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Chris Lattner6c2e2e52002-11-19 22:04:49 +00001//===- CloneFunction.cpp - Clone a function into another function ---------===//
Misha Brukmanfd939082005-04-21 23:48:37 +00002//
John Criswellb576c942003-10-20 19:43:21 +00003// The LLVM Compiler Infrastructure
4//
5// This file was developed by the LLVM research group and is distributed under
6// the University of Illinois Open Source License. See LICENSE.TXT for details.
Misha Brukmanfd939082005-04-21 23:48:37 +00007//
John Criswellb576c942003-10-20 19:43:21 +00008//===----------------------------------------------------------------------===//
Chris Lattner6c2e2e52002-11-19 22:04:49 +00009//
10// This file implements the CloneFunctionInto interface, which is used as the
11// low-level function cloner. This is used by the CloneFunction and function
12// inliner to do the dirty work of copying the body of a function around.
13//
14//===----------------------------------------------------------------------===//
Chris Lattnerfa703a42002-03-29 19:03:54 +000015
Chris Lattner309f1932002-11-19 20:59:41 +000016#include "llvm/Transforms/Utils/Cloning.h"
Chris Lattnera4c29d22006-01-13 18:39:17 +000017#include "llvm/Constants.h"
Chris Lattner5a8932f2002-11-19 23:12:22 +000018#include "llvm/DerivedTypes.h"
Chris Lattnera4c29d22006-01-13 18:39:17 +000019#include "llvm/Instructions.h"
Chris Lattnerfa703a42002-03-29 19:03:54 +000020#include "llvm/Function.h"
Chris Lattner35033ef2006-06-01 19:19:23 +000021#include "llvm/Support/CFG.h"
Chris Lattner51cbcbf2002-11-20 20:47:41 +000022#include "ValueMapper.h"
Chris Lattner83f03bf2006-05-27 01:22:24 +000023#include "llvm/Transforms/Utils/Local.h"
Chris Lattnerf7703df2004-01-09 06:12:26 +000024using namespace llvm;
Brian Gaeked0fde302003-11-11 22:41:34 +000025
Chris Lattner17d145d2003-04-18 03:50:09 +000026// CloneBasicBlock - See comments in Cloning.h
Chris Lattnerf7703df2004-01-09 06:12:26 +000027BasicBlock *llvm::CloneBasicBlock(const BasicBlock *BB,
28 std::map<const Value*, Value*> &ValueMap,
Chris Lattnera4c29d22006-01-13 18:39:17 +000029 const char *NameSuffix, Function *F,
30 ClonedCodeInfo *CodeInfo) {
Chris Lattner23b4c682004-02-04 01:19:43 +000031 BasicBlock *NewBB = new BasicBlock("", F);
Chris Lattner17d145d2003-04-18 03:50:09 +000032 if (BB->hasName()) NewBB->setName(BB->getName()+NameSuffix);
33
Chris Lattnera4c29d22006-01-13 18:39:17 +000034 bool hasCalls = false, hasDynamicAllocas = false, hasStaticAllocas = false;
35
36 // Loop over all instructions, and copy them over.
Chris Lattner17d145d2003-04-18 03:50:09 +000037 for (BasicBlock::const_iterator II = BB->begin(), IE = BB->end();
38 II != IE; ++II) {
39 Instruction *NewInst = II->clone();
40 if (II->hasName())
41 NewInst->setName(II->getName()+NameSuffix);
42 NewBB->getInstList().push_back(NewInst);
43 ValueMap[II] = NewInst; // Add instruction map to value.
Chris Lattnera4c29d22006-01-13 18:39:17 +000044
45 hasCalls |= isa<CallInst>(II);
46 if (const AllocaInst *AI = dyn_cast<AllocaInst>(II)) {
47 if (isa<ConstantInt>(AI->getArraySize()))
48 hasStaticAllocas = true;
49 else
50 hasDynamicAllocas = true;
51 }
52 }
53
54 if (CodeInfo) {
55 CodeInfo->ContainsCalls |= hasCalls;
56 CodeInfo->ContainsUnwinds |= isa<UnwindInst>(BB->getTerminator());
57 CodeInfo->ContainsDynamicAllocas |= hasDynamicAllocas;
58 CodeInfo->ContainsDynamicAllocas |= hasStaticAllocas &&
59 BB != &BB->getParent()->front();
Chris Lattner17d145d2003-04-18 03:50:09 +000060 }
61 return NewBB;
62}
63
Chris Lattnerfa703a42002-03-29 19:03:54 +000064// Clone OldFunc into NewFunc, transforming the old arguments into references to
65// ArgMap values.
