1 //===-- LoopIdiomRecognize.cpp - Loop idiom recognition -------------------===// 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 implements an idiom recognizer that transforms simple loops into a 11 // non-loop form. In cases that this kicks in, it can be a significant 12 // performance win. 13 // 14 //===----------------------------------------------------------------------===// 15 // 16 // TODO List: 17 // 18 // Future loop memory idioms to recognize: 19 // memcmp, memmove, strlen, etc. 20 // Future floating point idioms to recognize in -ffast-math mode: 21 // fpowi 22 // Future integer operation idioms to recognize: 23 // ctpop, ctlz, cttz 24 // 25 // Beware that isel's default lowering for ctpop is highly inefficient for 26 // i64 and larger types when i64 is legal and the value has few bits set. It 27 // would be good to enhance isel to emit a loop for ctpop in this case. 28 // 29 // We should enhance the memset/memcpy recognition to handle multiple stores in 30 // the loop. This would handle things like: 31 // void foo(_Complex float *P) 32 // for (i) { __real__(*P) = 0; __imag__(*P) = 0; } 33 // 34 // We should enhance this to handle negative strides through memory. 35 // Alternatively (and perhaps better) we could rely on an earlier pass to force 36 // forward iteration through memory, which is generally better for cache 37 // behavior. Negative strides *do* happen for memset/memcpy loops. 38 // 39 // This could recognize common matrix multiplies and dot product idioms and 40 // replace them with calls to BLAS (if linked in??). 41 // 42 //===----------------------------------------------------------------------===// 43 44 #define DEBUG_TYPE "loop-idiom" 45 #include "llvm/Transforms/Scalar.h" 46 #include "llvm/ADT/Statistic.h" 47 #include "llvm/Analysis/AliasAnalysis.h" 48 #include "llvm/Analysis/LoopPass.h" 49 #include "llvm/Analysis/ScalarEvolutionExpander.h" 50 #include "llvm/Analysis/ScalarEvolutionExpressions.h" 51 #include "llvm/Analysis/ValueTracking.h" 52 #include "llvm/DataLayout.h" 53 #include "llvm/IRBuilder.h" 54 #include "llvm/IntrinsicInst.h" 55 #include "llvm/Module.h" 56 #include "llvm/Support/Debug.h" 57 #include "llvm/Support/raw_ostream.h" 58 #include "llvm/Target/TargetLibraryInfo.h" 59 #include "llvm/TargetTransformInfo.h" 60 #include "llvm/Transforms/Utils/Local.h" 61 using namespace llvm; 62 63 STATISTIC(NumMemSet, "Number of memset's formed from loop stores"); 64 STATISTIC(NumMemCpy, "Number of memcpy's formed from loop load+stores"); 65 66 namespace { 67 68 class LoopIdiomRecognize; 69 70 /// This class defines some utility functions for loop idiom recognization. 71 class LIRUtil { 72 public: 73 /// Return true iff the block contains nothing but an uncondition branch 74 /// (aka goto instruction). 75 static bool isAlmostEmpty(BasicBlock *); 76 77 static BranchInst *getBranch(BasicBlock *BB) { 78 return dyn_cast<BranchInst>(BB->getTerminator()); 79 } 80 81 /// Return the condition of the branch terminating the given basic block. 82 static Value *getBrCondtion(BasicBlock *); 83 84 /// Derive the precondition block (i.e the block that guards the loop 85 /// preheader) from the given preheader. 86 static BasicBlock *getPrecondBb(BasicBlock *PreHead); 87 }; 88 89 /// This class is to recoginize idioms of population-count conducted in 90 /// a noncountable loop. Currently it only recognizes this pattern: 91 /// \code 92 /// while(x) {cnt++; ...; x &= x - 1; ...} 93 /// \endcode 94 class NclPopcountRecognize { 95 LoopIdiomRecognize &LIR; 96 Loop *CurLoop; 97 BasicBlock *PreCondBB; 98 99 typedef IRBuilder<> IRBuilderTy; 100 101 public: 102 explicit NclPopcountRecognize(LoopIdiomRecognize &TheLIR); 103 bool recognize(); 104 105 private: 106 /// Take a glimpse of the loop to see if we need to go ahead recoginizing 107 /// the idiom. 108 bool preliminaryScreen(); 109 110 /// Check if the given conditional branch is based on the comparison 111 /// beween a variable and zero, and if the variable is non-zero, the 112 /// control yeilds to the loop entry. If the branch matches the behavior, 113 /// the variable involved in the comparion is returned. This function will 114 /// be called to see if the precondition and postcondition of the loop 115 /// are in desirable form. 116 Value *matchCondition (BranchInst *Br, BasicBlock *NonZeroTarget) const; 117 118 /// Return true iff the idiom is detected in the loop. and 1) \p CntInst 119 /// is set to the instruction counting the pupulation bit. 2) \p CntPhi 120 /// is set to the corresponding phi node. 3) \p Var is set to the value 121 /// whose population bits are being counted. 122 bool detectIdiom 123 (Instruction *&CntInst, PHINode *&CntPhi, Value *&Var) const; 124 125 /// Insert ctpop intrinsic function and some obviously dead instructions. 126 void transform (Instruction *CntInst, PHINode *CntPhi, Value *Var); 127 128 /// Create llvm.ctpop.* intrinsic function. 