1 //===- SLPVectorizer.cpp - A bottom up SLP Vectorizer ---------------------===// 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 // This pass implements the Bottom Up SLP vectorizer. It detects consecutive 10 // stores that can be put together into vector-stores. Next, it attempts to 11 // construct vectorizable tree using the use-def chains. If a profitable tree 12 // was found, the SLP vectorizer performs vectorization on the tree. 13 // 14 // The pass is inspired by the work described in the paper: 15 // "Loop-Aware SLP in GCC" by Ira Rosen, Dorit Nuzman, Ayal Zaks. 16 // 17 //===----------------------------------------------------------------------===// 18 #define SV_NAME "slp-vectorizer" 19 #define DEBUG_TYPE "SLP" 20 21 #include "llvm/Transforms/Vectorize.h" 22 #include "llvm/ADT/MapVector.h" 23 #include "llvm/ADT/PostOrderIterator.h" 24 #include "llvm/ADT/SetVector.h" 25 #include "llvm/Analysis/AliasAnalysis.h" 26 #include "llvm/Analysis/ScalarEvolution.h" 27 #include "llvm/Analysis/ScalarEvolutionExpressions.h" 28 #include "llvm/Analysis/AliasAnalysis.h" 29 #include "llvm/Analysis/TargetTransformInfo.h" 30 #include "llvm/Analysis/Verifier.h" 31 #include "llvm/Analysis/LoopInfo.h" 32 #include "llvm/IR/DataLayout.h" 33 #include "llvm/IR/Instructions.h" 34 #include "llvm/IR/IntrinsicInst.h" 35 #include "llvm/IR/IRBuilder.h" 36 #include "llvm/IR/Module.h" 37 #include "llvm/IR/Type.h" 38 #include "llvm/IR/Value.h" 39 #include "llvm/Pass.h" 40 #include "llvm/Support/CommandLine.h" 41 #include "llvm/Support/Debug.h" 42 #include "llvm/Support/raw_ostream.h" 43 #include <algorithm> 44 #include <map> 45 46 using namespace llvm; 47 48 static cl::opt<int> 49 SLPCostThreshold("slp-threshold", cl::init(0), cl::Hidden, 50 cl::desc("Only vectorize if you gain more than this " 51 "number ")); 52 namespace { 53 54 static const unsigned MinVecRegSize = 128; 55 56 static const unsigned RecursionMaxDepth = 12; 57 58 /// RAII pattern to save the insertion point of the IR builder. 59 class BuilderLocGuard { 60 public: 61 BuilderLocGuard(IRBuilder<> &B) : Builder(B), Loc(B.GetInsertPoint()) {} 62 ~BuilderLocGuard() { if (Loc) Builder.SetInsertPoint(Loc); } 63 64 private: 65 // Prevent copying. 66 BuilderLocGuard(const BuilderLocGuard &); 67 BuilderLocGuard &operator=(const BuilderLocGuard &); 68 IRBuilder<> &Builder; 69 AssertingVH<Instruction> Loc; 70 }; 71 72 /// A helper class for numbering instructions in multible blocks. 73 /// Numbers starts at zero for each basic block. 74 struct BlockNumbering { 75 76 BlockNumbering(BasicBlock *Bb) : BB(Bb), Valid(false) {} 77 78 BlockNumbering() : BB(0), Valid(false) {} 79 80 void numberInstructions() { 81 unsigned Loc = 0; 82 InstrIdx.clear(); 83 InstrVec.clear(); 84 // Number the instructions in the block. 85 for (BasicBlock::iterator it = BB->begin(), e = BB->end(); it != e; ++it) { 86 InstrIdx[it] = Loc++; 87 InstrVec.push_back(it); 88 assert(InstrVec[InstrIdx[it]] == it && "Invalid allocation"); 89 } 90 Valid = true; 91 } 92 93 int getIndex(Instruction *I) { 94 assert(I->getParent() == BB && "Invalid instruction"); 95 if (!Valid) 96 numberInstructions(); 97 assert(InstrIdx.count(I) && "Unknown instruction"); 98 return InstrIdx[I]; 99 } 100 101 Instruction *getInstruction(unsigned loc) { 102 if (!Valid) 103 numberInstructions(); 104 assert(InstrVec.size() > loc && "Invalid Index"); 105 return InstrVec[loc]; 106 } 107 108 void forget() { Valid = false; } 109 110 private: 111 /// The block we are numbering. 112 BasicBlock *BB; 113 /// Is the block numbered. 114 bool Valid; 115 /// Maps instructions to numbers and back. 116 SmallDenseMap<Instruction *, int> InstrIdx; 117 /// Maps integers to Instructions. 118 std::vector<Instruction *> InstrVec; 119 }; 120 121 /// \returns the parent basic block if all of the instructions in \p VL 122 /// are in the same block or null otherwise. 123 static BasicBlock *getSameBlock(ArrayRef<Value *> VL) { 124 Instruction *I0 = dyn_cast<Instruction>(VL[0]); 125 if (!I0) 126 return 0; 127 BasicBlock *BB = I0->getParent(); 128 for (int i = 1, e = VL.size(); i < e; i++) { 129 Instruction *I = dyn_cast<Instruction>(VL[i]); 130 if (!I) 131 return 0; 132 133 if (BB != I->getParent()) 134 return 0; 135 } 136 return BB; 137 } 138 139 /// \returns True if all of the values in \p VL are constants. 140 static bool allConstant(ArrayRef<Value *> VL) { 141 for (unsigned i = 0, e = VL.size(); i < e; ++i) 142 if (!isa<Constant>(VL[i])) 143 return false; 144 return true; 145 } 146 147 /// \returns True if all of the values in \p VL are identical. 148 static bool isSplat(ArrayRef<Value *> VL) { 149 for (unsigned i = 1, e = VL.size(); i < e; ++i) 150 if (VL[i] != VL[0]) 151 return false; 152 return true; 153 } 154 155 /// \returns The opcode if all of the Instructions in \p VL have the same 156 /// opcode, or zero. 157 static unsigned getSameOpcode(ArrayRef<Value *> VL) { 158 Instruction *I0 = dyn_cast<Instruction>(VL[0]); 159 if (!I0) 160 return 0; 161 unsigned Opcode = I0->getOpcode(); 162 for (int i = 1, e = VL.size(); i < e; i++) { 163 Instruction *I = dyn_cast<Instruction>(VL[i]); 164 if (!I || Opcode != I->getOpcode()) 165 return 0; 166 } 167 return Opcode; 168 } 169 170 /// \returns The type that all of the values in \p VL have or null if there 171 /// are different types. 172 static Type* getSameType(ArrayRef<Value *> VL) { 173 Type *Ty = VL[0]->getType(); 174 for (int i = 1, e = VL.size(); i < e; i++) 175 if (VL[i]->getType() != Ty) 176 return 0; 177 178 return Ty; 179 } 180 181 /// \returns True if the ExtractElement instructions in VL can be vectorized 182 /// to use the original vector. 183 static bool CanReuseExtract(ArrayRef<Value *> VL) { 184 assert(Instruction::ExtractElement == getSameOpcode(VL) && "Invalid opcode"); 185 // Check if all of the extracts come from the same vector and from the 186 // correct offset. 187 Value *VL0 = VL[0]; 188 ExtractElementInst *E0 = cast<ExtractElementInst>(VL0); 189 Value *Vec = E0->getOperand(0); 190 191 // We have to extract from the same vector type. 192 unsigned NElts = Vec->getType()->getVectorNumElements(); 193 194 if (NElts != VL.size()) 195 return false; 196 197 // Check that all of the indices extract from the correct offset. 198 ConstantInt *CI = dyn_cast<ConstantInt>(E0->getOperand(1)); 199 if (!CI || CI->getZExtValue()) 200 return false; 201 202 for (unsigned i = 1, e = VL.size(); i < e; ++i) { 203 ExtractElementInst *E = cast<ExtractElementInst>(VL[i]); 204 ConstantInt *CI = dyn_cast<ConstantInt>(E->getOperand(1)); 205 206 if (!CI || CI->getZExtValue() != i || E->getOperand(0) != Vec) 207 return false; 208 } 209 210 return true; 211 } 212 213 /// Bottom Up SLP Vectorizer. 214 class BoUpSLP { 215 public: 216 typedef SmallVector<Value *, 8> ValueList; 217 typedef SmallVector<Instruction *, 16> InstrList; 218 typedef SmallPtrSet<Value *, 16> ValueSet; 219 typedef SmallVector<StoreInst *, 8> StoreList; 220 221 BoUpSLP(Function *Func, ScalarEvolution *Se, DataLayout *Dl, 222 TargetTransformInfo *Tti, AliasAnalysis *Aa, LoopInfo *Li, 223 DominatorTree *Dt) : 224 F(Func), SE(Se), DL(Dl), TTI(Tti), AA(Aa), LI(Li), DT(Dt), 225 Builder(Se->getContext()) { 226 // Setup the block numbering utility for all of the blocks in the 227 // function. 228 for (Function::iterator it = F->begin(), e = F->end(); it != e; ++it) { 229 BasicBlock *BB = it; 230 BlocksNumbers[BB] = BlockNumbering(BB); 231 } 232 } 233 234 /// \brief Vectorize the tree that starts with the elements in \p VL. 235 void vectorizeTree(); 236 237 /// \returns the vectorization cost of the subtree that starts at \p VL. 238 /// A negative number means that this is profitable. 239 int getTreeCost(); 240 241 /// Construct a vectorizable tree that starts at \p Roots. 242 void buildTree(ArrayRef<Value *> Roots); 243 244 /// Clear the internal data structures that are created by 'buildTree'. 