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Dan Gohmanf17a25c2007-07-18 16:29:46 +00001//===- GlobalOpt.cpp - Optimize Global Variables --------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
Chris Lattner081ce942007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00007//
8//===----------------------------------------------------------------------===//
9//
10// This pass transforms simple global variables that never have their address
11// taken. If obviously true, it marks read/write globals as constant, deletes
12// variables only stored to, etc.
13//
14//===----------------------------------------------------------------------===//
15
16#define DEBUG_TYPE "globalopt"
17#include "llvm/Transforms/IPO.h"
18#include "llvm/CallingConv.h"
19#include "llvm/Constants.h"
20#include "llvm/DerivedTypes.h"
21#include "llvm/Instructions.h"
22#include "llvm/IntrinsicInst.h"
23#include "llvm/Module.h"
24#include "llvm/Pass.h"
25#include "llvm/Analysis/ConstantFolding.h"
26#include "llvm/Target/TargetData.h"
Duncan Sands551ec902008-02-18 17:32:13 +000027#include "llvm/Support/CallSite.h"
Dan Gohmanf17a25c2007-07-18 16:29:46 +000028#include "llvm/Support/Compiler.h"
29#include "llvm/Support/Debug.h"
Chris Lattner7bd79da2008-01-14 02:09:12 +000030#include "llvm/Support/GetElementPtrTypeIterator.h"
Chris Lattner20846272008-04-26 07:40:11 +000031#include "llvm/Support/MathExtras.h"
Chris Lattnerbdf77462007-09-13 16:30:19 +000032#include "llvm/ADT/SmallPtrSet.h"
Dan Gohmanf17a25c2007-07-18 16:29:46 +000033#include "llvm/ADT/SmallVector.h"
34#include "llvm/ADT/Statistic.h"
35#include "llvm/ADT/StringExtras.h"
36#include <algorithm>
Dan Gohman249ddbf2008-03-21 23:51:57 +000037#include <map>
Dan Gohmanf17a25c2007-07-18 16:29:46 +000038#include <set>
39using namespace llvm;
40
41STATISTIC(NumMarked , "Number of globals marked constant");
42STATISTIC(NumSRA , "Number of aggregate globals broken into scalars");
43STATISTIC(NumHeapSRA , "Number of heap objects SRA'd");
44STATISTIC(NumSubstitute,"Number of globals with initializers stored into them");
45STATISTIC(NumDeleted , "Number of globals deleted");
46STATISTIC(NumFnDeleted , "Number of functions deleted");
47STATISTIC(NumGlobUses , "Number of global uses devirtualized");
48STATISTIC(NumLocalized , "Number of globals localized");
49STATISTIC(NumShrunkToBool , "Number of global vars shrunk to booleans");
50STATISTIC(NumFastCallFns , "Number of functions converted to fastcc");
51STATISTIC(NumCtorsEvaluated, "Number of static ctors evaluated");
Duncan Sandsafa10bf2008-02-16 20:56:04 +000052STATISTIC(NumNestRemoved , "Number of nest attributes removed");
Dan Gohmanf17a25c2007-07-18 16:29:46 +000053
54namespace {
55 struct VISIBILITY_HIDDEN GlobalOpt : public ModulePass {
56 virtual void getAnalysisUsage(AnalysisUsage &AU) const {
57 AU.addRequired<TargetData>();
58 }
59 static char ID; // Pass identification, replacement for typeid
Dan Gohman26f8c272008-09-04 17:05:41 +000060 GlobalOpt() : ModulePass(&ID) {}
Dan Gohmanf17a25c2007-07-18 16:29:46 +000061
62 bool runOnModule(Module &M);
63
64 private:
65 GlobalVariable *FindGlobalCtors(Module &M);
66 bool OptimizeFunctions(Module &M);
67 bool OptimizeGlobalVars(Module &M);
Anton Korobeynikov76944bd2008-09-09 19:04:59 +000068 bool ResolveAliases(Module &M);
Dan Gohmanf17a25c2007-07-18 16:29:46 +000069 bool OptimizeGlobalCtorsList(GlobalVariable *&GCL);
70 bool ProcessInternalGlobal(GlobalVariable *GV,Module::global_iterator &GVI);
71 };
Dan Gohmanf17a25c2007-07-18 16:29:46 +000072}
73
Dan Gohman089efff2008-05-13 00:00:25 +000074char GlobalOpt::ID = 0;
75static RegisterPass<GlobalOpt> X("globalopt", "Global Variable Optimizer");
76
Dan Gohmanf17a25c2007-07-18 16:29:46 +000077ModulePass *llvm::createGlobalOptimizerPass() { return new GlobalOpt(); }
78
Dan Gohman089efff2008-05-13 00:00:25 +000079namespace {
80
Dan Gohmanf17a25c2007-07-18 16:29:46 +000081/// GlobalStatus - As we analyze each global, keep track of some information
82/// about it. If we find out that the address of the global is taken, none of
83/// this info will be accurate.
84struct VISIBILITY_HIDDEN GlobalStatus {
85 /// isLoaded - True if the global is ever loaded. If the global isn't ever
86 /// loaded it can be deleted.
87 bool isLoaded;
88
89 /// StoredType - Keep track of what stores to the global look like.
90 ///
91 enum StoredType {
92 /// NotStored - There is no store to this global. It can thus be marked
93 /// constant.
94 NotStored,
95
96 /// isInitializerStored - This global is stored to, but the only thing
97 /// stored is the constant it was initialized with. This is only tracked
98 /// for scalar globals.
99 isInitializerStored,
100
101 /// isStoredOnce - This global is stored to, but only its initializer and
102 /// one other value is ever stored to it. If this global isStoredOnce, we
103 /// track the value stored to it in StoredOnceValue below. This is only
104 /// tracked for scalar globals.
105 isStoredOnce,
106
107 /// isStored - This global is stored to by multiple values or something else
108 /// that we cannot track.
109 isStored
110 } StoredType;
111
112 /// StoredOnceValue - If only one value (besides the initializer constant) is
113 /// ever stored to this global, keep track of what value it is.
114 Value *StoredOnceValue;
115
116 /// AccessingFunction/HasMultipleAccessingFunctions - These start out
117 /// null/false. When the first accessing function is noticed, it is recorded.
118 /// When a second different accessing function is noticed,
119 /// HasMultipleAccessingFunctions is set to true.
120 Function *AccessingFunction;
121 bool HasMultipleAccessingFunctions;
122
123 /// HasNonInstructionUser - Set to true if this global has a user that is not
124 /// an instruction (e.g. a constant expr or GV initializer).
125 bool HasNonInstructionUser;
126
127 /// HasPHIUser - Set to true if this global has a user that is a PHI node.
128 bool HasPHIUser;
129
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000130 GlobalStatus() : isLoaded(false), StoredType(NotStored), StoredOnceValue(0),
131 AccessingFunction(0), HasMultipleAccessingFunctions(false),
Chris Lattnercad76212008-01-14 01:32:52 +0000132 HasNonInstructionUser(false), HasPHIUser(false) {}
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000133};
134
Dan Gohman089efff2008-05-13 00:00:25 +0000135}
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000136
137/// ConstantIsDead - Return true if the specified constant is (transitively)
138/// dead. The constant may be used by other constants (e.g. constant arrays and
139/// constant exprs) as long as they are dead, but it cannot be used by anything
140/// else.
141static bool ConstantIsDead(Constant *C) {
142 if (isa<GlobalValue>(C)) return false;
143
144 for (Value::use_iterator UI = C->use_begin(), E = C->use_end(); UI != E; ++UI)
145 if (Constant *CU = dyn_cast<Constant>(*UI)) {
146 if (!ConstantIsDead(CU)) return false;
147 } else
148 return false;
149 return true;
150}
151
152
153/// AnalyzeGlobal - Look at all uses of the global and fill in the GlobalStatus
154/// structure. If the global has its address taken, return true to indicate we
155/// can't do anything with it.
156///
157static bool AnalyzeGlobal(Value *V, GlobalStatus &GS,
158 std::set<PHINode*> &PHIUsers) {
159 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI != E; ++UI)
160 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(*UI)) {
161 GS.HasNonInstructionUser = true;
162
163 if (AnalyzeGlobal(CE, GS, PHIUsers)) return true;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000164
165 } else if (Instruction *I = dyn_cast<Instruction>(*UI)) {
166 if (!GS.HasMultipleAccessingFunctions) {
167 Function *F = I->getParent()->getParent();
168 if (GS.AccessingFunction == 0)
169 GS.AccessingFunction = F;
170 else if (GS.AccessingFunction != F)
171 GS.HasMultipleAccessingFunctions = true;
172 }
Chris Lattner75a2db82008-01-29 19:01:37 +0000173 if (LoadInst *LI = dyn_cast<LoadInst>(I)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000174 GS.isLoaded = true;
Chris Lattner75a2db82008-01-29 19:01:37 +0000175 if (LI->isVolatile()) return true; // Don't hack on volatile loads.
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000176 } else if (StoreInst *SI = dyn_cast<StoreInst>(I)) {
177 // Don't allow a store OF the address, only stores TO the address.
178 if (SI->getOperand(0) == V) return true;
179
Chris Lattner75a2db82008-01-29 19:01:37 +0000180 if (SI->isVolatile()) return true; // Don't hack on volatile stores.
181
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000182 // If this is a direct store to the global (i.e., the global is a scalar
183 // value, not an aggregate), keep more specific information about
184 // stores.
Anton Korobeynikov8522e1c2008-02-20 11:26:25 +0000185 if (GS.StoredType != GlobalStatus::isStored) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000186 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(SI->getOperand(1))){
187 Value *StoredVal = SI->getOperand(0);
188 if (StoredVal == GV->getInitializer()) {
189 if (GS.StoredType < GlobalStatus::isInitializerStored)
190 GS.StoredType = GlobalStatus::isInitializerStored;
191 } else if (isa<LoadInst>(StoredVal) &&
192 cast<LoadInst>(StoredVal)->getOperand(0) == GV) {
193 // G = G
194 if (GS.StoredType < GlobalStatus::isInitializerStored)
195 GS.StoredType = GlobalStatus::isInitializerStored;
196 } else if (GS.StoredType < GlobalStatus::isStoredOnce) {
197 GS.StoredType = GlobalStatus::isStoredOnce;
198 GS.StoredOnceValue = StoredVal;
199 } else if (GS.StoredType == GlobalStatus::isStoredOnce &&
200 GS.StoredOnceValue == StoredVal) {
201 // noop.
202 } else {
203 GS.StoredType = GlobalStatus::isStored;
204 }
205 } else {
206 GS.StoredType = GlobalStatus::isStored;
207 }
Anton Korobeynikov8522e1c2008-02-20 11:26:25 +0000208 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000209 } else if (isa<GetElementPtrInst>(I)) {
210 if (AnalyzeGlobal(I, GS, PHIUsers)) return true;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000211 } else if (isa<SelectInst>(I)) {
212 if (AnalyzeGlobal(I, GS, PHIUsers)) return true;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000213 } else if (PHINode *PN = dyn_cast<PHINode>(I)) {
214 // PHI nodes we can check just like select or GEP instructions, but we
215 // have to be careful about infinite recursion.
216 if (PHIUsers.insert(PN).second) // Not already visited.
217 if (AnalyzeGlobal(I, GS, PHIUsers)) return true;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000218 GS.HasPHIUser = true;
219 } else if (isa<CmpInst>(I)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000220 } else if (isa<MemCpyInst>(I) || isa<MemMoveInst>(I)) {
221 if (I->getOperand(1) == V)
222 GS.StoredType = GlobalStatus::isStored;
223 if (I->getOperand(2) == V)
224 GS.isLoaded = true;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000225 } else if (isa<MemSetInst>(I)) {
226 assert(I->getOperand(1) == V && "Memset only takes one pointer!");
227 GS.StoredType = GlobalStatus::isStored;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000228 } else {
229 return true; // Any other non-load instruction might take address!
230 }
231 } else if (Constant *C = dyn_cast<Constant>(*UI)) {
232 GS.HasNonInstructionUser = true;
233 // We might have a dead and dangling constant hanging off of here.
234 if (!ConstantIsDead(C))
235 return true;
236 } else {
237 GS.HasNonInstructionUser = true;
238 // Otherwise must be some other user.
239 return true;
240 }
241
242 return false;
243}
244
245static Constant *getAggregateConstantElement(Constant *Agg, Constant *Idx) {
246 ConstantInt *CI = dyn_cast<ConstantInt>(Idx);
247 if (!CI) return 0;
248 unsigned IdxV = CI->getZExtValue();
249
250 if (ConstantStruct *CS = dyn_cast<ConstantStruct>(Agg)) {
251 if (IdxV < CS->getNumOperands()) return CS->getOperand(IdxV);
252 } else if (ConstantArray *CA = dyn_cast<ConstantArray>(Agg)) {
253 if (IdxV < CA->getNumOperands()) return CA->getOperand(IdxV);
254 } else if (ConstantVector *CP = dyn_cast<ConstantVector>(Agg)) {
255 if (IdxV < CP->getNumOperands()) return CP->getOperand(IdxV);
256 } else if (isa<ConstantAggregateZero>(Agg)) {
257 if (const StructType *STy = dyn_cast<StructType>(Agg->getType())) {
258 if (IdxV < STy->getNumElements())
259 return Constant::getNullValue(STy->getElementType(IdxV));
260 } else if (const SequentialType *STy =
261 dyn_cast<SequentialType>(Agg->getType())) {
262 return Constant::getNullValue(STy->getElementType());
263 }
264 } else if (isa<UndefValue>(Agg)) {
265 if (const StructType *STy = dyn_cast<StructType>(Agg->getType())) {
266 if (IdxV < STy->getNumElements())
267 return UndefValue::get(STy->getElementType(IdxV));
268 } else if (const SequentialType *STy =
269 dyn_cast<SequentialType>(Agg->getType())) {
270 return UndefValue::get(STy->getElementType());
271 }
272 }
273 return 0;
274}
275
276
277/// CleanupConstantGlobalUsers - We just marked GV constant. Loop over all
278/// users of the global, cleaning up the obvious ones. This is largely just a
279/// quick scan over the use list to clean up the easy and obvious cruft. This
280/// returns true if it made a change.
281static bool CleanupConstantGlobalUsers(Value *V, Constant *Init) {
282 bool Changed = false;
283 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI != E;) {
284 User *U = *UI++;
285
286 if (LoadInst *LI = dyn_cast<LoadInst>(U)) {
287 if (Init) {
288 // Replace the load with the initializer.
