1 //===-- LoopUtils.cpp - Loop Utility functions -------------------------===// 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 defines common loop utility functions. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "llvm/Transforms/Utils/LoopUtils.h" 14 #include "llvm/ADT/DenseSet.h" 15 #include "llvm/ADT/PriorityWorklist.h" 16 #include "llvm/ADT/ScopeExit.h" 17 #include "llvm/ADT/SetVector.h" 18 #include "llvm/ADT/SmallPtrSet.h" 19 #include "llvm/ADT/SmallVector.h" 20 #include "llvm/Analysis/AliasAnalysis.h" 21 #include "llvm/Analysis/BasicAliasAnalysis.h" 22 #include "llvm/Analysis/DomTreeUpdater.h" 23 #include "llvm/Analysis/GlobalsModRef.h" 24 #include "llvm/Analysis/InstSimplifyFolder.h" 25 #include "llvm/Analysis/LoopAccessAnalysis.h" 26 #include "llvm/Analysis/LoopInfo.h" 27 #include "llvm/Analysis/LoopPass.h" 28 #include "llvm/Analysis/MemorySSA.h" 29 #include "llvm/Analysis/MemorySSAUpdater.h" 30 #include "llvm/Analysis/ScalarEvolution.h" 31 #include "llvm/Analysis/ScalarEvolutionAliasAnalysis.h" 32 #include "llvm/Analysis/ScalarEvolutionExpressions.h" 33 #include "llvm/IR/DIBuilder.h" 34 #include "llvm/IR/Dominators.h" 35 #include "llvm/IR/Instructions.h" 36 #include "llvm/IR/IntrinsicInst.h" 37 #include "llvm/IR/MDBuilder.h" 38 #include "llvm/IR/Module.h" 39 #include "llvm/IR/PatternMatch.h" 40 #include "llvm/IR/ProfDataUtils.h" 41 #include "llvm/IR/ValueHandle.h" 42 #include "llvm/InitializePasses.h" 43 #include "llvm/Pass.h" 44 #include "llvm/Support/Compiler.h" 45 #include "llvm/Support/Debug.h" 46 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 47 #include "llvm/Transforms/Utils/Local.h" 48 #include "llvm/Transforms/Utils/ScalarEvolutionExpander.h" 49 50 using namespace llvm; 51 using namespace llvm::PatternMatch; 52 53 #define DEBUG_TYPE "loop-utils" 54 55 static const char *LLVMLoopDisableNonforced = "llvm.loop.disable_nonforced"; 56 static const char *LLVMLoopDisableLICM = "llvm.licm.disable"; 57 58 bool llvm::formDedicatedExitBlocks(Loop *L, DominatorTree *DT, LoopInfo *LI, 59 MemorySSAUpdater *MSSAU, 60 bool PreserveLCSSA) { 61 bool Changed = false; 62 63 // We re-use a vector for the in-loop predecesosrs. 64 SmallVector<BasicBlock *, 4> InLoopPredecessors; 65 66 auto RewriteExit = [&](BasicBlock *BB) { 67 assert(InLoopPredecessors.empty() && 68 "Must start with an empty predecessors list!"); 69 auto Cleanup = make_scope_exit([&] { InLoopPredecessors.clear(); }); 70 71 // See if there are any non-loop predecessors of this exit block and 72 // keep track of the in-loop predecessors. 73 bool IsDedicatedExit = true; 74 for (auto *PredBB : predecessors(BB)) 75 if (L->contains(PredBB)) { 76 if (isa<IndirectBrInst>(PredBB->getTerminator())) 77 // We cannot rewrite exiting edges from an indirectbr. 78 return false; 79 80 InLoopPredecessors.push_back(PredBB); 81 } else { 82 IsDedicatedExit = false; 83 } 84 85 assert(!InLoopPredecessors.empty() && "Must have *some* loop predecessor!"); 86 87 // Nothing to do if this is already a dedicated exit. 88 if (IsDedicatedExit) 89 return false; 90 91 auto *NewExitBB = SplitBlockPredecessors( 92 BB, InLoopPredecessors, ".loopexit", DT, LI, MSSAU, PreserveLCSSA); 93 94 if (!NewExitBB) 95 LLVM_DEBUG( 96 dbgs() << "WARNING: Can't create a dedicated exit block for loop: " 97 << *L << "\n"); 98 else 99 LLVM_DEBUG(dbgs() << "LoopSimplify: Creating dedicated exit block " 100 << NewExitBB->getName() << "\n"); 101 return true; 102 }; 103 104 // Walk the exit blocks directly rather than building up a data structure for 105 // them, but only visit each one once. 106 SmallPtrSet<BasicBlock *, 4> Visited; 107 for (auto *BB : L->blocks()) 108 for (auto *SuccBB : successors(BB)) { 109 // We're looking for exit blocks so skip in-loop successors. 110 if (L->contains(SuccBB)) 111 continue; 112 113 // Visit each exit block exactly once. 114 if (!Visited.insert(SuccBB).second) 115 continue; 116 117 Changed |= RewriteExit(SuccBB); 118 } 119 120 return Changed; 121 } 122 123 /// Returns the instructions that use values defined in the loop. 124 SmallVector<Instruction *, 8> llvm::findDefsUsedOutsideOfLoop(Loop *L) { 125 SmallVector<Instruction *, 8> UsedOutside; 126 127 for (auto *Block : L->getBlocks()) 128 // FIXME: I believe that this could use copy_if if the Inst reference could 129 // be adapted into a pointer. 130 for (auto &Inst : *Block) { 131 auto Users = Inst.users(); 132 if (any_of(Users, [&](User *U) { 133 auto *Use = cast<Instruction>(U); 134 return !L->contains(Use->getParent()); 135 })) 136 UsedOutside.push_back(&Inst); 137 } 138 139 return UsedOutside; 140 } 141 142 void llvm::getLoopAnalysisUsage(AnalysisUsage &AU) { 143 // By definition, all loop passes need the LoopInfo analysis and the 144 // Dominator tree it depends on. Because they all participate in the loop 145 // pass manager, they must also preserve these. 146 AU.addRequired<DominatorTreeWrapperPass>(); 147 AU.addPreserved<DominatorTreeWrapperPass>(); 148 AU.addRequired<LoopInfoWrapperPass>(); 149 AU.addPreserved<LoopInfoWrapperPass>(); 150 151 // We must also preserve LoopSimplify and LCSSA. We locally access their IDs 152 // here because users shouldn't directly get them from this header. 153 extern char &LoopSimplifyID; 154 extern char &LCSSAID; 155 AU.addRequiredID(LoopSimplifyID); 156 AU.addPreservedID(LoopSimplifyID); 157 AU.addRequiredID(LCSSAID); 158 AU.addPreservedID(LCSSAID); 159 // This is used in the LPPassManager to perform LCSSA verification on passes 160 // which preserve lcssa form 161 AU.addRequired<LCSSAVerificationPass>(); 162 AU.addPreserved<LCSSAVerificationPass>(); 163 164 // Loop passes are designed to run inside of a loop pass manager which means 165 // that any function analyses they require must be required by the first loop 166 // pass in the manager (so that it is computed before the loop pass manager 167 // runs) and preserved by all loop pasess in the manager. To make this 168 // reasonably robust, the set needed for most loop passes is maintained here. 169 // If your loop pass requires an analysis not listed here, you will need to 170 // carefully audit the loop pass manager nesting structure that results. 171 AU.addRequired<AAResultsWrapperPass>(); 172 AU.addPreserved<AAResultsWrapperPass>(); 173 AU.addPreserved<BasicAAWrapperPass>(); 174 AU.addPreserved<GlobalsAAWrapperPass>(); 175 AU.addPreserved<SCEVAAWrapperPass>(); 176 AU.addRequired<ScalarEvolutionWrapperPass>(); 177 AU.addPreserved<ScalarEvolutionWrapperPass>(); 178 // FIXME: When all loop passes preserve MemorySSA, it can be required and 179 // preserved here instead of the individual handling in each pass. 180 } 181 182 /// Manually defined generic "LoopPass" dependency initialization. This is used 183 /// to initialize the exact set of passes from above in \c 184 /// getLoopAnalysisUsage. It can be used within a loop pass's initialization 185 /// with: 186 /// 187 /// INITIALIZE_PASS_DEPENDENCY(LoopPass) 188 /// 189 /// As-if "LoopPass" were a pass. 190 void llvm::initializeLoopPassPass(PassRegistry &Registry) { 191 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) 192 INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass) 193 INITIALIZE_PASS_DEPENDENCY(LoopSimplify) 194 INITIALIZE_PASS_DEPENDENCY(LCSSAWrapperPass) 195 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass) 196 INITIALIZE_PASS_DEPENDENCY(BasicAAWrapperPass) 197 INITIALIZE_PASS_DEPENDENCY(GlobalsAAWrapperPass) 198 INITIALIZE_PASS_DEPENDENCY(SCEVAAWrapperPass) 199 INITIALIZE_PASS_DEPENDENCY(ScalarEvolutionWrapperPass) 200 INITIALIZE_PASS_DEPENDENCY(MemorySSAWrapperPass) 201 } 202 203 /// Create MDNode for input string. 204 static MDNode *createStringMetadata(Loop *TheLoop, StringRef Name, unsigned V) { 205 LLVMContext &Context = TheLoop->getHeader()->getContext(); 206 Metadata *MDs[] = { 207 MDString::get(Context, Name), 208 ConstantAsMetadata::get(ConstantInt::get(Type::getInt32Ty(Context), V))}; 209 return MDNode::get(Context, MDs); 210 } 211 212 /// Set input string into loop metadata by keeping other values intact. 213 /// If the string is already in loop metadata update value if it is 214 /// different. 215 void llvm::addStringMetadataToLoop(Loop *TheLoop, const char *StringMD, 216 unsigned V) { 217 SmallVector<Metadata *, 4> MDs(1); 218 // If the loop already has metadata, retain it. 219 MDNode *LoopID = TheLoop->getLoopID(); 220 if (LoopID) { 221 for (unsigned i = 1, ie = LoopID->getNumOperands(); i < ie; ++i) { 222 MDNode *Node = cast<MDNode>(LoopID->getOperand(i)); 223 // If it is of form key = value, try to parse it. 224 if (Node->getNumOperands() == 2) { 225 MDString *S = dyn_cast<MDString>(Node->getOperand(0)); 226 if (S && S->getString() == StringMD) { 227 ConstantInt *IntMD = 228 mdconst::extract_or_null<ConstantInt>(Node->getOperand(1)); 229 if (IntMD && IntMD->getSExtValue() == V) 230 // It is already in place. Do nothing. 231 return; 232 // We need to update the value, so just skip it here and it will 233 // be added after copying other existed nodes. 234 continue; 235 } 236 } 237 MDs.push_back(Node); 238 } 239 } 240 // Add new metadata. 241 MDs.push_back(createStringMetadata(TheLoop, StringMD, V)); 242 // Replace current metadata node with new one. 243 LLVMContext &Context = TheLoop->getHeader()->getContext(); 244 MDNode *NewLoopID = MDNode::get(Context, MDs); 245 // Set operand 0 to refer to the loop id itself. 246 NewLoopID->replaceOperandWith(0, NewLoopID); 247 TheLoop->setLoopID(NewLoopID); 248 } 249 250 std::optional<ElementCount> 251 llvm::getOptionalElementCountLoopAttribute(const Loop *TheLoop) { 252 std::optional<int> Width = 253 getOptionalIntLoopAttribute(TheLoop, "llvm.loop.vectorize.width"); 254 255 if (Width) { 256 std::optional<int> IsScalable = getOptionalIntLoopAttribute( 257 TheLoop, "llvm.loop.vectorize.scalable.enable"); 258 return ElementCount::get(*Width, IsScalable.value_or(false)); 259 } 260 261 return std::nullopt; 262 } 263 264 std::optional<MDNode *> llvm::makeFollowupLoopID( 265 MDNode *OrigLoopID, ArrayRef<StringRef> FollowupOptions, 266 const char *InheritOptionsExceptPrefix, bool AlwaysNew) { 267 if (!OrigLoopID) { 268 if (AlwaysNew) 269 return nullptr; 270 return std::nullopt; 271 } 272 273 assert(OrigLoopID->getOperand(0) == OrigLoopID); 274 275 bool InheritAllAttrs = !InheritOptionsExceptPrefix; 276 bool InheritSomeAttrs = 277 InheritOptionsExceptPrefix && InheritOptionsExceptPrefix[0] != '\0'; 278 SmallVector<Metadata *, 8> MDs; 279 MDs.push_back(nullptr); 280 281 bool Changed = false; 282 if (InheritAllAttrs || InheritSomeAttrs) { 283 for (const MDOperand &Existing : drop_begin(OrigLoopID->operands())) { 284 MDNode *Op = cast<MDNode>(Existing.get()); 285 286 auto InheritThisAttribute = [InheritSomeAttrs, 287 InheritOptionsExceptPrefix](MDNode *Op) { 288 if (!InheritSomeAttrs) 289 return false; 290 291 // Skip malformatted attribute metadata nodes. 