1 //===- LoopStrengthReduce.cpp - Strength Reduce IVs in Loops --------------===// 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 forms suitable for efficient execution 12 // on the target. 13 // 14 // This pass performs a strength reduction on array references inside loops that 15 // have as one or more of their components the loop induction variable, it 16 // rewrites expressions to take advantage of scaled-index addressing modes 17 // available on the target, and it performs a variety of other optimizations 18 // related to loop induction variables. 19 // 20 //===----------------------------------------------------------------------===// 21 22 #define DEBUG_TYPE "loop-reduce" 23 #include "llvm/Transforms/Scalar.h" 24 #include "llvm/Constants.h" 25 #include "llvm/Instructions.h" 26 #include "llvm/IntrinsicInst.h" 27 #include "llvm/Type.h" 28 #include "llvm/DerivedTypes.h" 29 #include "llvm/Analysis/Dominators.h" 30 #include "llvm/Analysis/IVUsers.h" 31 #include "llvm/Analysis/LoopInfo.h" 32 #include "llvm/Analysis/LoopPass.h" 33 #include "llvm/Analysis/ScalarEvolutionExpander.h" 34 #include "llvm/Transforms/Utils/AddrModeMatcher.h" 35 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 36 #include "llvm/Transforms/Utils/Local.h" 37 #include "llvm/ADT/Statistic.h" 38 #include "llvm/Support/CFG.h" 39 #include "llvm/Support/Debug.h" 40 #include "llvm/Support/Compiler.h" 41 #include "llvm/Support/CommandLine.h" 42 #include "llvm/Support/ValueHandle.h" 43 #include "llvm/Target/TargetLowering.h" 44 #include <algorithm> 45 using namespace llvm; 46 47 STATISTIC(NumReduced , "Number of IV uses strength reduced"); 48 STATISTIC(NumInserted, "Number of PHIs inserted"); 49 STATISTIC(NumVariable, "Number of PHIs with variable strides"); 50 STATISTIC(NumEliminated, "Number of strides eliminated"); 51 STATISTIC(NumShadow, "Number of Shadow IVs optimized"); 52 STATISTIC(NumImmSunk, "Number of common expr immediates sunk into uses"); 53 STATISTIC(NumLoopCond, "Number of loop terminating conds optimized"); 54 55 static cl::opt<bool> EnableFullLSRMode("enable-full-lsr", 56 cl::init(false), 57 cl::Hidden); 58 59 namespace { 60 61 struct BasedUser; 62 63 /// IVInfo - This structure keeps track of one IV expression inserted during 64 /// StrengthReduceStridedIVUsers. It contains the stride, the common base, as 65 /// well as the PHI node and increment value created for rewrite. 66 struct VISIBILITY_HIDDEN IVExpr { 67 const SCEV* Stride; 68 const SCEV* Base; 69 PHINode *PHI; 70 71 IVExpr(const SCEV* const stride, const SCEV* const base, PHINode *phi) 72 : Stride(stride), Base(base), PHI(phi) {} 73 }; 74 75 /// IVsOfOneStride - This structure keeps track of all IV expression inserted 76 /// during StrengthReduceStridedIVUsers for a particular stride of the IV. 77 struct VISIBILITY_HIDDEN IVsOfOneStride { 78 std::vector<IVExpr> IVs; 79 80 void addIV(const SCEV* const Stride, const SCEV* const Base, PHINode *PHI) { 81 IVs.push_back(IVExpr(Stride, Base, PHI)); 82 } 83 }; 84 85 class VISIBILITY_HIDDEN LoopStrengthReduce : public LoopPass { 86 IVUsers *IU; 87 LoopInfo *LI; 88 DominatorTree *DT; 89 ScalarEvolution *SE; 90 bool Changed; 91 92 /// IVsByStride - Keep track of all IVs that have been inserted for a 93 /// particular stride. 94 std::map<const SCEV*, IVsOfOneStride> IVsByStride; 95 96 /// StrideNoReuse - Keep track of all the strides whose ivs cannot be 97 /// reused (nor should they be rewritten to reuse other strides). 98 SmallSet<const SCEV*, 4> StrideNoReuse; 99 100 /// DeadInsts - Keep track of instructions we may have made dead, so that 101 /// we can remove them after we are done working. 102 SmallVector<WeakVH, 16> DeadInsts; 103 104 /// TLI - Keep a pointer of a TargetLowering to consult for determining 105 /// transformation profitability. 106 const TargetLowering *TLI; 107 108 public: 109 static char ID; // Pass ID, replacement for typeid 110 explicit LoopStrengthReduce(const TargetLowering *tli = NULL) : 111 LoopPass(&ID), TLI(tli) { 112 } 113 114 bool runOnLoop(Loop *L, LPPassManager &LPM); 115 116 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 117 // We split critical edges, so we change the CFG. However, we do update 118 // many analyses if they are around. 119 AU.addPreservedID(LoopSimplifyID); 120 AU.addPreserved<LoopInfo>(); 121 AU.addPreserved<DominanceFrontier>(); 122 AU.addPreserved<DominatorTree>(); 123 124 AU.addRequiredID(LoopSimplifyID); 125 AU.addRequired<LoopInfo>(); 126 AU.addRequired<DominatorTree>(); 127 AU.addRequired<ScalarEvolution>(); 128 AU.addPreserved<ScalarEvolution>(); 129 AU.addRequired<IVUsers>(); 130 AU.addPreserved<IVUsers>(); 131 } 132 133 private: 134 ICmpInst *ChangeCompareStride(Loop *L, ICmpInst *Cond, 135 IVStrideUse* &CondUse, 136 const SCEV* const * &CondStride); 137 138 void OptimizeIndvars(Loop *L); 139 void OptimizeLoopCountIV(Loop *L); 140 void OptimizeLoopTermCond(Loop *L); 141 142 /// OptimizeShadowIV - If IV is used in a int-to-float cast 143 /// inside the loop then try to eliminate the cast opeation. 144 void OptimizeShadowIV(Loop *L); 145 146 /// OptimizeMax - Rewrite the loop's terminating condition 147 /// if it uses a max computation. 148 ICmpInst *OptimizeMax(Loop *L, ICmpInst *Cond, 149 IVStrideUse* &CondUse); 150 151 bool FindIVUserForCond(ICmpInst *Cond, IVStrideUse *&CondUse, 152 const SCEV* const * &CondStride); 153 bool RequiresTypeConversion(const Type *Ty, const Type *NewTy); 154 const SCEV* CheckForIVReuse(bool, bool, bool, const SCEV* const&, 155 IVExpr&, const Type*, 156 const std::vector<BasedUser>& UsersToProcess); 157 bool ValidScale(bool, int64_t, 158 const std::vector<BasedUser>& UsersToProcess); 159 bool ValidOffset(bool, int64_t, int64_t, 160 const std::vector<BasedUser>& UsersToProcess); 161 const SCEV* CollectIVUsers(const SCEV* const &Stride, 162 IVUsersOfOneStride &Uses, 163 Loop *L, 164 bool &AllUsesAreAddresses, 165 bool &AllUsesAreOutsideLoop, 166 std::vector<BasedUser> &UsersToProcess); 167 bool ShouldUseFullStrengthReductionMode( 168 const std::vector<BasedUser> &UsersToProcess, 169 const Loop *L, 170 bool AllUsesAreAddresses, 171 const SCEV* Stride); 172 void PrepareToStrengthReduceFully( 173 std::vector<BasedUser> &UsersToProcess, 174 const SCEV* Stride, 175 const SCEV* CommonExprs, 176 const Loop *L, 177 SCEVExpander &PreheaderRewriter); 178 void PrepareToStrengthReduceFromSmallerStride( 179 std::vector<BasedUser> &UsersToProcess, 180 Value *CommonBaseV, 181 const IVExpr &ReuseIV, 182 Instruction *PreInsertPt); 183 void PrepareToStrengthReduceWithNewPhi( 184 std::vector<BasedUser> &UsersToProcess, 185 const SCEV* Stride, 186 const SCEV* CommonExprs, 187 Value *CommonBaseV, 188 Instruction *IVIncInsertPt, 189 const Loop *L, 190 SCEVExpander &PreheaderRewriter); 191 void StrengthReduceStridedIVUsers(const SCEV* const &Stride, 192 IVUsersOfOneStride &Uses, 193 Loop *L); 194 void DeleteTriviallyDeadInstructions(); 195 }; 196 } 197 198 char LoopStrengthReduce::ID = 0; 199 static RegisterPass<LoopStrengthReduce> 200 X("loop-reduce", "Loop Strength Reduction"); 201 202 Pass *llvm::createLoopStrengthReducePass(const TargetLowering *TLI) { 203 return new LoopStrengthReduce(TLI); 204 } 205 206 /// DeleteTriviallyDeadInstructions - If any of the instructions is the 207 /// specified set are trivially dead, delete them and see if this makes any of 208 /// their operands subsequently dead. 209 void LoopStrengthReduce::DeleteTriviallyDeadInstructions() { 210 if (DeadInsts.empty()) return; 211 212 while (!DeadInsts.empty()) { 213 Instruction *I = dyn_cast_or_null<Instruction>(DeadInsts.back()); 214 DeadInsts.pop_back(); 215 216 if (I == 0 || !isInstructionTriviallyDead(I)) 217 continue; 218 219 for (User::op_iterator OI = I->op_begin(), E = I->op_end(); OI != E; ++OI) { 220 if (Instruction *U = dyn_cast<Instruction>(*OI)) { 221 *OI = 0; 222 if (U->use_empty()) 223 DeadInsts.push_back(U); 224 } 225 } 226 227 I->eraseFromParent(); 228 Changed = true; 229 } 230 } 231 232 /// containsAddRecFromDifferentLoop - Determine whether expression S involves a 233 /// subexpression that is an AddRec from a loop other than L. An outer loop 234 /// of L is OK, but not an inner loop nor a disjoint loop. 235 static bool containsAddRecFromDifferentLoop(const SCEV* S, Loop *L) { 236 // This is very common, put it first. 237 if (isa<SCEVConstant>(S)) 238 return false; 239 if (const SCEVCommutativeExpr *AE = dyn_cast<SCEVCommutativeExpr>(S)) { 240 for (unsigned int i=0; i< AE->getNumOperands(); i++) 241 if (containsAddRecFromDifferentLoop(AE->getOperand(i), L)) 242 return true; 243 return false; 244 } 245 if (const SCEVAddRecExpr *AE = dyn_cast<SCEVAddRecExpr>(S)) { 246 if (const Loop *newLoop = AE->getLoop()) { 247 if (newLoop == L) 248 return false; 249 // if newLoop is an outer loop of L, this is OK. 250 if (!LoopInfoBase<BasicBlock>::isNotAlreadyContainedIn(L, newLoop)) 251 return false; 252 } 253 return true; 254 } 255 if (const SCEVUDivExpr *DE = dyn_cast<SCEVUDivExpr>(S)) 256 return containsAddRecFromDifferentLoop(DE->getLHS(), L) || 257 containsAddRecFromDifferentLoop(DE->getRHS(), L); 258 #if 0 259 // SCEVSDivExpr has been backed out temporarily, but will be back; we'll 260 // need this when it is. 261 if (const SCEVSDivExpr *DE = dyn_cast<SCEVSDivExpr>(S)) 262 return containsAddRecFromDifferentLoop(DE->getLHS(), L) || 263 containsAddRecFromDifferentLoop(DE->getRHS(), L); 264 #endif 265 if (const SCEVCastExpr *CE = dyn_cast<SCEVCastExpr>(S)) 266 return containsAddRecFromDifferentLoop(CE->getOperand(), L); 267 return false; 268 } 269 270 /// isAddressUse - Returns true if the specified instruction is using the 271 /// specified value as an address. 272 static bool isAddressUse(Instruction *Inst, Value *OperandVal) { 273 bool isAddress = isa<LoadInst>(Inst); 274 if (StoreInst *SI = dyn_cast<StoreInst>(Inst)) { 275 if (SI->getOperand(1) == OperandVal) 276 isAddress = true; 277 } else if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) { 278 // Addressing modes can also be folded into prefetches and a variety 279 // of intrinsics. 280 switch (II->getIntrinsicID()) { 281 default: break; 282 case Intrinsic::prefetch: 283 case Intrinsic::x86_sse2_loadu_dq: 284 case Intrinsic::x86_sse2_loadu_pd: 285 case Intrinsic::x86_sse_loadu_ps: 286 case Intrinsic::x86_sse_storeu_ps: 287 case Intrinsic::x86_sse2_storeu_pd: 288 case Intrinsic::x86_sse2_storeu_dq: 289 case Intrinsic::x86_sse2_storel_dq: 290 if (II->getOperand(1) == OperandVal) 291 isAddress = true; 292 break; 293 } 294 } 295 return isAddress; 296 } 297 298 /// getAccessType - Return the type of the memory being accessed. 299 static const Type *getAccessType(const Instruction *Inst) { 300 const Type *AccessTy = Inst->getType(); 301 if (const StoreInst *SI = dyn_cast<StoreInst>(Inst)) 302 AccessTy = SI->getOperand(0)->getType(); 303 else if (const IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) { 304 // Addressing modes can also be folded into prefetches and a variety 305 // of intrinsics. 306 switch (II->getIntrinsicID()) { 307 default: break; 308 case Intrinsic::x86_sse_storeu_ps: 309 case Intrinsic::x86_sse2_storeu_pd: 310 case Intrinsic::x86_sse2_storeu_dq: 311 case Intrinsic::x86_sse2_storel_dq: 312 AccessTy = II->getOperand(1)->getType(); 313 break; 314 } 315 } 316 return AccessTy; 317 } 318 319 namespace { 320 /// BasedUser - For a particular base value, keep information about how we've 321 /// partitioned the expression so far. 322 struct BasedUser { 323 /// SE - The current ScalarEvolution object. 324 ScalarEvolution *SE; 325 326 /// Base - The Base value for the PHI node that needs to be inserted for 327 /// this use. As the use is processed, information gets moved from this 328 /// field to the Imm field (below). BasedUser values are sorted by this 329 /// field. 330 const SCEV* Base; 331 332 /// Inst - The instruction using the induction variable. 333 Instruction *Inst; 334 335 /// OperandValToReplace - The operand value of Inst to replace with the 336 /// EmittedBase. 337 Value *OperandValToReplace; 338 339 /// Imm - The immediate value that should be added to the base immediately 340 /// before Inst, because it will be folded into the imm field of the 341 /// instruction. This is also sometimes used for loop-variant values that 342 /// must be added inside the loop. 343 const SCEV* Imm; 344 345 /// Phi - The induction variable that performs the striding that 346 /// should be used for this user. 347 PHINode *Phi; 348 349 // isUseOfPostIncrementedValue - True if this should use the 350 // post-incremented version of this IV, not the preincremented version. 