289 LI->replaceAllUsesWith(Init);
290 LI->eraseFromParent();
291 Changed = true;
292 }
293 } else if (StoreInst *SI = dyn_cast<StoreInst>(U)) {
294 // Store must be unreachable or storing Init into the global.
295 SI->eraseFromParent();
296 Changed = true;
297 } else if (ConstantExpr *CE = dyn_cast<ConstantExpr>(U)) {
298 if (CE->getOpcode() == Instruction::GetElementPtr) {
299 Constant *SubInit = 0;
300 if (Init)
301 SubInit = ConstantFoldLoadThroughGEPConstantExpr(Init, CE);
302 Changed |= CleanupConstantGlobalUsers(CE, SubInit);
303 } else if (CE->getOpcode() == Instruction::BitCast &&
304 isa<PointerType>(CE->getType())) {
305 // Pointer cast, delete any stores and memsets to the global.
306 Changed |= CleanupConstantGlobalUsers(CE, 0);
307 }
308
309 if (CE->use_empty()) {
310 CE->destroyConstant();
311 Changed = true;
312 }
313 } else if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(U)) {
Chris Lattner7ebafca2007-11-09 17:33:02 +0000314 // Do not transform "gepinst (gep constexpr (GV))" here, because forming
315 // "gepconstexpr (gep constexpr (GV))" will cause the two gep's to fold
316 // and will invalidate our notion of what Init is.
Chris Lattner2dd9c042007-11-13 21:46:23 +0000317 Constant *SubInit = 0;
Chris Lattner7ebafca2007-11-09 17:33:02 +0000318 if (!isa<ConstantExpr>(GEP->getOperand(0))) {
319 ConstantExpr *CE =
320 dyn_cast_or_null<ConstantExpr>(ConstantFoldInstruction(GEP));
321 if (Init && CE && CE->getOpcode() == Instruction::GetElementPtr)
Chris Lattner2dd9c042007-11-13 21:46:23 +0000322 SubInit = ConstantFoldLoadThroughGEPConstantExpr(Init, CE);
Chris Lattner7ebafca2007-11-09 17:33:02 +0000323 }
Chris Lattner2dd9c042007-11-13 21:46:23 +0000324 Changed |= CleanupConstantGlobalUsers(GEP, SubInit);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000325
326 if (GEP->use_empty()) {
327 GEP->eraseFromParent();
328 Changed = true;
329 }
330 } else if (MemIntrinsic *MI = dyn_cast<MemIntrinsic>(U)) { // memset/cpy/mv
331 if (MI->getRawDest() == V) {
332 MI->eraseFromParent();
333 Changed = true;
334 }
335
336 } else if (Constant *C = dyn_cast<Constant>(U)) {
337 // If we have a chain of dead constantexprs or other things dangling from
338 // us, and if they are all dead, nuke them without remorse.
339 if (ConstantIsDead(C)) {
340 C->destroyConstant();
341 // This could have invalidated UI, start over from scratch.
342 CleanupConstantGlobalUsers(V, Init);
343 return true;
344 }
345 }
346 }
347 return Changed;
348}
349
Chris Lattner7bd79da2008-01-14 02:09:12 +0000350/// isSafeSROAElementUse - Return true if the specified instruction is a safe
351/// user of a derived expression from a global that we want to SROA.
352static bool isSafeSROAElementUse(Value *V) {
353 // We might have a dead and dangling constant hanging off of here.
354 if (Constant *C = dyn_cast<Constant>(V))
355 return ConstantIsDead(C);
Chris Lattner7329c662008-01-14 01:31:05 +0000356
Chris Lattner7bd79da2008-01-14 02:09:12 +0000357 Instruction *I = dyn_cast<Instruction>(V);
358 if (!I) return false;
359
360 // Loads are ok.
361 if (isa<LoadInst>(I)) return true;
362
363 // Stores *to* the pointer are ok.
364 if (StoreInst *SI = dyn_cast<StoreInst>(I))
365 return SI->getOperand(0) != V;
366
367 // Otherwise, it must be a GEP.
368 GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(I);
369 if (GEPI == 0) return false;
370
371 if (GEPI->getNumOperands() < 3 || !isa<Constant>(GEPI->getOperand(1)) ||
372 !cast<Constant>(GEPI->getOperand(1))->isNullValue())
373 return false;
374
375 for (Value::use_iterator I = GEPI->use_begin(), E = GEPI->use_end();
376 I != E; ++I)
377 if (!isSafeSROAElementUse(*I))
378 return false;
Chris Lattner7329c662008-01-14 01:31:05 +0000379 return true;
380}
381
Chris Lattner7bd79da2008-01-14 02:09:12 +0000382
383/// IsUserOfGlobalSafeForSRA - U is a direct user of the specified global value.
384/// Look at it and its uses and decide whether it is safe to SROA this global.
385///
386static bool IsUserOfGlobalSafeForSRA(User *U, GlobalValue *GV) {
387 // The user of the global must be a GEP Inst or a ConstantExpr GEP.
388 if (!isa<GetElementPtrInst>(U) &&
389 (!isa<ConstantExpr>(U) ||
390 cast<ConstantExpr>(U)->getOpcode() != Instruction::GetElementPtr))
391 return false;
392
393 // Check to see if this ConstantExpr GEP is SRA'able. In particular, we
394 // don't like < 3 operand CE's, and we don't like non-constant integer
395 // indices. This enforces that all uses are 'gep GV, 0, C, ...' for some
396 // value of C.
397 if (U->getNumOperands() < 3 || !isa<Constant>(U->getOperand(1)) ||
398 !cast<Constant>(U->getOperand(1))->isNullValue() ||
399 !isa<ConstantInt>(U->getOperand(2)))
400 return false;
401
402 gep_type_iterator GEPI = gep_type_begin(U), E = gep_type_end(U);
403 ++GEPI; // Skip over the pointer index.
404
405 // If this is a use of an array allocation, do a bit more checking for sanity.
406 if (const ArrayType *AT = dyn_cast<ArrayType>(*GEPI)) {
407 uint64_t NumElements = AT->getNumElements();
408 ConstantInt *Idx = cast<ConstantInt>(U->getOperand(2));
409
410 // Check to make sure that index falls within the array. If not,
411 // something funny is going on, so we won't do the optimization.
412 //
413 if (Idx->getZExtValue() >= NumElements)
414 return false;
415
416 // We cannot scalar repl this level of the array unless any array
417 // sub-indices are in-range constants. In particular, consider:
418 // A[0][i]. We cannot know that the user isn't doing invalid things like
419 // allowing i to index an out-of-range subscript that accesses A[1].
420 //
421 // Scalar replacing *just* the outer index of the array is probably not
422 // going to be a win anyway, so just give up.
423 for (++GEPI; // Skip array index.
424 GEPI != E && (isa<ArrayType>(*GEPI) || isa<VectorType>(*GEPI));
425 ++GEPI) {
426 uint64_t NumElements;
427 if (const ArrayType *SubArrayTy = dyn_cast<ArrayType>(*GEPI))
428 NumElements = SubArrayTy->getNumElements();
429 else
430 NumElements = cast<VectorType>(*GEPI)->getNumElements();
431
432 ConstantInt *IdxVal = dyn_cast<ConstantInt>(GEPI.getOperand());
433 if (!IdxVal || IdxVal->getZExtValue() >= NumElements)
434 return false;
435 }
436 }
437
438 for (Value::use_iterator I = U->use_begin(), E = U->use_end(); I != E; ++I)
439 if (!isSafeSROAElementUse(*I))
440 return false;
441 return true;
442}
443
444/// GlobalUsersSafeToSRA - Look at all uses of the global and decide whether it
445/// is safe for us to perform this transformation.
446///
447static bool GlobalUsersSafeToSRA(GlobalValue *GV) {
448 for (Value::use_iterator UI = GV->use_begin(), E = GV->use_end();
449 UI != E; ++UI) {
450 if (!IsUserOfGlobalSafeForSRA(*UI, GV))
451 return false;
452 }
453 return true;
454}
455
456
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000457/// SRAGlobal - Perform scalar replacement of aggregates on the specified global
458/// variable. This opens the door for other optimizations by exposing the
459/// behavior of the program in a more fine-grained way. We have determined that
460/// this transformation is safe already. We return the first global variable we
461/// insert so that the caller can reprocess it.
Chris Lattner20846272008-04-26 07:40:11 +0000462static GlobalVariable *SRAGlobal(GlobalVariable *GV, const TargetData &TD) {
Chris Lattner7329c662008-01-14 01:31:05 +0000463 // Make sure this global only has simple uses that we can SRA.
Chris Lattner7bd79da2008-01-14 02:09:12 +0000464 if (!GlobalUsersSafeToSRA(GV))
Chris Lattner7329c662008-01-14 01:31:05 +0000465 return 0;
466
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000467 assert(GV->hasInternalLinkage() && !GV->isConstant());
468 Constant *Init = GV->getInitializer();
469 const Type *Ty = Init->getType();
470
471 std::vector<GlobalVariable*> NewGlobals;
472 Module::GlobalListType &Globals = GV->getParent()->getGlobalList();
473
Chris Lattner20846272008-04-26 07:40:11 +0000474 // Get the alignment of the global, either explicit or target-specific.
475 unsigned StartAlignment = GV->getAlignment();
476 if (StartAlignment == 0)
477 StartAlignment = TD.getABITypeAlignment(GV->getType());
478
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000479 if (const StructType *STy = dyn_cast<StructType>(Ty)) {
480 NewGlobals.reserve(STy->getNumElements());
Chris Lattner20846272008-04-26 07:40:11 +0000481 const StructLayout &Layout = *TD.getStructLayout(STy);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000482 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
483 Constant *In = getAggregateConstantElement(Init,
484 ConstantInt::get(Type::Int32Ty, i));
485 assert(In && "Couldn't get element of initializer?");
486 GlobalVariable *NGV = new GlobalVariable(STy->getElementType(i), false,
487 GlobalVariable::InternalLinkage,
488 In, GV->getName()+"."+utostr(i),
489 (Module *)NULL,
Matthijs Kooijman36693bb2008-07-17 11:59:53 +0000490 GV->isThreadLocal(),
491 GV->getType()->getAddressSpace());
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000492 Globals.insert(GV, NGV);
493 NewGlobals.push_back(NGV);
Chris Lattner20846272008-04-26 07:40:11 +0000494
495 // Calculate the known alignment of the field. If the original aggregate
496 // had 256 byte alignment for example, something might depend on that:
497 // propagate info to each field.
498 uint64_t FieldOffset = Layout.getElementOffset(i);
499 unsigned NewAlign = (unsigned)MinAlign(StartAlignment, FieldOffset);
500 if (NewAlign > TD.getABITypeAlignment(STy->getElementType(i)))
501 NGV->setAlignment(NewAlign);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000502 }
503 } else if (const SequentialType *STy = dyn_cast<SequentialType>(Ty)) {
504 unsigned NumElements = 0;
505 if (const ArrayType *ATy = dyn_cast<ArrayType>(STy))
506 NumElements = ATy->getNumElements();
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000507 else
Chris Lattner20846272008-04-26 07:40:11 +0000508 NumElements = cast<VectorType>(STy)->getNumElements();
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000509
510 if (NumElements > 16 && GV->hasNUsesOrMore(16))
511 return 0; // It's not worth it.
512 NewGlobals.reserve(NumElements);
Chris Lattner20846272008-04-26 07:40:11 +0000513
514 uint64_t EltSize = TD.getABITypeSize(STy->getElementType());
515 unsigned EltAlign = TD.getABITypeAlignment(STy->getElementType());
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000516 for (unsigned i = 0, e = NumElements; i != e; ++i) {
517 Constant *In = getAggregateConstantElement(Init,
518 ConstantInt::get(Type::Int32Ty, i));
519 assert(In && "Couldn't get element of initializer?");
520
521 GlobalVariable *NGV = new GlobalVariable(STy->getElementType(), false,
522 GlobalVariable::InternalLinkage,
523 In, GV->getName()+"."+utostr(i),
524 (Module *)NULL,
Matthijs Kooijman36693bb2008-07-17 11:59:53 +0000525 GV->isThreadLocal(),
526 GV->getType()->getAddressSpace());
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000527 Globals.insert(GV, NGV);
528 NewGlobals.push_back(NGV);
Chris Lattner20846272008-04-26 07:40:11 +0000529
530 // Calculate the known alignment of the field. If the original aggregate
531 // had 256 byte alignment for example, something might depend on that:
532 // propagate info to each field.
533 unsigned NewAlign = (unsigned)MinAlign(StartAlignment, EltSize*i);
534 if (NewAlign > EltAlign)
535 NGV->setAlignment(NewAlign);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000536 }
537 }
538
539 if (NewGlobals.empty())
540 return 0;
541
542 DOUT << "PERFORMING GLOBAL SRA ON: " << *GV;
543
544 Constant *NullInt = Constant::getNullValue(Type::Int32Ty);
545
546 // Loop over all of the uses of the global, replacing the constantexpr geps,
547 // with smaller constantexpr geps or direct references.
548 while (!GV->use_empty()) {
549 User *GEP = GV->use_back();
550 assert(((isa<ConstantExpr>(GEP) &&
551 cast<ConstantExpr>(GEP)->getOpcode()==Instruction::GetElementPtr)||
552 isa<GetElementPtrInst>(GEP)) && "NonGEP CE's are not SRAable!");
553
554 // Ignore the 1th operand, which has to be zero or else the program is quite
555 // broken (undefined). Get the 2nd operand, which is the structure or array
556 // index.
557 unsigned Val = cast<ConstantInt>(GEP->getOperand(2))->getZExtValue();
558 if (Val >= NewGlobals.size()) Val = 0; // Out of bound array access.
559
560 Value *NewPtr = NewGlobals[Val];
561
562 // Form a shorter GEP if needed.
Anton Korobeynikov8522e1c2008-02-20 11:26:25 +0000563 if (GEP->getNumOperands() > 3) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000564 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(GEP)) {
565 SmallVector<Constant*, 8> Idxs;
566 Idxs.push_back(NullInt);
567 for (unsigned i = 3, e = CE->getNumOperands(); i != e; ++i)
568 Idxs.push_back(CE->getOperand(i));
569 NewPtr = ConstantExpr::getGetElementPtr(cast<Constant>(NewPtr),
570 &Idxs[0], Idxs.size());
571 } else {
572 GetElementPtrInst *GEPI = cast<GetElementPtrInst>(GEP);
573 SmallVector<Value*, 8> Idxs;
574 Idxs.push_back(NullInt);
575 for (unsigned i = 3, e = GEPI->getNumOperands(); i != e; ++i)
576 Idxs.push_back(GEPI->getOperand(i));
Gabor Greifd6da1d02008-04-06 20:25:17 +0000577 NewPtr = GetElementPtrInst::Create(NewPtr, Idxs.begin(), Idxs.end(),
578 GEPI->getName()+"."+utostr(Val), GEPI);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000579 }
Anton Korobeynikov8522e1c2008-02-20 11:26:25 +0000580 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000581 GEP->replaceAllUsesWith(NewPtr);
582
583 if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(GEP))
584 GEPI->eraseFromParent();
585 else
586 cast<ConstantExpr>(GEP)->destroyConstant();
587 }
588
589 // Delete the old global, now that it is dead.
