1 //===-- UnrollLoop.cpp - Loop unrolling utilities -------------------------===// 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 file implements some loop unrolling utilities. It does not define any 11 // actual pass or policy, but provides a single function to perform loop 12 // unrolling. 13 // 14 // The process of unrolling can produce extraneous basic blocks linked with 15 // unconditional branches. This will be corrected in the future. 16 // 17 //===----------------------------------------------------------------------===// 18 19 #include "llvm/Transforms/Utils/UnrollLoop.h" 20 #include "llvm/ADT/SmallPtrSet.h" 21 #include "llvm/ADT/Statistic.h" 22 #include "llvm/Analysis/AssumptionCache.h" 23 #include "llvm/Analysis/InstructionSimplify.h" 24 #include "llvm/Analysis/LoopIterator.h" 25 #include "llvm/Analysis/LoopPass.h" 26 #include "llvm/Analysis/OptimizationDiagnosticInfo.h" 27 #include "llvm/Analysis/ScalarEvolution.h" 28 #include "llvm/IR/BasicBlock.h" 29 #include "llvm/IR/DataLayout.h" 30 #include "llvm/IR/Dominators.h" 31 #include "llvm/IR/LLVMContext.h" 32 #include "llvm/Support/Debug.h" 33 #include "llvm/Support/raw_ostream.h" 34 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 35 #include "llvm/Transforms/Utils/Cloning.h" 36 #include "llvm/Transforms/Utils/Local.h" 37 #include "llvm/Transforms/Utils/LoopSimplify.h" 38 #include "llvm/Transforms/Utils/LoopUtils.h" 39 #include "llvm/Transforms/Utils/SimplifyIndVar.h" 40 using namespace llvm; 41 42 #define DEBUG_TYPE "loop-unroll" 43 44 // TODO: Should these be here or in LoopUnroll? 45 STATISTIC(NumCompletelyUnrolled, "Number of loops completely unrolled"); 46 STATISTIC(NumUnrolled, "Number of loops unrolled (completely or otherwise)"); 47 48 static cl::opt<bool> 49 UnrollRuntimeEpilog("unroll-runtime-epilog", cl::init(false), cl::Hidden, 50 cl::desc("Allow runtime unrolled loops to be unrolled " 51 "with epilog instead of prolog.")); 52 53 /// Convert the instruction operands from referencing the current values into 54 /// those specified by VMap. 55 static inline void remapInstruction(Instruction *I, 56 ValueToValueMapTy &VMap) { 57 for (unsigned op = 0, E = I->getNumOperands(); op != E; ++op) { 58 Value *Op = I->getOperand(op); 59 ValueToValueMapTy::iterator It = VMap.find(Op); 60 if (It != VMap.end()) 61 I->setOperand(op, It->second); 62 } 63 64 if (PHINode *PN = dyn_cast<PHINode>(I)) { 65 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) { 66 ValueToValueMapTy::iterator It = VMap.find(PN->getIncomingBlock(i)); 67 if (It != VMap.end()) 68 PN->setIncomingBlock(i, cast<BasicBlock>(It->second)); 69 } 70 } 71 } 72 73 /// Folds a basic block into its predecessor if it only has one predecessor, and 74 /// that predecessor only has one successor. 75 /// The LoopInfo Analysis that is passed will be kept consistent. If folding is 76 /// successful references to the containing loop must be removed from 77 /// ScalarEvolution by calling ScalarEvolution::forgetLoop because SE may have 78 /// references to the eliminated BB. The argument ForgottenLoops contains a set 79 /// of loops that have already been forgotten to prevent redundant, expensive 80 /// calls to ScalarEvolution::forgetLoop. Returns the new combined block. 81 static BasicBlock * 82 foldBlockIntoPredecessor(BasicBlock *BB, LoopInfo *LI, ScalarEvolution *SE, 83 SmallPtrSetImpl<Loop *> &ForgottenLoops, 84 DominatorTree *DT) { 85 // Merge basic blocks into their predecessor if there is only one distinct 86 // pred, and if there is only one distinct successor of the predecessor, and 87 // if there are no PHI nodes. 