245 void deleteTree() { 246 VectorizableTree.clear(); 247 ScalarToTreeEntry.clear(); 248 MustGather.clear(); 249 ExternalUses.clear(); 250 MemBarrierIgnoreList.clear(); 251 } 252 253 /// \returns true if the memory operations A and B are consecutive. 254 bool isConsecutiveAccess(Value *A, Value *B); 255 256 /// \brief Perform LICM and CSE on the newly generated gather sequences. 257 void optimizeGatherSequence(); 258 private: 259 struct TreeEntry; 260 261 /// \returns the cost of the vectorizable entry. 262 int getEntryCost(TreeEntry *E); 263 264 /// This is the recursive part of buildTree. 265 void buildTree_rec(ArrayRef<Value *> Roots, unsigned Depth); 266 267 /// Vectorizer a single entry in the tree. 268 Value *vectorizeTree(TreeEntry *E); 269 270 /// Vectorizer a single entry in the tree, starting in \p VL. 271 Value *vectorizeTree(ArrayRef<Value *> VL); 272 273 /// \brief Take the pointer operand from the Load/Store instruction. 274 /// \returns NULL if this is not a valid Load/Store instruction. 275 static Value *getPointerOperand(Value *I); 276 277 /// \brief Take the address space operand from the Load/Store instruction. 278 /// \returns -1 if this is not a valid Load/Store instruction. 279 static unsigned getAddressSpaceOperand(Value *I); 280 281 /// \returns the scalarization cost for this type. Scalarization in this 282 /// context means the creation of vectors from a group of scalars. 283 int getGatherCost(Type *Ty); 284 285 /// \returns the scalarization cost for this list of values. Assuming that 286 /// this subtree gets vectorized, we may need to extract the values from the 287 /// roots. This method calculates the cost of extracting the values. 288 int getGatherCost(ArrayRef<Value *> VL); 289 290 /// \returns the AA location that is being access by the instruction. 291 AliasAnalysis::Location getLocation(Instruction *I); 292 293 /// \brief Checks if it is possible to sink an instruction from 294 /// \p Src to \p Dst. 295 /// \returns the pointer to the barrier instruction if we can't sink. 296 Value *getSinkBarrier(Instruction *Src, Instruction *Dst); 297 298 /// \returns the index of the last instrucion in the BB from \p VL. 299 int getLastIndex(ArrayRef<Value *> VL); 300 301 /// \returns the Instrucion in the bundle \p VL. 302 Instruction *getLastInstruction(ArrayRef<Value *> VL); 303 304 /// \returns the Instruction at index \p Index which is in Block \p BB. 305 Instruction *getInstructionForIndex(unsigned Index, BasicBlock *BB); 306 307 /// \returns the index of the first User of \p VL. 308 int getFirstUserIndex(ArrayRef<Value *> VL); 309 310 /// \returns a vector from a collection of scalars in \p VL. 311 Value *Gather(ArrayRef<Value *> VL, VectorType *Ty); 312 313 struct TreeEntry { 314 TreeEntry() : Scalars(), VectorizedValue(0), LastScalarIndex(0), 315 NeedToGather(0) {} 316 317 /// \returns true if the scalars in VL are equal to this entry. 318 bool isSame(ArrayRef<Value *> VL) { 319 assert(VL.size() == Scalars.size() && "Invalid size"); 320 for (int i = 0, e = VL.size(); i != e; ++i) 321 if (VL[i] != Scalars[i]) 322 return false; 323 return true; 324 } 325 326 /// A vector of scalars. 327 ValueList Scalars; 328 329 /// The Scalars are vectorized into this value. It is initialized to Null. 330 Value *VectorizedValue; 331 332 /// The index in the basic block of the last scalar. 333 int LastScalarIndex; 334 335 /// Do we need to gather this sequence ? 336 bool NeedToGather; 337 }; 338 339 /// Create a new VectorizableTree entry. 340 TreeEntry *newTreeEntry(ArrayRef<Value *> VL, bool Vectorized) { 341 VectorizableTree.push_back(TreeEntry()); 342 int idx = VectorizableTree.size() - 1; 343 TreeEntry *Last = &VectorizableTree[idx]; 344 Last->Scalars.insert(Last->Scalars.begin(), VL.begin(), VL.end()); 345 Last->NeedToGather = !Vectorized; 346 if (Vectorized) { 347 Last->LastScalarIndex = getLastIndex(VL); 348 for (int i = 0, e = VL.size(); i != e; ++i) { 349 assert(!ScalarToTreeEntry.count(VL[i]) && "Scalar already in tree!"); 350 ScalarToTreeEntry[VL[i]] = idx; 351 } 352 } else { 353 Last->LastScalarIndex = 0; 354 MustGather.insert(VL.begin(), VL.end()); 355 } 356 return Last; 357 } 358 359 /// -- Vectorization State -- 360 /// Holds all of the tree entries. 361 std::vector<TreeEntry> VectorizableTree; 362 363 /// Maps a specific scalar to its tree entry. 364 SmallDenseMap<Value*, int> ScalarToTreeEntry; 365 366 /// A list of scalars that we found that we need to keep as scalars. 367 ValueSet MustGather; 368 369 /// This POD struct describes one external user in the vectorized tree. 370 struct ExternalUser { 371 ExternalUser (Value *S, llvm::User *U, int L) : 372 Scalar(S), User(U), Lane(L){}; 373 // Which scalar in our function. 374 Value *Scalar; 375 // Which user that uses the scalar. 376 llvm::User *User; 377 // Which lane does the scalar belong to. 378 int Lane; 379 }; 380 typedef SmallVector<ExternalUser, 16> UserList; 381 382 /// A list of values that need to extracted out of the tree. 383 /// This list holds pairs of (Internal Scalar : External User). 384 UserList ExternalUses; 385 386 /// A list of instructions to ignore while sinking 387 /// memory instructions. This map must be reset between runs of getCost. 388 ValueSet MemBarrierIgnoreList; 389 390 /// Holds all of the instructions that we gathered. 391 SetVector<Instruction *> GatherSeq; 392 393 /// Numbers instructions in different blocks. 394 std::map<BasicBlock *, BlockNumbering> BlocksNumbers; 395 396 // Analysis and block reference. 397 Function *F; 398 ScalarEvolution *SE; 399 DataLayout *DL; 400 TargetTransformInfo *TTI; 401 AliasAnalysis *AA; 402 LoopInfo *LI; 403 DominatorTree *DT; 404 /// Instruction builder to construct the vectorized tree. 405 IRBuilder<> Builder; 406 }; 407 408 void BoUpSLP::buildTree(ArrayRef<Value *> Roots) { 409 deleteTree(); 410 if (!getSameType(Roots)) 411 return; 412 buildTree_rec(Roots, 0); 413 414 // Collect the values that we need to extract from the tree. 415 for (int EIdx = 0, EE = VectorizableTree.size(); EIdx < EE; ++EIdx) { 416 TreeEntry *Entry = &VectorizableTree[EIdx]; 417 418 // For each lane: 419 for (int Lane = 0, LE = Entry->Scalars.size(); Lane != LE; ++Lane) { 420 Value *Scalar = Entry->Scalars[Lane]; 421 422 // No need to handle users of gathered values. 423 if (Entry->NeedToGather) 424 continue; 425 426 for (Value::use_iterator User = Scalar->use_begin(), 427 UE = Scalar->use_end(); User != UE; ++User) { 428 DEBUG(dbgs() << "SLP: Checking user:" << **User << ".\n"); 429 430 bool Gathered = MustGather.count(*User); 431 432 // Skip in-tree scalars that become vectors. 433 if (ScalarToTreeEntry.count(*User) && !Gathered) { 434 DEBUG(dbgs() << "SLP: \tInternal user will be removed:" << 435 **User << ".\n"); 436 int Idx = ScalarToTreeEntry[*User]; (void) Idx; 437 assert(!VectorizableTree[Idx].NeedToGather && "Bad state"); 438 continue; 439 } 440 441 if (!isa<Instruction>(*User)) 442 continue; 443 444 DEBUG(dbgs() << "SLP: Need to extract:" << **User << " from lane " << 445 Lane << " from " << *Scalar << ".\n"); 446 ExternalUses.push_back(ExternalUser(Scalar, *User, Lane)); 447 } 448 } 449 } 450 } 451 452 453 void BoUpSLP::buildTree_rec(ArrayRef<Value *> VL, unsigned Depth) { 454 bool SameTy = getSameType(VL); (void)SameTy; 455 assert(SameTy && "Invalid types!"); 456 457 if (Depth == RecursionMaxDepth) { 458 DEBUG(dbgs() << "SLP: Gathering due to max recursion depth.\n"); 459 newTreeEntry(VL, false); 460 return; 461 } 462 463 // Don't handle vectors. 464 if (VL[0]->getType()->isVectorTy()) { 465 DEBUG(dbgs() << "SLP: Gathering due to vector type.\n"); 466 newTreeEntry(VL, false); 467 return; 468 } 469 470 if (StoreInst *SI = dyn_cast<StoreInst>(VL[0])) 471 if (SI->getValueOperand()->getType()->isVectorTy()) { 472 DEBUG(dbgs() << "SLP: Gathering due to store vector type.\n"); 473 newTreeEntry(VL, false); 474 return; 475 } 476 477 // If all of the operands are identical or constant we have a simple solution. 