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Nick Lewycky579a0242008-11-02 05:52:50 +00001//===- MergeFunctions.cpp - Merge identical functions ---------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This pass looks for equivalent functions that are mergable and folds them.
11//
Nick Lewycky579a0242008-11-02 05:52:50 +000012// A hash is computed from the function, based on its type and number of
13// basic blocks.
14//
15// Once all hashes are computed, we perform an expensive equality comparison
16// on each function pair. This takes n^2/2 comparisons per bucket, so it's
17// important that the hash function be high quality. The equality comparison
18// iterates through each instruction in each basic block.
19//
20// When a match is found, the functions are folded. We can only fold two
21// functions when we know that the definition of one of them is not
22// overridable.
Nick Lewycky579a0242008-11-02 05:52:50 +000023//
24//===----------------------------------------------------------------------===//
25//
26// Future work:
27//
28// * fold vector<T*>::push_back and vector<S*>::push_back.
29//
30// These two functions have different types, but in a way that doesn't matter
31// to us. As long as we never see an S or T itself, using S* and S** is the
32// same as using a T* and T**.
33//
34// * virtual functions.
35//
36// Many functions have their address taken by the virtual function table for
37// the object they belong to. However, as long as it's only used for a lookup
38// and call, this is irrelevant, and we'd like to fold such implementations.
39//
40//===----------------------------------------------------------------------===//
41
42#define DEBUG_TYPE "mergefunc"
43#include "llvm/Transforms/IPO.h"
44#include "llvm/ADT/DenseMap.h"
Nick Lewycky287de602009-06-12 08:04:51 +000045#include "llvm/ADT/FoldingSet.h"
Nick Lewycky579a0242008-11-02 05:52:50 +000046#include "llvm/ADT/Statistic.h"
47#include "llvm/Constants.h"
48#include "llvm/InlineAsm.h"
49#include "llvm/Instructions.h"
Owen Anderson14ce9ef2009-07-06 01:34:54 +000050#include "llvm/LLVMContext.h"
Nick Lewycky579a0242008-11-02 05:52:50 +000051#include "llvm/Module.h"
52#include "llvm/Pass.h"
Nick Lewycky6feb3332008-11-02 16:46:26 +000053#include "llvm/Support/CallSite.h"
Nick Lewycky579a0242008-11-02 05:52:50 +000054#include "llvm/Support/Compiler.h"
55#include "llvm/Support/Debug.h"
56#include <map>
57#include <vector>
58using namespace llvm;
59
60STATISTIC(NumFunctionsMerged, "Number of functions merged");
Nick Lewycky579a0242008-11-02 05:52:50 +000061
62namespace {
63 struct VISIBILITY_HIDDEN MergeFunctions : public ModulePass {
64 static char ID; // Pass identification, replacement for typeid
65 MergeFunctions() : ModulePass((intptr_t)&ID) {}
66
67 bool runOnModule(Module &M);
68 };
69}
70
71char MergeFunctions::ID = 0;
72static RegisterPass<MergeFunctions>
73X("mergefunc", "Merge Functions");
74
75ModulePass *llvm::createMergeFunctionsPass() {
76 return new MergeFunctions();
77}
78
Nick Lewycky287de602009-06-12 08:04:51 +000079// ===----------------------------------------------------------------------===
80// Comparison of functions
81// ===----------------------------------------------------------------------===
82
Duncan Sands5baf8ec2008-11-02 09:00:33 +000083static unsigned long hash(const Function *F) {
Nick Lewycky287de602009-06-12 08:04:51 +000084 const FunctionType *FTy = F->getFunctionType();
85
86 FoldingSetNodeID ID;
87 ID.AddInteger(F->size());
88 ID.AddInteger(F->getCallingConv());
89 ID.AddBoolean(F->hasGC());
90 ID.AddBoolean(FTy->isVarArg());
91 ID.AddInteger(FTy->getReturnType()->getTypeID());
92 for (unsigned i = 0, e = FTy->getNumParams(); i != e; ++i)
93 ID.AddInteger(FTy->getParamType(i)->getTypeID());
94 return ID.ComputeHash();
95}
96
97/// IgnoreBitcasts - given a bitcast, returns the first non-bitcast found by
98/// walking the chain of cast operands. Otherwise, returns the argument.
