1 //===- IndVarSimplify.cpp - Induction Variable Elimination ----------------===// 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 transformation analyzes and transforms the induction variables (and 11 // computations derived from them) into simpler forms suitable for subsequent 12 // analysis and transformation. 13 // 14 // This transformation makes the following changes to each loop with an 15 // identifiable induction variable: 16 // 1. All loops are transformed to have a SINGLE canonical induction variable 17 // which starts at zero and steps by one. 18 // 2. The canonical induction variable is guaranteed to be the first PHI node 19 // in the loop header block. 20 // 3. The canonical induction variable is guaranteed to be in a wide enough 21 // type so that IV expressions need not be (directly) zero-extended or 22 // sign-extended. 23 // 4. Any pointer arithmetic recurrences are raised to use array subscripts. 24 // 25 // If the trip count of a loop is computable, this pass also makes the following 26 // changes: 27 // 1. The exit condition for the loop is canonicalized to compare the 28 // induction value against the exit value. This turns loops like: 29 // 'for (i = 7; i*i < 1000; ++i)' into 'for (i = 0; i != 25; ++i)' 30 // 2. Any use outside of the loop of an expression derived from the indvar 31 // is changed to compute the derived value outside of the loop, eliminating 32 // the dependence on the exit value of the induction variable. If the only 33 // purpose of the loop is to compute the exit value of some derived 34 // expression, this transformation will make the loop dead. 35 // 36 // This transformation should be followed by strength reduction after all of the 37 // desired loop transformations have been performed. 38 // 39 //===----------------------------------------------------------------------===// 40 41 #define DEBUG_TYPE "indvars" 42 #include "llvm/Transforms/Scalar.h" 43 #include "llvm/BasicBlock.h" 44 #include "llvm/Constants.h" 45 #include "llvm/Instructions.h" 46 #include "llvm/IntrinsicInst.h" 47 #include "llvm/LLVMContext.h" 48 #include "llvm/Type.h" 49 #include "llvm/Analysis/Dominators.h" 50 #include "llvm/Analysis/IVUsers.h" 51 #include "llvm/Analysis/ScalarEvolutionExpander.h" 52 #include "llvm/Analysis/LoopInfo.h" 53 #include "llvm/Analysis/LoopPass.h" 54 #include "llvm/Support/CFG.h" 55 #include "llvm/Support/CommandLine.h" 56 #include "llvm/Support/Debug.h" 57 #include "llvm/Support/raw_ostream.h" 58 #include "llvm/Transforms/Utils/Local.h" 59 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 60 #include "llvm/ADT/SmallVector.h" 61 #include "llvm/ADT/Statistic.h" 62 #include "llvm/ADT/STLExtras.h" 63 using namespace llvm; 64 65 STATISTIC(NumRemoved , "Number of aux indvars removed"); 66 STATISTIC(NumInserted, "Number of canonical indvars added"); 67 STATISTIC(NumReplaced, "Number of exit values replaced"); 68 STATISTIC(NumLFTR , "Number of loop exit tests replaced"); 69 70 namespace { 71 class IndVarSimplify : public LoopPass { 72 IVUsers *IU; 73 LoopInfo *LI; 74 ScalarEvolution *SE; 75 DominatorTree *DT; 76 bool Changed; 77 public: 78 79 static char ID; // Pass identification, replacement for typeid 80 IndVarSimplify() : LoopPass(&ID) {} 81 82 virtual bool runOnLoop(Loop *L, LPPassManager &LPM); 83 84 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 85 AU.addRequired<DominatorTree>(); 86 AU.addRequired<LoopInfo>(); 87 AU.addRequired<ScalarEvolution>(); 88 AU.addRequiredID(LoopSimplifyID); 89 AU.addRequiredID(LCSSAID); 90 AU.addRequired<IVUsers>(); 91 AU.addPreserved<ScalarEvolution>(); 92 AU.addPreservedID(LoopSimplifyID); 93 AU.addPreservedID(LCSSAID); 94 AU.addPreserved<IVUsers>(); 95 AU.setPreservesCFG(); 96 } 97 98 private: 99 100 void EliminateIVComparisons(); 101 void RewriteNonIntegerIVs(Loop *L); 102 103 ICmpInst *LinearFunctionTestReplace(Loop *L, const SCEV *BackedgeTakenCount, 104 Value *IndVar, 105 BasicBlock *ExitingBlock, 106 BranchInst *BI, 107 SCEVExpander &Rewriter); 108 void RewriteLoopExitValues(Loop *L, SCEVExpander &Rewriter); 109 110 void RewriteIVExpressions(Loop *L, SCEVExpander &Rewriter); 111 112 void SinkUnusedInvariants(Loop *L); 113 114 void HandleFloatingPointIV(Loop *L, PHINode *PH); 115 }; 116 } 117 118 char IndVarSimplify::ID = 0; 119 static RegisterPass<IndVarSimplify> 120 X("indvars", "Canonicalize Induction Variables"); 121 122 Pass *llvm::createIndVarSimplifyPass() { 123 return new IndVarSimplify(); 124 } 125 126 /// LinearFunctionTestReplace - This method rewrites the exit condition of the 127 /// loop to be a canonical != comparison against the incremented loop induction 128 /// variable. This pass is able to rewrite the exit tests of any loop where the 129 /// SCEV analysis can determine a loop-invariant trip count of the loop, which 130 /// is actually a much broader range than just linear tests. 