1 //===-- LICM.cpp - Loop Invariant Code Motion Pass ------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This pass performs loop invariant code motion, attempting to remove as much 11 // code from the body of a loop as possible. It does this by either hoisting 12 // code into the preheader block, or by sinking code to the exit blocks if it is 13 // safe. This pass also promotes must-aliased memory locations in the loop to 14 // live in registers, thus hoisting and sinking "invariant" loads and stores. 15 // 16 // This pass uses alias analysis for two purposes: 17 // 18 // 1. Moving loop invariant loads and calls out of loops. If we can determine 19 // that a load or call inside of a loop never aliases anything stored to, 20 // we can hoist it or sink it like any other instruction. 21 // 2. Scalar Promotion of Memory - If there is a store instruction inside of 22 // the loop, we try to move the store to happen AFTER the loop instead of 23 // inside of the loop. This can only happen if a few conditions are true: 24 // A. The pointer stored through is loop invariant 25 // B. There are no stores or loads in the loop which _may_ alias the 26 // pointer. There are no calls in the loop which mod/ref the pointer. 27 // If these conditions are true, we can promote the loads and stores in the 28 // loop of the pointer to use a temporary alloca'd variable. We then use 29 // the SSAUpdater to construct the appropriate SSA form for the value. 30 // 31 //===----------------------------------------------------------------------===// 32 33 #define DEBUG_TYPE "licm" 34 #include "llvm/Transforms/Scalar.h" 35 #include "llvm/ADT/Statistic.h" 36 #include "llvm/Analysis/AliasAnalysis.h" 37 #include "llvm/Analysis/AliasSetTracker.h" 38 #include "llvm/Analysis/ConstantFolding.h" 39 #include "llvm/Analysis/LoopInfo.h" 40 #include "llvm/Analysis/LoopPass.h" 41 #include "llvm/Analysis/ScalarEvolution.h" 42 #include "llvm/Analysis/ValueTracking.h" 43 #include "llvm/IR/Constants.h" 44 #include "llvm/IR/DataLayout.h" 45 #include "llvm/IR/DerivedTypes.h" 46 #include "llvm/IR/Dominators.h" 47 #include "llvm/IR/Instructions.h" 48 #include "llvm/IR/IntrinsicInst.h" 49 #include "llvm/IR/LLVMContext.h" 50 #include "llvm/IR/Metadata.h" 51 #include "llvm/Support/CFG.h" 52 #include "llvm/Support/CommandLine.h" 53 #include "llvm/Support/Debug.h" 54 #include "llvm/Support/raw_ostream.h" 55 #include "llvm/Target/TargetLibraryInfo.h" 56 #include "llvm/Transforms/Utils/Local.h" 57 #include "llvm/Transforms/Utils/LoopUtils.h" 58 #include "llvm/Transforms/Utils/SSAUpdater.h" 59 #include <algorithm> 60 using namespace llvm; 61 62 STATISTIC(NumSunk , "Number of instructions sunk out of loop"); 63 STATISTIC(NumHoisted , "Number of instructions hoisted out of loop"); 64 STATISTIC(NumMovedLoads, "Number of load insts hoisted or sunk"); 65 STATISTIC(NumMovedCalls, "Number of call insts hoisted or sunk"); 66 STATISTIC(NumPromoted , "Number of memory locations promoted to registers"); 67 68 static cl::opt<bool> 69 DisablePromotion("disable-licm-promotion", cl::Hidden, 70 cl::desc("Disable memory promotion in LICM pass")); 71 72 namespace { 73 struct LICM : public LoopPass { 74 static char ID; // Pass identification, replacement for typeid 75 LICM() : LoopPass(ID) { 76 initializeLICMPass(*PassRegistry::getPassRegistry()); 77 } 78 79 virtual bool runOnLoop(Loop *L, LPPassManager &LPM); 80 81 /// This transformation requires natural loop information & requires that 82 /// loop preheaders be inserted into the CFG... 83 /// 84 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 85 AU.setPreservesCFG(); 86 AU.addRequired<DominatorTreeWrapperPass>(); 87 AU.addRequired<LoopInfo>(); 88 AU.addRequiredID(LoopSimplifyID); 89 AU.addPreservedID(LoopSimplifyID); 90 AU.addRequiredID(LCSSAID); 91 AU.addPreservedID(LCSSAID); 92 AU.addRequired<AliasAnalysis>(); 93 AU.addPreserved<AliasAnalysis>(); 94 AU.addPreserved<ScalarEvolution>(); 95 AU.addRequired<TargetLibraryInfo>(); 96 } 97 98 using llvm::Pass::doFinalization; 99 100 bool doFinalization() { 101 assert(LoopToAliasSetMap.empty() && "Didn't free loop alias sets"); 102 return false; 103 } 104 105 private: 106 AliasAnalysis *AA; // Current AliasAnalysis information 107 LoopInfo *LI; // Current LoopInfo 108 DominatorTree *DT; // Dominator Tree for the current Loop. 109 110 DataLayout *TD; // DataLayout for constant folding. 111 TargetLibraryInfo *TLI; // TargetLibraryInfo for constant folding. 112 113 // State that is updated as we process loops. 114 bool Changed; // Set to true when we change anything. 