1 //===- DeadStoreElimination.cpp - Fast Dead Store Elimination -------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements a trivial dead store elimination that only considers 10 // basic-block local redundant stores. 11 // 12 // FIXME: This should eventually be extended to be a post-dominator tree 13 // traversal. Doing so would be pretty trivial. 14 // 15 //===----------------------------------------------------------------------===// 16 17 #include "llvm/Transforms/Scalar/DeadStoreElimination.h" 18 #include "llvm/ADT/APInt.h" 19 #include "llvm/ADT/DenseMap.h" 20 #include "llvm/ADT/MapVector.h" 21 #include "llvm/ADT/PostOrderIterator.h" 22 #include "llvm/ADT/SetVector.h" 23 #include "llvm/ADT/SmallPtrSet.h" 24 #include "llvm/ADT/SmallVector.h" 25 #include "llvm/ADT/Statistic.h" 26 #include "llvm/ADT/StringRef.h" 27 #include "llvm/Analysis/AliasAnalysis.h" 28 #include "llvm/Analysis/CaptureTracking.h" 29 #include "llvm/Analysis/GlobalsModRef.h" 30 #include "llvm/Analysis/MemoryBuiltins.h" 31 #include "llvm/Analysis/MemoryDependenceAnalysis.h" 32 #include "llvm/Analysis/MemoryLocation.h" 33 #include "llvm/Analysis/MemorySSA.h" 34 #include "llvm/Analysis/MemorySSAUpdater.h" 35 #include "llvm/Analysis/PostDominators.h" 36 #include "llvm/Analysis/TargetLibraryInfo.h" 37 #include "llvm/Analysis/ValueTracking.h" 38 #include "llvm/IR/Argument.h" 39 #include "llvm/IR/BasicBlock.h" 40 #include "llvm/IR/Constant.h" 41 #include "llvm/IR/Constants.h" 42 #include "llvm/IR/DataLayout.h" 43 #include "llvm/IR/Dominators.h" 44 #include "llvm/IR/Function.h" 45 #include "llvm/IR/InstIterator.h" 46 #include "llvm/IR/InstrTypes.h" 47 #include "llvm/IR/Instruction.h" 48 #include "llvm/IR/Instructions.h" 49 #include "llvm/IR/IntrinsicInst.h" 50 #include "llvm/IR/Intrinsics.h" 51 #include "llvm/IR/LLVMContext.h" 52 #include "llvm/IR/Module.h" 53 #include "llvm/IR/PassManager.h" 54 #include "llvm/IR/PatternMatch.h" 55 #include "llvm/IR/Value.h" 56 #include "llvm/InitializePasses.h" 57 #include "llvm/Pass.h" 58 #include "llvm/Support/Casting.h" 59 #include "llvm/Support/CommandLine.h" 60 #include "llvm/Support/Debug.h" 61 #include "llvm/Support/DebugCounter.h" 62 #include "llvm/Support/ErrorHandling.h" 63 #include "llvm/Support/MathExtras.h" 64 #include "llvm/Support/raw_ostream.h" 65 #include "llvm/Transforms/Scalar.h" 66 #include "llvm/Transforms/Utils/AssumeBundleBuilder.h" 67 #include "llvm/Transforms/Utils/Local.h" 68 #include <algorithm> 69 #include <cassert> 70 #include <cstddef> 71 #include <cstdint> 72 #include <iterator> 73 #include <map> 74 #include <utility> 75 76 using namespace llvm; 77 using namespace PatternMatch; 78 79 #define DEBUG_TYPE "dse" 80 81 STATISTIC(NumRemainingStores, "Number of stores remaining after DSE"); 82 STATISTIC(NumRedundantStores, "Number of redundant stores deleted"); 83 STATISTIC(NumFastStores, "Number of stores deleted"); 84 STATISTIC(NumFastOther, "Number of other instrs removed"); 85 STATISTIC(NumCompletePartials, "Number of stores dead by later partials"); 86 STATISTIC(NumModifiedStores, "Number of stores modified"); 87 STATISTIC(NumCFGChecks, "Number of stores modified"); 88 STATISTIC(NumCFGTries, "Number of stores modified"); 89 STATISTIC(NumCFGSuccess, "Number of stores modified"); 90 STATISTIC(NumGetDomMemoryDefPassed, 91 "Number of times a valid candidate is returned from getDomMemoryDef"); 92 STATISTIC(NumDomMemDefChecks, 93 "Number iterations check for reads in getDomMemoryDef"); 94 95 DEBUG_COUNTER(MemorySSACounter, "dse-memoryssa", 96 "Controls which MemoryDefs are eliminated."); 97 98 static cl::opt<bool> 99 EnablePartialOverwriteTracking("enable-dse-partial-overwrite-tracking", 100 cl::init(true), cl::Hidden, 101 cl::desc("Enable partial-overwrite tracking in DSE")); 102 103 static cl::opt<bool> 104 EnablePartialStoreMerging("enable-dse-partial-store-merging", 105 cl::init(true), cl::Hidden, 106 cl::desc("Enable partial store merging in DSE")); 107 108 static cl::opt<bool> 109 EnableMemorySSA("enable-dse-memoryssa", cl::init(true), cl::Hidden, 110 cl::desc("Use the new MemorySSA-backed DSE.")); 111 112 static cl::opt<unsigned> 