88 BasicBlock *OnlyPred = BB->getSinglePredecessor(); 89 if (!OnlyPred) return nullptr; 90 91 if (OnlyPred->getTerminator()->getNumSuccessors() != 1) 92 return nullptr; 93 94 DEBUG(dbgs() << "Merging: " << *BB << "into: " << *OnlyPred); 95 96 // Resolve any PHI nodes at the start of the block. They are all 97 // guaranteed to have exactly one entry if they exist, unless there are 98 // multiple duplicate (but guaranteed to be equal) entries for the 99 // incoming edges. This occurs when there are multiple edges from 100 // OnlyPred to OnlySucc. 101 FoldSingleEntryPHINodes(BB); 102 103 // Delete the unconditional branch from the predecessor... 104 OnlyPred->getInstList().pop_back(); 105 106 // Make all PHI nodes that referred to BB now refer to Pred as their 107 // source... 108 BB->replaceAllUsesWith(OnlyPred); 109 110 // Move all definitions in the successor to the predecessor... 111 OnlyPred->getInstList().splice(OnlyPred->end(), BB->getInstList()); 112 113 // OldName will be valid until erased. 114 StringRef OldName = BB->getName(); 115 116 // Erase the old block and update dominator info. 117 if (DT) 118 if (DomTreeNode *DTN = DT->getNode(BB)) { 119 DomTreeNode *PredDTN = DT->getNode(OnlyPred); 120 SmallVector<DomTreeNode *, 8> Children(DTN->begin(), DTN->end()); 121 for (auto *DI : Children) 122 DT->changeImmediateDominator(DI, PredDTN); 123 124 DT->eraseNode(BB); 125 } 126 127 // ScalarEvolution holds references to loop exit blocks. 128 if (SE) { 129 if (Loop *L = LI->getLoopFor(BB)) { 130 if (ForgottenLoops.insert(L).second) 131 SE->forgetLoop(L); 132 } 133 } 134 LI->removeBlock(BB); 135 136 // Inherit predecessor's name if it exists... 137 if (!OldName.empty() && !OnlyPred->hasName()) 138 OnlyPred->setName(OldName); 139 140 BB->eraseFromParent(); 141 142 return OnlyPred; 143 } 144 145 /// Check if unrolling created a situation where we need to insert phi nodes to 146 /// preserve LCSSA form. 147 /// \param Blocks is a vector of basic blocks representing unrolled loop. 148 /// \param L is the outer loop. 149 /// It's possible that some of the blocks are in L, and some are not. In this 150 /// case, if there is a use is outside L, and definition is inside L, we need to 151 /// insert a phi-node, otherwise LCSSA will be broken. 152 /// The function is just a helper function for llvm::UnrollLoop that returns 153 /// true if this situation occurs, indicating that LCSSA needs to be fixed. 154 static bool needToInsertPhisForLCSSA(Loop *L, std::vector<BasicBlock *> Blocks, 155 LoopInfo *LI) { 156 for (BasicBlock *BB : Blocks) { 157 if (LI->getLoopFor(BB) == L) 158 continue; 159 for (Instruction &I : *BB) { 160 for (Use &U : I.operands()) { 161 if (auto Def = dyn_cast<Instruction>(U)) { 162 Loop *DefLoop = LI->getLoopFor(Def->getParent()); 163 if (!DefLoop) 164 continue; 165 if (DefLoop->contains(L)) 166 return true; 167 } 168 } 169 } 170 } 171 return false; 172 } 173 174 /// Unroll the given loop by Count. The loop must be in LCSSA form. Returns true 175 /// if unrolling was successful, or false if the loop was unmodified. Unrolling 176 /// can only fail when the loop's latch block is not terminated by a conditional 177 /// branch instruction. However, if the trip count (and multiple) are not known, 178 /// loop unrolling will mostly produce more code that is no faster. 