115 BasicBlock *Preheader; // The preheader block of the current loop... 116 Loop *CurLoop; // The current loop we are working on... 117 AliasSetTracker *CurAST; // AliasSet information for the current loop... 118 bool MayThrow; // The current loop contains an instruction which 119 // may throw, thus preventing code motion of 120 // instructions with side effects. 121 DenseMap<Loop*, AliasSetTracker*> LoopToAliasSetMap; 122 123 /// cloneBasicBlockAnalysis - Simple Analysis hook. Clone alias set info. 124 void cloneBasicBlockAnalysis(BasicBlock *From, BasicBlock *To, Loop *L); 125 126 /// deleteAnalysisValue - Simple Analysis hook. Delete value V from alias 127 /// set. 128 void deleteAnalysisValue(Value *V, Loop *L); 129 130 /// SinkRegion - Walk the specified region of the CFG (defined by all blocks 131 /// dominated by the specified block, and that are in the current loop) in 132 /// reverse depth first order w.r.t the DominatorTree. This allows us to 133 /// visit uses before definitions, allowing us to sink a loop body in one 134 /// pass without iteration. 135 /// 136 void SinkRegion(DomTreeNode *N); 137 138 /// HoistRegion - Walk the specified region of the CFG (defined by all 139 /// blocks dominated by the specified block, and that are in the current 140 /// loop) in depth first order w.r.t the DominatorTree. This allows us to 141 /// visit definitions before uses, allowing us to hoist a loop body in one 142 /// pass without iteration. 143 /// 144 void HoistRegion(DomTreeNode *N); 145 146 /// inSubLoop - Little predicate that returns true if the specified basic 147 /// block is in a subloop of the current one, not the current one itself. 148 /// 149 bool inSubLoop(BasicBlock *BB) { 150 assert(CurLoop->contains(BB) && "Only valid if BB is IN the loop"); 151 return LI->getLoopFor(BB) != CurLoop; 152 } 153 154 /// sink - When an instruction is found to only be used outside of the loop, 155 /// this function moves it to the exit blocks and patches up SSA form as 156 /// needed. 157 /// 158 void sink(Instruction &I); 159 160 /// hoist - When an instruction is found to only use loop invariant operands 161 /// that is safe to hoist, this instruction is called to do the dirty work. 162 /// 163 void hoist(Instruction &I); 164 165 /// isSafeToExecuteUnconditionally - Only sink or hoist an instruction if it 166 /// is not a trapping instruction or if it is a trapping instruction and is 167 /// guaranteed to execute. 168 /// 169 bool isSafeToExecuteUnconditionally(Instruction &I); 170 171 /// isGuaranteedToExecute - Check that the instruction is guaranteed to 172 /// execute. 173 /// 174 bool isGuaranteedToExecute(Instruction &I); 175 176 /// pointerInvalidatedByLoop - Return true if the body of this loop may 177 /// store into the memory location pointed to by V. 178 /// 179 bool pointerInvalidatedByLoop(Value *V, uint64_t Size, 180 const MDNode *TBAAInfo) { 181 // Check to see if any of the basic blocks in CurLoop invalidate *V. 182 return CurAST->getAliasSetForPointer(V, Size, TBAAInfo).isMod(); 183 } 184 185 bool canSinkOrHoistInst(Instruction &I); 186 bool isNotUsedInLoop(Instruction &I); 187 188 void PromoteAliasSet(AliasSet &AS, 189 SmallVectorImpl<BasicBlock*> &ExitBlocks, 190 SmallVectorImpl<Instruction*> &InsertPts); 191 }; 192 } 193 194 char LICM::ID = 0; 195 INITIALIZE_PASS_BEGIN(LICM, "licm", "Loop Invariant Code Motion", false, false) 196 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) 197 INITIALIZE_PASS_DEPENDENCY(LoopInfo) 198 INITIALIZE_PASS_DEPENDENCY(LoopSimplify) 199 INITIALIZE_PASS_DEPENDENCY(LCSSA) 200 INITIALIZE_PASS_DEPENDENCY(ScalarEvolution) 201 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfo) 202 INITIALIZE_AG_DEPENDENCY(AliasAnalysis) 203 INITIALIZE_PASS_END(LICM, "licm", "Loop Invariant Code Motion", false, false) 204 205 Pass *llvm::createLICMPass() { return new LICM(); } 206 207 /// Hoist expressions out of the specified loop. Note, alias info for inner 208 /// loop is not preserved so it is not a good idea to run LICM multiple 209 /// times on one loop. 210 /// 211 bool LICM::runOnLoop(Loop *L, LPPassManager &LPM) { 212 Changed = false; 213 214 // Get our Loop and Alias Analysis information... 215 LI = &getAnalysis<LoopInfo>(); 216 AA = &getAnalysis<AliasAnalysis>(); 217 DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree(); 218 219 TD = getAnalysisIfAvailable<DataLayout>(); 220 TLI = &getAnalysis<TargetLibraryInfo>(); 221 222 CurAST = new AliasSetTracker(*AA); 223 // Collect Alias info from subloops. 