1 //===- LoopSimplify.cpp - Loop Canonicalization Pass ----------------------===// 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 performs several transformations to transform natural loops into a 11 // simpler form, which makes subsequent analyses and transformations simpler and 12 // more effective. 13 // 14 // Loop pre-header insertion guarantees that there is a single, non-critical 15 // entry edge from outside of the loop to the loop header. This simplifies a 16 // number of analyses and transformations, such as LICM. 17 // 18 // Loop exit-block insertion guarantees that all exit blocks from the loop 19 // (blocks which are outside of the loop that have predecessors inside of the 20 // loop) only have predecessors from inside of the loop (and are thus dominated 21 // by the loop header). This simplifies transformations such as store-sinking 22 // that are built into LICM. 23 // 24 // This pass also guarantees that loops will have exactly one backedge. 25 // 26 // Note that the simplifycfg pass will clean up blocks which are split out but 27 // end up being unnecessary, so usage of this pass should not pessimize 28 // generated code. 29 // 30 // This pass obviously modifies the CFG, but updates loop information and 31 // dominator information. 32 // 33 //===----------------------------------------------------------------------===// 34 35 #define DEBUG_TYPE "loopsimplify" 36 #include "llvm/Transforms/Scalar.h" 37 #include "llvm/Constants.h" 38 #include "llvm/Instructions.h" 39 #include "llvm/Function.h" 40 #include "llvm/Type.h" 41 #include "llvm/Analysis/AliasAnalysis.h" 42 #include "llvm/Analysis/Dominators.h" 43 #include "llvm/Analysis/LoopInfo.h" 44 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 45 #include "llvm/Support/CFG.h" 46 #include "llvm/Support/Compiler.h" 47 #include "llvm/ADT/SetOperations.h" 48 #include "llvm/ADT/SetVector.h" 49 #include "llvm/ADT/Statistic.h" 50 #include "llvm/ADT/DepthFirstIterator.h" 51 using namespace llvm; 52 53 STATISTIC(NumInserted, "Number of pre-header or exit blocks inserted"); 54 STATISTIC(NumNested , "Number of nested loops split out"); 55 56 namespace { 57 struct VISIBILITY_HIDDEN LoopSimplify : public FunctionPass { 58 static char ID; // Pass identification, replacement for typeid 59 LoopSimplify() : FunctionPass(&ID) {} 60 61 // AA - If we have an alias analysis object to update, this is it, otherwise 62 // this is null. 63 AliasAnalysis *AA; 64 LoopInfo *LI; 65 DominatorTree *DT; 66 virtual bool runOnFunction(Function &F); 67 68 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 69 // We need loop information to identify the loops... 70 AU.addRequired<LoopInfo>(); 71 AU.addRequired<DominatorTree>(); 72 73 AU.addPreserved<LoopInfo>(); 74 AU.addPreserved<DominatorTree>(); 75 AU.addPreserved<DominanceFrontier>(); 76 AU.addPreserved<AliasAnalysis>(); 77 AU.addPreservedID(BreakCriticalEdgesID); // No critical edges added. 78 } 79 80 /// verifyAnalysis() - Verify loop nest. 81 void verifyAnalysis() const { 82 #ifndef NDEBUG 83 LoopInfo *NLI = &getAnalysis<LoopInfo>(); 84 for (LoopInfo::iterator I = NLI->begin(), E = NLI->end(); I != E; ++I) 85 (*I)->verifyLoop(); 86 #endif 87 } 88 89 private: 90 bool ProcessLoop(Loop *L); 91 BasicBlock *RewriteLoopExitBlock(Loop *L, BasicBlock *Exit); 92 void InsertPreheaderForLoop(Loop *L); 93 Loop *SeparateNestedLoop(Loop *L); 94 void InsertUniqueBackedgeBlock(Loop *L); 95 void PlaceSplitBlockCarefully(BasicBlock *NewBB, 96 SmallVectorImpl<BasicBlock*> &SplitPreds, 97 Loop *L); 98 }; 99 } 100 101 char LoopSimplify::ID = 0; 102 static RegisterPass<LoopSimplify> 103 X("loopsimplify", "Canonicalize natural loops", true); 104 105 // Publically exposed interface to pass... 106 const PassInfo *const llvm::LoopSimplifyID = &X; 107 FunctionPass *llvm::createLoopSimplifyPass() { return new LoopSimplify(); } 108 109 /// runOnFunction - Run down all loops in the CFG (recursively, but we could do 110 /// it in any convenient order) inserting preheaders... 