478 if (allConstant(VL) || isSplat(VL) || !getSameBlock(VL) || 479 !getSameOpcode(VL)) { 480 DEBUG(dbgs() << "SLP: Gathering due to C,S,B,O. \n"); 481 newTreeEntry(VL, false); 482 return; 483 } 484 485 // We now know that this is a vector of instructions of the same type from 486 // the same block. 487 488 // Check if this is a duplicate of another entry. 489 if (ScalarToTreeEntry.count(VL[0])) { 490 int Idx = ScalarToTreeEntry[VL[0]]; 491 TreeEntry *E = &VectorizableTree[Idx]; 492 for (unsigned i = 0, e = VL.size(); i != e; ++i) { 493 DEBUG(dbgs() << "SLP: \tChecking bundle: " << *VL[i] << ".\n"); 494 if (E->Scalars[i] != VL[i]) { 495 DEBUG(dbgs() << "SLP: Gathering due to partial overlap.\n"); 496 newTreeEntry(VL, false); 497 return; 498 } 499 } 500 DEBUG(dbgs() << "SLP: Perfect diamond merge at " << *VL[0] << ".\n"); 501 return; 502 } 503 504 // Check that none of the instructions in the bundle are already in the tree. 505 for (unsigned i = 0, e = VL.size(); i != e; ++i) { 506 if (ScalarToTreeEntry.count(VL[i])) { 507 DEBUG(dbgs() << "SLP: The instruction (" << *VL[i] << 508 ") is already in tree.\n"); 509 newTreeEntry(VL, false); 510 return; 511 } 512 } 513 514 // If any of the scalars appears in the table OR it is marked as a value that 515 // needs to stat scalar then we need to gather the scalars. 516 for (unsigned i = 0, e = VL.size(); i != e; ++i) { 517 if (ScalarToTreeEntry.count(VL[i]) || MustGather.count(VL[i])) { 518 DEBUG(dbgs() << "SLP: Gathering due to gathered scalar. \n"); 519 newTreeEntry(VL, false); 520 return; 521 } 522 } 523 524 // Check that all of the users of the scalars that we want to vectorize are 525 // schedulable. 526 Instruction *VL0 = cast<Instruction>(VL[0]); 527 int MyLastIndex = getLastIndex(VL); 528 BasicBlock *BB = cast<Instruction>(VL0)->getParent(); 529 530 for (unsigned i = 0, e = VL.size(); i != e; ++i) { 531 Instruction *Scalar = cast<Instruction>(VL[i]); 532 DEBUG(dbgs() << "SLP: Checking users of " << *Scalar << ". \n"); 533 for (Value::use_iterator U = Scalar->use_begin(), UE = Scalar->use_end(); 534 U != UE; ++U) { 535 DEBUG(dbgs() << "SLP: \tUser " << **U << ". \n"); 536 Instruction *User = dyn_cast<Instruction>(*U); 537 if (!User) { 538 DEBUG(dbgs() << "SLP: Gathering due unknown user. \n"); 539 newTreeEntry(VL, false); 540 return; 541 } 542 543 // We don't care if the user is in a different basic block. 544 BasicBlock *UserBlock = User->getParent(); 545 if (UserBlock != BB) { 546 DEBUG(dbgs() << "SLP: User from a different basic block " 547 << *User << ". \n"); 548 continue; 549 } 550 551 // If this is a PHINode within this basic block then we can place the 552 // extract wherever we want. 553 if (isa<PHINode>(*User)) { 554 DEBUG(dbgs() << "SLP: \tWe can schedule PHIs:" << *User << ". \n"); 555 continue; 556 } 557 558 // Check if this is a safe in-tree user. 559 if (ScalarToTreeEntry.count(User)) { 560 int Idx = ScalarToTreeEntry[User]; 561 int VecLocation = VectorizableTree[Idx].LastScalarIndex; 562 if (VecLocation <= MyLastIndex) { 563 DEBUG(dbgs() << "SLP: Gathering due to unschedulable vector. \n"); 564 newTreeEntry(VL, false); 565 return; 566 } 567 DEBUG(dbgs() << "SLP: In-tree user (" << *User << ") at #" << 568 VecLocation << " vector value (" << *Scalar << ") at #" 569 << MyLastIndex << ".\n"); 570 continue; 571 } 572 573 // Make sure that we can schedule this unknown user. 574 BlockNumbering &BN = BlocksNumbers[BB]; 575 int UserIndex = BN.getIndex(User); 576 if (UserIndex < MyLastIndex) { 577 578 DEBUG(dbgs() << "SLP: Can't schedule extractelement for " 579 << *User << ". \n"); 580 newTreeEntry(VL, false); 581 return; 582 } 583 } 584 } 585 586 // Check that every instructions appears once in this bundle. 587 for (unsigned i = 0, e = VL.size(); i < e; ++i) 588 for (unsigned j = i+1; j < e; ++j) 589 if (VL[i] == VL[j]) { 590 DEBUG(dbgs() << "SLP: Scalar used twice in bundle.\n"); 591 newTreeEntry(VL, false); 592 return; 593 } 594 595 // Check that instructions in this bundle don't reference other instructions. 596 // The runtime of this check is O(N * N-1 * uses(N)) and a typical N is 4. 597 for (unsigned i = 0, e = VL.size(); i < e; ++i) { 598 for (Value::use_iterator U = VL[i]->use_begin(), UE = VL[i]->use_end(); 599 U != UE; ++U) { 600 for (unsigned j = 0; j < e; ++j) { 601 if (i != j && *U == VL[j]) { 602 DEBUG(dbgs() << "SLP: Intra-bundle dependencies!" << **U << ". \n"); 603 newTreeEntry(VL, false); 604 return; 605 } 606 } 607 } 608 } 609 610 DEBUG(dbgs() << "SLP: We are able to schedule this bundle.\n"); 611 612 unsigned Opcode = getSameOpcode(VL); 613 614 // Check if it is safe to sink the loads or the stores. 615 if (Opcode == Instruction::Load || Opcode == Instruction::Store) { 616 Instruction *Last = getLastInstruction(VL); 617 618 for (unsigned i = 0, e = VL.size(); i < e; ++i) { 619 if (VL[i] == Last) 620 continue; 621 Value *Barrier = getSinkBarrier(cast<Instruction>(VL[i]), Last); 622 if (Barrier) { 623 DEBUG(dbgs() << "SLP: Can't sink " << *VL[i] << "\n down to " << *Last 624 << "\n because of " << *Barrier << ". Gathering.\n"); 625 newTreeEntry(VL, false); 626 return; 627 } 628 } 629 } 630 631 switch (Opcode) { 632 case Instruction::PHI: { 633 PHINode *PH = dyn_cast<PHINode>(VL0); 634 newTreeEntry(VL, true); 635 DEBUG(dbgs() << "SLP: added a vector of PHINodes.\n"); 636 637 for (unsigned i = 0, e = PH->getNumIncomingValues(); i < e; ++i) { 638 ValueList Operands; 639 // Prepare the operand vector. 640 for (unsigned j = 0; j < VL.size(); ++j) 641 Operands.push_back(cast<PHINode>(VL[j])->getIncomingValue(i)); 642 643 buildTree_rec(Operands, Depth + 1); 644 } 645 return; 646 } 647 case Instruction::ExtractElement: { 648 bool Reuse = CanReuseExtract(VL); 649 if (Reuse) { 650 DEBUG(dbgs() << "SLP: Reusing extract sequence.\n"); 651 } 652 newTreeEntry(VL, Reuse); 653 return; 654 } 655 case Instruction::Load: { 656 // Check if the loads are consecutive or of we need to swizzle them. 657 for (unsigned i = 0, e = VL.size() - 1; i < e; ++i) 658 if (!isConsecutiveAccess(VL[i], VL[i + 1])) { 659 newTreeEntry(VL, false); 660 DEBUG(dbgs() << "SLP: Need to swizzle loads.\n"); 661 return; 662 } 663 664 newTreeEntry(VL, true); 665 DEBUG(dbgs() << "SLP: added a vector of loads.\n"); 666 return; 667 } 668 case Instruction::ZExt: 669 case Instruction::SExt: 670 case Instruction::FPToUI: 671 case Instruction::FPToSI: 672 case Instruction::FPExt: 673 case Instruction::PtrToInt: 674 case Instruction::IntToPtr: 675 case Instruction::SIToFP: 676 case Instruction::UIToFP: 677 case Instruction::Trunc: 678 case Instruction::FPTrunc: 679 case Instruction::BitCast: { 680 Type *SrcTy = VL0->getOperand(0)->getType(); 681 for (unsigned i = 0; i < VL.size(); ++i) { 682 Type *Ty = cast<Instruction>(VL[i])->getOperand(0)->getType(); 683 if (Ty != SrcTy || Ty->isAggregateType() || Ty->isVectorTy()) { 684 newTreeEntry(VL, false); 685 DEBUG(dbgs() << "SLP: Gathering casts with different src types.\n"); 686 return; 687 } 688 } 689 newTreeEntry(VL, true); 690 DEBUG(dbgs() << "SLP: added a vector of casts.\n"); 691 692 for (unsigned i = 0, e = VL0->getNumOperands(); i < e; ++i) { 693 ValueList Operands; 694 // Prepare the operand vector. 695 for (unsigned j = 0; j < VL.size(); ++j) 696 Operands.push_back(cast<Instruction>(VL[j])->getOperand(i)); 697 698 buildTree_rec(Operands, Depth+1); 699 } 700 return; 701 } 702 case Instruction::ICmp: 703 case Instruction::FCmp: { 704 // Check that all of the compares have the same predicate. 705 CmpInst::Predicate P0 = dyn_cast<CmpInst>(VL0)->getPredicate(); 706 Type *ComparedTy = cast<Instruction>(VL[0])->getOperand(0)->getType(); 707 for (unsigned i = 1, e = VL.size(); i < e; ++i) { 708 CmpInst *Cmp = cast<CmpInst>(VL[i]); 709 if (Cmp->getPredicate() != P0 || 710 Cmp->getOperand(0)->getType() != ComparedTy) { 711 newTreeEntry(VL, false); 712 DEBUG(dbgs() << "SLP: Gathering cmp with different predicate.