590 Globals.erase(GV);
591 ++NumSRA;
592
593 // Loop over the new globals array deleting any globals that are obviously
594 // dead. This can arise due to scalarization of a structure or an array that
595 // has elements that are dead.
596 unsigned FirstGlobal = 0;
597 for (unsigned i = 0, e = NewGlobals.size(); i != e; ++i)
598 if (NewGlobals[i]->use_empty()) {
599 Globals.erase(NewGlobals[i]);
600 if (FirstGlobal == i) ++FirstGlobal;
601 }
602
603 return FirstGlobal != NewGlobals.size() ? NewGlobals[FirstGlobal] : 0;
604}
605
606/// AllUsesOfValueWillTrapIfNull - Return true if all users of the specified
Chris Lattnerbdf77462007-09-13 16:30:19 +0000607/// value will trap if the value is dynamically null. PHIs keeps track of any
608/// phi nodes we've seen to avoid reprocessing them.
609static bool AllUsesOfValueWillTrapIfNull(Value *V,
610 SmallPtrSet<PHINode*, 8> &PHIs) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000611 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI != E; ++UI)
612 if (isa<LoadInst>(*UI)) {
613 // Will trap.
614 } else if (StoreInst *SI = dyn_cast<StoreInst>(*UI)) {
615 if (SI->getOperand(0) == V) {
616 //cerr << "NONTRAPPING USE: " << **UI;
617 return false; // Storing the value.
618 }
619 } else if (CallInst *CI = dyn_cast<CallInst>(*UI)) {
620 if (CI->getOperand(0) != V) {
621 //cerr << "NONTRAPPING USE: " << **UI;
622 return false; // Not calling the ptr
623 }
624 } else if (InvokeInst *II = dyn_cast<InvokeInst>(*UI)) {
625 if (II->getOperand(0) != V) {
626 //cerr << "NONTRAPPING USE: " << **UI;
627 return false; // Not calling the ptr
628 }
Chris Lattnerbdf77462007-09-13 16:30:19 +0000629 } else if (BitCastInst *CI = dyn_cast<BitCastInst>(*UI)) {
630 if (!AllUsesOfValueWillTrapIfNull(CI, PHIs)) return false;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000631 } else if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(*UI)) {
Chris Lattnerbdf77462007-09-13 16:30:19 +0000632 if (!AllUsesOfValueWillTrapIfNull(GEPI, PHIs)) return false;
633 } else if (PHINode *PN = dyn_cast<PHINode>(*UI)) {
634 // If we've already seen this phi node, ignore it, it has already been
635 // checked.
636 if (PHIs.insert(PN))
637 return AllUsesOfValueWillTrapIfNull(PN, PHIs);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000638 } else if (isa<ICmpInst>(*UI) &&
639 isa<ConstantPointerNull>(UI->getOperand(1))) {
640 // Ignore setcc X, null
641 } else {
642 //cerr << "NONTRAPPING USE: " << **UI;
643 return false;
644 }
645 return true;
646}
647
648/// AllUsesOfLoadedValueWillTrapIfNull - Return true if all uses of any loads
649/// from GV will trap if the loaded value is null. Note that this also permits
650/// comparisons of the loaded value against null, as a special case.
651static bool AllUsesOfLoadedValueWillTrapIfNull(GlobalVariable *GV) {
652 for (Value::use_iterator UI = GV->use_begin(), E = GV->use_end(); UI!=E; ++UI)
653 if (LoadInst *LI = dyn_cast<LoadInst>(*UI)) {
Chris Lattnerbdf77462007-09-13 16:30:19 +0000654 SmallPtrSet<PHINode*, 8> PHIs;
655 if (!AllUsesOfValueWillTrapIfNull(LI, PHIs))
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000656 return false;
657 } else if (isa<StoreInst>(*UI)) {
658 // Ignore stores to the global.
659 } else {
660 // We don't know or understand this user, bail out.
661 //cerr << "UNKNOWN USER OF GLOBAL!: " << **UI;
662 return false;
663 }
664
665 return true;
666}
667
668static bool OptimizeAwayTrappingUsesOfValue(Value *V, Constant *NewV) {
669 bool Changed = false;
670 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI != E; ) {
671 Instruction *I = cast<Instruction>(*UI++);
672 if (LoadInst *LI = dyn_cast<LoadInst>(I)) {
673 LI->setOperand(0, NewV);
674 Changed = true;
675 } else if (StoreInst *SI = dyn_cast<StoreInst>(I)) {
676 if (SI->getOperand(1) == V) {
677 SI->setOperand(1, NewV);
678 Changed = true;
679 }
680 } else if (isa<CallInst>(I) || isa<InvokeInst>(I)) {
681 if (I->getOperand(0) == V) {
682 // Calling through the pointer! Turn into a direct call, but be careful
683 // that the pointer is not also being passed as an argument.
684 I->setOperand(0, NewV);
685 Changed = true;
686 bool PassedAsArg = false;
687 for (unsigned i = 1, e = I->getNumOperands(); i != e; ++i)
688 if (I->getOperand(i) == V) {
689 PassedAsArg = true;
690 I->setOperand(i, NewV);
691 }
692
693 if (PassedAsArg) {
694 // Being passed as an argument also. Be careful to not invalidate UI!
695 UI = V->use_begin();
696 }
697 }
698 } else if (CastInst *CI = dyn_cast<CastInst>(I)) {
699 Changed |= OptimizeAwayTrappingUsesOfValue(CI,
700 ConstantExpr::getCast(CI->getOpcode(),
701 NewV, CI->getType()));
702 if (CI->use_empty()) {
703 Changed = true;
704 CI->eraseFromParent();
705 }
706 } else if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(I)) {
707 // Should handle GEP here.
708 SmallVector<Constant*, 8> Idxs;
709 Idxs.reserve(GEPI->getNumOperands()-1);
Gabor Greif20f03f52008-05-29 01:59:18 +0000710 for (User::op_iterator i = GEPI->op_begin() + 1, e = GEPI->op_end();
711 i != e; ++i)
712 if (Constant *C = dyn_cast<Constant>(*i))
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000713 Idxs.push_back(C);
714 else
715 break;
716 if (Idxs.size() == GEPI->getNumOperands()-1)
717 Changed |= OptimizeAwayTrappingUsesOfValue(GEPI,
718 ConstantExpr::getGetElementPtr(NewV, &Idxs[0],
719 Idxs.size()));
720 if (GEPI->use_empty()) {
721 Changed = true;
722 GEPI->eraseFromParent();
723 }
724 }
725 }
726
727 return Changed;
728}
729
730
731/// OptimizeAwayTrappingUsesOfLoads - The specified global has only one non-null
732/// value stored into it. If there are uses of the loaded value that would trap
733/// if the loaded value is dynamically null, then we know that they cannot be
734/// reachable with a null optimize away the load.
735static bool OptimizeAwayTrappingUsesOfLoads(GlobalVariable *GV, Constant *LV) {
736 std::vector<LoadInst*> Loads;
737 bool Changed = false;
738
739 // Replace all uses of loads with uses of uses of the stored value.
740 for (Value::use_iterator GUI = GV->use_begin(), E = GV->use_end();
741 GUI != E; ++GUI)
742 if (LoadInst *LI = dyn_cast<LoadInst>(*GUI)) {
743 Loads.push_back(LI);
744 Changed |= OptimizeAwayTrappingUsesOfValue(LI, LV);
745 } else {
746 // If we get here we could have stores, selects, or phi nodes whose values
747 // are loaded.
748 assert((isa<StoreInst>(*GUI) || isa<PHINode>(*GUI) ||
Chris Lattnerad8665a2008-01-04 05:04:53 +0000749 isa<SelectInst>(*GUI) || isa<ConstantExpr>(*GUI)) &&
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000750 "Only expect load and stores!");
751 }
752
753 if (Changed) {
754 DOUT << "OPTIMIZED LOADS FROM STORED ONCE POINTER: " << *GV;
755 ++NumGlobUses;
756 }
757
758 // Delete all of the loads we can, keeping track of whether we nuked them all!
759 bool AllLoadsGone = true;
760 while (!Loads.empty()) {
761 LoadInst *L = Loads.back();
762 if (L->use_empty()) {
763 L->eraseFromParent();
764 Changed = true;
765 } else {
766 AllLoadsGone = false;
767 }
768 Loads.pop_back();
769 }
770
771 // If we nuked all of the loads, then none of the stores are needed either,
772 // nor is the global.
773 if (AllLoadsGone) {
774 DOUT << " *** GLOBAL NOW DEAD!\n";
775 CleanupConstantGlobalUsers(GV, 0);
776 if (GV->use_empty()) {
777 GV->eraseFromParent();
778 ++NumDeleted;
779 }
780 Changed = true;
781 }
782 return Changed;
783}
784
785/// ConstantPropUsersOf - Walk the use list of V, constant folding all of the
786/// instructions that are foldable.
787static void ConstantPropUsersOf(Value *V) {
788 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI != E; )
789 if (Instruction *I = dyn_cast<Instruction>(*UI++))
790 if (Constant *NewC = ConstantFoldInstruction(I)) {
791 I->replaceAllUsesWith(NewC);
792
793 // Advance UI to the next non-I use to avoid invalidating it!
794 // Instructions could multiply use V.
795 while (UI != E && *UI == I)
796 ++UI;
797 I->eraseFromParent();
798 }
799}
800
801/// OptimizeGlobalAddressOfMalloc - This function takes the specified global
802/// variable, and transforms the program as if it always contained the result of
803/// the specified malloc. Because it is always the result of the specified
804/// malloc, there is no reason to actually DO the malloc. Instead, turn the
805/// malloc into a global, and any loads of GV as uses of the new global.
806static GlobalVariable *OptimizeGlobalAddressOfMalloc(GlobalVariable *GV,
807 MallocInst *MI) {
808 DOUT << "PROMOTING MALLOC GLOBAL: " << *GV << " MALLOC = " << *MI;
809 ConstantInt *NElements = cast<ConstantInt>(MI->getArraySize());
810
811 if (NElements->getZExtValue() != 1) {
812 // If we have an array allocation, transform it to a single element
813 // allocation to make the code below simpler.
814 Type *NewTy = ArrayType::get(MI->getAllocatedType(),
815 NElements->getZExtValue());
816 MallocInst *NewMI =
817 new MallocInst(NewTy, Constant::getNullValue(Type::Int32Ty),
818 MI->getAlignment(), MI->getName(), MI);
819 Value* Indices[2];
820 Indices[0] = Indices[1] = Constant::getNullValue(Type::Int32Ty);
Gabor Greifd6da1d02008-04-06 20:25:17 +0000821 Value *NewGEP = GetElementPtrInst::Create(NewMI, Indices, Indices + 2,
822 NewMI->getName()+".el0", MI);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000823 MI->replaceAllUsesWith(NewGEP);
824 MI->eraseFromParent();
825 MI = NewMI;
826 }
827
828 // Create the new global variable. The contents of the malloc'd memory is
829 // undefined, so initialize with an undef value.
830 Constant *Init = UndefValue::get(MI->getAllocatedType());
831 GlobalVariable *NewGV = new GlobalVariable(MI->getAllocatedType(), false,
832 GlobalValue::InternalLinkage, Init,
833 GV->getName()+".body",
834 (Module *)NULL,
835 GV->isThreadLocal());
Chris Lattner20846272008-04-26 07:40:11 +0000836 // FIXME: This new global should have the alignment returned by malloc. Code
837 // could depend on malloc returning large alignment (on the mac, 16 bytes) but
838 // this would only guarantee some lower alignment.
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000839 GV->getParent()->getGlobalList().insert(GV, NewGV);
840
841 // Anything that used the malloc now uses the global directly.
842 MI->replaceAllUsesWith(NewGV);
843
844 Constant *RepValue = NewGV;
845 if (NewGV->getType() != GV->getType()->getElementType())
846 RepValue = ConstantExpr::getBitCast(RepValue,
847 GV->getType()->getElementType());
848
849 // If there is a comparison against null, we will insert a global bool to
850 // keep track of whether the global was initialized yet or not.
851 GlobalVariable *InitBool =
852 new GlobalVariable(Type::Int1Ty, false, GlobalValue::InternalLinkage,
853 ConstantInt::getFalse(), GV->getName()+".init",
854 (Module *)NULL, GV->isThreadLocal());
855 bool InitBoolUsed = false;
856
857 // Loop over all uses of GV, processing them in turn.
858 std::vector<StoreInst*> Stores;
859 while (!GV->use_empty())
860 if (LoadInst *LI = dyn_cast<LoadInst>(GV->use_back())) {
861 while (!LI->use_empty()) {
862 Use &LoadUse = LI->use_begin().getUse();
863 if (!isa<ICmpInst>(LoadUse.getUser()))
864 LoadUse = RepValue;
865 else {
866 ICmpInst *CI = cast<ICmpInst>(LoadUse.getUser());
867 // Replace the cmp X, 0 with a use of the bool value.
868 Value *LV = new LoadInst(InitBool, InitBool->getName()+".val", CI);
869 InitBoolUsed = true;
870 switch (CI->getPredicate()) {
871 default: assert(0 && "Unknown ICmp Predicate!");
872 case ICmpInst::ICMP_ULT:
873 case ICmpInst::ICMP_SLT:
874 LV = ConstantInt::getFalse(); // X < null -> always false
875 break;
876 case ICmpInst::ICMP_ULE:
877 case ICmpInst::ICMP_SLE:
878 case ICmpInst::ICMP_EQ:
Gabor Greifa645dd32008-05-16 19:29:10 +0000879 LV = BinaryOperator::CreateNot(LV, "notinit", CI);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000880 break;
881 case ICmpInst::ICMP_NE:
882 case ICmpInst::ICMP_UGE:
883 case ICmpInst::ICMP_SGE:
884 case ICmpInst::ICMP_UGT:
885 case ICmpInst::ICMP_SGT:
886 break; // no change.