113 MemorySSAScanLimit("dse-memoryssa-scanlimit", cl::init(150), cl::Hidden, 114 cl::desc("The number of memory instructions to scan for " 115 "dead store elimination (default = 100)")); 116 static cl::opt<unsigned> MemorySSAUpwardsStepLimit( 117 "dse-memoryssa-walklimit", cl::init(90), cl::Hidden, 118 cl::desc("The maximum number of steps while walking upwards to find " 119 "MemoryDefs that may be killed (default = 90)")); 120 121 static cl::opt<unsigned> MemorySSAPartialStoreLimit( 122 "dse-memoryssa-partial-store-limit", cl::init(5), cl::Hidden, 123 cl::desc("The maximum number candidates that only partially overwrite the " 124 "killing MemoryDef to consider" 125 " (default = 5)")); 126 127 static cl::opt<unsigned> MemorySSADefsPerBlockLimit( 128 "dse-memoryssa-defs-per-block-limit", cl::init(5000), cl::Hidden, 129 cl::desc("The number of MemoryDefs we consider as candidates to eliminated " 130 "other stores per basic block (default = 5000)")); 131 132 static cl::opt<unsigned> MemorySSASameBBStepCost( 133 "dse-memoryssa-samebb-cost", cl::init(1), cl::Hidden, 134 cl::desc( 135 "The cost of a step in the same basic block as the killing MemoryDef" 136 "(default = 1)")); 137 138 static cl::opt<unsigned> 139 MemorySSAOtherBBStepCost("dse-memoryssa-otherbb-cost", cl::init(5), 140 cl::Hidden, 141 cl::desc("The cost of a step in a different basic " 142 "block than the killing MemoryDef" 143 "(default = 5)")); 144 145 static cl::opt<unsigned> MemorySSAPathCheckLimit( 146 "dse-memoryssa-path-check-limit", cl::init(50), cl::Hidden, 147 cl::desc("The maximum number of blocks to check when trying to prove that " 148 "all paths to an exit go through a killing block (default = 50)")); 149 150 //===----------------------------------------------------------------------===// 151 // Helper functions 152 //===----------------------------------------------------------------------===// 153 using OverlapIntervalsTy = std::map<int64_t, int64_t>; 154 using InstOverlapIntervalsTy = DenseMap<Instruction *, OverlapIntervalsTy>; 155 156 /// Delete this instruction. Before we do, go through and zero out all the 157 /// operands of this instruction. If any of them become dead, delete them and 158 /// the computation tree that feeds them. 159 /// If ValueSet is non-null, remove any deleted instructions from it as well. 160 static void 161 deleteDeadInstruction(Instruction *I, BasicBlock::iterator *BBI, 162 MemoryDependenceResults &MD, const TargetLibraryInfo &TLI, 163 InstOverlapIntervalsTy &IOL, 164 MapVector<Instruction *, bool> &ThrowableInst, 165 SmallSetVector<const Value *, 16> *ValueSet = nullptr) { 166 SmallVector<Instruction*, 32> NowDeadInsts; 167 168 NowDeadInsts.push_back(I); 169 --NumFastOther; 170 171 // Keeping the iterator straight is a pain, so we let this routine tell the 172 // caller what the next instruction is after we're done mucking about. 173 BasicBlock::iterator NewIter = *BBI; 174 175 // Before we touch this instruction, remove it from memdep! 176 do { 177 Instruction *DeadInst = NowDeadInsts.pop_back_val(); 178 // Mark the DeadInst as dead in the list of throwable instructions. 179 auto It = ThrowableInst.find(DeadInst); 180 if (It != ThrowableInst.end()) 181 ThrowableInst[It->first] = false; 182 ++NumFastOther; 183 184 // Try to preserve debug information attached to the dead instruction. 185 salvageDebugInfo(*DeadInst); 186 salvageKnowledge(DeadInst); 187 188 // This instruction is dead, zap it, in stages. Start by removing it from 189 // MemDep, which needs to know the operands and needs it to be in the 190 // function. 191 MD.removeInstruction(DeadInst); 192 193 for (unsigned op = 0, e = DeadInst->getNumOperands(); op != e; ++op) { 194 Value *Op = DeadInst->getOperand(op); 195 DeadInst->setOperand(op, nullptr); 196 197 // If this operand just became dead, add it to the NowDeadInsts list. 198 if (!Op->use_empty()) continue; 199 200 if (Instruction *OpI = dyn_cast<Instruction>(Op)) 201 if (isInstructionTriviallyDead(OpI, &TLI)) 202 NowDeadInsts.push_back(OpI); 203 } 204 205 if (ValueSet) ValueSet->remove(DeadInst); 206 IOL.erase(DeadInst); 207 208 if (NewIter == DeadInst->getIterator()) 209 NewIter = DeadInst->eraseFromParent(); 210 else 211 DeadInst->eraseFromParent(); 212 } while (!NowDeadInsts.empty()); 213 *BBI = NewIter; 214 // Pop dead entries from back of ThrowableInst till we find an alive entry. 