179 /// 180 /// TripCount is generally defined as the number of times the loop header 181 /// executes. UnrollLoop relaxes the definition to permit early exits: here 182 /// TripCount is the iteration on which control exits LatchBlock if no early 183 /// exits were taken. Note that UnrollLoop assumes that the loop counter test 184 /// terminates LatchBlock in order to remove unnecesssary instances of the 185 /// test. In other words, control may exit the loop prior to TripCount 186 /// iterations via an early branch, but control may not exit the loop from the 187 /// LatchBlock's terminator prior to TripCount iterations. 188 /// 189 /// Similarly, TripMultiple divides the number of times that the LatchBlock may 190 /// execute without exiting the loop. 191 /// 192 /// If AllowRuntime is true then UnrollLoop will consider unrolling loops that 193 /// have a runtime (i.e. not compile time constant) trip count. Unrolling these 194 /// loops require a unroll "prologue" that runs "RuntimeTripCount % Count" 195 /// iterations before branching into the unrolled loop. UnrollLoop will not 196 /// runtime-unroll the loop if computing RuntimeTripCount will be expensive and 197 /// AllowExpensiveTripCount is false. 198 /// 199 /// The LoopInfo Analysis that is passed will be kept consistent. 200 /// 201 /// This utility preserves LoopInfo. It will also preserve ScalarEvolution and 202 /// DominatorTree if they are non-null. 203 bool llvm::UnrollLoop(Loop *L, unsigned Count, unsigned TripCount, bool Force, 204 bool AllowRuntime, bool AllowExpensiveTripCount, 205 unsigned TripMultiple, LoopInfo *LI, ScalarEvolution *SE, 206 DominatorTree *DT, AssumptionCache *AC, 207 OptimizationRemarkEmitter *ORE, bool PreserveLCSSA) { 208 BasicBlock *Preheader = L->getLoopPreheader(); 209 if (!Preheader) { 210 DEBUG(dbgs() << " Can't unroll; loop preheader-insertion failed.\n"); 211 return false; 212 } 213 214 BasicBlock *LatchBlock = L->getLoopLatch(); 215 if (!LatchBlock) { 216 DEBUG(dbgs() << " Can't unroll; loop exit-block-insertion failed.\n"); 217 return false; 218 } 219 220 // Loops with indirectbr cannot be cloned. 221 if (!L->isSafeToClone()) { 222 DEBUG(dbgs() << " Can't unroll; Loop body cannot be cloned.\n"); 223 return false; 224 } 225 226 BasicBlock *Header = L->getHeader(); 227 BranchInst *BI = dyn_cast<BranchInst>(LatchBlock->getTerminator()); 228 229 if (!BI || BI->isUnconditional()) { 230 // The loop-rotate pass can be helpful to avoid this in many cases. 231 DEBUG(dbgs() << 232 " Can't unroll; loop not terminated by a conditional branch.\n"); 233 return false; 234 } 235 236 if (Header->hasAddressTaken()) { 237 // The loop-rotate pass can be helpful to avoid this in many cases. 238 DEBUG(dbgs() << 239 " Won't unroll loop: address of header block is taken.\n"); 240 return false; 241 } 242 243 if (TripCount != 0) 244 DEBUG(dbgs() << " Trip Count = " << TripCount << "\n"); 245 if (TripMultiple != 1) 246 DEBUG(dbgs() << " Trip Multiple = " << TripMultiple << "\n"); 247 248 // Effectively "DCE" unrolled iterations that are beyond the tripcount 249 // and will never be executed. 250 if (TripCount != 0 && Count > TripCount) 251 Count = TripCount; 252 253 // Don't enter the unroll code if there is nothing to do. This way we don't 254 // need to support "partial unrolling by 1". 255 if (TripCount == 0 && Count < 2) 256 return false; 257 258 assert(Count > 0); 259 assert(TripMultiple > 0); 260 assert(TripCount == 0 || TripCount % TripMultiple == 0); 261 262 // Are we eliminating the loop control altogether? 