887 }
888 CI->replaceAllUsesWith(LV);
889 CI->eraseFromParent();
890 }
891 }
892 LI->eraseFromParent();
893 } else {
894 StoreInst *SI = cast<StoreInst>(GV->use_back());
895 // The global is initialized when the store to it occurs.
896 new StoreInst(ConstantInt::getTrue(), InitBool, SI);
897 SI->eraseFromParent();
898 }
899
900 // If the initialization boolean was used, insert it, otherwise delete it.
901 if (!InitBoolUsed) {
902 while (!InitBool->use_empty()) // Delete initializations
903 cast<Instruction>(InitBool->use_back())->eraseFromParent();
904 delete InitBool;
905 } else
906 GV->getParent()->getGlobalList().insert(GV, InitBool);
907
908
909 // Now the GV is dead, nuke it and the malloc.
910 GV->eraseFromParent();
911 MI->eraseFromParent();
912
913 // To further other optimizations, loop over all users of NewGV and try to
914 // constant prop them. This will promote GEP instructions with constant
915 // indices into GEP constant-exprs, which will allow global-opt to hack on it.
916 ConstantPropUsersOf(NewGV);
917 if (RepValue != NewGV)
918 ConstantPropUsersOf(RepValue);
919
920 return NewGV;
921}
922
923/// ValueIsOnlyUsedLocallyOrStoredToOneGlobal - Scan the use-list of V checking
924/// to make sure that there are no complex uses of V. We permit simple things
925/// like dereferencing the pointer, but not storing through the address, unless
926/// it is to the specified global.
927static bool ValueIsOnlyUsedLocallyOrStoredToOneGlobal(Instruction *V,
Chris Lattnere7606f42007-09-13 16:37:20 +0000928 GlobalVariable *GV,
929 SmallPtrSet<PHINode*, 8> &PHIs) {
Chris Lattner183b0cf2008-12-15 21:08:54 +0000930 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI != E;++UI){
931 Instruction *Inst = dyn_cast<Instruction>(*UI);
932 if (Inst == 0) return false;
933
934 if (isa<LoadInst>(Inst) || isa<CmpInst>(Inst)) {
935 continue; // Fine, ignore.
936 }
937
938 if (StoreInst *SI = dyn_cast<StoreInst>(Inst)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000939 if (SI->getOperand(0) == V && SI->getOperand(1) != GV)
940 return false; // Storing the pointer itself... bad.
Chris Lattner183b0cf2008-12-15 21:08:54 +0000941 continue; // Otherwise, storing through it, or storing into GV... fine.
942 }
943
944 if (isa<GetElementPtrInst>(Inst)) {
945 if (!ValueIsOnlyUsedLocallyOrStoredToOneGlobal(Inst, GV, PHIs))
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000946 return false;
Chris Lattner183b0cf2008-12-15 21:08:54 +0000947 continue;
948 }
949
950 if (PHINode *PN = dyn_cast<PHINode>(Inst)) {
Chris Lattnere7606f42007-09-13 16:37:20 +0000951 // PHIs are ok if all uses are ok. Don't infinitely recurse through PHI
952 // cycles.
953 if (PHIs.insert(PN))
Chris Lattner4bde3c42007-09-14 03:41:21 +0000954 if (!ValueIsOnlyUsedLocallyOrStoredToOneGlobal(PN, GV, PHIs))
955 return false;
Chris Lattner183b0cf2008-12-15 21:08:54 +0000956 continue;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000957 }
Chris Lattner183b0cf2008-12-15 21:08:54 +0000958
959 if (BitCastInst *BCI = dyn_cast<BitCastInst>(Inst)) {
960 if (!ValueIsOnlyUsedLocallyOrStoredToOneGlobal(BCI, GV, PHIs))
961 return false;
962 continue;
963 }
964
965 return false;
966 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000967 return true;
968}
969
970/// ReplaceUsesOfMallocWithGlobal - The Alloc pointer is stored into GV
971/// somewhere. Transform all uses of the allocation into loads from the
972/// global and uses of the resultant pointer. Further, delete the store into
973/// GV. This assumes that these value pass the
974/// 'ValueIsOnlyUsedLocallyOrStoredToOneGlobal' predicate.
975static void ReplaceUsesOfMallocWithGlobal(Instruction *Alloc,
976 GlobalVariable *GV) {
977 while (!Alloc->use_empty()) {
Chris Lattner20eef0f2007-09-13 18:00:31 +0000978 Instruction *U = cast<Instruction>(*Alloc->use_begin());
979 Instruction *InsertPt = U;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000980 if (StoreInst *SI = dyn_cast<StoreInst>(U)) {
981 // If this is the store of the allocation into the global, remove it.
982 if (SI->getOperand(1) == GV) {
983 SI->eraseFromParent();
984 continue;
985 }
Chris Lattner20eef0f2007-09-13 18:00:31 +0000986 } else if (PHINode *PN = dyn_cast<PHINode>(U)) {
987 // Insert the load in the corresponding predecessor, not right before the
988 // PHI.
989 unsigned PredNo = Alloc->use_begin().getOperandNo()/2;
990 InsertPt = PN->getIncomingBlock(PredNo)->getTerminator();
Chris Lattner27ef89e2008-12-15 21:44:34 +0000991 } else if (isa<BitCastInst>(U)) {
992 // Must be bitcast between the malloc and store to initialize the global.
993 ReplaceUsesOfMallocWithGlobal(U, GV);
994 U->eraseFromParent();
995 continue;
996 } else if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(U)) {
997 // If this is a "GEP bitcast" and the user is a store to the global, then
998 // just process it as a bitcast.
999 if (GEPI->hasAllZeroIndices() && GEPI->hasOneUse())
1000 if (StoreInst *SI = dyn_cast<StoreInst>(GEPI->use_back()))
1001 if (SI->getOperand(1) == GV) {
1002 // Must be bitcast GEP between the malloc and store to initialize
1003 // the global.
1004 ReplaceUsesOfMallocWithGlobal(GEPI, GV);
1005 GEPI->eraseFromParent();
1006 continue;
1007 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001008 }
Chris Lattner27ef89e2008-12-15 21:44:34 +00001009
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001010 // Insert a load from the global, and use it instead of the malloc.
Chris Lattner20eef0f2007-09-13 18:00:31 +00001011 Value *NL = new LoadInst(GV, GV->getName()+".val", InsertPt);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001012 U->replaceUsesOfWith(Alloc, NL);
1013 }
1014}
1015
1016/// GlobalLoadUsesSimpleEnoughForHeapSRA - If all users of values loaded from
1017/// GV are simple enough to perform HeapSRA, return true.
Chris Lattnereefff982007-09-13 21:31:36 +00001018static bool GlobalLoadUsesSimpleEnoughForHeapSRA(GlobalVariable *GV,
1019 MallocInst *MI) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001020 for (Value::use_iterator UI = GV->use_begin(), E = GV->use_end(); UI != E;
1021 ++UI)
1022 if (LoadInst *LI = dyn_cast<LoadInst>(*UI)) {
1023 // We permit two users of the load: setcc comparing against the null
1024 // pointer, and a getelementptr of a specific form.
Gabor Greif20f03f52008-05-29 01:59:18 +00001025 for (Value::use_iterator UI = LI->use_begin(), E = LI->use_end();
Bill Wendling3c470e22008-08-12 23:15:44 +00001026 UI != E; ++UI) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001027 // Comparison against null is ok.
1028 if (ICmpInst *ICI = dyn_cast<ICmpInst>(*UI)) {
1029 if (!isa<ConstantPointerNull>(ICI->getOperand(1)))
1030 return false;
1031 continue;
1032 }
1033
1034 // getelementptr is also ok, but only a simple form.
Chris Lattnereefff982007-09-13 21:31:36 +00001035 if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(*UI)) {
1036 // Must index into the array and into the struct.
1037 if (GEPI->getNumOperands() < 3)
1038 return false;
1039
1040 // Otherwise the GEP is ok.
1041 continue;
1042 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001043
Chris Lattnereefff982007-09-13 21:31:36 +00001044 if (PHINode *PN = dyn_cast<PHINode>(*UI)) {
1045 // We have a phi of a load from the global. We can only handle this
1046 // if the other PHI'd values are actually the same. In this case,
1047 // the rewriter will just drop the phi entirely.
1048 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
1049 Value *IV = PN->getIncomingValue(i);
1050 if (IV == LI) continue; // Trivial the same.
1051
1052 // If the phi'd value is from the malloc that initializes the value,
1053 // we can xform it.
1054 if (IV == MI) continue;
1055
1056 // Otherwise, we don't know what it is.
1057 return false;
1058 }
1059 return true;
1060 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001061
Chris Lattnereefff982007-09-13 21:31:36 +00001062 // Otherwise we don't know what this is, not ok.
1063 return false;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001064 }
1065 }
1066 return true;
1067}
1068
Chris Lattner20eef0f2007-09-13 18:00:31 +00001069/// GetHeapSROALoad - Return the load for the specified field of the HeapSROA'd
1070/// value, lazily creating it on demand.
Chris Lattnereefff982007-09-13 21:31:36 +00001071static Value *GetHeapSROALoad(Instruction *Load, unsigned FieldNo,
Chris Lattner20eef0f2007-09-13 18:00:31 +00001072 const std::vector<GlobalVariable*> &FieldGlobals,
1073 std::vector<Value *> &InsertedLoadsForPtr) {
1074 if (InsertedLoadsForPtr.size() <= FieldNo)
1075 InsertedLoadsForPtr.resize(FieldNo+1);
1076 if (InsertedLoadsForPtr[FieldNo] == 0)
1077 InsertedLoadsForPtr[FieldNo] = new LoadInst(FieldGlobals[FieldNo],
1078 Load->getName()+".f" +
1079 utostr(FieldNo), Load);
1080 return InsertedLoadsForPtr[FieldNo];
1081}
1082
Chris Lattneraf82fb82007-09-13 17:29:05 +00001083/// RewriteHeapSROALoadUser - Given a load instruction and a value derived from
1084/// the load, rewrite the derived value to use the HeapSRoA'd load.
1085static void RewriteHeapSROALoadUser(LoadInst *Load, Instruction *LoadUser,
1086 const std::vector<GlobalVariable*> &FieldGlobals,
1087 std::vector<Value *> &InsertedLoadsForPtr) {
1088 // If this is a comparison against null, handle it.
1089 if (ICmpInst *SCI = dyn_cast<ICmpInst>(LoadUser)) {
1090 assert(isa<ConstantPointerNull>(SCI->getOperand(1)));
1091 // If we have a setcc of the loaded pointer, we can use a setcc of any
1092 // field.
1093 Value *NPtr;
1094 if (InsertedLoadsForPtr.empty()) {
Chris Lattner20eef0f2007-09-13 18:00:31 +00001095 NPtr = GetHeapSROALoad(Load, 0, FieldGlobals, InsertedLoadsForPtr);
Chris Lattneraf82fb82007-09-13 17:29:05 +00001096 } else {
1097 NPtr = InsertedLoadsForPtr.back();
1098 }
1099
1100 Value *New = new ICmpInst(SCI->getPredicate(), NPtr,
1101 Constant::getNullValue(NPtr->getType()),
1102 SCI->getName(), SCI);
1103 SCI->replaceAllUsesWith(New);
1104 SCI->eraseFromParent();
1105 return;
1106 }
1107
Chris Lattner20eef0f2007-09-13 18:00:31 +00001108 // Handle 'getelementptr Ptr, Idx, uint FieldNo ...'
1109 if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(LoadUser)) {
1110 assert(GEPI->getNumOperands() >= 3 && isa<ConstantInt>(GEPI->getOperand(2))
1111 && "Unexpected GEPI!");
Chris Lattneraf82fb82007-09-13 17:29:05 +00001112
Chris Lattner20eef0f2007-09-13 18:00:31 +00001113 // Load the pointer for this field.
1114 unsigned FieldNo = cast<ConstantInt>(GEPI->getOperand(2))->getZExtValue();
1115 Value *NewPtr = GetHeapSROALoad(Load, FieldNo,
1116 FieldGlobals, InsertedLoadsForPtr);
1117
1118 // Create the new GEP idx vector.
1119 SmallVector<Value*, 8> GEPIdx;
1120 GEPIdx.push_back(GEPI->getOperand(1));
1121 GEPIdx.append(GEPI->op_begin()+3, GEPI->op_end());
1122
Gabor Greifb91ea9d2008-05-15 10:04:30 +00001123 Value *NGEPI = GetElementPtrInst::Create(NewPtr,
1124 GEPIdx.begin(), GEPIdx.end(),
Gabor Greifd6da1d02008-04-06 20:25:17 +00001125 GEPI->getName(), GEPI);
Chris Lattner20eef0f2007-09-13 18:00:31 +00001126 GEPI->replaceAllUsesWith(NGEPI);
1127 GEPI->eraseFromParent();
1128 return;
1129 }
Chris Lattneraf82fb82007-09-13 17:29:05 +00001130
Chris Lattnereefff982007-09-13 21:31:36 +00001131 // Handle PHI nodes. PHI nodes must be merging in the same values, plus
1132 // potentially the original malloc. Insert phi nodes for each field, then
1133 // process uses of the PHI.
Chris Lattner20eef0f2007-09-13 18:00:31 +00001134 PHINode *PN = cast<PHINode>(LoadUser);
Chris Lattnereefff982007-09-13 21:31:36 +00001135 std::vector<Value *> PHIsForField;
1136 PHIsForField.resize(FieldGlobals.size());
1137 for (unsigned i = 0, e = FieldGlobals.size(); i != e; ++i) {
1138 Value *LoadV = GetHeapSROALoad(Load, i, FieldGlobals, InsertedLoadsForPtr);
1139
Gabor Greifd6da1d02008-04-06 20:25:17 +00001140 PHINode *FieldPN = PHINode::Create(LoadV->getType(),
1141 PN->getName()+"."+utostr(i), PN);
Chris Lattnereefff982007-09-13 21:31:36 +00001142 // Fill in the predecessor values.
1143 for (unsigned pred = 0, e = PN->getNumIncomingValues(); pred != e; ++pred) {
1144 // Each predecessor either uses the load or the original malloc.
1145 Value *InVal = PN->getIncomingValue(pred);
1146 BasicBlock *BB = PN->getIncomingBlock(pred);
1147 Value *NewVal;
1148 if (isa<MallocInst>(InVal)) {
1149 // Insert a reload from the global in the predecessor.
