1 //===--------- LoopSimplifyCFG.cpp - Loop CFG Simplification Pass ---------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the Loop SimplifyCFG Pass. This pass is responsible for 10 // basic loop CFG cleanup, primarily to assist other loop passes. If you 11 // encounter a noncanonical CFG construct that causes another loop pass to 12 // perform suboptimally, this is the place to fix it up. 13 // 14 //===----------------------------------------------------------------------===// 15 16 #include "llvm/Transforms/Scalar/LoopSimplifyCFG.h" 17 #include "llvm/ADT/SmallVector.h" 18 #include "llvm/ADT/Statistic.h" 19 #include "llvm/Analysis/DomTreeUpdater.h" 20 #include "llvm/Analysis/LoopInfo.h" 21 #include "llvm/Analysis/LoopIterator.h" 22 #include "llvm/Analysis/MemorySSA.h" 23 #include "llvm/Analysis/MemorySSAUpdater.h" 24 #include "llvm/Analysis/ScalarEvolution.h" 25 #include "llvm/IR/Dominators.h" 26 #include "llvm/IR/IRBuilder.h" 27 #include "llvm/Support/CommandLine.h" 28 #include "llvm/Transforms/Scalar.h" 29 #include "llvm/Transforms/Scalar/LoopPassManager.h" 30 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 31 #include "llvm/Transforms/Utils/LoopUtils.h" 32 #include <optional> 33 using namespace llvm; 34 35 #define DEBUG_TYPE "loop-simplifycfg" 36 37 static cl::opt<bool> EnableTermFolding("enable-loop-simplifycfg-term-folding", 38 cl::init(true)); 39 40 STATISTIC(NumTerminatorsFolded, 41 "Number of terminators folded to unconditional branches"); 42 STATISTIC(NumLoopBlocksDeleted, 43 "Number of loop blocks deleted"); 44 STATISTIC(NumLoopExitsDeleted, 45 "Number of loop exiting edges deleted"); 46 47 /// If \p BB is a switch or a conditional branch, but only one of its successors 48 /// can be reached from this block in runtime, return this successor. Otherwise, 49 /// return nullptr. 50 static BasicBlock *getOnlyLiveSuccessor(BasicBlock *BB) { 51 Instruction *TI = BB->getTerminator(); 52 if (BranchInst *BI = dyn_cast<BranchInst>(TI)) { 53 if (BI->isUnconditional()) 54 return nullptr; 55 if (BI->getSuccessor(0) == BI->getSuccessor(1)) 56 return BI->getSuccessor(0); 57 ConstantInt *Cond = dyn_cast<ConstantInt>(BI->getCondition()); 58 if (!Cond) 59 return nullptr; 60 return Cond->isZero() ? BI->getSuccessor(1) : BI->getSuccessor(0); 61 } 62 63 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) { 64 auto *CI = dyn_cast<ConstantInt>(SI->getCondition()); 65 if (!CI) 66 return nullptr; 67 for (auto Case : SI->cases()) 68 if (Case.getCaseValue() == CI) 69 return Case.getCaseSuccessor(); 70 return SI->getDefaultDest(); 71 } 72 73 return nullptr; 74 } 75 76 /// Removes \p BB from all loops from [FirstLoop, LastLoop) in parent chain. 77 static void removeBlockFromLoops(BasicBlock *BB, Loop *FirstLoop, 78 Loop *LastLoop = nullptr) { 79 assert((!LastLoop || LastLoop->contains(FirstLoop->getHeader())) && 80 "First loop is supposed to be inside of last loop!"); 81 assert(FirstLoop->contains(BB) && "Must be a loop block!"); 82 for (Loop *Current = FirstLoop; Current != LastLoop; 83 Current = Current->getParentLoop()) 84 Current->removeBlockFromLoop(BB); 85 } 86 87 /// Find innermost loop that contains at least one block from \p BBs and 88 /// contains the header of loop \p L. 89 static Loop *getInnermostLoopFor(SmallPtrSetImpl<BasicBlock *> &BBs, 90 Loop &L, LoopInfo &LI) { 91 Loop *Innermost = nullptr; 92 for (BasicBlock *BB : BBs) { 93 Loop *BBL = LI.getLoopFor(BB); 94 while (BBL && !BBL->contains(L.getHeader())) 95 BBL = BBL->getParentLoop(); 96 if (BBL == &L) 97 BBL = BBL->getParentLoop(); 98 if (!BBL) 99 continue; 100 if (!Innermost || BBL->getLoopDepth() > Innermost->getLoopDepth()) 101 Innermost = BBL; 102 } 103 return Innermost; 104 } 105 106 namespace { 107 /// Helper class that can turn branches and switches with constant conditions 108 /// into unconditional branches. 