99static Value* IgnoreBitcasts(Value *V) {
100 while (BitCastInst *BC = dyn_cast<BitCastInst>(V))
101 V = BC->getOperand(0);
102
103 return V;
104}
105
106/// isEquivalentType - any two pointers are equivalent. Otherwise, standard
107/// type equivalence rules apply.
108static bool isEquivalentType(const Type *Ty1, const Type *Ty2) {
109 if (Ty1 == Ty2)
110 return true;
111 if (Ty1->getTypeID() != Ty2->getTypeID())
112 return false;
113
114 switch(Ty1->getTypeID()) {
115 case Type::VoidTyID:
116 case Type::FloatTyID:
117 case Type::DoubleTyID:
118 case Type::X86_FP80TyID:
119 case Type::FP128TyID:
120 case Type::PPC_FP128TyID:
121 case Type::LabelTyID:
122 case Type::MetadataTyID:
123 return true;
124
125 case Type::IntegerTyID:
126 case Type::OpaqueTyID:
127 // Ty1 == Ty2 would have returned true earlier.
128 return false;
129
130 default:
131 assert(0 && "Unknown type!");
132 return false;
133
134 case Type::PointerTyID: {
135 const PointerType *PTy1 = cast<PointerType>(Ty1);
136 const PointerType *PTy2 = cast<PointerType>(Ty2);
137 return PTy1->getAddressSpace() == PTy2->getAddressSpace();
138 }
139
140 case Type::StructTyID: {
141 const StructType *STy1 = cast<StructType>(Ty1);
142 const StructType *STy2 = cast<StructType>(Ty2);
143 if (STy1->getNumElements() != STy2->getNumElements())
144 return false;
145
146 if (STy1->isPacked() != STy2->isPacked())
147 return false;
148
149 for (unsigned i = 0, e = STy1->getNumElements(); i != e; ++i) {
150 if (!isEquivalentType(STy1->getElementType(i), STy2->getElementType(i)))
151 return false;
152 }
153 return true;
154 }
155
156 case Type::FunctionTyID: {
157 const FunctionType *FTy1 = cast<FunctionType>(Ty1);
158 const FunctionType *FTy2 = cast<FunctionType>(Ty2);
159 if (FTy1->getNumParams() != FTy2->getNumParams() ||
160 FTy1->isVarArg() != FTy2->isVarArg())
161 return false;
162
163 if (!isEquivalentType(FTy1->getReturnType(), FTy2->getReturnType()))
164 return false;
165
166 for (unsigned i = 0, e = FTy1->getNumParams(); i != e; ++i) {
167 if (!isEquivalentType(FTy1->getParamType(i), FTy2->getParamType(i)))
168 return false;
169 }
170 return true;
171 }
172
173 case Type::ArrayTyID:
174 case Type::VectorTyID: {
175 const SequentialType *STy1 = cast<SequentialType>(Ty1);
176 const SequentialType *STy2 = cast<SequentialType>(Ty2);
177 return isEquivalentType(STy1->getElementType(), STy2->getElementType());
178 }
179 }
180}
181
182/// isEquivalentOperation - determine whether the two operations are the same
183/// except that pointer-to-A and pointer-to-B are equivalent. This should be
Dan Gohman194ae782009-06-12 19:03:05 +0000184/// kept in sync with Instruction::isSameOperationAs.
185static bool
186isEquivalentOperation(const Instruction *I1, const Instruction *I2) {
Nick Lewycky287de602009-06-12 08:04:51 +0000187 if (I1->getOpcode() != I2->getOpcode() ||
188 I1->getNumOperands() != I2->getNumOperands() ||
189 !isEquivalentType(I1->getType(), I2->getType()))
190 return false;
191
192 // We have two instructions of identical opcode and #operands. Check to see
193 // if all operands are the same type
194 for (unsigned i = 0, e = I1->getNumOperands(); i != e; ++i)
195 if (!isEquivalentType(I1->getOperand(i)->getType(),
196 I2->getOperand(i)->getType()))
197 return false;
198
199 // Check special state that is a part of some instructions.