224 for (Loop::iterator LoopItr = L->begin(), LoopItrE = L->end(); 225 LoopItr != LoopItrE; ++LoopItr) { 226 Loop *InnerL = *LoopItr; 227 AliasSetTracker *InnerAST = LoopToAliasSetMap[InnerL]; 228 assert(InnerAST && "Where is my AST?"); 229 230 // What if InnerLoop was modified by other passes ? 231 CurAST->add(*InnerAST); 232 233 // Once we've incorporated the inner loop's AST into ours, we don't need the 234 // subloop's anymore. 235 delete InnerAST; 236 LoopToAliasSetMap.erase(InnerL); 237 } 238 239 CurLoop = L; 240 241 // Get the preheader block to move instructions into... 242 Preheader = L->getLoopPreheader(); 243 244 // Loop over the body of this loop, looking for calls, invokes, and stores. 245 // Because subloops have already been incorporated into AST, we skip blocks in 246 // subloops. 247 // 248 for (Loop::block_iterator I = L->block_begin(), E = L->block_end(); 249 I != E; ++I) { 250 BasicBlock *BB = *I; 251 if (LI->getLoopFor(BB) == L) // Ignore blocks in subloops. 252 CurAST->add(*BB); // Incorporate the specified basic block 253 } 254 255 MayThrow = false; 256 // TODO: We've already searched for instructions which may throw in subloops. 257 // We may want to reuse this information. 258 for (Loop::block_iterator BB = L->block_begin(), BBE = L->block_end(); 259 (BB != BBE) && !MayThrow ; ++BB) 260 for (BasicBlock::iterator I = (*BB)->begin(), E = (*BB)->end(); 261 (I != E) && !MayThrow; ++I) 262 MayThrow |= I->mayThrow(); 263 264 // We want to visit all of the instructions in this loop... that are not parts 265 // of our subloops (they have already had their invariants hoisted out of 266 // their loop, into this loop, so there is no need to process the BODIES of 267 // the subloops). 268 // 269 // Traverse the body of the loop in depth first order on the dominator tree so 270 // that we are guaranteed to see definitions before we see uses. This allows 271 // us to sink instructions in one pass, without iteration. After sinking 272 // instructions, we perform another pass to hoist them out of the loop. 273 // 274 if (L->hasDedicatedExits()) 275 SinkRegion(DT->getNode(L->getHeader())); 276 if (Preheader) 277 HoistRegion(DT->getNode(L->getHeader())); 278 279 // Now that all loop invariants have been removed from the loop, promote any 280 // memory references to scalars that we can. 281 if (!DisablePromotion && (Preheader || L->hasDedicatedExits())) { 282 SmallVector<BasicBlock *, 8> ExitBlocks; 283 SmallVector<Instruction *, 8> InsertPts; 284 285 // Loop over all of the alias sets in the tracker object. 286 for (AliasSetTracker::iterator I = CurAST->begin(), E = CurAST->end(); 287 I != E; ++I) 288 PromoteAliasSet(*I, ExitBlocks, InsertPts); 289 } 290 291 // If we have successfully changed the loop, re-form LCSSA and also re-form 292 // LCSSA in the parent loop as hoisting or sinking may have broken it. 293 if (Changed) { 294 formLCSSA(*L, *DT, getAnalysisIfAvailable<ScalarEvolution>()); 295 if (Loop *ParentL = L->getParentLoop()) 296 formLCSSA(*ParentL, *DT, getAnalysisIfAvailable<ScalarEvolution>()); 297 } 298 299 // Clear out loops state information for the next iteration 300 CurLoop = 0; 301 Preheader = 0; 302 303 // If this loop is nested inside of another one, save the alias information 304 // for when we process the outer loop. 305 if (L->getParentLoop()) 306 LoopToAliasSetMap[L] = CurAST; 307 else 308 delete CurAST; 309 return Changed; 310 } 311 312 /// SinkRegion - Walk the specified region of the CFG (defined by all blocks 313 /// dominated by the specified block, and that are in the current loop) in 314 /// reverse depth first order w.r.t the DominatorTree. This allows us to visit 315 /// uses before definitions, allowing us to sink a loop body in one pass without 316 /// iteration. 317 /// 318 void LICM::SinkRegion(DomTreeNode *N) { 319 assert(N != 0 && "Null dominator tree node?"); 320 BasicBlock *BB = N->getBlock(); 321 322 // If this subregion is not in the top level loop at all, exit. 323 if (!CurLoop->contains(BB)) return; 324 325 // We are processing blocks in reverse dfo, so process children first. 326 const std::vector<DomTreeNode*> &Children = N->getChildren(); 327 for (unsigned i = 0, e = Children.size(); i != e; ++i) 328 SinkRegion(Children[i]); 329 330 // Only need to process the contents of this block if it is not part of a 331 // subloop (which would already have been processed). 