111 /// 112 bool LoopSimplify::runOnFunction(Function &F) { 113 bool Changed = false; 114 LI = &getAnalysis<LoopInfo>(); 115 AA = getAnalysisIfAvailable<AliasAnalysis>(); 116 DT = &getAnalysis<DominatorTree>(); 117 118 // Check to see that no blocks (other than the header) in loops have 119 // predecessors that are not in loops. This is not valid for natural loops, 120 // but can occur if the blocks are unreachable. Since they are unreachable we 121 // can just shamelessly destroy their terminators to make them not branch into 122 // the loop! 123 for (Function::iterator BB = F.begin(), E = F.end(); BB != E; ++BB) { 124 // This case can only occur for unreachable blocks. Blocks that are 125 // unreachable can't be in loops, so filter those blocks out. 126 if (LI->getLoopFor(BB)) continue; 127 128 bool BlockUnreachable = false; 129 TerminatorInst *TI = BB->getTerminator(); 130 131 // Check to see if any successors of this block are non-loop-header loops 132 // that are not the header. 133 for (unsigned i = 0, e = TI->getNumSuccessors(); i != e; ++i) { 134 // If this successor is not in a loop, BB is clearly ok. 135 Loop *L = LI->getLoopFor(TI->getSuccessor(i)); 136 if (!L) continue; 137 138 // If the succ is the loop header, and if L is a top-level loop, then this 139 // is an entrance into a loop through the header, which is also ok. 140 if (L->getHeader() == TI->getSuccessor(i) && L->getParentLoop() == 0) 141 continue; 142 143 // Otherwise, this is an entrance into a loop from some place invalid. 144 // Either the loop structure is invalid and this is not a natural loop (in 145 // which case the compiler is buggy somewhere else) or BB is unreachable. 146 BlockUnreachable = true; 147 break; 148 } 149 150 // If this block is ok, check the next one. 151 if (!BlockUnreachable) continue; 152 153 // Otherwise, this block is dead. To clean up the CFG and to allow later 154 // loop transformations to ignore this case, we delete the edges into the 155 // loop by replacing the terminator. 156 157 // Remove PHI entries from the successors. 158 for (unsigned i = 0, e = TI->getNumSuccessors(); i != e; ++i) 159 TI->getSuccessor(i)->removePredecessor(BB); 160 161 // Add a new unreachable instruction before the old terminator. 162 new UnreachableInst(TI); 163 164 // Delete the dead terminator. 165 if (AA) AA->deleteValue(TI); 166 if (!TI->use_empty()) 167 TI->replaceAllUsesWith(UndefValue::get(TI->getType())); 168 TI->eraseFromParent(); 169 Changed |= true; 170 } 171 172 for (LoopInfo::iterator I = LI->begin(), E = LI->end(); I != E; ++I) 173 Changed |= ProcessLoop(*I); 174 175 return Changed; 176 } 177 178 /// ProcessLoop - Walk the loop structure in depth first order, ensuring that 179 /// all loops have preheaders. 180 /// 181 bool LoopSimplify::ProcessLoop(Loop *L) { 182 bool Changed = false; 183 ReprocessLoop: 184 185 // Canonicalize inner loops before outer loops. Inner loop canonicalization 186 // can provide work for the outer loop to canonicalize. 187 for (Loop::iterator I = L->begin(), E = L->end(); I != E; ++I) 188 Changed |= ProcessLoop(*I); 189 190 assert(L->getBlocks()[0] == L->getHeader() && 191 "Header isn't first block in loop?"); 192 193 // Does the loop already have a preheader? If so, don't insert one. 194 if (L->getLoopPreheader() == 0) { 195 InsertPreheaderForLoop(L); 196 NumInserted++; 197 Changed = true; 198 } 199 200 // Next, check to make sure that all exit nodes of the loop only have 201 // predecessors that are inside of the loop. This check guarantees that the 202 // loop preheader/header will dominate the exit blocks. If the exit block has 203 // predecessors from outside of the loop, split the edge now. 204 SmallVector<BasicBlock*, 8> ExitBlocks; 205 L->getExitBlocks(ExitBlocks); 206 207 SetVector<BasicBlock*> ExitBlockSet(ExitBlocks.begin(), ExitBlocks.end()); 208 for (SetVector<BasicBlock*>::iterator I = ExitBlockSet.begin(), 209 E = ExitBlockSet.end(); I != E; ++I) { 210 BasicBlock *ExitBlock = *I; 211 for (pred_iterator PI = pred_begin(ExitBlock), PE = pred_end(ExitBlock); 212 PI != PE; ++PI) 213 // Must be exactly this loop: no subloops, parent loops, or non-loop preds 214 // allowed. 