109 class ConstantTerminatorFoldingImpl { 110 private: 111 Loop &L; 112 LoopInfo &LI; 113 DominatorTree &DT; 114 ScalarEvolution &SE; 115 MemorySSAUpdater *MSSAU; 116 LoopBlocksDFS DFS; 117 DomTreeUpdater DTU; 118 SmallVector<DominatorTree::UpdateType, 16> DTUpdates; 119 120 // Whether or not the current loop has irreducible CFG. 121 bool HasIrreducibleCFG = false; 122 // Whether or not the current loop will still exist after terminator constant 123 // folding will be done. In theory, there are two ways how it can happen: 124 // 1. Loop's latch(es) become unreachable from loop header; 125 // 2. Loop's header becomes unreachable from method entry. 126 // In practice, the second situation is impossible because we only modify the 127 // current loop and its preheader and do not affect preheader's reachibility 128 // from any other block. So this variable set to true means that loop's latch 129 // has become unreachable from loop header. 130 bool DeleteCurrentLoop = false; 131 // Whether or not we enter the loop through an indirectbr. 132 bool HasIndirectEntry = false; 133 134 // The blocks of the original loop that will still be reachable from entry 135 // after the constant folding. 136 SmallPtrSet<BasicBlock *, 8> LiveLoopBlocks; 137 // The blocks of the original loop that will become unreachable from entry 138 // after the constant folding. 139 SmallVector<BasicBlock *, 8> DeadLoopBlocks; 140 // The exits of the original loop that will still be reachable from entry 141 // after the constant folding. 142 SmallPtrSet<BasicBlock *, 8> LiveExitBlocks; 143 // The exits of the original loop that will become unreachable from entry 144 // after the constant folding. 145 SmallVector<BasicBlock *, 8> DeadExitBlocks; 146 // The blocks that will still be a part of the current loop after folding. 147 SmallPtrSet<BasicBlock *, 8> BlocksInLoopAfterFolding; 148 // The blocks that have terminators with constant condition that can be 149 // folded. Note: fold candidates should be in L but not in any of its 150 // subloops to avoid complex LI updates. 151 SmallVector<BasicBlock *, 8> FoldCandidates; 152 153 void dump() const { 154 dbgs() << "Constant terminator folding for loop " << L << "\n"; 155 dbgs() << "After terminator constant-folding, the loop will"; 156 if (!DeleteCurrentLoop) 157 dbgs() << " not"; 158 dbgs() << " be destroyed\n"; 159 auto PrintOutVector = [&](const char *Message, 160 const SmallVectorImpl<BasicBlock *> &S) { 161 dbgs() << Message << "\n"; 162 for (const BasicBlock *BB : S) 163 dbgs() << "\t" << BB->getName() << "\n"; 164 }; 165 auto PrintOutSet = [&](const char *Message, 166 const SmallPtrSetImpl<BasicBlock *> &S) { 167 dbgs() << Message << "\n"; 168 for (const BasicBlock *BB : S) 169 dbgs() << "\t" << BB->getName() << "\n"; 170 }; 171 PrintOutVector("Blocks in which we can constant-fold terminator:", 172 FoldCandidates); 173 PrintOutSet("Live blocks from the original loop:", LiveLoopBlocks); 174 PrintOutVector("Dead blocks from the original loop:", DeadLoopBlocks); 175 PrintOutSet("Live exit blocks:", LiveExitBlocks); 176 PrintOutVector("Dead exit blocks:", DeadExitBlocks); 177 if (!DeleteCurrentLoop) 178 PrintOutSet("The following blocks will still be part of the loop:", 179 BlocksInLoopAfterFolding); 180 } 181 182 /// Whether or not the current loop has irreducible CFG. 183 bool hasIrreducibleCFG(LoopBlocksDFS &DFS) { 184 assert(DFS.isComplete() && "DFS is expected to be finished"); 185 // Index of a basic block in RPO traversal. 