200 if (const LoadInst *LI = dyn_cast<LoadInst>(I1))
201 return LI->isVolatile() == cast<LoadInst>(I2)->isVolatile() &&
202 LI->getAlignment() == cast<LoadInst>(I2)->getAlignment();
203 if (const StoreInst *SI = dyn_cast<StoreInst>(I1))
204 return SI->isVolatile() == cast<StoreInst>(I2)->isVolatile() &&
205 SI->getAlignment() == cast<StoreInst>(I2)->getAlignment();
206 if (const CmpInst *CI = dyn_cast<CmpInst>(I1))
207 return CI->getPredicate() == cast<CmpInst>(I2)->getPredicate();
208 if (const CallInst *CI = dyn_cast<CallInst>(I1))
209 return CI->isTailCall() == cast<CallInst>(I2)->isTailCall() &&
210 CI->getCallingConv() == cast<CallInst>(I2)->getCallingConv() &&
211 CI->getAttributes().getRawPointer() ==
212 cast<CallInst>(I2)->getAttributes().getRawPointer();
213 if (const InvokeInst *CI = dyn_cast<InvokeInst>(I1))
214 return CI->getCallingConv() == cast<InvokeInst>(I2)->getCallingConv() &&
215 CI->getAttributes().getRawPointer() ==
216 cast<InvokeInst>(I2)->getAttributes().getRawPointer();
217 if (const InsertValueInst *IVI = dyn_cast<InsertValueInst>(I1)) {
218 if (IVI->getNumIndices() != cast<InsertValueInst>(I2)->getNumIndices())
219 return false;
220 for (unsigned i = 0, e = IVI->getNumIndices(); i != e; ++i)
221 if (IVI->idx_begin()[i] != cast<InsertValueInst>(I2)->idx_begin()[i])
222 return false;
223 return true;
224 }
225 if (const ExtractValueInst *EVI = dyn_cast<ExtractValueInst>(I1)) {
226 if (EVI->getNumIndices() != cast<ExtractValueInst>(I2)->getNumIndices())
227 return false;
228 for (unsigned i = 0, e = EVI->getNumIndices(); i != e; ++i)
229 if (EVI->idx_begin()[i] != cast<ExtractValueInst>(I2)->idx_begin()[i])
230 return false;
231 return true;
232 }
233
234 return true;
Nick Lewycky579a0242008-11-02 05:52:50 +0000235}
236
237static bool compare(const Value *V, const Value *U) {
238 assert(!isa<BasicBlock>(V) && !isa<BasicBlock>(U) &&
239 "Must not compare basic blocks.");
240
Nick Lewycky287de602009-06-12 08:04:51 +0000241 assert(isEquivalentType(V->getType(), U->getType()) &&
Nick Lewycky579a0242008-11-02 05:52:50 +0000242 "Two of the same operation have operands of different type.");
243
244 // TODO: If the constant is an expression of F, we should accept that it's
245 // equal to the same expression in terms of G.
246 if (isa<Constant>(V))
247 return V == U;
248
249 // The caller has ensured that ValueMap[V] != U. Since Arguments are
250 // pre-loaded into the ValueMap, and Instructions are added as we go, we know
251 // that this can only be a mis-match.
252 if (isa<Instruction>(V) || isa<Argument>(V))
253 return false;
254
255 if (isa<InlineAsm>(V) && isa<InlineAsm>(U)) {
256 const InlineAsm *IAF = cast<InlineAsm>(V);
257 const InlineAsm *IAG = cast<InlineAsm>(U);
258 return IAF->getAsmString() == IAG->getAsmString() &&
259 IAF->getConstraintString() == IAG->getConstraintString();
260 }
261
262 return false;
263}
264
265static bool equals(const BasicBlock *BB1, const BasicBlock *BB2,
266 DenseMap<const Value *, const Value *> &ValueMap,
267 DenseMap<const Value *, const Value *> &SpeculationMap) {
Nick Lewycky287de602009-06-12 08:04:51 +0000268 // Speculatively add it anyways. If it's false, we'll notice a difference
269 // later, and this won't matter.