215 if (!L->contains(*PI)) { 216 RewriteLoopExitBlock(L, ExitBlock); 217 NumInserted++; 218 Changed = true; 219 break; 220 } 221 } 222 223 // If the header has more than two predecessors at this point (from the 224 // preheader and from multiple backedges), we must adjust the loop. 225 unsigned NumBackedges = L->getNumBackEdges(); 226 if (NumBackedges != 1) { 227 // If this is really a nested loop, rip it out into a child loop. Don't do 228 // this for loops with a giant number of backedges, just factor them into a 229 // common backedge instead. 230 if (NumBackedges < 8) { 231 if (Loop *NL = SeparateNestedLoop(L)) { 232 ++NumNested; 233 // This is a big restructuring change, reprocess the whole loop. 234 ProcessLoop(NL); 235 Changed = true; 236 // GCC doesn't tail recursion eliminate this. 237 goto ReprocessLoop; 238 } 239 } 240 241 // If we either couldn't, or didn't want to, identify nesting of the loops, 242 // insert a new block that all backedges target, then make it jump to the 243 // loop header. 244 InsertUniqueBackedgeBlock(L); 245 NumInserted++; 246 Changed = true; 247 } 248 249 // Scan over the PHI nodes in the loop header. Since they now have only two 250 // incoming values (the loop is canonicalized), we may have simplified the PHI 251 // down to 'X = phi [X, Y]', which should be replaced with 'Y'. 252 PHINode *PN; 253 for (BasicBlock::iterator I = L->getHeader()->begin(); 254 (PN = dyn_cast<PHINode>(I++)); ) 255 if (Value *V = PN->hasConstantValue()) { 256 if (AA) AA->deleteValue(PN); 257 PN->replaceAllUsesWith(V); 258 PN->eraseFromParent(); 259 } 260 261 return Changed; 262 } 263 264 /// InsertPreheaderForLoop - Once we discover that a loop doesn't have a 265 /// preheader, this method is called to insert one. This method has two phases: 266 /// preheader insertion and analysis updating. 267 /// 268 void LoopSimplify::InsertPreheaderForLoop(Loop *L) { 269 BasicBlock *Header = L->getHeader(); 270 271 // Compute the set of predecessors of the loop that are not in the loop. 272 SmallVector<BasicBlock*, 8> OutsideBlocks; 273 for (pred_iterator PI = pred_begin(Header), PE = pred_end(Header); 274 PI != PE; ++PI) 275 if (!L->contains(*PI)) // Coming in from outside the loop? 276 OutsideBlocks.push_back(*PI); // Keep track of it... 277 278 // Split out the loop pre-header. 279 BasicBlock *NewBB = 280 SplitBlockPredecessors(Header, &OutsideBlocks[0], OutsideBlocks.size(), 281 ".preheader", this); 282 283 284 //===--------------------------------------------------------------------===// 285 // Update analysis results now that we have performed the transformation 286 // 287 288 // We know that we have loop information to update... update it now. 289 if (Loop *Parent = L->getParentLoop()) 290 Parent->addBasicBlockToLoop(NewBB, LI->getBase()); 291 292 // Make sure that NewBB is put someplace intelligent, which doesn't mess up 293 // code layout too horribly. 