1 //===- LoopInterchange.cpp - Loop interchange pass------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This Pass handles loop interchange transform. 11 // This pass interchanges loops to provide a more cache-friendly memory access 12 // patterns. 13 // 14 //===----------------------------------------------------------------------===// 15 16 #include "llvm/ADT/SmallVector.h" 17 #include "llvm/Analysis/AliasAnalysis.h" 18 #include "llvm/Analysis/AssumptionCache.h" 19 #include "llvm/Analysis/BlockFrequencyInfo.h" 20 #include "llvm/Analysis/CodeMetrics.h" 21 #include "llvm/Analysis/DependenceAnalysis.h" 22 #include "llvm/Analysis/LoopInfo.h" 23 #include "llvm/Analysis/LoopIterator.h" 24 #include "llvm/Analysis/LoopPass.h" 25 #include "llvm/Analysis/OptimizationDiagnosticInfo.h" 26 #include "llvm/Analysis/ScalarEvolution.h" 27 #include "llvm/Analysis/ScalarEvolutionExpander.h" 28 #include "llvm/Analysis/ScalarEvolutionExpressions.h" 29 #include "llvm/Analysis/TargetTransformInfo.h" 30 #include "llvm/Analysis/ValueTracking.h" 31 #include "llvm/IR/Dominators.h" 32 #include "llvm/IR/Function.h" 33 #include "llvm/IR/IRBuilder.h" 34 #include "llvm/IR/InstIterator.h" 35 #include "llvm/IR/IntrinsicInst.h" 36 #include "llvm/IR/Module.h" 37 #include "llvm/Pass.h" 38 #include "llvm/Support/Debug.h" 39 #include "llvm/Support/raw_ostream.h" 40 #include "llvm/Transforms/Scalar.h" 41 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 42 #include "llvm/Transforms/Utils/LoopUtils.h" 43 44 using namespace llvm; 45 46 #define DEBUG_TYPE "loop-interchange" 47 48 static cl::opt<int> LoopInterchangeCostThreshold( 49 "loop-interchange-threshold", cl::init(0), cl::Hidden, 50 cl::desc("Interchange if you gain more than this number")); 51 52 namespace { 53 54 typedef SmallVector<Loop *, 8> LoopVector; 55 56 // TODO: Check if we can use a sparse matrix here. 57 typedef std::vector<std::vector<char>> CharMatrix; 58 59 // Maximum number of dependencies that can be handled in the dependency matrix. 60 static const unsigned MaxMemInstrCount = 100; 61 62 // Maximum loop depth supported. 63 static const unsigned MaxLoopNestDepth = 10; 64 65 struct LoopInterchange; 66 67 #ifdef DUMP_DEP_MATRICIES 68 void printDepMatrix(CharMatrix &DepMatrix) { 69 for (auto &Row : DepMatrix) { 70 for (auto D : Row) 71 DEBUG(dbgs() << D << " "); 72 DEBUG(dbgs() << "\n"); 73 } 74 } 75 #endif 76 77 static bool populateDependencyMatrix(CharMatrix &DepMatrix, unsigned Level, 78 Loop *L, DependenceInfo *DI) { 79 typedef SmallVector<Value *, 16> ValueVector; 80 ValueVector MemInstr; 81 82 // For each block. 83 for (BasicBlock *BB : L->blocks()) { 84 // Scan the BB and collect legal loads and stores. 85 for (Instruction &I : *BB) { 86 if (!isa<Instruction>(I)) 87 return false; 88 if (auto *Ld = dyn_cast<LoadInst>(&I)) { 89 if (!Ld->isSimple()) 90 return false; 91 MemInstr.push_back(&I); 92 } else if (auto *St = dyn_cast<StoreInst>(&I)) { 93 if (!St->isSimple()) 94 return false; 95 MemInstr.push_back(&I); 96 } 97 } 98 } 99 100 DEBUG(dbgs() << "Found " << MemInstr.size() 101 << " Loads and Stores to analyze\n"); 102 103 ValueVector::iterator I, IE, J, JE; 104 105 for (I = MemInstr.begin(), IE = MemInstr.end(); I != IE; ++I) { 106 for (J = I, JE = MemInstr.end(); J != JE; ++J) { 107 std::vector<char> Dep; 108 Instruction *Src = cast<Instruction>(*I); 109 Instruction *Dst = cast<Instruction>(*J); 110 if (Src == Dst) 111 continue; 112 // Ignore Input dependencies. 113 if (isa<LoadInst>(Src) && isa<LoadInst>(Dst)) 114 continue; 115 // Track Output, Flow, and Anti dependencies. 116 if (auto D = DI->depends(Src, Dst, true)) { 117 assert(D->isOrdered() && "Expected an output, flow or anti dep."); 118 DEBUG(StringRef DepType = 119 D->isFlow() ? "flow" : D->isAnti() ? "anti" : "output"; 120 dbgs() << "Found " << DepType 121 << " dependency between Src and Dst\n" 122 << " Src:" << *Src << "\n Dst:" << *Dst << '\n'); 123 unsigned Levels = D->getLevels(); 124 char Direction; 125 for (unsigned II = 1; II <= Levels; ++II) { 126 const SCEV *Distance = D->getDistance(II); 127 const SCEVConstant *SCEVConst = 128 dyn_cast_or_null<SCEVConstant>(Distance); 129 if (SCEVConst) { 130 const ConstantInt *CI = SCEVConst->getValue(); 131 if (CI->isNegative()) 132 Direction = '<'; 133 else if (CI->isZero()) 134 Direction = '='; 135 else 136 Direction = '>'; 137 Dep.push_back(Direction); 138 } else if (D->isScalar(II)) { 139 Direction = 'S'; 140 Dep.push_back(Direction); 141 } else { 142 unsigned Dir = D->getDirection(II); 143 if (Dir == Dependence::DVEntry::LT || 144 Dir == Dependence::DVEntry::LE) 145 Direction = '<'; 146 else if (Dir == Dependence::DVEntry::GT || 147 Dir == Dependence::DVEntry::GE) 148 Direction = '>'; 149 else if (Dir == Dependence::DVEntry::EQ) 150 Direction = '='; 151 else 152 Direction = '*'; 153 Dep.push_back(Direction); 154 } 155 } 156 while (Dep.size() != Level) { 157 Dep.push_back('I'); 158 } 159 160 DepMatrix.push_back(Dep); 161 if (DepMatrix.size() > MaxMemInstrCount) { 162 DEBUG(dbgs() << "Cannot handle more than " << MaxMemInstrCount 163 << " dependencies inside loop\n"); 164 return false; 165 } 166 } 167 } 168 } 169 170 // We don't have a DepMatrix to check legality return false. 171 if (DepMatrix.size() == 0) 172 return false; 173 return true; 174 } 175 176 // A loop is moved from index 'from' to an index 'to'. Update the Dependence 177 // matrix by exchanging the two columns. 178 static void interChangeDependencies(CharMatrix &DepMatrix, unsigned FromIndx, 179 unsigned ToIndx) { 180 unsigned numRows = DepMatrix.size(); 181 for (unsigned i = 0; i < numRows; ++i) { 182 char TmpVal = DepMatrix[i][ToIndx]; 183 DepMatrix[i][ToIndx] = DepMatrix[i][FromIndx]; 184 DepMatrix[i][FromIndx] = TmpVal; 185 } 186 } 187 188 // Checks if outermost non '=','S'or'I' dependence in the dependence matrix is 189 // '>' 190 static bool isOuterMostDepPositive(CharMatrix &DepMatrix, unsigned Row, 191 unsigned Column) { 192 for (unsigned i = 0; i <= Column; ++i) { 193 if (DepMatrix[Row][i] == '<') 194 return false; 195 if (DepMatrix[Row][i] == '>') 196 return true; 197 } 198 // All dependencies were '=','S' or 'I' 199 return false; 200 } 201 202 // Checks if no dependence exist in the dependency matrix in Row before Column. 