186 DenseMap<const BasicBlock *, unsigned> RPO; 187 unsigned Current = 0; 188 for (auto I = DFS.beginRPO(), E = DFS.endRPO(); I != E; ++I) 189 RPO[*I] = Current++; 190 191 for (auto I = DFS.beginRPO(), E = DFS.endRPO(); I != E; ++I) { 192 BasicBlock *BB = *I; 193 for (auto *Succ : successors(BB)) 194 if (L.contains(Succ) && !LI.isLoopHeader(Succ) && RPO[BB] > RPO[Succ]) 195 // If an edge goes from a block with greater order number into a block 196 // with lesses number, and it is not a loop backedge, then it can only 197 // be a part of irreducible non-loop cycle. 198 return true; 199 } 200 return false; 201 } 202 203 /// Fill all information about status of blocks and exits of the current loop 204 /// if constant folding of all branches will be done. 205 void analyze() { 206 DFS.perform(&LI); 207 assert(DFS.isComplete() && "DFS is expected to be finished"); 208 209 // TODO: The algorithm below relies on both RPO and Postorder traversals. 210 // When the loop has only reducible CFG inside, then the invariant "all 211 // predecessors of X are processed before X in RPO" is preserved. However 212 // an irreducible loop can break this invariant (e.g. latch does not have to 213 // be the last block in the traversal in this case, and the algorithm relies 214 // on this). We can later decide to support such cases by altering the 215 // algorithms, but so far we just give up analyzing them. 216 if (hasIrreducibleCFG(DFS)) { 217 HasIrreducibleCFG = true; 218 return; 219 } 220 221 // We need a loop preheader to split in handleDeadExits(). If LoopSimplify 222 // wasn't able to form one because the loop can be entered through an 223 // indirectbr we cannot continue. 224 if (!L.getLoopPreheader()) { 225 assert(any_of(predecessors(L.getHeader()), 226 [&](BasicBlock *Pred) { 227 return isa<IndirectBrInst>(Pred->getTerminator()); 228 }) && 229 "Loop should have preheader if it is not entered indirectly"); 230 HasIndirectEntry = true; 231 return; 232 } 233 234 // Collect live and dead loop blocks and exits. 235 LiveLoopBlocks.insert(L.getHeader()); 236 for (auto I = DFS.beginRPO(), E = DFS.endRPO(); I != E; ++I) { 237 BasicBlock *BB = *I; 238 239 // If a loop block wasn't marked as live so far, then it's dead. 240 if (!LiveLoopBlocks.count(BB)) { 241 DeadLoopBlocks.push_back(BB); 242 continue; 243 } 244 245 BasicBlock *TheOnlySucc = getOnlyLiveSuccessor(BB); 246 247 // If a block has only one live successor, it's a candidate on constant 248 // folding. Only handle blocks from current loop: branches in child loops 249 // are skipped because if they can be folded, they should be folded during 250 // the processing of child loops. 251 bool TakeFoldCandidate = TheOnlySucc && LI.getLoopFor(BB) == &L; 252 if (TakeFoldCandidate) 253 FoldCandidates.push_back(BB); 254 255 // Handle successors. 