Nick Lewycky579a0242008-11-02 05:52:50 +0000270 ValueMap[BB1] = BB2;
271
272 BasicBlock::const_iterator FI = BB1->begin(), FE = BB1->end();
273 BasicBlock::const_iterator GI = BB2->begin(), GE = BB2->end();
274
275 do {
Nick Lewycky287de602009-06-12 08:04:51 +0000276 if (isa<BitCastInst>(FI)) {
277 ++FI;
278 continue;
279 }
280 if (isa<BitCastInst>(GI)) {
281 ++GI;
282 continue;
283 }
Nick Lewycky579a0242008-11-02 05:52:50 +0000284
Nick Lewycky287de602009-06-12 08:04:51 +0000285 if (!isEquivalentOperation(FI, GI))
Nick Lewycky579a0242008-11-02 05:52:50 +0000286 return false;
287
Nick Lewyckya142c932009-06-13 19:09:52 +0000288 if (isa<GetElementPtrInst>(FI)) {
289 const GetElementPtrInst *GEPF = cast<GetElementPtrInst>(FI);
290 const GetElementPtrInst *GEPG = cast<GetElementPtrInst>(GI);
291 if (GEPF->hasAllZeroIndices() && GEPG->hasAllZeroIndices()) {
292 // It's effectively a bitcast.
293 ++FI, ++GI;
294 continue;
295 }
296
297 // TODO: we only really care about the elements before the index
298 if (FI->getOperand(0)->getType() != GI->getOperand(0)->getType())
299 return false;
300 }
301
Nick Lewycky579a0242008-11-02 05:52:50 +0000302 if (ValueMap[FI] == GI) {
303 ++FI, ++GI;
304 continue;
305 }
306
307 if (ValueMap[FI] != NULL)
308 return false;
309
310 for (unsigned i = 0, e = FI->getNumOperands(); i != e; ++i) {
Nick Lewycky287de602009-06-12 08:04:51 +0000311 Value *OpF = IgnoreBitcasts(FI->getOperand(i));
312 Value *OpG = IgnoreBitcasts(GI->getOperand(i));
Nick Lewycky579a0242008-11-02 05:52:50 +0000313
314 if (ValueMap[OpF] == OpG)
315 continue;
316
317 if (ValueMap[OpF] != NULL)
318 return false;
319
Nick Lewycky287de602009-06-12 08:04:51 +0000320 if (OpF->getValueID() != OpG->getValueID() ||
321 !isEquivalentType(OpF->getType(), OpG->getType()))
Nick Lewycky579a0242008-11-02 05:52:50 +0000322 return false;
323
324 if (isa<PHINode>(FI)) {
325 if (SpeculationMap[OpF] == NULL)
326 SpeculationMap[OpF] = OpG;
327 else if (SpeculationMap[OpF] != OpG)
328 return false;
329 continue;
330 } else if (isa<BasicBlock>(OpF)) {
331 assert(isa<TerminatorInst>(FI) &&
332 "BasicBlock referenced by non-Terminator non-PHI");
333 // This call changes the ValueMap, hence we can't use
334 // Value *& = ValueMap[...]
335 if (!equals(cast<BasicBlock>(OpF), cast<BasicBlock>(OpG), ValueMap,
336 SpeculationMap))
337 return false;
338 } else {
339 if (!compare(OpF, OpG))
340 return false;
341 }
342
343 ValueMap[OpF] = OpG;
344 }
345
346 ValueMap[FI] = GI;
347 ++FI, ++GI;
348 } while (FI != FE && GI != GE);
349
350 return FI == FE && GI == GE;
351}
352
353static bool equals(const Function *F, const Function *G) {
354 // We need to recheck everything, but check the things that weren't included
355 // in the hash first.
356
357 if (F->getAttributes() != G->getAttributes())
358 return false;
359
360 if (F->hasGC() != G->hasGC())
361 return false;
362
363 if (F->hasGC() && F->getGC() != G->getGC())
364 return false;
365
366 if (F->hasSection() != G->hasSection())
367 return false;
368
369 if (F->hasSection() && F->getSection() != G->getSection())
370 return false;
371
Nick Lewycky287de602009-06-12 08:04:51 +0000372 if (F->isVarArg() != G->isVarArg())
373 return false;
374
Nick Lewycky579a0242008-11-02 05:52:50 +0000375 // TODO: if it's internal and only used in direct calls, we could handle this
376 // case too.