203 static bool containsNoDependence(CharMatrix &DepMatrix, unsigned Row, 204 unsigned Column) { 205 for (unsigned i = 0; i < Column; ++i) { 206 if (DepMatrix[Row][i] != '=' && DepMatrix[Row][i] != 'S' && 207 DepMatrix[Row][i] != 'I') 208 return false; 209 } 210 return true; 211 } 212 213 static bool validDepInterchange(CharMatrix &DepMatrix, unsigned Row, 214 unsigned OuterLoopId, char InnerDep, 215 char OuterDep) { 216 217 if (isOuterMostDepPositive(DepMatrix, Row, OuterLoopId)) 218 return false; 219 220 if (InnerDep == OuterDep) 221 return true; 222 223 // It is legal to interchange if and only if after interchange no row has a 224 // '>' direction as the leftmost non-'='. 225 226 if (InnerDep == '=' || InnerDep == 'S' || InnerDep == 'I') 227 return true; 228 229 if (InnerDep == '<') 230 return true; 231 232 if (InnerDep == '>') { 233 // If OuterLoopId represents outermost loop then interchanging will make the 234 // 1st dependency as '>' 235 if (OuterLoopId == 0) 236 return false; 237 238 // If all dependencies before OuterloopId are '=','S'or 'I'. Then 239 // interchanging will result in this row having an outermost non '=' 240 // dependency of '>' 241 if (!containsNoDependence(DepMatrix, Row, OuterLoopId)) 242 return true; 243 } 244 245 return false; 246 } 247 248 // Checks if it is legal to interchange 2 loops. 249 // [Theorem] A permutation of the loops in a perfect nest is legal if and only 250 // if the direction matrix, after the same permutation is applied to its 251 // columns, has no ">" direction as the leftmost non-"=" direction in any row. 252 static bool isLegalToInterChangeLoops(CharMatrix &DepMatrix, 253 unsigned InnerLoopId, 254 unsigned OuterLoopId) { 255 256 unsigned NumRows = DepMatrix.size(); 257 // For each row check if it is valid to interchange. 258 for (unsigned Row = 0; Row < NumRows; ++Row) { 259 char InnerDep = DepMatrix[Row][InnerLoopId]; 260 char OuterDep = DepMatrix[Row][OuterLoopId]; 261 if (InnerDep == '*' || OuterDep == '*') 262 return false; 263 if (!validDepInterchange(DepMatrix, Row, OuterLoopId, InnerDep, OuterDep)) 264 return false; 265 } 266 return true; 267 } 268 269 static void populateWorklist(Loop &L, SmallVector<LoopVector, 8> &V) { 270 271 DEBUG(dbgs() << "Calling populateWorklist on Func: " 272 << L.getHeader()->getParent()->getName() << " Loop: %" 273 << L.getHeader()->getName() << '\n'); 274 LoopVector LoopList; 275 Loop *CurrentLoop = &L; 276 const std::vector<Loop *> *Vec = &CurrentLoop->getSubLoops(); 277 while (!Vec->empty()) { 278 // The current loop has multiple subloops in it hence it is not tightly 279 // nested. 280 // Discard all loops above it added into Worklist. 281 if (Vec->size() != 1) { 282 LoopList.clear(); 283 return; 284 } 285 LoopList.push_back(CurrentLoop); 286 CurrentLoop = Vec->front(); 287 Vec = &CurrentLoop->getSubLoops(); 288 } 289 LoopList.push_back(CurrentLoop); 290 V.push_back(std::move(LoopList)); 291 } 292 293 static PHINode *getInductionVariable(Loop *L, ScalarEvolution *SE) { 294 PHINode *InnerIndexVar = L->getCanonicalInductionVariable(); 295 if (InnerIndexVar) 296 return InnerIndexVar; 297 if (L->getLoopLatch() == nullptr || L->getLoopPredecessor() == nullptr) 298 return nullptr; 299 for (BasicBlock::iterator I = L->getHeader()->begin(); isa<PHINode>(I); ++I) { 300 PHINode *PhiVar = cast<PHINode>(I); 301 Type *PhiTy = PhiVar->getType(); 302 if (!PhiTy->isIntegerTy() && !PhiTy->isFloatingPointTy() && 303 !PhiTy->isPointerTy()) 304 return nullptr; 305 const SCEVAddRecExpr *AddRec = 306 dyn_cast<SCEVAddRecExpr>(SE->getSCEV(PhiVar)); 307 if (!AddRec || !AddRec->isAffine()) 308 continue; 309 const SCEV *Step = AddRec->getStepRecurrence(*SE); 310 if (!isa<SCEVConstant>(Step)) 311 continue; 312 // Found the induction variable. 313 // FIXME: Handle loops with more than one induction variable. Note that, 314 // currently, legality makes sure we have only one induction variable. 315 return PhiVar; 316 } 317 return nullptr; 318 } 319 320 /// LoopInterchangeLegality checks if it is legal to interchange the loop. 321 class LoopInterchangeLegality { 322 public: 323 LoopInterchangeLegality(Loop *Outer, Loop *Inner, ScalarEvolution *SE, 324 LoopInfo *LI, DominatorTree *DT, bool PreserveLCSSA, 325 OptimizationRemarkEmitter *ORE) 326 : OuterLoop(Outer), InnerLoop(Inner), SE(SE), LI(LI), DT(DT), 327 PreserveLCSSA(PreserveLCSSA), ORE(ORE), InnerLoopHasReduction(false) {} 328 329 /// Check if the loops can be interchanged. 330 bool canInterchangeLoops(unsigned InnerLoopId, unsigned OuterLoopId, 331 CharMatrix &DepMatrix); 332 /// Check if the loop structure is understood. We do not handle triangular 333 /// loops for now. 334 bool isLoopStructureUnderstood(PHINode *InnerInductionVar); 335 336 bool currentLimitations(); 337 338 bool hasInnerLoopReduction() { return InnerLoopHasReduction; } 339 340 private: 341 bool tightlyNested(Loop *Outer, Loop *Inner); 342 bool containsUnsafeInstructionsInHeader(BasicBlock *BB); 343 bool areAllUsesReductions(Instruction *Ins, Loop *L); 344 bool containsUnsafeInstructionsInLatch(BasicBlock *BB); 345 bool findInductionAndReductions(Loop *L, 346 SmallVector<PHINode *, 8> &Inductions, 347 SmallVector<PHINode *, 8> &Reductions); 348 Loop *OuterLoop; 349 Loop *InnerLoop; 350 351 ScalarEvolution *SE; 352 LoopInfo *LI; 353 DominatorTree *DT; 354 bool PreserveLCSSA; 355 /// Interface to emit optimization remarks. 356 OptimizationRemarkEmitter *ORE; 357 358 bool InnerLoopHasReduction; 359 }; 360 361 /// LoopInterchangeProfitability checks if it is profitable to interchange the 362 /// loop. 363 class LoopInterchangeProfitability { 364 public: 365 LoopInterchangeProfitability(Loop *Outer, Loop *Inner, ScalarEvolution *SE, 366 OptimizationRemarkEmitter *ORE) 367 : OuterLoop(Outer), InnerLoop(Inner), SE(SE), ORE(ORE) {} 368 369 /// Check if the loop interchange is profitable. 370 bool isProfitable(unsigned InnerLoopId, unsigned OuterLoopId, 371 CharMatrix &DepMatrix); 372 373 private: 374 int getInstrOrderCost(); 375 376 Loop *OuterLoop; 377 Loop *InnerLoop; 378 379 /// Scev analysis. 380 ScalarEvolution *SE; 381 /// Interface to emit optimization remarks. 