263 bool CompletelyUnroll = Count == TripCount; 264 SmallVector<BasicBlock *, 4> ExitBlocks; 265 L->getExitBlocks(ExitBlocks); 266 std::vector<BasicBlock*> OriginalLoopBlocks = L->getBlocks(); 267 268 // Go through all exits of L and see if there are any phi-nodes there. We just 269 // conservatively assume that they're inserted to preserve LCSSA form, which 270 // means that complete unrolling might break this form. We need to either fix 271 // it in-place after the transformation, or entirely rebuild LCSSA. TODO: For 272 // now we just recompute LCSSA for the outer loop, but it should be possible 273 // to fix it in-place. 274 bool NeedToFixLCSSA = PreserveLCSSA && CompletelyUnroll && 275 std::any_of(ExitBlocks.begin(), ExitBlocks.end(), 276 [&](BasicBlock *BB) { return isa<PHINode>(BB->begin()); }); 277 278 // We assume a run-time trip count if the compiler cannot 279 // figure out the loop trip count and the unroll-runtime 280 // flag is specified. 281 bool RuntimeTripCount = (TripCount == 0 && Count > 0 && AllowRuntime); 282 283 // Loops containing convergent instructions must have a count that divides 284 // their TripMultiple. 285 DEBUG( 286 { 287 bool HasConvergent = false; 288 for (auto &BB : L->blocks()) 289 for (auto &I : *BB) 290 if (auto CS = CallSite(&I)) 291 HasConvergent |= CS.isConvergent(); 292 assert((!HasConvergent || TripMultiple % Count == 0) && 293 "Unroll count must divide trip multiple if loop contains a " 294 "convergent operation."); 295 }); 296 // Don't output the runtime loop remainder if Count is a multiple of 297 // TripMultiple. Such a remainder is never needed, and is unsafe if the loop 298 // contains a convergent instruction. 299 if (RuntimeTripCount && TripMultiple % Count != 0 && 300 !UnrollRuntimeLoopRemainder(L, Count, AllowExpensiveTripCount, 301 UnrollRuntimeEpilog, LI, SE, DT, 302 PreserveLCSSA)) { 303 if (Force) 304 RuntimeTripCount = false; 305 else 306 return false; 307 } 308 309 // Notify ScalarEvolution that the loop will be substantially changed, 310 // if not outright eliminated. 311 if (SE) 312 SE->forgetLoop(L); 313 314 // If we know the trip count, we know the multiple... 315 unsigned BreakoutTrip = 0; 316 if (TripCount != 0) { 317 BreakoutTrip = TripCount % Count; 318 TripMultiple = 0; 319 } else { 320 // Figure out what multiple to use. 321 BreakoutTrip = TripMultiple = 322 (unsigned)GreatestCommonDivisor64(Count, TripMultiple); 323 } 324 325 // Report the unrolling decision. 326 if (CompletelyUnroll) { 327 DEBUG(dbgs() << "COMPLETELY UNROLLING loop %" << Header->getName() 328 << " with trip count " << TripCount << "!\n"); 329 ORE->emitOptimizationRemark(DEBUG_TYPE, L, 330 Twine("completely unrolled loop with ") + 331 Twine(TripCount) + " iterations"); 332 } else { 333 auto EmitDiag = [&](const Twine &T) { 334 ORE->emitOptimizationRemark( 335 DEBUG_TYPE, L, "unrolled loop by a factor of " + Twine(Count) + T); 336 }; 337 338 DEBUG(dbgs() << "UNROLLING loop %" << Header->getName() 339 << " by " << Count); 340 if (TripMultiple == 0 || BreakoutTrip != TripMultiple) { 341 DEBUG(dbgs() << " with a breakout at trip " << BreakoutTrip); 342 EmitDiag(" with a breakout at trip " + Twine(BreakoutTrip)); 343 } else if (TripMultiple != 1) { 344 DEBUG(dbgs() << " with " << TripMultiple << " trips per branch"); 345 EmitDiag(" with " + Twine(TripMultiple) + " trips per branch"); 346 } else if (RuntimeTripCount) { 347 DEBUG(dbgs() << " with run-time trip count"); 348 EmitDiag(" with run-time trip count"); 349 } 350 DEBUG(dbgs() << "!