256 for (BasicBlock *Succ : successors(BB)) 257 if (!TakeFoldCandidate || TheOnlySucc == Succ) { 258 if (L.contains(Succ)) 259 LiveLoopBlocks.insert(Succ); 260 else 261 LiveExitBlocks.insert(Succ); 262 } 263 } 264 265 // Amount of dead and live loop blocks should match the total number of 266 // blocks in loop. 267 assert(L.getNumBlocks() == LiveLoopBlocks.size() + DeadLoopBlocks.size() && 268 "Malformed block sets?"); 269 270 // Now, all exit blocks that are not marked as live are dead, if all their 271 // predecessors are in the loop. This may not be the case, as the input loop 272 // may not by in loop-simplify/canonical form. 273 SmallVector<BasicBlock *, 8> ExitBlocks; 274 L.getExitBlocks(ExitBlocks); 275 SmallPtrSet<BasicBlock *, 8> UniqueDeadExits; 276 for (auto *ExitBlock : ExitBlocks) 277 if (!LiveExitBlocks.count(ExitBlock) && 278 UniqueDeadExits.insert(ExitBlock).second && 279 all_of(predecessors(ExitBlock), 280 [this](BasicBlock *Pred) { return L.contains(Pred); })) 281 DeadExitBlocks.push_back(ExitBlock); 282 283 // Whether or not the edge From->To will still be present in graph after the 284 // folding. 285 auto IsEdgeLive = [&](BasicBlock *From, BasicBlock *To) { 286 if (!LiveLoopBlocks.count(From)) 287 return false; 288 BasicBlock *TheOnlySucc = getOnlyLiveSuccessor(From); 289 return !TheOnlySucc || TheOnlySucc == To || LI.getLoopFor(From) != &L; 290 }; 291 292 // The loop will not be destroyed if its latch is live. 293 DeleteCurrentLoop = !IsEdgeLive(L.getLoopLatch(), L.getHeader()); 294 295 // If we are going to delete the current loop completely, no extra analysis 296 // is needed. 297 if (DeleteCurrentLoop) 298 return; 299 300 // Otherwise, we should check which blocks will still be a part of the 301 // current loop after the transform. 302 BlocksInLoopAfterFolding.insert(L.getLoopLatch()); 303 // If the loop is live, then we should compute what blocks are still in 304 // loop after all branch folding has been done. A block is in loop if 305 // it has a live edge to another block that is in the loop; by definition, 306 // latch is in the loop. 307 auto BlockIsInLoop = [&](BasicBlock *BB) { 308 return any_of(successors(BB), [&](BasicBlock *Succ) { 309 return BlocksInLoopAfterFolding.count(Succ) && IsEdgeLive(BB, Succ); 310 }); 311 }; 312 for (auto I = DFS.beginPostorder(), E = DFS.endPostorder(); I != E; ++I) { 313 BasicBlock *BB = *I; 314 if (BlockIsInLoop(BB)) 315 BlocksInLoopAfterFolding.insert(BB); 316 } 317 318 assert(BlocksInLoopAfterFolding.count(L.getHeader()) && 319 "Header not in loop?"); 320 assert(BlocksInLoopAfterFolding.size() <= LiveLoopBlocks.size() && 321 "All blocks that stay in loop should be live!"); 322 } 323 324 /// We need to preserve static reachibility of all loop exit blocks (this is) 325 /// required by loop pass manager. In order to do it, we make the following 326 /// trick: 327 /// 328 /// preheader: 329 /// <preheader code> 330 /// br label %loop_header 331 /// 332 /// loop_header: 333 /// ... 334 /// br i1 false, label %dead_exit, label %loop_block 335 /// ... 336 /// 337 /// We cannot simply remove edge from the loop to dead exit because in this 338 /// case dead_exit (and its successors) may become unreachable. To avoid that, 339 /// we insert the following fictive preheader: 340 /// 341 /// preheader: 342 /// <preheader code> 343 /// switch i32 0, label %preheader-split, 344 /// [i32 1, label %dead_exit_1], 345 /// [i32 2, label %dead_exit_2], 346 /// ... 347 /// [i32 N, label %dead_exit_N], 348 /// 349 /// preheader-split: 350 /// br label %loop_header 351 /// 352 /// loop_header: 353 /// ... 354 /// br i1 false, label %dead_exit_N, label %loop_block 355 /// ... 