129 CallInst *createPopcntIntrinsic(IRBuilderTy &IRB, Value *Val, DebugLoc DL); 130 }; 131 132 class LoopIdiomRecognize : public LoopPass { 133 Loop *CurLoop; 134 const DataLayout *TD; 135 DominatorTree *DT; 136 ScalarEvolution *SE; 137 TargetLibraryInfo *TLI; 138 const ScalarTargetTransformInfo *STTI; 139 public: 140 static char ID; 141 explicit LoopIdiomRecognize() : LoopPass(ID) { 142 initializeLoopIdiomRecognizePass(*PassRegistry::getPassRegistry()); 143 TD = 0; DT = 0; SE = 0; TLI = 0; STTI = 0; 144 } 145 146 bool runOnLoop(Loop *L, LPPassManager &LPM); 147 bool runOnLoopBlock(BasicBlock *BB, const SCEV *BECount, 148 SmallVectorImpl<BasicBlock*> &ExitBlocks); 149 150 bool processLoopStore(StoreInst *SI, const SCEV *BECount); 151 bool processLoopMemSet(MemSetInst *MSI, const SCEV *BECount); 152 153 bool processLoopStridedStore(Value *DestPtr, unsigned StoreSize, 154 unsigned StoreAlignment, 155 Value *SplatValue, Instruction *TheStore, 156 const SCEVAddRecExpr *Ev, 157 const SCEV *BECount); 158 bool processLoopStoreOfLoopLoad(StoreInst *SI, unsigned StoreSize, 159 const SCEVAddRecExpr *StoreEv, 160 const SCEVAddRecExpr *LoadEv, 161 const SCEV *BECount); 162 163 /// This transformation requires natural loop information & requires that 164 /// loop preheaders be inserted into the CFG. 165 /// 166 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 167 AU.addRequired<LoopInfo>(); 168 AU.addPreserved<LoopInfo>(); 169 AU.addRequiredID(LoopSimplifyID); 170 AU.addPreservedID(LoopSimplifyID); 171 AU.addRequiredID(LCSSAID); 172 AU.addPreservedID(LCSSAID); 173 AU.addRequired<AliasAnalysis>(); 174 AU.addPreserved<AliasAnalysis>(); 175 AU.addRequired<ScalarEvolution>(); 176 AU.addPreserved<ScalarEvolution>(); 177 AU.addPreserved<DominatorTree>(); 178 AU.addRequired<DominatorTree>(); 179 AU.addRequired<TargetLibraryInfo>(); 180 } 181 182 const DataLayout *getDataLayout() { 183 return TD ? TD : TD=getAnalysisIfAvailable<DataLayout>(); 184 } 185 186 DominatorTree *getDominatorTree() { 187 return DT ? DT : (DT=&getAnalysis<DominatorTree>()); 188 } 189 190 ScalarEvolution *getScalarEvolution() { 191 return SE ? SE : (SE = &getAnalysis<ScalarEvolution>()); 192 } 193 194 TargetLibraryInfo *getTargetLibraryInfo() { 195 return TLI ? TLI : (TLI = &getAnalysis<TargetLibraryInfo>()); 196 } 197 198 const ScalarTargetTransformInfo *getScalarTargetTransformInfo() { 199 if (!STTI) { 200 TargetTransformInfo *TTI = getAnalysisIfAvailable<TargetTransformInfo>(); 201 if (TTI) STTI = TTI->getScalarTargetTransformInfo(); 202 } 203 return STTI; 204 } 205 206 Loop *getLoop() const { return CurLoop; } 207 208 private: 209 bool runOnNoncountableLoop(); 210 bool runOnCountableLoop(); 211 }; 212 } 213 214 char LoopIdiomRecognize::ID = 0; 215 INITIALIZE_PASS_BEGIN(LoopIdiomRecognize, "loop-idiom", "Recognize loop idioms", 216 false, false) 217 INITIALIZE_PASS_DEPENDENCY(LoopInfo) 218 INITIALIZE_PASS_DEPENDENCY(DominatorTree) 219 INITIALIZE_PASS_DEPENDENCY(LoopSimplify) 220 INITIALIZE_PASS_DEPENDENCY(LCSSA) 221 INITIALIZE_PASS_DEPENDENCY(ScalarEvolution) 222 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfo) 223 INITIALIZE_AG_DEPENDENCY(AliasAnalysis) 224 INITIALIZE_PASS_END(LoopIdiomRecognize, "loop-idiom", "Recognize loop idioms", 225 false, false) 226 227 Pass *llvm::createLoopIdiomPass() { return new LoopIdiomRecognize(); } 228 229 /// deleteDeadInstruction - Delete this instruction. Before we do, go through 230 /// and zero out all the operands of this instruction. If any of them become 231 /// dead, delete them and the computation tree that feeds them. 232 /// 233 static void deleteDeadInstruction(Instruction *I, ScalarEvolution &SE, 234 const TargetLibraryInfo *TLI) { 235 SmallVector<Instruction*, 32> NowDeadInsts; 236 237 NowDeadInsts.push_back(I); 238 239 // Before we touch this instruction, remove it from SE! 240 do { 241 Instruction *DeadInst = NowDeadInsts.pop_back_val(); 242 243 // This instruction is dead, zap it, in stages. Start by removing it from 244 // SCEV. 245 SE.forgetValue(DeadInst); 246 247 for (unsigned op = 0, e = DeadInst->getNumOperands(); op != e; ++op) { 248 Value *Op = DeadInst->getOperand(op); 249 DeadInst->setOperand(op, 0); 250 251 // If this operand just became dead, add it to the NowDeadInsts list. 252 if (!Op->use_empty()) continue; 253 254 if (Instruction *OpI = dyn_cast<Instruction>(Op)) 255 if (isInstructionTriviallyDead(OpI, TLI)) 256 NowDeadInsts.push_back(OpI); 257 } 258 259 DeadInst->eraseFromParent(); 260 261 } while (!NowDeadInsts.empty()); 262 } 263 264 /// deleteIfDeadInstruction - If the specified value is a dead instruction, 265 /// delete it and any recursively used instructions. 266 static void deleteIfDeadInstruction(Value *V, ScalarEvolution &SE, 267 const TargetLibraryInfo *TLI) { 268 if (Instruction *I = dyn_cast<Instruction>(V)) 269 if (isInstructionTriviallyDead(I, TLI)) 270 deleteDeadInstruction(I, SE, TLI); 271 } 272 273 //===----------------------------------------------------------------------===// 274 // 275 // Implementation of LIRUtil 276 // 277 //===----------------------------------------------------------------------===// 278 279 // This fucntion will return true iff the given block contains nothing but goto. 280 // A typical usage of this function is to check if the preheader fucntion is 281 // "almost" empty such that generated intrinsic function can be moved across 282 // preheader and to be placed at the end of the preconditiona block without 283 // concerning of breaking data dependence. 