\n"); 713 return; 714 } 715 } 716 717 newTreeEntry(VL, true); 718 DEBUG(dbgs() << "SLP: added a vector of compares.\n"); 719 720 for (unsigned i = 0, e = VL0->getNumOperands(); i < e; ++i) { 721 ValueList Operands; 722 // Prepare the operand vector. 723 for (unsigned j = 0; j < VL.size(); ++j) 724 Operands.push_back(cast<Instruction>(VL[j])->getOperand(i)); 725 726 buildTree_rec(Operands, Depth+1); 727 } 728 return; 729 } 730 case Instruction::Select: 731 case Instruction::Add: 732 case Instruction::FAdd: 733 case Instruction::Sub: 734 case Instruction::FSub: 735 case Instruction::Mul: 736 case Instruction::FMul: 737 case Instruction::UDiv: 738 case Instruction::SDiv: 739 case Instruction::FDiv: 740 case Instruction::URem: 741 case Instruction::SRem: 742 case Instruction::FRem: 743 case Instruction::Shl: 744 case Instruction::LShr: 745 case Instruction::AShr: 746 case Instruction::And: 747 case Instruction::Or: 748 case Instruction::Xor: { 749 newTreeEntry(VL, true); 750 DEBUG(dbgs() << "SLP: added a vector of bin op.\n"); 751 752 for (unsigned i = 0, e = VL0->getNumOperands(); i < e; ++i) { 753 ValueList Operands; 754 // Prepare the operand vector. 755 for (unsigned j = 0; j < VL.size(); ++j) 756 Operands.push_back(cast<Instruction>(VL[j])->getOperand(i)); 757 758 buildTree_rec(Operands, Depth+1); 759 } 760 return; 761 } 762 case Instruction::Store: { 763 // Check if the stores are consecutive or of we need to swizzle them. 764 for (unsigned i = 0, e = VL.size() - 1; i < e; ++i) 765 if (!isConsecutiveAccess(VL[i], VL[i + 1])) { 766 newTreeEntry(VL, false); 767 DEBUG(dbgs() << "SLP: Non consecutive store.\n"); 768 return; 769 } 770 771 newTreeEntry(VL, true); 772 DEBUG(dbgs() << "SLP: added a vector of stores.\n"); 773 774 ValueList Operands; 775 for (unsigned j = 0; j < VL.size(); ++j) 776 Operands.push_back(cast<Instruction>(VL[j])->getOperand(0)); 777 778 // We can ignore these values because we are sinking them down. 779 MemBarrierIgnoreList.insert(VL.begin(), VL.end()); 780 buildTree_rec(Operands, Depth + 1); 781 return; 782 } 783 default: 784 newTreeEntry(VL, false); 785 DEBUG(dbgs() << "SLP: Gathering unknown instruction.\n"); 786 return; 787 } 788 } 789 790 int BoUpSLP::getEntryCost(TreeEntry *E) { 791 ArrayRef<Value*> VL = E->Scalars; 792 793 Type *ScalarTy = VL[0]->getType(); 794 if (StoreInst *SI = dyn_cast<StoreInst>(VL[0])) 795 ScalarTy = SI->getValueOperand()->getType(); 796 VectorType *VecTy = VectorType::get(ScalarTy, VL.size()); 797 798 if (E->NeedToGather) { 799 if (allConstant(VL)) 800 return 0; 801 if (isSplat(VL)) { 802 return TTI->getShuffleCost(TargetTransformInfo::SK_Broadcast, VecTy, 0); 803 } 804 return getGatherCost(E->Scalars); 805 } 806 807 assert(getSameOpcode(VL) && getSameType(VL) && getSameBlock(VL) && 808 "Invalid VL"); 809 Instruction *VL0 = cast<Instruction>(VL[0]); 810 unsigned Opcode = VL0->getOpcode(); 811 switch (Opcode) { 812 case Instruction::PHI: { 813 return 0; 814 } 815 case Instruction::ExtractElement: { 816 if (CanReuseExtract(VL)) 817 return 0; 818 return getGatherCost(VecTy); 819 } 820 case Instruction::ZExt: 821 case Instruction::SExt: 822 case Instruction::FPToUI: 823 case Instruction::FPToSI: 824 case Instruction::FPExt: 825 case Instruction::PtrToInt: 826 case Instruction::IntToPtr: 827 case Instruction::SIToFP: 828 case Instruction::UIToFP: 829 case Instruction::Trunc: 830 case Instruction::FPTrunc: 831 case Instruction::BitCast: { 832 Type *SrcTy = VL0->getOperand(0)->getType(); 833 834 // Calculate the cost of this instruction. 835 int ScalarCost = VL.size() * TTI->getCastInstrCost(VL0->getOpcode(), 836 VL0->getType(), SrcTy); 837 838 VectorType *SrcVecTy = VectorType::get(SrcTy, VL.size()); 839 int VecCost = TTI->getCastInstrCost(VL0->getOpcode(), VecTy, SrcVecTy); 840 return VecCost - ScalarCost; 841 } 842 case Instruction::FCmp: 843 case Instruction::ICmp: 844 case Instruction::Select: 845 case Instruction::Add: 846 case Instruction::FAdd: 847 case Instruction::Sub: 848 case Instruction::FSub: 849 case Instruction::Mul: 850 case Instruction::FMul: 851 case Instruction::UDiv: 852 case Instruction::SDiv: 853 case Instruction::FDiv: 854 case Instruction::URem: 855 case Instruction::SRem: 856 case Instruction::FRem: 857 case Instruction::Shl: 858 case Instruction::LShr: 859 case Instruction::AShr: 860 case Instruction::And: 861 case Instruction::Or: 862 case Instruction::Xor: { 863 // Calculate the cost of this instruction. 864 int ScalarCost = 0; 865 int VecCost = 0; 866 if (Opcode == Instruction::FCmp || Opcode == Instruction::ICmp || 867 Opcode == Instruction::Select) { 868 VectorType *MaskTy = VectorType::get(Builder.getInt1Ty(), VL.size()); 869 ScalarCost = VecTy->getNumElements() * 870 TTI->getCmpSelInstrCost(Opcode, ScalarTy, Builder.getInt1Ty()); 871 VecCost = TTI->getCmpSelInstrCost(Opcode, VecTy, MaskTy); 872 } else { 873 ScalarCost = VecTy->getNumElements() * 874 TTI->getArithmeticInstrCost(Opcode, ScalarTy); 875 VecCost = TTI->getArithmeticInstrCost(Opcode, VecTy); 876 } 877 return VecCost - ScalarCost; 878 } 879 case Instruction::Load: { 880 // Cost of wide load - cost of scalar loads. 881 int ScalarLdCost = VecTy->getNumElements() * 882 TTI->getMemoryOpCost(Instruction::Load, ScalarTy, 1, 0); 883 int VecLdCost = TTI->getMemoryOpCost(Instruction::Load, ScalarTy, 1, 0); 884 return VecLdCost - ScalarLdCost; 885 } 886 case Instruction::Store: { 887 // We know that we can merge the stores. Calculate the cost. 888 int ScalarStCost = VecTy->getNumElements() * 889 TTI->getMemoryOpCost(Instruction::Store, ScalarTy, 1, 0); 890 int VecStCost = TTI->getMemoryOpCost(Instruction::Store, ScalarTy, 1, 0); 891 return VecStCost - ScalarStCost; 892 } 893 default: 894 llvm_unreachable("Unknown instruction"); 895 } 896 } 897 898 int BoUpSLP::getTreeCost() { 899 int Cost = 0; 900 DEBUG(dbgs() << "SLP: Calculating cost for tree of size " << 901 VectorizableTree.size() << ".\n"); 902 903 if (!VectorizableTree.size()) { 904 assert(!ExternalUses.size() && "We should not have any external users"); 905 return 0; 906 } 907 908 unsigned BundleWidth = VectorizableTree[0].Scalars.size(); 909 910 for (unsigned i = 0, e = VectorizableTree.size(); i != e; ++i) { 911 int C = getEntryCost(&VectorizableTree[i]); 912 DEBUG(dbgs() << "SLP: Adding cost " << C << " for bundle that starts with " 913 << *VectorizableTree[i].Scalars[0] << " .\n"); 914 Cost += C; 915 } 916 917 int ExtractCost = 0; 918 for (UserList::iterator I = ExternalUses.begin(), E = ExternalUses.end(); 919 I != E; ++I) { 920 921 VectorType *VecTy = VectorType::get(I->Scalar->getType(), BundleWidth); 922 ExtractCost += TTI->getVectorInstrCost(Instruction::ExtractElement, VecTy, 923 I->Lane); 924 } 925 926 927 DEBUG(dbgs() << "SLP: Total Cost " << Cost + ExtractCost<< ".\n"); 928 return Cost + ExtractCost; 929 } 930 931 int BoUpSLP::getGatherCost(Type *Ty) { 932 int Cost = 0; 933 for (unsigned i = 0, e = cast<VectorType>(Ty)->getNumElements(); i < e; ++i) 934 Cost += TTI->getVectorInstrCost(Instruction::InsertElement, Ty, i); 935 return Cost; 936 } 937 938 int BoUpSLP::getGatherCost(ArrayRef<Value *> VL) { 939 // Find the type of the operands in VL. 940 Type *ScalarTy = VL[0]->getType(); 941 if (StoreInst *SI = dyn_cast<StoreInst>(VL[0])) 942 ScalarTy = SI->getValueOperand()->getType(); 943 VectorType *VecTy = VectorType::get(ScalarTy, VL.size()); 944 // Find the cost of inserting/extracting values from the vector. 