1150 NewVal = GetHeapSROALoad(BB->getTerminator(), i, FieldGlobals,
1151 PHIsForField);
1152 } else {
1153 NewVal = InsertedLoadsForPtr[i];
1154 }
1155 FieldPN->addIncoming(NewVal, BB);
1156 }
1157 PHIsForField[i] = FieldPN;
1158 }
1159
1160 // Since PHIsForField specifies a phi for every input value, the lazy inserter
1161 // will never insert a load.
Chris Lattner20eef0f2007-09-13 18:00:31 +00001162 while (!PN->use_empty())
Chris Lattnereefff982007-09-13 21:31:36 +00001163 RewriteHeapSROALoadUser(Load, PN->use_back(), FieldGlobals, PHIsForField);
Chris Lattner20eef0f2007-09-13 18:00:31 +00001164 PN->eraseFromParent();
Chris Lattneraf82fb82007-09-13 17:29:05 +00001165}
1166
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001167/// RewriteUsesOfLoadForHeapSRoA - We are performing Heap SRoA on a global. Ptr
1168/// is a value loaded from the global. Eliminate all uses of Ptr, making them
1169/// use FieldGlobals instead. All uses of loaded values satisfy
1170/// GlobalLoadUsesSimpleEnoughForHeapSRA.
Chris Lattneraf82fb82007-09-13 17:29:05 +00001171static void RewriteUsesOfLoadForHeapSRoA(LoadInst *Load,
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001172 const std::vector<GlobalVariable*> &FieldGlobals) {
1173 std::vector<Value *> InsertedLoadsForPtr;
1174 //InsertedLoadsForPtr.resize(FieldGlobals.size());
Chris Lattneraf82fb82007-09-13 17:29:05 +00001175 while (!Load->use_empty())
1176 RewriteHeapSROALoadUser(Load, Load->use_back(),
1177 FieldGlobals, InsertedLoadsForPtr);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001178}
1179
1180/// PerformHeapAllocSRoA - MI is an allocation of an array of structures. Break
1181/// it up into multiple allocations of arrays of the fields.
1182static GlobalVariable *PerformHeapAllocSRoA(GlobalVariable *GV, MallocInst *MI){
1183 DOUT << "SROA HEAP ALLOC: " << *GV << " MALLOC = " << *MI;
1184 const StructType *STy = cast<StructType>(MI->getAllocatedType());
1185
1186 // There is guaranteed to be at least one use of the malloc (storing
1187 // it into GV). If there are other uses, change them to be uses of
1188 // the global to simplify later code. This also deletes the store
1189 // into GV.
1190 ReplaceUsesOfMallocWithGlobal(MI, GV);
1191
1192 // Okay, at this point, there are no users of the malloc. Insert N
1193 // new mallocs at the same place as MI, and N globals.
1194 std::vector<GlobalVariable*> FieldGlobals;
1195 std::vector<MallocInst*> FieldMallocs;
1196
1197 for (unsigned FieldNo = 0, e = STy->getNumElements(); FieldNo != e;++FieldNo){
1198 const Type *FieldTy = STy->getElementType(FieldNo);
Christopher Lambbb2f2222007-12-17 01:12:55 +00001199 const Type *PFieldTy = PointerType::getUnqual(FieldTy);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001200
1201 GlobalVariable *NGV =
1202 new GlobalVariable(PFieldTy, false, GlobalValue::InternalLinkage,
1203 Constant::getNullValue(PFieldTy),
1204 GV->getName() + ".f" + utostr(FieldNo), GV,
1205 GV->isThreadLocal());
1206 FieldGlobals.push_back(NGV);
1207
1208 MallocInst *NMI = new MallocInst(FieldTy, MI->getArraySize(),
1209 MI->getName() + ".f" + utostr(FieldNo),MI);
1210 FieldMallocs.push_back(NMI);
1211 new StoreInst(NMI, NGV, MI);
1212 }
1213
1214 // The tricky aspect of this transformation is handling the case when malloc
1215 // fails. In the original code, malloc failing would set the result pointer
1216 // of malloc to null. In this case, some mallocs could succeed and others
1217 // could fail. As such, we emit code that looks like this:
1218 // F0 = malloc(field0)
1219 // F1 = malloc(field1)
1220 // F2 = malloc(field2)
1221 // if (F0 == 0 || F1 == 0 || F2 == 0) {
1222 // if (F0) { free(F0); F0 = 0; }
1223 // if (F1) { free(F1); F1 = 0; }
1224 // if (F2) { free(F2); F2 = 0; }
1225 // }
1226 Value *RunningOr = 0;
1227 for (unsigned i = 0, e = FieldMallocs.size(); i != e; ++i) {
1228 Value *Cond = new ICmpInst(ICmpInst::ICMP_EQ, FieldMallocs[i],
1229 Constant::getNullValue(FieldMallocs[i]->getType()),
1230 "isnull", MI);
1231 if (!RunningOr)
1232 RunningOr = Cond; // First seteq
1233 else
Gabor Greifa645dd32008-05-16 19:29:10 +00001234 RunningOr = BinaryOperator::CreateOr(RunningOr, Cond, "tmp", MI);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001235 }
1236
1237 // Split the basic block at the old malloc.
1238 BasicBlock *OrigBB = MI->getParent();
1239 BasicBlock *ContBB = OrigBB->splitBasicBlock(MI, "malloc_cont");
1240
1241 // Create the block to check the first condition. Put all these blocks at the
1242 // end of the function as they are unlikely to be executed.
Gabor Greifd6da1d02008-04-06 20:25:17 +00001243 BasicBlock *NullPtrBlock = BasicBlock::Create("malloc_ret_null",
1244 OrigBB->getParent());
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001245
1246 // Remove the uncond branch from OrigBB to ContBB, turning it into a cond
1247 // branch on RunningOr.
1248 OrigBB->getTerminator()->eraseFromParent();
Gabor Greifd6da1d02008-04-06 20:25:17 +00001249 BranchInst::Create(NullPtrBlock, ContBB, RunningOr, OrigBB);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001250
1251 // Within the NullPtrBlock, we need to emit a comparison and branch for each
1252 // pointer, because some may be null while others are not.
1253 for (unsigned i = 0, e = FieldGlobals.size(); i != e; ++i) {
1254 Value *GVVal = new LoadInst(FieldGlobals[i], "tmp", NullPtrBlock);
1255 Value *Cmp = new ICmpInst(ICmpInst::ICMP_NE, GVVal,
1256 Constant::getNullValue(GVVal->getType()),
1257 "tmp", NullPtrBlock);
Gabor Greifd6da1d02008-04-06 20:25:17 +00001258 BasicBlock *FreeBlock = BasicBlock::Create("free_it", OrigBB->getParent());
1259 BasicBlock *NextBlock = BasicBlock::Create("next", OrigBB->getParent());
1260 BranchInst::Create(FreeBlock, NextBlock, Cmp, NullPtrBlock);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001261
1262 // Fill in FreeBlock.
1263 new FreeInst(GVVal, FreeBlock);
1264 new StoreInst(Constant::getNullValue(GVVal->getType()), FieldGlobals[i],
1265 FreeBlock);
Gabor Greifd6da1d02008-04-06 20:25:17 +00001266 BranchInst::Create(NextBlock, FreeBlock);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001267
1268 NullPtrBlock = NextBlock;
1269 }
1270
Gabor Greifd6da1d02008-04-06 20:25:17 +00001271 BranchInst::Create(ContBB, NullPtrBlock);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001272
1273 // MI is no longer needed, remove it.
1274 MI->eraseFromParent();
1275
1276
1277 // Okay, the malloc site is completely handled. All of the uses of GV are now
1278 // loads, and all uses of those loads are simple. Rewrite them to use loads
1279 // of the per-field globals instead.
1280 while (!GV->use_empty()) {
1281 if (LoadInst *LI = dyn_cast<LoadInst>(GV->use_back())) {
1282 RewriteUsesOfLoadForHeapSRoA(LI, FieldGlobals);
1283 LI->eraseFromParent();
1284 } else {
1285 // Must be a store of null.
1286 StoreInst *SI = cast<StoreInst>(GV->use_back());
1287 assert(isa<Constant>(SI->getOperand(0)) &&
1288 cast<Constant>(SI->getOperand(0))->isNullValue() &&
1289 "Unexpected heap-sra user!");
1290
1291 // Insert a store of null into each global.
1292 for (unsigned i = 0, e = FieldGlobals.size(); i != e; ++i) {
1293 Constant *Null =
1294 Constant::getNullValue(FieldGlobals[i]->getType()->getElementType());
1295 new StoreInst(Null, FieldGlobals[i], SI);
1296 }
1297 // Erase the original store.
1298 SI->eraseFromParent();
1299 }
1300 }
1301
1302 // The old global is now dead, remove it.
1303 GV->eraseFromParent();
1304
1305 ++NumHeapSRA;
1306 return FieldGlobals[0];
1307}
1308
Chris Lattner78e568b2008-12-15 21:02:25 +00001309/// TryToOptimizeStoreOfMallocToGlobal - This function is called when we see a
1310/// pointer global variable with a single value stored it that is a malloc or
1311/// cast of malloc.
1312static bool TryToOptimizeStoreOfMallocToGlobal(GlobalVariable *GV,
1313 MallocInst *MI,
1314 Module::global_iterator &GVI,
1315 TargetData &TD) {
1316 // If this is a malloc of an abstract type, don't touch it.
1317 if (!MI->getAllocatedType()->isSized())
1318 return false;
1319
1320 // We can't optimize this global unless all uses of it are *known* to be
1321 // of the malloc value, not of the null initializer value (consider a use
1322 // that compares the global's value against zero to see if the malloc has
1323 // been reached). To do this, we check to see if all uses of the global
1324 // would trap if the global were null: this proves that they must all
1325 // happen after the malloc.
1326 if (!AllUsesOfLoadedValueWillTrapIfNull(GV))
1327 return false;
1328
1329 // We can't optimize this if the malloc itself is used in a complex way,
1330 // for example, being stored into multiple globals. This allows the
1331 // malloc to be stored into the specified global, loaded setcc'd, and
1332 // GEP'd. These are all things we could transform to using the global
1333 // for.
1334 {
1335 SmallPtrSet<PHINode*, 8> PHIs;
1336 if (!ValueIsOnlyUsedLocallyOrStoredToOneGlobal(MI, GV, PHIs))
1337 return false;
1338 }
1339
1340
1341 // If we have a global that is only initialized with a fixed size malloc,
1342 // transform the program to use global memory instead of malloc'd memory.
1343 // This eliminates dynamic allocation, avoids an indirection accessing the
1344 // data, and exposes the resultant global to further GlobalOpt.
1345 if (ConstantInt *NElements = dyn_cast<ConstantInt>(MI->getArraySize())) {
1346 // Restrict this transformation to only working on small allocations
1347 // (2048 bytes currently), as we don't want to introduce a 16M global or
1348 // something.
1349 if (NElements->getZExtValue()*
1350 TD.getABITypeSize(MI->getAllocatedType()) < 2048) {
1351 GVI = OptimizeGlobalAddressOfMalloc(GV, MI);
1352 return true;
1353 }
1354 }
1355
1356 // If the allocation is an array of structures, consider transforming this
1357 // into multiple malloc'd arrays, one for each field. This is basically
1358 // SRoA for malloc'd memory.
Chris Lattner27ef89e2008-12-15 21:44:34 +00001359 const Type *AllocTy = MI->getAllocatedType();
1360
1361 // If this is an allocation of a fixed size array of structs, analyze as a
1362 // variable size array. malloc [100 x struct],1 -> malloc struct, 100
1363 if (!MI->isArrayAllocation())
1364 if (const ArrayType *AT = dyn_cast<ArrayType>(AllocTy))
1365 AllocTy = AT->getElementType();
1366
1367 if (const StructType *AllocSTy = dyn_cast<StructType>(AllocTy)) {
Chris Lattner78e568b2008-12-15 21:02:25 +00001368 // This the structure has an unreasonable number of fields, leave it
1369 // alone.
Chris Lattner27ef89e2008-12-15 21:44:34 +00001370 if (AllocSTy->getNumElements() <= 16 && AllocSTy->getNumElements() != 0 &&
Chris Lattner78e568b2008-12-15 21:02:25 +00001371 GlobalLoadUsesSimpleEnoughForHeapSRA(GV, MI)) {
Chris Lattner27ef89e2008-12-15 21:44:34 +00001372
1373 // If this is a fixed size array, transform the Malloc to be an alloc of
1374 // structs. malloc [100 x struct],1 -> malloc struct, 100
1375 if (const ArrayType *AT = dyn_cast<ArrayType>(MI->getAllocatedType())) {
1376 MallocInst *NewMI =
1377 new MallocInst(AllocSTy,
1378 ConstantInt::get(Type::Int32Ty, AT->getNumElements()),
1379 "", MI);
1380 NewMI->takeName(MI);
1381 Value *Cast = new BitCastInst(NewMI, MI->getType(), "tmp", MI);
1382 MI->replaceAllUsesWith(Cast);
1383 MI->eraseFromParent();
1384 MI = NewMI;
1385 }
1386
Chris Lattner78e568b2008-12-15 21:02:25 +00001387 GVI = PerformHeapAllocSRoA(GV, MI);
1388 return true;
1389 }
1390 }
1391
1392 return false;
1393}
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001394
1395// OptimizeOnceStoredGlobal - Try to optimize globals based on the knowledge
1396// that only one value (besides its initializer) is ever stored to the global.
1397static bool OptimizeOnceStoredGlobal(GlobalVariable *GV, Value *StoredOnceVal,
1398 Module::global_iterator &GVI,
1399 TargetData &TD) {
Chris Lattner2e729112008-12-15 21:20:32 +00001400 // Ignore no-op GEPs and bitcasts.
1401 StoredOnceVal = StoredOnceVal->stripPointerCasts();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001402
1403 // If we are dealing with a pointer global that is initialized to null and
1404 // only has one (non-null) value stored into it, then we can optimize any
1405 // users of the loaded value (often calls and loads) that would trap if the
1406 // value was null.
1407 if (isa<PointerType>(GV->getInitializer()->getType()) &&
1408 GV->getInitializer()->isNullValue()) {
1409 if (Constant *SOVC = dyn_cast<Constant>(StoredOnceVal)) {
1410 if (GV->getInitializer()->getType() != SOVC->getType())
1411 SOVC = ConstantExpr::getBitCast(SOVC, GV->getInitializer()->getType());
1412
1413 // Optimize away any trapping uses of the loaded value.