382 OptimizationRemarkEmitter *ORE; 383 }; 384 385 /// LoopInterchangeTransform interchanges the loop. 386 class LoopInterchangeTransform { 387 public: 388 LoopInterchangeTransform(Loop *Outer, Loop *Inner, ScalarEvolution *SE, 389 LoopInfo *LI, DominatorTree *DT, 390 BasicBlock *LoopNestExit, 391 bool InnerLoopContainsReductions) 392 : OuterLoop(Outer), InnerLoop(Inner), SE(SE), LI(LI), DT(DT), 393 LoopExit(LoopNestExit), 394 InnerLoopHasReduction(InnerLoopContainsReductions) {} 395 396 /// Interchange OuterLoop and InnerLoop. 397 bool transform(); 398 void restructureLoops(Loop *InnerLoop, Loop *OuterLoop); 399 void removeChildLoop(Loop *OuterLoop, Loop *InnerLoop); 400 401 private: 402 void splitInnerLoopLatch(Instruction *); 403 void splitInnerLoopHeader(); 404 bool adjustLoopLinks(); 405 void adjustLoopPreheaders(); 406 bool adjustLoopBranches(); 407 void updateIncomingBlock(BasicBlock *CurrBlock, BasicBlock *OldPred, 408 BasicBlock *NewPred); 409 410 Loop *OuterLoop; 411 Loop *InnerLoop; 412 413 /// Scev analysis. 414 ScalarEvolution *SE; 415 LoopInfo *LI; 416 DominatorTree *DT; 417 BasicBlock *LoopExit; 418 bool InnerLoopHasReduction; 419 }; 420 421 // Main LoopInterchange Pass. 422 struct LoopInterchange : public FunctionPass { 423 static char ID; 424 ScalarEvolution *SE; 425 LoopInfo *LI; 426 DependenceInfo *DI; 427 DominatorTree *DT; 428 bool PreserveLCSSA; 429 /// Interface to emit optimization remarks. 430 OptimizationRemarkEmitter *ORE; 431 432 LoopInterchange() 433 : FunctionPass(ID), SE(nullptr), LI(nullptr), DI(nullptr), DT(nullptr) { 434 initializeLoopInterchangePass(*PassRegistry::getPassRegistry()); 435 } 436 437 void getAnalysisUsage(AnalysisUsage &AU) const override { 438 AU.addRequired<ScalarEvolutionWrapperPass>(); 439 AU.addRequired<AAResultsWrapperPass>(); 440 AU.addRequired<DominatorTreeWrapperPass>(); 441 AU.addRequired<LoopInfoWrapperPass>(); 442 AU.addRequired<DependenceAnalysisWrapperPass>(); 443 AU.addRequiredID(LoopSimplifyID); 444 AU.addRequiredID(LCSSAID); 445 AU.addRequired<OptimizationRemarkEmitterWrapperPass>(); 446 } 447 448 bool runOnFunction(Function &F) override { 449 if (skipFunction(F)) 450 return false; 451 452 SE = &getAnalysis<ScalarEvolutionWrapperPass>().getSE(); 453 LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo(); 454 DI = &getAnalysis<DependenceAnalysisWrapperPass>().getDI(); 455 auto *DTWP = getAnalysisIfAvailable<DominatorTreeWrapperPass>(); 456 DT = DTWP ? &DTWP->getDomTree() : nullptr; 457 ORE = &getAnalysis<OptimizationRemarkEmitterWrapperPass>().getORE(); 458 PreserveLCSSA = mustPreserveAnalysisID(LCSSAID); 459 460 // Build up a worklist of loop pairs to analyze. 461 SmallVector<LoopVector, 8> Worklist; 462 463 for (Loop *L : *LI) 464 populateWorklist(*L, Worklist); 465 466 DEBUG(dbgs() << "Worklist size = " << Worklist.size() << "\n"); 467 bool Changed = true; 468 while (!Worklist.empty()) { 469 LoopVector LoopList = Worklist.pop_back_val(); 470 Changed = processLoopList(LoopList, F); 471 } 472 return Changed; 473 } 474 475 bool isComputableLoopNest(LoopVector LoopList) { 476 for (Loop *L : LoopList) { 477 const SCEV *ExitCountOuter = SE->getBackedgeTakenCount(L); 478 if (ExitCountOuter == SE->getCouldNotCompute()) { 479 DEBUG(dbgs() << "Couldn't compute backedge count\n"); 480 return false; 481 } 482 if (L->getNumBackEdges() != 1) { 483 DEBUG(dbgs() << "NumBackEdges is not equal to 1\n"); 484 return false; 485 } 486 if (!L->getExitingBlock()) { 487 DEBUG(dbgs() << "Loop doesn't have unique exit block\n"); 488 return false; 489 } 490 } 491 return true; 492 } 493 494 unsigned selectLoopForInterchange(const LoopVector &LoopList) { 495 // TODO: Add a better heuristic to select the loop to be interchanged based 496 // on the dependence matrix. Currently we select the innermost loop. 497 return LoopList.size() - 1; 498 } 499 500 bool processLoopList(LoopVector LoopList, Function &F) { 501 502 bool Changed = false; 503 unsigned LoopNestDepth = LoopList.size(); 504 if (LoopNestDepth < 2) { 505 DEBUG(dbgs() << "Loop doesn't contain minimum nesting level.\n"); 506 return false; 507 } 508 if (LoopNestDepth > MaxLoopNestDepth) { 509 DEBUG(dbgs() << "Cannot handle loops of depth greater than " 510 << MaxLoopNestDepth << "\n"); 511 return false; 512 } 513 if (!isComputableLoopNest(LoopList)) { 514 DEBUG(dbgs() << "Not valid loop candidate for interchange\n"); 515 return false; 516 } 517 518 DEBUG(dbgs() << "Processing LoopList of size = " << LoopNestDepth << "\n"); 519 520 CharMatrix DependencyMatrix; 521 Loop *OuterMostLoop = *(LoopList.begin()); 522 if (!populateDependencyMatrix(DependencyMatrix, LoopNestDepth, 523 OuterMostLoop, DI)) { 524 DEBUG(dbgs() << "Populating dependency matrix failed\n"); 525 return false; 526 } 527 #ifdef DUMP_DEP_MATRICIES 528 DEBUG(dbgs() << "Dependence before interchange\n"); 529 printDepMatrix(DependencyMatrix); 530 #endif 531 532 BasicBlock *OuterMostLoopLatch = OuterMostLoop->getLoopLatch(); 533 BranchInst *OuterMostLoopLatchBI = 534 dyn_cast<BranchInst>(OuterMostLoopLatch->getTerminator()); 535 if (!OuterMostLoopLatchBI) 536 return false; 537 538 // Since we currently do not handle LCSSA PHI's any failure in loop 539 // condition will now branch to LoopNestExit. 540 // TODO: This should be removed once we handle LCSSA PHI nodes. 541 542 // Get the Outermost loop exit. 543 BasicBlock *LoopNestExit; 544 if (OuterMostLoopLatchBI->getSuccessor(0) == OuterMostLoop->getHeader()) 545 LoopNestExit = OuterMostLoopLatchBI->getSuccessor(1); 546 else 547 LoopNestExit = OuterMostLoopLatchBI->getSuccessor(0); 548 549 if (isa<PHINode>(LoopNestExit->begin())) { 550 DEBUG(dbgs() << "PHI Nodes in loop nest exit is not handled for now " 551 "since on failure all loops branch to loop nest exit.\n"); 552 return false; 553 } 554 555 unsigned SelecLoopId = selectLoopForInterchange(LoopList); 556 // Move the selected loop outwards to the best possible position. 