377 if (F->getCallingConv() != G->getCallingConv())
378 return false;
379
Nick Lewycky287de602009-06-12 08:04:51 +0000380 if (!isEquivalentType(F->getFunctionType(), G->getFunctionType()))
Nick Lewycky579a0242008-11-02 05:52:50 +0000381 return false;
382
383 DenseMap<const Value *, const Value *> ValueMap;
384 DenseMap<const Value *, const Value *> SpeculationMap;
385 ValueMap[F] = G;
386
387 assert(F->arg_size() == G->arg_size() &&
388 "Identical functions have a different number of args.");
389
390 for (Function::const_arg_iterator fi = F->arg_begin(), gi = G->arg_begin(),
391 fe = F->arg_end(); fi != fe; ++fi, ++gi)
392 ValueMap[fi] = gi;
393
394 if (!equals(&F->getEntryBlock(), &G->getEntryBlock(), ValueMap,
395 SpeculationMap))
396 return false;
397
398 for (DenseMap<const Value *, const Value *>::iterator
399 I = SpeculationMap.begin(), E = SpeculationMap.end(); I != E; ++I) {
400 if (ValueMap[I->first] != I->second)
401 return false;
402 }
403
404 return true;
405}
406
Nick Lewycky287de602009-06-12 08:04:51 +0000407// ===----------------------------------------------------------------------===
408// Folding of functions
409// ===----------------------------------------------------------------------===
Nick Lewycky579a0242008-11-02 05:52:50 +0000410
Nick Lewycky287de602009-06-12 08:04:51 +0000411// Cases:
412// * F is external strong, G is external strong:
413// turn G into a thunk to F (1)
414// * F is external strong, G is external weak:
415// turn G into a thunk to F (1)
416// * F is external weak, G is external weak:
417// unfoldable
418// * F is external strong, G is internal:
419// address of G taken:
420// turn G into a thunk to F (1)
421// address of G not taken:
422// make G an alias to F (2)
423// * F is internal, G is external weak
424// address of F is taken:
425// turn G into a thunk to F (1)
426// address of F is not taken:
427// make G an alias of F (2)
428// * F is internal, G is internal:
429// address of F and G are taken:
430// turn G into a thunk to F (1)
431// address of G is not taken:
432// make G an alias to F (2)
433//
434// alias requires linkage == (external,local,weak) fallback to creating a thunk
435// external means 'externally visible' linkage != (internal,private)
436// internal means linkage == (internal,private)
437// weak means linkage mayBeOverridable
438// being external implies that the address is taken
439//
440// 1. turn G into a thunk to F
441// 2. make G an alias to F
442
443enum LinkageCategory {
444 ExternalStrong,
445 ExternalWeak,
446 Internal
447};
448
449static LinkageCategory categorize(const Function *F) {
450 switch (F->getLinkage()) {
451 case GlobalValue::InternalLinkage:
452 case GlobalValue::PrivateLinkage:
453 return Internal;
454
455 case GlobalValue::WeakAnyLinkage:
456 case GlobalValue::WeakODRLinkage:
457 case GlobalValue::ExternalWeakLinkage:
458 return ExternalWeak;
459
460 case GlobalValue::ExternalLinkage:
461 case GlobalValue::AvailableExternallyLinkage:
462 case GlobalValue::LinkOnceAnyLinkage:
463 case GlobalValue::LinkOnceODRLinkage:
464 case GlobalValue::AppendingLinkage:
465 case GlobalValue::DLLImportLinkage:
466 case GlobalValue::DLLExportLinkage:
467 case GlobalValue::GhostLinkage:
468 case GlobalValue::CommonLinkage:
469 return ExternalStrong;
470 }
471
472 assert(0 && "Unknown LinkageType.");