\n"); 351 } 352 353 bool ContinueOnTrue = L->contains(BI->getSuccessor(0)); 354 BasicBlock *LoopExit = BI->getSuccessor(ContinueOnTrue); 355 356 // For the first iteration of the loop, we should use the precloned values for 357 // PHI nodes. Insert associations now. 358 ValueToValueMapTy LastValueMap; 359 std::vector<PHINode*> OrigPHINode; 360 for (BasicBlock::iterator I = Header->begin(); isa<PHINode>(I); ++I) { 361 OrigPHINode.push_back(cast<PHINode>(I)); 362 } 363 364 std::vector<BasicBlock*> Headers; 365 std::vector<BasicBlock*> Latches; 366 Headers.push_back(Header); 367 Latches.push_back(LatchBlock); 368 369 // The current on-the-fly SSA update requires blocks to be processed in 370 // reverse postorder so that LastValueMap contains the correct value at each 371 // exit. 372 LoopBlocksDFS DFS(L); 373 DFS.perform(LI); 374 375 // Stash the DFS iterators before adding blocks to the loop. 376 LoopBlocksDFS::RPOIterator BlockBegin = DFS.beginRPO(); 377 LoopBlocksDFS::RPOIterator BlockEnd = DFS.endRPO(); 378 379 std::vector<BasicBlock*> UnrolledLoopBlocks = L->getBlocks(); 380 381 // Loop Unrolling might create new loops. While we do preserve LoopInfo, we 382 // might break loop-simplified form for these loops (as they, e.g., would 383 // share the same exit blocks). We'll keep track of loops for which we can 384 // break this so that later we can re-simplify them. 385 SmallSetVector<Loop *, 4> LoopsToSimplify; 386 for (Loop *SubLoop : *L) 387 LoopsToSimplify.insert(SubLoop); 388 389 for (unsigned It = 1; It != Count; ++It) { 390 std::vector<BasicBlock*> NewBlocks; 391 SmallDenseMap<const Loop *, Loop *, 4> NewLoops; 392 NewLoops[L] = L; 393 394 for (LoopBlocksDFS::RPOIterator BB = BlockBegin; BB != BlockEnd; ++BB) { 395 ValueToValueMapTy VMap; 396 BasicBlock *New = CloneBasicBlock(*BB, VMap, "." + Twine(It)); 397 Header->getParent()->getBasicBlockList().push_back(New); 398 399 // Tell LI about New. 400 if (*BB == Header) { 401 assert(LI->getLoopFor(*BB) == L && "Header should not be in a sub-loop"); 402 L->addBasicBlockToLoop(New, *LI); 403 } else { 404 // Figure out which loop New is in. 405 const Loop *OldLoop = LI->getLoopFor(*BB); 406 assert(OldLoop && "Should (at least) be in the loop being unrolled!"); 407 408 Loop *&NewLoop = NewLoops[OldLoop]; 409 if (!NewLoop) { 410 // Found a new sub-loop. 411 assert(*BB == OldLoop->getHeader() && 412 "Header should be first in RPO"); 413 414 Loop *NewLoopParent = NewLoops.lookup(OldLoop->getParentLoop()); 415 assert(NewLoopParent && 416 "Expected parent loop before sub-loop in RPO"); 417 NewLoop = new Loop; 418 NewLoopParent->addChildLoop(NewLoop); 419 LoopsToSimplify.insert(NewLoop); 420 421 // Forget the old loop, since its inputs may have changed. 422 if (SE) 423 SE->forgetLoop(OldLoop); 424 } 425 NewLoop->addBasicBlockToLoop(New, *LI); 426 } 427 428 if (*BB == Header) 429 // Loop over all of the PHI nodes in the block, changing them to use 430 // the incoming values from the previous block. 431 for (PHINode *OrigPHI : OrigPHINode) { 432 PHINode *NewPHI = cast<PHINode>(VMap[OrigPHI]); 433 Value *InVal = NewPHI->getIncomingValueForBlock(LatchBlock); 434 if (Instruction *InValI = dyn_cast<Instruction>(InVal)) 435 if (It > 1 && L->contains(InValI)) 436 InVal = LastValueMap[InValI]; 437 VMap[OrigPHI] = InVal; 438 New->getInstList().erase(NewPHI); 439 } 440 441 // Update our running map of newest clones 442 LastValueMap[*BB] = New; 443 for (ValueToValueMapTy::iterator VI = VMap.begin(), VE = VMap.end(); 444 VI != VE; ++VI) 445 LastValueMap[VI->first] = VI->second; 446 447 // Add phi entries for newly created values to all exit blocks. 