332 if (inSubLoop(BB)) return; 333 334 for (BasicBlock::iterator II = BB->end(); II != BB->begin(); ) { 335 Instruction &I = *--II; 336 337 // If the instruction is dead, we would try to sink it because it isn't used 338 // in the loop, instead, just delete it. 339 if (isInstructionTriviallyDead(&I, TLI)) { 340 DEBUG(dbgs() << "LICM deleting dead inst: " << I << '\n'); 341 ++II; 342 CurAST->deleteValue(&I); 343 I.eraseFromParent(); 344 Changed = true; 345 continue; 346 } 347 348 // Check to see if we can sink this instruction to the exit blocks 349 // of the loop. We can do this if the all users of the instruction are 350 // outside of the loop. In this case, it doesn't even matter if the 351 // operands of the instruction are loop invariant. 352 // 353 if (isNotUsedInLoop(I) && canSinkOrHoistInst(I)) { 354 ++II; 355 sink(I); 356 } 357 } 358 } 359 360 /// HoistRegion - Walk the specified region of the CFG (defined by all blocks 361 /// dominated by the specified block, and that are in the current loop) in depth 362 /// first order w.r.t the DominatorTree. This allows us to visit definitions 363 /// before uses, allowing us to hoist a loop body in one pass without iteration. 364 /// 365 void LICM::HoistRegion(DomTreeNode *N) { 366 assert(N != 0 && "Null dominator tree node?"); 367 BasicBlock *BB = N->getBlock(); 368 369 // If this subregion is not in the top level loop at all, exit. 370 if (!CurLoop->contains(BB)) return; 371 372 // Only need to process the contents of this block if it is not part of a 373 // subloop (which would already have been processed). 374 if (!inSubLoop(BB)) 375 for (BasicBlock::iterator II = BB->begin(), E = BB->end(); II != E; ) { 376 Instruction &I = *II++; 377 378 // Try constant folding this instruction. If all the operands are 379 // constants, it is technically hoistable, but it would be better to just 380 // fold it. 381 if (Constant *C = ConstantFoldInstruction(&I, TD, TLI)) { 382 DEBUG(dbgs() << "LICM folding inst: " << I << " --> " << *C << '\n'); 383 CurAST->copyValue(&I, C); 384 CurAST->deleteValue(&I); 385 I.replaceAllUsesWith(C); 386 I.eraseFromParent(); 387 continue; 388 } 389 390 // Try hoisting the instruction out to the preheader. We can only do this 391 // if all of the operands of the instruction are loop invariant and if it 392 // is safe to hoist the instruction. 393 // 394 if (CurLoop->hasLoopInvariantOperands(&I) && canSinkOrHoistInst(I) && 395 isSafeToExecuteUnconditionally(I)) 396 hoist(I); 397 } 398 399 const std::vector<DomTreeNode*> &Children = N->getChildren(); 400 for (unsigned i = 0, e = Children.size(); i != e; ++i) 401 HoistRegion(Children[i]); 402 } 403 404 /// canSinkOrHoistInst - Return true if the hoister and sinker can handle this 405 /// instruction. 406 /// 407 bool LICM::canSinkOrHoistInst(Instruction &I) { 408 // Loads have extra constraints we have to verify before we can hoist them. 409 if (LoadInst *LI = dyn_cast<LoadInst>(&I)) { 410 if (!LI->isUnordered()) 411 return false; // Don't hoist volatile/atomic loads! 412 413 // Loads from constant memory are always safe to move, even if they end up 414 // in the same alias set as something that ends up being modified. 415 if (AA->pointsToConstantMemory(LI->getOperand(0))) 416 return true; 417 if (LI->getMetadata("invariant.load")) 418 return true; 419 420 // Don't hoist loads which have may-aliased stores in loop. 421 uint64_t Size = 0; 422 if (LI->getType()->isSized()) 423 Size = AA->getTypeStoreSize(LI->getType()); 424 return !pointerInvalidatedByLoop(LI->getOperand(0), Size, 425 LI->getMetadata(LLVMContext::MD_tbaa)); 426 } else if (CallInst *CI = dyn_cast<CallInst>(&I)) { 427 // Don't sink or hoist dbg info; it's legal, but not useful. 428 if (isa<DbgInfoIntrinsic>(I)) 429 return false; 430 431 // Handle simple cases by querying alias analysis. 432 AliasAnalysis::ModRefBehavior Behavior = AA->getModRefBehavior(CI); 433 if (Behavior == AliasAnalysis::DoesNotAccessMemory) 434 return true; 435 if (AliasAnalysis::onlyReadsMemory(Behavior)) { 436 // If this call only reads from memory and there are no writes to memory 437 // in the loop, we can hoist or sink the call as appropriate. 438 bool FoundMod = false; 439 for (AliasSetTracker::iterator I = CurAST->begin(), E = CurAST->end(); 440 I != E; ++I) { 441 AliasSet &AS = *I; 442 if (!AS.isForwardingAliasSet() && AS.isMod()) { 443 FoundMod = true; 444 break; 445 } 446 } 447 if (!FoundMod) return true; 448 } 449 450 // FIXME: This should use mod/ref information to see if we can hoist or 451 // sink the call. 452 453 return false; 454 } 455 456 // Only these instructions are hoistable/sinkable. 457 if (!isa<BinaryOperator>(I) && !isa<CastInst>(I) && !isa<SelectInst>(I) && 458 !isa<GetElementPtrInst>(I) && !isa<CmpInst>(I) && 459 !isa<InsertElementInst>(I) && !isa<ExtractElementInst>(I) && 460 !isa<ShuffleVectorInst>(I) && !isa<ExtractValueInst>(I) && 461 !isa<InsertValueInst>(I)) 462 return false; 463 464 return isSafeToExecuteUnconditionally(I); 465 } 466 467 /// \brief Returns true if a PHINode is a trivially replaceable with an 468 /// Instruction. 