284 bool LIRUtil::isAlmostEmpty(BasicBlock *BB) { 285 if (BranchInst *Br = getBranch(BB)) { 286 return Br->isUnconditional() && BB->size() == 1; 287 } 288 return false; 289 } 290 291 Value *LIRUtil::getBrCondtion(BasicBlock *BB) { 292 BranchInst *Br = getBranch(BB); 293 return Br ? Br->getCondition() : 0; 294 } 295 296 BasicBlock *LIRUtil::getPrecondBb(BasicBlock *PreHead) { 297 if (BasicBlock *BB = PreHead->getSinglePredecessor()) { 298 BranchInst *Br = getBranch(BB); 299 return Br && Br->isConditional() ? BB : 0; 300 } 301 return 0; 302 } 303 304 //===----------------------------------------------------------------------===// 305 // 306 // Implementation of NclPopcountRecognize 307 // 308 //===----------------------------------------------------------------------===// 309 310 NclPopcountRecognize::NclPopcountRecognize(LoopIdiomRecognize &TheLIR): 311 LIR(TheLIR), CurLoop(TheLIR.getLoop()), PreCondBB(0) { 312 } 313 314 bool NclPopcountRecognize::preliminaryScreen() { 315 const ScalarTargetTransformInfo *STTI = LIR.getScalarTargetTransformInfo(); 316 if (STTI->getPopcntHwSupport(32) != ScalarTargetTransformInfo::Fast) 317 return false; 318 319 // Counting population are usually conducted by few arithmetic instrutions. 320 // Such instructions can be easilly "absorbed" by vacant slots in a 321 // non-compact loop. Therefore, recognizing popcount idiom only makes sense 322 // in a compact loop. 323 324 // Give up if the loop has multiple blocks or multiple backedges. 325 if (CurLoop->getNumBackEdges() != 1 || CurLoop->getNumBlocks() != 1) 326 return false; 327 328 BasicBlock *LoopBody = *(CurLoop->block_begin()); 329 if (LoopBody->size() >= 20) { 330 // The loop is too big, bail out. 331 return false; 332 } 333 334 // It should have a preheader containing nothing but a goto instruction. 335 BasicBlock *PreHead = CurLoop->getLoopPreheader(); 336 if (!PreHead || !LIRUtil::isAlmostEmpty(PreHead)) 337 return false; 338 339 // It should have a precondition block where the generated popcount instrinsic 340 // function will be inserted. 341 PreCondBB = LIRUtil::getPrecondBb(PreHead); 342 if (!PreCondBB) 343 return false; 344 345 return true; 346 } 347 348 Value *NclPopcountRecognize::matchCondition (BranchInst *Br, 349 BasicBlock *LoopEntry) const { 350 if (!Br || !Br->isConditional()) 351 return 0; 352 353 ICmpInst *Cond = dyn_cast<ICmpInst>(Br->getCondition()); 354 if (!Cond) 355 return 0; 356 357 ConstantInt *CmpZero = dyn_cast<ConstantInt>(Cond->getOperand(1)); 358 if (!CmpZero || !CmpZero->isZero()) 359 return 0; 360 361 ICmpInst::Predicate Pred = Cond->getPredicate(); 362 if ((Pred == ICmpInst::ICMP_NE && Br->getSuccessor(0) == LoopEntry) || 363 (Pred == ICmpInst::ICMP_EQ && Br->getSuccessor(1) == LoopEntry)) 364 return Cond->getOperand(0); 365 366 return 0; 367 } 368 369 bool NclPopcountRecognize::detectIdiom(Instruction *&CntInst, 370 PHINode *&CntPhi, 371 Value *&Var) const { 372 // Following code tries to detect this idiom: 373 // 374 // if (x0 != 0) 375 // goto loop-exit // the precondition of the loop 376 // cnt0 = init-val; 377 // do { 378 // x1 = phi (x0, x2); 379 // cnt1 = phi(cnt0, cnt2); 380 // 381 // cnt2 = cnt1 + 1; 382 // ... 383 // x2 = x1 & (x1 - 1); 384 // ... 385 // } while(x != 0); 386 // 387 // loop-exit: 388 // 389 390 // step 1: Check to see if the look-back branch match this pattern: 391 // "if (a!=0) goto loop-entry". 392 BasicBlock *LoopEntry; 393 Instruction *DefX2, *CountInst; 394 Value *VarX1, *VarX0; 395 PHINode *PhiX, *CountPhi; 396 397 DefX2 = CountInst = 0; 398 VarX1 = VarX0 = 0; 399 PhiX = CountPhi = 0; 400 LoopEntry = *(CurLoop->block_begin()); 401 402 // step 1: Check if the loop-back branch is in desirable form. 403 { 404 if (Value *T = matchCondition (LIRUtil::getBranch(LoopEntry), LoopEntry)) 405 DefX2 = dyn_cast<Instruction>(T); 406 else 407 return false; 408 } 409 410 // step 2: detect instructions corresponding to "x2 = x1 & (x1 - 1)" 411 { 412 if (DefX2->getOpcode() != Instruction::And) 413 return false; 414 415 BinaryOperator *SubOneOp; 416 417 if ((SubOneOp = dyn_cast<BinaryOperator>(DefX2->getOperand(0)))) 418 VarX1 = DefX2->getOperand(1); 419 else { 420 VarX1 = DefX2->getOperand(0); 421 SubOneOp = dyn_cast<BinaryOperator>(DefX2->getOperand(1)); 422 } 423 if (!SubOneOp) 424 return false; 425 426 Instruction *SubInst = cast<Instruction>(SubOneOp); 427 ConstantInt *Dec = dyn_cast<ConstantInt>(SubInst->getOperand(1)); 428 if (!Dec || 429 !((SubInst->getOpcode() == Instruction::Sub && Dec->isOne()) || 430 (SubInst->getOpcode() == Instruction::Add && Dec->isAllOnesValue()))) { 431 return false; 432 } 433 } 434 435 // step 3: Check the recurrence of variable X 436 { 437 PhiX = dyn_cast<PHINode>(VarX1); 438 if (!PhiX || 439 (PhiX->getOperand(0) != DefX2 && PhiX->getOperand(1) != DefX2)) { 440 return false; 441 } 442 } 443 444 // step 4: Find the instruction which count the population: cnt2 = cnt1 + 1 445 { 446 CountInst = NULL; 447 for (BasicBlock::iterator Iter = LoopEntry->getFirstNonPHI(), 448 IterE = LoopEntry->end(); Iter != IterE; Iter++) { 449 Instruction *Inst = Iter; 450 if (Inst->getOpcode() != Instruction::Add) 451 continue; 452 453 ConstantInt *Inc = dyn_cast<ConstantInt>(Inst->getOperand(1)); 454 if (!Inc || !Inc->isOne()) 455 continue; 456 457 PHINode *Phi = dyn_cast<PHINode>(Inst->getOperand(0)); 458 if (!Phi && Phi->getParent() != LoopEntry) 459 continue; 460 461 // Check if the