448 for (BasicBlock *Succ : successors(*BB)) { 449 if (L->contains(Succ)) 450 continue; 451 for (BasicBlock::iterator BBI = Succ->begin(); 452 PHINode *phi = dyn_cast<PHINode>(BBI); ++BBI) { 453 Value *Incoming = phi->getIncomingValueForBlock(*BB); 454 ValueToValueMapTy::iterator It = LastValueMap.find(Incoming); 455 if (It != LastValueMap.end()) 456 Incoming = It->second; 457 phi->addIncoming(Incoming, New); 458 } 459 } 460 // Keep track of new headers and latches as we create them, so that 461 // we can insert the proper branches later. 462 if (*BB == Header) 463 Headers.push_back(New); 464 if (*BB == LatchBlock) 465 Latches.push_back(New); 466 467 NewBlocks.push_back(New); 468 UnrolledLoopBlocks.push_back(New); 469 470 // Update DomTree: since we just copy the loop body, and each copy has a 471 // dedicated entry block (copy of the header block), this header's copy 472 // dominates all copied blocks. That means, dominance relations in the 473 // copied body are the same as in the original body. 474 if (DT) { 475 if (*BB == Header) 476 DT->addNewBlock(New, Latches[It - 1]); 477 else { 478 auto BBDomNode = DT->getNode(*BB); 479 auto BBIDom = BBDomNode->getIDom(); 480 BasicBlock *OriginalBBIDom = BBIDom->getBlock(); 481 DT->addNewBlock( 482 New, cast<BasicBlock>(LastValueMap[cast<Value>(OriginalBBIDom)])); 483 } 484 } 485 } 486 487 // Remap all instructions in the most recent iteration 488 for (BasicBlock *NewBlock : NewBlocks) 489 for (Instruction &I : *NewBlock) 490 ::remapInstruction(&I, LastValueMap); 491 } 492 493 // Loop over the PHI nodes in the original block, setting incoming values. 494 for (PHINode *PN : OrigPHINode) { 495 if (CompletelyUnroll) { 496 PN->replaceAllUsesWith(PN->getIncomingValueForBlock(Preheader)); 497 Header->getInstList().erase(PN); 498 } 499 else if (Count > 1) { 500 Value *InVal = PN->removeIncomingValue(LatchBlock, false); 501 // If this value was defined in the loop, take the value defined by the 502 // last iteration of the loop. 503 if (Instruction *InValI = dyn_cast<Instruction>(InVal)) { 504 if (L->contains(InValI)) 505 InVal = LastValueMap[InVal]; 506 } 507 assert(Latches.back() == LastValueMap[LatchBlock] && "bad last latch"); 508 PN->addIncoming(InVal, Latches.back()); 509 } 510 } 511 512 // Now that all the basic blocks for the unrolled iterations are in place, 513 // set up the branches to connect them. 514 for (unsigned i = 0, e = Latches.size(); i != e; ++i) { 515 // The original branch was replicated in each unrolled iteration. 516 BranchInst *Term = cast<BranchInst>(Latches[i]->getTerminator()); 517 518 // The branch destination. 519 unsigned j = (i + 1) % e; 520 BasicBlock *Dest = Headers[j]; 521 bool NeedConditional = true; 522 523 if (RuntimeTripCount && j != 0) { 524 NeedConditional = false; 525 } 526 527 // For a complete unroll, make the last iteration end with a branch 528 // to the exit block. 529 if (CompletelyUnroll) { 530 if (j == 0) 531 Dest = LoopExit; 532 NeedConditional = false; 533 } 534 535 // If we know the trip count or a multiple of it, we can safely use an 536 // unconditional branch for some iterations. 537 if (j != BreakoutTrip && (TripMultiple == 0 || j % TripMultiple != 0)) { 538 NeedConditional = false; 539 } 540 541 if (NeedConditional) { 542 // Update the conditional branch's successor for the following 543 // iteration. 