351 // This can only be set in special cases, such as the terminating setcc 352 // instruction for a loop and uses outside the loop that are dominated by 353 // the loop. 354 bool isUseOfPostIncrementedValue; 355 356 BasedUser(IVStrideUse &IVSU, ScalarEvolution *se) 357 : SE(se), Base(IVSU.getOffset()), Inst(IVSU.getUser()), 358 OperandValToReplace(IVSU.getOperandValToReplace()), 359 Imm(SE->getIntegerSCEV(0, Base->getType())), 360 isUseOfPostIncrementedValue(IVSU.isUseOfPostIncrementedValue()) {} 361 362 // Once we rewrite the code to insert the new IVs we want, update the 363 // operands of Inst to use the new expression 'NewBase', with 'Imm' added 364 // to it. 365 void RewriteInstructionToUseNewBase(const SCEV* const &NewBase, 366 Instruction *InsertPt, 367 SCEVExpander &Rewriter, Loop *L, Pass *P, 368 LoopInfo &LI, 369 SmallVectorImpl<WeakVH> &DeadInsts); 370 371 Value *InsertCodeForBaseAtPosition(const SCEV* const &NewBase, 372 const Type *Ty, 373 SCEVExpander &Rewriter, 374 Instruction *IP, Loop *L, 375 LoopInfo &LI); 376 void dump() const; 377 }; 378 } 379 380 void BasedUser::dump() const { 381 cerr << " Base=" << *Base; 382 cerr << " Imm=" << *Imm; 383 cerr << " Inst: " << *Inst; 384 } 385 386 Value *BasedUser::InsertCodeForBaseAtPosition(const SCEV* const &NewBase, 387 const Type *Ty, 388 SCEVExpander &Rewriter, 389 Instruction *IP, Loop *L, 390 LoopInfo &LI) { 391 // Figure out where we *really* want to insert this code. In particular, if 392 // the user is inside of a loop that is nested inside of L, we really don't 393 // want to insert this expression before the user, we'd rather pull it out as 394 // many loops as possible. 395 Instruction *BaseInsertPt = IP; 396 397 // Figure out the most-nested loop that IP is in. 398 Loop *InsertLoop = LI.getLoopFor(IP->getParent()); 399 400 // If InsertLoop is not L, and InsertLoop is nested inside of L, figure out 401 // the preheader of the outer-most loop where NewBase is not loop invariant. 402 if (L->contains(IP->getParent())) 403 while (InsertLoop && NewBase->isLoopInvariant(InsertLoop)) { 404 BaseInsertPt = InsertLoop->getLoopPreheader()->getTerminator(); 405 InsertLoop = InsertLoop->getParentLoop(); 406 } 407 408 Value *Base = Rewriter.expandCodeFor(NewBase, 0, BaseInsertPt); 409 410 const SCEV* NewValSCEV = SE->getUnknown(Base); 411 412 // Always emit the immediate into the same block as the user. 413 NewValSCEV = SE->getAddExpr(NewValSCEV, Imm); 414 415 return Rewriter.expandCodeFor(NewValSCEV, Ty, IP); 416 } 417 418 419 // Once we rewrite the code to insert the new IVs we want, update the 420 // operands of Inst to use the new expression 'NewBase', with 'Imm' added 421 // to it. NewBasePt is the last instruction which contributes to the 422 // value of NewBase in the case that it's a diffferent instruction from 423 // the PHI that NewBase is computed from, or null otherwise. 424 // 425 void BasedUser::RewriteInstructionToUseNewBase(const SCEV* const &NewBase, 426 Instruction *NewBasePt, 427 SCEVExpander &Rewriter, Loop *L, Pass *P, 428 LoopInfo &LI, 429 SmallVectorImpl<WeakVH> &DeadInsts) { 430 if (!isa<PHINode>(Inst)) { 431 // By default, insert code at the user instruction. 432 BasicBlock::iterator InsertPt = Inst; 433 434 // However, if the Operand is itself an instruction, the (potentially 435 // complex) inserted code may be shared by many users. Because of this, we 436 // want to emit code for the computation of the operand right before its old 437 // computation. This is usually safe, because we obviously used to use the 438 // computation when it was computed in its current block. However, in some 439 // cases (e.g. use of a post-incremented induction variable) the NewBase 440 // value will be pinned to live somewhere after the original computation. 441 // In this case, we have to back off. 442 // 443 // If this is a use outside the loop (which means after, since it is based 444 // on a loop indvar) we use the post-incremented value, so that we don't 445 // artificially make the preinc value live out the bottom of the loop. 446 if (!isUseOfPostIncrementedValue && L->contains(Inst->getParent())) { 447 if (NewBasePt && isa<PHINode>(OperandValToReplace)) { 448 InsertPt = NewBasePt; 449 ++InsertPt; 450 } else if (Instruction *OpInst 451 = dyn_cast<Instruction>(OperandValToReplace)) { 452 InsertPt = OpInst; 453 while (isa<PHINode>(InsertPt)) ++InsertPt; 454 } 455 } 456 Value *NewVal = InsertCodeForBaseAtPosition(NewBase, 457 OperandValToReplace->getType(), 458 Rewriter, InsertPt, L, LI); 459 // Replace the use of the operand Value with the new Phi we just created. 460 Inst->replaceUsesOfWith(OperandValToReplace, NewVal); 461 462 DOUT << " Replacing with "; 463 DEBUG(WriteAsOperand(*DOUT, NewVal, /*PrintType=*/false)); 464 DOUT << ", which has value " << *NewBase << " plus IMM " << *Imm << "\n"; 465 return; 466 } 467 468 // PHI nodes are more complex. We have to insert one copy of the NewBase+Imm 469 // expression into each operand block that uses it. Note that PHI nodes can 470 // have multiple entries for the same predecessor. We use a map to make sure 471 // that a PHI node only has a single Value* for each predecessor (which also 472 // prevents us from inserting duplicate code in some blocks). 473 DenseMap<BasicBlock*, Value*> InsertedCode; 474 PHINode *PN = cast<PHINode>(Inst); 475 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) { 476 if (PN->getIncomingValue(i) == OperandValToReplace) { 477 // If the original expression is outside the loop, put the replacement 478 // code in the same place as the original expression, 479 // which need not be an immediate predecessor of this PHI. This way we 480 // need only one copy of it even if it is referenced multiple times in 481 // the PHI. We don't do this when the original expression is inside the 482 // loop because multiple copies sometimes do useful sinking of code in 483 // that case(?). 484 Instruction *OldLoc = dyn_cast<Instruction>(OperandValToReplace); 485 if (L->contains(OldLoc->getParent())) { 486 // If this is a critical edge, split the edge so that we do not insert 487 // the code on all predecessor/successor paths. We do this unless this 488 // is the canonical backedge for this loop, as this can make some 489 // inserted code be in an illegal position. 490 BasicBlock *PHIPred = PN->getIncomingBlock(i); 491 if (e != 1 && PHIPred->getTerminator()->getNumSuccessors() > 1 && 492 (PN->getParent() != L->getHeader() || !L->contains(PHIPred))) { 493 494 // First step, split the critical edge. 495 SplitCriticalEdge(PHIPred, PN->getParent(), P, false); 496 497 // Next step: move the basic block. In particular, if the PHI node 498 // is outside of the loop, and PredTI is in the loop, we want to 499 // move the block to be immediately before the PHI block, not 500 // immediately after PredTI. 501 if (L->contains(PHIPred) && !L->contains(PN->getParent())) { 502 BasicBlock *NewBB = PN->getIncomingBlock(i); 503 NewBB->moveBefore(PN->getParent()); 504 } 505 506 // Splitting the edge can reduce the number of PHI entries we have. 507 e = PN->getNumIncomingValues(); 508 } 509 } 510 Value *&Code = InsertedCode[PN->getIncomingBlock(i)]; 511 if (!Code) { 512 // Insert the code into the end of the predecessor block. 513 Instruction *InsertPt = (L->contains(OldLoc->getParent())) ? 514 PN->getIncomingBlock(i)->getTerminator() : 515 OldLoc->getParent()->getTerminator(); 516 Code = InsertCodeForBaseAtPosition(NewBase, PN->getType(), 517 Rewriter, InsertPt, L, LI); 518 519 DOUT << " Changing PHI use to "; 520 DEBUG(WriteAsOperand(*DOUT, Code, /*PrintType=*/false)); 521 DOUT << ", which has value " << *NewBase << " plus IMM " << *Imm << "\n"; 522 } 523 524 // Replace the use of the operand Value with the new Phi we just created. 525 PN->setIncomingValue(i, Code); 526 Rewriter.clear(); 527 } 528 } 529 530 // PHI node might have become a constant value after SplitCriticalEdge. 531 DeadInsts.push_back(Inst); 532 } 533 534 535 /// fitsInAddressMode - Return true if V can be subsumed within an addressing 536 /// mode, and does not need to be put in a register first. 537 static bool fitsInAddressMode(const SCEV* const &V, const Type *AccessTy, 538 const TargetLowering *TLI, bool HasBaseReg) { 539 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(V)) { 540 int64_t VC = SC->getValue()->getSExtValue(); 541 if (TLI) { 542 TargetLowering::AddrMode AM; 543 AM.BaseOffs = VC; 544 AM.HasBaseReg = HasBaseReg; 545 return TLI->isLegalAddressingMode(AM, AccessTy); 546 } else { 547 // Defaults to PPC. PPC allows a sign-extended 16-bit immediate field. 548 return (VC > -(1 << 16) && VC < (1 << 16)-1); 549 } 550 } 551 552 if (const SCEVUnknown *SU = dyn_cast<SCEVUnknown>(V)) 553 if (GlobalValue *GV = dyn_cast<GlobalValue>(SU->getValue())) { 554 if (TLI) { 555 TargetLowering::AddrMode AM; 556 AM.BaseGV = GV; 557 AM.HasBaseReg = HasBaseReg; 558 return TLI->isLegalAddressingMode(AM, AccessTy); 559 } else { 560 // Default: assume global addresses are not legal. 561 } 562 } 563 564 return false; 565 } 566 567 /// MoveLoopVariantsToImmediateField - Move any subexpressions from Val that are 568 /// loop varying to the Imm operand. 569 static void MoveLoopVariantsToImmediateField(const SCEV* &Val, const SCEV* &Imm, 570 Loop *L, ScalarEvolution *SE) { 571 if (Val->isLoopInvariant(L)) return; // Nothing to do. 572 573 if (const SCEVAddExpr *SAE = dyn_cast<SCEVAddExpr>(Val)) { 574 SmallVector<const SCEV*, 4> NewOps; 575 NewOps.reserve(SAE->getNumOperands()); 576 577 for (unsigned i = 0; i != SAE->getNumOperands(); ++i) 578 if (!SAE->getOperand(i)->isLoopInvariant(L)) { 579 // If this is a loop-variant expression, it must stay in the immediate 580 // field of the expression. 581 Imm = SE->getAddExpr(Imm, SAE->getOperand(i)); 582 } else { 583 NewOps.push_back(SAE->getOperand(i)); 584 } 585 586 if (NewOps.empty()) 587 Val = SE->getIntegerSCEV(0, Val->getType()); 588 else 589 Val = SE->getAddExpr(NewOps); 590 } else if (const SCEVAddRecExpr *SARE = dyn_cast<SCEVAddRecExpr>(Val)) { 591 // Try to pull immediates out of the start value of nested addrec's. 592 const SCEV* Start = SARE->getStart(); 593 MoveLoopVariantsToImmediateField(Start, Imm, L, SE); 594 595 SmallVector<const SCEV*, 4> Ops(SARE->op_begin(), SARE->op_end()); 596 Ops[0] = Start; 597 Val = SE->getAddRecExpr(Ops, SARE->getLoop()); 598 } else { 599 // Otherwise, all of Val is variant, move the whole thing over. 600 Imm = SE->getAddExpr(Imm, Val); 601 Val = SE->getIntegerSCEV(0, Val->getType()); 602 } 603 } 604 605 606 /// MoveImmediateValues - Look at Val, and pull out any additions of constants 607 /// that can fit into the immediate field of instructions in the target. 608 /// Accumulate these immediate values into the Imm value. 609 static void MoveImmediateValues(const TargetLowering *TLI, 610 const Type *AccessTy, 611 const SCEV* &Val, const SCEV* &Imm, 612 bool isAddress, Loop *L, 613 ScalarEvolution *SE) { 614 if (const SCEVAddExpr *SAE = dyn_cast<SCEVAddExpr>(Val)) { 615 SmallVector<const SCEV*, 4> NewOps; 616 NewOps.reserve(SAE->getNumOperands()); 617 618 for (unsigned i = 0; i != SAE->getNumOperands(); ++i) { 619 const SCEV* NewOp = SAE->getOperand(i); 620 MoveImmediateValues(TLI, AccessTy, NewOp, Imm, isAddress, L, SE); 621 622 if (!NewOp->isLoopInvariant(L)) { 623 // If this is a loop-variant expression, it must stay in the immediate 624 // field of the expression. 625 Imm = SE->getAddExpr(Imm, NewOp); 626 } else { 627 NewOps.push_back(NewOp); 628 } 629 } 630 631 if (NewOps.empty()) 632 Val = SE->getIntegerSCEV(0, Val->getType()); 633 else 634 Val = SE->getAddExpr(NewOps); 635 return; 636 } else if (const SCEVAddRecExpr *SARE = dyn_cast<SCEVAddRecExpr>(Val)) { 637 // Try to pull immediates out of the start value of nested addrec's. 638 const SCEV* Start = SARE->getStart(); 639 MoveImmediateValues(TLI, AccessTy, Start, Imm, isAddress, L, SE); 640 641 if (Start != SARE->getStart()) { 642 SmallVector<const SCEV*, 4> Ops(SARE->op_begin(), SARE->op_end()); 643 Ops[0] = Start; 644 Val = SE->getAddRecExpr(Ops, SARE->getLoop()); 645 } 646 return; 647 } else if (const SCEVMulExpr *SME = dyn_cast<SCEVMulExpr>(Val)) { 648 // Transform "8 * (4 + v)" -> "32 + 8*V" if "32" fits in the immed field. 649 if (isAddress && 650 fitsInAddressMode(SME->getOperand(0), AccessTy, TLI, false) && 651 SME->getNumOperands() == 2 && SME->isLoopInvariant(L)) { 652 653 const SCEV* SubImm = SE->getIntegerSCEV(0, Val->getType()); 654 const SCEV* NewOp = SME->getOperand(1); 655 MoveImmediateValues(TLI, AccessTy, NewOp, SubImm, isAddress, L, SE); 656 657 // If we extracted something out of the subexpressions, see if we can 658 // simplify this! 659 if (NewOp != SME->getOperand(1)) { 660 // Scale SubImm up by "8". If the result is a target constant, we are 661 // good. 662 SubImm = SE->getMulExpr(SubImm, SME->getOperand(0)); 663 if (fitsInAddressMode(SubImm, AccessTy, TLI, false)) { 664 // Accumulate the immediate. 665 Imm = SE->getAddExpr(Imm, SubImm); 666 667 // Update what is left of 'Val'. 668 Val = SE->getMulExpr(SME->getOperand(0), NewOp); 669 return; 670 } 671 } 672 } 673 } 674 675 // Loop-variant expressions must stay in the immediate field of the 676 // expression. 