473 return ExternalWeak;
474}
475
476static void ThunkGToF(Function *F, Function *G) {
Nick Lewycky8728d7a2009-06-12 15:56:56 +0000477 Function *NewG = Function::Create(G->getFunctionType(), G->getLinkage(), "",
478 G->getParent());
Nick Lewycky287de602009-06-12 08:04:51 +0000479 BasicBlock *BB = BasicBlock::Create("", NewG);
480
481 std::vector<Value *> Args;
482 unsigned i = 0;
483 const FunctionType *FFTy = F->getFunctionType();
484 for (Function::arg_iterator AI = NewG->arg_begin(), AE = NewG->arg_end();
485 AI != AE; ++AI) {
486 if (FFTy->getParamType(i) == AI->getType())
487 Args.push_back(AI);
488 else {
489 Value *BCI = new BitCastInst(AI, FFTy->getParamType(i), "", BB);
490 Args.push_back(BCI);
491 }
492 ++i;
493 }
494
495 CallInst *CI = CallInst::Create(F, Args.begin(), Args.end(), "", BB);
496 CI->setTailCall();
Nick Lewyckyb3c36c92009-06-12 16:04:00 +0000497 CI->setCallingConv(F->getCallingConv());
Nick Lewycky287de602009-06-12 08:04:51 +0000498 if (NewG->getReturnType() == Type::VoidTy) {
499 ReturnInst::Create(BB);
500 } else if (CI->getType() != NewG->getReturnType()) {
501 Value *BCI = new BitCastInst(CI, NewG->getReturnType(), "", BB);
502 ReturnInst::Create(BCI, BB);
503 } else {
504 ReturnInst::Create(CI, BB);
505 }
506
507 NewG->copyAttributesFrom(G);
508 NewG->takeName(G);
509 G->replaceAllUsesWith(NewG);
510 G->eraseFromParent();
511
Nick Lewyckyb3c36c92009-06-12 16:04:00 +0000512 // TODO: look at direct callers to G and make them all direct callers to F.
Nick Lewycky287de602009-06-12 08:04:51 +0000513}
514
515static void AliasGToF(Function *F, Function *G) {
516 if (!G->hasExternalLinkage() && !G->hasLocalLinkage() && !G->hasWeakLinkage())
517 return ThunkGToF(F, G);
518
519 GlobalAlias *GA = new GlobalAlias(
520 G->getType(), G->getLinkage(), "",
Owen Anderson14ce9ef2009-07-06 01:34:54 +0000521 F->getContext()->getConstantExprBitCast(F, G->getType()), G->getParent());
Nick Lewycky287de602009-06-12 08:04:51 +0000522 F->setAlignment(std::max(F->getAlignment(), G->getAlignment()));
523 GA->takeName(G);
524 GA->setVisibility(G->getVisibility());
525 G->replaceAllUsesWith(GA);
526 G->eraseFromParent();
527}
528
529static bool fold(std::vector<Function *> &FnVec, unsigned i, unsigned j) {
Nick Lewycky579a0242008-11-02 05:52:50 +0000530 Function *F = FnVec[i];
531 Function *G = FnVec[j];
532
Nick Lewycky287de602009-06-12 08:04:51 +0000533 LinkageCategory catF = categorize(F);
534 LinkageCategory catG = categorize(G);
Nick Lewycky579a0242008-11-02 05:52:50 +0000535
Nick Lewycky287de602009-06-12 08:04:51 +0000536 if (catF == ExternalWeak || (catF == Internal && catG == ExternalStrong)) {
537 std::swap(FnVec[i], FnVec[j]);
538 std::swap(F, G);
539 std::swap(catF, catG);
Nick Lewycky579a0242008-11-02 05:52:50 +0000540 }
541
Nick Lewycky287de602009-06-12 08:04:51 +0000542 switch (catF) {
543 case ExternalStrong:
544 switch (catG) {
545 case ExternalStrong:
546 case ExternalWeak:
547 ThunkGToF(F, G);
548 break;
549 case Internal:
550 if (G->hasAddressTaken())
551 ThunkGToF(F, G);
552 else
553 AliasGToF(F, G);
554 break;
555 }
556 break;
Nick Lewycky6feb3332008-11-02 16:46:26 +0000557
Nick Lewycky8728d7a2009-06-12 15:56:56 +0000558 case ExternalWeak: {
559 assert(catG == ExternalWeak);
560
561 // Make them both thunks to the same internal function.