215 while (!ThrowableInst.empty() && !ThrowableInst.back().second) 216 ThrowableInst.pop_back(); 217 } 218 219 /// Does this instruction write some memory? This only returns true for things 220 /// that we can analyze with other helpers below. 221 static bool hasAnalyzableMemoryWrite(Instruction *I, 222 const TargetLibraryInfo &TLI) { 223 if (isa<StoreInst>(I)) 224 return true; 225 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) { 226 switch (II->getIntrinsicID()) { 227 default: 228 return false; 229 case Intrinsic::memset: 230 case Intrinsic::memmove: 231 case Intrinsic::memcpy: 232 case Intrinsic::memcpy_inline: 233 case Intrinsic::memcpy_element_unordered_atomic: 234 case Intrinsic::memmove_element_unordered_atomic: 235 case Intrinsic::memset_element_unordered_atomic: 236 case Intrinsic::init_trampoline: 237 case Intrinsic::lifetime_end: 238 case Intrinsic::masked_store: 239 return true; 240 } 241 } 242 if (auto *CB = dyn_cast<CallBase>(I)) { 243 LibFunc LF; 244 if (TLI.getLibFunc(*CB, LF) && TLI.has(LF)) { 245 switch (LF) { 246 case LibFunc_strcpy: 247 case LibFunc_strncpy: 248 case LibFunc_strcat: 249 case LibFunc_strncat: 250 return true; 251 default: 252 return false; 253 } 254 } 255 } 256 return false; 257 } 258 259 /// Return a Location stored to by the specified instruction. If isRemovable 260 /// returns true, this function and getLocForRead completely describe the memory 261 /// operations for this instruction. 262 static MemoryLocation getLocForWrite(Instruction *Inst, 263 const TargetLibraryInfo &TLI) { 264 if (StoreInst *SI = dyn_cast<StoreInst>(Inst)) 265 return MemoryLocation::get(SI); 266 267 if (auto *MI = dyn_cast<AnyMemIntrinsic>(Inst)) { 268 // memcpy/memmove/memset. 269 MemoryLocation Loc = MemoryLocation::getForDest(MI); 270 return Loc; 271 } 272 273 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) { 274 switch (II->getIntrinsicID()) { 275 default: 276 return MemoryLocation(); // Unhandled intrinsic. 277 case Intrinsic::init_trampoline: 278 return MemoryLocation::getAfter(II->getArgOperand(0)); 279 case Intrinsic::masked_store: 280 return MemoryLocation::getForArgument(II, 1, TLI); 281 case Intrinsic::lifetime_end: { 282 uint64_t Len = cast<ConstantInt>(II->getArgOperand(0))->getZExtValue(); 283 return MemoryLocation(II->getArgOperand(1), Len); 284 } 285 } 286 } 287 if (auto *CB = dyn_cast<CallBase>(Inst)) 288 // All the supported TLI functions so far happen to have dest as their 289 // first argument. 290 return MemoryLocation::getAfter(CB->getArgOperand(0)); 291 return MemoryLocation(); 292 } 293 294 /// Return the location read by the specified "hasAnalyzableMemoryWrite" 295 /// instruction if any. 296 static MemoryLocation getLocForRead(Instruction *Inst, 297 const TargetLibraryInfo &TLI) { 298 assert(hasAnalyzableMemoryWrite(Inst, TLI) && "Unknown instruction case"); 299 300 // The only instructions that both read and write are the mem transfer 301 // instructions (memcpy/memmove). 302 if (auto *MTI = dyn_cast<AnyMemTransferInst>(Inst)) 303 return MemoryLocation::getForSource(MTI); 304 return MemoryLocation(); 305 } 306 307 /// If the value of this instruction and the memory it writes to is unused, may 308 /// we delete this instruction? 309 static bool isRemovable(Instruction *I) { 310 // Don't remove volatile/atomic stores. 311 if (StoreInst *SI = dyn_cast<StoreInst>(I)) 312 return SI->isUnordered(); 313 314 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) { 315 switch (II->getIntrinsicID()) { 316 default: llvm_unreachable("doesn't pass 'hasAnalyzableMemoryWrite' predicate"); 317 case Intrinsic::lifetime_end: 318 // Never remove dead lifetime_end's, e.g. because it is followed by a 319 // free. 320 return false; 321 case Intrinsic::init_trampoline: 322 // Always safe to remove init_trampoline. 