544 Term->setSuccessor(!ContinueOnTrue, Dest); 545 } else { 546 // Remove phi operands at this loop exit 547 if (Dest != LoopExit) { 548 BasicBlock *BB = Latches[i]; 549 for (BasicBlock *Succ: successors(BB)) { 550 if (Succ == Headers[i]) 551 continue; 552 for (BasicBlock::iterator BBI = Succ->begin(); 553 PHINode *Phi = dyn_cast<PHINode>(BBI); ++BBI) { 554 Phi->removeIncomingValue(BB, false); 555 } 556 } 557 } 558 // Replace the conditional branch with an unconditional one. 559 BranchInst::Create(Dest, Term); 560 Term->eraseFromParent(); 561 } 562 } 563 // Update dominators of blocks we might reach through exits. 564 // Immediate dominator of such block might change, because we add more 565 // routes which can lead to the exit: we can now reach it from the copied 566 // iterations too. Thus, the new idom of the block will be the nearest 567 // common dominator of the previous idom and common dominator of all copies of 568 // the previous idom. This is equivalent to the nearest common dominator of 569 // the previous idom and the first latch, which dominates all copies of the 570 // previous idom. 571 if (DT && Count > 1) { 572 for (auto *BB : OriginalLoopBlocks) { 573 auto *BBDomNode = DT->getNode(BB); 574 SmallVector<BasicBlock *, 16> ChildrenToUpdate; 575 for (auto *ChildDomNode : BBDomNode->getChildren()) { 576 auto *ChildBB = ChildDomNode->getBlock(); 577 if (!L->contains(ChildBB)) 578 ChildrenToUpdate.push_back(ChildBB); 579 } 580 BasicBlock *NewIDom = DT->findNearestCommonDominator(BB, Latches[0]); 581 for (auto *ChildBB : ChildrenToUpdate) 582 DT->changeImmediateDominator(ChildBB, NewIDom); 583 } 584 } 585 586 // Merge adjacent basic blocks, if possible. 587 SmallPtrSet<Loop *, 4> ForgottenLoops; 588 for (BasicBlock *Latch : Latches) { 589 BranchInst *Term = cast<BranchInst>(Latch->getTerminator()); 590 if (Term->isUnconditional()) { 591 BasicBlock *Dest = Term->getSuccessor(0); 592 if (BasicBlock *Fold = 593 foldBlockIntoPredecessor(Dest, LI, SE, ForgottenLoops, DT)) { 594 // Dest has been folded into Fold. Update our worklists accordingly. 595 std::replace(Latches.begin(), Latches.end(), Dest, Fold); 596 UnrolledLoopBlocks.erase(std::remove(UnrolledLoopBlocks.begin(), 597 UnrolledLoopBlocks.end(), Dest), 598 UnrolledLoopBlocks.end()); 599 } 600 } 601 } 602 603 // FIXME: We could register any cloned assumptions instead of clearing the 604 // whole function's cache. 605 AC->clear(); 606 607 // FIXME: We only preserve DT info for complete unrolling now. Incrementally 608 // updating domtree after partial loop unrolling should also be easy. 609 if (DT && !CompletelyUnroll) 610 DT->recalculate(*L->getHeader()->getParent()); 611 else if (DT) 612 DEBUG(DT->verifyDomTree()); 613 614 // Simplify any new induction variables in the partially unrolled loop. 615 if (SE && !CompletelyUnroll) { 616 SmallVector<WeakVH, 16> DeadInsts; 617 simplifyLoopIVs(L, SE, DT, LI, DeadInsts); 618 619 // Aggressively clean up dead instructions that simplifyLoopIVs already 620 // identified. Any remaining should be cleaned up below. 621 while (!DeadInsts.empty()) 622 if (Instruction *Inst = 623 dyn_cast_or_null<Instruction>(&*DeadInsts.pop_back_val())) 624 RecursivelyDeleteTriviallyDeadInstructions(Inst); 625 } 626 627 // At this point, the code is well formed. We now do a quick sweep over the 628 // inserted code, doing constant propagation and dead code elimination as we 629 // go. 630 const DataLayout &DL = Header->getModule()->getDataLayout(); 631 const std::vector<BasicBlock*> &NewLoopBlocks = L->getBlocks(); 632 for (BasicBlock *BB : NewLoopBlocks) { 633 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; ) { 634 Instruction *Inst = &*I++; 635 636 if (Value *V = SimplifyInstruction(Inst, DL)) 637 if (LI->replacementPreservesLCSSAForm(Inst, V)) 638 Inst->replaceAllUsesWith(V); 639 if (isInstructionTriviallyDead(Inst)) 640 BB->getInstList().erase(Inst); 641 } 642 } 643 644 NumCompletelyUnrolled += CompletelyUnroll; 645 ++NumUnrolled; 646 647 Loop *OuterL = L->getParentLoop(); 648 // Update LoopInfo if the loop is completely removed. 