66//
Chris Lattnerf7703df2004-01-09 06:12:26 +000067void llvm::CloneFunctionInto(Function *NewFunc, const Function *OldFunc,
68 std::map<const Value*, Value*> &ValueMap,
69 std::vector<ReturnInst*> &Returns,
Chris Lattnera4c29d22006-01-13 18:39:17 +000070 const char *NameSuffix, ClonedCodeInfo *CodeInfo) {
Chris Lattnerdcd80402002-11-19 21:54:07 +000071 assert(NameSuffix && "NameSuffix cannot be null!");
Misha Brukmanfd939082005-04-21 23:48:37 +000072
Chris Lattnerd1801552002-11-19 22:54:01 +000073#ifndef NDEBUG
Chris Lattnera4c29d22006-01-13 18:39:17 +000074 for (Function::const_arg_iterator I = OldFunc->arg_begin(),
75 E = OldFunc->arg_end(); I != E; ++I)
Chris Lattnerd1801552002-11-19 22:54:01 +000076 assert(ValueMap.count(I) && "No mapping from source argument specified!");
77#endif
Chris Lattnerfa703a42002-03-29 19:03:54 +000078
79 // Loop over all of the basic blocks in the function, cloning them as
Chris Lattnerdcd80402002-11-19 21:54:07 +000080 // appropriate. Note that we save BE this way in order to handle cloning of
81 // recursive functions into themselves.
Chris Lattnerfa703a42002-03-29 19:03:54 +000082 //
83 for (Function::const_iterator BI = OldFunc->begin(), BE = OldFunc->end();
84 BI != BE; ++BI) {
Chris Lattner18961502002-06-25 16:12:52 +000085 const BasicBlock &BB = *BI;
Misha Brukmanfd939082005-04-21 23:48:37 +000086
Chris Lattner17d145d2003-04-18 03:50:09 +000087 // Create a new basic block and copy instructions into it!
Chris Lattnera4c29d22006-01-13 18:39:17 +000088 BasicBlock *CBB = CloneBasicBlock(&BB, ValueMap, NameSuffix, NewFunc,
89 CodeInfo);
Chris Lattner18961502002-06-25 16:12:52 +000090 ValueMap[&BB] = CBB; // Add basic block mapping.
Chris Lattnerfa703a42002-03-29 19:03:54 +000091
Chris Lattnerdcd80402002-11-19 21:54:07 +000092 if (ReturnInst *RI = dyn_cast<ReturnInst>(CBB->getTerminator()))
93 Returns.push_back(RI);
Chris Lattnerfa703a42002-03-29 19:03:54 +000094 }
95
Misha Brukmanfd939082005-04-21 23:48:37 +000096 // Loop over all of the instructions in the function, fixing up operand
Chris Lattnerfa703a42002-03-29 19:03:54 +000097 // references as we go. This uses ValueMap to do all the hard work.
98 //
Chris Lattnera33ceaa2004-02-04 21:44:26 +000099 for (Function::iterator BB = cast<BasicBlock>(ValueMap[OldFunc->begin()]),
100 BE = NewFunc->end(); BB != BE; ++BB)
Chris Lattnerfa703a42002-03-29 19:03:54 +0000101 // Loop over all instructions, fixing each one as we find it...
Chris Lattnera33ceaa2004-02-04 21:44:26 +0000102 for (BasicBlock::iterator II = BB->begin(); II != BB->end(); ++II)
Chris Lattner18961502002-06-25 16:12:52 +0000103 RemapInstruction(II, ValueMap);
Chris Lattnerfa703a42002-03-29 19:03:54 +0000104}
Chris Lattner5a8932f2002-11-19 23:12:22 +0000105
106/// CloneFunction - Return a copy of the specified function, but without
107/// embedding the function into another module. Also, any references specified
108/// in the ValueMap are changed to refer to their mapped value instead of the
109/// original one. If any of the arguments to the function are in the ValueMap,
110/// the arguments are deleted from the resultant function. The ValueMap is
111/// updated to include mappings from all of the instructions and basicblocks in
112/// the function from their old to new values.