356 /// 357 /// Doing so, we preserve static reachibility of all dead exits and can later 358 /// remove edges from the loop to these blocks. 359 void handleDeadExits() { 360 // If no dead exits, nothing to do. 361 if (DeadExitBlocks.empty()) 362 return; 363 364 // Construct split preheader and the dummy switch to thread edges from it to 365 // dead exits. 366 BasicBlock *Preheader = L.getLoopPreheader(); 367 BasicBlock *NewPreheader = llvm::SplitBlock( 368 Preheader, Preheader->getTerminator(), &DT, &LI, MSSAU); 369 370 IRBuilder<> Builder(Preheader->getTerminator()); 371 SwitchInst *DummySwitch = 372 Builder.CreateSwitch(Builder.getInt32(0), NewPreheader); 373 Preheader->getTerminator()->eraseFromParent(); 374 375 unsigned DummyIdx = 1; 376 for (BasicBlock *BB : DeadExitBlocks) { 377 // Eliminate all Phis and LandingPads from dead exits. 378 // TODO: Consider removing all instructions in this dead block. 379 SmallVector<Instruction *, 4> DeadInstructions( 380 llvm::make_pointer_range(BB->phis())); 381 382 if (auto *LandingPad = dyn_cast<LandingPadInst>(BB->getFirstNonPHIIt())) 383 DeadInstructions.emplace_back(LandingPad); 384 385 for (Instruction *I : DeadInstructions) { 386 SE.forgetValue(I); 387 I->replaceAllUsesWith(PoisonValue::get(I->getType())); 388 I->eraseFromParent(); 389 } 390 391 assert(DummyIdx != 0 && "Too many dead exits!"); 392 DummySwitch->addCase(Builder.getInt32(DummyIdx++), BB); 393 DTUpdates.push_back({DominatorTree::Insert, Preheader, BB}); 394 ++NumLoopExitsDeleted; 395 } 396 397 assert(L.getLoopPreheader() == NewPreheader && "Malformed CFG?"); 398 if (Loop *OuterLoop = LI.getLoopFor(Preheader)) { 399 // When we break dead edges, the outer loop may become unreachable from 400 // the current loop. We need to fix loop info accordingly. For this, we 401 // find the most nested loop that still contains L and remove L from all 402 // loops that are inside of it. 403 Loop *StillReachable = getInnermostLoopFor(LiveExitBlocks, L, LI); 404 405 // Okay, our loop is no longer in the outer loop (and maybe not in some of 406 // its parents as well). Make the fixup. 407 if (StillReachable != OuterLoop) { 408 LI.changeLoopFor(NewPreheader, StillReachable); 409 removeBlockFromLoops(NewPreheader, OuterLoop, StillReachable); 410 for (auto *BB : L.blocks()) 411 removeBlockFromLoops(BB, OuterLoop, StillReachable); 412 OuterLoop->removeChildLoop(&L); 413 if (StillReachable) 414 StillReachable->addChildLoop(&L); 415 else 416 LI.addTopLevelLoop(&L); 417 418 // Some values from loops in [OuterLoop, StillReachable) could be used 419 // in the current loop. Now it is not their child anymore, so such uses 420 // require LCSSA Phis. 421 Loop *FixLCSSALoop = OuterLoop; 422 while (FixLCSSALoop->getParentLoop() != StillReachable) 423 FixLCSSALoop = FixLCSSALoop->getParentLoop(); 424 assert(FixLCSSALoop && "Should be a loop!"); 425 // We need all DT updates to be done before forming LCSSA. 426 if (MSSAU) 427 MSSAU->applyUpdates(DTUpdates, DT, /*UpdateDT=*/true); 428 else 429 DTU.applyUpdates(DTUpdates); 430 DTUpdates.clear(); 431 formLCSSARecursively(*FixLCSSALoop, DT, &LI, &SE); 432 SE.forgetBlockAndLoopDispositions(); 433 } 434 } 435 436 if (MSSAU) { 437 // Clear all updates now. Facilitates deletes that follow. 