323 return true; 324 case Intrinsic::memset: 325 case Intrinsic::memmove: 326 case Intrinsic::memcpy: 327 case Intrinsic::memcpy_inline: 328 // Don't remove volatile memory intrinsics. 329 return !cast<MemIntrinsic>(II)->isVolatile(); 330 case Intrinsic::memcpy_element_unordered_atomic: 331 case Intrinsic::memmove_element_unordered_atomic: 332 case Intrinsic::memset_element_unordered_atomic: 333 case Intrinsic::masked_store: 334 return true; 335 } 336 } 337 338 // note: only get here for calls with analyzable writes - i.e. libcalls 339 if (auto *CB = dyn_cast<CallBase>(I)) 340 return CB->use_empty(); 341 342 return false; 343 } 344 345 /// Returns true if the end of this instruction can be safely shortened in 346 /// length. 347 static bool isShortenableAtTheEnd(Instruction *I) { 348 // Don't shorten stores for now 349 if (isa<StoreInst>(I)) 350 return false; 351 352 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) { 353 switch (II->getIntrinsicID()) { 354 default: return false; 355 case Intrinsic::memset: 356 case Intrinsic::memcpy: 357 case Intrinsic::memcpy_element_unordered_atomic: 358 case Intrinsic::memset_element_unordered_atomic: 359 // Do shorten memory intrinsics. 360 // FIXME: Add memmove if it's also safe to transform. 361 return true; 362 } 363 } 364 365 // Don't shorten libcalls calls for now. 366 367 return false; 368 } 369 370 /// Returns true if the beginning of this instruction can be safely shortened 371 /// in length. 372 static bool isShortenableAtTheBeginning(Instruction *I) { 373 // FIXME: Handle only memset for now. Supporting memcpy/memmove should be 374 // easily done by offsetting the source address. 375 return isa<AnyMemSetInst>(I); 376 } 377 378 /// Return the pointer that is being written to. 379 static Value *getStoredPointerOperand(Instruction *I, 380 const TargetLibraryInfo &TLI) { 381 //TODO: factor this to reuse getLocForWrite 382 MemoryLocation Loc = getLocForWrite(I, TLI); 383 assert(Loc.Ptr && 384 "unable to find pointer written for analyzable instruction?"); 385 // TODO: most APIs don't expect const Value * 386 return const_cast<Value*>(Loc.Ptr); 387 } 388 389 static uint64_t getPointerSize(const Value *V, const DataLayout &DL, 390 const TargetLibraryInfo &TLI, 391 const Function *F) { 392 uint64_t Size; 393 ObjectSizeOpts Opts; 394 Opts.NullIsUnknownSize = NullPointerIsDefined(F); 395 396 if (getObjectSize(V, Size, DL, &TLI, Opts)) 397 return Size; 398 return MemoryLocation::UnknownSize; 399 } 400 401 namespace { 402 403 enum OverwriteResult { 404 OW_Begin, 405 OW_Complete, 406 OW_End, 407 OW_PartialEarlierWithFullLater, 408 OW_MaybePartial, 409 OW_Unknown 410 }; 411 412 } // end anonymous namespace 413 414 /// Check if two instruction are masked stores that completely 415 /// overwrite one another. More specifically, \p Later has to 416 /// overwrite \p Earlier. 417 template <typename AATy> 418 static OverwriteResult isMaskedStoreOverwrite(const Instruction *Later, 419 const Instruction *Earlier, 420 AATy &AA) { 421 const auto *IIL = dyn_cast<IntrinsicInst>(Later); 422 const auto *IIE = dyn_cast<IntrinsicInst>(Earlier); 423 if (IIL == nullptr || IIE == nullptr) 424 return OW_Unknown; 425 if (IIL->getIntrinsicID() != Intrinsic::masked_store || 426 IIE->getIntrinsicID() != Intrinsic::masked_store) 427 return OW_Unknown; 428 // Pointers. 429 Value *LP = IIL->getArgOperand(1)->stripPointerCasts(); 430 Value *EP = IIE->getArgOperand(1)->stripPointerCasts(); 431 if (LP != EP && !AA.isMustAlias(LP, EP)) 432 return OW_Unknown; 433 // Masks. 434 // TODO: check that Later's mask is a superset of the Earlier's mask. 435 if (IIL->getArgOperand(3) != IIE->getArgOperand(3)) 436 return OW_Unknown; 437 return OW_Complete; 438 } 439 440 /// Return 'OW_Complete' if a store to the 'Later' location (by \p LaterI 441 /// instruction) completely overwrites a store to the 'Earlier' location. 442 /// (by \p EarlierI instruction). 443 /// Return OW_MaybePartial if \p Later does not completely overwrite 444 /// \p Earlier, but they both write to the same underlying object. In that 445 /// case, use isPartialOverwrite to check if \p Later partially overwrites 446 /// \p Earlier. Returns 'OW_Unknown' if nothing can be determined. 