131 ICmpInst *IndVarSimplify::LinearFunctionTestReplace(Loop *L, 132 const SCEV *BackedgeTakenCount, 133 Value *IndVar, 134 BasicBlock *ExitingBlock, 135 BranchInst *BI, 136 SCEVExpander &Rewriter) { 137 // Special case: If the backedge-taken count is a UDiv, it's very likely a 138 // UDiv that ScalarEvolution produced in order to compute a precise 139 // expression, rather than a UDiv from the user's code. If we can't find a 140 // UDiv in the code with some simple searching, assume the former and forego 141 // rewriting the loop. 142 if (isa<SCEVUDivExpr>(BackedgeTakenCount)) { 143 ICmpInst *OrigCond = dyn_cast<ICmpInst>(BI->getCondition()); 144 if (!OrigCond) return 0; 145 const SCEV *R = SE->getSCEV(OrigCond->getOperand(1)); 146 R = SE->getMinusSCEV(R, SE->getIntegerSCEV(1, R->getType())); 147 if (R != BackedgeTakenCount) { 148 const SCEV *L = SE->getSCEV(OrigCond->getOperand(0)); 149 L = SE->getMinusSCEV(L, SE->getIntegerSCEV(1, L->getType())); 150 if (L != BackedgeTakenCount) 151 return 0; 152 } 153 } 154 155 // If the exiting block is not the same as the backedge block, we must compare 156 // against the preincremented value, otherwise we prefer to compare against 157 // the post-incremented value. 158 Value *CmpIndVar; 159 const SCEV *RHS = BackedgeTakenCount; 160 if (ExitingBlock == L->getLoopLatch()) { 161 // Add one to the "backedge-taken" count to get the trip count. 162 // If this addition may overflow, we have to be more pessimistic and 163 // cast the induction variable before doing the add. 164 const SCEV *Zero = SE->getIntegerSCEV(0, BackedgeTakenCount->getType()); 165 const SCEV *N = 166 SE->getAddExpr(BackedgeTakenCount, 167 SE->getIntegerSCEV(1, BackedgeTakenCount->getType())); 168 if ((isa<SCEVConstant>(N) && !N->isZero()) || 169 SE->isLoopEntryGuardedByCond(L, ICmpInst::ICMP_NE, N, Zero)) { 170 // No overflow. Cast the sum. 171 RHS = SE->getTruncateOrZeroExtend(N, IndVar->getType()); 172 } else { 173 // Potential overflow. Cast before doing the add. 174 RHS = SE->getTruncateOrZeroExtend(BackedgeTakenCount, 175 IndVar->getType()); 176 RHS = SE->getAddExpr(RHS, 177 SE->getIntegerSCEV(1, IndVar->getType())); 178 } 179 180 // The BackedgeTaken expression contains the number of times that the 181 // backedge branches to the loop header. This is one less than the 182 // number of times the loop executes, so use the incremented indvar. 183 CmpIndVar = L->getCanonicalInductionVariableIncrement(); 184 } else { 185 // We have to use the preincremented value... 186 RHS = SE->getTruncateOrZeroExtend(BackedgeTakenCount, 187 IndVar->getType()); 188 CmpIndVar = IndVar; 189 } 190 191 // Expand the code for the iteration count. 192 assert(RHS->isLoopInvariant(L) && 193 "Computed iteration count is not loop invariant!"); 194 Value *ExitCnt = Rewriter.expandCodeFor(RHS, IndVar->getType(), BI); 195 196 // Insert a new icmp_ne or icmp_eq instruction before the branch. 197 ICmpInst::Predicate Opcode; 198 if (L->contains(BI->getSuccessor(0))) 199 Opcode = ICmpInst::ICMP_NE; 200 else 201 Opcode = ICmpInst::ICMP_EQ; 202 203 DEBUG(dbgs() << "INDVARS: Rewriting loop exit condition to:\n" 204 << " LHS:" << *CmpIndVar << '\n' 205 << " op:\t" 206 << (Opcode == ICmpInst::ICMP_NE ? "!=" : "==") << "\n" 207 << " RHS:\t" << *RHS << "\n"); 208 209 ICmpInst *Cond = new ICmpInst(BI, Opcode, CmpIndVar, ExitCnt, "exitcond"); 210 211 Value *OrigCond = BI->getCondition(); 212 // It's tempting to use replaceAllUsesWith here to fully replace the old 213 // comparison, but that's not immediately safe, since users of the old 214 // comparison may not be dominated by the new comparison. Instead, just 215 // update the branch to use the new comparison; in the common case this 216 // will make old comparison dead. 217 BI->setCondition(Cond); 218 RecursivelyDeleteTriviallyDeadInstructions(OrigCond); 219 220 ++NumLFTR; 221 Changed = true; 222 return Cond; 223 } 224 225 /// RewriteLoopExitValues - Check to see if this loop has a computable 226 /// loop-invariant execution count. If so, this means that we can compute the 227 /// final value of any expressions that are recurrent in the loop, and 228 /// substitute the exit values from the loop into any instructions outside of 229 /// the loop that use the final values of the current expressions. 