562 F->setAlignment(std::max(F->getAlignment(), G->getAlignment()));
563 Function *H = Function::Create(F->getFunctionType(), F->getLinkage(), "",
564 F->getParent());
565 H->copyAttributesFrom(F);
566 H->takeName(F);
Nick Lewycky93531e42009-06-12 17:16:48 +0000567 F->replaceAllUsesWith(H);
Nick Lewycky8728d7a2009-06-12 15:56:56 +0000568
569 ThunkGToF(F, G);
570 ThunkGToF(F, H);
571
572 F->setLinkage(GlobalValue::InternalLinkage);
573 } break;
Nick Lewycky6feb3332008-11-02 16:46:26 +0000574
Nick Lewycky287de602009-06-12 08:04:51 +0000575 case Internal:
576 switch (catG) {
577 case ExternalStrong:
578 assert(0);
579 // fall-through
580 case ExternalWeak:
581 if (F->hasAddressTaken())
582 ThunkGToF(F, G);
583 else
584 AliasGToF(F, G);
585 break;
586 case Internal: {
587 bool addrTakenF = F->hasAddressTaken();
588 bool addrTakenG = G->hasAddressTaken();
589 if (!addrTakenF && addrTakenG) {
590 std::swap(FnVec[i], FnVec[j]);
591 std::swap(F, G);
592 std::swap(addrTakenF, addrTakenG);
593 }
594
595 if (addrTakenF && addrTakenG) {
596 ThunkGToF(F, G);
597 } else {
598 assert(!addrTakenG);
599 AliasGToF(F, G);
600 }
601 } break;
602 }
603 break;
Nick Lewycky6feb3332008-11-02 16:46:26 +0000604 }
605
Nick Lewycky287de602009-06-12 08:04:51 +0000606 ++NumFunctionsMerged;
607 return true;
Nick Lewycky579a0242008-11-02 05:52:50 +0000608}
609
Nick Lewycky287de602009-06-12 08:04:51 +0000610// ===----------------------------------------------------------------------===
611// Pass definition
612// ===----------------------------------------------------------------------===
Nick Lewycky579a0242008-11-02 05:52:50 +0000613
614bool MergeFunctions::runOnModule(Module &M) {
615 bool Changed = false;
616
Duncan Sands5baf8ec2008-11-02 09:00:33 +0000617 std::map<unsigned long, std::vector<Function *> > FnMap;
Nick Lewycky579a0242008-11-02 05:52:50 +0000618
619 for (Module::iterator F = M.begin(), E = M.end(); F != E; ++F) {
620 if (F->isDeclaration() || F->isIntrinsic())
621 continue;
622
Nick Lewycky579a0242008-11-02 05:52:50 +0000623 FnMap[hash(F)].push_back(F);
624 }
625
Nick Lewycky287de602009-06-12 08:04:51 +0000626 // TODO: instead of running in a loop, we could also fold functions in
627 // callgraph order. Constructing the CFG probably isn't cheaper than just
628 // running in a loop, unless it happened to already be available.
Nick Lewycky579a0242008-11-02 05:52:50 +0000629
630 bool LocalChanged;
631 do {
632 LocalChanged = false;
Nick Lewycky287de602009-06-12 08:04:51 +0000633 DOUT << "size: " << FnMap.size() << "\n";
Duncan Sands5baf8ec2008-11-02 09:00:33 +0000634 for (std::map<unsigned long, std::vector<Function *> >::iterator
635 I = FnMap.begin(), E = FnMap.end(); I != E; ++I) {
Nick Lewycky579a0242008-11-02 05:52:50 +0000636 std::vector<Function *> &FnVec = I->second;
637 DOUT << "hash (" << I->first << "): " << FnVec.size() << "\n";
638
639 for (int i = 0, e = FnVec.size(); i != e; ++i) {
640 for (int j = i + 1; j != e; ++j) {
641 bool isEqual = equals(FnVec[i], FnVec[j]);
642
643 DOUT << " " << FnVec[i]->getName()
644 << (isEqual ? " == " : " != ")
645 << FnVec[j]->getName() << "\n";
646
647 if (isEqual) {
648 if (fold(FnVec, i, j)) {
649 LocalChanged = true;
650 FnVec.erase(FnVec.begin() + j);
651 --j, --e;
652 }
653 }
654 }
655 }
656
657 }
658 Changed |= LocalChanged;
659 } while (LocalChanged);
660
661 return Changed;
662}