447 template <typename AATy> 448 static OverwriteResult 449 isOverwrite(const Instruction *LaterI, const Instruction *EarlierI, 450 const MemoryLocation &Later, const MemoryLocation &Earlier, 451 const DataLayout &DL, const TargetLibraryInfo &TLI, 452 int64_t &EarlierOff, int64_t &LaterOff, AATy &AA, 453 const Function *F) { 454 // FIXME: Vet that this works for size upper-bounds. Seems unlikely that we'll 455 // get imprecise values here, though (except for unknown sizes). 456 if (!Later.Size.isPrecise() || !Earlier.Size.isPrecise()) { 457 // Masked stores have imprecise locations, but we can reason about them 458 // to some extent. 459 return isMaskedStoreOverwrite(LaterI, EarlierI, AA); 460 } 461 462 const uint64_t LaterSize = Later.Size.getValue(); 463 const uint64_t EarlierSize = Earlier.Size.getValue(); 464 465 const Value *P1 = Earlier.Ptr->stripPointerCasts(); 466 const Value *P2 = Later.Ptr->stripPointerCasts(); 467 468 // If the start pointers are the same, we just have to compare sizes to see if 469 // the later store was larger than the earlier store. 470 if (P1 == P2 || AA.isMustAlias(P1, P2)) { 471 // Make sure that the Later size is >= the Earlier size. 472 if (LaterSize >= EarlierSize) 473 return OW_Complete; 474 } 475 476 // Check to see if the later store is to the entire object (either a global, 477 // an alloca, or a byval/inalloca argument). If so, then it clearly 478 // overwrites any other store to the same object. 479 const Value *UO1 = getUnderlyingObject(P1), *UO2 = getUnderlyingObject(P2); 480 481 // If we can't resolve the same pointers to the same object, then we can't 482 // analyze them at all. 483 if (UO1 != UO2) 484 return OW_Unknown; 485 486 // If the "Later" store is to a recognizable object, get its size. 487 uint64_t ObjectSize = getPointerSize(UO2, DL, TLI, F); 488 if (ObjectSize != MemoryLocation::UnknownSize) 489 if (ObjectSize == LaterSize && ObjectSize >= EarlierSize) 490 return OW_Complete; 491 492 // Okay, we have stores to two completely different pointers. Try to 493 // decompose the pointer into a "base + constant_offset" form. If the base 494 // pointers are equal, then we can reason about the two stores. 495 EarlierOff = 0; 496 LaterOff = 0; 497 const Value *BP1 = GetPointerBaseWithConstantOffset(P1, EarlierOff, DL); 498 const Value *BP2 = GetPointerBaseWithConstantOffset(P2, LaterOff, DL); 499 500 // If the base pointers still differ, we have two completely different stores. 501 if (BP1 != BP2) 502 return OW_Unknown; 503 504 // The later access completely overlaps the earlier store if and only if 505 // both start and end of the earlier one is "inside" the later one: 506 // |<->|--earlier--|<->| 507 // |-------later-------| 508 // Accesses may overlap if and only if start of one of them is "inside" 509 // another one: 510 // |<->|--earlier--|<----->| 511 // |-------later-------| 512 // OR 513 // |----- earlier -----| 514 // |<->|---later---|<----->| 515 // 516 // We have to be careful here as *Off is signed while *.Size is unsigned. 517 518 // Check if the earlier access starts "not before" the later one. 519 if (EarlierOff >= LaterOff) { 520 // If the earlier access ends "not after" the later access then the earlier 521 // one is completely overwritten by the later one. 522 if (uint64_t(EarlierOff - LaterOff) + EarlierSize <= LaterSize) 523 return OW_Complete; 524 // If start of the earlier access is "before" end of the later access then 525 // accesses overlap. 526 else if ((uint64_t)(EarlierOff - LaterOff) < LaterSize) 527 return OW_MaybePartial; 528 } 529 // If start of the later access is "before" end of the earlier access then 530 // accesses overlap. 531 else if ((uint64_t)(LaterOff - EarlierOff) < EarlierSize) { 532 return OW_MaybePartial; 533 } 534 535 // Can reach here only if accesses are known not to overlap. There is no 536 // dedicated code to indicate no overlap so signal "unknown". 537 return OW_Unknown; 538 } 539 540 /// Return 'OW_Complete' if a store to the 'Later' location completely 541 /// overwrites a store to the 'Earlier' location, 'OW_End' if the end of the 542 /// 'Earlier' location is completely overwritten by 'Later', 'OW_Begin' if the 543 /// beginning of the 'Earlier' location is overwritten by 'Later'. 