292 if (Op->getNumOperands() == 0) 293 return true; 294 Metadata *NameMD = Op->getOperand(0).get(); 295 if (!isa<MDString>(NameMD)) 296 return true; 297 StringRef AttrName = cast<MDString>(NameMD)->getString(); 298 299 // Do not inherit excluded attributes. 300 return !AttrName.starts_with(InheritOptionsExceptPrefix); 301 }; 302 303 if (InheritThisAttribute(Op)) 304 MDs.push_back(Op); 305 else 306 Changed = true; 307 } 308 } else { 309 // Modified if we dropped at least one attribute. 310 Changed = OrigLoopID->getNumOperands() > 1; 311 } 312 313 bool HasAnyFollowup = false; 314 for (StringRef OptionName : FollowupOptions) { 315 MDNode *FollowupNode = findOptionMDForLoopID(OrigLoopID, OptionName); 316 if (!FollowupNode) 317 continue; 318 319 HasAnyFollowup = true; 320 for (const MDOperand &Option : drop_begin(FollowupNode->operands())) { 321 MDs.push_back(Option.get()); 322 Changed = true; 323 } 324 } 325 326 // Attributes of the followup loop not specified explicity, so signal to the 327 // transformation pass to add suitable attributes. 328 if (!AlwaysNew && !HasAnyFollowup) 329 return std::nullopt; 330 331 // If no attributes were added or remove, the previous loop Id can be reused. 332 if (!AlwaysNew && !Changed) 333 return OrigLoopID; 334 335 // No attributes is equivalent to having no !llvm.loop metadata at all. 336 if (MDs.size() == 1) 337 return nullptr; 338 339 // Build the new loop ID. 340 MDTuple *FollowupLoopID = MDNode::get(OrigLoopID->getContext(), MDs); 341 FollowupLoopID->replaceOperandWith(0, FollowupLoopID); 342 return FollowupLoopID; 343 } 344 345 bool llvm::hasDisableAllTransformsHint(const Loop *L) { 346 return getBooleanLoopAttribute(L, LLVMLoopDisableNonforced); 347 } 348 349 bool llvm::hasDisableLICMTransformsHint(const Loop *L) { 350 return getBooleanLoopAttribute(L, LLVMLoopDisableLICM); 351 } 352 353 TransformationMode llvm::hasUnrollTransformation(const Loop *L) { 354 if (getBooleanLoopAttribute(L, "llvm.loop.unroll.disable")) 355 return TM_SuppressedByUser; 356 357 std::optional<int> Count = 358 getOptionalIntLoopAttribute(L, "llvm.loop.unroll.count"); 359 if (Count) 360 return *Count == 1 ? TM_SuppressedByUser : TM_ForcedByUser; 361 362 if (getBooleanLoopAttribute(L, "llvm.loop.unroll.enable")) 363 return TM_ForcedByUser; 364 365 if (getBooleanLoopAttribute(L, "llvm.loop.unroll.full")) 366 return TM_ForcedByUser; 367 368 if (hasDisableAllTransformsHint(L)) 369 return TM_Disable; 370 371 return TM_Unspecified; 372 } 373 374 TransformationMode llvm::hasUnrollAndJamTransformation(const Loop *L) { 375 if (getBooleanLoopAttribute(L, "llvm.loop.unroll_and_jam.disable")) 376 return TM_SuppressedByUser; 377 378 std::optional<int> Count = 379 getOptionalIntLoopAttribute(L, "llvm.loop.unroll_and_jam.count"); 380 if (Count) 381 return *Count == 1 ? TM_SuppressedByUser : TM_ForcedByUser; 382 383 if (getBooleanLoopAttribute(L, "llvm.loop.unroll_and_jam.enable")) 384 return TM_ForcedByUser; 385 386 if (hasDisableAllTransformsHint(L)) 387 return TM_Disable; 388 389 return TM_Unspecified; 390 } 391 392 TransformationMode llvm::hasVectorizeTransformation(const Loop *L) { 393 std::optional<bool> Enable = 394 getOptionalBoolLoopAttribute(L, "llvm.loop.vectorize.enable"); 395 396 if (Enable == false) 397 return TM_SuppressedByUser; 398 399 std::optional<ElementCount> VectorizeWidth = 400 getOptionalElementCountLoopAttribute(L); 401 std::optional<int> InterleaveCount = 402 getOptionalIntLoopAttribute(L, "llvm.loop.interleave.count"); 403 404 // 'Forcing' vector width and interleave count to one effectively disables 405 // this tranformation. 406 if (Enable == true && VectorizeWidth && VectorizeWidth->isScalar() && 407 InterleaveCount == 1) 408 return TM_SuppressedByUser; 409 410 if (getBooleanLoopAttribute(L, "llvm.loop.isvectorized")) 411 return TM_Disable; 412 413 if (Enable == true) 414 return TM_ForcedByUser; 415 416 if ((VectorizeWidth && VectorizeWidth->isScalar()) && InterleaveCount == 1) 417 return TM_Disable; 418 419 if ((VectorizeWidth && VectorizeWidth->isVector()) || InterleaveCount > 1) 420 return TM_Enable; 421 422 if (hasDisableAllTransformsHint(L)) 423 return TM_Disable; 424 425 return TM_Unspecified; 426 } 427 428 TransformationMode llvm::hasDistributeTransformation(const Loop *L) { 429 if (getBooleanLoopAttribute(L, "llvm.loop.distribute.enable")) 430 return TM_ForcedByUser; 431 432 if (hasDisableAllTransformsHint(L)) 433 return TM_Disable; 434 435 return TM_Unspecified; 436 } 437 438 TransformationMode llvm::hasLICMVersioningTransformation(const Loop *L) { 439 if (getBooleanLoopAttribute(L, "llvm.loop.licm_versioning.disable")) 440 return TM_SuppressedByUser; 441 442 if (hasDisableAllTransformsHint(L)) 443 return TM_Disable; 444 445 return TM_Unspecified; 446 } 447 448 /// Does a BFS from a given node to all of its children inside a given loop. 449 /// The returned vector of basic blocks includes the starting point. 450 SmallVector<BasicBlock *, 16> llvm::collectChildrenInLoop(DominatorTree *DT, 451 DomTreeNode *N, 452 const Loop *CurLoop) { 453 SmallVector<BasicBlock *, 16> Worklist; 454 auto AddRegionToWorklist = [&](DomTreeNode *DTN) { 455 // Only include subregions in the top level loop. 456 BasicBlock *BB = DTN->getBlock(); 457 if (CurLoop->contains(BB)) 458 Worklist.push_back(DTN->getBlock()); 459 }; 460 461 AddRegionToWorklist(N); 462 463 for (size_t I = 0; I < Worklist.size(); I++) { 464 for (DomTreeNode *Child : DT->getNode(Worklist[I])->children()) 465 AddRegionToWorklist(Child); 466 } 467 468 return Worklist; 469 } 470 471 bool llvm::isAlmostDeadIV(PHINode *PN, BasicBlock *LatchBlock, Value *Cond) { 472 int LatchIdx = PN->getBasicBlockIndex(LatchBlock); 473 assert(LatchIdx != -1 && "LatchBlock is not a case in this PHINode"); 474 Value *IncV = PN->getIncomingValue(LatchIdx); 475 476 for (User *U : PN->users()) 477 if (U != Cond && U != IncV) return false; 478 479 for (User *U : IncV->users()) 480 if (U != Cond && U != PN) return false; 481 return true; 482 } 483 484 485 void llvm::deleteDeadLoop(Loop *L, DominatorTree *DT, ScalarEvolution *SE, 486 LoopInfo *LI, MemorySSA *MSSA) { 487 assert((!DT || L->isLCSSAForm(*DT)) && "Expected LCSSA!"); 488 auto *Preheader = L->getLoopPreheader(); 489 assert(Preheader && "Preheader should exist!"); 490 491 std::unique_ptr<MemorySSAUpdater> MSSAU; 492 if (MSSA) 493 MSSAU = std::make_unique<MemorySSAUpdater>(MSSA); 494 495 // Now that we know the removal is safe, remove the loop by changing the 496 // branch from the preheader to go to the single exit block. 497 // 498 // Because we're deleting a large chunk of code at once, the sequence in which 499 // we remove things is very important to avoid invalidation issues. 500 501 // Tell ScalarEvolution that the loop is deleted. Do this before 502 // deleting the loop so that ScalarEvolution can look at the loop 503 // to determine what it needs to clean up. 504 if (SE) { 505 SE->forgetLoop(L); 506 SE->forgetBlockAndLoopDispositions(); 507 } 508 509 Instruction *OldTerm = Preheader->getTerminator(); 510 assert(!OldTerm->mayHaveSideEffects() && 511 "Preheader must end with a side-effect-free terminator"); 512 assert(OldTerm->getNumSuccessors() == 1 && 513 "Preheader must have a single successor"); 514 // Connect the preheader to the exit block. Keep the old edge to the header 515 // around to perform the dominator tree update in two separate steps 516 // -- #1 insertion of the edge preheader -> exit and #2 deletion of the edge 517 // preheader -> header. 518 // 519 // 520 // 0. Preheader 1. Preheader 2. Preheader 521 // | | | | 522 // V | V | 523 // Header <--\ | Header <--\ | Header <--\ 524 // | | | | | | | | | | | 525 // | V | | | V | | | V | 526 // | Body --/ | | Body --/ | | Body --/ 527 // V V V V V 528 // Exit Exit Exit 529 // 530 // By doing this is two separate steps we can perform the dominator tree 531 // update without using the batch update API. 532 // 533 // Even when the loop is never executed, we cannot remove the edge from the 534 // source block to the exit block. Consider the case where the unexecuted loop 535 // branches back to an outer loop. If we deleted the loop and removed the edge 536 // coming to this inner loop, this will break the outer loop structure (by 537 // deleting the backedge of the outer loop). If the outer loop is indeed a 538 // non-loop, it will be deleted in a future iteration of loop deletion pass. 539 IRBuilder<> Builder(OldTerm); 540 541 auto *ExitBlock = L->getUniqueExitBlock(); 542 DomTreeUpdater DTU(DT, DomTreeUpdater::UpdateStrategy::Eager); 543 if (ExitBlock) { 544 assert(ExitBlock && "Should have a unique exit block!"); 545 assert(L->hasDedicatedExits() && "Loop should have dedicated exits!"); 546 547 Builder.CreateCondBr(Builder.getFalse(), L->getHeader(), ExitBlock); 548 // Remove the old branch. The conditional branch becomes a new terminator. 549 OldTerm->eraseFromParent(); 550 551 // Rewrite phis in the exit block to get their inputs from the Preheader 552 // instead of the exiting block. 553 for (PHINode &P : ExitBlock->phis()) { 554 // Set the zero'th element of Phi to be from the preheader and remove all 555 // other incoming values. Given the loop has dedicated exits, all other 556 // incoming values must be from the exiting blocks. 557 int PredIndex = 0; 558 P.setIncomingBlock(PredIndex, Preheader); 559 // Removes all incoming values from all other exiting blocks (including 560 // duplicate values from an exiting block). 561 // Nuke all entries except the zero'th entry which is the preheader entry. 562 P.removeIncomingValueIf([](unsigned Idx) { return Idx != 0; }, 563 /* DeletePHIIfEmpty */ false); 564 565 assert((P.getNumIncomingValues() == 1 && 566 P.getIncomingBlock(PredIndex) == Preheader) && 567 "Should have exactly one value and that's from the preheader!"); 568 } 569 570 if (DT) { 571 DTU.applyUpdates({{DominatorTree::Insert, Preheader, ExitBlock}}); 572 if (MSSA) { 573 MSSAU->applyUpdates({{DominatorTree::Insert, Preheader, ExitBlock}}, 574 *DT); 575 if (VerifyMemorySSA) 576 MSSA->verifyMemorySSA(); 577 } 578 } 579 580 // Disconnect the loop body by branching directly to its exit. 581 Builder.SetInsertPoint(Preheader->getTerminator()); 582 Builder.CreateBr(ExitBlock); 583 // Remove the old branch. 584 Preheader->getTerminator()->eraseFromParent(); 585 } else { 586 assert(L->hasNoExitBlocks() && 587 "Loop should have either zero or one exit blocks."); 588 589 Builder.SetInsertPoint(OldTerm); 590 Builder.CreateUnreachable(); 591 Preheader->getTerminator()->eraseFromParent(); 592 } 593 594 if (DT) { 595 DTU.applyUpdates({{DominatorTree::Delete, Preheader, L->getHeader()}}); 596 if (MSSA) { 597 MSSAU->applyUpdates({{DominatorTree::Delete, Preheader, L->getHeader()}}, 598 *DT); 599 SmallSetVector<BasicBlock *, 8> DeadBlockSet(L->block_begin(), 600 L->block_end()); 601 MSSAU->removeBlocks(DeadBlockSet); 602 if (VerifyMemorySSA) 603 MSSA->verifyMemorySSA(); 604 } 605 } 606 607 // Use a map to unique and a vector to guarantee deterministic ordering. 