945 return getGatherCost(VecTy); 946 } 947 948 AliasAnalysis::Location BoUpSLP::getLocation(Instruction *I) { 949 if (StoreInst *SI = dyn_cast<StoreInst>(I)) 950 return AA->getLocation(SI); 951 if (LoadInst *LI = dyn_cast<LoadInst>(I)) 952 return AA->getLocation(LI); 953 return AliasAnalysis::Location(); 954 } 955 956 Value *BoUpSLP::getPointerOperand(Value *I) { 957 if (LoadInst *LI = dyn_cast<LoadInst>(I)) 958 return LI->getPointerOperand(); 959 if (StoreInst *SI = dyn_cast<StoreInst>(I)) 960 return SI->getPointerOperand(); 961 return 0; 962 } 963 964 unsigned BoUpSLP::getAddressSpaceOperand(Value *I) { 965 if (LoadInst *L = dyn_cast<LoadInst>(I)) 966 return L->getPointerAddressSpace(); 967 if (StoreInst *S = dyn_cast<StoreInst>(I)) 968 return S->getPointerAddressSpace(); 969 return -1; 970 } 971 972 bool BoUpSLP::isConsecutiveAccess(Value *A, Value *B) { 973 Value *PtrA = getPointerOperand(A); 974 Value *PtrB = getPointerOperand(B); 975 unsigned ASA = getAddressSpaceOperand(A); 976 unsigned ASB = getAddressSpaceOperand(B); 977 978 // Check that the address spaces match and that the pointers are valid. 979 if (!PtrA || !PtrB || (ASA != ASB)) 980 return false; 981 982 // Check that A and B are of the same type. 983 if (PtrA->getType() != PtrB->getType()) 984 return false; 985 986 // Calculate the distance. 987 const SCEV *PtrSCEVA = SE->getSCEV(PtrA); 988 const SCEV *PtrSCEVB = SE->getSCEV(PtrB); 989 const SCEV *OffsetSCEV = SE->getMinusSCEV(PtrSCEVA, PtrSCEVB); 990 const SCEVConstant *ConstOffSCEV = dyn_cast<SCEVConstant>(OffsetSCEV); 991 992 // Non constant distance. 993 if (!ConstOffSCEV) 994 return false; 995 996 int64_t Offset = ConstOffSCEV->getValue()->getSExtValue(); 997 Type *Ty = cast<PointerType>(PtrA->getType())->getElementType(); 998 // The Instructions are connsecutive if the size of the first load/store is 999 // the same as the offset. 1000 int64_t Sz = DL->getTypeStoreSize(Ty); 1001 return ((-Offset) == Sz); 1002 } 1003 1004 Value *BoUpSLP::getSinkBarrier(Instruction *Src, Instruction *Dst) { 1005 assert(Src->getParent() == Dst->getParent() && "Not the same BB"); 1006 BasicBlock::iterator I = Src, E = Dst; 1007 /// Scan all of the instruction from SRC to DST and check if 1008 /// the source may alias. 1009 for (++I; I != E; ++I) { 1010 // Ignore store instructions that are marked as 'ignore'. 1011 if (MemBarrierIgnoreList.count(I)) 1012 continue; 1013 if (Src->mayWriteToMemory()) /* Write */ { 1014 if (!I->mayReadOrWriteMemory()) 1015 continue; 1016 } else /* Read */ { 1017 if (!I->mayWriteToMemory()) 1018 continue; 1019 } 1020 AliasAnalysis::Location A = getLocation(&*I); 1021 AliasAnalysis::Location B = getLocation(Src); 1022 1023 if (!A.Ptr || !B.Ptr || AA->alias(A, B)) 1024 return I; 1025 } 1026 return 0; 1027 } 1028 1029 int BoUpSLP::getLastIndex(ArrayRef<Value *> VL) { 1030 BasicBlock *BB = cast<Instruction>(VL[0])->getParent(); 1031 assert(BB == getSameBlock(VL) && BlocksNumbers.count(BB) && "Invalid block"); 1032 BlockNumbering &BN = BlocksNumbers[BB]; 1033 1034 int MaxIdx = BN.getIndex(BB->getFirstNonPHI()); 1035 for (unsigned i = 0, e = VL.size(); i < e; ++i) 1036 MaxIdx = std::max(MaxIdx, BN.getIndex(cast<Instruction>(VL[i]))); 1037 return MaxIdx; 1038 } 1039 1040 Instruction *BoUpSLP::getLastInstruction(ArrayRef<Value *> VL) { 1041 BasicBlock *BB = cast<Instruction>(VL[0])->getParent(); 1042 assert(BB == getSameBlock(VL) && BlocksNumbers.count(BB) && "Invalid block"); 1043 BlockNumbering &BN = BlocksNumbers[BB]; 1044 1045 int MaxIdx = BN.getIndex(cast<Instruction>(VL[0])); 1046 for (unsigned i = 1, e = VL.size(); i < e; ++i) 1047 MaxIdx = std::max(MaxIdx, BN.getIndex(cast<Instruction>(VL[i]))); 1048 Instruction *I = BN.getInstruction(MaxIdx); 1049 assert(I && "bad location"); 1050 return I; 1051 } 1052 1053 Instruction *BoUpSLP::getInstructionForIndex(unsigned Index, BasicBlock *BB) { 1054 BlockNumbering &BN = BlocksNumbers[BB]; 1055 return BN.getInstruction(Index); 1056 } 1057 1058 int BoUpSLP::getFirstUserIndex(ArrayRef<Value *> VL) { 1059 BasicBlock *BB = getSameBlock(VL); 1060 assert(BB && "All instructions must come from the same block"); 1061 BlockNumbering &BN = BlocksNumbers[BB]; 1062 1063 // Find the first user of the values. 1064 int FirstUser = BN.getIndex(BB->getTerminator()); 1065 for (unsigned i = 0, e = VL.size(); i < e; ++i) { 1066 for (Value::use_iterator U = VL[i]->use_begin(), UE = VL[i]->use_end(); 1067 U != UE; ++U) { 1068 Instruction *Instr = dyn_cast<Instruction>(*U); 1069 1070 if (!Instr || Instr->getParent() != BB) 1071 continue; 1072 1073 FirstUser = std::min(FirstUser, BN.getIndex(Instr)); 1074 } 1075 } 1076 return FirstUser; 1077 } 1078 1079 Value *BoUpSLP::Gather(ArrayRef<Value *> VL, VectorType *Ty) { 1080 Value *Vec = UndefValue::get(Ty); 1081 // Generate the 'InsertElement' instruction. 1082 for (unsigned i = 0; i < Ty->getNumElements(); ++i) { 1083 Vec = Builder.CreateInsertElement(Vec, VL[i], Builder.getInt32(i)); 1084 if (Instruction *Insrt = dyn_cast<Instruction>(Vec)) { 1085 GatherSeq.insert(Insrt); 1086 1087 // Add to our 'need-to-extract' list. 1088 if (ScalarToTreeEntry.count(VL[i])) { 1089 int Idx = ScalarToTreeEntry[VL[i]]; 1090 TreeEntry *E = &VectorizableTree[Idx]; 1091 // Find which lane we need to extract. 1092 int FoundLane = -1; 1093 for (unsigned Lane = 0, LE = VL.size(); Lane != LE; ++Lane) { 1094 // Is this the lane of the scalar that we are looking for ? 1095 if (E->Scalars[Lane] == VL[i]) { 1096 FoundLane = Lane; 1097 break; 1098 } 1099 } 1100 assert(FoundLane >= 0 && "Could not find the correct lane"); 1101 ExternalUses.push_back(ExternalUser(VL[i], Insrt, FoundLane)); 1102 } 1103 } 1104 } 1105 1106 return Vec; 1107 } 1108 1109 Value *BoUpSLP::vectorizeTree(ArrayRef<Value *> VL) { 1110 if (ScalarToTreeEntry.count(VL[0])) { 1111 int Idx = ScalarToTreeEntry[VL[0]]; 1112 TreeEntry *E = &VectorizableTree[Idx]; 1113 if (E->isSame(VL)) 1114 return vectorizeTree(E); 1115 } 1116 1117 Type *ScalarTy = VL[0]->getType(); 1118 if (StoreInst *SI = dyn_cast<StoreInst>(VL[0])) 1119 ScalarTy = SI->getValueOperand()->getType(); 1120 VectorType *VecTy = VectorType::get(ScalarTy, VL.size()); 1121 1122 return Gather(VL, VecTy); 1123 } 1124 1125 Value *BoUpSLP::vectorizeTree(TreeEntry *E) { 1126 BuilderLocGuard Guard(Builder); 1127 1128 if (E->VectorizedValue) { 1129 DEBUG(dbgs() << "SLP: Diamond merged for " << *E->Scalars[0] << ".\n"); 1130 return E->VectorizedValue; 1131 } 1132 1133 Type *ScalarTy = E->Scalars[0]->getType(); 1134 if (StoreInst *SI = dyn_cast<StoreInst>(E->Scalars[0])) 1135 ScalarTy = SI->getValueOperand()->getType(); 1136 VectorType *VecTy = VectorType::get(ScalarTy, E->Scalars.size()); 1137 1138 if (E->NeedToGather) { 1139 return Gather(E->Scalars, VecTy); 1140 } 1141 1142 Instruction *VL0 = cast<Instruction>(E->Scalars[0]); 1143 unsigned Opcode = VL0->getOpcode(); 1144 assert(Opcode == getSameOpcode(E->Scalars) && "Invalid opcode"); 1145 1146 switch (Opcode) { 1147 case Instruction::PHI: { 1148 PHINode *PH = dyn_cast<PHINode>(VL0); 1149 Builder.SetInsertPoint(PH->getParent()->getFirstInsertionPt()); 1150 PHINode *NewPhi = Builder.CreatePHI(VecTy, PH->getNumIncomingValues()); 1151 E->VectorizedValue = NewPhi; 1152 1153 for (unsigned i = 0, e = PH->getNumIncomingValues(); i < e; ++i) { 1154 ValueList Operands; 1155 BasicBlock *IBB = PH->getIncomingBlock(i); 1156 1157 // Prepare the operand vector. 