result of the instruction is live of the loop. 462 bool LiveOutLoop = false; 463 for (Value::use_iterator I = Inst->use_begin(), E = Inst->use_end(); 464 I != E; I++) { 465 if ((cast<Instruction>(*I))->getParent() != LoopEntry) { 466 LiveOutLoop = true; break; 467 } 468 } 469 470 if (LiveOutLoop) { 471 CountInst = Inst; 472 CountPhi = Phi; 473 break; 474 } 475 } 476 477 if (!CountInst) 478 return false; 479 } 480 481 // step 5: check if the precondition is in this form: 482 // "if (x != 0) goto loop-head ; else goto somewhere-we-don't-care;" 483 { 484 BranchInst *PreCondBr = LIRUtil::getBranch(PreCondBB); 485 Value *T = matchCondition (PreCondBr, CurLoop->getLoopPreheader()); 486 if (T != PhiX->getOperand(0) && T != PhiX->getOperand(1)) 487 return false; 488 489 CntInst = CountInst; 490 CntPhi = CountPhi; 491 Var = T; 492 } 493 494 return true; 495 } 496 497 void NclPopcountRecognize::transform(Instruction *CntInst, 498 PHINode *CntPhi, Value *Var) { 499 500 ScalarEvolution *SE = LIR.getScalarEvolution(); 501 TargetLibraryInfo *TLI = LIR.getTargetLibraryInfo(); 502 BasicBlock *PreHead = CurLoop->getLoopPreheader(); 503 BranchInst *PreCondBr = LIRUtil::getBranch(PreCondBB); 504 const DebugLoc DL = CntInst->getDebugLoc(); 505 506 // Assuming before transformation, the loop is following: 507 // if (x) // the precondition 508 // do { cnt++; x &= x - 1; } while(x); 509 510 // Step 1: Insert the ctpop instruction at the end of the precondition block 511 IRBuilderTy Builder(PreCondBr); 512 Value *PopCnt, *PopCntZext, *NewCount; 513 { 514 PopCnt = createPopcntIntrinsic(Builder, Var, DL); 515 NewCount = PopCntZext = 516 Builder.CreateZExtOrTrunc(PopCnt, cast<IntegerType>(CntPhi->getType())); 517 518 if (NewCount != PopCnt) 519 (cast<Instruction>(NewCount))->setDebugLoc(DL); 520 521 // If the popoulation counter's initial value is not zero, insert Add Inst. 522 Value *CntInitVal = CntPhi->getIncomingValueForBlock(PreHead); 523 ConstantInt *InitConst = dyn_cast<ConstantInt>(CntInitVal); 524 if (!InitConst || !InitConst->isZero()) { 525 NewCount = Builder.CreateAdd(PopCnt, InitConst); 526 (cast<Instruction>(NewCount))->setDebugLoc(DL); 527 } 528 } 529 530 // Step 2: Replace the precondition from "if(x == 0) goto loop-exit" to 531 // "if(NewCount == 0) loop-exit". Withtout this change, the intrinsic 532 // function would be partial dead code, and downstream passes will drag 533 // it back from the precondition block to the preheader. 534 { 535 ICmpInst *PreCond = cast<ICmpInst>(PreCondBr->getCondition()); 536 537 Value *Opnd0 = PopCntZext; 538 Value *Opnd1 = ConstantInt::get(PopCntZext->getType(), 0); 539 if (PreCond->getOperand(0) != Var) 540 std::swap(Opnd0, Opnd1); 541 542 ICmpInst *NewPreCond = 543 cast<ICmpInst>(Builder.CreateICmp(PreCond->getPredicate(), Opnd0, Opnd1)); 544 PreCond->replaceAllUsesWith(NewPreCond); 545 546 deleteDeadInstruction(PreCond, *SE, TLI); 547 } 548 549 // Step 3: Note that the population count is exactly the trip count of the 550 // loop in question, which enble us to to convert the loop from noncountable 551 // loop into a countable one. The benefit is twofold: 552 // 553 // - If the loop only counts population, the entire loop become dead after 554 // the transformation. It is lots easier to prove a countable loop dead 555 // than to prove a noncountable one. (In some C dialects, a infite loop 556 // isn't dead even if it computes nothing useful. In general, DCE needs 557 // to prove a noncountable loop finite before safely delete it.) 558 // 559 // - If the loop also performs something else, it remains alive. 560 // Since it is transformed to countable form, it can be aggressively 561 // optimized by some optimizations which are in general not applicable 562 // to a noncountable loop. 563 // 564 // After this step, this loop (conceptually) would look like following: 565 // newcnt = __builtin_ctpop(x); 566 // t = newcnt; 567 // if (x) 568 // do { cnt++; x &= x-1; t--) } while (t > 0); 569 BasicBlock *Body = *(CurLoop->block_begin()); 570 { 571 BranchInst *LbBr = LIRUtil::getBranch(Body); 572 ICmpInst *LbCond = cast<ICmpInst>(LbBr->getCondition()); 573 Type *Ty = NewCount->getType(); 574 575 PHINode *TcPhi = PHINode::Create(Ty, 2, "tcphi", Body->begin()); 576 577 Builder.SetInsertPoint(LbCond); 578 Value *Opnd1 = cast<Value>(TcPhi); 579 Value *Opnd2 = cast<Value>(ConstantInt::get(Ty, 1)); 580 Instruction *TcDec = 581 cast<Instruction>(Builder.CreateSub(Opnd1, Opnd2, "tcdec", false, true)); 582 583 TcPhi->addIncoming(NewCount, PreHead); 584 TcPhi->addIncoming(TcDec, Body); 585 586 CmpInst::Predicate Pred = (LbBr->getSuccessor(0) == Body) ? 587 CmpInst::ICMP_UGT : CmpInst::ICMP_SLE; 588 LbCond->setPredicate(Pred); 589 LbCond->setOperand(0, TcDec); 590 LbCond->setOperand(1, cast<Value>(ConstantInt::get(Ty, 0))); 591 } 592 593 // Step 4: All the references to the original population counter outside 594 // the loop are replaced with the NewCount -- the value returned from 595 // __builtin_ctpop(). 596 { 597 SmallVector<Value *, 4> CntUses; 598 for (Value::use_iterator I = CntInst->use_begin(), E = CntInst->use_end(); 599 I != E; I++) { 600 if (cast<Instruction>(*I)->getParent() != Body) 601 CntUses.push_back(*I); 602 } 603 for (unsigned Idx = 0; Idx < CntUses.size(); Idx++) { 604 (cast<Instruction>(CntUses[Idx]))->replaceUsesOfWith(CntInst, NewCount); 605 } 606 } 607 608 // step 5: Forget the "non-computable" trip-count SCEV associated with the 609 // loop. The loop would otherwise not be deleted even if it becomes empty. 