113///
Chris Lattnerf7703df2004-01-09 06:12:26 +0000114Function *llvm::CloneFunction(const Function *F,
Chris Lattnera4c29d22006-01-13 18:39:17 +0000115 std::map<const Value*, Value*> &ValueMap,
116 ClonedCodeInfo *CodeInfo) {
Chris Lattner5a8932f2002-11-19 23:12:22 +0000117 std::vector<const Type*> ArgTypes;
118
119 // The user might be deleting arguments to the function by specifying them in
120 // the ValueMap. If so, we need to not add the arguments to the arg ty vector
121 //
Chris Lattnera4c29d22006-01-13 18:39:17 +0000122 for (Function::const_arg_iterator I = F->arg_begin(), E = F->arg_end();
123 I != E; ++I)
Chris Lattner5a8932f2002-11-19 23:12:22 +0000124 if (ValueMap.count(I) == 0) // Haven't mapped the argument to anything yet?
125 ArgTypes.push_back(I->getType());
126
127 // Create a new function type...
128 FunctionType *FTy = FunctionType::get(F->getFunctionType()->getReturnType(),
129 ArgTypes, F->getFunctionType()->isVarArg());
130
131 // Create the new function...
Chris Lattner4ad02e72003-04-16 20:28:45 +0000132 Function *NewF = new Function(FTy, F->getLinkage(), F->getName());
Misha Brukmanfd939082005-04-21 23:48:37 +0000133
Chris Lattner5a8932f2002-11-19 23:12:22 +0000134 // Loop over the arguments, copying the names of the mapped arguments over...
Chris Lattnere4d5c442005-03-15 04:54:21 +0000135 Function::arg_iterator DestI = NewF->arg_begin();
Chris Lattnera4c29d22006-01-13 18:39:17 +0000136 for (Function::const_arg_iterator I = F->arg_begin(), E = F->arg_end();
137 I != E; ++I)
Chris Lattnerc09aab02002-11-20 18:32:31 +0000138 if (ValueMap.count(I) == 0) { // Is this argument preserved?
Chris Lattner5a8932f2002-11-19 23:12:22 +0000139 DestI->setName(I->getName()); // Copy the name over...
Chris Lattnerc09aab02002-11-20 18:32:31 +0000140 ValueMap[I] = DestI++; // Add mapping to ValueMap
Chris Lattner5a8932f2002-11-19 23:12:22 +0000141 }
142
143 std::vector<ReturnInst*> Returns; // Ignore returns cloned...
Chris Lattnera4c29d22006-01-13 18:39:17 +0000144 CloneFunctionInto(NewF, F, ValueMap, Returns, "", CodeInfo);
Misha Brukmanfd939082005-04-21 23:48:37 +0000145 return NewF;
Chris Lattner5a8932f2002-11-19 23:12:22 +0000146}
Brian Gaeked0fde302003-11-11 22:41:34 +0000147
Chris Lattner83f03bf2006-05-27 01:22:24 +0000148
149
150namespace {
151 /// PruningFunctionCloner - This class is a private class used to implement
152 /// the CloneAndPruneFunctionInto method.
153 struct PruningFunctionCloner {
154 Function *NewFunc;
155 const Function *OldFunc;
156 std::map<const Value*, Value*> &ValueMap;
157 std::vector<ReturnInst*> &Returns;
158 const char *NameSuffix;
159 ClonedCodeInfo *CodeInfo;
160
161 public:
162 PruningFunctionCloner(Function *newFunc, const Function *oldFunc,
163 std::map<const Value*, Value*> &valueMap,
164 std::vector<ReturnInst*> &returns,
165 const char *nameSuffix,
166 ClonedCodeInfo *codeInfo)
167 : NewFunc(newFunc), OldFunc(oldFunc), ValueMap(valueMap), Returns(returns),
168 NameSuffix(nameSuffix), CodeInfo(codeInfo) {
169 }
170
171 /// CloneBlock - The specified block is found to be reachable, clone it and
172 /// anything that it can reach.