1158 for (unsigned j = 0; j < E->Scalars.size(); ++j) 1159 Operands.push_back(cast<PHINode>(E->Scalars[j])-> 1160 getIncomingValueForBlock(IBB)); 1161 1162 Builder.SetInsertPoint(IBB->getTerminator()); 1163 Value *Vec = vectorizeTree(Operands); 1164 NewPhi->addIncoming(Vec, IBB); 1165 } 1166 1167 assert(NewPhi->getNumIncomingValues() == PH->getNumIncomingValues() && 1168 "Invalid number of incoming values"); 1169 return NewPhi; 1170 } 1171 1172 case Instruction::ExtractElement: { 1173 if (CanReuseExtract(E->Scalars)) { 1174 Value *V = VL0->getOperand(0); 1175 E->VectorizedValue = V; 1176 return V; 1177 } 1178 return Gather(E->Scalars, VecTy); 1179 } 1180 case Instruction::ZExt: 1181 case Instruction::SExt: 1182 case Instruction::FPToUI: 1183 case Instruction::FPToSI: 1184 case Instruction::FPExt: 1185 case Instruction::PtrToInt: 1186 case Instruction::IntToPtr: 1187 case Instruction::SIToFP: 1188 case Instruction::UIToFP: 1189 case Instruction::Trunc: 1190 case Instruction::FPTrunc: 1191 case Instruction::BitCast: { 1192 ValueList INVL; 1193 for (int i = 0, e = E->Scalars.size(); i < e; ++i) 1194 INVL.push_back(cast<Instruction>(E->Scalars[i])->getOperand(0)); 1195 1196 Builder.SetInsertPoint(getLastInstruction(E->Scalars)); 1197 Value *InVec = vectorizeTree(INVL); 1198 CastInst *CI = dyn_cast<CastInst>(VL0); 1199 Value *V = Builder.CreateCast(CI->getOpcode(), InVec, VecTy); 1200 E->VectorizedValue = V; 1201 return V; 1202 } 1203 case Instruction::FCmp: 1204 case Instruction::ICmp: { 1205 ValueList LHSV, RHSV; 1206 for (int i = 0, e = E->Scalars.size(); i < e; ++i) { 1207 LHSV.push_back(cast<Instruction>(E->Scalars[i])->getOperand(0)); 1208 RHSV.push_back(cast<Instruction>(E->Scalars[i])->getOperand(1)); 1209 } 1210 1211 Builder.SetInsertPoint(getLastInstruction(E->Scalars)); 1212 Value *L = vectorizeTree(LHSV); 1213 Value *R = vectorizeTree(RHSV); 1214 Value *V; 1215 1216 CmpInst::Predicate P0 = dyn_cast<CmpInst>(VL0)->getPredicate(); 1217 if (Opcode == Instruction::FCmp) 1218 V = Builder.CreateFCmp(P0, L, R); 1219 else 1220 V = Builder.CreateICmp(P0, L, R); 1221 1222 E->VectorizedValue = V; 1223 return V; 1224 } 1225 case Instruction::Select: { 1226 ValueList TrueVec, FalseVec, CondVec; 1227 for (int i = 0, e = E->Scalars.size(); i < e; ++i) { 1228 CondVec.push_back(cast<Instruction>(E->Scalars[i])->getOperand(0)); 1229 TrueVec.push_back(cast<Instruction>(E->Scalars[i])->getOperand(1)); 1230 FalseVec.push_back(cast<Instruction>(E->Scalars[i])->getOperand(2)); 1231 } 1232 1233 Builder.SetInsertPoint(getLastInstruction(E->Scalars)); 1234 Value *Cond = vectorizeTree(CondVec); 1235 Value *True = vectorizeTree(TrueVec); 1236 Value *False = vectorizeTree(FalseVec); 1237 Value *V = Builder.CreateSelect(Cond, True, False); 1238 E->VectorizedValue = V; 1239 return V; 1240 } 1241 case Instruction::Add: 1242 case Instruction::FAdd: 1243 case Instruction::Sub: 1244 case Instruction::FSub: 1245 case Instruction::Mul: 1246 case Instruction::FMul: 1247 case Instruction::UDiv: 1248 case Instruction::SDiv: 1249 case Instruction::FDiv: 1250 case Instruction::URem: 1251 case Instruction::SRem: 1252 case Instruction::FRem: 1253 case Instruction::Shl: 1254 case Instruction::LShr: 1255 case Instruction::AShr: 1256 case Instruction::And: 1257 case Instruction::Or: 1258 case Instruction::Xor: { 1259 ValueList LHSVL, RHSVL; 1260 for (int i = 0, e = E->Scalars.size(); i < e; ++i) { 1261 LHSVL.push_back(cast<Instruction>(E->Scalars[i])->getOperand(0)); 1262 RHSVL.push_back(cast<Instruction>(E->Scalars[i])->getOperand(1)); 1263 } 1264 1265 Builder.SetInsertPoint(getLastInstruction(E->Scalars)); 1266 Value *LHS = vectorizeTree(LHSVL); 1267 Value *RHS = vectorizeTree(RHSVL); 1268 1269 if (LHS == RHS && isa<Instruction>(LHS)) { 1270 assert((VL0->getOperand(0) == VL0->getOperand(1)) && "Invalid order"); 1271 } 1272 1273 BinaryOperator *BinOp = cast<BinaryOperator>(VL0); 1274 Value *V = Builder.CreateBinOp(BinOp->getOpcode(), LHS, RHS); 1275 E->VectorizedValue = V; 1276 return V; 1277 } 1278 case Instruction::Load: { 1279 // Loads are inserted at the head of the tree because we don't want to 1280 // sink them all the way down past store instructions. 1281 Builder.SetInsertPoint(getLastInstruction(E->Scalars)); 1282 LoadInst *LI = cast<LoadInst>(VL0); 1283 Value *VecPtr = 1284 Builder.CreateBitCast(LI->getPointerOperand(), VecTy->getPointerTo()); 1285 unsigned Alignment = LI->getAlignment(); 1286 LI = Builder.CreateLoad(VecPtr); 1287 LI->setAlignment(Alignment); 1288 E->VectorizedValue = LI; 1289 return LI; 1290 } 1291 case Instruction::Store: { 1292 StoreInst *SI = cast<StoreInst>(VL0); 1293 unsigned Alignment = SI->getAlignment(); 1294 1295 ValueList ValueOp; 1296 for (int i = 0, e = E->Scalars.size(); i < e; ++i) 1297 ValueOp.push_back(cast<StoreInst>(E->Scalars[i])->getValueOperand()); 1298 1299 Builder.SetInsertPoint(getLastInstruction(E->Scalars)); 1300 Value *VecValue = vectorizeTree(ValueOp); 1301 Value *VecPtr = 1302 Builder.CreateBitCast(SI->getPointerOperand(), VecTy->getPointerTo()); 1303 StoreInst *S = Builder.CreateStore(VecValue, VecPtr); 1304 S->setAlignment(Alignment); 1305 E->VectorizedValue = S; 1306 return S; 1307 } 1308 default: 1309 llvm_unreachable("unknown inst"); 1310 } 1311 return 0; 1312 } 1313 1314 void BoUpSLP::vectorizeTree() { 1315 Builder.SetInsertPoint(F->getEntryBlock().begin()); 1316 vectorizeTree(&VectorizableTree[0]); 1317 1318 DEBUG(dbgs() << "SLP: Extracting " << ExternalUses.size() << " values .\n"); 1319 1320 // Extract all of the elements with the external uses. 1321 for (UserList::iterator it = ExternalUses.begin(), e = ExternalUses.end(); 1322 it != e; ++it) { 1323 Value *Scalar = it->Scalar; 1324 llvm::User *User = it->User; 1325 1326 // Skip users that we already RAUW. This happens when one instruction 1327 // has multiple uses of the same value. 1328 if (std::find(Scalar->use_begin(), Scalar->use_end(), User) == 1329 Scalar->use_end()) 1330 continue; 1331 assert(ScalarToTreeEntry.count(Scalar) && "Invalid scalar"); 1332 1333 int Idx = ScalarToTreeEntry[Scalar]; 1334 TreeEntry *E = &VectorizableTree[Idx]; 1335 assert(!E->NeedToGather && "Extracting from a gather list"); 1336 1337 Value *Vec = E->VectorizedValue; 1338 assert(Vec && "Can't find vectorizable value"); 1339 1340 // Generate extracts for out-of-tree users. 1341 // Find the insertion point for the extractelement lane. 1342 Instruction *Loc = 0; 1343 if (PHINode *PN = dyn_cast<PHINode>(Vec)) { 1344 Loc = PN->getParent()->getFirstInsertionPt(); 1345 } else if (isa<Instruction>(Vec)){ 1346 if (PHINode *PH = dyn_cast<PHINode>(User)) { 1347 for (int i = 0, e = PH->getNumIncomingValues(); i != e; ++i) { 1348 if (PH->getIncomingValue(i) == Scalar) { 1349 Loc = PH->getIncomingBlock(i)->getTerminator(); 1350 break; 1351 } 1352 } 1353 assert(Loc && "Unable to find incoming value for the PHI"); 1354 } else { 1355 Loc = cast<Instruction>(User); 1356 } 1357 } else { 1358 Loc = F->getEntryBlock().begin(); 1359 } 1360 1361 Builder.SetInsertPoint(Loc); 1362 Value *Ex = Builder.CreateExtractElement(Vec, Builder.getInt32(it->Lane)); 1363 User->replaceUsesOfWith(Scalar, Ex); 1364 DEBUG(dbgs() << "SLP: Replaced:" << *User << ".\n"); 1365 } 1366 1367 // For each vectorized value: 1368 for (int EIdx = 0, EE = VectorizableTree.size(); EIdx < EE; ++EIdx) { 1369 TreeEntry *Entry = &VectorizableTree[EIdx]; 1370 1371 // For each lane: 1372 for (int Lane = 0, LE = Entry->Scalars.size(); Lane != LE; ++Lane) { 1373 Value *Scalar = Entry->Scalars[Lane]; 1374 1375 // No need to handle users of gathered values. 1376 if (Entry->NeedToGather) 1377 continue; 1378 1379 assert(Entry->VectorizedValue && "Can't find vectorizable value"); 1380 1381 Type *Ty = Scalar->getType(); 1382 if (!Ty->isVoidTy()) { 1383 for (Value::use_iterator User = Scalar->use_begin(), UE = Scalar->use_end(); 1384 User != UE; ++User) { 1385 DEBUG(dbgs() << "SLP: \tvalidating user:" << **User << ".\n"); 1386 assert(!MustGather.count(*User) && 1387 "Replacing gathered value with undef"); 1388 assert(ScalarToTreeEntry.count(*User) && 1389 "Replacing out-of-tree value with undef"); 1390 } 1391 Value *Undef = UndefValue::get(Ty); 1392 Scalar->replaceAllUsesWith(Undef); 1393 } 1394 DEBUG(dbgs() << "SLP: \tErasing scalar:" << *Scalar << ".\n"); 1395 cast<Instruction>(Scalar)->eraseFromParent(); 1396 } 1397 } 1398 1399 for (Function::iterator it = F->begin(), e = F->end(); it != e; ++it) { 1400 BlocksNumbers[it].forget(); 1401 } 1402 Builder.ClearInsertionPoint(); 1403 } 1404 1405 void BoUpSLP::optimizeGatherSequence() { 1406 DEBUG(dbgs() << "SLP: Optimizing " << GatherSeq.size() 1407 << " gather sequences instructions.\n"); 1408 // LICM InsertElementInst sequences. 1409 for (SetVector<Instruction *>::iterator it = GatherSeq.begin(), 1410 e = GatherSeq.end(); it != e; ++it) { 1411 InsertElementInst *Insert = dyn_cast<InsertElementInst>(*it); 1412 1413 if (!Insert) 1414 continue; 1415 1416 // Check if this block is inside a loop. 1417 Loop *L = LI->getLoopFor(Insert->getParent()); 1418 if (!L) 1419 continue; 1420 1421 // Check if it has a preheader. 