677 if ((isAddress && fitsInAddressMode(Val, AccessTy, TLI, false)) || 678 !Val->isLoopInvariant(L)) { 679 Imm = SE->getAddExpr(Imm, Val); 680 Val = SE->getIntegerSCEV(0, Val->getType()); 681 return; 682 } 683 684 // Otherwise, no immediates to move. 685 } 686 687 static void MoveImmediateValues(const TargetLowering *TLI, 688 Instruction *User, 689 const SCEV* &Val, const SCEV* &Imm, 690 bool isAddress, Loop *L, 691 ScalarEvolution *SE) { 692 const Type *AccessTy = getAccessType(User); 693 MoveImmediateValues(TLI, AccessTy, Val, Imm, isAddress, L, SE); 694 } 695 696 /// SeparateSubExprs - Decompose Expr into all of the subexpressions that are 697 /// added together. This is used to reassociate common addition subexprs 698 /// together for maximal sharing when rewriting bases. 699 static void SeparateSubExprs(SmallVector<const SCEV*, 16> &SubExprs, 700 const SCEV* Expr, 701 ScalarEvolution *SE) { 702 if (const SCEVAddExpr *AE = dyn_cast<SCEVAddExpr>(Expr)) { 703 for (unsigned j = 0, e = AE->getNumOperands(); j != e; ++j) 704 SeparateSubExprs(SubExprs, AE->getOperand(j), SE); 705 } else if (const SCEVAddRecExpr *SARE = dyn_cast<SCEVAddRecExpr>(Expr)) { 706 const SCEV* Zero = SE->getIntegerSCEV(0, Expr->getType()); 707 if (SARE->getOperand(0) == Zero) { 708 SubExprs.push_back(Expr); 709 } else { 710 // Compute the addrec with zero as its base. 711 SmallVector<const SCEV*, 4> Ops(SARE->op_begin(), SARE->op_end()); 712 Ops[0] = Zero; // Start with zero base. 713 SubExprs.push_back(SE->getAddRecExpr(Ops, SARE->getLoop())); 714 715 716 SeparateSubExprs(SubExprs, SARE->getOperand(0), SE); 717 } 718 } else if (!Expr->isZero()) { 719 // Do not add zero. 720 SubExprs.push_back(Expr); 721 } 722 } 723 724 // This is logically local to the following function, but C++ says we have 725 // to make it file scope. 726 struct SubExprUseData { unsigned Count; bool notAllUsesAreFree; }; 727 728 /// RemoveCommonExpressionsFromUseBases - Look through all of the Bases of all 729 /// the Uses, removing any common subexpressions, except that if all such 730 /// subexpressions can be folded into an addressing mode for all uses inside 731 /// the loop (this case is referred to as "free" in comments herein) we do 732 /// not remove anything. This looks for things like (a+b+c) and 733 /// (a+c+d) and computes the common (a+c) subexpression. The common expression 734 /// is *removed* from the Bases and returned. 735 static const SCEV* 736 RemoveCommonExpressionsFromUseBases(std::vector<BasedUser> &Uses, 737 ScalarEvolution *SE, Loop *L, 738 const TargetLowering *TLI) { 739 unsigned NumUses = Uses.size(); 740 741 // Only one use? This is a very common case, so we handle it specially and 742 // cheaply. 743 const SCEV* Zero = SE->getIntegerSCEV(0, Uses[0].Base->getType()); 744 const SCEV* Result = Zero; 745 const SCEV* FreeResult = Zero; 746 if (NumUses == 1) { 747 // If the use is inside the loop, use its base, regardless of what it is: 748 // it is clearly shared across all the IV's. If the use is outside the loop 749 // (which means after it) we don't want to factor anything *into* the loop, 750 // so just use 0 as the base. 751 if (L->contains(Uses[0].Inst->getParent())) 752 std::swap(Result, Uses[0].Base); 753 return Result; 754 } 755 756 // To find common subexpressions, count how many of Uses use each expression. 757 // If any subexpressions are used Uses.size() times, they are common. 758 // Also track whether all uses of each expression can be moved into an 759 // an addressing mode "for free"; such expressions are left within the loop. 760 // struct SubExprUseData { unsigned Count; bool notAllUsesAreFree; }; 761 std::map<const SCEV*, SubExprUseData> SubExpressionUseData; 762 763 // UniqueSubExprs - Keep track of all of the subexpressions we see in the 764 // order we see them. 765 SmallVector<const SCEV*, 16> UniqueSubExprs; 766 767 SmallVector<const SCEV*, 16> SubExprs; 768 unsigned NumUsesInsideLoop = 0; 769 for (unsigned i = 0; i != NumUses; ++i) { 770 // If the user is outside the loop, just ignore it for base computation. 771 // Since the user is outside the loop, it must be *after* the loop (if it 772 // were before, it could not be based on the loop IV). We don't want users 773 // after the loop to affect base computation of values *inside* the loop, 774 // because we can always add their offsets to the result IV after the loop 775 // is done, ensuring we get good code inside the loop. 776 if (!L->contains(Uses[i].Inst->getParent())) 777 continue; 778 NumUsesInsideLoop++; 779 780 // If the base is zero (which is common), return zero now, there are no 781 // CSEs we can find. 782 if (Uses[i].Base == Zero) return Zero; 783 784 // If this use is as an address we may be able to put CSEs in the addressing 785 // mode rather than hoisting them. 786 bool isAddrUse = isAddressUse(Uses[i].Inst, Uses[i].OperandValToReplace); 787 // We may need the AccessTy below, but only when isAddrUse, so compute it 788 // only in that case. 789 const Type *AccessTy = 0; 790 if (isAddrUse) 791 AccessTy = getAccessType(Uses[i].Inst); 792 793 // Split the expression into subexprs. 794 SeparateSubExprs(SubExprs, Uses[i].Base, SE); 795 // Add one to SubExpressionUseData.Count for each subexpr present, and 796 // if the subexpr is not a valid immediate within an addressing mode use, 797 // set SubExpressionUseData.notAllUsesAreFree. We definitely want to 798 // hoist these out of the loop (if they are common to all uses). 799 for (unsigned j = 0, e = SubExprs.size(); j != e; ++j) { 800 if (++SubExpressionUseData[SubExprs[j]].Count == 1) 801 UniqueSubExprs.push_back(SubExprs[j]); 802 if (!isAddrUse || !fitsInAddressMode(SubExprs[j], AccessTy, TLI, false)) 803 SubExpressionUseData[SubExprs[j]].notAllUsesAreFree = true; 804 } 805 SubExprs.clear(); 806 } 807 808 // Now that we know how many times each is used, build Result. Iterate over 809 // UniqueSubexprs so that we have a stable ordering. 810 for (unsigned i = 0, e = UniqueSubExprs.size(); i != e; ++i) { 811 std::map<const SCEV*, SubExprUseData>::iterator I = 812 SubExpressionUseData.find(UniqueSubExprs[i]); 813 assert(I != SubExpressionUseData.end() && "Entry not found?"); 814 if (I->second.Count == NumUsesInsideLoop) { // Found CSE! 815 if (I->second.notAllUsesAreFree) 816 Result = SE->getAddExpr(Result, I->first); 817 else 818 FreeResult = SE->getAddExpr(FreeResult, I->first); 819 } else 820 // Remove non-cse's from SubExpressionUseData. 821 SubExpressionUseData.erase(I); 822 } 823 824 if (FreeResult != Zero) { 825 // We have some subexpressions that can be subsumed into addressing 826 // modes in every use inside the loop. However, it's possible that 827 // there are so many of them that the combined FreeResult cannot 828 // be subsumed, or that the target cannot handle both a FreeResult 829 // and a Result in the same instruction (for example because it would 830 // require too many registers). Check this. 831 for (unsigned i=0; i<NumUses; ++i) { 832 if (!L->contains(Uses[i].Inst->getParent())) 833 continue; 834 // We know this is an addressing mode use; if there are any uses that 835 // are not, FreeResult would be Zero. 836 const Type *AccessTy = getAccessType(Uses[i].Inst); 837 if (!fitsInAddressMode(FreeResult, AccessTy, TLI, Result!=Zero)) { 838 // FIXME: could split up FreeResult into pieces here, some hoisted 839 // and some not. There is no obvious advantage to this. 840 Result = SE->getAddExpr(Result, FreeResult); 841 FreeResult = Zero; 842 break; 843 } 844 } 845 } 846 847 // If we found no CSE's, return now. 848 if (Result == Zero) return Result; 849 850 // If we still have a FreeResult, remove its subexpressions from 851 // SubExpressionUseData. This means they will remain in the use Bases. 852 if (FreeResult != Zero) { 853 SeparateSubExprs(SubExprs, FreeResult, SE); 854 for (unsigned j = 0, e = SubExprs.size(); j != e; ++j) { 855 std::map<const SCEV*, SubExprUseData>::iterator I = 856 SubExpressionUseData.find(SubExprs[j]); 857 SubExpressionUseData.erase(I); 858 } 859 SubExprs.clear(); 860 } 861 862 // Otherwise, remove all of the CSE's we found from each of the base values. 863 for (unsigned i = 0; i != NumUses; ++i) { 864 // Uses outside the loop don't necessarily include the common base, but 865 // the final IV value coming into those uses does. Instead of trying to 866 // remove the pieces of the common base, which might not be there, 867 // subtract off the base to compensate for this. 868 if (!L->contains(Uses[i].Inst->getParent())) { 869 Uses[i].Base = SE->getMinusSCEV(Uses[i].Base, Result); 870 continue; 871 } 872 873 // Split the expression into subexprs. 874 SeparateSubExprs(SubExprs, Uses[i].Base, SE); 875 876 // Remove any common subexpressions. 877 for (unsigned j = 0, e = SubExprs.size(); j != e; ++j) 878 if (SubExpressionUseData.count(SubExprs[j])) { 879 SubExprs.erase(SubExprs.begin()+j); 880 --j; --e; 881 } 882 883 // Finally, add the non-shared expressions together. 884 if (SubExprs.empty()) 885 Uses[i].Base = Zero; 886 else 887 Uses[i].Base = SE->getAddExpr(SubExprs); 888 SubExprs.clear(); 889 } 890 891 return Result; 892 } 893 894 /// ValidScale - Check whether the given Scale is valid for all loads and 895 /// stores in UsersToProcess. 896 /// 897 bool LoopStrengthReduce::ValidScale(bool HasBaseReg, int64_t Scale, 898 const std::vector<BasedUser>& UsersToProcess) { 899 if (!TLI) 900 return true; 901 902 for (unsigned i = 0, e = UsersToProcess.size(); i!=e; ++i) { 903 // If this is a load or other access, pass the type of the access in. 904 const Type *AccessTy = Type::VoidTy; 905 if (isAddressUse(UsersToProcess[i].Inst, 906 UsersToProcess[i].OperandValToReplace)) 907 AccessTy = getAccessType(UsersToProcess[i].Inst); 908 else if (isa<PHINode>(UsersToProcess[i].Inst)) 909 continue; 910 911 TargetLowering::AddrMode AM; 912 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(UsersToProcess[i].Imm)) 913 AM.BaseOffs = SC->getValue()->getSExtValue(); 914 AM.HasBaseReg = HasBaseReg || !UsersToProcess[i].Base->isZero(); 915 AM.Scale = Scale; 916 917 // If load[imm+r*scale] is illegal, bail out. 918 if (!TLI->isLegalAddressingMode(AM, AccessTy)) 919 return false; 920 } 921 return true; 922 } 923 924 /// ValidOffset - Check whether the given Offset is valid for all loads and 925 /// stores in UsersToProcess. 926 /// 927 bool LoopStrengthReduce::ValidOffset(bool HasBaseReg, 928 int64_t Offset, 929 int64_t Scale, 930 const std::vector<BasedUser>& UsersToProcess) { 931 if (!TLI) 932 return true; 933 934 for (unsigned i=0, e = UsersToProcess.size(); i!=e; ++i) { 935 // If this is a load or other access, pass the type of the access in. 936 const Type *AccessTy = Type::VoidTy; 937 if (isAddressUse(UsersToProcess[i].Inst, 938 UsersToProcess[i].OperandValToReplace)) 939 AccessTy = getAccessType(UsersToProcess[i].Inst); 940 else if (isa<PHINode>(UsersToProcess[i].Inst)) 941 continue; 942 943 TargetLowering::AddrMode AM; 944 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(UsersToProcess[i].Imm)) 945 AM.BaseOffs = SC->getValue()->getSExtValue(); 946 AM.BaseOffs = (uint64_t)AM.BaseOffs + (uint64_t)Offset; 947 AM.HasBaseReg = HasBaseReg || !UsersToProcess[i].Base->isZero(); 948 AM.Scale = Scale; 949 950 // If load[imm+r*scale] is illegal, bail out. 951 if (!TLI->isLegalAddressingMode(AM, AccessTy)) 952 return false; 953 } 954 return true; 955 } 956 957 /// RequiresTypeConversion - Returns true if converting Ty1 to Ty2 is not 958 /// a nop. 959 bool LoopStrengthReduce::RequiresTypeConversion(const Type *Ty1, 960 const Type *Ty2) { 961 if (Ty1 == Ty2) 962 return false; 963 Ty1 = SE->getEffectiveSCEVType(Ty1); 964 Ty2 = SE->getEffectiveSCEVType(Ty2); 965 if (Ty1 == Ty2) 966 return false; 967 if (Ty1->canLosslesslyBitCastTo(Ty2)) 968 return false; 969 if (TLI && TLI->isTruncateFree(Ty1, Ty2)) 970 return false; 971 return true; 972 } 973 974 /// CheckForIVReuse - Returns the multiple if the stride is the multiple 975 /// of a previous stride and it is a legal value for the target addressing 976 /// mode scale component and optional base reg. This allows the users of 977 /// this stride to be rewritten as prev iv * factor. It returns 0 if no 978 /// reuse is possible. Factors can be negative on same targets, e.g. ARM. 979 /// 980 /// If all uses are outside the loop, we don't require that all multiplies 981 /// be folded into the addressing mode, nor even that the factor be constant; 982 /// a multiply (executed once) outside the loop is better than another IV 983 /// within. Well, usually. 984 const SCEV* LoopStrengthReduce::CheckForIVReuse(bool HasBaseReg, 985 bool AllUsesAreAddresses, 986 bool AllUsesAreOutsideLoop, 987 const SCEV* const &Stride, 988 IVExpr &IV, const Type *Ty, 989 const std::vector<BasedUser>& UsersToProcess) { 990 if (StrideNoReuse.count(Stride)) 991 return SE->getIntegerSCEV(0, Stride->getType()); 992 993 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(Stride)) { 994 int64_t SInt = SC->getValue()->getSExtValue(); 995 for (unsigned NewStride = 0, e = IU->StrideOrder.size(); 996 NewStride != e; ++NewStride) { 997 std::map<const SCEV*, IVsOfOneStride>::iterator SI = 998 IVsByStride.find(IU->StrideOrder[NewStride]); 999 if (SI == IVsByStride.end() || !isa<SCEVConstant>(SI->first) || 1000 StrideNoReuse.count(SI->first)) 1001 continue; 1002 int64_t SSInt = cast<SCEVConstant>(SI->first)->getValue()->getSExtValue(); 1003 if (SI->first != Stride && 1004 (unsigned(abs64(SInt)) < SSInt || (SInt % SSInt) != 0)) 1005 continue; 1006 int64_t Scale = SInt / SSInt; 1007 // Check that this stride is valid for all the types used for loads and 1008 // stores; if it can be used for some and not others, we might as well use 1009 // the original stride everywhere, since we have to create the IV for it 1010 // anyway. If the scale is 1, then we don't need to worry about folding 1011 // multiplications. 