173 void CloneBlock(const BasicBlock *BB);
174
175 public:
176 /// ConstantFoldMappedInstruction - Constant fold the specified instruction,
177 /// mapping its operands through ValueMap if they are available.
178 Constant *ConstantFoldMappedInstruction(const Instruction *I);
179 };
180}
181
182/// CloneBlock - The specified block is found to be reachable, clone it and
183/// anything that it can reach.
184void PruningFunctionCloner::CloneBlock(const BasicBlock *BB) {
185 Value *&BBEntry = ValueMap[BB];
186
187 // Have we already cloned this block?
188 if (BBEntry) return;
189
190 // Nope, clone it now.
191 BasicBlock *NewBB;
192 BBEntry = NewBB = new BasicBlock();
193 if (BB->hasName()) NewBB->setName(BB->getName()+NameSuffix);
194
195 bool hasCalls = false, hasDynamicAllocas = false, hasStaticAllocas = false;
196
197 // Loop over all instructions, and copy them over, DCE'ing as we go. This
198 // loop doesn't include the terminator.
Chris Lattner35033ef2006-06-01 19:19:23 +0000199 for (BasicBlock::const_iterator II = BB->begin(), IE = --BB->end();
Chris Lattner83f03bf2006-05-27 01:22:24 +0000200 II != IE; ++II) {
201 // If this instruction constant folds, don't bother cloning the instruction,
202 // instead, just add the constant to the value map.
203 if (Constant *C = ConstantFoldMappedInstruction(II)) {
204 ValueMap[II] = C;
205 continue;
206 }
207
208 Instruction *NewInst = II->clone();
209 if (II->hasName())
210 NewInst->setName(II->getName()+NameSuffix);
211 NewBB->getInstList().push_back(NewInst);
212 ValueMap[II] = NewInst; // Add instruction map to value.
213
214 hasCalls |= isa<CallInst>(II);
215 if (const AllocaInst *AI = dyn_cast<AllocaInst>(II)) {
216 if (isa<ConstantInt>(AI->getArraySize()))
217 hasStaticAllocas = true;
218 else
219 hasDynamicAllocas = true;
220 }
221 }
222
Chris Lattner35033ef2006-06-01 19:19:23 +0000223 // Finally, clone over the terminator.
224 const TerminatorInst *OldTI = BB->getTerminator();
225 bool TerminatorDone = false;
226 if (const BranchInst *BI = dyn_cast<BranchInst>(OldTI)) {
227 if (BI->isConditional()) {
228 // If the condition was a known constant in the callee...
229 ConstantBool *Cond = dyn_cast<ConstantBool>(BI->getCondition());
230 if (Cond == 0) // Or is a known constant in the caller...
231 Cond = dyn_cast_or_null<ConstantBool>(ValueMap[BI->getCondition()]);
232 if (Cond) { // Constant fold to uncond branch!
233 BasicBlock *Dest = BI->getSuccessor(!Cond->getValue());
234 ValueMap[OldTI] = new BranchInst(Dest, NewBB);
235 CloneBlock(Dest);
236 TerminatorDone = true;
237 }
238 }
239 } else if (const SwitchInst *SI = dyn_cast<SwitchInst>(OldTI)) {
240 // If switching on a value known constant in the caller.
241 ConstantInt *Cond = dyn_cast<ConstantInt>(SI->getCondition());
242 if (Cond == 0) // Or known constant after constant prop in the callee...
243 Cond = dyn_cast_or_null<ConstantInt>(ValueMap[SI->getCondition()]);
244 if (Cond) { // Constant fold to uncond branch!
245 BasicBlock *Dest = SI->getSuccessor(SI->findCaseValue(Cond));
246 ValueMap[OldTI] = new BranchInst(Dest, NewBB);
247 CloneBlock(Dest);
248 TerminatorDone = true;
249 }
250 }
251
252 if (!TerminatorDone) {
253 Instruction *NewInst = OldTI->clone();
254 if (OldTI->hasName())
255 NewInst->setName(OldTI->getName()+NameSuffix);
256 NewBB->getInstList().push_back(NewInst);
257 ValueMap[OldTI] = NewInst; // Add instruction map to value.
258
259 // Recursively clone any reachable successor blocks.