608 llvm::SmallDenseSet<DebugVariable, 4> DeadDebugSet; 609 llvm::SmallVector<DbgVariableRecord *, 4> DeadDbgVariableRecords; 610 611 if (ExitBlock) { 612 // Given LCSSA form is satisfied, we should not have users of instructions 613 // within the dead loop outside of the loop. However, LCSSA doesn't take 614 // unreachable uses into account. We handle them here. 615 // We could do it after drop all references (in this case all users in the 616 // loop will be already eliminated and we have less work to do but according 617 // to API doc of User::dropAllReferences only valid operation after dropping 618 // references, is deletion. So let's substitute all usages of 619 // instruction from the loop with poison value of corresponding type first. 620 for (auto *Block : L->blocks()) 621 for (Instruction &I : *Block) { 622 auto *Poison = PoisonValue::get(I.getType()); 623 for (Use &U : llvm::make_early_inc_range(I.uses())) { 624 if (auto *Usr = dyn_cast<Instruction>(U.getUser())) 625 if (L->contains(Usr->getParent())) 626 continue; 627 // If we have a DT then we can check that uses outside a loop only in 628 // unreachable block. 629 if (DT) 630 assert(!DT->isReachableFromEntry(U) && 631 "Unexpected user in reachable block"); 632 U.set(Poison); 633 } 634 635 // For one of each variable encountered, preserve a debug record (set 636 // to Poison) and transfer it to the loop exit. This terminates any 637 // variable locations that were set during the loop. 638 for (DbgVariableRecord &DVR : 639 llvm::make_early_inc_range(filterDbgVars(I.getDbgRecordRange()))) { 640 DebugVariable Key(DVR.getVariable(), DVR.getExpression(), 641 DVR.getDebugLoc().get()); 642 if (!DeadDebugSet.insert(Key).second) 643 continue; 644 // Unlinks the DVR from it's container, for later insertion. 645 DVR.removeFromParent(); 646 DeadDbgVariableRecords.push_back(&DVR); 647 } 648 } 649 650 // After the loop has been deleted all the values defined and modified 651 // inside the loop are going to be unavailable. Values computed in the 652 // loop will have been deleted, automatically causing their debug uses 653 // be be replaced with undef. Loop invariant values will still be available. 654 // Move dbg.values out the loop so that earlier location ranges are still 655 // terminated and loop invariant assignments are preserved. 656 DIBuilder DIB(*ExitBlock->getModule()); 657 BasicBlock::iterator InsertDbgValueBefore = 658 ExitBlock->getFirstInsertionPt(); 659 assert(InsertDbgValueBefore != ExitBlock->end() && 660 "There should be a non-PHI instruction in exit block, else these " 661 "instructions will have no parent."); 662 663 // Due to the "head" bit in BasicBlock::iterator, we're going to insert 664 // each DbgVariableRecord right at the start of the block, wheras dbg.values 665 // would be repeatedly inserted before the first instruction. To replicate 666 // this behaviour, do it backwards. 667 for (DbgVariableRecord *DVR : llvm::reverse(DeadDbgVariableRecords)) 668 ExitBlock->insertDbgRecordBefore(DVR, InsertDbgValueBefore); 669 } 670 671 // Remove the block from the reference counting scheme, so that we can 672 // delete it freely later. 673 for (auto *Block : L->blocks()) 674 Block->dropAllReferences(); 675 676 if (MSSA && VerifyMemorySSA) 677 MSSA->verifyMemorySSA(); 678 679 if (LI) { 680 // Erase the instructions and the blocks without having to worry 681 // about ordering because we already dropped the references. 682 // NOTE: This iteration is safe because erasing the block does not remove 683 // its entry from the loop's block list. We do that in the next section. 684 for (BasicBlock *BB : L->blocks()) 685 BB->eraseFromParent(); 686 687 // Finally, the blocks from loopinfo. This has to happen late because 688 // otherwise our loop iterators won't work. 689 690 SmallPtrSet<BasicBlock *, 8> blocks(llvm::from_range, L->blocks()); 691 for (BasicBlock *BB : blocks) 692 LI->removeBlock(BB); 693 694 // The last step is to update LoopInfo now that we've eliminated this loop. 695 // Note: LoopInfo::erase remove the given loop and relink its subloops with 696 // its parent. While removeLoop/removeChildLoop remove the given loop but 697 // not relink its subloops, which is what we want. 698 if (Loop *ParentLoop = L->getParentLoop()) { 699 Loop::iterator I = find(*ParentLoop, L); 700 assert(I != ParentLoop->end() && "Couldn't find loop"); 701 ParentLoop->removeChildLoop(I); 702 } else { 703 Loop::iterator I = find(*LI, L); 704 assert(I != LI->end() && "Couldn't find loop"); 705 LI->removeLoop(I); 706 } 707 LI->destroy(L); 708 } 709 } 710 711 void llvm::breakLoopBackedge(Loop *L, DominatorTree &DT, ScalarEvolution &SE, 712 LoopInfo &LI, MemorySSA *MSSA) { 713 auto *Latch = L->getLoopLatch(); 714 assert(Latch && "multiple latches not yet supported"); 715 auto *Header = L->getHeader(); 716 Loop *OutermostLoop = L->getOutermostLoop(); 717 718 SE.forgetLoop(L); 719 SE.forgetBlockAndLoopDispositions(); 720 721 std::unique_ptr<MemorySSAUpdater> MSSAU; 722 if (MSSA) 723 MSSAU = std::make_unique<MemorySSAUpdater>(MSSA); 724 725 // Update the CFG and domtree. We chose to special case a couple of 726 // of common cases for code quality and test readability reasons. 727 [&]() -> void { 728 if (auto *BI = dyn_cast<BranchInst>(Latch->getTerminator())) { 729 if (!BI->isConditional()) { 730 DomTreeUpdater DTU(&DT, DomTreeUpdater::UpdateStrategy::Eager); 731 (void)changeToUnreachable(BI, /*PreserveLCSSA*/ true, &DTU, 732 MSSAU.get()); 733 return; 734 } 735 736 // Conditional latch/exit - note that latch can be shared by inner 737 // and outer loop so the other target doesn't need to an exit 738 if (L->isLoopExiting(Latch)) { 739 // TODO: Generalize ConstantFoldTerminator so that it can be used 740 // here without invalidating LCSSA or MemorySSA. (Tricky case for 741 // LCSSA: header is an exit block of a preceeding sibling loop w/o 742 // dedicated exits.) 743 const unsigned ExitIdx = L->contains(BI->getSuccessor(0)) ? 1 : 0; 744 BasicBlock *ExitBB = BI->getSuccessor(ExitIdx); 745 746 DomTreeUpdater DTU(&DT, DomTreeUpdater::UpdateStrategy::Eager); 747 Header->removePredecessor(Latch, true); 748 749 IRBuilder<> Builder(BI); 750 auto *NewBI = Builder.CreateBr(ExitBB); 751 // Transfer the metadata to the new branch instruction (minus the 752 // loop info since this is no longer a loop) 753 NewBI->copyMetadata(*BI, {LLVMContext::MD_dbg, 754 LLVMContext::MD_annotation}); 755 756 BI->eraseFromParent(); 757 DTU.applyUpdates({{DominatorTree::Delete, Latch, Header}}); 758 if (MSSA) 759 MSSAU->applyUpdates({{DominatorTree::Delete, Latch, Header}}, DT); 760 return; 761 } 762 } 763 764 // General case. By splitting the backedge, and then explicitly making it 765 // unreachable we gracefully handle corner cases such as switch and invoke 766 // termiantors. 767 auto *BackedgeBB = SplitEdge(Latch, Header, &DT, &LI, MSSAU.get()); 768 769 DomTreeUpdater DTU(&DT, DomTreeUpdater::UpdateStrategy::Eager); 770 (void)changeToUnreachable(BackedgeBB->getTerminator(), 771 /*PreserveLCSSA*/ true, &DTU, MSSAU.get()); 772 }(); 773 774 // Erase (and destroy) this loop instance. Handles relinking sub-loops 775 // and blocks within the loop as needed. 776 LI.erase(L); 777 778 // If the loop we broke had a parent, then changeToUnreachable might have 779 // caused a block to be removed from the parent loop (see loop_nest_lcssa 780 // test case in zero-btc.ll for an example), thus changing the parent's 781 // exit blocks. If that happened, we need to rebuild LCSSA on the outermost 782 // loop which might have a had a block removed. 783 if (OutermostLoop != L) 784 formLCSSARecursively(*OutermostLoop, DT, &LI, &SE); 785 } 786 787 788 /// Checks if \p L has an exiting latch branch. There may also be other 789 /// exiting blocks. Returns branch instruction terminating the loop 790 /// latch if above check is successful, nullptr otherwise. 791 static BranchInst *getExpectedExitLoopLatchBranch(Loop *L) { 792 BasicBlock *Latch = L->getLoopLatch(); 793 if (!Latch) 794 return nullptr; 795 796 BranchInst *LatchBR = dyn_cast<BranchInst>(Latch->getTerminator()); 797 if (!LatchBR || LatchBR->getNumSuccessors() != 2 || !L->isLoopExiting(Latch)) 798 return nullptr; 799 800 assert((LatchBR->getSuccessor(0) == L->getHeader() || 801 LatchBR->getSuccessor(1) == L->getHeader()) && 802 "At least one edge out of the latch must go to the header"); 803 804 return LatchBR; 805 } 806 807 /// Return the estimated trip count for any exiting branch which dominates 808 /// the loop latch. 809 static std::optional<unsigned> getEstimatedTripCount(BranchInst *ExitingBranch, 810 Loop *L, 811 uint64_t &OrigExitWeight) { 812 // To estimate the number of times the loop body was executed, we want to 813 // know the number of times the backedge was taken, vs. the number of times 814 // we exited the loop. 815 uint64_t LoopWeight, ExitWeight; 816 if (!extractBranchWeights(*ExitingBranch, LoopWeight, ExitWeight)) 817 return std::nullopt; 818 819 if (L->contains(ExitingBranch->getSuccessor(1))) 820 std::swap(LoopWeight, ExitWeight); 821 822 if (!ExitWeight) 823 // Don't have a way to return predicated infinite 824 return std::nullopt; 825 826 OrigExitWeight = ExitWeight; 827 828 // Estimated exit count is a ratio of the loop weight by the weight of the 829 // edge exiting the loop, rounded to nearest. 830 uint64_t ExitCount = llvm::divideNearest(LoopWeight, ExitWeight); 831 832 // When ExitCount + 1 would wrap in unsigned, saturate at UINT_MAX. 833 if (ExitCount >= std::numeric_limits<unsigned>::max()) 834 return std::numeric_limits<unsigned>::max(); 835 836 // Estimated trip count is one plus estimated exit count. 837 return ExitCount + 1; 838 } 839 840 std::optional<unsigned> 841 llvm::getLoopEstimatedTripCount(Loop *L, 842 unsigned *EstimatedLoopInvocationWeight) { 843 // Currently we take the estimate exit count only from the loop latch, 844 // ignoring other exiting blocks. This can overestimate the trip count 845 // if we exit through another exit, but can never underestimate it. 846 // TODO: incorporate information from other exits 847 if (BranchInst *LatchBranch = getExpectedExitLoopLatchBranch(L)) { 848 uint64_t ExitWeight; 849 if (std::optional<uint64_t> EstTripCount = 850 getEstimatedTripCount(LatchBranch, L, ExitWeight)) { 851 if (EstimatedLoopInvocationWeight) 852 *EstimatedLoopInvocationWeight = ExitWeight; 853 return *EstTripCount; 854 } 855 } 856 return std::nullopt; 857 } 858 859 bool llvm::setLoopEstimatedTripCount(Loop *L, unsigned EstimatedTripCount, 860 unsigned EstimatedloopInvocationWeight) { 861 // At the moment, we currently support changing the estimate trip count of 862 // the latch branch only. We could extend this API to manipulate estimated 863 // trip counts for any exit. 864 BranchInst *LatchBranch = getExpectedExitLoopLatchBranch(L); 865 if (!LatchBranch) 866 return false; 867 868 // Calculate taken and exit weights. 