438 MSSAU->applyUpdates(DTUpdates, DT, /*UpdateDT=*/true); 439 DTUpdates.clear(); 440 if (VerifyMemorySSA) 441 MSSAU->getMemorySSA()->verifyMemorySSA(); 442 } 443 } 444 445 /// Delete loop blocks that have become unreachable after folding. Make all 446 /// relevant updates to DT and LI. 447 void deleteDeadLoopBlocks() { 448 if (MSSAU) { 449 SmallSetVector<BasicBlock *, 8> DeadLoopBlocksSet(DeadLoopBlocks.begin(), 450 DeadLoopBlocks.end()); 451 MSSAU->removeBlocks(DeadLoopBlocksSet); 452 } 453 454 // The function LI.erase has some invariants that need to be preserved when 455 // it tries to remove a loop which is not the top-level loop. In particular, 456 // it requires loop's preheader to be strictly in loop's parent. We cannot 457 // just remove blocks one by one, because after removal of preheader we may 458 // break this invariant for the dead loop. So we detatch and erase all dead 459 // loops beforehand. 460 for (auto *BB : DeadLoopBlocks) 461 if (LI.isLoopHeader(BB)) { 462 assert(LI.getLoopFor(BB) != &L && "Attempt to remove current loop!"); 463 Loop *DL = LI.getLoopFor(BB); 464 if (!DL->isOutermost()) { 465 for (auto *PL = DL->getParentLoop(); PL; PL = PL->getParentLoop()) 466 for (auto *BB : DL->getBlocks()) 467 PL->removeBlockFromLoop(BB); 468 DL->getParentLoop()->removeChildLoop(DL); 469 LI.addTopLevelLoop(DL); 470 } 471 LI.erase(DL); 472 } 473 474 for (auto *BB : DeadLoopBlocks) { 475 assert(BB != L.getHeader() && 476 "Header of the current loop cannot be dead!"); 477 LLVM_DEBUG(dbgs() << "Deleting dead loop block " << BB->getName() 478 << "\n"); 479 LI.removeBlock(BB); 480 } 481 482 detachDeadBlocks(DeadLoopBlocks, &DTUpdates, /*KeepOneInputPHIs*/true); 483 DTU.applyUpdates(DTUpdates); 484 DTUpdates.clear(); 485 for (auto *BB : DeadLoopBlocks) 486 DTU.deleteBB(BB); 487 488 NumLoopBlocksDeleted += DeadLoopBlocks.size(); 489 } 490 491 /// Constant-fold terminators of blocks accumulated in FoldCandidates into the 492 /// unconditional branches. 493 void foldTerminators() { 494 for (BasicBlock *BB : FoldCandidates) { 495 assert(LI.getLoopFor(BB) == &L && "Should be a loop block!"); 496 BasicBlock *TheOnlySucc = getOnlyLiveSuccessor(BB); 497 assert(TheOnlySucc && "Should have one live successor!"); 498 499 LLVM_DEBUG(dbgs() << "Replacing terminator of " << BB->getName() 500 << " with an unconditional branch to the block " 501 << TheOnlySucc->getName() << "\n"); 502 503 SmallPtrSet<BasicBlock *, 2> DeadSuccessors; 504 // Remove all BB's successors except for the live one. 505 unsigned TheOnlySuccDuplicates = 0; 506 for (auto *Succ : successors(BB)) 507 if (Succ != TheOnlySucc) { 508 DeadSuccessors.insert(Succ); 509 // If our successor lies in a different loop, we don't want to remove 510 // the one-input Phi because it is a LCSSA Phi. 511 bool PreserveLCSSAPhi = !L.contains(Succ); 512 Succ->removePredecessor(BB, PreserveLCSSAPhi); 513 if (MSSAU) 514 MSSAU->removeEdge(BB, Succ); 515 } else 516 ++TheOnlySuccDuplicates; 517 518 assert(TheOnlySuccDuplicates > 0 && "Should be!"); 519 // If TheOnlySucc was BB's successor more than once, after transform it 520 // will be its successor only once. Remove redundant inputs from 521 // TheOnlySucc's Phis. 522 bool PreserveLCSSAPhi = !L.contains(TheOnlySucc); 523 for (unsigned Dup = 1; Dup < TheOnlySuccDuplicates; ++Dup) 524 TheOnlySucc->removePredecessor(BB, PreserveLCSSAPhi); 525 if (MSSAU && TheOnlySuccDuplicates > 1) 526 MSSAU->removeDuplicatePhiEdgesBetween(BB, TheOnlySucc); 527 528 IRBuilder<> Builder(BB->getContext()); 529 Instruction *Term = BB->getTerminator(); 530 Builder.SetInsertPoint(Term); 531 Builder.CreateBr(TheOnlySucc); 532 Term->eraseFromParent(); 533 534 for (auto *DeadSucc : DeadSuccessors) 535 