610 SE->forgetLoop(CurLoop); 611 } 612 613 CallInst *NclPopcountRecognize::createPopcntIntrinsic(IRBuilderTy &IRBuilder, 614 Value *Val, DebugLoc DL) { 615 Value *Ops[] = { Val }; 616 Type *Tys[] = { Val->getType() }; 617 618 Module *M = (*(CurLoop->block_begin()))->getParent()->getParent(); 619 Value *Func = Intrinsic::getDeclaration(M, Intrinsic::ctpop, Tys); 620 CallInst *CI = IRBuilder.CreateCall(Func, Ops); 621 CI->setDebugLoc(DL); 622 623 return CI; 624 } 625 626 /// recognize - detect population count idiom in a non-countable loop. If 627 /// detected, transform the relevant code to popcount intrinsic function 628 /// call, and return true; otherwise, return false. 629 bool NclPopcountRecognize::recognize() { 630 631 if (!LIR.getScalarTargetTransformInfo()) 632 return false; 633 634 LIR.getScalarEvolution(); 635 636 if (!preliminaryScreen()) 637 return false; 638 639 Instruction *CntInst; 640 PHINode *CntPhi; 641 Value *Val; 642 if (!detectIdiom(CntInst, CntPhi, Val)) 643 return false; 644 645 transform(CntInst, CntPhi, Val); 646 return true; 647 } 648 649 //===----------------------------------------------------------------------===// 650 // 651 // Implementation of LoopIdiomRecognize 652 // 653 //===----------------------------------------------------------------------===// 654 655 bool LoopIdiomRecognize::runOnCountableLoop() { 656 const SCEV *BECount = SE->getBackedgeTakenCount(CurLoop); 657 if (isa<SCEVCouldNotCompute>(BECount)) return false; 658 659 // If this loop executes exactly one time, then it should be peeled, not 660 // optimized by this pass. 661 if (const SCEVConstant *BECst = dyn_cast<SCEVConstant>(BECount)) 662 if (BECst->getValue()->getValue() == 0) 663 return false; 664 665 // We require target data for now. 666 if (!getDataLayout()) 667 return false; 668 669 getDominatorTree(); 670 671 LoopInfo &LI = getAnalysis<LoopInfo>(); 672 TLI = &getAnalysis<TargetLibraryInfo>(); 673 674 getTargetLibraryInfo(); 675 676 SmallVector<BasicBlock*, 8> ExitBlocks; 677 CurLoop->getUniqueExitBlocks(ExitBlocks); 678 679 DEBUG(dbgs() << "loop-idiom Scanning: F[" 680 << CurLoop->getHeader()->getParent()->getName() 681 << "] Loop %" << CurLoop->getHeader()->getName() << "\n"); 682 683 bool MadeChange = false; 684 // Scan all the blocks in the loop that are not in subloops. 685 for (Loop::block_iterator BI = CurLoop->block_begin(), 686 E = CurLoop->block_end(); BI != E; ++BI) { 687 // Ignore blocks in subloops. 688 if (LI.getLoopFor(*BI) != CurLoop) 689 continue; 690 691 MadeChange |= runOnLoopBlock(*BI, BECount, ExitBlocks); 692 } 693 return MadeChange; 694 } 695 696 bool LoopIdiomRecognize::runOnNoncountableLoop() { 697 NclPopcountRecognize Popcount(*this); 698 if (Popcount.recognize()) 699 return true; 700 701 return false; 702 } 703 704 bool LoopIdiomRecognize::runOnLoop(Loop *L, LPPassManager &LPM) { 705 CurLoop = L; 706 707 // If the loop could not be converted to canonical form, it must have an 708 // indirectbr in it, just give up. 709 if (!L->getLoopPreheader()) 710 return false; 711 712 // Disable loop idiom recognition if the function's name is a common idiom. 713 StringRef Name = L->getHeader()->getParent()->getName(); 714 if (Name == "memset" || Name == "memcpy") 715 return false; 716 717 SE = &getAnalysis<ScalarEvolution>(); 718 if (SE->hasLoopInvariantBackedgeTakenCount(L)) 719 return runOnCountableLoop(); 720 return runOnNoncountableLoop(); 721 } 722 723 /// runOnLoopBlock - Process the specified block, which lives in a counted loop 724 /// with the specified backedge count. This block is known to be in the current 725 /// loop and not in any subloops. 726 bool LoopIdiomRecognize::runOnLoopBlock(BasicBlock *BB, const SCEV *BECount, 727 SmallVectorImpl<BasicBlock*> &ExitBlocks) { 728 // We can only promote stores in this block if they are unconditionally 729 // executed in the loop. For a block to be unconditionally executed, it has 730 // to dominate all the exit blocks of the loop. Verify this now. 731 for (unsigned i = 0, e = ExitBlocks.size(); i != e; ++i) 732 if (!DT->dominates(BB, ExitBlocks[i])) 733 return false; 734 735 bool MadeChange = false; 736 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; ) { 737 Instruction *Inst = I++; 738 // Look for store instructions, which may be optimized to memset/memcpy. 739 if (StoreInst *SI = dyn_cast<StoreInst>(Inst)) { 740 WeakVH InstPtr(I); 741 if (!processLoopStore(SI, BECount)) continue; 742 MadeChange = true; 743 744 // If processing the store invalidated our iterator, start over from the 745 // top of the block. 746 if (InstPtr == 0) 747 I = BB->begin(); 748 continue; 749 } 750 751 // Look for memset instructions, which may be optimized to a larger memset. 752 if (MemSetInst *MSI = dyn_cast<MemSetInst>(Inst)) { 753 WeakVH InstPtr(I); 754 if (!processLoopMemSet(MSI, BECount)) continue; 755 MadeChange = true; 756 757 // If processing the memset invalidated our iterator, start over from the 758 // top of the block. 