294 PlaceSplitBlockCarefully(NewBB, OutsideBlocks, L); 295 } 296 297 /// RewriteLoopExitBlock - Ensure that the loop preheader dominates all exit 298 /// blocks. This method is used to split exit blocks that have predecessors 299 /// outside of the loop. 300 BasicBlock *LoopSimplify::RewriteLoopExitBlock(Loop *L, BasicBlock *Exit) { 301 SmallVector<BasicBlock*, 8> LoopBlocks; 302 for (pred_iterator I = pred_begin(Exit), E = pred_end(Exit); I != E; ++I) 303 if (L->contains(*I)) 304 LoopBlocks.push_back(*I); 305 306 assert(!LoopBlocks.empty() && "No edges coming in from outside the loop?"); 307 BasicBlock *NewBB = SplitBlockPredecessors(Exit, &LoopBlocks[0], 308 LoopBlocks.size(), ".loopexit", 309 this); 310 311 // Update Loop Information - we know that the new block will be in whichever 312 // loop the Exit block is in. Note that it may not be in that immediate loop, 313 // if the successor is some other loop header. In that case, we continue 314 // walking up the loop tree to find a loop that contains both the successor 315 // block and the predecessor block. 316 Loop *SuccLoop = LI->getLoopFor(Exit); 317 while (SuccLoop && !SuccLoop->contains(L->getHeader())) 318 SuccLoop = SuccLoop->getParentLoop(); 319 if (SuccLoop) 320 SuccLoop->addBasicBlockToLoop(NewBB, LI->getBase()); 321 322 return NewBB; 323 } 324 325 /// AddBlockAndPredsToSet - Add the specified block, and all of its 326 /// predecessors, to the specified set, if it's not already in there. Stop 327 /// predecessor traversal when we reach StopBlock. 328 static void AddBlockAndPredsToSet(BasicBlock *InputBB, BasicBlock *StopBlock, 329 std::set<BasicBlock*> &Blocks) { 330 std::vector<BasicBlock *> WorkList; 331 WorkList.push_back(InputBB); 332 do { 333 BasicBlock *BB = WorkList.back(); WorkList.pop_back(); 334 if (Blocks.insert(BB).second && BB != StopBlock) 335 // If BB is not already processed and it is not a stop block then 336 // insert its predecessor in the work list 337 for (pred_iterator I = pred_begin(BB), E = pred_end(BB); I != E; ++I) { 338 BasicBlock *WBB = *I; 339 WorkList.push_back(WBB); 340 } 341 } while(!WorkList.empty()); 342 } 343 344 /// FindPHIToPartitionLoops - The first part of loop-nestification is to find a 345 /// PHI node that tells us how to partition the loops. 346 static PHINode *FindPHIToPartitionLoops(Loop *L, DominatorTree *DT, 347 AliasAnalysis *AA) { 348 for (BasicBlock::iterator I = L->getHeader()->begin(); isa<PHINode>(I); ) { 349 PHINode *PN = cast<PHINode>(I); 350 ++I; 351 if (Value *V = PN->hasConstantValue()) 352 if (!isa<Instruction>(V) || DT->dominates(cast<Instruction>(V), PN)) { 353 // This is a degenerate PHI already, don't modify it! 354 PN->replaceAllUsesWith(V); 355 if (AA) AA->deleteValue(PN); 356 PN->eraseFromParent(); 357 continue; 358 } 359 360 // Scan this PHI node looking for a use of the PHI node by itself. 361 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) 362 if (PN->getIncomingValue(i) == PN && 363 L->contains(PN->getIncomingBlock(i))) 364 // We found something tasty to remove. 365 return PN; 366 } 367 return 0; 368 } 369 370 // PlaceSplitBlockCarefully - If the block isn't already, move the new block to 371 // right after some 'outside block' block. This prevents the preheader from 372 // being placed inside the loop body, e.g. when the loop hasn't been rotated. 373 void LoopSimplify::PlaceSplitBlockCarefully(BasicBlock *NewBB, 374 SmallVectorImpl<BasicBlock*> &SplitPreds, 375 Loop *L) { 376 // Check to see if NewBB is already well placed. 377 Function::iterator BBI = NewBB; --BBI; 378 for (unsigned i = 0, e = SplitPreds.size(); i != e; ++i) { 379 if (&*BBI == SplitPreds[i]) 380 return; 381 } 382 383 // If it isn't already after an outside block, move it after one. This is 384 // always good as it makes the uncond branch from the outside block into a 385 // fall-through. 386 387 // Figure out *which* outside block to put this after. Prefer an outside 388 // block that neighbors a BB actually in the loop. 389 BasicBlock *FoundBB = 0; 390 for (unsigned i = 0, e = SplitPreds.size(); i != e; ++i) { 391 Function::iterator BBI = SplitPreds[i]; 392 if (++BBI != NewBB->getParent()->end() && 393 L->contains(BBI)) { 394 FoundBB = SplitPreds[i]; 395 break; 396 } 397 } 398 399 // If our heuristic for a *good* bb to place this after doesn't find 400 // anything, just pick something. It's likely better than leaving it within 401 // the loop. 402 if (!FoundBB) 403 FoundBB = SplitPreds[0]; 404 NewBB->moveAfter(FoundBB); 405 } 406 407 408 /// SeparateNestedLoop - If this loop has multiple backedges, try to pull one of 409 /// them out into a nested loop. This is important for code that looks like 410 /// this: 411 /// 412 /// Loop: 413 /// ... 