1012 if (Scale == 1 || 1013 (AllUsesAreAddresses && 1014 ValidScale(HasBaseReg, Scale, UsersToProcess))) { 1015 // Prefer to reuse an IV with a base of zero. 1016 for (std::vector<IVExpr>::iterator II = SI->second.IVs.begin(), 1017 IE = SI->second.IVs.end(); II != IE; ++II) 1018 // Only reuse previous IV if it would not require a type conversion 1019 // and if the base difference can be folded. 1020 if (II->Base->isZero() && 1021 !RequiresTypeConversion(II->Base->getType(), Ty)) { 1022 IV = *II; 1023 return SE->getIntegerSCEV(Scale, Stride->getType()); 1024 } 1025 // Otherwise, settle for an IV with a foldable base. 1026 if (AllUsesAreAddresses) 1027 for (std::vector<IVExpr>::iterator II = SI->second.IVs.begin(), 1028 IE = SI->second.IVs.end(); II != IE; ++II) 1029 // Only reuse previous IV if it would not require a type conversion 1030 // and if the base difference can be folded. 1031 if (SE->getEffectiveSCEVType(II->Base->getType()) == 1032 SE->getEffectiveSCEVType(Ty) && 1033 isa<SCEVConstant>(II->Base)) { 1034 int64_t Base = 1035 cast<SCEVConstant>(II->Base)->getValue()->getSExtValue(); 1036 if (Base > INT32_MIN && Base <= INT32_MAX && 1037 ValidOffset(HasBaseReg, -Base * Scale, 1038 Scale, UsersToProcess)) { 1039 IV = *II; 1040 return SE->getIntegerSCEV(Scale, Stride->getType()); 1041 } 1042 } 1043 } 1044 } 1045 } else if (AllUsesAreOutsideLoop) { 1046 // Accept nonconstant strides here; it is really really right to substitute 1047 // an existing IV if we can. 1048 for (unsigned NewStride = 0, e = IU->StrideOrder.size(); 1049 NewStride != e; ++NewStride) { 1050 std::map<const SCEV*, IVsOfOneStride>::iterator SI = 1051 IVsByStride.find(IU->StrideOrder[NewStride]); 1052 if (SI == IVsByStride.end() || !isa<SCEVConstant>(SI->first)) 1053 continue; 1054 int64_t SSInt = cast<SCEVConstant>(SI->first)->getValue()->getSExtValue(); 1055 if (SI->first != Stride && SSInt != 1) 1056 continue; 1057 for (std::vector<IVExpr>::iterator II = SI->second.IVs.begin(), 1058 IE = SI->second.IVs.end(); II != IE; ++II) 1059 // Accept nonzero base here. 1060 // Only reuse previous IV if it would not require a type conversion. 1061 if (!RequiresTypeConversion(II->Base->getType(), Ty)) { 1062 IV = *II; 1063 return Stride; 1064 } 1065 } 1066 // Special case, old IV is -1*x and this one is x. Can treat this one as 1067 // -1*old. 1068 for (unsigned NewStride = 0, e = IU->StrideOrder.size(); 1069 NewStride != e; ++NewStride) { 1070 std::map<const SCEV*, IVsOfOneStride>::iterator SI = 1071 IVsByStride.find(IU->StrideOrder[NewStride]); 1072 if (SI == IVsByStride.end()) 1073 continue; 1074 if (const SCEVMulExpr *ME = dyn_cast<SCEVMulExpr>(SI->first)) 1075 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(ME->getOperand(0))) 1076 if (Stride == ME->getOperand(1) && 1077 SC->getValue()->getSExtValue() == -1LL) 1078 for (std::vector<IVExpr>::iterator II = SI->second.IVs.begin(), 1079 IE = SI->second.IVs.end(); II != IE; ++II) 1080 // Accept nonzero base here. 1081 // Only reuse previous IV if it would not require type conversion. 1082 if (!RequiresTypeConversion(II->Base->getType(), Ty)) { 1083 IV = *II; 1084 return SE->getIntegerSCEV(-1LL, Stride->getType()); 1085 } 1086 } 1087 } 1088 return SE->getIntegerSCEV(0, Stride->getType()); 1089 } 1090 1091 /// PartitionByIsUseOfPostIncrementedValue - Simple boolean predicate that 1092 /// returns true if Val's isUseOfPostIncrementedValue is true. 1093 static bool PartitionByIsUseOfPostIncrementedValue(const BasedUser &Val) { 1094 return Val.isUseOfPostIncrementedValue; 1095 } 1096 1097 /// isNonConstantNegative - Return true if the specified scev is negated, but 1098 /// not a constant. 1099 static bool isNonConstantNegative(const SCEV* const &Expr) { 1100 const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(Expr); 1101 if (!Mul) return false; 1102 1103 // If there is a constant factor, it will be first. 1104 const SCEVConstant *SC = dyn_cast<SCEVConstant>(Mul->getOperand(0)); 1105 if (!SC) return false; 1106 1107 // Return true if the value is negative, this matches things like (-42 * V). 1108 return SC->getValue()->getValue().isNegative(); 1109 } 1110 1111 /// CollectIVUsers - Transform our list of users and offsets to a bit more 1112 /// complex table. In this new vector, each 'BasedUser' contains 'Base', the base 1113 /// of the strided accesses, as well as the old information from Uses. We 1114 /// progressively move information from the Base field to the Imm field, until 1115 /// we eventually have the full access expression to rewrite the use. 1116 const SCEV* LoopStrengthReduce::CollectIVUsers(const SCEV* const &Stride, 1117 IVUsersOfOneStride &Uses, 1118 Loop *L, 1119 bool &AllUsesAreAddresses, 1120 bool &AllUsesAreOutsideLoop, 1121 std::vector<BasedUser> &UsersToProcess) { 1122 // FIXME: Generalize to non-affine IV's. 1123 if (!Stride->isLoopInvariant(L)) 1124 return SE->getIntegerSCEV(0, Stride->getType()); 1125 1126 UsersToProcess.reserve(Uses.Users.size()); 1127 for (ilist<IVStrideUse>::iterator I = Uses.Users.begin(), 1128 E = Uses.Users.end(); I != E; ++I) { 1129 UsersToProcess.push_back(BasedUser(*I, SE)); 1130 1131 // Move any loop variant operands from the offset field to the immediate 1132 // field of the use, so that we don't try to use something before it is 1133 // computed. 1134 MoveLoopVariantsToImmediateField(UsersToProcess.back().Base, 1135 UsersToProcess.back().Imm, L, SE); 1136 assert(UsersToProcess.back().Base->isLoopInvariant(L) && 1137 "Base value is not loop invariant!"); 1138 } 1139 1140 // We now have a whole bunch of uses of like-strided induction variables, but 1141 // they might all have different bases. We want to emit one PHI node for this 1142 // stride which we fold as many common expressions (between the IVs) into as 1143 // possible. Start by identifying the common expressions in the base values 1144 // for the strides (e.g. if we have "A+C+B" and "A+B+D" as our bases, find 1145 // "A+B"), emit it to the preheader, then remove the expression from the 1146 // UsersToProcess base values. 1147 const SCEV* CommonExprs = 1148 RemoveCommonExpressionsFromUseBases(UsersToProcess, SE, L, TLI); 1149 1150 // Next, figure out what we can represent in the immediate fields of 1151 // instructions. If we can represent anything there, move it to the imm 1152 // fields of the BasedUsers. We do this so that it increases the commonality 1153 // of the remaining uses. 1154 unsigned NumPHI = 0; 1155 bool HasAddress = false; 1156 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ++i) { 1157 // If the user is not in the current loop, this means it is using the exit 1158 // value of the IV. Do not put anything in the base, make sure it's all in 1159 // the immediate field to allow as much factoring as possible. 1160 if (!L->contains(UsersToProcess[i].Inst->getParent())) { 1161 UsersToProcess[i].Imm = SE->getAddExpr(UsersToProcess[i].Imm, 1162 UsersToProcess[i].Base); 1163 UsersToProcess[i].Base = 1164 SE->getIntegerSCEV(0, UsersToProcess[i].Base->getType()); 1165 } else { 1166 // Not all uses are outside the loop. 1167 AllUsesAreOutsideLoop = false; 1168 1169 // Addressing modes can be folded into loads and stores. Be careful that 1170 // the store is through the expression, not of the expression though. 1171 bool isPHI = false; 1172 bool isAddress = isAddressUse(UsersToProcess[i].Inst, 1173 UsersToProcess[i].OperandValToReplace); 1174 if (isa<PHINode>(UsersToProcess[i].Inst)) { 1175 isPHI = true; 1176 ++NumPHI; 1177 } 1178 1179 if (isAddress) 1180 HasAddress = true; 1181 1182 // If this use isn't an address, then not all uses are addresses. 1183 if (!isAddress && !isPHI) 1184 AllUsesAreAddresses = false; 1185 1186 MoveImmediateValues(TLI, UsersToProcess[i].Inst, UsersToProcess[i].Base, 1187 UsersToProcess[i].Imm, isAddress, L, SE); 1188 } 1189 } 1190 1191 // If one of the use is a PHI node and all other uses are addresses, still 1192 // allow iv reuse. Essentially we are trading one constant multiplication 1193 // for one fewer iv. 1194 if (NumPHI > 1) 1195 AllUsesAreAddresses = false; 1196 1197 // There are no in-loop address uses. 1198 if (AllUsesAreAddresses && (!HasAddress && !AllUsesAreOutsideLoop)) 1199 AllUsesAreAddresses = false; 1200 1201 return CommonExprs; 1202 } 1203 1204 /// ShouldUseFullStrengthReductionMode - Test whether full strength-reduction 1205 /// is valid and profitable for the given set of users of a stride. In 1206 /// full strength-reduction mode, all addresses at the current stride are 1207 /// strength-reduced all the way down to pointer arithmetic. 1208 /// 1209 bool LoopStrengthReduce::ShouldUseFullStrengthReductionMode( 1210 const std::vector<BasedUser> &UsersToProcess, 1211 const Loop *L, 1212 bool AllUsesAreAddresses, 1213 const SCEV* Stride) { 1214 if (!EnableFullLSRMode) 1215 return false; 1216 1217 // The heuristics below aim to avoid increasing register pressure, but 1218 // fully strength-reducing all the addresses increases the number of 1219 // add instructions, so don't do this when optimizing for size. 1220 // TODO: If the loop is large, the savings due to simpler addresses 1221 // may oughtweight the costs of the extra increment instructions. 1222 if (L->getHeader()->getParent()->hasFnAttr(Attribute::OptimizeForSize)) 1223 return false; 1224 1225 // TODO: For now, don't do full strength reduction if there could 1226 // potentially be greater-stride multiples of the current stride 1227 // which could reuse the current stride IV. 1228 if (IU->StrideOrder.back() != Stride) 1229 return false; 1230 1231 // Iterate through the uses to find conditions that automatically rule out 1232 // full-lsr mode. 1233 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ) { 1234 const SCEV *Base = UsersToProcess[i].Base; 1235 const SCEV *Imm = UsersToProcess[i].Imm; 1236 // If any users have a loop-variant component, they can't be fully 1237 // strength-reduced. 1238 if (Imm && !Imm->isLoopInvariant(L)) 1239 return false; 1240 // If there are to users with the same base and the difference between 1241 // the two Imm values can't be folded into the address, full 1242 // strength reduction would increase register pressure. 1243 do { 1244 const SCEV *CurImm = UsersToProcess[i].Imm; 1245 if ((CurImm || Imm) && CurImm != Imm) { 1246 if (!CurImm) CurImm = SE->getIntegerSCEV(0, Stride->getType()); 1247 if (!Imm) Imm = SE->getIntegerSCEV(0, Stride->getType()); 1248 const Instruction *Inst = UsersToProcess[i].Inst; 1249 const Type *AccessTy = getAccessType(Inst); 1250 const SCEV* Diff = SE->getMinusSCEV(UsersToProcess[i].Imm, Imm); 1251 if (!Diff->isZero() && 1252 (!AllUsesAreAddresses || 1253 !fitsInAddressMode(Diff, AccessTy, TLI, /*HasBaseReg=*/true))) 1254 return false; 1255 } 1256 } while (++i != e && Base == UsersToProcess[i].Base); 1257 } 1258 1259 // If there's exactly one user in this stride, fully strength-reducing it 1260 // won't increase register pressure. If it's starting from a non-zero base, 1261 // it'll be simpler this way. 1262 if (UsersToProcess.size() == 1 && !UsersToProcess[0].Base->isZero()) 1263 return true; 1264 1265 // Otherwise, if there are any users in this stride that don't require 1266 // a register for their base, full strength-reduction will increase 1267 // register pressure. 1268 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ++i) 1269 if (UsersToProcess[i].Base->isZero()) 1270 return false; 1271 1272 // Otherwise, go for it. 1273 return true; 1274 } 1275 1276 /// InsertAffinePhi Create and insert a PHI node for an induction variable 1277 /// with the specified start and step values in the specified loop. 1278 /// 1279 /// If NegateStride is true, the stride should be negated by using a 1280 /// subtract instead of an add. 1281 /// 1282 /// Return the created phi node. 1283 /// 1284 static PHINode *InsertAffinePhi(const SCEV* Start, const SCEV* Step, 1285 Instruction *IVIncInsertPt, 1286 const Loop *L, 1287 SCEVExpander &Rewriter) { 1288 assert(Start->isLoopInvariant(L) && "New PHI start is not loop invariant!"); 1289 assert(Step->isLoopInvariant(L) && "New PHI stride is not loop invariant!"); 1290 1291 BasicBlock *Header = L->getHeader(); 1292 BasicBlock *Preheader = L->getLoopPreheader(); 1293 BasicBlock *LatchBlock = L->getLoopLatch(); 1294 const Type *Ty = Start->getType(); 1295 Ty = Rewriter.SE.getEffectiveSCEVType(Ty); 1296 1297 PHINode *PN = PHINode::Create(Ty, "lsr.iv", Header->begin()); 1298 PN->addIncoming(Rewriter.expandCodeFor(Start, Ty, Preheader->getTerminator()), 1299 Preheader); 1300 1301 // If the stride is negative, insert a sub instead of an add for the 1302 // increment. 