759 if (InstPtr == 0) 760 I = BB->begin(); 761 continue; 762 } 763 } 764 765 return MadeChange; 766 } 767 768 769 /// processLoopStore - See if this store can be promoted to a memset or memcpy. 770 bool LoopIdiomRecognize::processLoopStore(StoreInst *SI, const SCEV *BECount) { 771 if (!SI->isSimple()) return false; 772 773 Value *StoredVal = SI->getValueOperand(); 774 Value *StorePtr = SI->getPointerOperand(); 775 776 // Reject stores that are so large that they overflow an unsigned. 777 uint64_t SizeInBits = TD->getTypeSizeInBits(StoredVal->getType()); 778 if ((SizeInBits & 7) || (SizeInBits >> 32) != 0) 779 return false; 780 781 // See if the pointer expression is an AddRec like {base,+,1} on the current 782 // loop, which indicates a strided store. If we have something else, it's a 783 // random store we can't handle. 784 const SCEVAddRecExpr *StoreEv = 785 dyn_cast<SCEVAddRecExpr>(SE->getSCEV(StorePtr)); 786 if (StoreEv == 0 || StoreEv->getLoop() != CurLoop || !StoreEv->isAffine()) 787 return false; 788 789 // Check to see if the stride matches the size of the store. If so, then we 790 // know that every byte is touched in the loop. 791 unsigned StoreSize = (unsigned)SizeInBits >> 3; 792 const SCEVConstant *Stride = dyn_cast<SCEVConstant>(StoreEv->getOperand(1)); 793 794 if (Stride == 0 || StoreSize != Stride->getValue()->getValue()) { 795 // TODO: Could also handle negative stride here someday, that will require 796 // the validity check in mayLoopAccessLocation to be updated though. 797 // Enable this to print exact negative strides. 798 if (0 && Stride && StoreSize == -Stride->getValue()->getValue()) { 799 dbgs() << "NEGATIVE STRIDE: " << *SI << "\n"; 800 dbgs() << "BB: " << *SI->getParent(); 801 } 802 803 return false; 804 } 805 806 // See if we can optimize just this store in isolation. 807 if (processLoopStridedStore(StorePtr, StoreSize, SI->getAlignment(), 808 StoredVal, SI, StoreEv, BECount)) 809 return true; 810 811 // If the stored value is a strided load in the same loop with the same stride 812 // this this may be transformable into a memcpy. This kicks in for stuff like 813 // for (i) A[i] = B[i]; 814 if (LoadInst *LI = dyn_cast<LoadInst>(StoredVal)) { 815 const SCEVAddRecExpr *LoadEv = 816 dyn_cast<SCEVAddRecExpr>(SE->getSCEV(LI->getOperand(0))); 817 if (LoadEv && LoadEv->getLoop() == CurLoop && LoadEv->isAffine() && 818 StoreEv->getOperand(1) == LoadEv->getOperand(1) && LI->isSimple()) 819 if (processLoopStoreOfLoopLoad(SI, StoreSize, StoreEv, LoadEv, BECount)) 820 return true; 821 } 822 //errs() << "UNHANDLED strided store: " << *StoreEv << " - " << *SI << "\n"; 823 824 return false; 825 } 826 827 /// processLoopMemSet - See if this memset can be promoted to a large memset. 828 bool LoopIdiomRecognize:: 829 processLoopMemSet(MemSetInst *MSI, const SCEV *BECount) { 830 // We can only handle non-volatile memsets with a constant size. 831 if (MSI->isVolatile() || !isa<ConstantInt>(MSI->getLength())) return false; 832 833 // If we're not allowed to hack on memset, we fail. 834 if (!TLI->has(LibFunc::memset)) 835 return false; 836 837 Value *Pointer = MSI->getDest(); 838 839 // See if the pointer expression is an AddRec like {base,+,1} on the current 840 // loop, which indicates a strided store. If we have something else, it's a 841 // random store we can't handle. 842 const SCEVAddRecExpr *Ev = dyn_cast<SCEVAddRecExpr>(SE->getSCEV(Pointer)); 843 if (Ev == 0 || Ev->getLoop() != CurLoop || !Ev->isAffine()) 844 return false; 845 846 // Reject memsets that are so large that they overflow an unsigned. 847 uint64_t SizeInBytes = cast<ConstantInt>(MSI->getLength())->getZExtValue(); 848 if ((SizeInBytes >> 32) != 0) 849 return false; 850 851 // Check to see if the stride matches the size of the memset. If so, then we 852 // know that every byte is touched in the loop. 853 const SCEVConstant *Stride = dyn_cast<SCEVConstant>(Ev->getOperand(1)); 854 855 // TODO: Could also handle negative stride here someday, that will require the 856 // validity check in mayLoopAccessLocation to be updated though. 857 if (Stride == 0 || MSI->getLength() != Stride->getValue()) 858 return false; 859 860 return processLoopStridedStore(Pointer, (unsigned)SizeInBytes, 861 MSI->getAlignment(), MSI->getValue(), 862 MSI, Ev, BECount); 863 } 864 865 866 /// mayLoopAccessLocation - Return true if the specified loop might access the 867 /// specified pointer location, which is a loop-strided access. The 'Access' 868 /// argument specifies what the verboten forms of access are (read or write). 869 static bool mayLoopAccessLocation(Value *Ptr,AliasAnalysis::ModRefResult Access, 870 Loop *L, const SCEV *BECount, 871 unsigned StoreSize, AliasAnalysis &AA, 872 Instruction *IgnoredStore) { 873 // Get the location that may be stored across the loop. Since the access is 874 // strided positively through memory, we say that the modified location starts 875 // at the pointer and has infinite size. 876 uint64_t AccessSize = AliasAnalysis::UnknownSize; 877 878 // If the loop iterates a fixed number of times, we can refine the access size 879 // to be exactly the size of the memset, which is (BECount+1)*StoreSize 880 if (const SCEVConstant *BECst = dyn_cast<SCEVConstant>(BECount)) 881 AccessSize = (BECst->getValue()->getZExtValue()+1)*StoreSize; 882 883 // TODO: For this to be really effective, we have to dive into the pointer 884 // operand in the store. Store to &A[i] of 100 will always return may alias 885 // with store of &A[100], we need to StoreLoc to be "A" with size of 100, 886 // which will then no-alias a store to &A[100]. 