DTUpdates.push_back({DominatorTree::Delete, BB, DeadSucc}); 536 537 ++NumTerminatorsFolded; 538 } 539 } 540 541 public: 542 ConstantTerminatorFoldingImpl(Loop &L, LoopInfo &LI, DominatorTree &DT, 543 ScalarEvolution &SE, 544 MemorySSAUpdater *MSSAU) 545 : L(L), LI(LI), DT(DT), SE(SE), MSSAU(MSSAU), DFS(&L), 546 DTU(DT, DomTreeUpdater::UpdateStrategy::Eager) {} 547 bool run() { 548 assert(L.getLoopLatch() && "Should be single latch!"); 549 550 // Collect all available information about status of blocks after constant 551 // folding. 552 analyze(); 553 BasicBlock *Header = L.getHeader(); 554 (void)Header; 555 556 LLVM_DEBUG(dbgs() << "In function " << Header->getParent()->getName() 557 << ": "); 558 559 if (HasIrreducibleCFG) { 560 LLVM_DEBUG(dbgs() << "Loops with irreducible CFG are not supported!\n"); 561 return false; 562 } 563 564 if (HasIndirectEntry) { 565 LLVM_DEBUG(dbgs() << "Loops which can be entered indirectly are not" 566 " supported!\n"); 567 return false; 568 } 569 570 // Nothing to constant-fold. 571 if (FoldCandidates.empty()) { 572 LLVM_DEBUG( 573 dbgs() << "No constant terminator folding candidates found in loop " 574 << Header->getName() << "\n"); 575 return false; 576 } 577 578 // TODO: Support deletion of the current loop. 579 if (DeleteCurrentLoop) { 580 LLVM_DEBUG( 581 dbgs() 582 << "Give up constant terminator folding in loop " << Header->getName() 583 << ": we don't currently support deletion of the current loop.\n"); 584 return false; 585 } 586 587 // TODO: Support blocks that are not dead, but also not in loop after the 588 // folding. 589 if (BlocksInLoopAfterFolding.size() + DeadLoopBlocks.size() != 590 L.getNumBlocks()) { 591 LLVM_DEBUG( 592 dbgs() << "Give up constant terminator folding in loop " 593 << Header->getName() << ": we don't currently" 594 " support blocks that are not dead, but will stop " 595 "being a part of the loop after constant-folding.\n"); 596 return false; 597 } 598 599 // TODO: Tokens may breach LCSSA form by default. However, the transform for 600 // dead exit blocks requires LCSSA form to be maintained for all values, 601 // tokens included, otherwise it may break use-def dominance (see PR56243). 602 if (!DeadExitBlocks.empty() && !L.isLCSSAForm(DT, /*IgnoreTokens*/ false)) { 603 assert(L.isLCSSAForm(DT, /*IgnoreTokens*/ true) && 604 "LCSSA broken not by tokens?"); 605 LLVM_DEBUG(dbgs() << "Give up constant terminator folding in loop " 606 << Header->getName() 607 << ": tokens uses potentially break LCSSA form.\n"); 608 return false; 609 } 610 611 SE.forgetTopmostLoop(&L); 612 // Dump analysis results. 613 LLVM_DEBUG(dump()); 614 615 LLVM_DEBUG(dbgs() << "Constant-folding " << FoldCandidates.size() 616 << " terminators in loop " << Header->getName() << "\n"); 617 618 if (!DeadLoopBlocks.empty()) 619 SE.forgetBlockAndLoopDispositions(); 620 621 // Make the actual transforms. 622 handleDeadExits(); 623 foldTerminators(); 624 625 if (!DeadLoopBlocks.empty()) { 626 LLVM_DEBUG(dbgs() << "Deleting " << DeadLoopBlocks.size() 627 << " dead blocks in loop " << Header->getName() << "\n"); 628 deleteDeadLoopBlocks(); 629 } else { 630 // If we didn't do updates inside deleteDeadLoopBlocks, do them here. 631 DTU.applyUpdates(DTUpdates); 632 DTUpdates.clear(); 633 } 634 635 if (MSSAU && VerifyMemorySSA) 636 MSSAU->getMemorySSA()->verifyMemorySSA(); 637 638 #ifndef NDEBUG 639 // Make sure that we have preserved all data structures after the transform. 