414 /// br cond, Loop, Next 415 /// ... 416 /// br cond2, Loop, Out 417 /// 418 /// To identify this common case, we look at the PHI nodes in the header of the 419 /// loop. PHI nodes with unchanging values on one backedge correspond to values 420 /// that change in the "outer" loop, but not in the "inner" loop. 421 /// 422 /// If we are able to separate out a loop, return the new outer loop that was 423 /// created. 424 /// 425 Loop *LoopSimplify::SeparateNestedLoop(Loop *L) { 426 PHINode *PN = FindPHIToPartitionLoops(L, DT, AA); 427 if (PN == 0) return 0; // No known way to partition. 428 429 // Pull out all predecessors that have varying values in the loop. This 430 // handles the case when a PHI node has multiple instances of itself as 431 // arguments. 432 SmallVector<BasicBlock*, 8> OuterLoopPreds; 433 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) 434 if (PN->getIncomingValue(i) != PN || 435 !L->contains(PN->getIncomingBlock(i))) 436 OuterLoopPreds.push_back(PN->getIncomingBlock(i)); 437 438 BasicBlock *Header = L->getHeader(); 439 BasicBlock *NewBB = SplitBlockPredecessors(Header, &OuterLoopPreds[0], 440 OuterLoopPreds.size(), 441 ".outer", this); 442 443 // Make sure that NewBB is put someplace intelligent, which doesn't mess up 444 // code layout too horribly. 445 PlaceSplitBlockCarefully(NewBB, OuterLoopPreds, L); 446 447 // Create the new outer loop. 448 Loop *NewOuter = new Loop(); 449 450 // Change the parent loop to use the outer loop as its child now. 451 if (Loop *Parent = L->getParentLoop()) 452 Parent->replaceChildLoopWith(L, NewOuter); 453 else 454 LI->changeTopLevelLoop(L, NewOuter); 455 456 // This block is going to be our new header block: add it to this loop and all 457 // parent loops. 458 NewOuter->addBasicBlockToLoop(NewBB, LI->getBase()); 459 460 // L is now a subloop of our outer loop. 461 NewOuter->addChildLoop(L); 462 463 for (Loop::block_iterator I = L->block_begin(), E = L->block_end(); 464 I != E; ++I) 465 NewOuter->addBlockEntry(*I); 466 467 // Determine which blocks should stay in L and which should be moved out to 468 // the Outer loop now. 469 std::set<BasicBlock*> BlocksInL; 470 for (pred_iterator PI = pred_begin(Header), E = pred_end(Header); PI!=E; ++PI) 471 if (DT->dominates(Header, *PI)) 472 AddBlockAndPredsToSet(*PI, Header, BlocksInL); 473 474 475 // Scan all of the loop children of L, moving them to OuterLoop if they are 476 // not part of the inner loop. 477 const std::vector<Loop*> &SubLoops = L->getSubLoops(); 478 for (size_t I = 0; I != SubLoops.size(); ) 479 if (BlocksInL.count(SubLoops[I]->getHeader())) 480 ++I; // Loop remains in L 481 else 482 NewOuter->addChildLoop(L->removeChildLoop(SubLoops.begin() + I)); 483 484 // Now that we know which blocks are in L and which need to be moved to 485 // OuterLoop, move any blocks that need it. 486 for (unsigned i = 0; i != L->getBlocks().size(); ++i) { 487 BasicBlock *BB = L->getBlocks()[i]; 488 if (!BlocksInL.count(BB)) { 489 // Move this block to the parent, updating the exit blocks sets 490 L->removeBlockFromLoop(BB); 491 if ((*LI)[BB] == L) 492 LI->changeLoopFor(BB, NewOuter); 493 --i; 494 } 495 } 496 497 return NewOuter; 498 } 499 500 501 502 /// InsertUniqueBackedgeBlock - This method is called when the specified loop 503 /// has more than one backedge in it. If this occurs, revector all of these 504 /// backedges to target a new basic block and have that block branch to the loop 505 /// header. This ensures that loops have exactly one backedge. 