1303 bool isNegative = isNonConstantNegative(Step); 1304 const SCEV* IncAmount = Step; 1305 if (isNegative) 1306 IncAmount = Rewriter.SE.getNegativeSCEV(Step); 1307 1308 // Insert an add instruction right before the terminator corresponding 1309 // to the back-edge or just before the only use. The location is determined 1310 // by the caller and passed in as IVIncInsertPt. 1311 Value *StepV = Rewriter.expandCodeFor(IncAmount, Ty, 1312 Preheader->getTerminator()); 1313 Instruction *IncV; 1314 if (isNegative) { 1315 IncV = BinaryOperator::CreateSub(PN, StepV, "lsr.iv.next", 1316 IVIncInsertPt); 1317 } else { 1318 IncV = BinaryOperator::CreateAdd(PN, StepV, "lsr.iv.next", 1319 IVIncInsertPt); 1320 } 1321 if (!isa<ConstantInt>(StepV)) ++NumVariable; 1322 1323 PN->addIncoming(IncV, LatchBlock); 1324 1325 ++NumInserted; 1326 return PN; 1327 } 1328 1329 static void SortUsersToProcess(std::vector<BasedUser> &UsersToProcess) { 1330 // We want to emit code for users inside the loop first. To do this, we 1331 // rearrange BasedUser so that the entries at the end have 1332 // isUseOfPostIncrementedValue = false, because we pop off the end of the 1333 // vector (so we handle them first). 1334 std::partition(UsersToProcess.begin(), UsersToProcess.end(), 1335 PartitionByIsUseOfPostIncrementedValue); 1336 1337 // Sort this by base, so that things with the same base are handled 1338 // together. By partitioning first and stable-sorting later, we are 1339 // guaranteed that within each base we will pop off users from within the 1340 // loop before users outside of the loop with a particular base. 1341 // 1342 // We would like to use stable_sort here, but we can't. The problem is that 1343 // const SCEV*'s don't have a deterministic ordering w.r.t to each other, so 1344 // we don't have anything to do a '<' comparison on. Because we think the 1345 // number of uses is small, do a horrible bubble sort which just relies on 1346 // ==. 1347 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ++i) { 1348 // Get a base value. 1349 const SCEV* Base = UsersToProcess[i].Base; 1350 1351 // Compact everything with this base to be consecutive with this one. 1352 for (unsigned j = i+1; j != e; ++j) { 1353 if (UsersToProcess[j].Base == Base) { 1354 std::swap(UsersToProcess[i+1], UsersToProcess[j]); 1355 ++i; 1356 } 1357 } 1358 } 1359 } 1360 1361 /// PrepareToStrengthReduceFully - Prepare to fully strength-reduce 1362 /// UsersToProcess, meaning lowering addresses all the way down to direct 1363 /// pointer arithmetic. 1364 /// 1365 void 1366 LoopStrengthReduce::PrepareToStrengthReduceFully( 1367 std::vector<BasedUser> &UsersToProcess, 1368 const SCEV* Stride, 1369 const SCEV* CommonExprs, 1370 const Loop *L, 1371 SCEVExpander &PreheaderRewriter) { 1372 DOUT << " Fully reducing all users\n"; 1373 1374 // Rewrite the UsersToProcess records, creating a separate PHI for each 1375 // unique Base value. 1376 Instruction *IVIncInsertPt = L->getLoopLatch()->getTerminator(); 1377 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ) { 1378 // TODO: The uses are grouped by base, but not sorted. We arbitrarily 1379 // pick the first Imm value here to start with, and adjust it for the 1380 // other uses. 1381 const SCEV* Imm = UsersToProcess[i].Imm; 1382 const SCEV* Base = UsersToProcess[i].Base; 1383 const SCEV* Start = SE->getAddExpr(CommonExprs, Base, Imm); 1384 PHINode *Phi = InsertAffinePhi(Start, Stride, IVIncInsertPt, L, 1385 PreheaderRewriter); 1386 // Loop over all the users with the same base. 1387 do { 1388 UsersToProcess[i].Base = SE->getIntegerSCEV(0, Stride->getType()); 1389 UsersToProcess[i].Imm = SE->getMinusSCEV(UsersToProcess[i].Imm, Imm); 1390 UsersToProcess[i].Phi = Phi; 1391 assert(UsersToProcess[i].Imm->isLoopInvariant(L) && 1392 "ShouldUseFullStrengthReductionMode should reject this!"); 1393 } while (++i != e && Base == UsersToProcess[i].Base); 1394 } 1395 } 1396 1397 /// FindIVIncInsertPt - Return the location to insert the increment instruction. 1398 /// If the only use if a use of postinc value, (must be the loop termination 1399 /// condition), then insert it just before the use. 1400 static Instruction *FindIVIncInsertPt(std::vector<BasedUser> &UsersToProcess, 1401 const Loop *L) { 1402 if (UsersToProcess.size() == 1 && 1403 UsersToProcess[0].isUseOfPostIncrementedValue && 1404 L->contains(UsersToProcess[0].Inst->getParent())) 1405 return UsersToProcess[0].Inst; 1406 return L->getLoopLatch()->getTerminator(); 1407 } 1408 1409 /// PrepareToStrengthReduceWithNewPhi - Insert a new induction variable for the 1410 /// given users to share. 1411 /// 1412 void 1413 LoopStrengthReduce::PrepareToStrengthReduceWithNewPhi( 1414 std::vector<BasedUser> &UsersToProcess, 1415 const SCEV* Stride, 1416 const SCEV* CommonExprs, 1417 Value *CommonBaseV, 1418 Instruction *IVIncInsertPt, 1419 const Loop *L, 1420 SCEVExpander &PreheaderRewriter) { 1421 DOUT << " Inserting new PHI:\n"; 1422 1423 PHINode *Phi = InsertAffinePhi(SE->getUnknown(CommonBaseV), 1424 Stride, IVIncInsertPt, L, 1425 PreheaderRewriter); 1426 1427 // Remember this in case a later stride is multiple of this. 1428 IVsByStride[Stride].addIV(Stride, CommonExprs, Phi); 1429 1430 // All the users will share this new IV. 1431 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ++i) 1432 UsersToProcess[i].Phi = Phi; 1433 1434 DOUT << " IV="; 1435 DEBUG(WriteAsOperand(*DOUT, Phi, /*PrintType=*/false)); 1436 DOUT << "\n"; 1437 } 1438 1439 /// PrepareToStrengthReduceFromSmallerStride - Prepare for the given users to 1440 /// reuse an induction variable with a stride that is a factor of the current 1441 /// induction variable. 1442 /// 1443 void 1444 LoopStrengthReduce::PrepareToStrengthReduceFromSmallerStride( 1445 std::vector<BasedUser> &UsersToProcess, 1446 Value *CommonBaseV, 1447 const IVExpr &ReuseIV, 1448 Instruction *PreInsertPt) { 1449 DOUT << " Rewriting in terms of existing IV of STRIDE " << *ReuseIV.Stride 1450 << " and BASE " << *ReuseIV.Base << "\n"; 1451 1452 // All the users will share the reused IV. 1453 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ++i) 1454 UsersToProcess[i].Phi = ReuseIV.PHI; 1455 1456 Constant *C = dyn_cast<Constant>(CommonBaseV); 1457 if (C && 1458 (!C->isNullValue() && 1459 !fitsInAddressMode(SE->getUnknown(CommonBaseV), CommonBaseV->getType(), 1460 TLI, false))) 1461 // We want the common base emitted into the preheader! This is just 1462 // using cast as a copy so BitCast (no-op cast) is appropriate 1463 CommonBaseV = new BitCastInst(CommonBaseV, CommonBaseV->getType(), 1464 "commonbase", PreInsertPt); 1465 } 1466 1467 static bool IsImmFoldedIntoAddrMode(GlobalValue *GV, int64_t Offset, 1468 const Type *AccessTy, 1469 std::vector<BasedUser> &UsersToProcess, 1470 const TargetLowering *TLI) { 1471 SmallVector<Instruction*, 16> AddrModeInsts; 1472 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ++i) { 1473 if (UsersToProcess[i].isUseOfPostIncrementedValue) 1474 continue; 1475 ExtAddrMode AddrMode = 1476 AddressingModeMatcher::Match(UsersToProcess[i].OperandValToReplace, 1477 AccessTy, UsersToProcess[i].Inst, 1478 AddrModeInsts, *TLI); 1479 if (GV && GV != AddrMode.BaseGV) 1480 return false; 1481 if (Offset && !AddrMode.BaseOffs) 1482 // FIXME: How to accurate check it's immediate offset is folded. 1483 return false; 1484 AddrModeInsts.clear(); 1485 } 1486 return true; 1487 } 1488 1489 /// StrengthReduceStridedIVUsers - Strength reduce all of the users of a single 1490 /// stride of IV. All of the users may have different starting values, and this 1491 /// may not be the only stride. 1492 void LoopStrengthReduce::StrengthReduceStridedIVUsers(const SCEV* const &Stride, 1493 IVUsersOfOneStride &Uses, 1494 Loop *L) { 1495 // If all the users are moved to another stride, then there is nothing to do. 1496 if (Uses.Users.empty()) 1497 return; 1498 1499 // Keep track if every use in UsersToProcess is an address. If they all are, 1500 // we may be able to rewrite the entire collection of them in terms of a 1501 // smaller-stride IV. 1502 bool AllUsesAreAddresses = true; 1503 1504 // Keep track if every use of a single stride is outside the loop. If so, 1505 // we want to be more aggressive about reusing a smaller-stride IV; a 1506 // multiply outside the loop is better than another IV inside. Well, usually. 1507 bool AllUsesAreOutsideLoop = true; 1508 1509 // Transform our list of users and offsets to a bit more complex table. In 1510 // this new vector, each 'BasedUser' contains 'Base' the base of the 1511 // strided accessas well as the old information from Uses. We progressively 1512 // move information from the Base field to the Imm field, until we eventually 1513 // have the full access expression to rewrite the use. 1514 std::vector<BasedUser> UsersToProcess; 1515 const SCEV* CommonExprs = CollectIVUsers(Stride, Uses, L, AllUsesAreAddresses, 1516 AllUsesAreOutsideLoop, 1517 UsersToProcess); 1518 1519 // Sort the UsersToProcess array so that users with common bases are 1520 // next to each other. 1521 SortUsersToProcess(UsersToProcess); 1522 1523 // If we managed to find some expressions in common, we'll need to carry 1524 // their value in a register and add it in for each use. This will take up 1525 // a register operand, which potentially restricts what stride values are 1526 // valid. 1527 bool HaveCommonExprs = !CommonExprs->isZero(); 1528 const Type *ReplacedTy = CommonExprs->getType(); 1529 1530 // If all uses are addresses, consider sinking the immediate part of the 1531 // common expression back into uses if they can fit in the immediate fields. 1532 if (TLI && HaveCommonExprs && AllUsesAreAddresses) { 1533 const SCEV* NewCommon = CommonExprs; 1534 const SCEV* Imm = SE->getIntegerSCEV(0, ReplacedTy); 1535 MoveImmediateValues(TLI, Type::VoidTy, NewCommon, Imm, true, L, SE); 1536 if (!Imm->isZero()) { 1537 bool DoSink = true; 1538 1539 // If the immediate part of the common expression is a GV, check if it's 1540 // possible to fold it into the target addressing mode. 1541 GlobalValue *GV = 0; 1542 if (const SCEVUnknown *SU = dyn_cast<SCEVUnknown>(Imm)) 1543 GV = dyn_cast<GlobalValue>(SU->getValue()); 1544 int64_t Offset = 0; 1545 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(Imm)) 1546 Offset = SC->getValue()->getSExtValue(); 1547 if (GV || Offset) 1548 // Pass VoidTy as the AccessTy to be conservative, because 1549 // there could be multiple access types among all the uses. 1550 DoSink = IsImmFoldedIntoAddrMode(GV, Offset, Type::VoidTy, 1551 UsersToProcess, TLI); 1552 1553 if (DoSink) { 1554 DOUT << " Sinking " << *Imm << " back down into uses\n"; 1555 for (unsigned i = 0, e = UsersToProcess.size(); i != e; ++i) 1556 UsersToProcess[i].Imm = SE->getAddExpr(UsersToProcess[i].Imm, Imm); 1557 CommonExprs = NewCommon; 1558 HaveCommonExprs = !CommonExprs->isZero(); 1559 ++NumImmSunk; 1560 } 1561 } 1562 } 1563 1564 // Now that we know what we need to do, insert the PHI node itself. 1565 // 1566 DOUT << "LSR: Examining IVs of TYPE " << *ReplacedTy << " of STRIDE " 1567 << *Stride << ":\n" 1568 << " Common base: " << *CommonExprs << "\n"; 1569 1570 SCEVExpander Rewriter(*SE); 1571 SCEVExpander PreheaderRewriter(*SE); 1572 1573 BasicBlock *Preheader = L->getLoopPreheader(); 1574 Instruction *PreInsertPt = Preheader->getTerminator(); 1575 BasicBlock *LatchBlock = L->getLoopLatch(); 1576 Instruction *IVIncInsertPt = LatchBlock->getTerminator(); 1577 1578 Value *CommonBaseV = Constant::getNullValue(ReplacedTy); 1579 1580 const SCEV* RewriteFactor = SE->getIntegerSCEV(0, ReplacedTy); 1581 IVExpr ReuseIV(SE->getIntegerSCEV(0, Type::Int32Ty), 1582 SE->getIntegerSCEV(0, Type::Int32Ty), 1583 0); 1584 1585 /// Choose a strength-reduction strategy and prepare for it by creating 1586 /// the necessary PHIs and adjusting the bookkeeping. 1587 if (ShouldUseFullStrengthReductionMode(UsersToProcess, L, 1588 AllUsesAreAddresses, Stride)) { 1589 PrepareToStrengthReduceFully(UsersToProcess, Stride, CommonExprs, L, 1590 PreheaderRewriter); 1591 } else { 1592 // Emit the initial base value into the loop preheader. 1593 CommonBaseV = PreheaderRewriter.expandCodeFor(CommonExprs, ReplacedTy, 1594 PreInsertPt); 1595 1596 // If all uses are addresses, check if it is possible to reuse an IV. The 1597 // new IV must have a stride that is a multiple of the old stride; the 1598 // multiple must be a number that can be encoded in the scale field of the 1599 // target addressing mode; and we must have a valid instruction after this 1600 // substitution, including the immediate field, if any. 1601 RewriteFactor = CheckForIVReuse(HaveCommonExprs, AllUsesAreAddresses, 1602 AllUsesAreOutsideLoop, 1603 Stride, ReuseIV, ReplacedTy, 1604 UsersToProcess); 1605 if (!RewriteFactor->isZero()) 1606 PrepareToStrengthReduceFromSmallerStride(UsersToProcess, CommonBaseV, 1607 ReuseIV, PreInsertPt); 1608 else { 1609 IVIncInsertPt = FindIVIncInsertPt(UsersToProcess, L); 1610 PrepareToStrengthReduceWithNewPhi(UsersToProcess, Stride, CommonExprs, 1611 CommonBaseV, IVIncInsertPt, 1612 L, PreheaderRewriter); 1613 } 1614 } 1615 1616 // Process all the users now, replacing their strided uses with 1617 // strength-reduced forms. This outer loop handles all bases, the inner 1618 // loop handles all users of a particular base. 1619 while (!UsersToProcess.empty()) { 1620 const SCEV* Base = UsersToProcess.back().Base; 1621 Instruction *Inst = UsersToProcess.back().Inst; 1622 1623 // Emit the code for Base into the preheader. 