557 for (unsigned i = SelecLoopId; i > 0; i--) { 558 bool Interchanged = 559 processLoop(LoopList, i, i - 1, LoopNestExit, DependencyMatrix); 560 if (!Interchanged) 561 return Changed; 562 // Loops interchanged reflect the same in LoopList 563 std::swap(LoopList[i - 1], LoopList[i]); 564 565 // Update the DependencyMatrix 566 interChangeDependencies(DependencyMatrix, i, i - 1); 567 DT->recalculate(F); 568 #ifdef DUMP_DEP_MATRICIES 569 DEBUG(dbgs() << "Dependence after interchange\n"); 570 printDepMatrix(DependencyMatrix); 571 #endif 572 Changed |= Interchanged; 573 } 574 return Changed; 575 } 576 577 bool processLoop(LoopVector LoopList, unsigned InnerLoopId, 578 unsigned OuterLoopId, BasicBlock *LoopNestExit, 579 std::vector<std::vector<char>> &DependencyMatrix) { 580 581 DEBUG(dbgs() << "Processing Inner Loop Id = " << InnerLoopId 582 << " and OuterLoopId = " << OuterLoopId << "\n"); 583 Loop *InnerLoop = LoopList[InnerLoopId]; 584 Loop *OuterLoop = LoopList[OuterLoopId]; 585 586 LoopInterchangeLegality LIL(OuterLoop, InnerLoop, SE, LI, DT, 587 PreserveLCSSA, ORE); 588 if (!LIL.canInterchangeLoops(InnerLoopId, OuterLoopId, DependencyMatrix)) { 589 DEBUG(dbgs() << "Not interchanging Loops. Cannot prove legality\n"); 590 return false; 591 } 592 DEBUG(dbgs() << "Loops are legal to interchange\n"); 593 LoopInterchangeProfitability LIP(OuterLoop, InnerLoop, SE, ORE); 594 if (!LIP.isProfitable(InnerLoopId, OuterLoopId, DependencyMatrix)) { 595 DEBUG(dbgs() << "Interchanging loops not profitable\n"); 596 return false; 597 } 598 599 ORE->emit(OptimizationRemark(DEBUG_TYPE, "Interchanged", 600 InnerLoop->getStartLoc(), 601 InnerLoop->getHeader()) 602 << "Loop interchanged with enclosing loop."); 603 604 LoopInterchangeTransform LIT(OuterLoop, InnerLoop, SE, LI, DT, 605 LoopNestExit, LIL.hasInnerLoopReduction()); 606 LIT.transform(); 607 DEBUG(dbgs() << "Loops interchanged\n"); 608 return true; 609 } 610 }; 611 612 } // end of namespace 613 bool LoopInterchangeLegality::areAllUsesReductions(Instruction *Ins, Loop *L) { 614 return none_of(Ins->users(), [=](User *U) -> bool { 615 auto *UserIns = dyn_cast<PHINode>(U); 616 RecurrenceDescriptor RD; 617 return !UserIns || !RecurrenceDescriptor::isReductionPHI(UserIns, L, RD); 618 }); 619 } 620 621 bool LoopInterchangeLegality::containsUnsafeInstructionsInHeader( 622 BasicBlock *BB) { 623 for (auto I = BB->begin(), E = BB->end(); I != E; ++I) { 624 // Load corresponding to reduction PHI's are safe while concluding if 625 // tightly nested. 626 if (LoadInst *L = dyn_cast<LoadInst>(I)) { 627 if (!areAllUsesReductions(L, InnerLoop)) 628 return true; 629 } else if (I->mayHaveSideEffects() || I->mayReadFromMemory()) 630 return true; 631 } 632 return false; 633 } 634 635 bool LoopInterchangeLegality::containsUnsafeInstructionsInLatch( 636 BasicBlock *BB) { 637 for (auto I = BB->begin(), E = BB->end(); I != E; ++I) { 638 // Stores corresponding to reductions are safe while concluding if tightly 639 // nested. 640 if (StoreInst *L = dyn_cast<StoreInst>(I)) { 641 if (!isa<PHINode>(L->getOperand(0))) 642 return true; 643 } else if (I->mayHaveSideEffects() || I->mayReadFromMemory()) 644 return true; 645 } 646 return false; 647 } 648 649 bool LoopInterchangeLegality::tightlyNested(Loop *OuterLoop, Loop *InnerLoop) { 650 BasicBlock *OuterLoopHeader = OuterLoop->getHeader(); 651 BasicBlock *InnerLoopPreHeader = InnerLoop->getLoopPreheader(); 652 BasicBlock *OuterLoopLatch = OuterLoop->getLoopLatch(); 653 654 DEBUG(dbgs() << "Checking if loops are tightly nested\n"); 655 656 // A perfectly nested loop will not have any branch in between the outer and 657 // inner block i.e. outer header will branch to either inner preheader and 658 // outerloop latch. 659 BranchInst *OuterLoopHeaderBI = 660 dyn_cast<BranchInst>(OuterLoopHeader->getTerminator()); 661 if (!OuterLoopHeaderBI) 662 return false; 663 664 for (BasicBlock *Succ : OuterLoopHeaderBI->successors()) 665 if (Succ != InnerLoopPreHeader && Succ != OuterLoopLatch) 666 return false; 667 668 DEBUG(dbgs() << "Checking instructions in Loop header and Loop latch\n"); 669 // We do not have any basic block in between now make sure the outer header 670 // and outer loop latch doesn't contain any unsafe instructions. 671 if (containsUnsafeInstructionsInHeader(OuterLoopHeader) || 672 containsUnsafeInstructionsInLatch(OuterLoopLatch)) 673 return false; 674 675 DEBUG(dbgs() << "Loops are perfectly nested\n"); 676 // We have a perfect loop nest. 677 return true; 678 } 679 680 681 bool LoopInterchangeLegality::isLoopStructureUnderstood( 682 PHINode *InnerInduction) { 683 684 unsigned Num = InnerInduction->getNumOperands(); 685 BasicBlock *InnerLoopPreheader = InnerLoop->getLoopPreheader(); 686 for (unsigned i = 0; i < Num; ++i) { 687 Value *Val = InnerInduction->getOperand(i); 688 if (isa<Constant>(Val)) 689 continue; 690 Instruction *I = dyn_cast<Instruction>(Val); 691 if (!I) 692 return false; 693 // TODO: Handle triangular loops. 694 // e.g. for(int i=0;i<N;i++) 695 // for(int j=i;j<N;j++) 696 unsigned IncomBlockIndx = PHINode::getIncomingValueNumForOperand(i); 697 if (InnerInduction->getIncomingBlock(IncomBlockIndx) == 698 InnerLoopPreheader && 699 !OuterLoop->isLoopInvariant(I)) { 700 return false; 701 } 702 } 703 return true; 704 } 705 706 bool LoopInterchangeLegality::findInductionAndReductions( 707 Loop *L, SmallVector<PHINode *, 8> &Inductions, 708 SmallVector<PHINode *, 8> &Reductions) { 709 if (!L->getLoopLatch() || !L->getLoopPredecessor()) 710 return false; 711 for (BasicBlock::iterator I = L->getHeader()->begin(); isa<PHINode>(I); ++I) { 712 RecurrenceDescriptor RD; 713 InductionDescriptor ID; 714 PHINode *PHI = cast<PHINode>(I); 715 if (InductionDescriptor::isInductionPHI(PHI, L, SE, ID)) 716 Inductions.push_back(PHI); 717 else if (RecurrenceDescriptor::isReductionPHI(PHI, L, RD)) 718 Reductions.push_back(PHI); 719 else { 720 DEBUG( 721 dbgs() << "Failed to recognize PHI as an induction or reduction.\n"); 722 return false; 723 } 724 } 725 return true; 726 } 727 728 static bool containsSafePHI(BasicBlock *Block, bool isOuterLoopExitBlock) { 729 for (auto I = Block->begin(); isa<PHINode>(I); ++I) { 730 PHINode *PHI = cast<PHINode>(I); 731 // Reduction lcssa phi will have only 1 incoming block that from loop latch. 732 if (PHI->getNumIncomingValues() > 1) 733 return false; 734 Instruction *Ins = dyn_cast<Instruction>(PHI->getIncomingValue(0)); 735 if (!Ins) 736 return false; 737 // Incoming value for lcssa phi's in outer loop exit can only be inner loop 738 // exits lcssa phi else it would not be tightly nested. 