230 /// 231 /// This is mostly redundant with the regular IndVarSimplify activities that 232 /// happen later, except that it's more powerful in some cases, because it's 233 /// able to brute-force evaluate arbitrary instructions as long as they have 234 /// constant operands at the beginning of the loop. 235 void IndVarSimplify::RewriteLoopExitValues(Loop *L, 236 SCEVExpander &Rewriter) { 237 // Verify the input to the pass in already in LCSSA form. 238 assert(L->isLCSSAForm(*DT)); 239 240 SmallVector<BasicBlock*, 8> ExitBlocks; 241 L->getUniqueExitBlocks(ExitBlocks); 242 243 // Find all values that are computed inside the loop, but used outside of it. 244 // Because of LCSSA, these values will only occur in LCSSA PHI Nodes. Scan 245 // the exit blocks of the loop to find them. 246 for (unsigned i = 0, e = ExitBlocks.size(); i != e; ++i) { 247 BasicBlock *ExitBB = ExitBlocks[i]; 248 249 // If there are no PHI nodes in this exit block, then no values defined 250 // inside the loop are used on this path, skip it. 251 PHINode *PN = dyn_cast<PHINode>(ExitBB->begin()); 252 if (!PN) continue; 253 254 unsigned NumPreds = PN->getNumIncomingValues(); 255 256 // Iterate over all of the PHI nodes. 257 BasicBlock::iterator BBI = ExitBB->begin(); 258 while ((PN = dyn_cast<PHINode>(BBI++))) { 259 if (PN->use_empty()) 260 continue; // dead use, don't replace it 261 262 // SCEV only supports integer expressions for now. 263 if (!PN->getType()->isIntegerTy() && !PN->getType()->isPointerTy()) 264 continue; 265 266 // It's necessary to tell ScalarEvolution about this explicitly so that 267 // it can walk the def-use list and forget all SCEVs, as it may not be 268 // watching the PHI itself. Once the new exit value is in place, there 269 // may not be a def-use connection between the loop and every instruction 270 // which got a SCEVAddRecExpr for that loop. 271 SE->forgetValue(PN); 272 273 // Iterate over all of the values in all the PHI nodes. 274 for (unsigned i = 0; i != NumPreds; ++i) { 275 // If the value being merged in is not integer or is not defined 276 // in the loop, skip it. 277 Value *InVal = PN->getIncomingValue(i); 278 if (!isa<Instruction>(InVal)) 279 continue; 280 281 // If this pred is for a subloop, not L itself, skip it. 282 if (LI->getLoopFor(PN->getIncomingBlock(i)) != L) 283 continue; // The Block is in a subloop, skip it. 284 285 // Check that InVal is defined in the loop. 286 Instruction *Inst = cast<Instruction>(InVal); 287 if (!L->contains(Inst)) 288 continue; 289 290 // Okay, this instruction has a user outside of the current loop 291 // and varies predictably *inside* the loop. Evaluate the value it 292 // contains when the loop exits, if possible. 293 const SCEV *ExitValue = SE->getSCEVAtScope(Inst, L->getParentLoop()); 294 if (!ExitValue->isLoopInvariant(L)) 295 continue; 296 297 Changed = true; 298 ++NumReplaced; 299 300 Value *ExitVal = Rewriter.expandCodeFor(ExitValue, PN->getType(), Inst); 301 302 DEBUG(dbgs() << "INDVARS: RLEV: AfterLoopVal = " << *ExitVal << '\n' 303 << " LoopVal = " << *Inst << "\n"); 304 305 PN->setIncomingValue(i, ExitVal); 306 307 // If this instruction is dead now, delete it. 308 RecursivelyDeleteTriviallyDeadInstructions(Inst); 309 310 if (NumPreds == 1) { 311 // Completely replace a single-pred PHI. This is safe, because the 312 // NewVal won't be variant in the loop, so we don't need an LCSSA phi 313 // node anymore. 314 PN->replaceAllUsesWith(ExitVal); 315 RecursivelyDeleteTriviallyDeadInstructions(PN); 316 } 317 } 318 if (NumPreds != 1) { 319 // Clone the PHI and delete the original one. This lets IVUsers and 320 // any other maps purge the original user from their records. 321 PHINode *NewPN = cast<PHINode>(PN->clone()); 322 NewPN->takeName(PN); 323 NewPN->insertBefore(PN); 324 PN->replaceAllUsesWith(NewPN); 325 PN->eraseFromParent(); 326 } 327 } 328 } 329 330 // The insertion point instruction may have been deleted; clear it out 331 // so that the rewriter doesn't trip over it later. 332 Rewriter.clearInsertPoint(); 333 } 334 335 void IndVarSimplify::RewriteNonIntegerIVs(Loop *L) { 336 // First step. Check to see if there are any floating-point recurrences. 337 // If there are, change them into integer recurrences, permitting analysis by 338 // the SCEV routines. 339 // 340 BasicBlock *Header = L->getHeader(); 341 342 SmallVector<WeakVH, 8> PHIs; 343 for (BasicBlock::iterator I = Header->begin(); 344 PHINode *PN = dyn_cast<PHINode>(I); ++I) 345 PHIs.push_back(PN); 346 347 for (unsigned i = 0, e = PHIs.size(); i != e; ++i) 348 if (PHINode *PN = dyn_cast_or_null<PHINode>(PHIs[i])) 349 HandleFloatingPointIV(L, PN); 350 351 // If the loop previously had floating-point IV, ScalarEvolution 352 // may not have been able to compute a trip count. Now that we've done some 353 // re-writing, the trip count may be computable. 