1414 if (OptimizeAwayTrappingUsesOfLoads(GV, SOVC))
1415 return true;
1416 } else if (MallocInst *MI = dyn_cast<MallocInst>(StoredOnceVal)) {
Chris Lattner78e568b2008-12-15 21:02:25 +00001417 if (TryToOptimizeStoreOfMallocToGlobal(GV, MI, GVI, TD))
1418 return true;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001419 }
1420 }
1421
1422 return false;
1423}
1424
Chris Lattnerece46db2008-01-14 01:17:44 +00001425/// TryToShrinkGlobalToBoolean - At this point, we have learned that the only
1426/// two values ever stored into GV are its initializer and OtherVal. See if we
1427/// can shrink the global into a boolean and select between the two values
1428/// whenever it is used. This exposes the values to other scalar optimizations.
1429static bool TryToShrinkGlobalToBoolean(GlobalVariable *GV, Constant *OtherVal) {
1430 const Type *GVElType = GV->getType()->getElementType();
1431
1432 // If GVElType is already i1, it is already shrunk. If the type of the GV is
1433 // an FP value or vector, don't do this optimization because a select between
1434 // them is very expensive and unlikely to lead to later simplification.
1435 if (GVElType == Type::Int1Ty || GVElType->isFloatingPoint() ||
1436 isa<VectorType>(GVElType))
1437 return false;
1438
1439 // Walk the use list of the global seeing if all the uses are load or store.
1440 // If there is anything else, bail out.
1441 for (Value::use_iterator I = GV->use_begin(), E = GV->use_end(); I != E; ++I)
1442 if (!isa<LoadInst>(I) && !isa<StoreInst>(I))
1443 return false;
1444
1445 DOUT << " *** SHRINKING TO BOOL: " << *GV;
1446
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001447 // Create the new global, initializing it to false.
1448 GlobalVariable *NewGV = new GlobalVariable(Type::Int1Ty, false,
1449 GlobalValue::InternalLinkage, ConstantInt::getFalse(),
1450 GV->getName()+".b",
1451 (Module *)NULL,
1452 GV->isThreadLocal());
1453 GV->getParent()->getGlobalList().insert(GV, NewGV);
1454
1455 Constant *InitVal = GV->getInitializer();
1456 assert(InitVal->getType() != Type::Int1Ty && "No reason to shrink to bool!");
1457
1458 // If initialized to zero and storing one into the global, we can use a cast
1459 // instead of a select to synthesize the desired value.
1460 bool IsOneZero = false;
1461 if (ConstantInt *CI = dyn_cast<ConstantInt>(OtherVal))
1462 IsOneZero = InitVal->isNullValue() && CI->isOne();
1463
1464 while (!GV->use_empty()) {
1465 Instruction *UI = cast<Instruction>(GV->use_back());
1466 if (StoreInst *SI = dyn_cast<StoreInst>(UI)) {
1467 // Change the store into a boolean store.
1468 bool StoringOther = SI->getOperand(0) == OtherVal;
1469 // Only do this if we weren't storing a loaded value.
1470 Value *StoreVal;
1471 if (StoringOther || SI->getOperand(0) == InitVal)
1472 StoreVal = ConstantInt::get(Type::Int1Ty, StoringOther);
1473 else {
1474 // Otherwise, we are storing a previously loaded copy. To do this,
1475 // change the copy from copying the original value to just copying the
1476 // bool.
1477 Instruction *StoredVal = cast<Instruction>(SI->getOperand(0));
1478
1479 // If we're already replaced the input, StoredVal will be a cast or
1480 // select instruction. If not, it will be a load of the original
1481 // global.
1482 if (LoadInst *LI = dyn_cast<LoadInst>(StoredVal)) {
1483 assert(LI->getOperand(0) == GV && "Not a copy!");
1484 // Insert a new load, to preserve the saved value.
1485 StoreVal = new LoadInst(NewGV, LI->getName()+".b", LI);
1486 } else {
1487 assert((isa<CastInst>(StoredVal) || isa<SelectInst>(StoredVal)) &&
1488 "This is not a form that we understand!");
1489 StoreVal = StoredVal->getOperand(0);
1490 assert(isa<LoadInst>(StoreVal) && "Not a load of NewGV!");
1491 }
1492 }
1493 new StoreInst(StoreVal, NewGV, SI);
Chris Lattnerece46db2008-01-14 01:17:44 +00001494 } else {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001495 // Change the load into a load of bool then a select.
1496 LoadInst *LI = cast<LoadInst>(UI);
1497 LoadInst *NLI = new LoadInst(NewGV, LI->getName()+".b", LI);
1498 Value *NSI;
1499 if (IsOneZero)
1500 NSI = new ZExtInst(NLI, LI->getType(), "", LI);
1501 else
Gabor Greifd6da1d02008-04-06 20:25:17 +00001502 NSI = SelectInst::Create(NLI, OtherVal, InitVal, "", LI);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001503 NSI->takeName(LI);
1504 LI->replaceAllUsesWith(NSI);
1505 }
1506 UI->eraseFromParent();
1507 }
1508
1509 GV->eraseFromParent();
Chris Lattnerece46db2008-01-14 01:17:44 +00001510 return true;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001511}
1512
1513
1514/// ProcessInternalGlobal - Analyze the specified global variable and optimize
1515/// it if possible. If we make a change, return true.
1516bool GlobalOpt::ProcessInternalGlobal(GlobalVariable *GV,
1517 Module::global_iterator &GVI) {
1518 std::set<PHINode*> PHIUsers;
1519 GlobalStatus GS;
1520 GV->removeDeadConstantUsers();
1521
1522 if (GV->use_empty()) {
1523 DOUT << "GLOBAL DEAD: " << *GV;
1524 GV->eraseFromParent();
1525 ++NumDeleted;
1526 return true;
1527 }
1528
1529 if (!AnalyzeGlobal(GV, GS, PHIUsers)) {
1530#if 0
1531 cerr << "Global: " << *GV;
1532 cerr << " isLoaded = " << GS.isLoaded << "\n";
1533 cerr << " StoredType = ";
1534 switch (GS.StoredType) {
1535 case GlobalStatus::NotStored: cerr << "NEVER STORED\n"; break;
1536 case GlobalStatus::isInitializerStored: cerr << "INIT STORED\n"; break;
1537 case GlobalStatus::isStoredOnce: cerr << "STORED ONCE\n"; break;
1538 case GlobalStatus::isStored: cerr << "stored\n"; break;
1539 }
1540 if (GS.StoredType == GlobalStatus::isStoredOnce && GS.StoredOnceValue)
1541 cerr << " StoredOnceValue = " << *GS.StoredOnceValue << "\n";
1542 if (GS.AccessingFunction && !GS.HasMultipleAccessingFunctions)
1543 cerr << " AccessingFunction = " << GS.AccessingFunction->getName()
1544 << "\n";
1545 cerr << " HasMultipleAccessingFunctions = "
1546 << GS.HasMultipleAccessingFunctions << "\n";
1547 cerr << " HasNonInstructionUser = " << GS.HasNonInstructionUser<<"\n";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001548 cerr << "\n";
1549#endif
1550
1551 // If this is a first class global and has only one accessing function
1552 // and this function is main (which we know is not recursive we can make
1553 // this global a local variable) we replace the global with a local alloca
1554 // in this function.
1555 //
Dan Gohman5e8fbc22008-05-23 00:17:26 +00001556 // NOTE: It doesn't make sense to promote non single-value types since we
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001557 // are just replacing static memory to stack memory.
1558 if (!GS.HasMultipleAccessingFunctions &&
1559 GS.AccessingFunction && !GS.HasNonInstructionUser &&
Dan Gohman5e8fbc22008-05-23 00:17:26 +00001560 GV->getType()->getElementType()->isSingleValueType() &&
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001561 GS.AccessingFunction->getName() == "main" &&
1562 GS.AccessingFunction->hasExternalLinkage()) {
1563 DOUT << "LOCALIZING GLOBAL: " << *GV;
1564 Instruction* FirstI = GS.AccessingFunction->getEntryBlock().begin();
1565 const Type* ElemTy = GV->getType()->getElementType();
1566 // FIXME: Pass Global's alignment when globals have alignment
1567 AllocaInst* Alloca = new AllocaInst(ElemTy, NULL, GV->getName(), FirstI);
1568 if (!isa<UndefValue>(GV->getInitializer()))
1569 new StoreInst(GV->getInitializer(), Alloca, FirstI);
1570
1571 GV->replaceAllUsesWith(Alloca);
1572 GV->eraseFromParent();
1573 ++NumLocalized;
1574 return true;
1575 }
1576
1577 // If the global is never loaded (but may be stored to), it is dead.
1578 // Delete it now.
1579 if (!GS.isLoaded) {
1580 DOUT << "GLOBAL NEVER LOADED: " << *GV;
1581
1582 // Delete any stores we can find to the global. We may not be able to
1583 // make it completely dead though.
1584 bool Changed = CleanupConstantGlobalUsers(GV, GV->getInitializer());
1585
1586 // If the global is dead now, delete it.
1587 if (GV->use_empty()) {
1588 GV->eraseFromParent();
1589 ++NumDeleted;
1590 Changed = true;
1591 }
1592 return Changed;
1593
1594 } else if (GS.StoredType <= GlobalStatus::isInitializerStored) {
1595 DOUT << "MARKING CONSTANT: " << *GV;
1596 GV->setConstant(true);
1597
1598 // Clean up any obviously simplifiable users now.
1599 CleanupConstantGlobalUsers(GV, GV->getInitializer());
1600
1601 // If the global is dead now, just nuke it.
1602 if (GV->use_empty()) {
1603 DOUT << " *** Marking constant allowed us to simplify "
1604 << "all users and delete global!\n";
1605 GV->eraseFromParent();
1606 ++NumDeleted;
1607 }
1608
1609 ++NumMarked;
1610 return true;
Dan Gohman5e8fbc22008-05-23 00:17:26 +00001611 } else if (!GV->getInitializer()->getType()->isSingleValueType()) {
Chris Lattner20846272008-04-26 07:40:11 +00001612 if (GlobalVariable *FirstNewGV = SRAGlobal(GV,
1613 getAnalysis<TargetData>())) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001614 GVI = FirstNewGV; // Don't skip the newly produced globals!
1615 return true;
1616 }
1617 } else if (GS.StoredType == GlobalStatus::isStoredOnce) {
1618 // If the initial value for the global was an undef value, and if only
1619 // one other value was stored into it, we can just change the
1620 // initializer to be an undef value, then delete all stores to the
1621 // global. This allows us to mark it constant.
1622 if (Constant *SOVConstant = dyn_cast<Constant>(GS.StoredOnceValue))
1623 if (isa<UndefValue>(GV->getInitializer())) {
1624 // Change the initial value here.
1625 GV->setInitializer(SOVConstant);
1626
1627 // Clean up any obviously simplifiable users now.
1628 CleanupConstantGlobalUsers(GV, GV->getInitializer());
1629
1630 if (GV->use_empty()) {
1631 DOUT << " *** Substituting initializer allowed us to "
1632 << "simplify all users and delete global!\n";
1633 GV->eraseFromParent();
1634 ++NumDeleted;
1635 } else {
1636 GVI = GV;
1637 }
1638 ++NumSubstitute;
1639 return true;
1640 }
1641
1642 // Try to optimize globals based on the knowledge that only one value
1643 // (besides its initializer) is ever stored to the global.
1644 if (OptimizeOnceStoredGlobal(GV, GS.StoredOnceValue, GVI,
1645 getAnalysis<TargetData>()))
1646 return true;
1647
1648 // Otherwise, if the global was not a boolean, we can shrink it to be a
1649 // boolean.
1650 if (Constant *SOVConstant = dyn_cast<Constant>(GS.StoredOnceValue))
Chris Lattnerece46db2008-01-14 01:17:44 +00001651 if (TryToShrinkGlobalToBoolean(GV, SOVConstant)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001652 ++NumShrunkToBool;
1653 return true;
1654 }
1655 }
1656 }
1657 return false;
1658}
1659
1660/// OnlyCalledDirectly - Return true if the specified function is only called
1661/// directly. In other words, its address is never taken.
1662static bool OnlyCalledDirectly(Function *F) {
1663 for (Value::use_iterator UI = F->use_begin(), E = F->use_end(); UI != E;++UI){
1664 Instruction *User = dyn_cast<Instruction>(*UI);
1665 if (!User) return false;
1666 if (!isa<CallInst>(User) && !isa<InvokeInst>(User)) return false;
1667
1668 // See if the function address is passed as an argument.
Gabor Greif20f03f52008-05-29 01:59:18 +00001669 for (User::op_iterator i = User->op_begin() + 1, e = User->op_end();
Bill Wendling3c470e22008-08-12 23:15:44 +00001670 i != e; ++i)
Gabor Greif20f03f52008-05-29 01:59:18 +00001671 if (*i == F) return false;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001672 }
1673 return true;
1674}
1675
1676/// ChangeCalleesToFastCall - Walk all of the direct calls of the specified
1677/// function, changing them to FastCC.
1678static void ChangeCalleesToFastCall(Function *F) {
1679 for (Value::use_iterator UI = F->use_begin(), E = F->use_end(); UI != E;++UI){
Duncan Sands551ec902008-02-18 17:32:13 +00001680 CallSite User(cast<Instruction>(*UI));
1681 User.setCallingConv(CallingConv::Fast);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001682 }
1683}
1684
Devang Pateld222f862008-09-25 21:00:45 +00001685static AttrListPtr StripNest(const AttrListPtr &Attrs) {
Chris Lattner1c8733e2008-03-12 17:45:29 +00001686 for (unsigned i = 0, e = Attrs.getNumSlots(); i != e; ++i) {
Devang Pateld222f862008-09-25 21:00:45 +00001687 if ((Attrs.getSlot(i).Attrs & Attribute::Nest) == 0)
Duncan Sands551ec902008-02-18 17:32:13 +00001688 continue;
1689
Duncan Sands551ec902008-02-18 17:32:13 +00001690 // There can be only one.
Devang Pateld222f862008-09-25 21:00:45 +00001691 return Attrs.removeAttr(Attrs.getSlot(i).Index, Attribute::Nest);
Duncan Sandsafa10bf2008-02-16 20:56:04 +00001692 }
1693
1694 return Attrs;
1695}
1696
1697static void RemoveNestAttribute(Function *F) {
Devang Pateld222f862008-09-25 21:00:45 +00001698 F->setAttributes(StripNest(F->getAttributes()));
Duncan Sandsafa10bf2008-02-16 20:56:04 +00001699 for (Value::use_iterator UI = F->use_begin(), E = F->use_end(); UI != E;++UI){
Duncan Sands551ec902008-02-18 17:32:13 +00001700 CallSite User(cast<Instruction>(*UI));
Devang Pateld222f862008-09-25 21:00:45 +00001701 User.setAttributes(StripNest(User.getAttributes()));
Duncan Sandsafa10bf2008-02-16 20:56:04 +00001702 }
1703}
1704
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001705bool GlobalOpt::OptimizeFunctions(Module &M) {
1706 bool Changed = false;
1707 // Optimize functions.
