV ||
140 Class == IC_AutoreleaseRV;
141}
142
143/// \brief Test if the given class represents instructions which are never safe
144/// to mark with the "tail" keyword.
145static inline bool IsNeverTail(InstructionClass Class) {
146 /// It is never safe to tail call objc_autorelease since by tail calling
147 /// objc_autorelease, we also tail call -[NSObject autorelease] which supports
148 /// fast autoreleasing causing our object to be potentially reclaimed from the
149 /// autorelease pool which violates the semantics of __autoreleasing types in
150 /// ARC.
151 return Class == IC_Autorelease;
152}
153
154/// \brief Test if the given class represents instructions which are always safe
155/// to mark with the nounwind attribute.
156static inline bool IsNoThrow(InstructionClass Class) {
157 // objc_retainBlock is not nounwind because it calls user copy constructors
158 // which could theoretically throw.
159 return Class == IC_Retain ||
160 Class == IC_RetainRV ||
161 Class == IC_Release ||
162 Class == IC_Autorelease ||
163 Class == IC_AutoreleaseRV ||
164 Class == IC_AutoreleasepoolPush ||
165 Class == IC_AutoreleasepoolPop;
166}
Michael Gottesman08904e32013-01-28 03:28:38 +0000167
Michael Gottesman778138e2013-01-29 03:03:03 +0000168/// Test whether the given instruction can autorelease any pointer or cause an
169/// autoreleasepool pop.
170static inline bool
171CanInterruptRV(InstructionClass Class) {
172 switch (Class) {
173 case IC_AutoreleasepoolPop:
174 case IC_CallOrUser:
175 case IC_Call:
176 case IC_Autorelease:
177 case IC_AutoreleaseRV:
178 case IC_FusedRetainAutorelease:
179 case IC_FusedRetainAutoreleaseRV:
180 return true;
181 default:
182 return false;
183 }
184}
185
Michael Gottesman08904e32013-01-28 03:28:38 +0000186/// \brief Determine if F is one of the special known Functions. If it isn't,
187/// return IC_CallOrUser.
Michael Gottesman5ed40af2013-01-28 06:39:31 +0000188InstructionClass GetFunctionClass(const Function *F);
Michael Gottesman08904e32013-01-28 03:28:38 +0000189
190/// \brief Determine which objc runtime call instruction class V belongs to.
191///
192/// This is similar to GetInstructionClass except that it only detects objc
193/// runtime calls. This allows it to be faster.
194///
195static inline InstructionClass GetBasicInstructionClass(const Value *V) {
196 if (const CallInst *CI = dyn_cast<CallInst>(V)) {
197 if (const Function *F = CI->getCalledFunction())
198 return GetFunctionClass(F);
199 // Otherwise, be conservative.
200 return IC_CallOrUser;
201 }
202
203 // Otherwise, be conservative.
204 return isa<InvokeInst>(V) ? IC_CallOrUser : IC_User;
205}
206
Michael Gottesman778138e2013-01-29 03:03:03 +0000207/// \brief Determine what kind of construct V is.
208InstructionClass GetInstructionClass(const Value *V);
Michael Gottesman294e7da2013-01-28 05:51:54 +0000209
210/// \brief This is a wrapper around getUnderlyingObject which also knows how to
211/// look through objc_retain and objc_autorelease calls, which we know to return
212/// their argument verbatim.
213static inline const Value *GetUnderlyingObjCPtr(const Value *V) {
214 for (;;) {
215 V = GetUnderlyingObject(V);
216 if (!IsForwarding(GetBasicInstructionClass(V)))
217 break;
218 V = cast<CallInst>(V)->getArgOperand(0);
219 }
220
221 return V;
222}
223
224/// \brief This is a wrapper around Value::stripPointerCasts which also knows
225/// how to look through objc_retain and objc_autorelease calls, which we know to
226/// return their argument verbatim.
227static inline const Value *StripPointerCastsAndObjCCalls(const Value *V) {
228 for (;;) {
229 V = V->stripPointerCasts();
230 if (!IsForwarding(GetBasicInstructionClass(V)))
231 break;
232 V = cast<CallInst>(V)->getArgOperand(0);
233 }
234 return V;
235}
236
237/// \brief This is a wrapper around Value::stripPointerCasts which also knows
238/// how to look through objc_retain and objc_autorelease calls, which we know to
239/// return their argument verbatim.
240static inline Value *StripPointerCastsAndObjCCalls(Value *V) {
241 for (;;) {
242 V = V->stripPointerCasts();
243 if (!IsForwarding(GetBasicInstructionClass(V)))
244 break;
245 V = cast<CallInst>(V)->getArgOperand(0);
246 }
247 return V;
248}
249
Michael Gottesman778138e2013-01-29 03:03:03 +0000250/// \brief Assuming the given instruction is one of the special calls such as
251/// objc_retain or objc_release, return the argument value, stripped of no-op
252/// casts and forwarding calls.
253static inline Value *GetObjCArg(Value *Inst) {
254 return StripPointerCastsAndObjCCalls(cast<CallInst>(Inst)->getArgOperand(0));
255}
256
257static inline bool isNullOrUndef(const Value *V) {
258 return isa<ConstantPointerNull>(V) || isa<UndefValue>(V);
259}
260
261static inline bool isNoopInstruction(const Instruction *I) {
262 return isa<BitCastInst>(I) ||
263 (isa<GetElementPtrInst>(I) &&
264 cast<GetElementPtrInst>(I)->hasAllZeroIndices());
265}
266
267
268/// \brief Erase the given instruction.