354 if (Changed) 355 SE->forgetLoop(L); 356 } 357 358 void IndVarSimplify::EliminateIVComparisons() { 359 SmallVector<WeakVH, 16> DeadInsts; 360 361 // Look for ICmp users. 362 for (IVUsers::iterator I = IU->begin(), E = IU->end(); I != E; ++I) { 363 IVStrideUse &UI = *I; 364 ICmpInst *ICmp = dyn_cast<ICmpInst>(UI.getUser()); 365 if (!ICmp) continue; 366 367 bool Swapped = UI.getOperandValToReplace() == ICmp->getOperand(1); 368 ICmpInst::Predicate Pred = ICmp->getPredicate(); 369 if (Swapped) Pred = ICmpInst::getSwappedPredicate(Pred); 370 371 // Get the SCEVs for the ICmp operands. 372 const SCEV *S = IU->getReplacementExpr(UI); 373 const SCEV *X = SE->getSCEV(ICmp->getOperand(!Swapped)); 374 375 // Simplify unnecessary loops away. 376 const Loop *ICmpLoop = LI->getLoopFor(ICmp->getParent()); 377 S = SE->getSCEVAtScope(S, ICmpLoop); 378 X = SE->getSCEVAtScope(X, ICmpLoop); 379 380 // If the condition is always true or always false, replace it with 381 // a constant value. 382 if (SE->isKnownPredicate(Pred, S, X)) 383 ICmp->replaceAllUsesWith(ConstantInt::getTrue(ICmp->getContext())); 384 else if (SE->isKnownPredicate(ICmpInst::getInversePredicate(Pred), S, X)) 385 ICmp->replaceAllUsesWith(ConstantInt::getFalse(ICmp->getContext())); 386 else 387 continue; 388 389 DEBUG(dbgs() << "INDVARS: Eliminated comparison: " << *ICmp << '\n'); 390 DeadInsts.push_back(ICmp); 391 } 392 393 // Now that we're done iterating through lists, clean up any instructions 394 // which are now dead. 395 while (!DeadInsts.empty()) 396 if (Instruction *Inst = 397 dyn_cast_or_null<Instruction>(DeadInsts.pop_back_val())) 398 RecursivelyDeleteTriviallyDeadInstructions(Inst); 399 } 400 401 bool IndVarSimplify::runOnLoop(Loop *L, LPPassManager &LPM) { 402 IU = &getAnalysis<IVUsers>(); 403 LI = &getAnalysis<LoopInfo>(); 404 SE = &getAnalysis<ScalarEvolution>(); 405 DT = &getAnalysis<DominatorTree>(); 406 Changed = false; 407 408 // If there are any floating-point recurrences, attempt to 409 // transform them to use integer recurrences. 410 RewriteNonIntegerIVs(L); 411 412 BasicBlock *ExitingBlock = L->getExitingBlock(); // may be null 413 const SCEV *BackedgeTakenCount = SE->getBackedgeTakenCount(L); 414 415 // Create a rewriter object which we'll use to transform the code with. 416 SCEVExpander Rewriter(*SE); 417 418 // Check to see if this loop has a computable loop-invariant execution count. 419 // If so, this means that we can compute the final value of any expressions 420 // that are recurrent in the loop, and substitute the exit values from the 421 // loop into any instructions outside of the loop that use the final values of 422 // the current expressions. 423 // 424 if (!isa<SCEVCouldNotCompute>(BackedgeTakenCount)) 425 RewriteLoopExitValues(L, Rewriter); 426 427 // Simplify ICmp IV users. 428 EliminateIVComparisons(); 429 430 // Compute the type of the largest recurrence expression, and decide whether 431 // a canonical induction variable should be inserted. 432 const Type *LargestType = 0; 433 bool NeedCannIV = false; 434 if (!isa<SCEVCouldNotCompute>(BackedgeTakenCount)) { 435 LargestType = BackedgeTakenCount->getType(); 436 LargestType = SE->getEffectiveSCEVType(LargestType); 437 // If we have a known trip count and a single exit block, we'll be 438 // rewriting the loop exit test condition below, which requires a 439 // canonical induction variable. 440 if (ExitingBlock) 441 NeedCannIV = true; 442 } 443 for (IVUsers::const_iterator I = IU->begin(), E = IU->end(); I != E; ++I) { 444 const Type *Ty = 445 SE->getEffectiveSCEVType(I->getOperandValToReplace()->getType()); 446 if (!LargestType || 447 SE->getTypeSizeInBits(Ty) > 448 SE->getTypeSizeInBits(LargestType)) 449 LargestType = Ty; 450 NeedCannIV = true; 451 } 452 453 // Now that we know the largest of the induction variable expressions 454 // in this loop, insert a canonical induction variable of the largest size. 455 Value *IndVar = 0; 456 if (NeedCannIV) { 457 // Check to see if the loop already has any canonical-looking induction 458 // variables. If any are present and wider than the planned canonical 459 // induction variable, temporarily remove them, so that the Rewriter 460 // doesn't attempt to reuse them. 461 SmallVector<PHINode *, 2> OldCannIVs; 462 while (PHINode *OldCannIV = L->getCanonicalInductionVariable()) { 463 if (SE->getTypeSizeInBits(OldCannIV->getType()) > 464 SE->getTypeSizeInBits(LargestType)) 465 OldCannIV->removeFromParent(); 466 else 467 break; 468 OldCannIVs.push_back(OldCannIV); 469 } 470 471 IndVar = Rewriter.getOrInsertCanonicalInductionVariable(L, LargestType); 472 473 ++NumInserted; 474 Changed = true; 475 DEBUG(dbgs() << "INDVARS: New CanIV: " << *IndVar << '\n'); 476 477 // Now that the official induction variable is established, reinsert 478 // any old canonical-looking variables after it so that the IR remains 479 // consistent. They will be deleted as part of the dead-PHI deletion at 480 // the end of the pass. 481 while (!OldCannIVs.empty()) { 482 PHINode *OldCannIV = OldCannIVs.pop_back_val(); 483 OldCannIV->insertBefore(L->getHeader()->getFirstNonPHI()); 484 } 485 } 486 487 // If we have a trip count expression, rewrite the loop's exit condition 488 // using it. We can currently only handle loops with a single exit. 489 ICmpInst *NewICmp = 0; 490 if (!isa<SCEVCouldNotCompute>(BackedgeTakenCount) && 491 !BackedgeTakenCount->isZero() && 492 ExitingBlock) { 493 assert(NeedCannIV && 494 "LinearFunctionTestReplace requires a canonical induction variable"); 495 // Can't rewrite non-branch yet. 496 if (BranchInst *BI = dyn_cast<BranchInst>(ExitingBlock->getTerminator())) 497 NewICmp = LinearFunctionTestReplace(L, BackedgeTakenCount, IndVar, 498 ExitingBlock, BI, Rewriter); 499 } 500 501 // Rewrite IV-derived expressions. Clears the rewriter cache. 502 RewriteIVExpressions(L, Rewriter); 503 504 // The Rewriter may not be used from this point on. 505 506 // Loop-invariant instructions in the preheader that aren't used in the 507 // loop may be sunk below the loop to reduce register pressure. 508 SinkUnusedInvariants(L); 509 510 // For completeness, inform IVUsers of the IV use in the newly-created 511 // loop exit test instruction. 512 if (NewICmp) 513 IU->AddUsersIfInteresting(cast<Instruction>(NewICmp->getOperand(0))); 514 515 // Clean up dead instructions. 516 Changed |= DeleteDeadPHIs(L->getHeader()); 517 // Check a post-condition. 518 assert(L->isLCSSAForm(*DT) && "Indvars did not leave the loop in lcssa form!"); 519 return Changed; 520 } 521 522 // FIXME: It is an extremely bad idea to indvar substitute anything more 523 // complex than affine induction variables. Doing so will put expensive 524 // polynomial evaluations inside of the loop, and the str reduction pass 525 // currently can only reduce affine polynomials. For now just disable 526 // indvar subst on anything more complex than an affine addrec, unless 527 // it can be expanded to a trivial value. 528 static bool isSafe(const SCEV *S, const Loop *L) { 529 // Loop-invariant values are safe. 530 if (S->isLoopInvariant(L)) return true; 531 532 // Affine addrecs are safe. Non-affine are not, because LSR doesn't know how 533 // to transform them into efficient code. 534 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S)) 535 return AR->isAffine(); 536 537 // An add is safe it all its operands are safe. 538 if (const SCEVCommutativeExpr *Commutative = dyn_cast<SCEVCommutativeExpr>(S)) { 539 for (SCEVCommutativeExpr::op_iterator I = Commutative->op_begin(), 540 E = Commutative->op_end(); I != E; ++I) 541 if (!isSafe(*I, L)) return false; 542 return true; 543 } 544 545 // A cast is safe if its operand is. 546 if (const SCEVCastExpr *C = dyn_cast<SCEVCastExpr>(S)) 547 return isSafe(C->getOperand(), L); 548 549 // A udiv is safe if its operands are. 550 if (const SCEVUDivExpr *UD = dyn_cast<SCEVUDivExpr>(S)) 551 return isSafe(UD->getLHS(), L) && 552 isSafe(UD->getRHS(), L); 553 554 // SCEVUnknown is always safe. 555 if (isa<SCEVUnknown>(S)) 556 return true; 557 558 // Nothing else is safe. 559 return false; 560 } 561 562 void IndVarSimplify::RewriteIVExpressions(Loop *L, SCEVExpander &Rewriter) { 563 SmallVector<WeakVH, 16> DeadInsts; 564 565 // Rewrite all induction variable expressions in terms of the canonical 566 // induction variable. 567 // 568 // If there were induction variables of other sizes or offsets, manually 569 // add the offsets to the primary induction variable and cast, avoiding 570 // the need for the code evaluation methods to insert induction variables 571 // of different sizes. 572 for (IVUsers::iterator UI = IU->begin(), E = IU->end(); UI != E; ++UI) { 573 Value *Op = UI->getOperandValToReplace(); 574 const Type *UseTy = Op->getType(); 575 Instruction *User = UI->getUser(); 576 577 // Compute the final addrec to expand into code. 578 const SCEV *AR = IU->getReplacementExpr(*UI); 579 580 // Evaluate the expression out of the loop, if possible. 