869 unsigned LatchExitWeight = 0; 870 unsigned BackedgeTakenWeight = 0; 871 872 if (EstimatedTripCount > 0) { 873 LatchExitWeight = EstimatedloopInvocationWeight; 874 BackedgeTakenWeight = (EstimatedTripCount - 1) * LatchExitWeight; 875 } 876 877 // Make a swap if back edge is taken when condition is "false". 878 if (LatchBranch->getSuccessor(0) != L->getHeader()) 879 std::swap(BackedgeTakenWeight, LatchExitWeight); 880 881 MDBuilder MDB(LatchBranch->getContext()); 882 883 // Set/Update profile metadata. 884 LatchBranch->setMetadata( 885 LLVMContext::MD_prof, 886 MDB.createBranchWeights(BackedgeTakenWeight, LatchExitWeight)); 887 888 return true; 889 } 890 891 bool llvm::hasIterationCountInvariantInParent(Loop *InnerLoop, 892 ScalarEvolution &SE) { 893 Loop *OuterL = InnerLoop->getParentLoop(); 894 if (!OuterL) 895 return true; 896 897 // Get the backedge taken count for the inner loop 898 BasicBlock *InnerLoopLatch = InnerLoop->getLoopLatch(); 899 const SCEV *InnerLoopBECountSC = SE.getExitCount(InnerLoop, InnerLoopLatch); 900 if (isa<SCEVCouldNotCompute>(InnerLoopBECountSC) || 901 !InnerLoopBECountSC->getType()->isIntegerTy()) 902 return false; 903 904 // Get whether count is invariant to the outer loop 905 ScalarEvolution::LoopDisposition LD = 906 SE.getLoopDisposition(InnerLoopBECountSC, OuterL); 907 if (LD != ScalarEvolution::LoopInvariant) 908 return false; 909 910 return true; 911 } 912 913 constexpr Intrinsic::ID llvm::getReductionIntrinsicID(RecurKind RK) { 914 switch (RK) { 915 default: 916 llvm_unreachable("Unexpected recurrence kind"); 917 case RecurKind::Add: 918 return Intrinsic::vector_reduce_add; 919 case RecurKind::Mul: 920 return Intrinsic::vector_reduce_mul; 921 case RecurKind::And: 922 return Intrinsic::vector_reduce_and; 923 case RecurKind::Or: 924 return Intrinsic::vector_reduce_or; 925 case RecurKind::Xor: 926 return Intrinsic::vector_reduce_xor; 927 case RecurKind::FMulAdd: 928 case RecurKind::FAdd: 929 return Intrinsic::vector_reduce_fadd; 930 case RecurKind::FMul: 931 return Intrinsic::vector_reduce_fmul; 932 case RecurKind::SMax: 933 return Intrinsic::vector_reduce_smax; 934 case RecurKind::SMin: 935 return Intrinsic::vector_reduce_smin; 936 case RecurKind::UMax: 937 return Intrinsic::vector_reduce_umax; 938 case RecurKind::UMin: 939 return Intrinsic::vector_reduce_umin; 940 case RecurKind::FMax: 941 case RecurKind::FMaxNum: 942 return Intrinsic::vector_reduce_fmax; 943 case RecurKind::FMin: 944 case RecurKind::FMinNum: 945 return Intrinsic::vector_reduce_fmin; 946 case RecurKind::FMaximum: 947 return Intrinsic::vector_reduce_fmaximum; 948 case RecurKind::FMinimum: 949 return Intrinsic::vector_reduce_fminimum; 950 case RecurKind::FMaximumNum: 951 return Intrinsic::vector_reduce_fmax; 952 case RecurKind::FMinimumNum: 953 return Intrinsic::vector_reduce_fmin; 954 } 955 } 956 957 // This is the inverse to getReductionForBinop 958 unsigned llvm::getArithmeticReductionInstruction(Intrinsic::ID RdxID) { 959 switch (RdxID) { 960 case Intrinsic::vector_reduce_fadd: 961 return Instruction::FAdd; 962 case Intrinsic::vector_reduce_fmul: 963 return Instruction::FMul; 964 case Intrinsic::vector_reduce_add: 965 return Instruction::Add; 966 case Intrinsic::vector_reduce_mul: 967 return Instruction::Mul; 968 case Intrinsic::vector_reduce_and: 969 return Instruction::And; 970 case Intrinsic::vector_reduce_or: 971 return Instruction::Or; 972 case Intrinsic::vector_reduce_xor: 973 return Instruction::Xor; 974 case Intrinsic::vector_reduce_smax: 975 case Intrinsic::vector_reduce_smin: 976 case Intrinsic::vector_reduce_umax: 977 case Intrinsic::vector_reduce_umin: 978 return Instruction::ICmp; 979 case Intrinsic::vector_reduce_fmax: 980 case Intrinsic::vector_reduce_fmin: 981 return Instruction::FCmp; 982 default: 983 llvm_unreachable("Unexpected ID"); 984 } 985 } 986 987 // This is the inverse to getArithmeticReductionInstruction 988 Intrinsic::ID llvm::getReductionForBinop(Instruction::BinaryOps Opc) { 989 switch (Opc) { 990 default: 991 break; 992 case Instruction::Add: 993 return Intrinsic::vector_reduce_add; 994 case Instruction::Mul: 995 return Intrinsic::vector_reduce_mul; 996 case Instruction::And: 997 return Intrinsic::vector_reduce_and; 998 case Instruction::Or: 999 return Intrinsic::vector_reduce_or; 1000 case Instruction::Xor: 1001 return Intrinsic::vector_reduce_xor; 1002 } 1003 return Intrinsic::not_intrinsic; 1004 } 1005 1006 Intrinsic::ID llvm::getMinMaxReductionIntrinsicOp(Intrinsic::ID RdxID) { 1007 switch (RdxID) { 1008 default: 1009 llvm_unreachable("Unknown min/max recurrence kind"); 1010 case Intrinsic::vector_reduce_umin: 1011 return Intrinsic::umin; 1012 case Intrinsic::vector_reduce_umax: 1013 return Intrinsic::umax; 1014 case Intrinsic::vector_reduce_smin: 1015 return Intrinsic::smin; 1016 case Intrinsic::vector_reduce_smax: 1017 return Intrinsic::smax; 1018 case Intrinsic::vector_reduce_fmin: 1019 return Intrinsic::minnum; 1020 case Intrinsic::vector_reduce_fmax: 1021 return Intrinsic::maxnum; 1022 case Intrinsic::vector_reduce_fminimum: 1023 return Intrinsic::minimum; 1024 case Intrinsic::vector_reduce_fmaximum: 1025 return Intrinsic::maximum; 1026 } 1027 } 1028 1029 Intrinsic::ID llvm::getMinMaxReductionIntrinsicOp(RecurKind RK) { 1030 switch (RK) { 1031 default: 1032 llvm_unreachable("Unknown min/max recurrence kind"); 1033 case RecurKind::UMin: 1034 return Intrinsic::umin; 1035 case RecurKind::UMax: 1036 return Intrinsic::umax; 1037 case RecurKind::SMin: 1038 return Intrinsic::smin; 1039 case RecurKind::SMax: 1040 return Intrinsic::smax; 1041 case RecurKind::FMin: 1042 case RecurKind::FMinNum: 1043 return Intrinsic::minnum; 1044 case RecurKind::FMax: 1045 case RecurKind::FMaxNum: 1046 return Intrinsic::maxnum; 1047 case RecurKind::FMinimum: 1048 return Intrinsic::minimum; 1049 case RecurKind::FMaximum: 1050 return Intrinsic::maximum; 1051 case RecurKind::FMinimumNum: 1052 return Intrinsic::minimumnum; 1053 case RecurKind::FMaximumNum: 1054 return Intrinsic::maximumnum; 1055 } 1056 } 1057 1058 RecurKind llvm::getMinMaxReductionRecurKind(Intrinsic::ID RdxID) { 1059 switch (RdxID) { 1060 case Intrinsic::vector_reduce_smax: 1061 return RecurKind::SMax; 1062 case Intrinsic::vector_reduce_smin: 1063 return RecurKind::SMin; 1064 case Intrinsic::vector_reduce_umax: 1065 return RecurKind::UMax; 1066 case Intrinsic::vector_reduce_umin: 1067 return RecurKind::UMin; 1068 case Intrinsic::vector_reduce_fmax: 1069 return RecurKind::FMax; 1070 case Intrinsic::vector_reduce_fmin: 1071 return RecurKind::FMin; 1072 default: 1073 return RecurKind::None; 1074 } 1075 } 1076 1077 CmpInst::Predicate llvm::getMinMaxReductionPredicate(RecurKind RK) { 1078 switch (RK) { 1079 default: 1080 llvm_unreachable("Unknown min/max recurrence kind"); 1081 case RecurKind::UMin: 1082 return CmpInst::ICMP_ULT; 1083 case RecurKind::UMax: 1084 return CmpInst::ICMP_UGT; 1085 case RecurKind::SMin: 1086 return CmpInst::ICMP_SLT; 1087 case RecurKind::SMax: 1088 return CmpInst::ICMP_SGT; 1089 case RecurKind::FMin: 1090 return CmpInst::FCMP_OLT; 1091 case RecurKind::FMax: 1092 return CmpInst::FCMP_OGT; 1093 // We do not add FMinimum/FMaximum recurrence kind here since there is no 1094 // equivalent predicate which compares signed zeroes according to the 1095 // semantics of the intrinsics (llvm.minimum/maximum). 1096 } 1097 } 1098 1099 Value *llvm::createMinMaxOp(IRBuilderBase &Builder, RecurKind RK, Value *Left, 1100 Value *Right) { 1101 Type *Ty = Left->getType(); 1102 if (Ty->isIntOrIntVectorTy() || 1103 (RK == RecurKind::FMinNum || RK == RecurKind::FMaxNum || 1104 RK == RecurKind::FMinimum || RK == RecurKind::FMaximum || 1105 RK == RecurKind::FMinimumNum || RK == RecurKind::FMaximumNum)) { 1106 Intrinsic::ID Id = getMinMaxReductionIntrinsicOp(RK); 1107 return Builder.CreateIntrinsic(Ty, Id, {Left, Right}, nullptr, 1108 "rdx.minmax"); 1109 } 1110 CmpInst::Predicate Pred = getMinMaxReductionPredicate(RK); 1111 Value *Cmp = Builder.CreateCmp(Pred, Left, Right, "rdx.minmax.cmp"); 1112 Value *Select = Builder.CreateSelect(Cmp, Left, Right, "rdx.minmax.select"); 1113 return Select; 1114 } 1115 1116 // Helper to generate an ordered reduction. 1117 Value *llvm::getOrderedReduction(IRBuilderBase &Builder, Value *Acc, Value *Src, 1118 unsigned Op, RecurKind RdxKind) { 1119 unsigned VF = cast<FixedVectorType>(Src->getType())->getNumElements(); 1120 1121 // Extract and apply reduction ops in ascending order: 1122 // e.g. ((((Acc + Scl[0]) + Scl[1]) + Scl[2]) + ) ... + Scl[VF-1] 1123 Value *Result = Acc; 1124 for (unsigned ExtractIdx = 0; ExtractIdx != VF; ++ExtractIdx) { 1125 Value *Ext = 1126 Builder.CreateExtractElement(Src, Builder.getInt32(ExtractIdx)); 1127 1128 if (Op != Instruction::ICmp && Op != Instruction::FCmp) { 1129 Result = Builder.CreateBinOp((Instruction::BinaryOps)Op, Result, Ext, 1130 "bin.rdx"); 1131 } else { 1132 assert(RecurrenceDescriptor::isMinMaxRecurrenceKind(RdxKind) && 1133 "Invalid min/max"); 1134 Result = createMinMaxOp(Builder, RdxKind, Result, Ext); 1135 } 1136 } 1137 1138 return Result; 1139 } 1140 1141 // Helper to generate a log2 shuffle reduction. 1142 Value *llvm::getShuffleReduction(IRBuilderBase &Builder, Value *Src, 1143 unsigned Op, 1144 TargetTransformInfo::ReductionShuffle RS, 1145 RecurKind RdxKind) { 1146 unsigned VF = cast<FixedVectorType>(Src->getType())->getNumElements(); 1147 // VF is a power of 2 so we can emit the reduction using log2(VF) shuffles 1148 // and vector ops, reducing the set of values being computed by half each 1149 // round. 1150 assert(isPowerOf2_32(VF) && 1151 "Reduction emission only supported for pow2 vectors!"); 1152 // Note: fast-math-flags flags are controlled by the builder configuration 1153 // and are assumed to apply to all generated arithmetic instructions. Other 1154 // poison generating flags (nsw/nuw/inbounds/inrange/exact) are not part 1155 // of the builder configuration, and since they're not passed explicitly, 1156 // will never be relevant here. Note that it would be generally unsound to 1157 // propagate these from an intrinsic call to the expansion anyways as we/ 1158 // change the order of operations. 