260 const TerminatorInst *TI = BB->getTerminator();
261 for (unsigned i = 0, e = TI->getNumSuccessors(); i != e; ++i)
262 CloneBlock(TI->getSuccessor(i));
263 }
264
Chris Lattner83f03bf2006-05-27 01:22:24 +0000265 if (CodeInfo) {
266 CodeInfo->ContainsCalls |= hasCalls;
Chris Lattner35033ef2006-06-01 19:19:23 +0000267 CodeInfo->ContainsUnwinds |= isa<UnwindInst>(OldTI);
Chris Lattner83f03bf2006-05-27 01:22:24 +0000268 CodeInfo->ContainsDynamicAllocas |= hasDynamicAllocas;
269 CodeInfo->ContainsDynamicAllocas |= hasStaticAllocas &&
270 BB != &BB->getParent()->front();
271 }
272
273 if (ReturnInst *RI = dyn_cast<ReturnInst>(NewBB->getTerminator()))
274 Returns.push_back(RI);
Chris Lattner83f03bf2006-05-27 01:22:24 +0000275}
276
277/// ConstantFoldMappedInstruction - Constant fold the specified instruction,
278/// mapping its operands through ValueMap if they are available.
279Constant *PruningFunctionCloner::
280ConstantFoldMappedInstruction(const Instruction *I) {
Reid Spencere4d87aa2006-12-23 06:05:41 +0000281 if (isa<CmpInst>(I)) {
282 if (Constant *Op0 = dyn_cast_or_null<Constant>(MapValue(I->getOperand(0),
283 ValueMap)))
284 if (Constant *Op1 = dyn_cast_or_null<Constant>(MapValue(I->getOperand(1),
285 ValueMap)))
286 return ConstantExpr::getCompare(cast<CmpInst>(I)->getPredicate(), Op0,
287 Op1);
288 return 0;
289 } else if (isa<BinaryOperator>(I) || isa<ShiftInst>(I)) {
Chris Lattner83f03bf2006-05-27 01:22:24 +0000290 if (Constant *Op0 = dyn_cast_or_null<Constant>(MapValue(I->getOperand(0),
291 ValueMap)))
292 if (Constant *Op1 = dyn_cast_or_null<Constant>(MapValue(I->getOperand(1),
293 ValueMap)))
294 return ConstantExpr::get(I->getOpcode(), Op0, Op1);
295 return 0;
296 }
297
298 std::vector<Constant*> Ops;
299 for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i)
300 if (Constant *Op = dyn_cast_or_null<Constant>(MapValue(I->getOperand(i),
301 ValueMap)))
302 Ops.push_back(Op);
303 else
304 return 0; // All operands not constant!
305
Reid Spencere4d87aa2006-12-23 06:05:41 +0000306 return ConstantFoldInstOperands(I, Ops);
Chris Lattner83f03bf2006-05-27 01:22:24 +0000307}
308
Chris Lattner83f03bf2006-05-27 01:22:24 +0000309/// CloneAndPruneFunctionInto - This works exactly like CloneFunctionInto,
310/// except that it does some simple constant prop and DCE on the fly. The
311/// effect of this is to copy significantly less code in cases where (for
312/// example) a function call with constant arguments is inlined, and those
313/// constant arguments cause a significant amount of code in the callee to be
314/// dead. Since this doesn't produce an exactly copy of the input, it can't be
315/// used for things like CloneFunction or CloneModule.
316void llvm::CloneAndPruneFunctionInto(Function *NewFunc, const Function *OldFunc,
317 std::map<const Value*, Value*> &ValueMap,
318 std::vector<ReturnInst*> &Returns,
319 const char *NameSuffix,
320 ClonedCodeInfo *CodeInfo) {
321 assert(NameSuffix && "NameSuffix cannot be null!");
322
323#ifndef NDEBUG
Jeff Cohend41b30d2006-11-05 19:31:28 +0000324 for (Function::const_arg_iterator II = OldFunc->arg_begin(),
325 E = OldFunc->arg_end(); II != E; ++II)
326 assert(ValueMap.count(II) && "No mapping from source argument specified!");
Chris Lattner83f03bf2006-05-27 01:22:24 +0000327#endif
328
329 PruningFunctionCloner PFC(NewFunc, OldFunc, ValueMap, Returns,
330 NameSuffix, CodeInfo);
331
332 // Clone the entry block, and anything recursively reachable from it.