1624 Value *BaseV = 0; 1625 if (!Base->isZero()) { 1626 BaseV = PreheaderRewriter.expandCodeFor(Base, 0, PreInsertPt); 1627 1628 DOUT << " INSERTING code for BASE = " << *Base << ":"; 1629 if (BaseV->hasName()) 1630 DOUT << " Result value name = %" << BaseV->getNameStr(); 1631 DOUT << "\n"; 1632 1633 // If BaseV is a non-zero constant, make sure that it gets inserted into 1634 // the preheader, instead of being forward substituted into the uses. We 1635 // do this by forcing a BitCast (noop cast) to be inserted into the 1636 // preheader in this case. 1637 if (!fitsInAddressMode(Base, getAccessType(Inst), TLI, false) && 1638 !isa<Instruction>(BaseV)) { 1639 // We want this constant emitted into the preheader! This is just 1640 // using cast as a copy so BitCast (no-op cast) is appropriate 1641 BaseV = new BitCastInst(BaseV, BaseV->getType(), "preheaderinsert", 1642 PreInsertPt); 1643 } 1644 } 1645 1646 // Emit the code to add the immediate offset to the Phi value, just before 1647 // the instructions that we identified as using this stride and base. 1648 do { 1649 // FIXME: Use emitted users to emit other users. 1650 BasedUser &User = UsersToProcess.back(); 1651 1652 DOUT << " Examining "; 1653 if (User.isUseOfPostIncrementedValue) 1654 DOUT << "postinc"; 1655 else 1656 DOUT << "preinc"; 1657 DOUT << " use "; 1658 DEBUG(WriteAsOperand(*DOUT, UsersToProcess.back().OperandValToReplace, 1659 /*PrintType=*/false)); 1660 DOUT << " in Inst: " << *(User.Inst); 1661 1662 // If this instruction wants to use the post-incremented value, move it 1663 // after the post-inc and use its value instead of the PHI. 1664 Value *RewriteOp = User.Phi; 1665 if (User.isUseOfPostIncrementedValue) { 1666 RewriteOp = User.Phi->getIncomingValueForBlock(LatchBlock); 1667 // If this user is in the loop, make sure it is the last thing in the 1668 // loop to ensure it is dominated by the increment. In case it's the 1669 // only use of the iv, the increment instruction is already before the 1670 // use. 1671 if (L->contains(User.Inst->getParent()) && User.Inst != IVIncInsertPt) 1672 User.Inst->moveBefore(IVIncInsertPt); 1673 } 1674 1675 const SCEV* RewriteExpr = SE->getUnknown(RewriteOp); 1676 1677 if (SE->getEffectiveSCEVType(RewriteOp->getType()) != 1678 SE->getEffectiveSCEVType(ReplacedTy)) { 1679 assert(SE->getTypeSizeInBits(RewriteOp->getType()) > 1680 SE->getTypeSizeInBits(ReplacedTy) && 1681 "Unexpected widening cast!"); 1682 RewriteExpr = SE->getTruncateExpr(RewriteExpr, ReplacedTy); 1683 } 1684 1685 // If we had to insert new instructions for RewriteOp, we have to 1686 // consider that they may not have been able to end up immediately 1687 // next to RewriteOp, because non-PHI instructions may never precede 1688 // PHI instructions in a block. In this case, remember where the last 1689 // instruction was inserted so that if we're replacing a different 1690 // PHI node, we can use the later point to expand the final 1691 // RewriteExpr. 1692 Instruction *NewBasePt = dyn_cast<Instruction>(RewriteOp); 1693 if (RewriteOp == User.Phi) NewBasePt = 0; 1694 1695 // Clear the SCEVExpander's expression map so that we are guaranteed 1696 // to have the code emitted where we expect it. 1697 Rewriter.clear(); 1698 1699 // If we are reusing the iv, then it must be multiplied by a constant 1700 // factor to take advantage of the addressing mode scale component. 1701 if (!RewriteFactor->isZero()) { 1702 // If we're reusing an IV with a nonzero base (currently this happens 1703 // only when all reuses are outside the loop) subtract that base here. 1704 // The base has been used to initialize the PHI node but we don't want 1705 // it here. 1706 if (!ReuseIV.Base->isZero()) { 1707 const SCEV* typedBase = ReuseIV.Base; 1708 if (SE->getEffectiveSCEVType(RewriteExpr->getType()) != 1709 SE->getEffectiveSCEVType(ReuseIV.Base->getType())) { 1710 // It's possible the original IV is a larger type than the new IV, 1711 // in which case we have to truncate the Base. We checked in 1712 // RequiresTypeConversion that this is valid. 1713 assert(SE->getTypeSizeInBits(RewriteExpr->getType()) < 1714 SE->getTypeSizeInBits(ReuseIV.Base->getType()) && 1715 "Unexpected lengthening conversion!"); 1716 typedBase = SE->getTruncateExpr(ReuseIV.Base, 1717 RewriteExpr->getType()); 1718 } 1719 RewriteExpr = SE->getMinusSCEV(RewriteExpr, typedBase); 1720 } 1721 1722 // Multiply old variable, with base removed, by new scale factor. 1723 RewriteExpr = SE->getMulExpr(RewriteFactor, 1724 RewriteExpr); 1725 1726 // The common base is emitted in the loop preheader. But since we 1727 // are reusing an IV, it has not been used to initialize the PHI node. 1728 // Add it to the expression used to rewrite the uses. 1729 // When this use is outside the loop, we earlier subtracted the 1730 // common base, and are adding it back here. Use the same expression 1731 // as before, rather than CommonBaseV, so DAGCombiner will zap it. 1732 if (!CommonExprs->isZero()) { 1733 if (L->contains(User.Inst->getParent())) 1734 RewriteExpr = SE->getAddExpr(RewriteExpr, 1735 SE->getUnknown(CommonBaseV)); 1736 else 1737 RewriteExpr = SE->getAddExpr(RewriteExpr, CommonExprs); 1738 } 1739 } 1740 1741 // Now that we know what we need to do, insert code before User for the 1742 // immediate and any loop-variant expressions. 1743 if (BaseV) 1744 // Add BaseV to the PHI value if needed. 1745 RewriteExpr = SE->getAddExpr(RewriteExpr, SE->getUnknown(BaseV)); 1746 1747 User.RewriteInstructionToUseNewBase(RewriteExpr, NewBasePt, 1748 Rewriter, L, this, *LI, 1749 DeadInsts); 1750 1751 // Mark old value we replaced as possibly dead, so that it is eliminated 1752 // if we just replaced the last use of that value. 1753 DeadInsts.push_back(User.OperandValToReplace); 1754 1755 UsersToProcess.pop_back(); 1756 ++NumReduced; 1757 1758 // If there are any more users to process with the same base, process them 1759 // now. We sorted by base above, so we just have to check the last elt. 1760 } while (!UsersToProcess.empty() && UsersToProcess.back().Base == Base); 1761 // TODO: Next, find out which base index is the most common, pull it out. 1762 } 1763 1764 // IMPORTANT TODO: Figure out how to partition the IV's with this stride, but 1765 // different starting values, into different PHIs. 1766 } 1767 1768 /// FindIVUserForCond - If Cond has an operand that is an expression of an IV, 1769 /// set the IV user and stride information and return true, otherwise return 1770 /// false. 1771 bool LoopStrengthReduce::FindIVUserForCond(ICmpInst *Cond, IVStrideUse *&CondUse, 1772 const SCEV* const * &CondStride) { 1773 for (unsigned Stride = 0, e = IU->StrideOrder.size(); 1774 Stride != e && !CondUse; ++Stride) { 1775 std::map<const SCEV*, IVUsersOfOneStride *>::iterator SI = 1776 IU->IVUsesByStride.find(IU->StrideOrder[Stride]); 1777 assert(SI != IU->IVUsesByStride.end() && "Stride doesn't exist!"); 1778 1779 for (ilist<IVStrideUse>::iterator UI = SI->second->Users.begin(), 1780 E = SI->second->Users.end(); UI != E; ++UI) 1781 if (UI->getUser() == Cond) { 1782 // NOTE: we could handle setcc instructions with multiple uses here, but 1783 // InstCombine does it as well for simple uses, it's not clear that it 1784 // occurs enough in real life to handle. 1785 CondUse = UI; 1786 CondStride = &SI->first; 1787 return true; 1788 } 1789 } 1790 return false; 1791 } 1792 1793 namespace { 1794 // Constant strides come first which in turns are sorted by their absolute 1795 // values. If absolute values are the same, then positive strides comes first. 1796 // e.g. 1797 // 4, -1, X, 1, 2 ==> 1, -1, 2, 4, X 1798 struct StrideCompare { 1799 const ScalarEvolution *SE; 1800 explicit StrideCompare(const ScalarEvolution *se) : SE(se) {} 1801 1802 bool operator()(const SCEV* const &LHS, const SCEV* const &RHS) { 1803 const SCEVConstant *LHSC = dyn_cast<SCEVConstant>(LHS); 1804 const SCEVConstant *RHSC = dyn_cast<SCEVConstant>(RHS); 1805 if (LHSC && RHSC) { 1806 int64_t LV = LHSC->getValue()->getSExtValue(); 1807 int64_t RV = RHSC->getValue()->getSExtValue(); 1808 uint64_t ALV = (LV < 0) ? -LV : LV; 1809 uint64_t ARV = (RV < 0) ? -RV : RV; 1810 if (ALV == ARV) { 1811 if (LV != RV) 1812 return LV > RV; 1813 } else { 1814 return ALV < ARV; 1815 } 1816 1817 // If it's the same value but different type, sort by bit width so 1818 // that we emit larger induction variables before smaller 1819 // ones, letting the smaller be re-written in terms of larger ones. 1820 return SE->getTypeSizeInBits(RHS->getType()) < 1821 SE->getTypeSizeInBits(LHS->getType()); 1822 } 1823 return LHSC && !RHSC; 1824 } 1825 }; 1826 } 1827 1828 /// ChangeCompareStride - If a loop termination compare instruction is the 1829 /// only use of its stride, and the compaison is against a constant value, 1830 /// try eliminate the stride by moving the compare instruction to another 1831 /// stride and change its constant operand accordingly. e.g. 1832 /// 1833 /// loop: 1834 /// ... 1835 /// v1 = v1 + 3 1836 /// v2 = v2 + 1 1837 /// if (v2 < 10) goto loop 1838 /// => 1839 /// loop: 1840 /// ... 1841 /// v1 = v1 + 3 1842 /// if (v1 < 30) goto loop 1843 ICmpInst *LoopStrengthReduce::ChangeCompareStride(Loop *L, ICmpInst *Cond, 1844 IVStrideUse* &CondUse, 1845 const SCEV* const* &CondStride) { 1846 // If there's only one stride in the loop, there's nothing to do here. 1847 if (IU->StrideOrder.size() < 2) 1848 return Cond; 1849 // If there are other users of the condition's stride, don't bother 1850 // trying to change the condition because the stride will still 1851 // remain. 1852 std::map<const SCEV*, IVUsersOfOneStride *>::iterator I = 1853 IU->IVUsesByStride.find(*CondStride); 1854 if (I == IU->IVUsesByStride.end() || 1855 I->second->Users.size() != 1) 1856 return Cond; 1857 // Only handle constant strides for now. 1858 const SCEVConstant *SC = dyn_cast<SCEVConstant>(*CondStride); 1859 if (!SC) return Cond; 1860 1861 ICmpInst::Predicate Predicate = Cond->getPredicate(); 1862 int64_t CmpSSInt = SC->getValue()->getSExtValue(); 1863 unsigned BitWidth = SE->getTypeSizeInBits((*CondStride)->getType()); 1864 uint64_t SignBit = 1ULL << (BitWidth-1); 1865 const Type *CmpTy = Cond->getOperand(0)->getType(); 1866 const Type *NewCmpTy = NULL; 1867 unsigned TyBits = SE->getTypeSizeInBits(CmpTy); 1868 unsigned NewTyBits = 0; 1869 const SCEV* *NewStride = NULL; 1870 Value *NewCmpLHS = NULL; 1871 Value *NewCmpRHS = NULL; 1872 int64_t Scale = 1; 1873 const SCEV* NewOffset = SE->getIntegerSCEV(0, CmpTy); 1874 1875 if (ConstantInt *C = dyn_cast<ConstantInt>(Cond->getOperand(1))) { 1876 int64_t CmpVal = C->getValue().getSExtValue(); 1877 1878 // Check stride constant and the comparision constant signs to detect 1879 // overflow. 1880 if ((CmpVal & SignBit) != (CmpSSInt & SignBit)) 1881 return Cond; 1882 1883 // Look for a suitable stride / iv as replacement. 1884 for (unsigned i = 0, e = IU->StrideOrder.size(); i != e; ++i) { 1885 std::map<const SCEV*, IVUsersOfOneStride *>::iterator SI = 1886 IU->IVUsesByStride.find(IU->StrideOrder[i]); 1887 if (!isa<SCEVConstant>(SI->first)) 1888 continue; 1889 int64_t SSInt = cast<SCEVConstant>(SI->first)->getValue()->getSExtValue(); 1890 if (SSInt == CmpSSInt || 1891 abs64(SSInt) < abs64(CmpSSInt) || 1892 (SSInt % CmpSSInt) != 0) 1893 continue; 1894 1895 Scale = SSInt / CmpSSInt; 1896 int64_t NewCmpVal = CmpVal * Scale; 1897 APInt Mul = APInt(BitWidth*2, CmpVal, true); 1898 Mul = Mul * APInt(BitWidth*2, Scale, true); 1899 // Check for overflow. 1900 if (!Mul.isSignedIntN(BitWidth)) 1901 continue; 1902 // Check for overflow in the stride's type too. 1903 if (!Mul.isSignedIntN(SE->getTypeSizeInBits(SI->first->getType()))) 1904 continue; 1905 1906 // Watch out for overflow. 1907 if (ICmpInst::isSignedPredicate(Predicate) && 1908 (CmpVal & SignBit) != (NewCmpVal & SignBit)) 1909 continue; 1910 1911 if (NewCmpVal == CmpVal) 1912 continue; 1913 // Pick the best iv to use trying to avoid a cast. 1914 NewCmpLHS = NULL; 1915 for (ilist<IVStrideUse>::iterator UI = SI->second->Users.begin(), 1916 E = SI->second->Users.end(); UI != E; ++UI) { 1917 Value *Op = UI->getOperandValToReplace(); 1918 1919 // If the IVStrideUse implies a cast, check for an actual cast which 1920 // can be used to find the original IV expression. 1921 if (SE->getEffectiveSCEVType(Op->getType()) != 1922 SE->getEffectiveSCEVType(SI->first->getType())) { 1923 CastInst *CI = dyn_cast<CastInst>(Op); 1924 // If it's not a simple cast, it's complicated. 