1159 auto BuildShuffledOp = [&Builder, &Op, 1160 &RdxKind](SmallVectorImpl<int> &ShuffleMask, 1161 Value *&TmpVec) -> void { 1162 Value *Shuf = Builder.CreateShuffleVector(TmpVec, ShuffleMask, "rdx.shuf"); 1163 if (Op != Instruction::ICmp && Op != Instruction::FCmp) { 1164 TmpVec = Builder.CreateBinOp((Instruction::BinaryOps)Op, TmpVec, Shuf, 1165 "bin.rdx"); 1166 } else { 1167 assert(RecurrenceDescriptor::isMinMaxRecurrenceKind(RdxKind) && 1168 "Invalid min/max"); 1169 TmpVec = createMinMaxOp(Builder, RdxKind, TmpVec, Shuf); 1170 } 1171 }; 1172 1173 Value *TmpVec = Src; 1174 if (TargetTransformInfo::ReductionShuffle::Pairwise == RS) { 1175 SmallVector<int, 32> ShuffleMask(VF); 1176 for (unsigned stride = 1; stride < VF; stride <<= 1) { 1177 // Initialise the mask with undef. 1178 llvm::fill(ShuffleMask, -1); 1179 for (unsigned j = 0; j < VF; j += stride << 1) { 1180 ShuffleMask[j] = j + stride; 1181 } 1182 BuildShuffledOp(ShuffleMask, TmpVec); 1183 } 1184 } else { 1185 SmallVector<int, 32> ShuffleMask(VF); 1186 for (unsigned i = VF; i != 1; i >>= 1) { 1187 // Move the upper half of the vector to the lower half. 1188 for (unsigned j = 0; j != i / 2; ++j) 1189 ShuffleMask[j] = i / 2 + j; 1190 1191 // Fill the rest of the mask with undef. 1192 std::fill(&ShuffleMask[i / 2], ShuffleMask.end(), -1); 1193 BuildShuffledOp(ShuffleMask, TmpVec); 1194 } 1195 } 1196 // The result is in the first element of the vector. 1197 return Builder.CreateExtractElement(TmpVec, Builder.getInt32(0)); 1198 } 1199 1200 Value *llvm::createAnyOfReduction(IRBuilderBase &Builder, Value *Src, 1201 Value *InitVal, PHINode *OrigPhi) { 1202 Value *NewVal = nullptr; 1203 1204 // First use the original phi to determine the new value we're trying to 1205 // select from in the loop. 1206 SelectInst *SI = nullptr; 1207 for (auto *U : OrigPhi->users()) { 1208 if ((SI = dyn_cast<SelectInst>(U))) 1209 break; 1210 } 1211 assert(SI && "One user of the original phi should be a select"); 1212 1213 if (SI->getTrueValue() == OrigPhi) 1214 NewVal = SI->getFalseValue(); 1215 else { 1216 assert(SI->getFalseValue() == OrigPhi && 1217 "At least one input to the select should be the original Phi"); 1218 NewVal = SI->getTrueValue(); 1219 } 1220 1221 // If any predicate is true it means that we want to select the new value. 1222 Value *AnyOf = 1223 Src->getType()->isVectorTy() ? Builder.CreateOrReduce(Src) : Src; 1224 // The compares in the loop may yield poison, which propagates through the 1225 // bitwise ORs. Freeze it here before the condition is used. 1226 AnyOf = Builder.CreateFreeze(AnyOf); 1227 return Builder.CreateSelect(AnyOf, NewVal, InitVal, "rdx.select"); 1228 } 1229 1230 Value *llvm::createFindLastIVReduction(IRBuilderBase &Builder, Value *Src, 1231 RecurKind RdxKind, Value *Start, 1232 Value *Sentinel) { 1233 bool IsSigned = RecurrenceDescriptor::isSignedRecurrenceKind(RdxKind); 1234 bool IsMaxRdx = RecurrenceDescriptor::isFindLastIVRecurrenceKind(RdxKind); 1235 Value *MaxRdx = Src->getType()->isVectorTy() 1236 ? (IsMaxRdx ? Builder.CreateIntMaxReduce(Src, IsSigned) 1237 : Builder.CreateIntMinReduce(Src, IsSigned)) 1238 : Src; 1239 // Correct the final reduction result back to the start value if the maximum 1240 // reduction is sentinel value. 1241 Value *Cmp = 1242 Builder.CreateCmp(CmpInst::ICMP_NE, MaxRdx, Sentinel, "rdx.select.cmp"); 1243 return Builder.CreateSelect(Cmp, MaxRdx, Start, "rdx.select"); 1244 } 1245 1246 Value *llvm::getReductionIdentity(Intrinsic::ID RdxID, Type *Ty, 1247 FastMathFlags Flags) { 1248 bool Negative = false; 1249 switch (RdxID) { 1250 default: 1251 llvm_unreachable("Expecting a reduction intrinsic"); 1252 case Intrinsic::vector_reduce_add: 1253 case Intrinsic::vector_reduce_mul: 1254 case Intrinsic::vector_reduce_or: 1255 case Intrinsic::vector_reduce_xor: 1256 case Intrinsic::vector_reduce_and: 1257 case Intrinsic::vector_reduce_fadd: 1258 case Intrinsic::vector_reduce_fmul: { 1259 unsigned Opc = getArithmeticReductionInstruction(RdxID); 1260 return ConstantExpr::getBinOpIdentity(Opc, Ty, false, 1261 Flags.noSignedZeros()); 1262 } 1263 case Intrinsic::vector_reduce_umax: 1264 case Intrinsic::vector_reduce_umin: 1265 case Intrinsic::vector_reduce_smin: 1266 case Intrinsic::vector_reduce_smax: { 1267 Intrinsic::ID ScalarID = getMinMaxReductionIntrinsicOp(RdxID); 1268 return ConstantExpr::getIntrinsicIdentity(ScalarID, Ty); 1269 } 1270 case Intrinsic::vector_reduce_fmax: 1271 case Intrinsic::vector_reduce_fmaximum: 1272 Negative = true; 1273 [[fallthrough]]; 1274 case Intrinsic::vector_reduce_fmin: 1275 case Intrinsic::vector_reduce_fminimum: { 1276 bool PropagatesNaN = RdxID == Intrinsic::vector_reduce_fminimum || 1277 RdxID == Intrinsic::vector_reduce_fmaximum; 1278 const fltSemantics &Semantics = Ty->getFltSemantics(); 1279 return (!Flags.noNaNs() && !PropagatesNaN) 1280 ? ConstantFP::getQNaN(Ty, Negative) 1281 : !Flags.noInfs() 1282 ? ConstantFP::getInfinity(Ty, Negative) 1283 : ConstantFP::get(Ty, APFloat::getLargest(Semantics, Negative)); 1284 } 1285 } 1286 } 1287 1288 Value *llvm::getRecurrenceIdentity(RecurKind K, Type *Tp, FastMathFlags FMF) { 1289 assert((!(K == RecurKind::FMin || K == RecurKind::FMax) || 1290 (FMF.noNaNs() && FMF.noSignedZeros())) && 1291 "nnan, nsz is expected to be set for FP min/max reduction."); 1292 Intrinsic::ID RdxID = getReductionIntrinsicID(K); 1293 return getReductionIdentity(RdxID, Tp, FMF); 1294 } 1295 1296 Value *llvm::createSimpleReduction(IRBuilderBase &Builder, Value *Src, 1297 RecurKind RdxKind) { 1298 auto *SrcVecEltTy = cast<VectorType>(Src->getType())->getElementType(); 1299 auto getIdentity = [&]() { 1300 return getRecurrenceIdentity(RdxKind, SrcVecEltTy, 1301 Builder.getFastMathFlags()); 1302 }; 1303 switch (RdxKind) { 1304 case RecurKind::Add: 1305 case RecurKind::Mul: 1306 case RecurKind::And: 1307 case RecurKind::Or: 1308 case RecurKind::Xor: 1309 case RecurKind::SMax: 1310 case RecurKind::SMin: 1311 case RecurKind::UMax: 1312 case RecurKind::UMin: 1313 case RecurKind::FMax: 1314 case RecurKind::FMin: 1315 case RecurKind::FMinNum: 1316 case RecurKind::FMaxNum: 1317 case RecurKind::FMinimum: 1318 case RecurKind::FMaximum: 1319 case RecurKind::FMinimumNum: 1320 case RecurKind::FMaximumNum: 1321 return Builder.CreateUnaryIntrinsic(getReductionIntrinsicID(RdxKind), Src); 1322 case RecurKind::FMulAdd: 1323 case RecurKind::FAdd: 1324 return Builder.CreateFAddReduce(getIdentity(), Src); 1325 case RecurKind::FMul: 1326 return Builder.CreateFMulReduce(getIdentity(), Src); 1327 default: 1328 llvm_unreachable("Unhandled opcode"); 1329 } 1330 } 1331 1332 Value *llvm::createSimpleReduction(IRBuilderBase &Builder, Value *Src, 1333 RecurKind Kind, Value *Mask, Value *EVL) { 1334 assert(!RecurrenceDescriptor::isAnyOfRecurrenceKind(Kind) && 1335 !RecurrenceDescriptor::isFindIVRecurrenceKind(Kind) && 1336 "AnyOf and FindIV reductions are not supported."); 1337 Intrinsic::ID Id = getReductionIntrinsicID(Kind); 1338 auto VPID = VPIntrinsic::getForIntrinsic(Id); 1339 assert(VPReductionIntrinsic::isVPReduction(VPID) && 1340 "No VPIntrinsic for this reduction"); 1341 auto *EltTy = cast<VectorType>(Src->getType())->getElementType(); 1342 Value *Iden = getRecurrenceIdentity(Kind, EltTy, Builder.getFastMathFlags()); 1343 Value *Ops[] = {Iden, Src, Mask, EVL}; 1344 return Builder.CreateIntrinsic(EltTy, VPID, Ops); 1345 } 1346 1347 Value *llvm::createOrderedReduction(IRBuilderBase &B, RecurKind Kind, 1348 Value *Src, Value *Start) { 1349 assert((Kind == RecurKind::FAdd || Kind == RecurKind::FMulAdd) && 1350 "Unexpected reduction kind"); 1351 assert(Src->getType()->isVectorTy() && "Expected a vector type"); 1352 assert(!Start->getType()->isVectorTy() && "Expected a scalar type"); 1353 1354 return B.CreateFAddReduce(Start, Src); 1355 } 1356 1357 Value *llvm::createOrderedReduction(IRBuilderBase &Builder, RecurKind Kind, 1358 Value *Src, Value *Start, Value *Mask, 1359 Value *EVL) { 1360 assert((Kind == RecurKind::FAdd || Kind == RecurKind::FMulAdd) && 1361 "Unexpected reduction kind"); 1362 assert(Src->getType()->isVectorTy() && "Expected a vector type"); 1363 assert(!Start->getType()->isVectorTy() && "Expected a scalar type"); 1364 1365 Intrinsic::ID Id = getReductionIntrinsicID(RecurKind::FAdd); 1366 auto VPID = VPIntrinsic::getForIntrinsic(Id); 1367 assert(VPReductionIntrinsic::isVPReduction(VPID) && 1368 "No VPIntrinsic for this reduction"); 1369 auto *EltTy = cast<VectorType>(Src->getType())->getElementType(); 1370 Value *Ops[] = {Start, Src, Mask, EVL}; 1371 return Builder.CreateIntrinsic(EltTy, VPID, Ops); 1372 } 1373 1374 void llvm::propagateIRFlags(Value *I, ArrayRef<Value *> VL, Value *OpValue, 1375 bool IncludeWrapFlags) { 1376 auto *VecOp = dyn_cast<Instruction>(I); 1377 if (!VecOp) 1378 return; 1379 auto *Intersection = (OpValue == nullptr) ? dyn_cast<Instruction>(VL[0]) 1380 : dyn_cast<Instruction>(OpValue); 1381 if (!Intersection) 1382 return; 1383 const unsigned Opcode = Intersection->getOpcode(); 1384 VecOp->copyIRFlags(Intersection, IncludeWrapFlags); 1385 for (auto *V : VL) { 1386 auto *Instr = dyn_cast<Instruction>(V); 1387 if (!Instr) 1388 continue; 1389 if (OpValue == nullptr || Opcode == Instr->getOpcode()) 1390 VecOp->andIRFlags(V); 1391 } 1392 } 1393 1394 bool llvm::isKnownNegativeInLoop(const SCEV *S, const Loop *L, 1395 ScalarEvolution &SE) { 1396 const SCEV *Zero = SE.getZero(S->getType()); 1397 return SE.isAvailableAtLoopEntry(S, L) && 1398 SE.isLoopEntryGuardedByCond(L, ICmpInst::ICMP_SLT, S, Zero); 1399 } 1400 1401 bool llvm::isKnownNonNegativeInLoop(const SCEV *S, const Loop *L, 1402 ScalarEvolution &SE) { 1403 const SCEV *Zero = SE.getZero(S->getType()); 1404 return SE.isAvailableAtLoopEntry(S, L) && 1405 SE.isLoopEntryGuardedByCond(L, ICmpInst::ICMP_SGE, S, Zero); 1406 } 1407 1408 bool llvm::isKnownPositiveInLoop(const SCEV *S, const Loop *L, 1409 ScalarEvolution &SE) { 1410 const SCEV *Zero = SE.getZero(S->getType()); 1411 return SE.isAvailableAtLoopEntry(S, L) && 1412 SE.isLoopEntryGuardedByCond(L, ICmpInst::ICMP_SGT, S, Zero); 1413 } 1414 1415 bool llvm::isKnownNonPositiveInLoop(const SCEV *S, const Loop *L, 1416 ScalarEvolution &SE) { 1417 const SCEV *Zero = SE.getZero(S->getType()); 1418 return SE.isAvailableAtLoopEntry(S, L) && 1419 SE.isLoopEntryGuardedByCond(L, ICmpInst::ICMP_SLE, S, Zero); 1420 } 1421 1422 bool llvm::cannotBeMinInLoop(const SCEV *S, const Loop *L, ScalarEvolution &SE, 1423 bool Signed) { 1424 unsigned BitWidth = cast<IntegerType>(S->getType())->getBitWidth(); 1425 APInt Min = Signed ? APInt::getSignedMinValue(BitWidth) : 1426 APInt::getMinValue(BitWidth); 1427 auto Predicate = Signed ? ICmpInst::ICMP_SGT : ICmpInst::ICMP_UGT; 1428 return SE.isAvailableAtLoopEntry(S, L) && 1429 SE.isLoopEntryGuardedByCond(L, Predicate, S, 1430 SE.getConstant(Min)); 1431 } 1432 1433 bool llvm::cannotBeMaxInLoop(const SCEV *S, const Loop *L, ScalarEvolution &SE, 1434 bool Signed) { 1435 unsigned BitWidth = cast<IntegerType>(S->getType())->getBitWidth(); 1436 APInt Max = Signed ? APInt::getSignedMaxValue(BitWidth) : 1437 APInt::getMaxValue(BitWidth); 1438 auto Predicate = Signed ? ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT; 1439 return SE.isAvailableAtLoopEntry(S, L) && 1440 SE.isLoopEntryGuardedByCond(L, Predicate, S, 1441 SE.getConstant(Max)); 1442 } 1443 1444 //===----------------------------------------------------------------------===// 1445 // rewriteLoopExitValues - Optimize IV users outside the loop. 1446 // As a side effect, reduces the amount of IV processing within the loop. 1447 //===----------------------------------------------------------------------===// 1448 1449 static bool hasHardUserWithinLoop(const Loop *L, const Instruction *I) { 1450 SmallPtrSet<const Instruction *, 8> Visited; 1451 SmallVector<const Instruction *, 8> WorkList; 1452 Visited.insert(I); 1453 WorkList.push_back(I); 1454 while (!WorkList.empty()) { 1455 const Instruction *Curr = WorkList.pop_back_val(); 1456 // This use is outside the loop, nothing to do. 1457 if (!L->contains(Curr)) 1458 continue; 1459 // Do we assume it is a "hard" use which will not be eliminated easily? 1460 if (Curr->mayHaveSideEffects()) 1461 return true; 1462 // Otherwise, add all its users to worklist. 1463 for (const auto *U : Curr->users()) { 1464 auto *UI = cast<Instruction>(U); 1465 if (Visited.insert(UI).second) 1466 WorkList.push_back(UI); 1467 } 1468 } 1469 return false; 1470 } 1471 1472 // Collect information about PHI nodes which can be transformed in 1473 // rewriteLoopExitValues. 1474 struct RewritePhi { 1475 PHINode *PN; // For which PHI node is this replacement? 1476 unsigned Ith; // For which incoming value? 1477 const SCEV *ExpansionSCEV; // The SCEV of the incoming value we are rewriting. 1478 Instruction *ExpansionPoint; // Where we'd like to expand that SCEV? 1479 bool HighCost; // Is this expansion a high-cost? 1480 1481 RewritePhi(PHINode *P, unsigned I, const SCEV *Val, Instruction *ExpansionPt, 1482 bool H) 1483 : PN(P), Ith(I), ExpansionSCEV(Val), ExpansionPoint(ExpansionPt), 1484 HighCost(H) {} 1485 }; 1486 1487 // Check whether it is possible to delete the loop after rewriting exit 1488 // value. If it is possible, ignore ReplaceExitValue and do rewriting 1489 // aggressively. 1490 static bool canLoopBeDeleted(Loop *L, SmallVector<RewritePhi, 8> &RewritePhiSet) { 1491 BasicBlock *Preheader = L->getLoopPreheader(); 1492 // If there is no preheader, the loop will not be deleted. 1493 if (!Preheader) 1494 return false; 1495 1496 // In LoopDeletion pass Loop can be deleted when ExitingBlocks.size() > 1. 1497 // We obviate multiple ExitingBlocks case for simplicity. 1498 // TODO: If we see testcase with multiple ExitingBlocks can be deleted 1499 // after exit value rewriting, we can enhance the logic here. 1500 SmallVector<BasicBlock *, 4> ExitingBlocks; 1501 L->getExitingBlocks(ExitingBlocks); 1502 SmallVector<BasicBlock *, 8> ExitBlocks; 1503 L->getUniqueExitBlocks(ExitBlocks); 1504 if (ExitBlocks.size() != 1 || ExitingBlocks.size() != 1) 1505 return false; 1506 1507 BasicBlock *ExitBlock = ExitBlocks[0]; 1508 BasicBlock::iterator BI = ExitBlock->begin(); 1509 while (PHINode *P = dyn_cast<PHINode>(BI)) { 1510 Value *Incoming = P->getIncomingValueForBlock(ExitingBlocks[0]); 1511 1512 // If the Incoming value of P is found in RewritePhiSet, we know it 1513 // could be rewritten to use a loop invariant value in transformation 1514 // phase later. Skip it in the loop invariant check below. 1515 bool found = false; 1516 for (const RewritePhi &Phi : RewritePhiSet) { 1517 unsigned i = Phi.Ith; 1518 if (Phi.PN == P && (Phi.PN)->getIncomingValue(i) == Incoming) { 1519 found = true; 1520 break; 1521 } 1522 } 1523 1524 Instruction *I; 1525 if (!found && (I = dyn_cast<Instruction>(Incoming))) 1526 if (!L->hasLoopInvariantOperands(I)) 1527 return false; 1528 1529 ++BI; 1530 } 1531 1532 for (auto *BB : L->blocks()) 1533 if (llvm::any_of(*BB, [](Instruction &I) { 1534 return I.mayHaveSideEffects(); 1535 })) 1536 return false; 1537 1538 return true; 1539 } 1540 1541 /// Checks if it is safe to call InductionDescriptor::isInductionPHI for \p Phi, 1542 /// and returns true if this Phi is an induction phi in the loop. When 1543 /// isInductionPHI returns true, \p ID will be also be set by isInductionPHI. 1544 static bool checkIsIndPhi(PHINode *Phi, Loop *L, ScalarEvolution *SE, 1545 InductionDescriptor &ID) { 1546 if (!Phi) 1547 return false; 1548 if (!L->getLoopPreheader()) 1549 return false; 1550 if (Phi->getParent() != L->getHeader()) 1551 return false; 1552 return InductionDescriptor::isInductionPHI(Phi, L, SE, ID); 1553 } 1554 1555 int llvm::rewriteLoopExitValues(Loop *L, LoopInfo *LI, TargetLibraryInfo *TLI, 1556 ScalarEvolution *SE, 1557 const TargetTransformInfo *TTI, 1558 SCEVExpander &Rewriter, DominatorTree *DT, 1559 ReplaceExitVal ReplaceExitValue, 1560 SmallVector<WeakTrackingVH, 16> &DeadInsts) { 1561 // Check a pre-condition. 1562 assert(L->isRecursivelyLCSSAForm(*DT, *LI) && 1563 "Indvars did not preserve LCSSA!"); 1564 1565 SmallVector<BasicBlock*, 8> ExitBlocks; 1566 L->getUniqueExitBlocks(ExitBlocks); 1567 1568 SmallVector<RewritePhi, 8> RewritePhiSet; 1569 // Find all values that are computed inside the loop, but used outside of it. 1570 // Because of LCSSA, these values will only occur in LCSSA PHI Nodes. Scan 1571 // the exit blocks of the loop to find them. 1572 for (BasicBlock *ExitBB : ExitBlocks) { 1573 // If there are no PHI nodes in this exit block, then no values defined 1574 // inside the loop are used on this path, skip it. 1575 PHINode *PN = dyn_cast<PHINode>(ExitBB->begin()); 1576 if (!PN) continue; 1577 1578 unsigned NumPreds = PN->getNumIncomingValues(); 1579 1580 // Iterate over all of the PHI nodes. 1581 BasicBlock::iterator BBI = ExitBB->begin(); 1582 while ((PN = dyn_cast<PHINode>(BBI++))) { 1583 if (PN->use_empty()) 1584 continue; // dead use, don't replace it 1585 1586 if (!SE->isSCEVable(PN->getType())) 1587 continue; 1588 1589 // Iterate over all of the values in all the PHI nodes. 1590 for (unsigned i = 0; i != NumPreds; ++i) { 1591 // If the value being merged in is not integer or is not defined 1592 // in the loop, skip it. 1593 Value *InVal = PN->getIncomingValue(i); 1594 if (!isa<Instruction>(InVal)) 1595 continue; 1596 1597 // If this pred is for a subloop, not L itself, skip it. 1598 if (LI->getLoopFor(PN->getIncomingBlock(i)) != L) 1599 continue; // The Block is in a subloop, skip it. 1600 1601 // Check that InVal is defined in the loop. 1602 Instruction *Inst = cast<Instruction>(InVal); 1603 if (!L->contains(Inst)) 1604 continue; 1605 1606 // Find exit values which are induction variables in the loop, and are 1607 // unused in the loop, with the only use being the exit block PhiNode, 1608 // and the induction variable update binary operator. 1609 // The exit value can be replaced with the final value when it is cheap 1610 // to do so. 1611 if (ReplaceExitValue == UnusedIndVarInLoop) { 1612 InductionDescriptor ID; 1613 PHINode *IndPhi = dyn_cast<PHINode>(Inst); 1614 if (IndPhi) { 1615 if (!checkIsIndPhi(IndPhi, L, SE, ID)) 1616 continue; 1617 // This is an induction PHI. Check that the only users are PHI 1618 // nodes, and induction variable update binary operators. 1619 if (llvm::any_of(Inst->users(), [&](User *U) { 1620 if (!isa<PHINode>(U) && !isa<BinaryOperator>(U)) 1621 return true; 1622 BinaryOperator *B = dyn_cast<BinaryOperator>(U); 1623 if (B && B != ID.getInductionBinOp()) 1624 return true; 1625 return false; 1626 })) 1627 continue; 1628 } else { 1629 // If it is not an induction phi, it must be an induction update 1630 // binary operator with an induction phi user. 1631 BinaryOperator *B = dyn_cast<BinaryOperator>(Inst); 1632 if (!B) 1633 continue; 1634 if (llvm::any_of(Inst->users(), [&](User *U) { 1635 PHINode *Phi = dyn_cast<PHINode>(U); 1636 if (Phi != PN && !checkIsIndPhi(Phi, L, SE, ID)) 1637 return true; 1638 return false; 1639 })) 1640 continue; 1641 if (B != ID.getInductionBinOp()) 1642 continue; 1643 } 1644 } 1645 1646 // Okay, this instruction has a user outside of the current loop 1647 // and varies predictably *inside* the loop. Evaluate the value it 1648 // contains when the loop exits, if possible. We prefer to start with 1649 // expressions which are true for all exits (so as to maximize 1650 // expression reuse by the SCEVExpander), but resort to per-exit 1651 // evaluation if that fails. 1652 const SCEV *ExitValue = SE->getSCEVAtScope(Inst, L->getParentLoop()); 1653 if (isa<SCEVCouldNotCompute>(ExitValue) || 1654 !SE->isLoopInvariant(ExitValue, L) || 1655 !Rewriter.isSafeToExpand(ExitValue)) { 1656 // TODO: This should probably be sunk into SCEV in some way; maybe a 1657 // getSCEVForExit(SCEV*, L, ExitingBB)? It can be generalized for 1658 // most SCEV expressions and other recurrence types (e.g. shift 1659 // recurrences). Is there existing code we can reuse? 1660 const SCEV *ExitCount = SE->getExitCount(L, PN->getIncomingBlock(i)); 1661 if (isa<SCEVCouldNotCompute>(ExitCount)) 1662 continue; 1663 if (auto *AddRec = dyn_cast<SCEVAddRecExpr>(SE->getSCEV(Inst))) 1664 if (AddRec->getLoop() == L) 1665 ExitValue = AddRec->evaluateAtIteration(ExitCount, *SE); 1666 if (isa<SCEVCouldNotCompute>(ExitValue) || 1667 !SE->isLoopInvariant(ExitValue, L) || 1668 !Rewriter.isSafeToExpand(ExitValue)) 1669 continue; 1670 } 1671 1672 // Computing the value outside of the loop brings no benefit if it is 1673 // definitely used inside the loop in a way which can not be optimized 1674 // away. Avoid doing so unless we know we have a value which computes 1675 // the ExitValue already. TODO: This should be merged into SCEV 1676 // expander to leverage its knowledge of existing expressions. 1677 if (ReplaceExitValue != AlwaysRepl && !isa<SCEVConstant>(ExitValue) && 1678 !isa<SCEVUnknown>(ExitValue) && hasHardUserWithinLoop(L, Inst)) 1679 continue; 1680 1681 // Check if expansions of this SCEV would count as being high cost. 1682 bool HighCost = Rewriter.isHighCostExpansion( 1683 ExitValue, L, SCEVCheapExpansionBudget, TTI, Inst); 1684 1685 // Note that we must not perform expansions until after 1686 // we query *all* the costs, because if we perform temporary expansion 1687 // inbetween, one that we might not intend to keep, said expansion 1688 // *may* affect cost calculation of the next SCEV's we'll query, 1689 // and next SCEV may errneously get smaller cost. 1690 1691 // Collect all the candidate PHINodes to be rewritten. 1692 Instruction *InsertPt = 1693 (isa<PHINode>(Inst) || isa<LandingPadInst>(Inst)) ? 