739 if (!isa<PHINode>(Ins) && isOuterLoopExitBlock) 740 return false; 741 } 742 return true; 743 } 744 745 static BasicBlock *getLoopLatchExitBlock(BasicBlock *LatchBlock, 746 BasicBlock *LoopHeader) { 747 if (BranchInst *BI = dyn_cast<BranchInst>(LatchBlock->getTerminator())) { 748 assert(BI->getNumSuccessors() == 2 && 749 "Branch leaving loop latch must have 2 successors"); 750 for (BasicBlock *Succ : BI->successors()) { 751 if (Succ == LoopHeader) 752 continue; 753 return Succ; 754 } 755 } 756 return nullptr; 757 } 758 759 // This function indicates the current limitations in the transform as a result 760 // of which we do not proceed. 761 bool LoopInterchangeLegality::currentLimitations() { 762 763 BasicBlock *InnerLoopPreHeader = InnerLoop->getLoopPreheader(); 764 BasicBlock *InnerLoopHeader = InnerLoop->getHeader(); 765 BasicBlock *InnerLoopLatch = InnerLoop->getLoopLatch(); 766 BasicBlock *OuterLoopLatch = OuterLoop->getLoopLatch(); 767 BasicBlock *OuterLoopHeader = OuterLoop->getHeader(); 768 769 PHINode *InnerInductionVar; 770 SmallVector<PHINode *, 8> Inductions; 771 SmallVector<PHINode *, 8> Reductions; 772 if (!findInductionAndReductions(InnerLoop, Inductions, Reductions)) { 773 DEBUG(dbgs() << "Only inner loops with induction or reduction PHI nodes " 774 << "are supported currently.\n"); 775 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 776 "UnsupportedPHIInner", 777 InnerLoop->getStartLoc(), 778 InnerLoop->getHeader()) 779 << "Only inner loops with induction or reduction PHI nodes can be" 780 " interchange currently."); 781 return true; 782 } 783 784 // TODO: Currently we handle only loops with 1 induction variable. 785 if (Inductions.size() != 1) { 786 DEBUG(dbgs() << "We currently only support loops with 1 induction variable." 787 << "Failed to interchange due to current limitation\n"); 788 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 789 "MultiInductionInner", 790 InnerLoop->getStartLoc(), 791 InnerLoop->getHeader()) 792 << "Only inner loops with 1 induction variable can be " 793 "interchanged currently."); 794 return true; 795 } 796 if (Reductions.size() > 0) 797 InnerLoopHasReduction = true; 798 799 InnerInductionVar = Inductions.pop_back_val(); 800 Reductions.clear(); 801 if (!findInductionAndReductions(OuterLoop, Inductions, Reductions)) { 802 DEBUG(dbgs() << "Only outer loops with induction or reduction PHI nodes " 803 << "are supported currently.\n"); 804 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 805 "UnsupportedPHIOuter", 806 OuterLoop->getStartLoc(), 807 OuterLoop->getHeader()) 808 << "Only outer loops with induction or reduction PHI nodes can be" 809 " interchanged currently."); 810 return true; 811 } 812 813 // Outer loop cannot have reduction because then loops will not be tightly 814 // nested. 815 if (!Reductions.empty()) { 816 DEBUG(dbgs() << "Outer loops with reductions are not supported " 817 << "currently.\n"); 818 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 819 "ReductionsOuter", 820 OuterLoop->getStartLoc(), 821 OuterLoop->getHeader()) 822 << "Outer loops with reductions cannot be interchangeed " 823 "currently."); 824 return true; 825 } 826 // TODO: Currently we handle only loops with 1 induction variable. 827 if (Inductions.size() != 1) { 828 DEBUG(dbgs() << "Loops with more than 1 induction variables are not " 829 << "supported currently.\n"); 830 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 831 "MultiIndutionOuter", 832 OuterLoop->getStartLoc(), 833 OuterLoop->getHeader()) 834 << "Only outer loops with 1 induction variable can be " 835 "interchanged currently."); 836 return true; 837 } 838 839 // TODO: Triangular loops are not handled for now. 840 if (!isLoopStructureUnderstood(InnerInductionVar)) { 841 DEBUG(dbgs() << "Loop structure not understood by pass\n"); 842 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 843 "UnsupportedStructureInner", 844 InnerLoop->getStartLoc(), 845 InnerLoop->getHeader()) 846 << "Inner loop structure not understood currently."); 847 return true; 848 } 849 850 // TODO: We only handle LCSSA PHI's corresponding to reduction for now. 851 BasicBlock *LoopExitBlock = 852 getLoopLatchExitBlock(OuterLoopLatch, OuterLoopHeader); 853 if (!LoopExitBlock || !containsSafePHI(LoopExitBlock, true)) { 854 DEBUG(dbgs() << "Can only handle LCSSA PHIs in outer loops currently.\n"); 855 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 856 "NoLCSSAPHIOuter", 857 OuterLoop->getStartLoc(), 858 OuterLoop->getHeader()) 859 << "Only outer loops with LCSSA PHIs can be interchange " 860 "currently."); 861 return true; 862 } 863 864 LoopExitBlock = getLoopLatchExitBlock(InnerLoopLatch, InnerLoopHeader); 865 if (!LoopExitBlock || !containsSafePHI(LoopExitBlock, false)) { 866 DEBUG(dbgs() << "Can only handle LCSSA PHIs in inner loops currently.\n"); 867 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 868 "NoLCSSAPHIOuterInner", 869 InnerLoop->getStartLoc(), 870 InnerLoop->getHeader()) 871 << "Only inner loops with LCSSA PHIs can be interchange " 872 "currently."); 873 return true; 874 } 875 876 // TODO: Current limitation: Since we split the inner loop latch at the point 877 // were induction variable is incremented (induction.next); We cannot have 878 // more than 1 user of induction.next since it would result in broken code 879 // after split. 880 // e.g. 881 // for(i=0;i<N;i++) { 882 // for(j = 0;j<M;j++) { 883 // A[j+1][i+2] = A[j][i]+k; 884 // } 885 // } 886 Instruction *InnerIndexVarInc = nullptr; 887 if (InnerInductionVar->getIncomingBlock(0) == InnerLoopPreHeader) 888 InnerIndexVarInc = 889 dyn_cast<Instruction>(InnerInductionVar->getIncomingValue(1)); 890 else 891 InnerIndexVarInc = 892 dyn_cast<Instruction>(InnerInductionVar->getIncomingValue(0)); 893 894 if (!InnerIndexVarInc) { 895 DEBUG(dbgs() << "Did not find an instruction to increment the induction " 896 << "variable.\n"); 897 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 898 "NoIncrementInInner", 899 InnerLoop->getStartLoc(), 900 InnerLoop->getHeader()) 901 << "The inner loop does not increment the induction variable."); 902 return true; 903 } 904 905 // Since we split the inner loop latch on this induction variable. Make sure 906 // we do not have any instruction between the induction variable and branch 907 // instruction. 