269///
270/// Many ObjC calls return their argument verbatim,
271/// so if it's such a call and the return value has users, replace them with the
272/// argument value.
273///
274static inline void EraseInstruction(Instruction *CI) {
275 Value *OldArg = cast<CallInst>(CI)->getArgOperand(0);
276
277 bool Unused = CI->use_empty();
278
279 if (!Unused) {
280 // Replace the return value with the argument.
281 assert(IsForwarding(GetBasicInstructionClass(CI)) &&
282 "Can't delete non-forwarding instruction with users!");
283 CI->replaceAllUsesWith(OldArg);
284 }
285
286 CI->eraseFromParent();
287
288 if (Unused)
289 RecursivelyDeleteTriviallyDeadInstructions(OldArg);
290}
291
292/// \brief Test whether the given value is possible a retainable object pointer.
293static inline bool IsPotentialRetainableObjPtr(const Value *Op) {
294 // Pointers to static or stack storage are not valid retainable object pointers.
295 if (isa<Constant>(Op) || isa<AllocaInst>(Op))
296 return false;
297 // Special arguments can not be a valid retainable object pointer.
298 if (const Argument *Arg = dyn_cast<Argument>(Op))
299 if (Arg->hasByValAttr() ||
300 Arg->hasNestAttr() ||
301 Arg->hasStructRetAttr())
302 return false;
303 // Only consider values with pointer types.
304 //
305 // It seemes intuitive to exclude function pointer types as well, since
306 // functions are never retainable object pointers, however clang occasionally
307 // bitcasts retainable object pointers to function-pointer type temporarily.
308 PointerType *Ty = dyn_cast<PointerType>(Op->getType());
309 if (!Ty)
310 return false;
311 // Conservatively assume anything else is a potential retainable object pointer.
312 return true;
313}
314
315static inline bool IsPotentialRetainableObjPtr(const Value *Op,
316 AliasAnalysis &AA) {
317 // First make the rudimentary check.
318 if (!IsPotentialRetainableObjPtr(Op))
319 return false;
320
321 // Objects in constant memory are not reference-counted.
322 if (AA.pointsToConstantMemory(Op))
323 return false;
324
325 // Pointers in constant memory are not pointing to reference-counted objects.
326 if (const LoadInst *LI = dyn_cast<LoadInst>(Op))
327 if (AA.pointsToConstantMemory(LI->getPointerOperand()))
328 return false;
329
330 // Otherwise assume the worst.
331 return true;
332}
333
334/// \brief Helper for GetInstructionClass. Determines what kind of construct CS
335/// is.
336static inline InstructionClass GetCallSiteClass(ImmutableCallSite CS) {
337 for (ImmutableCallSite::arg_iterator I = CS.arg_begin(), E = CS.arg_end();
338 I != E; ++I)
339 if (IsPotentialRetainableObjPtr(*I))
340 return CS.onlyReadsMemory() ? IC_User : IC_CallOrUser;
341
342 return CS.onlyReadsMemory() ? IC_None : IC_Call;
343}
344
345/// \brief Return true if this value refers to a distinct and identifiable
346/// object.
347///
348/// This is similar to AliasAnalysis's isIdentifiedObject, except that it uses
349/// special knowledge of ObjC conventions.
350static inline bool IsObjCIdentifiedObject(const Value *V) {
351 // Assume that call results and arguments have their own "provenance".
352 // Constants (including GlobalVariables) and Allocas are never
353 // reference-counted.
354 if (isa<CallInst>(V) || isa<InvokeInst>(V) ||
355 isa<Argument>(V) || isa<Constant>(V) ||
356 isa<AllocaInst>(V))
357 return true;
358
359 if (const LoadInst *LI = dyn_cast<LoadInst>(V)) {
360 const Value *Pointer =
361 StripPointerCastsAndObjCCalls(LI->getPointerOperand());
362 if (const GlobalVariable *GV = dyn_cast<GlobalVariable>(Pointer)) {
363 // A constant pointer can't be pointing to an object on the heap. It may
364 // be reference-counted, but it won't be deleted.
365 if (GV->isConstant())
366 return true;
367 StringRef Name = GV->getName();
368 // These special variables are known to hold values which are not
369 // reference-counted pointers.
370 if (Name.startswith("\01L_OBJC_SELECTOR_REFERENCES_") ||
371 Name.startswith("\01L_OBJC_CLASSLIST_REFERENCES_") ||
372 Name.startswith("\01L_OBJC_CLASSLIST_SUP_REFS_$_") ||
373 Name.startswith("\01L_OBJC_METH_VAR_NAME_") ||
374 Name.startswith("\01l_objc_msgSend_fixup_"))
375 return true;
376 }
377 }
378
379 return false;
380}
Michael Gottesman294e7da2013-01-28 05:51:54 +0000381
Michael Gottesman08904e32013-01-28 03:28:38 +0000382} // end namespace objcarc
383} // end namespace llvm
384
385#endif // LLVM_TRANSFORMS_SCALAR_OBJCARC_H