649 if (CompletelyUnroll) 650 LI->markAsRemoved(L); 651 652 // After complete unrolling most of the blocks should be contained in OuterL. 653 // However, some of them might happen to be out of OuterL (e.g. if they 654 // precede a loop exit). In this case we might need to insert PHI nodes in 655 // order to preserve LCSSA form. 656 // We don't need to check this if we already know that we need to fix LCSSA 657 // form. 658 // TODO: For now we just recompute LCSSA for the outer loop in this case, but 659 // it should be possible to fix it in-place. 660 if (PreserveLCSSA && OuterL && CompletelyUnroll && !NeedToFixLCSSA) 661 NeedToFixLCSSA |= ::needToInsertPhisForLCSSA(OuterL, UnrolledLoopBlocks, LI); 662 663 // If we have a pass and a DominatorTree we should re-simplify impacted loops 664 // to ensure subsequent analyses can rely on this form. We want to simplify 665 // at least one layer outside of the loop that was unrolled so that any 666 // changes to the parent loop exposed by the unrolling are considered. 667 if (DT) { 668 if (!OuterL && !CompletelyUnroll) 669 OuterL = L; 670 if (OuterL) { 671 // OuterL includes all loops for which we can break loop-simplify, so 672 // it's sufficient to simplify only it (it'll recursively simplify inner 673 // loops too). 674 // TODO: That potentially might be compile-time expensive. We should try 675 // to fix the loop-simplified form incrementally. 676 simplifyLoop(OuterL, DT, LI, SE, AC, PreserveLCSSA); 677 678 // LCSSA must be performed on the outermost affected loop. The unrolled 679 // loop's last loop latch is guaranteed to be in the outermost loop after 680 // LoopInfo's been updated by markAsRemoved. 681 Loop *LatchLoop = LI->getLoopFor(Latches.back()); 682 if (!OuterL->contains(LatchLoop)) 683 while (OuterL->getParentLoop() != LatchLoop) 684 OuterL = OuterL->getParentLoop(); 685 686 if (NeedToFixLCSSA) 687 formLCSSARecursively(*OuterL, *DT, LI, SE); 688 else 689 assert(OuterL->isLCSSAForm(*DT) && 690 "Loops should be in LCSSA form after loop-unroll."); 691 } else { 692 // Simplify loops for which we might've broken loop-simplify form. 693 for (Loop *SubLoop : LoopsToSimplify) 694 simplifyLoop(SubLoop, DT, LI, SE, AC, PreserveLCSSA); 695 } 696 } 697 698 return true; 699 } 700 701 /// Given an llvm.loop loop id metadata node, returns the loop hint metadata 702 /// node with the given name (for example, "llvm.loop.unroll.count"). If no 703 /// such metadata node exists, then nullptr is returned. 704 MDNode *llvm::GetUnrollMetadata(MDNode *LoopID, StringRef Name) { 705 // First operand should refer to the loop id itself. 706 assert(LoopID->getNumOperands() > 0 && "requires at least one operand"); 707 assert(LoopID->getOperand(0) == LoopID && "invalid loop id"); 708 709 for (unsigned i = 1, e = LoopID->getNumOperands(); i < e; ++i) { 710 MDNode *MD = dyn_cast<MDNode>(LoopID->getOperand(i)); 711 if (!MD) 712 continue; 713 714 MDString *S = dyn_cast<MDString>(MD->getOperand(0)); 715 if (!S) 716 continue; 717 718 if (Name.equals(S->getString())) 719 return MD; 720 } 721 return nullptr; 722 } 723