581 if (!L->contains(UI->getUser())) { 582 const SCEV *ExitVal = SE->getSCEVAtScope(AR, L->getParentLoop()); 583 if (ExitVal->isLoopInvariant(L)) 584 AR = ExitVal; 585 } 586 587 // FIXME: It is an extremely bad idea to indvar substitute anything more 588 // complex than affine induction variables. Doing so will put expensive 589 // polynomial evaluations inside of the loop, and the str reduction pass 590 // currently can only reduce affine polynomials. For now just disable 591 // indvar subst on anything more complex than an affine addrec, unless 592 // it can be expanded to a trivial value. 593 if (!isSafe(AR, L)) 594 continue; 595 596 // Determine the insertion point for this user. By default, insert 597 // immediately before the user. The SCEVExpander class will automatically 598 // hoist loop invariants out of the loop. For PHI nodes, there may be 599 // multiple uses, so compute the nearest common dominator for the 600 // incoming blocks. 601 Instruction *InsertPt = User; 602 if (PHINode *PHI = dyn_cast<PHINode>(InsertPt)) 603 for (unsigned i = 0, e = PHI->getNumIncomingValues(); i != e; ++i) 604 if (PHI->getIncomingValue(i) == Op) { 605 if (InsertPt == User) 606 InsertPt = PHI->getIncomingBlock(i)->getTerminator(); 607 else 608 InsertPt = 609 DT->findNearestCommonDominator(InsertPt->getParent(), 610 PHI->getIncomingBlock(i)) 611 ->getTerminator(); 612 } 613 614 // Now expand it into actual Instructions and patch it into place. 615 Value *NewVal = Rewriter.expandCodeFor(AR, UseTy, InsertPt); 616 617 // Inform ScalarEvolution that this value is changing. The change doesn't 618 // affect its value, but it does potentially affect which use lists the 619 // value will be on after the replacement, which affects ScalarEvolution's 620 // ability to walk use lists and drop dangling pointers when a value is 621 // deleted. 622 SE->forgetValue(User); 623 624 // Patch the new value into place. 625 if (Op->hasName()) 626 NewVal->takeName(Op); 627 User->replaceUsesOfWith(Op, NewVal); 628 UI->setOperandValToReplace(NewVal); 629 DEBUG(dbgs() << "INDVARS: Rewrote IV '" << *AR << "' " << *Op << '\n' 630 << " into = " << *NewVal << "\n"); 631 ++NumRemoved; 632 Changed = true; 633 634 // The old value may be dead now. 635 DeadInsts.push_back(Op); 636 } 637 638 // Clear the rewriter cache, because values that are in the rewriter's cache 639 // can be deleted in the loop below, causing the AssertingVH in the cache to 640 // trigger. 641 Rewriter.clear(); 642 // Now that we're done iterating through lists, clean up any instructions 643 // which are now dead. 644 while (!DeadInsts.empty()) 645 if (Instruction *Inst = 646 dyn_cast_or_null<Instruction>(DeadInsts.pop_back_val())) 647 RecursivelyDeleteTriviallyDeadInstructions(Inst); 648 } 649 650 /// If there's a single exit block, sink any loop-invariant values that 651 /// were defined in the preheader but not used inside the loop into the 652 /// exit block to reduce register pressure in the loop. 653 void IndVarSimplify::SinkUnusedInvariants(Loop *L) { 654 BasicBlock *ExitBlock = L->getExitBlock(); 655 if (!ExitBlock) return; 656 657 BasicBlock *Preheader = L->getLoopPreheader(); 658 if (!Preheader) return; 659 660 Instruction *InsertPt = ExitBlock->getFirstNonPHI(); 661 BasicBlock::iterator I = Preheader->getTerminator(); 662 while (I != Preheader->begin()) { 663 --I; 664 // New instructions were inserted at the end of the preheader. 665 if (isa<PHINode>(I)) 666 break; 667 668 // Don't move instructions which might have side effects, since the side 669 // effects need to complete before instructions inside the loop. Also don't 670 // move instructions which might read memory, since the loop may modify 671 // memory. Note that it's okay if the instruction might have undefined 672 // behavior: LoopSimplify guarantees that the preheader dominates the exit 673 // block. 674 if (I->mayHaveSideEffects() || I->mayReadFromMemory()) 675 continue; 676 677 // Skip debug info intrinsics. 678 if (isa<DbgInfoIntrinsic>(I)) 679 continue; 680 681 // Don't sink static AllocaInsts out of the entry block, which would 682 // turn them into dynamic allocas! 683 if (AllocaInst *AI = dyn_cast<AllocaInst>(I)) 684 if (AI->isStaticAlloca()) 685 continue; 686 687 // Determine if there is a use in or before the loop (direct or 688 // otherwise). 689 bool UsedInLoop = false; 690 for (Value::use_iterator UI = I->use_begin(), UE = I->use_end(); 691 UI != UE; ++UI) { 692 BasicBlock *UseBB = cast<Instruction>(UI)->getParent(); 693 if (PHINode *P = dyn_cast<PHINode>(UI)) { 694 unsigned i = 695 PHINode::getIncomingValueNumForOperand(UI.getOperandNo()); 696 UseBB = P->getIncomingBlock(i); 697 } 698 if (UseBB == Preheader || L->contains(UseBB)) { 699 UsedInLoop = true; 700 break; 701 } 702 } 703 704 // If there is, the def must remain in the preheader. 705 if (UsedInLoop) 706 continue; 707 708 // Otherwise, sink it to the exit block. 