544 /// 'OW_PartialEarlierWithFullLater' means that an earlier (big) store was 545 /// overwritten by a latter (smaller) store which doesn't write outside the big 546 /// store's memory locations. Returns 'OW_Unknown' if nothing can be determined. 547 /// NOTE: This function must only be called if both \p Later and \p Earlier 548 /// write to the same underlying object with valid \p EarlierOff and \p 549 /// LaterOff. 550 static OverwriteResult isPartialOverwrite(const MemoryLocation &Later, 551 const MemoryLocation &Earlier, 552 int64_t EarlierOff, int64_t LaterOff, 553 Instruction *DepWrite, 554 InstOverlapIntervalsTy &IOL) { 555 const uint64_t LaterSize = Later.Size.getValue(); 556 const uint64_t EarlierSize = Earlier.Size.getValue(); 557 // We may now overlap, although the overlap is not complete. There might also 558 // be other incomplete overlaps, and together, they might cover the complete 559 // earlier write. 560 // Note: The correctness of this logic depends on the fact that this function 561 // is not even called providing DepWrite when there are any intervening reads. 562 if (EnablePartialOverwriteTracking && 563 LaterOff < int64_t(EarlierOff + EarlierSize) && 564 int64_t(LaterOff + LaterSize) >= EarlierOff) { 565 566 // Insert our part of the overlap into the map. 567 auto &IM = IOL[DepWrite]; 568 LLVM_DEBUG(dbgs() << "DSE: Partial overwrite: Earlier [" << EarlierOff 569 << ", " << int64_t(EarlierOff + EarlierSize) 570 << ") Later [" << LaterOff << ", " 571 << int64_t(LaterOff + LaterSize) << ")\n"); 572 573 // Make sure that we only insert non-overlapping intervals and combine 574 // adjacent intervals. The intervals are stored in the map with the ending 575 // offset as the key (in the half-open sense) and the starting offset as 576 // the value. 577 int64_t LaterIntStart = LaterOff, LaterIntEnd = LaterOff + LaterSize; 578 579 // Find any intervals ending at, or after, LaterIntStart which start 580 // before LaterIntEnd. 581 auto ILI = IM.lower_bound(LaterIntStart); 582 if (ILI != IM.end() && ILI->second <= LaterIntEnd) { 583 // This existing interval is overlapped with the current store somewhere 584 // in [LaterIntStart, LaterIntEnd]. Merge them by erasing the existing 585 // intervals and adjusting our start and end. 586 LaterIntStart = std::min(LaterIntStart, ILI->second); 587 LaterIntEnd = std::max(LaterIntEnd, ILI->first); 588 ILI = IM.erase(ILI); 589 590 // Continue erasing and adjusting our end in case other previous 591 // intervals are also overlapped with the current store. 592 // 593 // |--- ealier 1 ---| |--- ealier 2 ---| 594 // |------- later---------| 595 // 596 while (ILI != IM.end() && ILI->second <= LaterIntEnd) { 597 assert(ILI->second > LaterIntStart && "Unexpected interval"); 598 LaterIntEnd = std::max(LaterIntEnd, ILI->first); 599 ILI = IM.erase(ILI); 600 } 601 } 602 603 IM[LaterIntEnd] = LaterIntStart; 604 605 ILI = IM.begin(); 606 if (ILI->second <= EarlierOff && 607 ILI->first >= int64_t(EarlierOff + EarlierSize)) { 608 LLVM_DEBUG(dbgs() << "DSE: Full overwrite from partials: Earlier [" 609 << EarlierOff << ", " 610 << int64_t(EarlierOff + EarlierSize) 611 << ") Composite Later [" << ILI->second << ", " 612 << ILI->first << ")\n"); 613 ++NumCompletePartials; 614 return OW_Complete; 615 } 616 } 617 618 // Check for an earlier store which writes to all the memory locations that 619 // the later store writes to. 620 if (EnablePartialStoreMerging && LaterOff >= EarlierOff && 621 int64_t(EarlierOff + EarlierSize) > LaterOff && 622 uint64_t(LaterOff - EarlierOff) + LaterSize <= EarlierSize) { 623 LLVM_DEBUG(dbgs() << "DSE: Partial overwrite an earlier load [" 624 << EarlierOff << ", " 625 << int64_t(EarlierOff + EarlierSize) 626 << ") by a later store [" << LaterOff << ", " 627 << int64_t(LaterOff + LaterSize) << ")\n"); 628 // TODO: Maybe come up with a better name? 629 return OW_PartialEarlierWithFullLater; 630 } 631 632 // Another interesting case is if the later store overwrites the end of the 633 // earlier store. 