1925 if (!CI) 1926 continue; 1927 // If it's a cast from a type other than the stride type, 1928 // it's complicated. 1929 if (CI->getOperand(0)->getType() != SI->first->getType()) 1930 continue; 1931 // Ok, we found the IV expression in the stride's type. 1932 Op = CI->getOperand(0); 1933 } 1934 1935 NewCmpLHS = Op; 1936 if (NewCmpLHS->getType() == CmpTy) 1937 break; 1938 } 1939 if (!NewCmpLHS) 1940 continue; 1941 1942 NewCmpTy = NewCmpLHS->getType(); 1943 NewTyBits = SE->getTypeSizeInBits(NewCmpTy); 1944 const Type *NewCmpIntTy = IntegerType::get(NewTyBits); 1945 if (RequiresTypeConversion(NewCmpTy, CmpTy)) { 1946 // Check if it is possible to rewrite it using 1947 // an iv / stride of a smaller integer type. 1948 unsigned Bits = NewTyBits; 1949 if (ICmpInst::isSignedPredicate(Predicate)) 1950 --Bits; 1951 uint64_t Mask = (1ULL << Bits) - 1; 1952 if (((uint64_t)NewCmpVal & Mask) != (uint64_t)NewCmpVal) 1953 continue; 1954 } 1955 1956 // Don't rewrite if use offset is non-constant and the new type is 1957 // of a different type. 1958 // FIXME: too conservative? 1959 if (NewTyBits != TyBits && !isa<SCEVConstant>(CondUse->getOffset())) 1960 continue; 1961 1962 bool AllUsesAreAddresses = true; 1963 bool AllUsesAreOutsideLoop = true; 1964 std::vector<BasedUser> UsersToProcess; 1965 const SCEV* CommonExprs = CollectIVUsers(SI->first, *SI->second, L, 1966 AllUsesAreAddresses, 1967 AllUsesAreOutsideLoop, 1968 UsersToProcess); 1969 // Avoid rewriting the compare instruction with an iv of new stride 1970 // if it's likely the new stride uses will be rewritten using the 1971 // stride of the compare instruction. 1972 if (AllUsesAreAddresses && 1973 ValidScale(!CommonExprs->isZero(), Scale, UsersToProcess)) 1974 continue; 1975 1976 // Avoid rewriting the compare instruction with an iv which has 1977 // implicit extension or truncation built into it. 1978 // TODO: This is over-conservative. 1979 if (SE->getTypeSizeInBits(CondUse->getOffset()->getType()) != TyBits) 1980 continue; 1981 1982 // If scale is negative, use swapped predicate unless it's testing 1983 // for equality. 1984 if (Scale < 0 && !Cond->isEquality()) 1985 Predicate = ICmpInst::getSwappedPredicate(Predicate); 1986 1987 NewStride = &IU->StrideOrder[i]; 1988 if (!isa<PointerType>(NewCmpTy)) 1989 NewCmpRHS = ConstantInt::get(NewCmpTy, NewCmpVal); 1990 else { 1991 Constant *CI = ConstantInt::get(NewCmpIntTy, NewCmpVal); 1992 NewCmpRHS = ConstantExpr::getIntToPtr(CI, NewCmpTy); 1993 } 1994 NewOffset = TyBits == NewTyBits 1995 ? SE->getMulExpr(CondUse->getOffset(), 1996 SE->getConstant(CmpTy, Scale)) 1997 : SE->getConstant(NewCmpIntTy, 1998 cast<SCEVConstant>(CondUse->getOffset())->getValue() 1999 ->getSExtValue()*Scale); 2000 break; 2001 } 2002 } 2003 2004 // Forgo this transformation if it the increment happens to be 2005 // unfortunately positioned after the condition, and the condition 2006 // has multiple uses which prevent it from being moved immediately 2007 // before the branch. See 2008 // test/Transforms/LoopStrengthReduce/change-compare-stride-trickiness-*.ll 2009 // for an example of this situation. 2010 if (!Cond->hasOneUse()) { 2011 for (BasicBlock::iterator I = Cond, E = Cond->getParent()->end(); 2012 I != E; ++I) 2013 if (I == NewCmpLHS) 2014 return Cond; 2015 } 2016 2017 if (NewCmpRHS) { 2018 // Create a new compare instruction using new stride / iv. 2019 ICmpInst *OldCond = Cond; 2020 // Insert new compare instruction. 2021 Cond = new ICmpInst(Predicate, NewCmpLHS, NewCmpRHS, 2022 L->getHeader()->getName() + ".termcond", 2023 OldCond); 2024 2025 // Remove the old compare instruction. The old indvar is probably dead too. 2026 DeadInsts.push_back(CondUse->getOperandValToReplace()); 2027 OldCond->replaceAllUsesWith(Cond); 2028 OldCond->eraseFromParent(); 2029 2030 IU->IVUsesByStride[*NewStride]->addUser(NewOffset, Cond, NewCmpLHS); 2031 CondUse = &IU->IVUsesByStride[*NewStride]->Users.back(); 2032 CondStride = NewStride; 2033 ++NumEliminated; 2034 Changed = true; 2035 } 2036 2037 return Cond; 2038 } 2039 2040 /// OptimizeMax - Rewrite the loop's terminating condition if it uses 2041 /// a max computation. 2042 /// 2043 /// This is a narrow solution to a specific, but acute, problem. For loops 2044 /// like this: 2045 /// 2046 /// i = 0; 2047 /// do { 2048 /// p[i] = 0.0; 2049 /// } while (++i < n); 2050 /// 2051 /// the trip count isn't just 'n', because 'n' might not be positive. And 2052 /// unfortunately this can come up even for loops where the user didn't use 2053 /// a C do-while loop. For example, seemingly well-behaved top-test loops 2054 /// will commonly be lowered like this: 2055 // 2056 /// if (n > 0) { 2057 /// i = 0; 2058 /// do { 2059 /// p[i] = 0.0; 2060 /// } while (++i < n); 2061 /// } 2062 /// 2063 /// and then it's possible for subsequent optimization to obscure the if 2064 /// test in such a way that indvars can't find it. 2065 /// 2066 /// When indvars can't find the if test in loops like this, it creates a 2067 /// max expression, which allows it to give the loop a canonical 2068 /// induction variable: 2069 /// 2070 /// i = 0; 2071 /// max = n < 1 ? 1 : n; 2072 /// do { 2073 /// p[i] = 0.0; 2074 /// } while (++i != max); 2075 /// 2076 /// Canonical induction variables are necessary because the loop passes 2077 /// are designed around them. The most obvious example of this is the 2078 /// LoopInfo analysis, which doesn't remember trip count values. It 2079 /// expects to be able to rediscover the trip count each time it is 2080 /// needed, and it does this using a simple analyis that only succeeds if 2081 /// the loop has a canonical induction variable. 2082 /// 2083 /// However, when it comes time to generate code, the maximum operation 2084 /// can be quite costly, especially if it's inside of an outer loop. 2085 /// 2086 /// This function solves this problem by detecting this type of loop and 2087 /// rewriting their conditions from ICMP_NE back to ICMP_SLT, and deleting 2088 /// the instructions for the maximum computation. 2089 /// 2090 ICmpInst *LoopStrengthReduce::OptimizeMax(Loop *L, ICmpInst *Cond, 2091 IVStrideUse* &CondUse) { 2092 // Check that the loop matches the pattern we're looking for. 2093 if (Cond->getPredicate() != CmpInst::ICMP_EQ && 2094 Cond->getPredicate() != CmpInst::ICMP_NE) 2095 return Cond; 2096 2097 SelectInst *Sel = dyn_cast<SelectInst>(Cond->getOperand(1)); 2098 if (!Sel || !Sel->hasOneUse()) return Cond; 2099 2100 const SCEV* BackedgeTakenCount = SE->getBackedgeTakenCount(L); 2101 if (isa<SCEVCouldNotCompute>(BackedgeTakenCount)) 2102 return Cond; 2103 const SCEV* One = SE->getIntegerSCEV(1, BackedgeTakenCount->getType()); 2104 2105 // Add one to the backedge-taken count to get the trip count. 2106 const SCEV* IterationCount = SE->getAddExpr(BackedgeTakenCount, One); 2107 2108 // Check for a max calculation that matches the pattern. 2109 if (!isa<SCEVSMaxExpr>(IterationCount) && !isa<SCEVUMaxExpr>(IterationCount)) 2110 return Cond; 2111 const SCEVNAryExpr *Max = cast<SCEVNAryExpr>(IterationCount); 2112 if (Max != SE->getSCEV(Sel)) return Cond; 2113 2114 // To handle a max with more than two operands, this optimization would 2115 // require additional checking and setup. 2116 if (Max->getNumOperands() != 2) 2117 return Cond; 2118 2119 const SCEV* MaxLHS = Max->getOperand(0); 2120 const SCEV* MaxRHS = Max->getOperand(1); 2121 if (!MaxLHS || MaxLHS != One) return Cond; 2122 2123 // Check the relevant induction variable for conformance to 2124 // the pattern. 2125 const SCEV* IV = SE->getSCEV(Cond->getOperand(0)); 2126 const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(IV); 2127 if (!AR || !AR->isAffine() || 2128 AR->getStart() != One || 2129 AR->getStepRecurrence(*SE) != One) 2130 return Cond; 2131 2132 assert(AR->getLoop() == L && 2133 "Loop condition operand is an addrec in a different loop!"); 2134 2135 // Check the right operand of the select, and remember it, as it will 2136 // be used in the new comparison instruction. 2137 Value *NewRHS = 0; 2138 if (SE->getSCEV(Sel->getOperand(1)) == MaxRHS) 2139 NewRHS = Sel->getOperand(1); 2140 else if (SE->getSCEV(Sel->getOperand(2)) == MaxRHS) 2141 NewRHS = Sel->getOperand(2); 2142 if (!NewRHS) return Cond; 2143 2144 // Determine the new comparison opcode. It may be signed or unsigned, 2145 // and the original comparison may be either equality or inequality. 2146 CmpInst::Predicate Pred = 2147 isa<SCEVSMaxExpr>(Max) ? CmpInst::ICMP_SLT : CmpInst::ICMP_ULT; 2148 if (Cond->getPredicate() == CmpInst::ICMP_EQ) 2149 Pred = CmpInst::getInversePredicate(Pred); 2150 2151 // Ok, everything looks ok to change the condition into an SLT or SGE and 2152 // delete the max calculation. 2153 ICmpInst *NewCond = 2154 new ICmpInst(Pred, Cond->getOperand(0), NewRHS, "scmp", Cond); 2155 2156 // Delete the max calculation instructions. 2157 Cond->replaceAllUsesWith(NewCond); 2158 CondUse->setUser(NewCond); 2159 Instruction *Cmp = cast<Instruction>(Sel->getOperand(0)); 2160 Cond->eraseFromParent(); 2161 Sel->eraseFromParent(); 2162 if (Cmp->use_empty()) 2163 Cmp->eraseFromParent(); 2164 return NewCond; 2165 } 2166 2167 /// OptimizeShadowIV - If IV is used in a int-to-float cast 2168 /// inside the loop then try to eliminate the cast opeation. 2169 void LoopStrengthReduce::OptimizeShadowIV(Loop *L) { 2170 2171 const SCEV* BackedgeTakenCount = SE->getBackedgeTakenCount(L); 2172 if (isa<SCEVCouldNotCompute>(BackedgeTakenCount)) 2173 return; 2174 2175 for (unsigned Stride = 0, e = IU->StrideOrder.size(); Stride != e; 2176 ++Stride) { 2177 std::map<const SCEV*, IVUsersOfOneStride *>::iterator SI = 2178 IU->IVUsesByStride.find(IU->StrideOrder[Stride]); 2179 assert(SI != IU->IVUsesByStride.end() && "Stride doesn't exist!"); 2180 if (!isa<SCEVConstant>(SI->first)) 2181 continue; 2182 2183 for (ilist<IVStrideUse>::iterator UI = SI->second->Users.begin(), 2184 E = SI->second->Users.end(); UI != E; /* empty */) { 2185 ilist<IVStrideUse>::iterator CandidateUI = UI; 2186 ++UI; 2187 Instruction *ShadowUse = CandidateUI->getUser(); 2188 const Type *DestTy = NULL; 2189 2190 /* If shadow use is a int->float cast then insert a second IV 2191 to eliminate this cast. 2192 2193 for (unsigned i = 0; i < n; ++i) 2194 foo((double)i); 2195 2196 is transformed into 2197 2198 double d = 0.0; 2199 for (unsigned i = 0; i < n; ++i, ++d) 2200 foo(d); 2201 */ 2202 if (UIToFPInst *UCast = dyn_cast<UIToFPInst>(CandidateUI->getUser())) 2203 DestTy = UCast->getDestTy(); 2204 else if (SIToFPInst *SCast = dyn_cast<SIToFPInst>(CandidateUI->getUser())) 2205 DestTy = SCast->getDestTy(); 2206 if (!DestTy) continue; 2207 2208 if (TLI) { 2209 // If target does not support DestTy natively then do not apply 2210 // this transformation. 2211 MVT DVT = TLI->getValueType(DestTy); 2212 if (!TLI->isTypeLegal(DVT)) continue; 2213 } 2214 2215 PHINode *PH = dyn_cast<PHINode>(ShadowUse->getOperand(0)); 2216 if (!PH) continue; 2217 if (PH->getNumIncomingValues() != 2) continue; 2218 2219 const Type *SrcTy = PH->getType(); 2220 int Mantissa = DestTy->getFPMantissaWidth(); 2221 if (Mantissa == -1) continue; 2222 if ((int)SE->getTypeSizeInBits(SrcTy) > Mantissa) 2223 continue; 2224 2225 unsigned Entry, Latch; 2226 if (PH->getIncomingBlock(0) == L->getLoopPreheader()) { 2227 Entry = 0; 2228 Latch = 1; 2229 } else { 2230 Entry = 1; 2231 Latch = 0; 2232 } 2233 2234 ConstantInt *Init = dyn_cast<ConstantInt>(PH->getIncomingValue(Entry)); 2235 if (!Init) continue; 2236 Constant *NewInit = ConstantFP::get(DestTy, Init->getZExtValue()); 2237 2238 BinaryOperator *Incr = 2239 dyn_cast<BinaryOperator>(PH->getIncomingValue(Latch)); 2240 if (!Incr) continue; 2241 if (Incr->getOpcode() != Instruction::Add 2242 && Incr->getOpcode() != Instruction::Sub) 2243 continue; 2244 2245 /* Initialize new IV, double d = 0.0 in above example. */ 2246 ConstantInt *C = NULL; 2247 if (Incr->getOperand(0) == PH) 2248 C = dyn_cast<ConstantInt>(Incr->getOperand(1)); 2249 else if (Incr->getOperand(1) == PH) 2250 C = dyn_cast<ConstantInt>(Incr->getOperand(0)); 2251 else 2252 continue; 2253 2254 if (!C) continue; 2255 2256 /* Add new PHINode. */ 2257 PHINode *NewPH = PHINode::Create(DestTy, "IV.S.", PH); 2258 2259 /* create new increment. '++d' in above example. */ 2260 Constant *CFP = ConstantFP::get(DestTy, C->getZExtValue()); 2261 BinaryOperator *NewIncr = 2262 BinaryOperator::Create(Incr->getOpcode() == Instruction::Add ? 2263 Instruction::FAdd : Instruction::FSub, 2264 NewPH, CFP, "IV.S.next.", Incr); 2265 2266 NewPH->addIncoming(NewInit, PH->getIncomingBlock(Entry)); 2267 NewPH->addIncoming(NewIncr, PH->getIncomingBlock(Latch)); 2268 2269 /* Remove cast operation */ 2270 ShadowUse->replaceAllUsesWith(NewPH); 2271 ShadowUse->eraseFromParent(); 2272 NumShadow++; 2273 break; 2274 } 2275 } 2276 } 2277 2278 /// OptimizeIndvars - Now that IVUsesByStride is set up with all of the indvar 2279 /// uses in the loop, look to see if we can eliminate some, in favor of using 2280 /// common indvars for the different uses. 2281 void LoopStrengthReduce::OptimizeIndvars(Loop *L) { 2282 // TODO: implement optzns here. 2283 2284 OptimizeShadowIV(L); 2285 } 2286 2287 /// OptimizeLoopTermCond - Change loop terminating condition to use the 2288 /// postinc iv when possible. 