469 /// 470 /// This is true when all incoming values are that instruction. This pattern 471 /// occurs most often with LCSSA PHI nodes. 472 static bool isTriviallyReplacablePHI(PHINode &PN, Instruction &I) { 473 for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i) 474 if (PN.getIncomingValue(i) != &I) 475 return false; 476 477 return true; 478 } 479 480 /// isNotUsedInLoop - Return true if the only users of this instruction are 481 /// outside of the loop. If this is true, we can sink the instruction to the 482 /// exit blocks of the loop. 483 /// 484 bool LICM::isNotUsedInLoop(Instruction &I) { 485 for (Value::use_iterator UI = I.use_begin(), E = I.use_end(); UI != E; ++UI) { 486 Instruction *User = cast<Instruction>(*UI); 487 if (PHINode *PN = dyn_cast<PHINode>(User)) { 488 // A PHI node where all of the incoming values are this instruction are 489 // special -- they can just be RAUW'ed with the instruction and thus 490 // don't require a use in the predecessor. This is a particular important 491 // special case because it is the pattern found in LCSSA form. 492 if (isTriviallyReplacablePHI(*PN, I)) { 493 if (CurLoop->contains(PN)) 494 return false; 495 else 496 continue; 497 } 498 499 // Otherwise, PHI node uses occur in predecessor blocks if the incoming 500 // values. Check for such a use being inside the loop. 501 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) 502 if (PN->getIncomingValue(i) == &I) 503 if (CurLoop->contains(PN->getIncomingBlock(i))) 504 return false; 505 506 continue; 507 } 508 509 if (CurLoop->contains(User)) 510 return false; 511 } 512 return true; 513 } 514 515 static BasicBlock::iterator 516 replaceTrivialPHIsAndGetInsertionPt(BasicBlock &BB, Instruction &I) { 517 BasicBlock::iterator II = BB.begin(); 518 while (PHINode *PN = dyn_cast<PHINode>(II)) { 519 ++II; 520 if (isTriviallyReplacablePHI(*PN, I)) { 521 PN->replaceAllUsesWith(&I); 522 PN->eraseFromParent(); 523 } 524 } 525 if (isa<LandingPadInst>(II)) 526 ++II; 527 528 return II; 529 } 530 531 /// sink - When an instruction is found to only be used outside of the loop, 532 /// this function moves it to the exit blocks and patches up SSA form as needed. 533 /// This method is guaranteed to remove the original instruction from its 534 /// position, and may either delete it or move it to outside of the loop. 535 /// 536 void LICM::sink(Instruction &I) { 537 DEBUG(dbgs() << "LICM sinking instruction: " << I << "\n"); 538 539 SmallVector<BasicBlock*, 8> ExitBlocks; 540 CurLoop->getUniqueExitBlocks(ExitBlocks); 541 542 if (isa<LoadInst>(I)) ++NumMovedLoads; 543 else if (isa<CallInst>(I)) ++NumMovedCalls; 544 ++NumSunk; 545 Changed = true; 546 547 // The case where there is only a single exit node of this loop is common 548 // enough that we handle it as a special (more efficient) case. It is more 549 // efficient to handle because there are no PHI nodes that need to be placed. 550 if (ExitBlocks.size() == 1) { 551 if (!DT->dominates(I.getParent(), ExitBlocks[0])) { 552 // Instruction is not used, just delete it. 553 CurAST->deleteValue(&I); 554 // If I has users in unreachable blocks, eliminate. 555 // If I is not void type then replaceAllUsesWith undef. 556 // This allows ValueHandlers and custom metadata to adjust itself. 557 if (!I.use_empty()) 558 I.replaceAllUsesWith(UndefValue::get(I.getType())); 559 I.eraseFromParent(); 560 } else { 561 // Look for any LCSSA PHI nodes for this instruction in the exit blocks 562 // and replace them. 563 BasicBlock::iterator II = 564 replaceTrivialPHIsAndGetInsertionPt(*ExitBlocks[0], I); 565 566 // Move the instruction to the start of the exit block, after any PHI 567 // nodes in it. 568 I.moveBefore(II); 569 570 // This instruction is no longer in the AST for the current loop, because 571 // we just sunk it out of the loop. If we just sunk it into an outer 572 // loop, we will rediscover the operation when we process it. 573 CurAST->deleteValue(&I); 574 } 575 return; 576 } 577 578 if (ExitBlocks.empty()) { 579 // The instruction is actually dead if there ARE NO exit blocks. 580 CurAST->deleteValue(&I); 581 // If I has users in unreachable blocks, eliminate. 582 // If I is not void type then replaceAllUsesWith undef. 583 // This allows ValueHandlers and custom metadata to adjust itself. 584 if (!I.use_empty()) 585 I.replaceAllUsesWith(UndefValue::get(I.getType())); 586 I.eraseFromParent(); 587 return; 588 } 589 590 // Otherwise, if we have multiple exits, use the SSAUpdater to do all of the 591 // hard work of inserting PHI nodes as necessary. 