333 PFC.CloneBlock(&OldFunc->getEntryBlock());
334
335 // Loop over all of the basic blocks in the old function. If the block was
336 // reachable, we have cloned it and the old block is now in the value map:
337 // insert it into the new function in the right order. If not, ignore it.
338 //
Chris Lattner35033ef2006-06-01 19:19:23 +0000339 // Defer PHI resolution until rest of function is resolved.
340 std::vector<const PHINode*> PHIToResolve;
Chris Lattner83f03bf2006-05-27 01:22:24 +0000341 for (Function::const_iterator BI = OldFunc->begin(), BE = OldFunc->end();
342 BI != BE; ++BI) {
343 BasicBlock *NewBB = cast_or_null<BasicBlock>(ValueMap[BI]);
344 if (NewBB == 0) continue; // Dead block.
Chris Lattner35033ef2006-06-01 19:19:23 +0000345
Chris Lattner83f03bf2006-05-27 01:22:24 +0000346 // Add the new block to the new function.
347 NewFunc->getBasicBlockList().push_back(NewBB);
348
349 // Loop over all of the instructions in the block, fixing up operand
350 // references as we go. This uses ValueMap to do all the hard work.
351 //
352 BasicBlock::iterator I = NewBB->begin();
353
354 // Handle PHI nodes specially, as we have to remove references to dead
355 // blocks.
356 if (PHINode *PN = dyn_cast<PHINode>(I)) {
Chris Lattner35033ef2006-06-01 19:19:23 +0000357 // Skip over all PHI nodes, remembering them for later.
358 BasicBlock::const_iterator OldI = BI->begin();
359 for (; (PN = dyn_cast<PHINode>(I)); ++I, ++OldI)
360 PHIToResolve.push_back(cast<PHINode>(OldI));
Chris Lattner83f03bf2006-05-27 01:22:24 +0000361 }
362
363 // Otherwise, remap the rest of the instructions normally.
364 for (; I != NewBB->end(); ++I)
365 RemapInstruction(I, ValueMap);
366 }
Chris Lattner35033ef2006-06-01 19:19:23 +0000367
368 // Defer PHI resolution until rest of function is resolved, PHI resolution
369 // requires the CFG to be up-to-date.
370 for (unsigned phino = 0, e = PHIToResolve.size(); phino != e; ) {
371 const PHINode *OPN = PHIToResolve[phino];
Chris Lattner35033ef2006-06-01 19:19:23 +0000372 unsigned NumPreds = OPN->getNumIncomingValues();
Chris Lattner35033ef2006-06-01 19:19:23 +0000373 const BasicBlock *OldBB = OPN->getParent();
374 BasicBlock *NewBB = cast<BasicBlock>(ValueMap[OldBB]);
375
376 // Map operands for blocks that are live and remove operands for blocks
377 // that are dead.
378 for (; phino != PHIToResolve.size() &&
379 PHIToResolve[phino]->getParent() == OldBB; ++phino) {
380 OPN = PHIToResolve[phino];
381 PHINode *PN = cast<PHINode>(ValueMap[OPN]);
382 for (unsigned pred = 0, e = NumPreds; pred != e; ++pred) {
383 if (BasicBlock *MappedBlock =
384 cast_or_null<BasicBlock>(ValueMap[PN->getIncomingBlock(pred)])) {
385 Value *InVal = MapValue(PN->getIncomingValue(pred), ValueMap);
386 assert(InVal && "Unknown input value?");
387 PN->setIncomingValue(pred, InVal);
388 PN->setIncomingBlock(pred, MappedBlock);
389 } else {
390 PN->removeIncomingValue(pred, false);
391 --pred, --e; // Revisit the next entry.
392 }
393 }
394 }
395
396 // The loop above has removed PHI entries for those blocks that are dead
397 // and has updated others. However, if a block is live (i.e. copied over)
398 // but its terminator has been changed to not go to this block, then our
399 // phi nodes will have invalid entries. Update the PHI nodes in this
400 // case.