1694 &*Inst->getParent()->getFirstInsertionPt() : Inst; 1695 RewritePhiSet.emplace_back(PN, i, ExitValue, InsertPt, HighCost); 1696 } 1697 } 1698 } 1699 1700 // TODO: evaluate whether it is beneficial to change how we calculate 1701 // high-cost: if we have SCEV 'A' which we know we will expand, should we 1702 // calculate the cost of other SCEV's after expanding SCEV 'A', thus 1703 // potentially giving cost bonus to those other SCEV's? 1704 1705 bool LoopCanBeDel = canLoopBeDeleted(L, RewritePhiSet); 1706 int NumReplaced = 0; 1707 1708 // Transformation. 1709 for (const RewritePhi &Phi : RewritePhiSet) { 1710 PHINode *PN = Phi.PN; 1711 1712 // Only do the rewrite when the ExitValue can be expanded cheaply. 1713 // If LoopCanBeDel is true, rewrite exit value aggressively. 1714 if ((ReplaceExitValue == OnlyCheapRepl || 1715 ReplaceExitValue == UnusedIndVarInLoop) && 1716 !LoopCanBeDel && Phi.HighCost) 1717 continue; 1718 1719 Value *ExitVal = Rewriter.expandCodeFor( 1720 Phi.ExpansionSCEV, Phi.PN->getType(), Phi.ExpansionPoint); 1721 1722 LLVM_DEBUG(dbgs() << "rewriteLoopExitValues: AfterLoopVal = " << *ExitVal 1723 << '\n' 1724 << " LoopVal = " << *(Phi.ExpansionPoint) << "\n"); 1725 1726 #ifndef NDEBUG 1727 // If we reuse an instruction from a loop which is neither L nor one of 1728 // its containing loops, we end up breaking LCSSA form for this loop by 1729 // creating a new use of its instruction. 1730 if (auto *ExitInsn = dyn_cast<Instruction>(ExitVal)) 1731 if (auto *EVL = LI->getLoopFor(ExitInsn->getParent())) 1732 if (EVL != L) 1733 assert(EVL->contains(L) && "LCSSA breach detected!"); 1734 #endif 1735 1736 NumReplaced++; 1737 Instruction *Inst = cast<Instruction>(PN->getIncomingValue(Phi.Ith)); 1738 PN->setIncomingValue(Phi.Ith, ExitVal); 1739 // It's necessary to tell ScalarEvolution about this explicitly so that 1740 // it can walk the def-use list and forget all SCEVs, as it may not be 1741 // watching the PHI itself. Once the new exit value is in place, there 1742 // may not be a def-use connection between the loop and every instruction 1743 // which got a SCEVAddRecExpr for that loop. 1744 SE->forgetValue(PN); 1745 1746 // If this instruction is dead now, delete it. Don't do it now to avoid 1747 // invalidating iterators. 1748 if (isInstructionTriviallyDead(Inst, TLI)) 1749 DeadInsts.push_back(Inst); 1750 1751 // Replace PN with ExitVal if that is legal and does not break LCSSA. 1752 if (PN->getNumIncomingValues() == 1 && 1753 LI->replacementPreservesLCSSAForm(PN, ExitVal)) { 1754 PN->replaceAllUsesWith(ExitVal); 1755 PN->eraseFromParent(); 1756 } 1757 } 1758 1759 // The insertion point instruction may have been deleted; clear it out 1760 // so that the rewriter doesn't trip over it later. 1761 Rewriter.clearInsertPoint(); 1762 return NumReplaced; 1763 } 1764 1765 /// Set weights for \p UnrolledLoop and \p RemainderLoop based on weights for 1766 /// \p OrigLoop. 1767 void llvm::setProfileInfoAfterUnrolling(Loop *OrigLoop, Loop *UnrolledLoop, 1768 Loop *RemainderLoop, uint64_t UF) { 1769 assert(UF > 0 && "Zero unrolled factor is not supported"); 1770 assert(UnrolledLoop != RemainderLoop && 1771 "Unrolled and Remainder loops are expected to distinct"); 1772 1773 // Get number of iterations in the original scalar loop. 1774 unsigned OrigLoopInvocationWeight = 0; 1775 std::optional<unsigned> OrigAverageTripCount = 1776 getLoopEstimatedTripCount(OrigLoop, &OrigLoopInvocationWeight); 1777 if (!OrigAverageTripCount) 1778 return; 1779 1780 // Calculate number of iterations in unrolled loop. 1781 unsigned UnrolledAverageTripCount = *OrigAverageTripCount / UF; 1782 // Calculate number of iterations for remainder loop. 1783 unsigned RemainderAverageTripCount = *OrigAverageTripCount % UF; 1784 1785 setLoopEstimatedTripCount(UnrolledLoop, UnrolledAverageTripCount, 1786 OrigLoopInvocationWeight); 1787 setLoopEstimatedTripCount(RemainderLoop, RemainderAverageTripCount, 1788 OrigLoopInvocationWeight); 1789 } 1790 1791 /// Utility that implements appending of loops onto a worklist. 1792 /// Loops are added in preorder (analogous for reverse postorder for trees), 1793 /// and the worklist is processed LIFO. 1794 template <typename RangeT> 1795 void llvm::appendReversedLoopsToWorklist( 1796 RangeT &&Loops, SmallPriorityWorklist<Loop *, 4> &Worklist) { 1797 // We use an internal worklist to build up the preorder traversal without 1798 // recursion. 1799 SmallVector<Loop *, 4> PreOrderLoops, PreOrderWorklist; 1800 1801 // We walk the initial sequence of loops in reverse because we generally want 1802 // to visit defs before uses and the worklist is LIFO. 1803 for (Loop *RootL : Loops) { 1804 assert(PreOrderLoops.empty() && "Must start with an empty preorder walk."); 1805 assert(PreOrderWorklist.empty() && 1806 "Must start with an empty preorder walk worklist."); 1807 PreOrderWorklist.push_back(RootL); 1808 do { 1809 Loop *L = PreOrderWorklist.pop_back_val(); 1810 PreOrderWorklist.append(L->begin(), L->end()); 1811 PreOrderLoops.push_back(L); 1812 } while (!PreOrderWorklist.empty()); 1813 1814 Worklist.insert(std::move(PreOrderLoops)); 1815 PreOrderLoops.clear(); 1816 } 1817 } 1818 1819 template <typename RangeT> 1820 void llvm::appendLoopsToWorklist(RangeT &&Loops, 1821 SmallPriorityWorklist<Loop *, 4> &Worklist) { 1822 appendReversedLoopsToWorklist(reverse(Loops), Worklist); 1823 } 1824 1825 template LLVM_EXPORT_TEMPLATE void 1826 llvm::appendLoopsToWorklist<ArrayRef<Loop *> &>( 1827 ArrayRef<Loop *> &Loops, SmallPriorityWorklist<Loop *, 4> &Worklist); 1828 1829 template LLVM_EXPORT_TEMPLATE void 1830 llvm::appendLoopsToWorklist<Loop &>(Loop &L, 1831 SmallPriorityWorklist<Loop *, 4> &Worklist); 1832 1833 void llvm::appendLoopsToWorklist(LoopInfo &LI, 1834 SmallPriorityWorklist<Loop *, 4> &Worklist) { 1835 appendReversedLoopsToWorklist(LI, Worklist); 1836 } 1837 1838 Loop *llvm::cloneLoop(Loop *L, Loop *PL, ValueToValueMapTy &VM, 1839 LoopInfo *LI, LPPassManager *LPM) { 1840 Loop &New = *LI->AllocateLoop(); 1841 if (PL) 1842 PL->addChildLoop(&New); 1843 else 1844 LI->addTopLevelLoop(&New); 1845 1846 if (LPM) 1847 LPM->addLoop(New); 1848 1849 // Add all of the blocks in L to the new loop. 1850 for (BasicBlock *BB : L->blocks()) 1851 if (LI->getLoopFor(BB) == L) 1852 New.addBasicBlockToLoop(cast<BasicBlock>(VM[BB]), *LI); 1853 1854 // Add all of the subloops to the new loop. 1855 for (Loop *I : *L) 1856 cloneLoop(I, &New, VM, LI, LPM); 1857 1858 return &New; 1859 } 1860 1861 /// IR Values for the lower and upper bounds of a pointer evolution. We 1862 /// need to use value-handles because SCEV expansion can invalidate previously 1863 /// expanded values. Thus expansion of a pointer can invalidate the bounds for 1864 /// a previous one. 1865 struct PointerBounds { 1866 TrackingVH<Value> Start; 1867 TrackingVH<Value> End; 1868 Value *StrideToCheck; 1869 }; 1870 1871 /// Expand code for the lower and upper bound of the pointer group \p CG 1872 /// in \p TheLoop. \return the values for the bounds. 1873 static PointerBounds expandBounds(const RuntimeCheckingPtrGroup *CG, 1874 Loop *TheLoop, Instruction *Loc, 1875 SCEVExpander &Exp, bool HoistRuntimeChecks) { 1876 LLVMContext &Ctx = Loc->getContext(); 1877 Type *PtrArithTy = PointerType::get(Ctx, CG->AddressSpace); 1878 1879 Value *Start = nullptr, *End = nullptr; 1880 LLVM_DEBUG(dbgs() << "LAA: Adding RT check for range:\n"); 1881 const SCEV *Low = CG->Low, *High = CG->High, *Stride = nullptr; 1882 1883 // If the Low and High values are themselves loop-variant, then we may want 1884 // to expand the range to include those covered by the outer loop as well. 1885 // There is a trade-off here with the advantage being that creating checks 1886 // using the expanded range permits the runtime memory checks to be hoisted 1887 // out of the outer loop. This reduces the cost of entering the inner loop, 1888 // which can be significant for low trip counts. The disadvantage is that 1889 // there is a chance we may now never enter the vectorized inner loop, 1890 // whereas using a restricted range check could have allowed us to enter at 1891 // least once. This is why the behaviour is not currently the default and is 1892 // controlled by the parameter 'HoistRuntimeChecks'. 1893 if (HoistRuntimeChecks && TheLoop->getParentLoop() && 1894 isa<SCEVAddRecExpr>(High) && isa<SCEVAddRecExpr>(Low)) { 1895 auto *HighAR = cast<SCEVAddRecExpr>(High); 1896 auto *LowAR = cast<SCEVAddRecExpr>(Low); 1897 const Loop *OuterLoop = TheLoop->getParentLoop(); 1898 ScalarEvolution &SE = *Exp.getSE(); 1899 const SCEV *Recur = LowAR->getStepRecurrence(SE); 1900 if (Recur == HighAR->getStepRecurrence(SE) && 1901 HighAR->getLoop() == OuterLoop && LowAR->getLoop() == OuterLoop) { 1902 BasicBlock *OuterLoopLatch = OuterLoop->getLoopLatch(); 1903 const SCEV *OuterExitCount = SE.getExitCount(OuterLoop, OuterLoopLatch); 1904 if (!isa<SCEVCouldNotCompute>(OuterExitCount) && 1905 OuterExitCount->getType()->isIntegerTy()) { 1906 const SCEV *NewHigh = 1907 cast<SCEVAddRecExpr>(High)->evaluateAtIteration(OuterExitCount, SE); 1908 if (!isa<SCEVCouldNotCompute>(NewHigh)) { 1909 LLVM_DEBUG(dbgs() << "LAA: Expanded RT check for range to include " 1910 "outer loop in order to permit hoisting\n"); 1911 High = NewHigh; 1912 Low = cast<SCEVAddRecExpr>(Low)->getStart(); 1913 // If there is a possibility that the stride is negative then we have 1914 // to generate extra checks to ensure the stride is positive. 1915 if (!SE.isKnownNonNegative( 1916 SE.applyLoopGuards(Recur, HighAR->getLoop()))) { 1917 Stride = Recur; 1918 LLVM_DEBUG(dbgs() << "LAA: ... but need to check stride is " 1919 "positive: " 1920 << *Stride << '\n'); 1921 } 1922 } 1923 } 1924 } 1925 } 1926 1927 Start = Exp.expandCodeFor(Low, PtrArithTy, Loc); 1928 End = Exp.expandCodeFor(High, PtrArithTy, Loc); 1929 if (CG->NeedsFreeze) { 1930 IRBuilder<> Builder(Loc); 1931 Start = Builder.CreateFreeze(Start, Start->getName() + ".fr"); 1932 End = Builder.CreateFreeze(End, End->getName() + ".fr"); 1933 } 1934 Value *StrideVal = 1935 Stride ? Exp.expandCodeFor(Stride, Stride->getType(), Loc) : nullptr; 1936 LLVM_DEBUG(dbgs() << "Start: " << *Low << " End: " << *High << "\n"); 1937 return {Start, End, StrideVal}; 1938 } 1939 1940 /// Turns a collection of checks into a collection of expanded upper and 1941 /// lower bounds for both pointers in the check. 