592 SmallVector<PHINode*, 8> NewPHIs; 593 SSAUpdater SSA(&NewPHIs); 594 595 if (!I.use_empty()) 596 SSA.Initialize(I.getType(), I.getName()); 597 598 // Insert a copy of the instruction in each exit block of the loop that is 599 // dominated by the instruction. Each exit block is known to only be in the 600 // ExitBlocks list once. 601 BasicBlock *InstOrigBB = I.getParent(); 602 unsigned NumInserted = 0; 603 604 for (unsigned i = 0, e = ExitBlocks.size(); i != e; ++i) { 605 BasicBlock *ExitBlock = ExitBlocks[i]; 606 607 if (!DT->dominates(InstOrigBB, ExitBlock)) 608 continue; 609 610 // Look for any LCSSA PHI nodes for this instruction in the exit blocks 611 // and replace them. Then get the insertion point after the last PHI. 612 BasicBlock::iterator InsertPt = 613 replaceTrivialPHIsAndGetInsertionPt(*ExitBlock, I); 614 615 // If this is the first exit block processed, just move the original 616 // instruction, otherwise clone the original instruction and insert 617 // the copy. 618 Instruction *New; 619 if (NumInserted++ == 0) { 620 I.moveBefore(InsertPt); 621 New = &I; 622 } else { 623 New = I.clone(); 624 if (!I.getName().empty()) 625 New->setName(I.getName()+".le"); 626 ExitBlock->getInstList().insert(InsertPt, New); 627 } 628 629 // Now that we have inserted the instruction, inform SSAUpdater. 630 if (!I.use_empty()) 631 SSA.AddAvailableValue(ExitBlock, New); 632 } 633 634 // If the instruction doesn't dominate any exit blocks, it must be dead. 635 if (NumInserted == 0) { 636 CurAST->deleteValue(&I); 637 if (!I.use_empty()) 638 I.replaceAllUsesWith(UndefValue::get(I.getType())); 639 I.eraseFromParent(); 640 return; 641 } 642 643 // Next, rewrite uses of the instruction, inserting PHI nodes as needed. 644 for (Value::use_iterator UI = I.use_begin(), UE = I.use_end(); UI != UE; ) { 645 // Grab the use before incrementing the iterator. 646 Use &U = UI.getUse(); 647 // Increment the iterator before removing the use from the list. 648 ++UI; 649 SSA.RewriteUseAfterInsertions(U); 650 } 651 652 // Update CurAST for NewPHIs if I had pointer type. 653 if (I.getType()->isPointerTy()) 654 for (unsigned i = 0, e = NewPHIs.size(); i != e; ++i) 655 CurAST->copyValue(&I, NewPHIs[i]); 656 657 // Finally, remove the instruction from CurAST. It is no longer in the loop. 658 CurAST->deleteValue(&I); 659 } 660 661 /// hoist - When an instruction is found to only use loop invariant operands 662 /// that is safe to hoist, this instruction is called to do the dirty work. 663 /// 664 void LICM::hoist(Instruction &I) { 665 DEBUG(dbgs() << "LICM hoisting to " << Preheader->getName() << ": " 666 << I << "\n"); 667 668 // Move the new node to the Preheader, before its terminator. 669 I.moveBefore(Preheader->getTerminator()); 670 671 if (isa<LoadInst>(I)) ++NumMovedLoads; 672 else if (isa<CallInst>(I)) ++NumMovedCalls; 673 ++NumHoisted; 674 Changed = true; 675 } 676 677 /// isSafeToExecuteUnconditionally - Only sink or hoist an instruction if it is 678 /// not a trapping instruction or if it is a trapping instruction and is 679 /// guaranteed to execute. 680 /// 681 bool LICM::isSafeToExecuteUnconditionally(Instruction &Inst) { 682 // If it is not a trapping instruction, it is always safe to hoist. 683 if (isSafeToSpeculativelyExecute(&Inst)) 684 return true; 685 686 return isGuaranteedToExecute(Inst); 687 } 688 689 bool LICM::isGuaranteedToExecute(Instruction &Inst) { 690 691 // Somewhere in this loop there is an instruction which may throw and make us 692 // exit the loop. 693 if (MayThrow) 694 return false; 695 696 // Otherwise we have to check to make sure that the instruction dominates all 697 // of the exit blocks. If it doesn't, then there is a path out of the loop 698 // which does not execute this instruction, so we can't hoist it. 699 700 // If the instruction is in the header block for the loop (which is very 701 // common), it is always guaranteed to dominate the exit blocks. Since this 702 // is a common case, and can save some work, check it now. 703 if (Inst.getParent() == CurLoop->getHeader()) 704 return true; 705 706 // Get the exit blocks for the current loop. 707 SmallVector<BasicBlock*, 8> ExitBlocks; 708 CurLoop->getExitBlocks(ExitBlocks); 709 710 // Verify that the block dominates each of the exit blocks of the loop. 711 for (unsigned i = 0, e = ExitBlocks.size(); i != e; ++i) 712 if (!DT->dominates(Inst.getParent(), ExitBlocks[i])) 713 return false; 714 715 // As a degenerate case, if the loop is statically infinite then we haven't 716 // proven anything since there are no exit blocks. 