709 Instruction *ToMove = I; 710 bool Done = false; 711 712 if (I != Preheader->begin()) { 713 // Skip debug info intrinsics. 714 do { 715 --I; 716 } while (isa<DbgInfoIntrinsic>(I) && I != Preheader->begin()); 717 718 if (isa<DbgInfoIntrinsic>(I) && I == Preheader->begin()) 719 Done = true; 720 } else { 721 Done = true; 722 } 723 724 ToMove->moveBefore(InsertPt); 725 if (Done) break; 726 InsertPt = ToMove; 727 } 728 } 729 730 /// ConvertToSInt - Convert APF to an integer, if possible. 731 static bool ConvertToSInt(const APFloat &APF, int64_t &IntVal) { 732 bool isExact = false; 733 if (&APF.getSemantics() == &APFloat::PPCDoubleDouble) 734 return false; 735 // See if we can convert this to an int64_t 736 uint64_t UIntVal; 737 if (APF.convertToInteger(&UIntVal, 64, true, APFloat::rmTowardZero, 738 &isExact) != APFloat::opOK || !isExact) 739 return false; 740 IntVal = UIntVal; 741 return true; 742 } 743 744 /// HandleFloatingPointIV - If the loop has floating induction variable 745 /// then insert corresponding integer induction variable if possible. 746 /// For example, 747 /// for(double i = 0; i < 10000; ++i) 748 /// bar(i) 749 /// is converted into 750 /// for(int i = 0; i < 10000; ++i) 751 /// bar((double)i); 752 /// 753 void IndVarSimplify::HandleFloatingPointIV(Loop *L, PHINode *PN) { 754 unsigned IncomingEdge = L->contains(PN->getIncomingBlock(0)); 755 unsigned BackEdge = IncomingEdge^1; 756 757 // Check incoming value. 758 ConstantFP *InitValueVal = 759 dyn_cast<ConstantFP>(PN->getIncomingValue(IncomingEdge)); 760 761 int64_t InitValue; 762 if (!InitValueVal || !ConvertToSInt(InitValueVal->getValueAPF(), InitValue)) 763 return; 764 765 // Check IV increment. Reject this PN if increment operation is not 766 // an add or increment value can not be represented by an integer. 767 BinaryOperator *Incr = 768 dyn_cast<BinaryOperator>(PN->getIncomingValue(BackEdge)); 769 if (Incr == 0 || Incr->getOpcode() != Instruction::FAdd) return; 770 771 // If this is not an add of the PHI with a constantfp, or if the constant fp 772 // is not an integer, bail out. 773 ConstantFP *IncValueVal = dyn_cast<ConstantFP>(Incr->getOperand(1)); 774 int64_t IncValue; 775 if (IncValueVal == 0 || Incr->getOperand(0) != PN || 776 !ConvertToSInt(IncValueVal->getValueAPF(), IncValue)) 777 return; 778 779 // Check Incr uses. One user is PN and the other user is an exit condition 780 // used by the conditional terminator. 781 Value::use_iterator IncrUse = Incr->use_begin(); 782 Instruction *U1 = cast<Instruction>(IncrUse++); 783 if (IncrUse == Incr->use_end()) return; 784 Instruction *U2 = cast<Instruction>(IncrUse++); 785 if (IncrUse != Incr->use_end()) return; 786 787 // Find exit condition, which is an fcmp. If it doesn't exist, or if it isn't 788 // only used by a branch, we can't transform it. 789 FCmpInst *Compare = dyn_cast<FCmpInst>(U1); 790 if (!Compare) 791 Compare = dyn_cast<FCmpInst>(U2); 792 if (Compare == 0 || !Compare->hasOneUse() || 793 !isa<BranchInst>(Compare->use_back())) 794 return; 795 796 BranchInst *TheBr = cast<BranchInst>(Compare->use_back()); 797 798 // We need to verify that the branch actually controls the iteration count 799 // of the loop. If not, the new IV can overflow and no one will notice. 800 // The branch block must be in the loop and one of the successors must be out 801 // of the loop. 802 assert(TheBr->isConditional() && "Can't use fcmp if not conditional"); 803 if (!L->contains(TheBr->getParent()) || 804 (L->contains(TheBr->getSuccessor(0)) && 805 L->contains(TheBr->getSuccessor(1)))) 806 return; 807 808 809 // If it isn't a comparison with an integer-as-fp (the exit value), we can't 810 // transform it. 811 ConstantFP *ExitValueVal = dyn_cast<ConstantFP>(Compare->getOperand(1)); 812 int64_t ExitValue; 813 if (ExitValueVal == 0 || 814 !ConvertToSInt(ExitValueVal->getValueAPF(), ExitValue)) 815 return; 816 817 // Find new predicate for integer comparison. 818 CmpInst::Predicate NewPred = CmpInst::BAD_ICMP_PREDICATE; 819 switch (Compare->getPredicate()) { 820 default: return; // Unknown comparison. 821 case CmpInst::FCMP_OEQ: 822 case CmpInst::FCMP_UEQ: NewPred = CmpInst::ICMP_EQ; break; 823 case CmpInst::FCMP_ONE: 824 case CmpInst::FCMP_UNE: NewPred = CmpInst::ICMP_NE; break; 825 case CmpInst::FCMP_OGT: 826 case CmpInst::FCMP_UGT: NewPred = CmpInst::ICMP_SGT; break; 827 case CmpInst::FCMP_OGE: 828 case CmpInst::FCMP_UGE: NewPred = CmpInst::ICMP_SGE; break; 829 case CmpInst::FCMP_OLT: 830 case CmpInst::FCMP_ULT: NewPred = CmpInst::ICMP_SLT; break; 831 case CmpInst::FCMP_OLE: 832 case CmpInst::FCMP_ULE: NewPred = CmpInst::ICMP_SLE; break; 833 } 834 835 // We convert the floating point induction variable to a signed i32 value if 836 // we can. This is only safe if the comparison will not overflow in a way 837 // that won't be trapped by the integer equivalent operations. Check for this 838 // now. 839 // TODO: We could use i64 if it is native and the range requires it. 840 841 // The start/stride/exit values must all fit in signed i32. 