640 #if defined(EXPENSIVE_CHECKS) 641 assert(DT.verify(DominatorTree::VerificationLevel::Full) && 642 "DT broken after transform!"); 643 #else 644 assert(DT.verify(DominatorTree::VerificationLevel::Fast) && 645 "DT broken after transform!"); 646 #endif 647 assert(DT.isReachableFromEntry(Header)); 648 LI.verify(DT); 649 #endif 650 651 return true; 652 } 653 654 bool foldingBreaksCurrentLoop() const { 655 return DeleteCurrentLoop; 656 } 657 }; 658 } // namespace 659 660 /// Turn branches and switches with known constant conditions into unconditional 661 /// branches. 662 static bool constantFoldTerminators(Loop &L, DominatorTree &DT, LoopInfo &LI, 663 ScalarEvolution &SE, 664 MemorySSAUpdater *MSSAU, 665 bool &IsLoopDeleted) { 666 if (!EnableTermFolding) 667 return false; 668 669 // To keep things simple, only process loops with single latch. We 670 // canonicalize most loops to this form. We can support multi-latch if needed. 671 if (!L.getLoopLatch()) 672 return false; 673 674 ConstantTerminatorFoldingImpl BranchFolder(L, LI, DT, SE, MSSAU); 675 bool Changed = BranchFolder.run(); 676 IsLoopDeleted = Changed && BranchFolder.foldingBreaksCurrentLoop(); 677 return Changed; 678 } 679 680 static bool mergeBlocksIntoPredecessors(Loop &L, DominatorTree &DT, 681 LoopInfo &LI, MemorySSAUpdater *MSSAU, 682 ScalarEvolution &SE) { 683 bool Changed = false; 684 DomTreeUpdater DTU(DT, DomTreeUpdater::UpdateStrategy::Eager); 685 // Copy blocks into a temporary array to avoid iterator invalidation issues 686 // as we remove them. 687 SmallVector<WeakTrackingVH, 16> Blocks(L.blocks()); 688 689 for (auto &Block : Blocks) { 690 // Attempt to merge blocks in the trivial case. Don't modify blocks which 691 // belong to other loops. 692 BasicBlock *Succ = cast_or_null<BasicBlock>(Block); 693 if (!Succ) 694 continue; 695 696 BasicBlock *Pred = Succ->getSinglePredecessor(); 697 if (!Pred || !Pred->getSingleSuccessor() || LI.getLoopFor(Pred) != &L) 698 continue; 699 700 // Merge Succ into Pred and delete it. 701 MergeBlockIntoPredecessor(Succ, &DTU, &LI, MSSAU); 702 703 if (MSSAU && VerifyMemorySSA) 704 MSSAU->getMemorySSA()->verifyMemorySSA(); 705 706 Changed = true; 707 } 708 709 if (Changed) 710 SE.forgetBlockAndLoopDispositions(); 711 712 return Changed; 713 } 714 715 static bool simplifyLoopCFG(Loop &L, DominatorTree &DT, LoopInfo &LI, 716 ScalarEvolution &SE, MemorySSAUpdater *MSSAU, 717 bool &IsLoopDeleted) { 718 bool Changed = false; 719 720 // Constant-fold terminators with known constant conditions. 721 Changed |= constantFoldTerminators(L, DT, LI, SE, MSSAU, IsLoopDeleted); 722 723 if (IsLoopDeleted) 724 return true; 725 726 // Eliminate unconditional branches by merging blocks into their predecessors. 727 Changed |= mergeBlocksIntoPredecessors(L, DT, LI, MSSAU, SE); 728 729 if (Changed) 730 SE.forgetTopmostLoop(&L); 731 732 return Changed; 733 } 734 735 PreservedAnalyses LoopSimplifyCFGPass::run(Loop &L, LoopAnalysisManager &AM, 736 LoopStandardAnalysisResults &AR, 737 LPMUpdater &LPMU) { 738 std::optional<MemorySSAUpdater> MSSAU; 739 if (AR.MSSA) 740 MSSAU = MemorySSAUpdater(AR.MSSA); 741 bool DeleteCurrentLoop = false; 742 if (!simplifyLoopCFG(L, AR.DT, AR.LI, AR.SE, MSSAU ? &*MSSAU : nullptr, 743 DeleteCurrentLoop)) 744 return PreservedAnalyses::all(); 745 746 if (DeleteCurrentLoop) 747 LPMU.markLoopAsDeleted(L, "loop-simplifycfg"); 748 749 auto PA = getLoopPassPreservedAnalyses(); 750 if (AR.MSSA) 751 PA.preserve<MemorySSAAnalysis>(); 752 return PA; 753 } 754