717 if (ExitBlocks.empty()) 718 return false; 719 720 return true; 721 } 722 723 namespace { 724 class LoopPromoter : public LoadAndStorePromoter { 725 Value *SomePtr; // Designated pointer to store to. 726 SmallPtrSet<Value*, 4> &PointerMustAliases; 727 SmallVectorImpl<BasicBlock*> &LoopExitBlocks; 728 SmallVectorImpl<Instruction*> &LoopInsertPts; 729 AliasSetTracker &AST; 730 DebugLoc DL; 731 int Alignment; 732 MDNode *TBAATag; 733 public: 734 LoopPromoter(Value *SP, 735 const SmallVectorImpl<Instruction*> &Insts, SSAUpdater &S, 736 SmallPtrSet<Value*, 4> &PMA, 737 SmallVectorImpl<BasicBlock*> &LEB, 738 SmallVectorImpl<Instruction*> &LIP, 739 AliasSetTracker &ast, DebugLoc dl, int alignment, 740 MDNode *TBAATag) 741 : LoadAndStorePromoter(Insts, S), SomePtr(SP), 742 PointerMustAliases(PMA), LoopExitBlocks(LEB), LoopInsertPts(LIP), 743 AST(ast), DL(dl), Alignment(alignment), TBAATag(TBAATag) {} 744 745 virtual bool isInstInList(Instruction *I, 746 const SmallVectorImpl<Instruction*> &) const { 747 Value *Ptr; 748 if (LoadInst *LI = dyn_cast<LoadInst>(I)) 749 Ptr = LI->getOperand(0); 750 else 751 Ptr = cast<StoreInst>(I)->getPointerOperand(); 752 return PointerMustAliases.count(Ptr); 753 } 754 755 virtual void doExtraRewritesBeforeFinalDeletion() const { 756 // Insert stores after in the loop exit blocks. Each exit block gets a 757 // store of the live-out values that feed them. Since we've already told 758 // the SSA updater about the defs in the loop and the preheader 759 // definition, it is all set and we can start using it. 760 for (unsigned i = 0, e = LoopExitBlocks.size(); i != e; ++i) { 761 BasicBlock *ExitBlock = LoopExitBlocks[i]; 762 Value *LiveInValue = SSA.GetValueInMiddleOfBlock(ExitBlock); 763 Instruction *InsertPos = LoopInsertPts[i]; 764 StoreInst *NewSI = new StoreInst(LiveInValue, SomePtr, InsertPos); 765 NewSI->setAlignment(Alignment); 766 NewSI->setDebugLoc(DL); 767 if (TBAATag) NewSI->setMetadata(LLVMContext::MD_tbaa, TBAATag); 768 } 769 } 770 771 virtual void replaceLoadWithValue(LoadInst *LI, Value *V) const { 772 // Update alias analysis. 773 AST.copyValue(LI, V); 774 } 775 virtual void instructionDeleted(Instruction *I) const { 776 AST.deleteValue(I); 777 } 778 }; 779 } // end anon namespace 780 781 /// PromoteAliasSet - Try to promote memory values to scalars by sinking 782 /// stores out of the loop and moving loads to before the loop. We do this by 783 /// looping over the stores in the loop, looking for stores to Must pointers 784 /// which are loop invariant. 785 /// 786 void LICM::PromoteAliasSet(AliasSet &AS, 787 SmallVectorImpl<BasicBlock*> &ExitBlocks, 788 SmallVectorImpl<Instruction*> &InsertPts) { 789 // We can promote this alias set if it has a store, if it is a "Must" alias 790 // set, if the pointer is loop invariant, and if we are not eliminating any 791 // volatile loads or stores. 792 if (AS.isForwardingAliasSet() || !AS.isMod() || !AS.isMustAlias() || 793 AS.isVolatile() || !CurLoop->isLoopInvariant(AS.begin()->getValue())) 794 return; 795 796 assert(!AS.empty() && 797 "Must alias set should have at least one pointer element in it!"); 798 Value *SomePtr = AS.begin()->getValue(); 799 800 // It isn't safe to promote a load/store from the loop if the load/store is 801 // conditional. For example, turning: 802 // 803 // for () { if (c) *P += 1; } 804 // 805 // into: 806 // 807 // tmp = *P; for () { if (c) tmp +=1; } *P = tmp; 808 // 809 // is not safe, because *P may only be valid to access if 'c' is true. 810 // 811 // It is safe to promote P if all uses are direct load/stores and if at 812 // least one is guaranteed to be executed. 813 bool GuaranteedToExecute = false; 814 815 SmallVector<Instruction*, 64> LoopUses; 816 SmallPtrSet<Value*, 4> PointerMustAliases; 817 818 // We start with an alignment of one and try to find instructions that allow 819 // us to prove better alignment. 820 unsigned Alignment = 1; 821 MDNode *TBAATag = 0; 822 823 // Check that all of the pointers in the alias set have the same type. We 824 // cannot (yet) promote a memory location that is loaded and stored in 825 // different sizes. While we are at it, collect alignment and TBAA info. 826 for (AliasSet::iterator ASI = AS.begin(), E = AS.end(); ASI != E; ++ASI) { 827 Value *ASIV = ASI->getValue(); 828 PointerMustAliases.insert(ASIV); 829 830 // Check that all of the pointers in the alias set have the same type. We 831 // cannot (yet) promote a memory location that is loaded and stored in 832 // different sizes. 