887 AliasAnalysis::Location StoreLoc(Ptr, AccessSize); 888 889 for (Loop::block_iterator BI = L->block_begin(), E = L->block_end(); BI != E; 890 ++BI) 891 for (BasicBlock::iterator I = (*BI)->begin(), E = (*BI)->end(); I != E; ++I) 892 if (&*I != IgnoredStore && 893 (AA.getModRefInfo(I, StoreLoc) & Access)) 894 return true; 895 896 return false; 897 } 898 899 /// getMemSetPatternValue - If a strided store of the specified value is safe to 900 /// turn into a memset_pattern16, return a ConstantArray of 16 bytes that should 901 /// be passed in. Otherwise, return null. 902 /// 903 /// Note that we don't ever attempt to use memset_pattern8 or 4, because these 904 /// just replicate their input array and then pass on to memset_pattern16. 905 static Constant *getMemSetPatternValue(Value *V, const DataLayout &TD) { 906 // If the value isn't a constant, we can't promote it to being in a constant 907 // array. We could theoretically do a store to an alloca or something, but 908 // that doesn't seem worthwhile. 909 Constant *C = dyn_cast<Constant>(V); 910 if (C == 0) return 0; 911 912 // Only handle simple values that are a power of two bytes in size. 913 uint64_t Size = TD.getTypeSizeInBits(V->getType()); 914 if (Size == 0 || (Size & 7) || (Size & (Size-1))) 915 return 0; 916 917 // Don't care enough about darwin/ppc to implement this. 918 if (TD.isBigEndian()) 919 return 0; 920 921 // Convert to size in bytes. 922 Size /= 8; 923 924 // TODO: If CI is larger than 16-bytes, we can try slicing it in half to see 925 // if the top and bottom are the same (e.g. for vectors and large integers). 926 if (Size > 16) return 0; 927 928 // If the constant is exactly 16 bytes, just use it. 929 if (Size == 16) return C; 930 931 // Otherwise, we'll use an array of the constants. 932 unsigned ArraySize = 16/Size; 933 ArrayType *AT = ArrayType::get(V->getType(), ArraySize); 934 return ConstantArray::get(AT, std::vector<Constant*>(ArraySize, C)); 935 } 936 937 938 /// processLoopStridedStore - We see a strided store of some value. If we can 939 /// transform this into a memset or memset_pattern in the loop preheader, do so. 940 bool LoopIdiomRecognize:: 941 processLoopStridedStore(Value *DestPtr, unsigned StoreSize, 942 unsigned StoreAlignment, Value *StoredVal, 943 Instruction *TheStore, const SCEVAddRecExpr *Ev, 944 const SCEV *BECount) { 945 946 // If the stored value is a byte-wise value (like i32 -1), then it may be 947 // turned into a memset of i8 -1, assuming that all the consecutive bytes 948 // are stored. A store of i32 0x01020304 can never be turned into a memset, 949 // but it can be turned into memset_pattern if the target supports it. 950 Value *SplatValue = isBytewiseValue(StoredVal); 951 Constant *PatternValue = 0; 952 953 // If we're allowed to form a memset, and the stored value would be acceptable 954 // for memset, use it. 955 if (SplatValue && TLI->has(LibFunc::memset) && 956 // Verify that the stored value is loop invariant. If not, we can't 957 // promote the memset. 958 CurLoop->isLoopInvariant(SplatValue)) { 959 // Keep and use SplatValue. 960 PatternValue = 0; 961 } else if (TLI->has(LibFunc::memset_pattern16) && 962 (PatternValue = getMemSetPatternValue(StoredVal, *TD))) { 963 // It looks like we can use PatternValue! 964 SplatValue = 0; 965 } else { 966 // Otherwise, this isn't an idiom we can transform. For example, we can't 967 // do anything with a 3-byte store. 968 return false; 969 } 970 971 // The trip count of the loop and the base pointer of the addrec SCEV is 972 // guaranteed to be loop invariant, which means that it should dominate the 973 // header. This allows us to insert code for it in the preheader. 974 BasicBlock *Preheader = CurLoop->getLoopPreheader(); 975 IRBuilder<> Builder(Preheader->getTerminator()); 976 SCEVExpander Expander(*SE, "loop-idiom"); 977 978 // Okay, we have a strided store "p[i]" of a splattable value. We can turn 979 // this into a memset in the loop preheader now if we want. However, this 980 // would be unsafe to do if there is anything else in the loop that may read 981 // or write to the aliased location. Check for any overlap by generating the 982 // base pointer and checking the region. 983 unsigned AddrSpace = cast<PointerType>(DestPtr->getType())->getAddressSpace(); 984 Value *BasePtr = 985 Expander.expandCodeFor(Ev->getStart(), Builder.getInt8PtrTy(AddrSpace), 986 Preheader->getTerminator()); 987 988 989 if (mayLoopAccessLocation(BasePtr, AliasAnalysis::ModRef, 990 CurLoop, BECount, 991 StoreSize, getAnalysis<AliasAnalysis>(), TheStore)){ 992 Expander.clear(); 993 // If we generated new code for the base pointer, clean up. 994 deleteIfDeadInstruction(BasePtr, *SE, TLI); 995 return false; 996 } 997 998 // Okay, everything looks good, insert the memset. 999 1000 // The # stored bytes is (BECount+1)*Size. Expand the trip count out to 1001 // pointer size if it isn't already. 