908 909 bool FoundInduction = false; 910 for (const Instruction &I : reverse(*InnerLoopLatch)) { 911 if (isa<BranchInst>(I) || isa<CmpInst>(I) || isa<TruncInst>(I)) 912 continue; 913 914 // We found an instruction. If this is not induction variable then it is not 915 // safe to split this loop latch. 916 if (!I.isIdenticalTo(InnerIndexVarInc)) { 917 DEBUG(dbgs() << "Found unsupported instructions between induction " 918 << "variable increment and branch.\n"); 919 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 920 "UnsupportedInsBetweenInduction", 921 InnerLoop->getStartLoc(), 922 InnerLoop->getHeader()) 923 << "Found unsupported instruction between induction variable " 924 "increment and branch."); 925 return true; 926 } 927 928 FoundInduction = true; 929 break; 930 } 931 // The loop latch ended and we didn't find the induction variable return as 932 // current limitation. 933 if (!FoundInduction) { 934 DEBUG(dbgs() << "Did not find the induction variable.\n"); 935 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 936 "NoIndutionVariable", 937 InnerLoop->getStartLoc(), 938 InnerLoop->getHeader()) 939 << "Did not find the induction variable."); 940 return true; 941 } 942 return false; 943 } 944 945 bool LoopInterchangeLegality::canInterchangeLoops(unsigned InnerLoopId, 946 unsigned OuterLoopId, 947 CharMatrix &DepMatrix) { 948 949 if (!isLegalToInterChangeLoops(DepMatrix, InnerLoopId, OuterLoopId)) { 950 DEBUG(dbgs() << "Failed interchange InnerLoopId = " << InnerLoopId 951 << " and OuterLoopId = " << OuterLoopId 952 << " due to dependence\n"); 953 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 954 "Dependence", 955 InnerLoop->getStartLoc(), 956 InnerLoop->getHeader()) 957 << "Cannot interchange loops due to dependences."); 958 return false; 959 } 960 961 // Check if outer and inner loop contain legal instructions only. 962 for (auto *BB : OuterLoop->blocks()) 963 for (Instruction &I : *BB) 964 if (CallInst *CI = dyn_cast<CallInst>(&I)) { 965 // readnone functions do not prevent interchanging. 966 if (CI->doesNotReadMemory()) 967 continue; 968 DEBUG(dbgs() << "Loops with call instructions cannot be interchanged " 969 << "safely."); 970 return false; 971 } 972 973 // Create unique Preheaders if we already do not have one. 974 BasicBlock *OuterLoopPreHeader = OuterLoop->getLoopPreheader(); 975 BasicBlock *InnerLoopPreHeader = InnerLoop->getLoopPreheader(); 976 977 // Create a unique outer preheader - 978 // 1) If OuterLoop preheader is not present. 979 // 2) If OuterLoop Preheader is same as OuterLoop Header 980 // 3) If OuterLoop Preheader is same as Header of the previous loop. 981 // 4) If OuterLoop Preheader is Entry node. 982 if (!OuterLoopPreHeader || OuterLoopPreHeader == OuterLoop->getHeader() || 983 isa<PHINode>(OuterLoopPreHeader->begin()) || 984 !OuterLoopPreHeader->getUniquePredecessor()) { 985 OuterLoopPreHeader = 986 InsertPreheaderForLoop(OuterLoop, DT, LI, PreserveLCSSA); 987 } 988 989 if (!InnerLoopPreHeader || InnerLoopPreHeader == InnerLoop->getHeader() || 990 InnerLoopPreHeader == OuterLoop->getHeader()) { 991 InnerLoopPreHeader = 992 InsertPreheaderForLoop(InnerLoop, DT, LI, PreserveLCSSA); 993 } 994 995 // TODO: The loops could not be interchanged due to current limitations in the 996 // transform module. 997 if (currentLimitations()) { 998 DEBUG(dbgs() << "Not legal because of current transform limitation\n"); 999 return false; 1000 } 1001 1002 // Check if the loops are tightly nested. 1003 if (!tightlyNested(OuterLoop, InnerLoop)) { 1004 DEBUG(dbgs() << "Loops not tightly nested\n"); 1005 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 1006 "NotTightlyNested", 1007 InnerLoop->getStartLoc(), 1008 InnerLoop->getHeader()) 1009 << "Cannot interchange loops because they are not tightly " 1010 "nested."); 1011 return false; 1012 } 1013 1014 return true; 1015 } 1016 1017 int LoopInterchangeProfitability::getInstrOrderCost() { 1018 unsigned GoodOrder, BadOrder; 1019 BadOrder = GoodOrder = 0; 1020 for (BasicBlock *BB : InnerLoop->blocks()) { 1021 for (Instruction &Ins : *BB) { 1022 if (const GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(&Ins)) { 1023 unsigned NumOp = GEP->getNumOperands(); 1024 bool FoundInnerInduction = false; 1025 bool FoundOuterInduction = false; 1026 for (unsigned i = 0; i < NumOp; ++i) { 1027 const SCEV *OperandVal = SE->getSCEV(GEP->getOperand(i)); 1028 const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(OperandVal); 1029 if (!AR) 1030 continue; 1031 1032 // If we find the inner induction after an outer induction e.g. 1033 // for(int i=0;i<N;i++) 1034 // for(int j=0;j<N;j++) 1035 // A[i][j] = A[i-1][j-1]+k; 1036 // then it is a good order. 1037 if (AR->getLoop() == InnerLoop) { 1038 // We found an InnerLoop induction after OuterLoop induction. It is 1039 // a good order. 1040 FoundInnerInduction = true; 1041 if (FoundOuterInduction) { 1042 GoodOrder++; 1043 break; 1044 } 1045 } 1046 // If we find the outer induction after an inner induction e.g. 1047 // for(int i=0;i<N;i++) 1048 // for(int j=0;j<N;j++) 1049 // A[j][i] = A[j-1][i-1]+k; 1050 // then it is a bad order. 1051 if (AR->getLoop() == OuterLoop) { 1052 // We found an OuterLoop induction after InnerLoop induction. It is 1053 // a bad order. 1054 FoundOuterInduction = true; 1055 if (FoundInnerInduction) { 1056 BadOrder++; 1057 break; 1058 } 1059 } 1060 } 1061 } 1062 } 1063 } 1064 return GoodOrder - BadOrder; 1065 } 1066 1067 static bool isProfitableForVectorization(unsigned InnerLoopId, 1068 unsigned OuterLoopId, 1069 CharMatrix &DepMatrix) { 1070 // TODO: Improve this heuristic to catch more cases. 1071 // If the inner loop is loop independent or doesn't carry any dependency it is 1072 // profitable to move this to outer position. 1073 for (auto &Row : DepMatrix) { 1074 if (Row[InnerLoopId] != 'S' && Row[InnerLoopId] != 'I') 1075 return false; 1076 // TODO: We need to improve this heuristic. 1077 if (Row[OuterLoopId] != '=') 1078 return false; 1079 } 1080 // If outer loop has dependence and inner loop is loop independent then it is 1081 // profitable to interchange to enable parallelism. 1082 return true; 1083 } 1084 1085 bool LoopInterchangeProfitability::isProfitable(unsigned InnerLoopId, 1086 unsigned OuterLoopId, 1087 CharMatrix &DepMatrix) { 1088 1089 // TODO: Add better profitability checks. 