1942 static SmallVector<std::pair<PointerBounds, PointerBounds>, 4> 1943 expandBounds(const SmallVectorImpl<RuntimePointerCheck> &PointerChecks, Loop *L, 1944 Instruction *Loc, SCEVExpander &Exp, bool HoistRuntimeChecks) { 1945 SmallVector<std::pair<PointerBounds, PointerBounds>, 4> ChecksWithBounds; 1946 1947 // Here we're relying on the SCEV Expander's cache to only emit code for the 1948 // same bounds once. 1949 transform(PointerChecks, std::back_inserter(ChecksWithBounds), 1950 [&](const RuntimePointerCheck &Check) { 1951 PointerBounds First = expandBounds(Check.first, L, Loc, Exp, 1952 HoistRuntimeChecks), 1953 Second = expandBounds(Check.second, L, Loc, Exp, 1954 HoistRuntimeChecks); 1955 return std::make_pair(First, Second); 1956 }); 1957 1958 return ChecksWithBounds; 1959 } 1960 1961 Value *llvm::addRuntimeChecks( 1962 Instruction *Loc, Loop *TheLoop, 1963 const SmallVectorImpl<RuntimePointerCheck> &PointerChecks, 1964 SCEVExpander &Exp, bool HoistRuntimeChecks) { 1965 // TODO: Move noalias annotation code from LoopVersioning here and share with LV if possible. 1966 // TODO: Pass RtPtrChecking instead of PointerChecks and SE separately, if possible 1967 auto ExpandedChecks = 1968 expandBounds(PointerChecks, TheLoop, Loc, Exp, HoistRuntimeChecks); 1969 1970 LLVMContext &Ctx = Loc->getContext(); 1971 IRBuilder ChkBuilder(Ctx, InstSimplifyFolder(Loc->getDataLayout())); 1972 ChkBuilder.SetInsertPoint(Loc); 1973 // Our instructions might fold to a constant. 1974 Value *MemoryRuntimeCheck = nullptr; 1975 1976 for (const auto &[A, B] : ExpandedChecks) { 1977 // Check if two pointers (A and B) conflict where conflict is computed as: 1978 // start(A) <= end(B) && start(B) <= end(A) 1979 1980 assert((A.Start->getType()->getPointerAddressSpace() == 1981 B.End->getType()->getPointerAddressSpace()) && 1982 (B.Start->getType()->getPointerAddressSpace() == 1983 A.End->getType()->getPointerAddressSpace()) && 1984 "Trying to bounds check pointers with different address spaces"); 1985 1986 // [A|B].Start points to the first accessed byte under base [A|B]. 1987 // [A|B].End points to the last accessed byte, plus one. 1988 // There is no conflict when the intervals are disjoint: 1989 // NoConflict = (B.Start >= A.End) || (A.Start >= B.End) 1990 // 1991 // bound0 = (B.Start < A.End) 1992 // bound1 = (A.Start < B.End) 1993 // IsConflict = bound0 & bound1 1994 Value *Cmp0 = ChkBuilder.CreateICmpULT(A.Start, B.End, "bound0"); 1995 Value *Cmp1 = ChkBuilder.CreateICmpULT(B.Start, A.End, "bound1"); 1996 Value *IsConflict = ChkBuilder.CreateAnd(Cmp0, Cmp1, "found.conflict"); 1997 if (A.StrideToCheck) { 1998 Value *IsNegativeStride = ChkBuilder.CreateICmpSLT( 1999 A.StrideToCheck, ConstantInt::get(A.StrideToCheck->getType(), 0), 2000 "stride.check"); 2001 IsConflict = ChkBuilder.CreateOr(IsConflict, IsNegativeStride); 2002 } 2003 if (B.StrideToCheck) { 2004 Value *IsNegativeStride = ChkBuilder.CreateICmpSLT( 2005 B.StrideToCheck, ConstantInt::get(B.StrideToCheck->getType(), 0), 2006 "stride.check"); 2007 IsConflict = ChkBuilder.CreateOr(IsConflict, IsNegativeStride); 2008 } 2009 if (MemoryRuntimeCheck) { 2010 IsConflict = 2011 ChkBuilder.CreateOr(MemoryRuntimeCheck, IsConflict, "conflict.rdx"); 2012 } 2013 MemoryRuntimeCheck = IsConflict; 2014 } 2015 2016 return MemoryRuntimeCheck; 2017 } 2018 2019 Value *llvm::addDiffRuntimeChecks( 2020 Instruction *Loc, ArrayRef<PointerDiffInfo> Checks, SCEVExpander &Expander, 2021 function_ref<Value *(IRBuilderBase &, unsigned)> GetVF, unsigned IC) { 2022 2023 LLVMContext &Ctx = Loc->getContext(); 2024 IRBuilder ChkBuilder(Ctx, InstSimplifyFolder(Loc->getDataLayout())); 2025 ChkBuilder.SetInsertPoint(Loc); 2026 // Our instructions might fold to a constant. 2027 Value *MemoryRuntimeCheck = nullptr; 2028 2029 auto &SE = *Expander.getSE(); 2030 // Map to keep track of created compares, The key is the pair of operands for 2031 // the compare, to allow detecting and re-using redundant compares. 2032 DenseMap<std::pair<Value *, Value *>, Value *> SeenCompares; 2033 for (const auto &[SrcStart, SinkStart, AccessSize, NeedsFreeze] : Checks) { 2034 Type *Ty = SinkStart->getType(); 2035 // Compute VF * IC * AccessSize. 2036 auto *VFTimesICTimesSize = 2037 ChkBuilder.CreateMul(GetVF(ChkBuilder, Ty->getScalarSizeInBits()), 2038 ConstantInt::get(Ty, IC * AccessSize)); 2039 Value *Diff = 2040 Expander.expandCodeFor(SE.getMinusSCEV(SinkStart, SrcStart), Ty, Loc); 2041 2042 // Check if the same compare has already been created earlier. In that case, 2043 // there is no need to check it again. 2044 Value *IsConflict = SeenCompares.lookup({Diff, VFTimesICTimesSize}); 2045 if (IsConflict) 2046 continue; 2047 2048 IsConflict = 2049 ChkBuilder.CreateICmpULT(Diff, VFTimesICTimesSize, "diff.check"); 2050 SeenCompares.insert({{Diff, VFTimesICTimesSize}, IsConflict}); 2051 if (NeedsFreeze) 2052 IsConflict = 2053 ChkBuilder.CreateFreeze(IsConflict, IsConflict->getName() + ".fr"); 2054 if (MemoryRuntimeCheck) { 2055 IsConflict = 2056 ChkBuilder.CreateOr(MemoryRuntimeCheck, IsConflict, "conflict.rdx"); 2057 } 2058 MemoryRuntimeCheck = IsConflict; 2059 } 2060 2061 return MemoryRuntimeCheck; 2062 } 2063 2064 std::optional<IVConditionInfo> 2065 llvm::hasPartialIVCondition(const Loop &L, unsigned MSSAThreshold, 2066 const MemorySSA &MSSA, AAResults &AA) { 2067 auto *TI = dyn_cast<BranchInst>(L.getHeader()->getTerminator()); 2068 if (!TI || !TI->isConditional()) 2069 return {}; 2070 2071 auto *CondI = dyn_cast<Instruction>(TI->getCondition()); 2072 // The case with the condition outside the loop should already be handled 2073 // earlier. 2074 // Allow CmpInst and TruncInsts as they may be users of load instructions 2075 // and have potential for partial unswitching 2076 if (!CondI || !isa<CmpInst, TruncInst>(CondI) || !L.contains(CondI)) 2077 return {}; 2078 2079 SmallVector<Instruction *> InstToDuplicate; 2080 InstToDuplicate.push_back(CondI); 2081 2082 SmallVector<Value *, 4> WorkList; 2083 WorkList.append(CondI->op_begin(), CondI->op_end()); 2084 2085 SmallVector<MemoryAccess *, 4> AccessesToCheck; 2086 SmallVector<MemoryLocation, 4> AccessedLocs; 2087 while (!WorkList.empty()) { 2088 Instruction *I = dyn_cast<Instruction>(WorkList.pop_back_val()); 2089 if (!I || !L.contains(I)) 2090 continue; 2091 2092 // TODO: support additional instructions. 2093 if (!isa<LoadInst>(I) && !isa<GetElementPtrInst>(I)) 2094 return {}; 2095 2096 // Do not duplicate volatile and atomic loads. 2097 if (auto *LI = dyn_cast<LoadInst>(I)) 2098 if (LI->isVolatile() || LI->isAtomic()) 2099 return {}; 2100 2101 InstToDuplicate.push_back(I); 2102 if (MemoryAccess *MA = MSSA.getMemoryAccess(I)) { 2103 if (auto *MemUse = dyn_cast_or_null<MemoryUse>(MA)) { 2104 // Queue the defining access to check for alias checks. 2105 AccessesToCheck.push_back(MemUse->getDefiningAccess()); 2106 AccessedLocs.push_back(MemoryLocation::get(I)); 2107 } else { 2108 // MemoryDefs may clobber the location or may be atomic memory 2109 // operations. Bail out. 2110 return {}; 2111 } 2112 } 2113 WorkList.append(I->op_begin(), I->op_end()); 2114 } 2115 2116 if (InstToDuplicate.empty()) 2117 return {}; 2118 2119 SmallVector<BasicBlock *, 4> ExitingBlocks; 2120 L.getExitingBlocks(ExitingBlocks); 2121 auto HasNoClobbersOnPath = 2122 [&L, &AA, &AccessedLocs, &ExitingBlocks, &InstToDuplicate, 2123 MSSAThreshold](BasicBlock *Succ, BasicBlock *Header, 2124 SmallVector<MemoryAccess *, 4> AccessesToCheck) 2125 -> std::optional<IVConditionInfo> { 2126 IVConditionInfo Info; 2127 // First, collect all blocks in the loop that are on a patch from Succ 2128 // to the header. 2129 SmallVector<BasicBlock *, 4> WorkList; 2130 WorkList.push_back(Succ); 2131 WorkList.push_back(Header); 2132 SmallPtrSet<BasicBlock *, 4> Seen; 2133 Seen.insert(Header); 2134 Info.PathIsNoop &= 2135 all_of(*Header, [](Instruction &I) { return !I.mayHaveSideEffects(); }); 2136 2137 while (!WorkList.empty()) { 2138 BasicBlock *Current = WorkList.pop_back_val(); 2139 if (!L.contains(Current)) 2140 continue; 2141 const auto &SeenIns = Seen.insert(Current); 2142 if (!SeenIns.second) 2143 continue; 2144 2145 Info.PathIsNoop &= all_of( 2146 *Current, [](Instruction &I) { return !I.mayHaveSideEffects(); }); 2147 WorkList.append(succ_begin(Current), succ_end(Current)); 2148 } 2149 2150 // Require at least 2 blocks on a path through the loop. This skips 2151 // paths that directly exit the loop. 2152 if (Seen.size() < 2) 2153 return {}; 2154 2155 // Next, check if there are any MemoryDefs that are on the path through 2156 // the loop (in the Seen set) and they may-alias any of the locations in 2157 // AccessedLocs. If that is the case, they may modify the condition and 2158 // partial unswitching is not possible. 2159 SmallPtrSet<MemoryAccess *, 4> SeenAccesses; 2160 while (!AccessesToCheck.empty()) { 2161 MemoryAccess *Current = AccessesToCheck.pop_back_val(); 2162 auto SeenI = SeenAccesses.insert(Current); 2163 if (!SeenI.second || !Seen.contains(Current->getBlock())) 2164 continue; 2165 2166 // Bail out if exceeded the threshold. 2167 if (SeenAccesses.size() >= MSSAThreshold) 2168 return {}; 2169 2170 // MemoryUse are read-only accesses. 2171 if (isa<MemoryUse>(Current)) 2172 continue; 2173 2174 // For a MemoryDef, check if is aliases any of the location feeding 2175 // the original condition. 2176 if (auto *CurrentDef = dyn_cast<MemoryDef>(Current)) { 2177 if (any_of(AccessedLocs, [&AA, CurrentDef](MemoryLocation &Loc) { 2178 return isModSet( 2179 AA.getModRefInfo(CurrentDef->getMemoryInst(), Loc)); 2180 })) 2181 return {}; 2182 } 2183 2184 for (Use &U : Current->uses()) 2185 AccessesToCheck.push_back(cast<MemoryAccess>(U.getUser())); 2186 } 2187 2188 // We could also allow loops with known trip counts without mustprogress, 2189 // but ScalarEvolution may not be available. 2190 Info.PathIsNoop &= isMustProgress(&L); 2191 2192 // If the path is considered a no-op so far, check if it reaches a 2193 // single exit block without any phis. This ensures no values from the 2194 // loop are used outside of the loop. 2195 if (Info.PathIsNoop) { 2196 for (auto *Exiting : ExitingBlocks) { 2197 if (!Seen.contains(Exiting)) 2198 continue; 2199 for (auto *Succ : successors(Exiting)) { 2200 if (L.contains(Succ)) 2201 continue; 2202 2203 Info.PathIsNoop &= Succ->phis().empty() && 2204 (!Info.ExitForPath || Info.ExitForPath == Succ); 2205 if (!Info.PathIsNoop) 2206 break; 2207 assert((!Info.ExitForPath || Info.ExitForPath == Succ) && 2208 "cannot have multiple exit blocks"); 2209 Info.ExitForPath = Succ; 2210 } 2211 } 2212 } 2213 if (!Info.ExitForPath) 2214 Info.PathIsNoop = false; 2215 2216 Info.InstToDuplicate = InstToDuplicate; 2217 return Info; 2218 }; 2219 2220 // If we branch to the same successor, partial unswitching will not be 2221 // beneficial. 2222 if (TI->getSuccessor(0) == TI->getSuccessor(1)) 2223 return {}; 2224 2225 if (auto Info = HasNoClobbersOnPath(TI->getSuccessor(0), L.getHeader(), 2226 AccessesToCheck)) { 2227 Info->KnownValue = ConstantInt::getTrue(TI->getContext()); 2228 return Info; 2229 } 2230 if (auto Info = HasNoClobbersOnPath(TI->getSuccessor(1), L.getHeader(), 2231 AccessesToCheck)) { 2232 Info->KnownValue = ConstantInt::getFalse(TI->getContext()); 2233 return Info; 2234 } 2235 2236 return {}; 2237 } 2238