401 PHINode *PN = cast<PHINode>(NewBB->begin());
402 NumPreds = std::distance(pred_begin(NewBB), pred_end(NewBB));
403 if (NumPreds != PN->getNumIncomingValues()) {
404 assert(NumPreds < PN->getNumIncomingValues());
405 // Count how many times each predecessor comes to this block.
406 std::map<BasicBlock*, unsigned> PredCount;
407 for (pred_iterator PI = pred_begin(NewBB), E = pred_end(NewBB);
408 PI != E; ++PI)
409 --PredCount[*PI];
410
411 // Figure out how many entries to remove from each PHI.
412 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i)
413 ++PredCount[PN->getIncomingBlock(i)];
414
415 // At this point, the excess predecessor entries are positive in the
416 // map. Loop over all of the PHIs and remove excess predecessor
417 // entries.
418 BasicBlock::iterator I = NewBB->begin();
419 for (; (PN = dyn_cast<PHINode>(I)); ++I) {
420 for (std::map<BasicBlock*, unsigned>::iterator PCI =PredCount.begin(),
421 E = PredCount.end(); PCI != E; ++PCI) {
422 BasicBlock *Pred = PCI->first;
423 for (unsigned NumToRemove = PCI->second; NumToRemove; --NumToRemove)
424 PN->removeIncomingValue(Pred, false);
425 }
426 }
427 }
428
429 // If the loops above have made these phi nodes have 0 or 1 operand,
430 // replace them with undef or the input value. We must do this for
431 // correctness, because 0-operand phis are not valid.
432 PN = cast<PHINode>(NewBB->begin());
433 if (PN->getNumIncomingValues() == 0) {
434 BasicBlock::iterator I = NewBB->begin();
435 BasicBlock::const_iterator OldI = OldBB->begin();
436 while ((PN = dyn_cast<PHINode>(I++))) {
437 Value *NV = UndefValue::get(PN->getType());
438 PN->replaceAllUsesWith(NV);
439 assert(ValueMap[OldI] == PN && "ValueMap mismatch");
440 ValueMap[OldI] = NV;
441 PN->eraseFromParent();
442 ++OldI;
443 }
444 } else if (PN->getNumIncomingValues() == 1) {
445 BasicBlock::iterator I = NewBB->begin();
446 BasicBlock::const_iterator OldI = OldBB->begin();
447 while ((PN = dyn_cast<PHINode>(I++))) {
448 Value *NV = PN->getIncomingValue(0);
449 PN->replaceAllUsesWith(NV);
450 assert(ValueMap[OldI] == PN && "ValueMap mismatch");
451 ValueMap[OldI] = NV;
452 PN->eraseFromParent();
453 ++OldI;
454 }
455 }
456 }
Chris Lattnera4646b62006-09-13 21:27:00 +0000457
458 // Now that the inlined function body has been fully constructed, go through
459 // and zap unconditional fall-through branches. This happen all the time when
460 // specializing code: code specialization turns conditional branches into
461 // uncond branches, and this code folds them.
462 Function::iterator I = cast<BasicBlock>(ValueMap[&OldFunc->getEntryBlock()]);
463 while (I != NewFunc->end()) {
464 BranchInst *BI = dyn_cast<BranchInst>(I->getTerminator());
465 if (!BI || BI->isConditional()) { ++I; continue; }
466
467 BasicBlock *Dest = BI->getSuccessor(0);
468 if (!Dest->getSinglePredecessor()) { ++I; continue; }
469
470 // We know all single-entry PHI nodes in the inlined function have been
471 // removed, so we just need to splice the blocks.
472 BI->eraseFromParent();
473
474 // Move all the instructions in the succ to the pred.
475 I->getInstList().splice(I->end(), Dest->getInstList());
476
477 // Make all PHI nodes that referred to Dest now refer to I as their source.
478 Dest->replaceAllUsesWith(I);
479
480 // Remove the dest block.
481 Dest->eraseFromParent();
482
483 // Do not increment I, iteratively merge all things this block branches to.
484 }
Chris Lattner83f03bf2006-05-27 01:22:24 +0000485}