1090 // e.g 1091 // 1) Construct dependency matrix and move the one with no loop carried dep 1092 // inside to enable vectorization. 1093 1094 // This is rough cost estimation algorithm. It counts the good and bad order 1095 // of induction variables in the instruction and allows reordering if number 1096 // of bad orders is more than good. 1097 int Cost = getInstrOrderCost(); 1098 DEBUG(dbgs() << "Cost = " << Cost << "\n"); 1099 if (Cost < -LoopInterchangeCostThreshold) 1100 return true; 1101 1102 // It is not profitable as per current cache profitability model. But check if 1103 // we can move this loop outside to improve parallelism. 1104 if (isProfitableForVectorization(InnerLoopId, OuterLoopId, DepMatrix)) 1105 return true; 1106 1107 ORE->emit(OptimizationRemarkMissed(DEBUG_TYPE, 1108 "InterchangeNotProfitable", 1109 InnerLoop->getStartLoc(), 1110 InnerLoop->getHeader()) 1111 << "Interchanging loops is too costly (cost=" 1112 << ore::NV("Cost", Cost) << ", threshold=" 1113 << ore::NV("Threshold", LoopInterchangeCostThreshold) << 1114 ") and it does not improve parallelism."); 1115 return false; 1116 } 1117 1118 void LoopInterchangeTransform::removeChildLoop(Loop *OuterLoop, 1119 Loop *InnerLoop) { 1120 for (Loop::iterator I = OuterLoop->begin(), E = OuterLoop->end(); I != E; 1121 ++I) { 1122 if (*I == InnerLoop) { 1123 OuterLoop->removeChildLoop(I); 1124 return; 1125 } 1126 } 1127 llvm_unreachable("Couldn't find loop"); 1128 } 1129 1130 void LoopInterchangeTransform::restructureLoops(Loop *InnerLoop, 1131 Loop *OuterLoop) { 1132 Loop *OuterLoopParent = OuterLoop->getParentLoop(); 1133 if (OuterLoopParent) { 1134 // Remove the loop from its parent loop. 1135 removeChildLoop(OuterLoopParent, OuterLoop); 1136 removeChildLoop(OuterLoop, InnerLoop); 1137 OuterLoopParent->addChildLoop(InnerLoop); 1138 } else { 1139 removeChildLoop(OuterLoop, InnerLoop); 1140 LI->changeTopLevelLoop(OuterLoop, InnerLoop); 1141 } 1142 1143 while (!InnerLoop->empty()) 1144 OuterLoop->addChildLoop(InnerLoop->removeChildLoop(InnerLoop->begin())); 1145 1146 InnerLoop->addChildLoop(OuterLoop); 1147 } 1148 1149 bool LoopInterchangeTransform::transform() { 1150 bool Transformed = false; 1151 Instruction *InnerIndexVar; 1152 1153 if (InnerLoop->getSubLoops().size() == 0) { 1154 BasicBlock *InnerLoopPreHeader = InnerLoop->getLoopPreheader(); 1155 DEBUG(dbgs() << "Calling Split Inner Loop\n"); 1156 PHINode *InductionPHI = getInductionVariable(InnerLoop, SE); 1157 if (!InductionPHI) { 1158 DEBUG(dbgs() << "Failed to find the point to split loop latch \n"); 1159 return false; 1160 } 1161 1162 if (InductionPHI->getIncomingBlock(0) == InnerLoopPreHeader) 1163 InnerIndexVar = dyn_cast<Instruction>(InductionPHI->getIncomingValue(1)); 1164 else 1165 InnerIndexVar = dyn_cast<Instruction>(InductionPHI->getIncomingValue(0)); 1166 1167 // 1168 // Split at the place were the induction variable is 1169 // incremented/decremented. 1170 // TODO: This splitting logic may not work always. Fix this. 1171 splitInnerLoopLatch(InnerIndexVar); 1172 DEBUG(dbgs() << "splitInnerLoopLatch done\n"); 1173 1174 // Splits the inner loops phi nodes out into a separate basic block. 1175 splitInnerLoopHeader(); 1176 DEBUG(dbgs() << "splitInnerLoopHeader done\n"); 1177 } 1178 1179 Transformed |= adjustLoopLinks(); 1180 if (!Transformed) { 1181 DEBUG(dbgs() << "adjustLoopLinks failed\n"); 1182 return false; 1183 } 1184 1185 restructureLoops(InnerLoop, OuterLoop); 1186 return true; 1187 } 1188 1189 void LoopInterchangeTransform::splitInnerLoopLatch(Instruction *Inc) { 1190 BasicBlock *InnerLoopLatch = InnerLoop->getLoopLatch(); 1191 BasicBlock *InnerLoopLatchPred = InnerLoopLatch; 1192 InnerLoopLatch = SplitBlock(InnerLoopLatchPred, Inc, DT, LI); 1193 } 1194 1195 void LoopInterchangeTransform::splitInnerLoopHeader() { 1196 1197 // Split the inner loop header out. Here make sure that the reduction PHI's 1198 // stay in the innerloop body. 1199 BasicBlock *InnerLoopHeader = InnerLoop->getHeader(); 1200 BasicBlock *InnerLoopPreHeader = InnerLoop->getLoopPreheader(); 1201 if (InnerLoopHasReduction) { 1202 // FIXME: Check if the induction PHI will always be the first PHI. 1203 BasicBlock *New = InnerLoopHeader->splitBasicBlock( 1204 ++(InnerLoopHeader->begin()), InnerLoopHeader->getName() + ".split"); 1205 if (LI) 1206 if (Loop *L = LI->getLoopFor(InnerLoopHeader)) 1207 L->addBasicBlockToLoop(New, *LI); 1208 1209 // Adjust Reduction PHI's in the block. 1210 SmallVector<PHINode *, 8> PHIVec; 1211 for (auto I = New->begin(); isa<PHINode>(I); ++I) { 1212 PHINode *PHI = dyn_cast<PHINode>(I); 1213 Value *V = PHI->getIncomingValueForBlock(InnerLoopPreHeader); 1214 PHI->replaceAllUsesWith(V); 1215 PHIVec.push_back((PHI)); 1216 } 1217 for (PHINode *P : PHIVec) { 1218 P->eraseFromParent(); 1219 } 1220 } else { 1221 SplitBlock(InnerLoopHeader, InnerLoopHeader->getFirstNonPHI(), DT, LI); 1222 } 1223 1224 DEBUG(dbgs() << "Output of splitInnerLoopHeader InnerLoopHeaderSucc & " 1225 "InnerLoopHeader\n"); 1226 } 1227 1228 /// \brief Move all instructions except the terminator from FromBB right before 1229 /// InsertBefore 1230 static void moveBBContents(BasicBlock *FromBB, Instruction *InsertBefore) { 1231 auto &ToList = InsertBefore->getParent()->getInstList(); 1232 auto &FromList = FromBB->getInstList(); 1233 1234 ToList.splice(InsertBefore->getIterator(), FromList, FromList.begin(), 1235 FromBB->getTerminator()->getIterator()); 1236 } 1237 1238 void LoopInterchangeTransform::updateIncomingBlock(BasicBlock *CurrBlock, 1239 BasicBlock *OldPred, 1240 BasicBlock *NewPred) { 1241 for (auto I = CurrBlock->begin(); isa<PHINode>(I); ++I) { 1242 PHINode *PHI = cast<PHINode>(I); 1243 unsigned Num = PHI->getNumIncomingValues(); 1244 for (unsigned i = 0; i < Num; ++i) { 1245 if (PHI->getIncomingBlock(i) == OldPred) 1246 PHI->setIncomingBlock(i, NewPred); 1247 } 1248 } 1249 } 1250 1251 bool LoopInterchangeTransform::adjustLoopBranches() { 1252 1253 DEBUG(dbgs() << "adjustLoopBranches called\n"); 1254 // Adjust the loop preheader 1255 BasicBlock *InnerLoopHeader = InnerLoop->getHeader(); 1256 BasicBlock *OuterLoopHeader = OuterLoop->getHeader(); 1257 BasicBlock *InnerLoopLatch = InnerLoop->getLoopLatch(); 1258 BasicBlock *OuterLoopLatch = OuterLoop->getLoopLatch(); 1259 BasicBlock *OuterLoopPreHeader = OuterLoop->getLoopPreheader(); 1260 BasicBlock *InnerLoopPreHeader = InnerLoop->getLoopPreheader(); 1261 BasicBlock *OuterLoopPredecessor = OuterLoopPreHeader->getUniquePredecessor(); 1262 BasicBlock *InnerLoopLatchPredecessor = 1263 InnerLoopLatch->getUniquePredecessor(); 1264 BasicBlock *InnerLoopLatchSuccessor; 1265 BasicBlock *OuterLoopLatchSuccessor; 1266 1267 BranchInst *OuterLoopLatchBI = 1268 dyn_cast<BranchInst>(OuterLoopLatch->getTerminator()); 1269 BranchInst *InnerLoopLatchBI = 1270 dyn_cast<BranchInst>(InnerLoopLatch->getTerminator()); 1271 BranchInst *OuterLoopHeaderBI = 1272 dyn_cast<BranchInst>(OuterLoopHeader->getTerminator()); 1273 BranchInst *InnerLoopHeaderBI = 1274 dyn_cast<BranchInst>(InnerLoopHeader->getTerminator()); 1275 1276 if (!OuterLoopPredecessor || !InnerLoopLatchPredecessor || 1277 !OuterLoopLatchBI || !InnerLoopLatchBI || !OuterLoopHeaderBI || 1278 !InnerLoopHeaderBI) 1279 return false; 1280 1281 BranchInst *InnerLoopLatchPredecessorBI = 1282 dyn_cast<BranchInst>(InnerLoopLatchPredecessor->getTerminator()); 1283 BranchInst *OuterLoopPredecessorBI = 1284 dyn_cast<BranchInst>(OuterLoopPredecessor->getTerminator()); 1285 1286 if (!OuterLoopPredecessorBI || !InnerLoopLatchPredecessorBI) 1287 return false; 1288 BasicBlock *InnerLoopHeaderSuccessor = InnerLoopHeader->getUniqueSuccessor(); 1289 if (!InnerLoopHeaderSuccessor) 1290 return false; 1291 1292 // Adjust Loop Preheader and headers 1293 1294 unsigned NumSucc = OuterLoopPredecessorBI->getNumSuccessors(); 1295 for (unsigned i = 0; i < NumSucc; ++i) { 1296 if (OuterLoopPredecessorBI->getSuccessor(i) == OuterLoopPreHeader) 1297 OuterLoopPredecessorBI->setSuccessor(i, InnerLoopPreHeader); 1298 } 1299 1300 NumSucc = OuterLoopHeaderBI->getNumSuccessors(); 1301 for (unsigned i = 0; i < NumSucc; ++i) { 1302 if (OuterLoopHeaderBI->getSuccessor(i) == OuterLoopLatch) 1303 OuterLoopHeaderBI->setSuccessor(i, LoopExit); 1304 else if (OuterLoopHeaderBI->getSuccessor(i) == InnerLoopPreHeader) 1305 OuterLoopHeaderBI->setSuccessor(i, InnerLoopHeaderSuccessor); 1306 } 1307 1308 // Adjust reduction PHI's now that the incoming block has changed. 1309 updateIncomingBlock(InnerLoopHeaderSuccessor, InnerLoopHeader, 1310 OuterLoopHeader); 1311 1312 BranchInst::Create(OuterLoopPreHeader, InnerLoopHeaderBI); 1313 InnerLoopHeaderBI->eraseFromParent(); 1314 1315 // -------------Adjust loop latches----------- 1316 if (InnerLoopLatchBI->getSuccessor(0) == InnerLoopHeader) 1317 InnerLoopLatchSuccessor = InnerLoopLatchBI->getSuccessor(1); 1318 else 1319 InnerLoopLatchSuccessor = InnerLoopLatchBI->getSuccessor(0); 1320 1321 NumSucc = InnerLoopLatchPredecessorBI->getNumSuccessors(); 1322 for (unsigned i = 0; i < NumSucc; ++i) { 1323 if (InnerLoopLatchPredecessorBI->getSuccessor(i) == InnerLoopLatch) 1324 InnerLoopLatchPredecessorBI->setSuccessor(i, InnerLoopLatchSuccessor); 1325 } 1326 1327 // Adjust PHI nodes in InnerLoopLatchSuccessor. Update all uses of PHI with 1328 // the value and remove this PHI node from inner loop. 1329 SmallVector<PHINode *, 8> LcssaVec; 1330 for (auto I = InnerLoopLatchSuccessor->begin(); isa<PHINode>(I); ++I) { 1331 PHINode *LcssaPhi = cast<PHINode>(I); 1332 LcssaVec.push_back(LcssaPhi); 1333 } 1334 for (PHINode *P : LcssaVec) { 1335 Value *Incoming = P->getIncomingValueForBlock(InnerLoopLatch); 1336 P->replaceAllUsesWith(Incoming); 1337 P->eraseFromParent(); 1338 } 1339 1340 if (OuterLoopLatchBI->getSuccessor(0) == OuterLoopHeader) 1341 OuterLoopLatchSuccessor = OuterLoopLatchBI->getSuccessor(1); 1342 else 1343 OuterLoopLatchSuccessor = OuterLoopLatchBI->getSuccessor(0); 1344 1345 if (InnerLoopLatchBI->getSuccessor(1) == InnerLoopLatchSuccessor) 1346 InnerLoopLatchBI->setSuccessor(1, OuterLoopLatchSuccessor); 1347 else 1348 InnerLoopLatchBI->setSuccessor(0, OuterLoopLatchSuccessor); 1349 1350 updateIncomingBlock(OuterLoopLatchSuccessor, OuterLoopLatch, InnerLoopLatch); 1351 1352 if (OuterLoopLatchBI->getSuccessor(0) == OuterLoopLatchSuccessor) { 1353 OuterLoopLatchBI->setSuccessor(0, InnerLoopLatch); 1354 } else { 1355 OuterLoopLatchBI->setSuccessor(1, InnerLoopLatch); 1356 } 1357 1358 return true; 1359 } 1360 void LoopInterchangeTransform::adjustLoopPreheaders() { 1361 1362 // We have interchanged the preheaders so we need to interchange the data in 1363 // the preheader as well. 1364 // This is because the content of inner preheader was previously executed 1365 // inside the outer loop. 1366 BasicBlock *OuterLoopPreHeader = OuterLoop->getLoopPreheader(); 1367 BasicBlock *InnerLoopPreHeader = InnerLoop->getLoopPreheader(); 1368 BasicBlock *OuterLoopHeader = OuterLoop->getHeader(); 1369 BranchInst *InnerTermBI = 1370 cast<BranchInst>(InnerLoopPreHeader->getTerminator()); 1371 1372 // These instructions should now be executed inside the loop. 1373 // Move instruction into a new block after outer header. 1374 moveBBContents(InnerLoopPreHeader, OuterLoopHeader->getTerminator()); 1375 // These instructions were not executed previously in the loop so move them to 1376 // the older inner loop preheader. 1377 moveBBContents(OuterLoopPreHeader, InnerTermBI); 1378 } 1379 1380 bool LoopInterchangeTransform::adjustLoopLinks() { 1381 1382 // Adjust all branches in the inner and outer loop. 1383 bool Changed = adjustLoopBranches(); 1384 if (Changed) 1385 adjustLoopPreheaders(); 1386 return Changed; 1387 } 1388 1389 char LoopInterchange::ID = 0; 1390 INITIALIZE_PASS_BEGIN(LoopInterchange, "loop-interchange", 1391 "Interchanges loops for cache reuse", false, false) 1392 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass) 1393 INITIALIZE_PASS_DEPENDENCY(DependenceAnalysisWrapperPass) 1394 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) 1395 INITIALIZE_PASS_DEPENDENCY(ScalarEvolutionWrapperPass) 1396 INITIALIZE_PASS_DEPENDENCY(LoopSimplify) 1397 INITIALIZE_PASS_DEPENDENCY(LCSSAWrapperPass) 1398 INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass) 1399 INITIALIZE_PASS_DEPENDENCY(OptimizationRemarkEmitterWrapperPass) 1400 1401 INITIALIZE_PASS_END(LoopInterchange, "loop-interchange", 1402 "Interchanges loops for cache reuse", false, false) 1403 1404 Pass *llvm::createLoopInterchangePass() { return new LoopInterchange(); } 1405