833 if (SomePtr->getType() != ASIV->getType()) 834 return; 835 836 for (Value::use_iterator UI = ASIV->use_begin(), UE = ASIV->use_end(); 837 UI != UE; ++UI) { 838 // Ignore instructions that are outside the loop. 839 Instruction *Use = dyn_cast<Instruction>(*UI); 840 if (!Use || !CurLoop->contains(Use)) 841 continue; 842 843 // If there is an non-load/store instruction in the loop, we can't promote 844 // it. 845 if (LoadInst *load = dyn_cast<LoadInst>(Use)) { 846 assert(!load->isVolatile() && "AST broken"); 847 if (!load->isSimple()) 848 return; 849 } else if (StoreInst *store = dyn_cast<StoreInst>(Use)) { 850 // Stores *of* the pointer are not interesting, only stores *to* the 851 // pointer. 852 if (Use->getOperand(1) != ASIV) 853 continue; 854 assert(!store->isVolatile() && "AST broken"); 855 if (!store->isSimple()) 856 return; 857 858 // Note that we only check GuaranteedToExecute inside the store case 859 // so that we do not introduce stores where they did not exist before 860 // (which would break the LLVM concurrency model). 861 862 // If the alignment of this instruction allows us to specify a more 863 // restrictive (and performant) alignment and if we are sure this 864 // instruction will be executed, update the alignment. 865 // Larger is better, with the exception of 0 being the best alignment. 866 unsigned InstAlignment = store->getAlignment(); 867 if ((InstAlignment > Alignment || InstAlignment == 0) && Alignment != 0) 868 if (isGuaranteedToExecute(*Use)) { 869 GuaranteedToExecute = true; 870 Alignment = InstAlignment; 871 } 872 873 if (!GuaranteedToExecute) 874 GuaranteedToExecute = isGuaranteedToExecute(*Use); 875 876 } else 877 return; // Not a load or store. 878 879 // Merge the TBAA tags. 880 if (LoopUses.empty()) { 881 // On the first load/store, just take its TBAA tag. 882 TBAATag = Use->getMetadata(LLVMContext::MD_tbaa); 883 } else if (TBAATag) { 884 TBAATag = MDNode::getMostGenericTBAA(TBAATag, 885 Use->getMetadata(LLVMContext::MD_tbaa)); 886 } 887 888 LoopUses.push_back(Use); 889 } 890 } 891 892 // If there isn't a guaranteed-to-execute instruction, we can't promote. 893 if (!GuaranteedToExecute) 894 return; 895 896 // Otherwise, this is safe to promote, lets do it! 897 DEBUG(dbgs() << "LICM: Promoting value stored to in loop: " <<*SomePtr<<'\n'); 898 Changed = true; 899 ++NumPromoted; 900 901 // Grab a debug location for the inserted loads/stores; given that the 902 // inserted loads/stores have little relation to the original loads/stores, 903 // this code just arbitrarily picks a location from one, since any debug 904 // location is better than none. 905 DebugLoc DL = LoopUses[0]->getDebugLoc(); 906 907 // Figure out the loop exits and their insertion points, if this is the 908 // first promotion. 909 if (ExitBlocks.empty()) { 910 CurLoop->getUniqueExitBlocks(ExitBlocks); 911 InsertPts.resize(ExitBlocks.size()); 912 for (unsigned i = 0, e = ExitBlocks.size(); i != e; ++i) 913 InsertPts[i] = ExitBlocks[i]->getFirstInsertionPt(); 914 } 915 916 // We use the SSAUpdater interface to insert phi nodes as required. 917 SmallVector<PHINode*, 16> NewPHIs; 918 SSAUpdater SSA(&NewPHIs); 919 LoopPromoter Promoter(SomePtr, LoopUses, SSA, PointerMustAliases, ExitBlocks, 920 InsertPts, *CurAST, DL, Alignment, TBAATag); 921 922 // Set up the preheader to have a definition of the value. It is the live-out 923 // value from the preheader that uses in the loop will use. 924 LoadInst *PreheaderLoad = 925 new LoadInst(SomePtr, SomePtr->getName()+".promoted", 926 Preheader->getTerminator()); 927 PreheaderLoad->setAlignment(Alignment); 928 PreheaderLoad->setDebugLoc(DL); 929 if (TBAATag) PreheaderLoad->setMetadata(LLVMContext::MD_tbaa, TBAATag); 930 SSA.AddAvailableValue(Preheader, PreheaderLoad); 931 932 // Rewrite all the loads in the loop and remember all the definitions from 933 // stores in the loop. 934 Promoter.run(LoopUses); 935 936 // If the SSAUpdater didn't use the load in the preheader, just zap it now. 937 if (PreheaderLoad->use_empty()) 938 PreheaderLoad->eraseFromParent(); 939 } 940 941 942 /// cloneBasicBlockAnalysis - Simple Analysis hook. Clone alias set info. 943 void LICM::cloneBasicBlockAnalysis(BasicBlock *From, BasicBlock *To, Loop *L) { 944 AliasSetTracker *AST = LoopToAliasSetMap.lookup(L); 945 if (!AST) 946 return; 947 948 AST->copyValue(From, To); 949 } 950 951 /// deleteAnalysisValue - Simple Analysis hook. Delete value V from alias 952 /// set. 953 void LICM::deleteAnalysisValue(Value *V, Loop *L) { 954 AliasSetTracker *AST = LoopToAliasSetMap.lookup(L); 955 if (!AST) 956 return; 957 958 AST->deleteValue(V); 959 } 960