1422 BasicBlock *PreHeader = L->getLoopPreheader(); 1423 if (!PreHeader) 1424 continue; 1425 1426 // If the vector or the element that we insert into it are 1427 // instructions that are defined in this basic block then we can't 1428 // hoist this instruction. 1429 Instruction *CurrVec = dyn_cast<Instruction>(Insert->getOperand(0)); 1430 Instruction *NewElem = dyn_cast<Instruction>(Insert->getOperand(1)); 1431 if (CurrVec && L->contains(CurrVec)) 1432 continue; 1433 if (NewElem && L->contains(NewElem)) 1434 continue; 1435 1436 // We can hoist this instruction. Move it to the pre-header. 1437 Insert->moveBefore(PreHeader->getTerminator()); 1438 } 1439 1440 // Perform O(N^2) search over the gather sequences and merge identical 1441 // instructions. TODO: We can further optimize this scan if we split the 1442 // instructions into different buckets based on the insert lane. 1443 SmallPtrSet<Instruction*, 16> Visited; 1444 SmallVector<Instruction*, 16> ToRemove; 1445 ReversePostOrderTraversal<Function*> RPOT(F); 1446 for (ReversePostOrderTraversal<Function*>::rpo_iterator I = RPOT.begin(), 1447 E = RPOT.end(); I != E; ++I) { 1448 BasicBlock *BB = *I; 1449 // For all instructions in the function: 1450 for (BasicBlock::iterator it = BB->begin(), e = BB->end(); it != e; ++it) { 1451 Instruction *In = it; 1452 if ((!isa<InsertElementInst>(In) && !isa<ExtractElementInst>(In)) || 1453 !GatherSeq.count(In)) 1454 continue; 1455 1456 // Check if we can replace this instruction with any of the 1457 // visited instructions. 1458 for (SmallPtrSet<Instruction*, 16>::iterator v = Visited.begin(), 1459 ve = Visited.end(); v != ve; ++v) { 1460 if (In->isIdenticalTo(*v) && 1461 DT->dominates((*v)->getParent(), In->getParent())) { 1462 In->replaceAllUsesWith(*v); 1463 ToRemove.push_back(In); 1464 In = 0; 1465 break; 1466 } 1467 } 1468 if (In) 1469 Visited.insert(In); 1470 } 1471 } 1472 1473 // Erase all of the instructions that we RAUWed. 1474 for (SmallVectorImpl<Instruction *>::iterator v = ToRemove.begin(), 1475 ve = ToRemove.end(); v != ve; ++v) { 1476 assert((*v)->getNumUses() == 0 && "Can't remove instructions with uses"); 1477 (*v)->eraseFromParent(); 1478 } 1479 } 1480 1481 /// The SLPVectorizer Pass. 1482 struct SLPVectorizer : public FunctionPass { 1483 typedef SmallVector<StoreInst *, 8> StoreList; 1484 typedef MapVector<Value *, StoreList> StoreListMap; 1485 1486 /// Pass identification, replacement for typeid 1487 static char ID; 1488 1489 explicit SLPVectorizer() : FunctionPass(ID) { 1490 initializeSLPVectorizerPass(*PassRegistry::getPassRegistry()); 1491 } 1492 1493 ScalarEvolution *SE; 1494 DataLayout *DL; 1495 TargetTransformInfo *TTI; 1496 AliasAnalysis *AA; 1497 LoopInfo *LI; 1498 DominatorTree *DT; 1499 1500 virtual bool runOnFunction(Function &F) { 1501 SE = &getAnalysis<ScalarEvolution>(); 1502 DL = getAnalysisIfAvailable<DataLayout>(); 1503 TTI = &getAnalysis<TargetTransformInfo>(); 1504 AA = &getAnalysis<AliasAnalysis>(); 1505 LI = &getAnalysis<LoopInfo>(); 1506 DT = &getAnalysis<DominatorTree>(); 1507 1508 StoreRefs.clear(); 1509 bool Changed = false; 1510 1511 // Must have DataLayout. We can't require it because some tests run w/o 1512 // triple. 1513 if (!DL) 1514 return false; 1515 1516 DEBUG(dbgs() << "SLP: Analyzing blocks in " << F.getName() << ".\n"); 1517 1518 // Use the bollom up slp vectorizer to construct chains that start with 1519 // he store instructions. 1520 BoUpSLP R(&F, SE, DL, TTI, AA, LI, DT); 1521 1522 // Scan the blocks in the function in post order. 1523 for (po_iterator<BasicBlock*> it = po_begin(&F.getEntryBlock()), 1524 e = po_end(&F.getEntryBlock()); it != e; ++it) { 1525 BasicBlock *BB = *it; 1526 1527 // Vectorize trees that end at stores. 1528 if (unsigned count = collectStores(BB, R)) { 1529 (void)count; 1530 DEBUG(dbgs() << "SLP: Found " << count << " stores to vectorize.\n"); 1531 Changed |= vectorizeStoreChains(R); 1532 } 1533 1534 // Vectorize trees that end at reductions. 1535 Changed |= vectorizeChainsInBlock(BB, R); 1536 } 1537 1538 if (Changed) { 1539 R.optimizeGatherSequence(); 1540 DEBUG(dbgs() << "SLP: vectorized \"" << F.getName() << "\"\n"); 1541 DEBUG(verifyFunction(F)); 1542 } 1543 return Changed; 1544 } 1545 1546 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 1547 FunctionPass::getAnalysisUsage(AU); 1548 AU.addRequired<ScalarEvolution>(); 1549 AU.addRequired<AliasAnalysis>(); 1550 AU.addRequired<TargetTransformInfo>(); 1551 AU.addRequired<LoopInfo>(); 1552 AU.addRequired<DominatorTree>(); 1553 AU.addPreserved<LoopInfo>(); 1554 AU.addPreserved<DominatorTree>(); 1555 AU.setPreservesCFG(); 1556 } 1557 1558 private: 1559 1560 /// \brief Collect memory references and sort them according to their base 1561 /// object. We sort the stores to their base objects to reduce the cost of the 1562 /// quadratic search on the stores. TODO: We can further reduce this cost 1563 /// if we flush the chain creation every time we run into a memory barrier. 1564 unsigned collectStores(BasicBlock *BB, BoUpSLP &R); 1565 1566 /// \brief Try to vectorize a chain that starts at two arithmetic instrs. 1567 bool tryToVectorizePair(Value *A, Value *B, BoUpSLP &R); 1568 1569 /// \brief Try to vectorize a list of operands. 1570 /// \returns true if a value was vectorized. 1571 bool tryToVectorizeList(ArrayRef<Value *> VL, BoUpSLP &R); 1572 1573 /// \brief Try to vectorize a chain that may start at the operands of \V; 1574 bool tryToVectorize(BinaryOperator *V, BoUpSLP &R); 1575 1576 /// \brief Vectorize the stores that were collected in StoreRefs. 1577 bool vectorizeStoreChains(BoUpSLP &R); 1578 1579 /// \brief Scan the basic block and look for patterns that are likely to start 1580 /// a vectorization chain. 1581 bool vectorizeChainsInBlock(BasicBlock *BB, BoUpSLP &R); 1582 1583 bool vectorizeStoreChain(ArrayRef<Value *> Chain, int CostThreshold, 1584 BoUpSLP &R); 1585 1586 bool vectorizeStores(ArrayRef<StoreInst *> Stores, int costThreshold, 1587 BoUpSLP &R); 1588 private: 1589 StoreListMap StoreRefs; 1590 }; 1591 1592 bool SLPVectorizer::vectorizeStoreChain(ArrayRef<Value *> Chain, 1593 int CostThreshold, BoUpSLP &R) { 1594 unsigned ChainLen = Chain.size(); 1595 DEBUG(dbgs() << "SLP: Analyzing a store chain of length " << ChainLen 1596 << "\n"); 1597 Type *StoreTy = cast<StoreInst>(Chain[0])->getValueOperand()->getType(); 1598 unsigned Sz = DL->getTypeSizeInBits(StoreTy); 1599 unsigned VF = MinVecRegSize / Sz; 1600 1601 if (!isPowerOf2_32(Sz) || VF < 2) 1602 return false; 1603 1604 bool Changed = false; 1605 // Look for profitable vectorizable trees at all offsets, starting at zero. 1606 for (unsigned i = 0, e = ChainLen; i < e; ++i) { 1607 if (i + VF > e) 1608 break; 1609 DEBUG(dbgs() << "SLP: Analyzing " << VF << " stores at offset " << i 1610 << "\n"); 1611 ArrayRef<Value *> Operands = Chain.slice(i, VF); 1612 1613 R.buildTree(Operands); 1614 1615 int Cost = R.getTreeCost(); 1616 1617 DEBUG(dbgs() << "SLP: Found cost=" << Cost << " for VF=" << VF << "\n"); 1618 if (Cost < CostThreshold) { 1619 DEBUG(dbgs() << "SLP: Decided to vectorize cost=" << Cost << "\n"); 1620 R.vectorizeTree(); 1621 1622 // Move to the next bundle. 1623 i += VF - 1; 1624 Changed = true; 1625 } 1626 } 1627 1628 if (Changed || ChainLen > VF) 1629 return Changed; 1630 1631 // Handle short chains. This helps us catch types such as <3 x float> that 1632 // are smaller than vector size. 1633 R.buildTree(Chain); 1634 1635 int Cost = R.getTreeCost(); 1636 1637 if (Cost < CostThreshold) { 1638 DEBUG(dbgs() << "SLP: Found store chain cost = " << Cost 1639 << " for size = " << ChainLen << "\n"); 1640 R.vectorizeTree(); 1641 return true; 1642 } 1643 1644 return false; 1645 } 1646 1647 bool SLPVectorizer::vectorizeStores(ArrayRef<StoreInst *> Stores, 1648 int costThreshold, BoUpSLP &R) { 1649 SetVector<Value *> Heads, Tails; 1650 SmallDenseMap<Value *, Value *> ConsecutiveChain; 1651 1652 // We may run into multiple chains that merge into a single chain. We mark the 1653 // stores that we vectorized so that we don't visit the same store twice. 