1002 Type *IntPtr = TD->getIntPtrType(DestPtr->getContext()); 1003 BECount = SE->getTruncateOrZeroExtend(BECount, IntPtr); 1004 1005 const SCEV *NumBytesS = SE->getAddExpr(BECount, SE->getConstant(IntPtr, 1), 1006 SCEV::FlagNUW); 1007 if (StoreSize != 1) 1008 NumBytesS = SE->getMulExpr(NumBytesS, SE->getConstant(IntPtr, StoreSize), 1009 SCEV::FlagNUW); 1010 1011 Value *NumBytes = 1012 Expander.expandCodeFor(NumBytesS, IntPtr, Preheader->getTerminator()); 1013 1014 CallInst *NewCall; 1015 if (SplatValue) 1016 NewCall = Builder.CreateMemSet(BasePtr, SplatValue,NumBytes,StoreAlignment); 1017 else { 1018 Module *M = TheStore->getParent()->getParent()->getParent(); 1019 Value *MSP = M->getOrInsertFunction("memset_pattern16", 1020 Builder.getVoidTy(), 1021 Builder.getInt8PtrTy(), 1022 Builder.getInt8PtrTy(), IntPtr, 1023 (void*)0); 1024 1025 // Otherwise we should form a memset_pattern16. PatternValue is known to be 1026 // an constant array of 16-bytes. Plop the value into a mergable global. 1027 GlobalVariable *GV = new GlobalVariable(*M, PatternValue->getType(), true, 1028 GlobalValue::InternalLinkage, 1029 PatternValue, ".memset_pattern"); 1030 GV->setUnnamedAddr(true); // Ok to merge these. 1031 GV->setAlignment(16); 1032 Value *PatternPtr = ConstantExpr::getBitCast(GV, Builder.getInt8PtrTy()); 1033 NewCall = Builder.CreateCall3(MSP, BasePtr, PatternPtr, NumBytes); 1034 } 1035 1036 DEBUG(dbgs() << " Formed memset: " << *NewCall << "\n" 1037 << " from store to: " << *Ev << " at: " << *TheStore << "\n"); 1038 NewCall->setDebugLoc(TheStore->getDebugLoc()); 1039 1040 // Okay, the memset has been formed. Zap the original store and anything that 1041 // feeds into it. 1042 deleteDeadInstruction(TheStore, *SE, TLI); 1043 ++NumMemSet; 1044 return true; 1045 } 1046 1047 /// processLoopStoreOfLoopLoad - We see a strided store whose value is a 1048 /// same-strided load. 1049 bool LoopIdiomRecognize:: 1050 processLoopStoreOfLoopLoad(StoreInst *SI, unsigned StoreSize, 1051 const SCEVAddRecExpr *StoreEv, 1052 const SCEVAddRecExpr *LoadEv, 1053 const SCEV *BECount) { 1054 // If we're not allowed to form memcpy, we fail. 1055 if (!TLI->has(LibFunc::memcpy)) 1056 return false; 1057 1058 LoadInst *LI = cast<LoadInst>(SI->getValueOperand()); 1059 1060 // The trip count of the loop and the base pointer of the addrec SCEV is 1061 // guaranteed to be loop invariant, which means that it should dominate the 1062 // header. This allows us to insert code for it in the preheader. 1063 BasicBlock *Preheader = CurLoop->getLoopPreheader(); 1064 IRBuilder<> Builder(Preheader->getTerminator()); 1065 SCEVExpander Expander(*SE, "loop-idiom"); 1066 1067 // Okay, we have a strided store "p[i]" of a loaded value. We can turn 1068 // this into a memcpy in the loop preheader now if we want. However, this 1069 // would be unsafe to do if there is anything else in the loop that may read 1070 // or write the memory region we're storing to. This includes the load that 1071 // feeds the stores. Check for an alias by generating the base address and 1072 // checking everything. 1073 Value *StoreBasePtr = 1074 Expander.expandCodeFor(StoreEv->getStart(), 1075 Builder.getInt8PtrTy(SI->getPointerAddressSpace()), 1076 Preheader->getTerminator()); 1077 1078 if (mayLoopAccessLocation(StoreBasePtr, AliasAnalysis::ModRef, 1079 CurLoop, BECount, StoreSize, 1080 getAnalysis<AliasAnalysis>(), SI)) { 1081 Expander.clear(); 1082 // If we generated new code for the base pointer, clean up. 1083 deleteIfDeadInstruction(StoreBasePtr, *SE, TLI); 1084 return false; 1085 } 1086 1087 // For a memcpy, we have to make sure that the input array is not being 1088 // mutated by the loop. 1089 Value *LoadBasePtr = 1090 Expander.expandCodeFor(LoadEv->getStart(), 1091 Builder.getInt8PtrTy(LI->getPointerAddressSpace()), 1092 Preheader->getTerminator()); 1093 1094 if (mayLoopAccessLocation(LoadBasePtr, AliasAnalysis::Mod, CurLoop, BECount, 1095 StoreSize, getAnalysis<AliasAnalysis>(), SI)) { 1096 Expander.clear(); 1097 // If we generated new code for the base pointer, clean up. 1098 deleteIfDeadInstruction(LoadBasePtr, *SE, TLI); 1099 deleteIfDeadInstruction(StoreBasePtr, *SE, TLI); 1100 return false; 1101 } 1102 1103 // Okay, everything is safe, we can transform this! 1104 1105 1106 // The # stored bytes is (BECount+1)*Size. Expand the trip count out to 1107 // pointer size if it isn't already. 1108 Type *IntPtr = TD->getIntPtrType(SI->getContext()); 1109 BECount = SE->getTruncateOrZeroExtend(BECount, IntPtr); 1110 1111 const SCEV *NumBytesS = SE->getAddExpr(BECount, SE->getConstant(IntPtr, 1), 1112 SCEV::FlagNUW); 1113 if (StoreSize != 1) 1114 NumBytesS = SE->getMulExpr(NumBytesS, SE->getConstant(IntPtr, StoreSize), 1115 SCEV::FlagNUW); 1116 1117 Value *NumBytes = 1118 Expander.expandCodeFor(NumBytesS, IntPtr, Preheader->getTerminator()); 1119 1120 CallInst *NewCall = 1121 Builder.CreateMemCpy(StoreBasePtr, LoadBasePtr, NumBytes, 1122 std::min(SI->getAlignment(), LI->getAlignment())); 1123 NewCall->setDebugLoc(SI->getDebugLoc()); 1124 1125 DEBUG(dbgs() << " Formed memcpy: " << *NewCall << "\n" 1126 << " from load ptr=" << *LoadEv << " at: " << *LI << "\n" 1127 << " from store ptr=" << *StoreEv << " at: " << *SI << "\n"); 1128 1129 1130 // Okay, the memset has been formed. Zap the original store and anything that 1131 // feeds into it. 1132 deleteDeadInstruction(SI, *SE, TLI); 1133 ++NumMemCpy; 1134 return true; 1135 } 1136