2289 void LoopStrengthReduce::OptimizeLoopTermCond(Loop *L) { 2290 // Finally, get the terminating condition for the loop if possible. If we 2291 // can, we want to change it to use a post-incremented version of its 2292 // induction variable, to allow coalescing the live ranges for the IV into 2293 // one register value. 2294 BasicBlock *LatchBlock = L->getLoopLatch(); 2295 BasicBlock *ExitingBlock = L->getExitingBlock(); 2296 if (!ExitingBlock) 2297 // Multiple exits, just look at the exit in the latch block if there is one. 2298 ExitingBlock = LatchBlock; 2299 BranchInst *TermBr = dyn_cast<BranchInst>(ExitingBlock->getTerminator()); 2300 if (!TermBr) 2301 return; 2302 if (TermBr->isUnconditional() || !isa<ICmpInst>(TermBr->getCondition())) 2303 return; 2304 2305 // Search IVUsesByStride to find Cond's IVUse if there is one. 2306 IVStrideUse *CondUse = 0; 2307 const SCEV* const *CondStride = 0; 2308 ICmpInst *Cond = cast<ICmpInst>(TermBr->getCondition()); 2309 if (!FindIVUserForCond(Cond, CondUse, CondStride)) 2310 return; // setcc doesn't use the IV. 2311 2312 if (ExitingBlock != LatchBlock) { 2313 if (!Cond->hasOneUse()) 2314 // See below, we don't want the condition to be cloned. 2315 return; 2316 2317 // If exiting block is the latch block, we know it's safe and profitable to 2318 // transform the icmp to use post-inc iv. Otherwise do so only if it would 2319 // not reuse another iv and its iv would be reused by other uses. We are 2320 // optimizing for the case where the icmp is the only use of the iv. 2321 IVUsersOfOneStride &StrideUses = *IU->IVUsesByStride[*CondStride]; 2322 for (ilist<IVStrideUse>::iterator I = StrideUses.Users.begin(), 2323 E = StrideUses.Users.end(); I != E; ++I) { 2324 if (I->getUser() == Cond) 2325 continue; 2326 if (!I->isUseOfPostIncrementedValue()) 2327 return; 2328 } 2329 2330 // FIXME: This is expensive, and worse still ChangeCompareStride does a 2331 // similar check. Can we perform all the icmp related transformations after 2332 // StrengthReduceStridedIVUsers? 2333 if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(*CondStride)) { 2334 int64_t SInt = SC->getValue()->getSExtValue(); 2335 for (unsigned NewStride = 0, ee = IU->StrideOrder.size(); NewStride != ee; 2336 ++NewStride) { 2337 std::map<const SCEV*, IVUsersOfOneStride *>::iterator SI = 2338 IU->IVUsesByStride.find(IU->StrideOrder[NewStride]); 2339 if (!isa<SCEVConstant>(SI->first) || SI->first == *CondStride) 2340 continue; 2341 int64_t SSInt = 2342 cast<SCEVConstant>(SI->first)->getValue()->getSExtValue(); 2343 if (SSInt == SInt) 2344 return; // This can definitely be reused. 2345 if (unsigned(abs64(SSInt)) < SInt || (SSInt % SInt) != 0) 2346 continue; 2347 int64_t Scale = SSInt / SInt; 2348 bool AllUsesAreAddresses = true; 2349 bool AllUsesAreOutsideLoop = true; 2350 std::vector<BasedUser> UsersToProcess; 2351 const SCEV* CommonExprs = CollectIVUsers(SI->first, *SI->second, L, 2352 AllUsesAreAddresses, 2353 AllUsesAreOutsideLoop, 2354 UsersToProcess); 2355 // Avoid rewriting the compare instruction with an iv of new stride 2356 // if it's likely the new stride uses will be rewritten using the 2357 // stride of the compare instruction. 2358 if (AllUsesAreAddresses && 2359 ValidScale(!CommonExprs->isZero(), Scale, UsersToProcess)) 2360 return; 2361 } 2362 } 2363 2364 StrideNoReuse.insert(*CondStride); 2365 } 2366 2367 // If the trip count is computed in terms of a max (due to ScalarEvolution 2368 // being unable to find a sufficient guard, for example), change the loop 2369 // comparison to use SLT or ULT instead of NE. 2370 Cond = OptimizeMax(L, Cond, CondUse); 2371 2372 // If possible, change stride and operands of the compare instruction to 2373 // eliminate one stride. 2374 if (ExitingBlock == LatchBlock) 2375 Cond = ChangeCompareStride(L, Cond, CondUse, CondStride); 2376 2377 // It's possible for the setcc instruction to be anywhere in the loop, and 2378 // possible for it to have multiple users. If it is not immediately before 2379 // the latch block branch, move it. 2380 if (&*++BasicBlock::iterator(Cond) != (Instruction*)TermBr) { 2381 if (Cond->hasOneUse()) { // Condition has a single use, just move it. 2382 Cond->moveBefore(TermBr); 2383 } else { 2384 // Otherwise, clone the terminating condition and insert into the loopend. 2385 Cond = cast<ICmpInst>(Cond->clone()); 2386 Cond->setName(L->getHeader()->getName() + ".termcond"); 2387 LatchBlock->getInstList().insert(TermBr, Cond); 2388 2389 // Clone the IVUse, as the old use still exists! 2390 IU->IVUsesByStride[*CondStride]->addUser(CondUse->getOffset(), Cond, 2391 CondUse->getOperandValToReplace()); 2392 CondUse = &IU->IVUsesByStride[*CondStride]->Users.back(); 2393 } 2394 } 2395 2396 // If we get to here, we know that we can transform the setcc instruction to 2397 // use the post-incremented version of the IV, allowing us to coalesce the 2398 // live ranges for the IV correctly. 2399 CondUse->setOffset(SE->getMinusSCEV(CondUse->getOffset(), *CondStride)); 2400 CondUse->setIsUseOfPostIncrementedValue(true); 2401 Changed = true; 2402 2403 ++NumLoopCond; 2404 } 2405 2406 /// OptimizeLoopCountIV - If, after all sharing of IVs, the IV used for deciding 2407 /// when to exit the loop is used only for that purpose, try to rearrange things 2408 /// so it counts down to a test against zero. 2409 void LoopStrengthReduce::OptimizeLoopCountIV(Loop *L) { 2410 2411 // If the number of times the loop is executed isn't computable, give up. 2412 const SCEV* BackedgeTakenCount = SE->getBackedgeTakenCount(L); 2413 if (isa<SCEVCouldNotCompute>(BackedgeTakenCount)) 2414 return; 2415 2416 // Get the terminating condition for the loop if possible (this isn't 2417 // necessarily in the latch, or a block that's a predecessor of the header). 2418 if (!L->getExitBlock()) 2419 return; // More than one loop exit blocks. 2420 2421 // Okay, there is one exit block. Try to find the condition that causes the 2422 // loop to be exited. 2423 BasicBlock *ExitingBlock = L->getExitingBlock(); 2424 if (!ExitingBlock) 2425 return; // More than one block exiting! 2426 2427 // Okay, we've computed the exiting block. See what condition causes us to 2428 // exit. 2429 // 2430 // FIXME: we should be able to handle switch instructions (with a single exit) 2431 BranchInst *TermBr = dyn_cast<BranchInst>(ExitingBlock->getTerminator()); 2432 if (TermBr == 0) return; 2433 assert(TermBr->isConditional() && "If unconditional, it can't be in loop!"); 2434 if (!isa<ICmpInst>(TermBr->getCondition())) 2435 return; 2436 ICmpInst *Cond = cast<ICmpInst>(TermBr->getCondition()); 2437 2438 // Handle only tests for equality for the moment, and only stride 1. 2439 if (Cond->getPredicate() != CmpInst::ICMP_EQ) 2440 return; 2441 const SCEV* IV = SE->getSCEV(Cond->getOperand(0)); 2442 const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(IV); 2443 const SCEV* One = SE->getIntegerSCEV(1, BackedgeTakenCount->getType()); 2444 if (!AR || !AR->isAffine() || AR->getStepRecurrence(*SE) != One) 2445 return; 2446 // If the RHS of the comparison is defined inside the loop, the rewrite 2447 // cannot be done. 2448 if (Instruction *CR = dyn_cast<Instruction>(Cond->getOperand(1))) 2449 if (L->contains(CR->getParent())) 2450 return; 2451 2452 // Make sure the IV is only used for counting. Value may be preinc or 2453 // postinc; 2 uses in either case. 2454 if (!Cond->getOperand(0)->hasNUses(2)) 2455 return; 2456 PHINode *phi = dyn_cast<PHINode>(Cond->getOperand(0)); 2457 Instruction *incr; 2458 if (phi && phi->getParent()==L->getHeader()) { 2459 // value tested is preinc. Find the increment. 2460 // A CmpInst is not a BinaryOperator; we depend on this. 2461 Instruction::use_iterator UI = phi->use_begin(); 2462 incr = dyn_cast<BinaryOperator>(UI); 2463 if (!incr) 2464 incr = dyn_cast<BinaryOperator>(++UI); 2465 // 1 use for postinc value, the phi. Unnecessarily conservative? 2466 if (!incr || !incr->hasOneUse() || incr->getOpcode()!=Instruction::Add) 2467 return; 2468 } else { 2469 // Value tested is postinc. Find the phi node. 2470 incr = dyn_cast<BinaryOperator>(Cond->getOperand(0)); 2471 if (!incr || incr->getOpcode()!=Instruction::Add) 2472 return; 2473 2474 Instruction::use_iterator UI = Cond->getOperand(0)->use_begin(); 2475 phi = dyn_cast<PHINode>(UI); 2476 if (!phi) 2477 phi = dyn_cast<PHINode>(++UI); 2478 // 1 use for preinc value, the increment. 2479 if (!phi || phi->getParent()!=L->getHeader() || !phi->hasOneUse()) 2480 return; 2481 } 2482 2483 // Replace the increment with a decrement. 2484 BinaryOperator *decr = 2485 BinaryOperator::Create(Instruction::Sub, incr->getOperand(0), 2486 incr->getOperand(1), "tmp", incr); 2487 incr->replaceAllUsesWith(decr); 2488 incr->eraseFromParent(); 2489 2490 // Substitute endval-startval for the original startval, and 0 for the 2491 // original endval. Since we're only testing for equality this is OK even 2492 // if the computation wraps around. 2493 BasicBlock *Preheader = L->getLoopPreheader(); 2494 Instruction *PreInsertPt = Preheader->getTerminator(); 2495 int inBlock = L->contains(phi->getIncomingBlock(0)) ? 1 : 0; 2496 Value *startVal = phi->getIncomingValue(inBlock); 2497 Value *endVal = Cond->getOperand(1); 2498 // FIXME check for case where both are constant 2499 Constant* Zero = ConstantInt::get(Cond->getOperand(1)->getType(), 0); 2500 BinaryOperator *NewStartVal = 2501 BinaryOperator::Create(Instruction::Sub, endVal, startVal, 2502 "tmp", PreInsertPt); 2503 phi->setIncomingValue(inBlock, NewStartVal); 2504 Cond->setOperand(1, Zero); 2505 2506 Changed = true; 2507 } 2508 2509 bool LoopStrengthReduce::runOnLoop(Loop *L, LPPassManager &LPM) { 2510 2511 IU = &getAnalysis<IVUsers>(); 2512 LI = &getAnalysis<LoopInfo>(); 2513 DT = &getAnalysis<DominatorTree>(); 2514 SE = &getAnalysis<ScalarEvolution>(); 2515 Changed = false; 2516 2517 if (!IU->IVUsesByStride.empty()) { 2518 #ifndef NDEBUG 2519 DOUT << "\nLSR on \"" << L->getHeader()->getParent()->getNameStart() 2520 << "\" "; 2521 DEBUG(L->dump()); 2522 #endif 2523 2524 // Sort the StrideOrder so we process larger strides first. 2525 std::stable_sort(IU->StrideOrder.begin(), IU->StrideOrder.end(), 2526 StrideCompare(SE)); 2527 2528 // Optimize induction variables. Some indvar uses can be transformed to use 2529 // strides that will be needed for other purposes. A common example of this 2530 // is the exit test for the loop, which can often be rewritten to use the 2531 // computation of some other indvar to decide when to terminate the loop. 2532 OptimizeIndvars(L); 2533 2534 // Change loop terminating condition to use the postinc iv when possible 2535 // and optimize loop terminating compare. FIXME: Move this after 2536 // StrengthReduceStridedIVUsers? 2537 OptimizeLoopTermCond(L); 2538 2539 // FIXME: We can shrink overlarge IV's here. e.g. if the code has 2540 // computation in i64 values and the target doesn't support i64, demote 2541 // the computation to 32-bit if safe. 2542 2543 // FIXME: Attempt to reuse values across multiple IV's. In particular, we 2544 // could have something like "for(i) { foo(i*8); bar(i*16) }", which should 2545 // be codegened as "for (j = 0;; j+=8) { foo(j); bar(j+j); }" on X86/PPC. 2546 // Need to be careful that IV's are all the same type. Only works for 2547 // intptr_t indvars. 2548 2549 // IVsByStride keeps IVs for one particular loop. 2550 assert(IVsByStride.empty() && "Stale entries in IVsByStride?"); 2551 2552 // Note: this processes each stride/type pair individually. All users 2553 // passed into StrengthReduceStridedIVUsers have the same type AND stride. 2554 // Also, note that we iterate over IVUsesByStride indirectly by using 2555 // StrideOrder. This extra layer of indirection makes the ordering of 2556 // strides deterministic - not dependent on map order. 2557 for (unsigned Stride = 0, e = IU->StrideOrder.size(); 2558 Stride != e; ++Stride) { 2559 std::map<const SCEV*, IVUsersOfOneStride *>::iterator SI = 2560 IU->IVUsesByStride.find(IU->StrideOrder[Stride]); 2561 assert(SI != IU->IVUsesByStride.end() && "Stride doesn't exist!"); 2562 // FIXME: Generalize to non-affine IV's. 2563 if (!SI->first->isLoopInvariant(L)) 2564 continue; 2565 StrengthReduceStridedIVUsers(SI->first, *SI->second, L); 2566 } 2567 } 2568 2569 // After all sharing is done, see if we can adjust the loop to test against 2570 // zero instead of counting up to a maximum. This is usually faster. 2571 OptimizeLoopCountIV(L); 2572 2573 // We're done analyzing this loop; release all the state we built up for it. 2574 IVsByStride.clear(); 2575 StrideNoReuse.clear(); 2576 2577 // Clean up after ourselves 2578 if (!DeadInsts.empty()) 2579 DeleteTriviallyDeadInstructions(); 2580 2581 // At this point, it is worth checking to see if any recurrence PHIs are also 2582 // dead, so that we can remove them as well. 2583 DeleteDeadPHIs(L->getHeader()); 2584 2585 return Changed; 2586 } 2587