842 if (!isInt<32>(InitValue) || !isInt<32>(IncValue) || !isInt<32>(ExitValue)) 843 return; 844 845 // If not actually striding (add x, 0.0), avoid touching the code. 846 if (IncValue == 0) 847 return; 848 849 // Positive and negative strides have different safety conditions. 850 if (IncValue > 0) { 851 // If we have a positive stride, we require the init to be less than the 852 // exit value and an equality or less than comparison. 853 if (InitValue >= ExitValue || 854 NewPred == CmpInst::ICMP_SGT || NewPred == CmpInst::ICMP_SGE) 855 return; 856 857 uint32_t Range = uint32_t(ExitValue-InitValue); 858 if (NewPred == CmpInst::ICMP_SLE) { 859 // Normalize SLE -> SLT, check for infinite loop. 860 if (++Range == 0) return; // Range overflows. 861 } 862 863 unsigned Leftover = Range % uint32_t(IncValue); 864 865 // If this is an equality comparison, we require that the strided value 866 // exactly land on the exit value, otherwise the IV condition will wrap 867 // around and do things the fp IV wouldn't. 868 if ((NewPred == CmpInst::ICMP_EQ || NewPred == CmpInst::ICMP_NE) && 869 Leftover != 0) 870 return; 871 872 // If the stride would wrap around the i32 before exiting, we can't 873 // transform the IV. 874 if (Leftover != 0 && int32_t(ExitValue+IncValue) < ExitValue) 875 return; 876 877 } else { 878 // If we have a negative stride, we require the init to be greater than the 879 // exit value and an equality or greater than comparison. 880 if (InitValue >= ExitValue || 881 NewPred == CmpInst::ICMP_SLT || NewPred == CmpInst::ICMP_SLE) 882 return; 883 884 uint32_t Range = uint32_t(InitValue-ExitValue); 885 if (NewPred == CmpInst::ICMP_SGE) { 886 // Normalize SGE -> SGT, check for infinite loop. 887 if (++Range == 0) return; // Range overflows. 888 } 889 890 unsigned Leftover = Range % uint32_t(-IncValue); 891 892 // If this is an equality comparison, we require that the strided value 893 // exactly land on the exit value, otherwise the IV condition will wrap 894 // around and do things the fp IV wouldn't. 895 if ((NewPred == CmpInst::ICMP_EQ || NewPred == CmpInst::ICMP_NE) && 896 Leftover != 0) 897 return; 898 899 // If the stride would wrap around the i32 before exiting, we can't 900 // transform the IV. 901 if (Leftover != 0 && int32_t(ExitValue+IncValue) > ExitValue) 902 return; 903 } 904 905 const IntegerType *Int32Ty = Type::getInt32Ty(PN->getContext()); 906 907 // Insert new integer induction variable. 908 PHINode *NewPHI = PHINode::Create(Int32Ty, PN->getName()+".int", PN); 909 NewPHI->addIncoming(ConstantInt::get(Int32Ty, InitValue), 910 PN->getIncomingBlock(IncomingEdge)); 911 912 Value *NewAdd = 913 BinaryOperator::CreateAdd(NewPHI, ConstantInt::get(Int32Ty, IncValue), 914 Incr->getName()+".int", Incr); 915 NewPHI->addIncoming(NewAdd, PN->getIncomingBlock(BackEdge)); 916 917 ICmpInst *NewCompare = new ICmpInst(TheBr, NewPred, NewAdd, 918 ConstantInt::get(Int32Ty, ExitValue), 919 Compare->getName()); 920 921 // In the following deletions, PN may become dead and may be deleted. 922 // Use a WeakVH to observe whether this happens. 923 WeakVH WeakPH = PN; 924 925 // Delete the old floating point exit comparison. The branch starts using the 926 // new comparison. 927 NewCompare->takeName(Compare); 928 Compare->replaceAllUsesWith(NewCompare); 929 RecursivelyDeleteTriviallyDeadInstructions(Compare); 930 931 // Delete the old floating point increment. 932 Incr->replaceAllUsesWith(UndefValue::get(Incr->getType())); 933 RecursivelyDeleteTriviallyDeadInstructions(Incr); 934 935 // If the FP induction variable still has uses, this is because something else 936 // in the loop uses its value. In order to canonicalize the induction 937 // variable, we chose to eliminate the IV and rewrite it in terms of an 938 // int->fp cast. 939 // 940 // We give preference to sitofp over uitofp because it is faster on most 941 // platforms. 942 if (WeakPH) { 943 Value *Conv = new SIToFPInst(NewPHI, PN->getType(), "indvar.conv", 944 PN->getParent()->getFirstNonPHI()); 945 PN->replaceAllUsesWith(Conv); 946 RecursivelyDeleteTriviallyDeadInstructions(PN); 947 } 948 949 // Add a new IVUsers entry for the newly-created integer PHI. 950 IU->AddUsersIfInteresting(NewPHI); 951 } 952