634 // 635 // |--earlier--| 636 // |-- later --| 637 // 638 // In this case we may want to trim the size of earlier to avoid generating 639 // writes to addresses which will definitely be overwritten later 640 if (!EnablePartialOverwriteTracking && 641 (LaterOff > EarlierOff && LaterOff < int64_t(EarlierOff + EarlierSize) && 642 int64_t(LaterOff + LaterSize) >= int64_t(EarlierOff + EarlierSize))) 643 return OW_End; 644 645 // Finally, we also need to check if the later store overwrites the beginning 646 // of the earlier store. 647 // 648 // |--earlier--| 649 // |-- later --| 650 // 651 // In this case we may want to move the destination address and trim the size 652 // of earlier to avoid generating writes to addresses which will definitely 653 // be overwritten later. 654 if (!EnablePartialOverwriteTracking && 655 (LaterOff <= EarlierOff && int64_t(LaterOff + LaterSize) > EarlierOff)) { 656 assert(int64_t(LaterOff + LaterSize) < int64_t(EarlierOff + EarlierSize) && 657 "Expect to be handled as OW_Complete"); 658 return OW_Begin; 659 } 660 // Otherwise, they don't completely overlap. 661 return OW_Unknown; 662 } 663 664 /// If 'Inst' might be a self read (i.e. a noop copy of a 665 /// memory region into an identical pointer) then it doesn't actually make its 666 /// input dead in the traditional sense. Consider this case: 667 /// 668 /// memmove(A <- B) 669 /// memmove(A <- A) 670 /// 671 /// In this case, the second store to A does not make the first store to A dead. 672 /// The usual situation isn't an explicit A<-A store like this (which can be 673 /// trivially removed) but a case where two pointers may alias. 674 /// 675 /// This function detects when it is unsafe to remove a dependent instruction 676 /// because the DSE inducing instruction may be a self-read. 677 static bool isPossibleSelfRead(Instruction *Inst, 678 const MemoryLocation &InstStoreLoc, 679 Instruction *DepWrite, 680 const TargetLibraryInfo &TLI, 681 AliasAnalysis &AA) { 682 // Self reads can only happen for instructions that read memory. Get the 683 // location read. 684 MemoryLocation InstReadLoc = getLocForRead(Inst, TLI); 685 if (!InstReadLoc.Ptr) 686 return false; // Not a reading instruction. 687 688 // If the read and written loc obviously don't alias, it isn't a read. 689 if (AA.isNoAlias(InstReadLoc, InstStoreLoc)) 690 return false; 691 692 if (isa<AnyMemCpyInst>(Inst)) { 693 // LLVM's memcpy overlap semantics are not fully fleshed out (see PR11763) 694 // but in practice memcpy(A <- B) either means that A and B are disjoint or 695 // are equal (i.e. there are not partial overlaps). Given that, if we have: 696 // 697 // memcpy/memmove(A <- B) // DepWrite 698 // memcpy(A <- B) // Inst 699 // 700 // with Inst reading/writing a >= size than DepWrite, we can reason as 701 // follows: 702 // 703 // - If A == B then both the copies are no-ops, so the DepWrite can be 704 // removed. 705 // - If A != B then A and B are disjoint locations in Inst. Since 706 // Inst.size >= DepWrite.size A and B are disjoint in DepWrite too. 707 // Therefore DepWrite can be removed. 708 MemoryLocation DepReadLoc = getLocForRead(DepWrite, TLI); 709 710 if (DepReadLoc.Ptr && AA.isMustAlias(InstReadLoc.Ptr, DepReadLoc.Ptr)) 711 return false; 712 } 713 714 // If DepWrite doesn't read memory or if we can't prove it is a must alias, 715 // then it can't be considered dead. 716 return true; 717 } 718 719 /// Returns true if the memory which is accessed by the second instruction is not 720 /// modified between the first and the second instruction. 721 /// Precondition: Second instruction must be dominated by the first 722 /// instruction. 723 template <typename AATy> 724 static bool 725 memoryIsNotModifiedBetween(Instruction *FirstI, Instruction *SecondI, AATy &AA, 726 const DataLayout &DL, DominatorTree *DT) { 727 // Do a backwards scan through the CFG from SecondI to FirstI. Look for 728 // instructions which can modify the memory location accessed by SecondI. 729 // 730 // While doing the walk keep track of the address to check. It might be 731 // different in different basic blocks due to PHI translation. 