1708 for (Module::iterator FI = M.begin(), E = M.end(); FI != E; ) {
1709 Function *F = FI++;
1710 F->removeDeadConstantUsers();
1711 if (F->use_empty() && (F->hasInternalLinkage() ||
1712 F->hasLinkOnceLinkage())) {
1713 M.getFunctionList().erase(F);
1714 Changed = true;
1715 ++NumFnDeleted;
Duncan Sandsafa10bf2008-02-16 20:56:04 +00001716 } else if (F->hasInternalLinkage()) {
1717 if (F->getCallingConv() == CallingConv::C && !F->isVarArg() &&
1718 OnlyCalledDirectly(F)) {
1719 // If this function has C calling conventions, is not a varargs
1720 // function, and is only called directly, promote it to use the Fast
1721 // calling convention.
1722 F->setCallingConv(CallingConv::Fast);
1723 ChangeCalleesToFastCall(F);
1724 ++NumFastCallFns;
1725 Changed = true;
1726 }
1727
Devang Pateld222f862008-09-25 21:00:45 +00001728 if (F->getAttributes().hasAttrSomewhere(Attribute::Nest) &&
Duncan Sandsafa10bf2008-02-16 20:56:04 +00001729 OnlyCalledDirectly(F)) {
1730 // The function is not used by a trampoline intrinsic, so it is safe
1731 // to remove the 'nest' attribute.
1732 RemoveNestAttribute(F);
1733 ++NumNestRemoved;
1734 Changed = true;
1735 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001736 }
1737 }
1738 return Changed;
1739}
1740
1741bool GlobalOpt::OptimizeGlobalVars(Module &M) {
1742 bool Changed = false;
1743 for (Module::global_iterator GVI = M.global_begin(), E = M.global_end();
1744 GVI != E; ) {
1745 GlobalVariable *GV = GVI++;
1746 if (!GV->isConstant() && GV->hasInternalLinkage() &&
1747 GV->hasInitializer())
1748 Changed |= ProcessInternalGlobal(GV, GVI);
1749 }
1750 return Changed;
1751}
1752
1753/// FindGlobalCtors - Find the llvm.globalctors list, verifying that all
1754/// initializers have an init priority of 65535.
1755GlobalVariable *GlobalOpt::FindGlobalCtors(Module &M) {
1756 for (Module::global_iterator I = M.global_begin(), E = M.global_end();
1757 I != E; ++I)
1758 if (I->getName() == "llvm.global_ctors") {
1759 // Found it, verify it's an array of { int, void()* }.
1760 const ArrayType *ATy =dyn_cast<ArrayType>(I->getType()->getElementType());
1761 if (!ATy) return 0;
1762 const StructType *STy = dyn_cast<StructType>(ATy->getElementType());
1763 if (!STy || STy->getNumElements() != 2 ||
1764 STy->getElementType(0) != Type::Int32Ty) return 0;
1765 const PointerType *PFTy = dyn_cast<PointerType>(STy->getElementType(1));
1766 if (!PFTy) return 0;
1767 const FunctionType *FTy = dyn_cast<FunctionType>(PFTy->getElementType());
1768 if (!FTy || FTy->getReturnType() != Type::VoidTy || FTy->isVarArg() ||
1769 FTy->getNumParams() != 0)
1770 return 0;
1771
1772 // Verify that the initializer is simple enough for us to handle.
1773 if (!I->hasInitializer()) return 0;
1774 ConstantArray *CA = dyn_cast<ConstantArray>(I->getInitializer());
1775 if (!CA) return 0;
Gabor Greif20f03f52008-05-29 01:59:18 +00001776 for (User::op_iterator i = CA->op_begin(), e = CA->op_end(); i != e; ++i)
1777 if (ConstantStruct *CS = dyn_cast<ConstantStruct>(*i)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001778 if (isa<ConstantPointerNull>(CS->getOperand(1)))
1779 continue;
1780
1781 // Must have a function or null ptr.
1782 if (!isa<Function>(CS->getOperand(1)))
1783 return 0;
1784
1785 // Init priority must be standard.
1786 ConstantInt *CI = dyn_cast<ConstantInt>(CS->getOperand(0));
1787 if (!CI || CI->getZExtValue() != 65535)
1788 return 0;
1789 } else {
1790 return 0;
1791 }
1792
1793 return I;
1794 }
1795 return 0;
1796}
1797
1798/// ParseGlobalCtors - Given a llvm.global_ctors list that we can understand,
1799/// return a list of the functions and null terminator as a vector.
1800static std::vector<Function*> ParseGlobalCtors(GlobalVariable *GV) {
1801 ConstantArray *CA = cast<ConstantArray>(GV->getInitializer());
1802 std::vector<Function*> Result;
1803 Result.reserve(CA->getNumOperands());
Gabor Greif20f03f52008-05-29 01:59:18 +00001804 for (User::op_iterator i = CA->op_begin(), e = CA->op_end(); i != e; ++i) {
1805 ConstantStruct *CS = cast<ConstantStruct>(*i);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001806 Result.push_back(dyn_cast<Function>(CS->getOperand(1)));
1807 }
1808 return Result;
1809}
1810
1811/// InstallGlobalCtors - Given a specified llvm.global_ctors list, install the
1812/// specified array, returning the new global to use.
1813static GlobalVariable *InstallGlobalCtors(GlobalVariable *GCL,
1814 const std::vector<Function*> &Ctors) {
1815 // If we made a change, reassemble the initializer list.
1816 std::vector<Constant*> CSVals;
1817 CSVals.push_back(ConstantInt::get(Type::Int32Ty, 65535));
1818 CSVals.push_back(0);
1819
1820 // Create the new init list.
1821 std::vector<Constant*> CAList;
1822 for (unsigned i = 0, e = Ctors.size(); i != e; ++i) {
1823 if (Ctors[i]) {
1824 CSVals[1] = Ctors[i];
1825 } else {
1826 const Type *FTy = FunctionType::get(Type::VoidTy,
1827 std::vector<const Type*>(), false);
Christopher Lambbb2f2222007-12-17 01:12:55 +00001828 const PointerType *PFTy = PointerType::getUnqual(FTy);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001829 CSVals[1] = Constant::getNullValue(PFTy);
1830 CSVals[0] = ConstantInt::get(Type::Int32Ty, 2147483647);
1831 }
1832 CAList.push_back(ConstantStruct::get(CSVals));
1833 }
1834
1835 // Create the array initializer.
1836 const Type *StructTy =
1837 cast<ArrayType>(GCL->getType()->getElementType())->getElementType();
1838 Constant *CA = ConstantArray::get(ArrayType::get(StructTy, CAList.size()),
1839 CAList);
1840
1841 // If we didn't change the number of elements, don't create a new GV.
1842 if (CA->getType() == GCL->getInitializer()->getType()) {
1843 GCL->setInitializer(CA);
1844 return GCL;
1845 }
1846
1847 // Create the new global and insert it next to the existing list.
1848 GlobalVariable *NGV = new GlobalVariable(CA->getType(), GCL->isConstant(),
1849 GCL->getLinkage(), CA, "",
1850 (Module *)NULL,
1851 GCL->isThreadLocal());
1852 GCL->getParent()->getGlobalList().insert(GCL, NGV);
1853 NGV->takeName(GCL);
1854
1855 // Nuke the old list, replacing any uses with the new one.
1856 if (!GCL->use_empty()) {
1857 Constant *V = NGV;
1858 if (V->getType() != GCL->getType())
1859 V = ConstantExpr::getBitCast(V, GCL->getType());
1860 GCL->replaceAllUsesWith(V);
1861 }
1862 GCL->eraseFromParent();
1863
1864 if (Ctors.size())
1865 return NGV;
1866 else
1867 return 0;
1868}
1869
1870
1871static Constant *getVal(std::map<Value*, Constant*> &ComputedValues,
1872 Value *V) {
1873 if (Constant *CV = dyn_cast<Constant>(V)) return CV;
1874 Constant *R = ComputedValues[V];
1875 assert(R && "Reference to an uncomputed value!");
1876 return R;
1877}
1878
1879/// isSimpleEnoughPointerToCommit - Return true if this constant is simple
1880/// enough for us to understand. In particular, if it is a cast of something,
1881/// we punt. We basically just support direct accesses to globals and GEP's of
1882/// globals. This should be kept up to date with CommitValueTo.
1883static bool isSimpleEnoughPointerToCommit(Constant *C) {
1884 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(C)) {
1885 if (!GV->hasExternalLinkage() && !GV->hasInternalLinkage())
1886 return false; // do not allow weak/linkonce/dllimport/dllexport linkage.
1887 return !GV->isDeclaration(); // reject external globals.
1888 }
1889 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(C))
1890 // Handle a constantexpr gep.
1891 if (CE->getOpcode() == Instruction::GetElementPtr &&
1892 isa<GlobalVariable>(CE->getOperand(0))) {
1893 GlobalVariable *GV = cast<GlobalVariable>(CE->getOperand(0));
1894 if (!GV->hasExternalLinkage() && !GV->hasInternalLinkage())
1895 return false; // do not allow weak/linkonce/dllimport/dllexport linkage.
1896 return GV->hasInitializer() &&
1897 ConstantFoldLoadThroughGEPConstantExpr(GV->getInitializer(), CE);
1898 }
1899 return false;
1900}
1901
1902/// EvaluateStoreInto - Evaluate a piece of a constantexpr store into a global
1903/// initializer. This returns 'Init' modified to reflect 'Val' stored into it.
1904/// At this point, the GEP operands of Addr [0, OpNo) have been stepped into.
1905static Constant *EvaluateStoreInto(Constant *Init, Constant *Val,
1906 ConstantExpr *Addr, unsigned OpNo) {
1907 // Base case of the recursion.
1908 if (OpNo == Addr->getNumOperands()) {
1909 assert(Val->getType() == Init->getType() && "Type mismatch!");
1910 return Val;
1911 }
1912
1913 if (const StructType *STy = dyn_cast<StructType>(Init->getType())) {
1914 std::vector<Constant*> Elts;
1915
1916 // Break up the constant into its elements.
1917 if (ConstantStruct *CS = dyn_cast<ConstantStruct>(Init)) {
Gabor Greif20f03f52008-05-29 01:59:18 +00001918 for (User::op_iterator i = CS->op_begin(), e = CS->op_end(); i != e; ++i)
1919 Elts.push_back(cast<Constant>(*i));
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001920 } else if (isa<ConstantAggregateZero>(Init)) {
1921 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i)
1922 Elts.push_back(Constant::getNullValue(STy->getElementType(i)));
1923 } else if (isa<UndefValue>(Init)) {
1924 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i)
1925 Elts.push_back(UndefValue::get(STy->getElementType(i)));
1926 } else {
1927 assert(0 && "This code is out of sync with "
1928 " ConstantFoldLoadThroughGEPConstantExpr");
1929 }
1930
1931 // Replace the element that we are supposed to.
1932 ConstantInt *CU = cast<ConstantInt>(Addr->getOperand(OpNo));
1933 unsigned Idx = CU->getZExtValue();
1934 assert(Idx < STy->getNumElements() && "Struct index out of range!");
1935 Elts[Idx] = EvaluateStoreInto(Elts[Idx], Val, Addr, OpNo+1);
1936
1937 // Return the modified struct.
1938 return ConstantStruct::get(&Elts[0], Elts.size(), STy->isPacked());
1939 } else {
1940 ConstantInt *CI = cast<ConstantInt>(Addr->getOperand(OpNo));
1941 const ArrayType *ATy = cast<ArrayType>(Init->getType());
1942
1943 // Break up the array into elements.
1944 std::vector<Constant*> Elts;
1945 if (ConstantArray *CA = dyn_cast<ConstantArray>(Init)) {
Gabor Greif20f03f52008-05-29 01:59:18 +00001946 for (User::op_iterator i = CA->op_begin(), e = CA->op_end(); i != e; ++i)
1947 Elts.push_back(cast<Constant>(*i));
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001948 } else if (isa<ConstantAggregateZero>(Init)) {
1949 Constant *Elt = Constant::getNullValue(ATy->getElementType());
1950 Elts.assign(ATy->getNumElements(), Elt);
1951 } else if (isa<UndefValue>(Init)) {
1952 Constant *Elt = UndefValue::get(ATy->getElementType());
1953 Elts.assign(ATy->getNumElements(), Elt);
1954 } else {
1955 assert(0 && "This code is out of sync with "
1956 " ConstantFoldLoadThroughGEPConstantExpr");
1957 }
1958
1959 assert(CI->getZExtValue() < ATy->getNumElements());
1960 Elts[CI->getZExtValue()] =
1961 EvaluateStoreInto(Elts[CI->getZExtValue()], Val, Addr, OpNo+1);
1962 return ConstantArray::get(ATy, Elts);
1963 }
1964}
1965
1966/// CommitValueTo - We have decided that Addr (which satisfies the predicate
1967/// isSimpleEnoughPointerToCommit) should get Val as its value. Make it happen.
1968static void CommitValueTo(Constant *Val, Constant *Addr) {
1969 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(Addr)) {
1970 assert(GV->hasInitializer());
1971 GV->setInitializer(Val);
1972 return;
1973 }
1974
1975 ConstantExpr *CE = cast<ConstantExpr>(Addr);
1976 GlobalVariable *GV = cast<GlobalVariable>(CE->getOperand(0));
1977
1978 Constant *Init = GV->getInitializer();
1979 Init = EvaluateStoreInto(Init, Val, CE, 2);
1980 GV->setInitializer(Init);
1981}
1982
1983/// ComputeLoadResult - Return the value that would be computed by a load from
1984/// P after the stores reflected by 'memory' have been performed. If we can't
1985/// decide, return null.
1986static Constant *ComputeLoadResult(Constant *P,
1987 const std::map<Constant*, Constant*> &Memory) {
1988 // If this memory location has been recently stored, use the stored value: it
1989 // is the most up-to-date.
1990 std::map<Constant*, Constant*>::const_iterator I = Memory.find(P);
1991 if (I != Memory.end()) return I->second;
1992
1993 // Access it.
1994 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(P)) {
1995 if (GV->hasInitializer())
1996 return GV->getInitializer();
1997 return 0;
1998 }
1999
2000 // Handle a constantexpr getelementptr.