506 /// 507 void LoopSimplify::InsertUniqueBackedgeBlock(Loop *L) { 508 assert(L->getNumBackEdges() > 1 && "Must have > 1 backedge!"); 509 510 // Get information about the loop 511 BasicBlock *Preheader = L->getLoopPreheader(); 512 BasicBlock *Header = L->getHeader(); 513 Function *F = Header->getParent(); 514 515 // Figure out which basic blocks contain back-edges to the loop header. 516 std::vector<BasicBlock*> BackedgeBlocks; 517 for (pred_iterator I = pred_begin(Header), E = pred_end(Header); I != E; ++I) 518 if (*I != Preheader) BackedgeBlocks.push_back(*I); 519 520 // Create and insert the new backedge block... 521 BasicBlock *BEBlock = BasicBlock::Create(Header->getName()+".backedge", F); 522 BranchInst *BETerminator = BranchInst::Create(Header, BEBlock); 523 524 // Move the new backedge block to right after the last backedge block. 525 Function::iterator InsertPos = BackedgeBlocks.back(); ++InsertPos; 526 F->getBasicBlockList().splice(InsertPos, F->getBasicBlockList(), BEBlock); 527 528 // Now that the block has been inserted into the function, create PHI nodes in 529 // the backedge block which correspond to any PHI nodes in the header block. 530 for (BasicBlock::iterator I = Header->begin(); isa<PHINode>(I); ++I) { 531 PHINode *PN = cast<PHINode>(I); 532 PHINode *NewPN = PHINode::Create(PN->getType(), PN->getName()+".be", 533 BETerminator); 534 NewPN->reserveOperandSpace(BackedgeBlocks.size()); 535 if (AA) AA->copyValue(PN, NewPN); 536 537 // Loop over the PHI node, moving all entries except the one for the 538 // preheader over to the new PHI node. 539 unsigned PreheaderIdx = ~0U; 540 bool HasUniqueIncomingValue = true; 541 Value *UniqueValue = 0; 542 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) { 543 BasicBlock *IBB = PN->getIncomingBlock(i); 544 Value *IV = PN->getIncomingValue(i); 545 if (IBB == Preheader) { 546 PreheaderIdx = i; 547 } else { 548 NewPN->addIncoming(IV, IBB); 549 if (HasUniqueIncomingValue) { 550 if (UniqueValue == 0) 551 UniqueValue = IV; 552 else if (UniqueValue != IV) 553 HasUniqueIncomingValue = false; 554 } 555 } 556 } 557 558 // Delete all of the incoming values from the old PN except the preheader's 559 assert(PreheaderIdx != ~0U && "PHI has no preheader entry??"); 560 if (PreheaderIdx != 0) { 561 PN->setIncomingValue(0, PN->getIncomingValue(PreheaderIdx)); 562 PN->setIncomingBlock(0, PN->getIncomingBlock(PreheaderIdx)); 563 } 564 // Nuke all entries except the zero'th. 565 for (unsigned i = 0, e = PN->getNumIncomingValues()-1; i != e; ++i) 566 PN->removeIncomingValue(e-i, false); 567 568 // Finally, add the newly constructed PHI node as the entry for the BEBlock. 569 PN->addIncoming(NewPN, BEBlock); 570 571 // As an optimization, if all incoming values in the new PhiNode (which is a 572 // subset of the incoming values of the old PHI node) have the same value, 573 // eliminate the PHI Node. 574 if (HasUniqueIncomingValue) { 575 NewPN->replaceAllUsesWith(UniqueValue); 576 if (AA) AA->deleteValue(NewPN); 577 BEBlock->getInstList().erase(NewPN); 578 } 579 } 580 581 // Now that all of the PHI nodes have been inserted and adjusted, modify the 582 // backedge blocks to just to the BEBlock instead of the header. 583 for (unsigned i = 0, e = BackedgeBlocks.size(); i != e; ++i) { 584 TerminatorInst *TI = BackedgeBlocks[i]->getTerminator(); 585 for (unsigned Op = 0, e = TI->getNumSuccessors(); Op != e; ++Op) 586 if (TI->getSuccessor(Op) == Header) 587 TI->setSuccessor(Op, BEBlock); 588 } 589 590 //===--- Update all analyses which we must preserve now -----------------===// 591 592 // Update Loop Information - we know that this block is now in the current 593 // loop and all parent loops. 594 L->addBasicBlockToLoop(BEBlock, LI->getBase()); 595 596 // Update dominator information 597 DT->splitBlock(BEBlock); 598 if (DominanceFrontier *DF = getAnalysisIfAvailable<DominanceFrontier>()) 599 DF->splitBlock(BEBlock); 600 } 601