1654 BoUpSLP::ValueSet VectorizedStores; 1655 bool Changed = false; 1656 1657 // Do a quadratic search on all of the given stores and find 1658 // all of the pairs of stores that follow each other. 1659 for (unsigned i = 0, e = Stores.size(); i < e; ++i) 1660 for (unsigned j = 0; j < e; ++j) { 1661 if (i == j) 1662 continue; 1663 1664 if (R.isConsecutiveAccess(Stores[i], Stores[j])) { 1665 Tails.insert(Stores[j]); 1666 Heads.insert(Stores[i]); 1667 ConsecutiveChain[Stores[i]] = Stores[j]; 1668 } 1669 } 1670 1671 // For stores that start but don't end a link in the chain: 1672 for (SetVector<Value *>::iterator it = Heads.begin(), e = Heads.end(); 1673 it != e; ++it) { 1674 if (Tails.count(*it)) 1675 continue; 1676 1677 // We found a store instr that starts a chain. Now follow the chain and try 1678 // to vectorize it. 1679 BoUpSLP::ValueList Operands; 1680 Value *I = *it; 1681 // Collect the chain into a list. 1682 while (Tails.count(I) || Heads.count(I)) { 1683 if (VectorizedStores.count(I)) 1684 break; 1685 Operands.push_back(I); 1686 // Move to the next value in the chain. 1687 I = ConsecutiveChain[I]; 1688 } 1689 1690 bool Vectorized = vectorizeStoreChain(Operands, costThreshold, R); 1691 1692 // Mark the vectorized stores so that we don't vectorize them again. 1693 if (Vectorized) 1694 VectorizedStores.insert(Operands.begin(), Operands.end()); 1695 Changed |= Vectorized; 1696 } 1697 1698 return Changed; 1699 } 1700 1701 1702 unsigned SLPVectorizer::collectStores(BasicBlock *BB, BoUpSLP &R) { 1703 unsigned count = 0; 1704 StoreRefs.clear(); 1705 for (BasicBlock::iterator it = BB->begin(), e = BB->end(); it != e; ++it) { 1706 StoreInst *SI = dyn_cast<StoreInst>(it); 1707 if (!SI) 1708 continue; 1709 1710 // Check that the pointer points to scalars. 1711 Type *Ty = SI->getValueOperand()->getType(); 1712 if (Ty->isAggregateType() || Ty->isVectorTy()) 1713 return 0; 1714 1715 // Find the base of the GEP. 1716 Value *Ptr = SI->getPointerOperand(); 1717 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Ptr)) 1718 Ptr = GEP->getPointerOperand(); 1719 1720 // Save the store locations. 1721 StoreRefs[Ptr].push_back(SI); 1722 count++; 1723 } 1724 return count; 1725 } 1726 1727 bool SLPVectorizer::tryToVectorizePair(Value *A, Value *B, BoUpSLP &R) { 1728 if (!A || !B) 1729 return false; 1730 Value *VL[] = { A, B }; 1731 return tryToVectorizeList(VL, R); 1732 } 1733 1734 bool SLPVectorizer::tryToVectorizeList(ArrayRef<Value *> VL, BoUpSLP &R) { 1735 if (VL.size() < 2) 1736 return false; 1737 1738 DEBUG(dbgs() << "SLP: Vectorizing a list of length = " << VL.size() << ".\n"); 1739 1740 // Check that all of the parts are scalar instructions of the same type. 1741 Instruction *I0 = dyn_cast<Instruction>(VL[0]); 1742 if (!I0) 1743 return 0; 1744 1745 unsigned Opcode0 = I0->getOpcode(); 1746 1747 for (int i = 0, e = VL.size(); i < e; ++i) { 1748 Type *Ty = VL[i]->getType(); 1749 if (Ty->isAggregateType() || Ty->isVectorTy()) 1750 return 0; 1751 Instruction *Inst = dyn_cast<Instruction>(VL[i]); 1752 if (!Inst || Inst->getOpcode() != Opcode0) 1753 return 0; 1754 } 1755 1756 R.buildTree(VL); 1757 int Cost = R.getTreeCost(); 1758 1759 if (Cost >= -SLPCostThreshold) 1760 return false; 1761 1762 DEBUG(dbgs() << "SLP: Vectorizing pair at cost:" << Cost << ".\n"); 1763 R.vectorizeTree(); 1764 return true; 1765 } 1766 1767 bool SLPVectorizer::tryToVectorize(BinaryOperator *V, BoUpSLP &R) { 1768 if (!V) 1769 return false; 1770 1771 // Try to vectorize V. 1772 if (tryToVectorizePair(V->getOperand(0), V->getOperand(1), R)) 1773 return true; 1774 1775 BinaryOperator *A = dyn_cast<BinaryOperator>(V->getOperand(0)); 1776 BinaryOperator *B = dyn_cast<BinaryOperator>(V->getOperand(1)); 1777 // Try to skip B. 1778 if (B && B->hasOneUse()) { 1779 BinaryOperator *B0 = dyn_cast<BinaryOperator>(B->getOperand(0)); 1780 BinaryOperator *B1 = dyn_cast<BinaryOperator>(B->getOperand(1)); 1781 if (tryToVectorizePair(A, B0, R)) { 1782 B->moveBefore(V); 1783 return true; 1784 } 1785 if (tryToVectorizePair(A, B1, R)) { 1786 B->moveBefore(V); 1787 return true; 1788 } 1789 } 1790 1791 // Try to skip A. 1792 if (A && A->hasOneUse()) { 1793 BinaryOperator *A0 = dyn_cast<BinaryOperator>(A->getOperand(0)); 1794 BinaryOperator *A1 = dyn_cast<BinaryOperator>(A->getOperand(1)); 1795 if (tryToVectorizePair(A0, B, R)) { 1796 A->moveBefore(V); 1797 return true; 1798 } 1799 if (tryToVectorizePair(A1, B, R)) { 1800 A->moveBefore(V); 1801 return true; 1802 } 1803 } 1804 return 0; 1805 } 1806 1807 bool SLPVectorizer::vectorizeChainsInBlock(BasicBlock *BB, BoUpSLP &R) { 1808 bool Changed = false; 1809 SmallVector<Value *, 4> Incoming; 1810 // Collect the incoming values from the PHIs. 1811 for (BasicBlock::iterator instr = BB->begin(), ie = BB->end(); instr != ie; 1812 ++instr) { 1813 PHINode *P = dyn_cast<PHINode>(instr); 1814 1815 if (!P) 1816 break; 1817 1818 // Stop constructing the list when you reach a different type. 1819 if (Incoming.size() && P->getType() != Incoming[0]->getType()) { 1820 Changed |= tryToVectorizeList(Incoming, R); 1821 Incoming.clear(); 1822 } 1823 1824 Incoming.push_back(P); 1825 } 1826 1827 if (Incoming.size() > 1) 1828 Changed |= tryToVectorizeList(Incoming, R); 1829 1830 for (BasicBlock::iterator it = BB->begin(), e = BB->end(); it != e; ++it) { 1831 if (isa<DbgInfoIntrinsic>(it)) 1832 continue; 1833 1834 // Try to vectorize reductions that use PHINodes. 1835 if (PHINode *P = dyn_cast<PHINode>(it)) { 1836 // Check that the PHI is a reduction PHI. 1837 if (P->getNumIncomingValues() != 2) 1838 return Changed; 1839 Value *Rdx = 1840 (P->getIncomingBlock(0) == BB 1841 ? (P->getIncomingValue(0)) 1842 : (P->getIncomingBlock(1) == BB ? P->getIncomingValue(1) : 0)); 1843 // Check if this is a Binary Operator. 1844 BinaryOperator *BI = dyn_cast_or_null<BinaryOperator>(Rdx); 1845 if (!BI) 1846 continue; 1847 1848 Value *Inst = BI->getOperand(0); 1849 if (Inst == P) 1850 Inst = BI->getOperand(1); 1851 1852 Changed |= tryToVectorize(dyn_cast<BinaryOperator>(Inst), R); 1853 continue; 1854 } 1855 1856 // Try to vectorize trees that start at compare instructions. 1857 if (CmpInst *CI = dyn_cast<CmpInst>(it)) { 1858 if (tryToVectorizePair(CI->getOperand(0), CI->getOperand(1), R)) { 1859 Changed |= true; 1860 continue; 1861 } 1862 for (int i = 0; i < 2; ++i) 1863 if (BinaryOperator *BI = dyn_cast<BinaryOperator>(CI->getOperand(i))) 1864 Changed |= 1865 tryToVectorizePair(BI->getOperand(0), BI->getOperand(1), R); 1866 continue; 1867 } 1868 } 1869 1870 return Changed; 1871 } 1872 1873 bool SLPVectorizer::vectorizeStoreChains(BoUpSLP &R) { 1874 bool Changed = false; 1875 // Attempt to sort and vectorize each of the store-groups. 1876 for (StoreListMap::iterator it = StoreRefs.begin(), e = StoreRefs.end(); 1877 it != e; ++it) { 1878 if (it->second.size() < 2) 1879 continue; 1880 1881 DEBUG(dbgs() << "SLP: Analyzing a store chain of length " 1882 << it->second.size() << ".\n"); 1883 1884 Changed |= vectorizeStores(it->second, -SLPCostThreshold, R); 1885 } 1886 return Changed; 1887 } 1888 1889 } // end anonymous namespace 1890 1891 char SLPVectorizer::ID = 0; 1892 static const char lv_name[] = "SLP Vectorizer"; 1893 INITIALIZE_PASS_BEGIN(SLPVectorizer, SV_NAME, lv_name, false, false) 1894 INITIALIZE_AG_DEPENDENCY(AliasAnalysis) 1895 INITIALIZE_AG_DEPENDENCY(TargetTransformInfo) 1896 INITIALIZE_PASS_DEPENDENCY(ScalarEvolution) 1897 INITIALIZE_PASS_DEPENDENCY(LoopSimplify) 1898 INITIALIZE_PASS_END(SLPVectorizer, SV_NAME, lv_name, false, false) 1899 1900 namespace llvm { 1901 Pass *createSLPVectorizerPass() { return new SLPVectorizer(); } 1902 } 1903