2001 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(P))
2002 if (CE->getOpcode() == Instruction::GetElementPtr &&
2003 isa<GlobalVariable>(CE->getOperand(0))) {
2004 GlobalVariable *GV = cast<GlobalVariable>(CE->getOperand(0));
2005 if (GV->hasInitializer())
2006 return ConstantFoldLoadThroughGEPConstantExpr(GV->getInitializer(), CE);
2007 }
2008
2009 return 0; // don't know how to evaluate.
2010}
2011
2012/// EvaluateFunction - Evaluate a call to function F, returning true if
2013/// successful, false if we can't evaluate it. ActualArgs contains the formal
2014/// arguments for the function.
2015static bool EvaluateFunction(Function *F, Constant *&RetVal,
2016 const std::vector<Constant*> &ActualArgs,
2017 std::vector<Function*> &CallStack,
2018 std::map<Constant*, Constant*> &MutatedMemory,
2019 std::vector<GlobalVariable*> &AllocaTmps) {
2020 // Check to see if this function is already executing (recursion). If so,
2021 // bail out. TODO: we might want to accept limited recursion.
2022 if (std::find(CallStack.begin(), CallStack.end(), F) != CallStack.end())
2023 return false;
2024
2025 CallStack.push_back(F);
2026
2027 /// Values - As we compute SSA register values, we store their contents here.
2028 std::map<Value*, Constant*> Values;
2029
2030 // Initialize arguments to the incoming values specified.
2031 unsigned ArgNo = 0;
2032 for (Function::arg_iterator AI = F->arg_begin(), E = F->arg_end(); AI != E;
2033 ++AI, ++ArgNo)
2034 Values[AI] = ActualArgs[ArgNo];
2035
2036 /// ExecutedBlocks - We only handle non-looping, non-recursive code. As such,
2037 /// we can only evaluate any one basic block at most once. This set keeps
2038 /// track of what we have executed so we can detect recursive cases etc.
2039 std::set<BasicBlock*> ExecutedBlocks;
2040
2041 // CurInst - The current instruction we're evaluating.
2042 BasicBlock::iterator CurInst = F->begin()->begin();
2043
2044 // This is the main evaluation loop.
2045 while (1) {
2046 Constant *InstResult = 0;
2047
2048 if (StoreInst *SI = dyn_cast<StoreInst>(CurInst)) {
2049 if (SI->isVolatile()) return false; // no volatile accesses.
2050 Constant *Ptr = getVal(Values, SI->getOperand(1));
2051 if (!isSimpleEnoughPointerToCommit(Ptr))
2052 // If this is too complex for us to commit, reject it.
2053 return false;
2054 Constant *Val = getVal(Values, SI->getOperand(0));
2055 MutatedMemory[Ptr] = Val;
2056 } else if (BinaryOperator *BO = dyn_cast<BinaryOperator>(CurInst)) {
2057 InstResult = ConstantExpr::get(BO->getOpcode(),
2058 getVal(Values, BO->getOperand(0)),
2059 getVal(Values, BO->getOperand(1)));
2060 } else if (CmpInst *CI = dyn_cast<CmpInst>(CurInst)) {
2061 InstResult = ConstantExpr::getCompare(CI->getPredicate(),
2062 getVal(Values, CI->getOperand(0)),
2063 getVal(Values, CI->getOperand(1)));
2064 } else if (CastInst *CI = dyn_cast<CastInst>(CurInst)) {
2065 InstResult = ConstantExpr::getCast(CI->getOpcode(),
2066 getVal(Values, CI->getOperand(0)),
2067 CI->getType());
2068 } else if (SelectInst *SI = dyn_cast<SelectInst>(CurInst)) {
2069 InstResult = ConstantExpr::getSelect(getVal(Values, SI->getOperand(0)),
2070 getVal(Values, SI->getOperand(1)),
2071 getVal(Values, SI->getOperand(2)));
2072 } else if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(CurInst)) {
2073 Constant *P = getVal(Values, GEP->getOperand(0));
2074 SmallVector<Constant*, 8> GEPOps;
Gabor Greif20f03f52008-05-29 01:59:18 +00002075 for (User::op_iterator i = GEP->op_begin() + 1, e = GEP->op_end();
2076 i != e; ++i)
2077 GEPOps.push_back(getVal(Values, *i));
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002078 InstResult = ConstantExpr::getGetElementPtr(P, &GEPOps[0], GEPOps.size());
2079 } else if (LoadInst *LI = dyn_cast<LoadInst>(CurInst)) {
2080 if (LI->isVolatile()) return false; // no volatile accesses.
2081 InstResult = ComputeLoadResult(getVal(Values, LI->getOperand(0)),
2082 MutatedMemory);
2083 if (InstResult == 0) return false; // Could not evaluate load.
2084 } else if (AllocaInst *AI = dyn_cast<AllocaInst>(CurInst)) {
2085 if (AI->isArrayAllocation()) return false; // Cannot handle array allocs.
2086 const Type *Ty = AI->getType()->getElementType();
2087 AllocaTmps.push_back(new GlobalVariable(Ty, false,
2088 GlobalValue::InternalLinkage,
2089 UndefValue::get(Ty),
2090 AI->getName()));
2091 InstResult = AllocaTmps.back();
2092 } else if (CallInst *CI = dyn_cast<CallInst>(CurInst)) {
2093 // Cannot handle inline asm.
2094 if (isa<InlineAsm>(CI->getOperand(0))) return false;
2095
2096 // Resolve function pointers.
2097 Function *Callee = dyn_cast<Function>(getVal(Values, CI->getOperand(0)));
2098 if (!Callee) return false; // Cannot resolve.
2099
2100 std::vector<Constant*> Formals;
Gabor Greif20f03f52008-05-29 01:59:18 +00002101 for (User::op_iterator i = CI->op_begin() + 1, e = CI->op_end();
2102 i != e; ++i)
2103 Formals.push_back(getVal(Values, *i));
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002104
2105 if (Callee->isDeclaration()) {
2106 // If this is a function we can constant fold, do it.
2107 if (Constant *C = ConstantFoldCall(Callee, &Formals[0],
2108 Formals.size())) {
2109 InstResult = C;
2110 } else {
2111 return false;
2112 }
2113 } else {
2114 if (Callee->getFunctionType()->isVarArg())
2115 return false;
2116
2117 Constant *RetVal;
2118
2119 // Execute the call, if successful, use the return value.
2120 if (!EvaluateFunction(Callee, RetVal, Formals, CallStack,
2121 MutatedMemory, AllocaTmps))
2122 return false;
2123 InstResult = RetVal;
2124 }
2125 } else if (isa<TerminatorInst>(CurInst)) {
2126 BasicBlock *NewBB = 0;
2127 if (BranchInst *BI = dyn_cast<BranchInst>(CurInst)) {
2128 if (BI->isUnconditional()) {
2129 NewBB = BI->getSuccessor(0);
2130 } else {
2131 ConstantInt *Cond =
2132 dyn_cast<ConstantInt>(getVal(Values, BI->getCondition()));
2133 if (!Cond) return false; // Cannot determine.
2134
2135 NewBB = BI->getSuccessor(!Cond->getZExtValue());
2136 }
2137 } else if (SwitchInst *SI = dyn_cast<SwitchInst>(CurInst)) {
2138 ConstantInt *Val =
2139 dyn_cast<ConstantInt>(getVal(Values, SI->getCondition()));
2140 if (!Val) return false; // Cannot determine.
2141 NewBB = SI->getSuccessor(SI->findCaseValue(Val));
2142 } else if (ReturnInst *RI = dyn_cast<ReturnInst>(CurInst)) {
2143 if (RI->getNumOperands())
2144 RetVal = getVal(Values, RI->getOperand(0));
2145
2146 CallStack.pop_back(); // return from fn.
2147 return true; // We succeeded at evaluating this ctor!
2148 } else {
2149 // invoke, unwind, unreachable.
2150 return false; // Cannot handle this terminator.
2151 }
2152
2153 // Okay, we succeeded in evaluating this control flow. See if we have
2154 // executed the new block before. If so, we have a looping function,
2155 // which we cannot evaluate in reasonable time.
2156 if (!ExecutedBlocks.insert(NewBB).second)
2157 return false; // looped!
2158
2159 // Okay, we have never been in this block before. Check to see if there
2160 // are any PHI nodes. If so, evaluate them with information about where
2161 // we came from.
2162 BasicBlock *OldBB = CurInst->getParent();
2163 CurInst = NewBB->begin();
2164 PHINode *PN;
2165 for (; (PN = dyn_cast<PHINode>(CurInst)); ++CurInst)
2166 Values[PN] = getVal(Values, PN->getIncomingValueForBlock(OldBB));
2167
2168 // Do NOT increment CurInst. We know that the terminator had no value.
2169 continue;
2170 } else {
2171 // Did not know how to evaluate this!
2172 return false;
2173 }
2174
2175 if (!CurInst->use_empty())
2176 Values[CurInst] = InstResult;
2177
2178 // Advance program counter.
2179 ++CurInst;
2180 }
2181}
2182
2183/// EvaluateStaticConstructor - Evaluate static constructors in the function, if
2184/// we can. Return true if we can, false otherwise.
2185static bool EvaluateStaticConstructor(Function *F) {
2186 /// MutatedMemory - For each store we execute, we update this map. Loads
2187 /// check this to get the most up-to-date value. If evaluation is successful,
2188 /// this state is committed to the process.
2189 std::map<Constant*, Constant*> MutatedMemory;
2190
2191 /// AllocaTmps - To 'execute' an alloca, we create a temporary global variable
2192 /// to represent its body. This vector is needed so we can delete the
2193 /// temporary globals when we are done.
2194 std::vector<GlobalVariable*> AllocaTmps;
2195
2196 /// CallStack - This is used to detect recursion. In pathological situations
2197 /// we could hit exponential behavior, but at least there is nothing
2198 /// unbounded.
2199 std::vector<Function*> CallStack;
2200
2201 // Call the function.
2202 Constant *RetValDummy;
2203 bool EvalSuccess = EvaluateFunction(F, RetValDummy, std::vector<Constant*>(),
2204 CallStack, MutatedMemory, AllocaTmps);
2205 if (EvalSuccess) {
2206 // We succeeded at evaluation: commit the result.
2207 DOUT << "FULLY EVALUATED GLOBAL CTOR FUNCTION '"
2208 << F->getName() << "' to " << MutatedMemory.size()
2209 << " stores.\n";
2210 for (std::map<Constant*, Constant*>::iterator I = MutatedMemory.begin(),
2211 E = MutatedMemory.end(); I != E; ++I)
2212 CommitValueTo(I->second, I->first);
2213 }
2214
2215 // At this point, we are done interpreting. If we created any 'alloca'
2216 // temporaries, release them now.
2217 while (!AllocaTmps.empty()) {
2218 GlobalVariable *Tmp = AllocaTmps.back();
2219 AllocaTmps.pop_back();
2220
2221 // If there are still users of the alloca, the program is doing something
2222 // silly, e.g. storing the address of the alloca somewhere and using it
2223 // later. Since this is undefined, we'll just make it be null.
2224 if (!Tmp->use_empty())
2225 Tmp->replaceAllUsesWith(Constant::getNullValue(Tmp->getType()));
2226 delete Tmp;
2227 }
2228
2229 return EvalSuccess;
2230}
2231
2232
2233
2234/// OptimizeGlobalCtorsList - Simplify and evaluation global ctors if possible.
2235/// Return true if anything changed.
2236bool GlobalOpt::OptimizeGlobalCtorsList(GlobalVariable *&GCL) {
2237 std::vector<Function*> Ctors = ParseGlobalCtors(GCL);
2238 bool MadeChange = false;
2239 if (Ctors.empty()) return false;
2240
2241 // Loop over global ctors, optimizing them when we can.
2242 for (unsigned i = 0; i != Ctors.size(); ++i) {
2243 Function *F = Ctors[i];
2244 // Found a null terminator in the middle of the list, prune off the rest of
2245 // the list.
2246 if (F == 0) {
2247 if (i != Ctors.size()-1) {
2248 Ctors.resize(i+1);
2249 MadeChange = true;
2250 }
2251 break;
2252 }
2253
2254 // We cannot simplify external ctor functions.
2255 if (F->empty()) continue;
2256
2257 // If we can evaluate the ctor at compile time, do.
2258 if (EvaluateStaticConstructor(F)) {
2259 Ctors.erase(Ctors.begin()+i);
2260 MadeChange = true;
2261 --i;
2262 ++NumCtorsEvaluated;
2263 continue;
2264 }
2265 }
2266
2267 if (!MadeChange) return false;
2268
2269 GCL = InstallGlobalCtors(GCL, Ctors);
2270 return true;
2271}
2272
Anton Korobeynikov76944bd2008-09-09 19:04:59 +00002273bool GlobalOpt::ResolveAliases(Module &M) {
2274 bool Changed = false;
2275
2276 for (Module::alias_iterator I = M.alias_begin(),
2277 E = M.alias_end(); I != E; ++I) {
2278 if (I->use_empty())
2279 continue;
2280
Anton Korobeynikovc7b90912008-09-09 20:05:04 +00002281 if (const GlobalValue *GV = I->resolveAliasedGlobal())
Anton Korobeynikov76944bd2008-09-09 19:04:59 +00002282 if (GV != I) {
2283 I->replaceAllUsesWith(const_cast<GlobalValue*>(GV));
2284 Changed = true;
2285 }
2286 }
2287
2288 return Changed;
2289}
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002290
2291bool GlobalOpt::runOnModule(Module &M) {
2292 bool Changed = false;
2293
2294 // Try to find the llvm.globalctors list.
2295 GlobalVariable *GlobalCtors = FindGlobalCtors(M);
2296
2297 bool LocalChange = true;
2298 while (LocalChange) {
2299 LocalChange = false;
2300
2301 // Delete functions that are trivially dead, ccc -> fastcc
2302 LocalChange |= OptimizeFunctions(M);
2303
2304 // Optimize global_ctors list.
2305 if (GlobalCtors)
2306 LocalChange |= OptimizeGlobalCtorsList(GlobalCtors);
2307
2308 // Optimize non-address-taken globals.
2309 LocalChange |= OptimizeGlobalVars(M);
Anton Korobeynikov76944bd2008-09-09 19:04:59 +00002310
2311 // Resolve aliases, when possible.
2312 LocalChange |= ResolveAliases(M);
2313 Changed |= LocalChange;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002314 }
2315
2316 // TODO: Move all global ctors functions to the end of the module for code
2317 // layout.
2318
2319 return Changed;
2320}