732 using BlockAddressPair = std::pair<BasicBlock *, PHITransAddr>; 733 SmallVector<BlockAddressPair, 16> WorkList; 734 // Keep track of the address we visited each block with. Bail out if we 735 // visit a block with different addresses. 736 DenseMap<BasicBlock *, Value *> Visited; 737 738 BasicBlock::iterator FirstBBI(FirstI); 739 ++FirstBBI; 740 BasicBlock::iterator SecondBBI(SecondI); 741 BasicBlock *FirstBB = FirstI->getParent(); 742 BasicBlock *SecondBB = SecondI->getParent(); 743 MemoryLocation MemLoc = MemoryLocation::get(SecondI); 744 auto *MemLocPtr = const_cast<Value *>(MemLoc.Ptr); 745 746 // Start checking the SecondBB. 747 WorkList.push_back( 748 std::make_pair(SecondBB, PHITransAddr(MemLocPtr, DL, nullptr))); 749 bool isFirstBlock = true; 750 751 // Check all blocks going backward until we reach the FirstBB. 752 while (!WorkList.empty()) { 753 BlockAddressPair Current = WorkList.pop_back_val(); 754 BasicBlock *B = Current.first; 755 PHITransAddr &Addr = Current.second; 756 Value *Ptr = Addr.getAddr(); 757 758 // Ignore instructions before FirstI if this is the FirstBB. 759 BasicBlock::iterator BI = (B == FirstBB ? FirstBBI : B->begin()); 760 761 BasicBlock::iterator EI; 762 if (isFirstBlock) { 763 // Ignore instructions after SecondI if this is the first visit of SecondBB. 764 assert(B == SecondBB && "first block is not the store block"); 765 EI = SecondBBI; 766 isFirstBlock = false; 767 } else { 768 // It's not SecondBB or (in case of a loop) the second visit of SecondBB. 769 // In this case we also have to look at instructions after SecondI. 770 EI = B->end(); 771 } 772 for (; BI != EI; ++BI) { 773 Instruction *I = &*BI; 774 if (I->mayWriteToMemory() && I != SecondI) 775 if (isModSet(AA.getModRefInfo(I, MemLoc.getWithNewPtr(Ptr)))) 776 return false; 777 } 778 if (B != FirstBB) { 779 assert(B != &FirstBB->getParent()->getEntryBlock() && 780 "Should not hit the entry block because SI must be dominated by LI"); 781 for (auto PredI = pred_begin(B), PE = pred_end(B); PredI != PE; ++PredI) { 782 PHITransAddr PredAddr = Addr; 783 if (PredAddr.NeedsPHITranslationFromBlock(B)) { 784 if (!PredAddr.IsPotentiallyPHITranslatable()) 785 return false; 786 if (PredAddr.PHITranslateValue(B, *PredI, DT, false)) 787 return false; 788 } 789 Value *TranslatedPtr = PredAddr.getAddr(); 790 auto Inserted = Visited.insert(std::make_pair(*PredI, TranslatedPtr)); 791 if (!Inserted.second) { 792 // We already visited this block before. If it was with a different 793 // address - bail out! 794 if (TranslatedPtr != Inserted.first->second) 795 return false; 796 // ... otherwise just skip it. 797 continue; 798 } 799 WorkList.push_back(std::make_pair(*PredI, PredAddr)); 800 } 801 } 802 } 803 return true; 804 } 805 806 /// Find all blocks that will unconditionally lead to the block BB and append 807 /// them to F. 808 static void findUnconditionalPreds(SmallVectorImpl<BasicBlock *> &Blocks, 809 BasicBlock *BB, DominatorTree *DT) { 810 for (pred_iterator I = pred_begin(BB), E = pred_end(BB); I != E; ++I) { 811 BasicBlock *Pred = *I; 812 if (Pred == BB) continue; 813 Instruction *PredTI = Pred->getTerminator(); 814 if (PredTI->getNumSuccessors() != 1) 815 continue; 816 817 if (DT->isReachableFromEntry(Pred)) 818 Blocks.push_back(Pred); 819 } 820 } 821 822 /// Handle frees of entire structures whose dependency is a store 823 /// to a field of that structure. 824 static bool handleFree(CallInst *F, AliasAnalysis *AA, 825 MemoryDependenceResults *MD, DominatorTree *DT, 826 const TargetLibraryInfo *TLI, 827 InstOverlapIntervalsTy &IOL, 828 MapVector<Instruction *, bool> &ThrowableInst) { 829 bool MadeChange = false; 830 831 MemoryLocation Loc = MemoryLocation::getAfter(F->getOperand(0)); 832 SmallVector<BasicBlock *, 16> Blocks; 833 Blocks.push_back(F->getParent()); 834 835 while (!Blocks.empty()) { 836 BasicBlock *BB = Blocks.pop_back_val(); 837 Instruction *InstPt = BB->getTerminator(); 838 if (BB == F->getParent()) InstPt = F; 839 840 MemDepResult Dep = 841 MD->getPointerDependencyFrom(Loc, false, InstPt->getIterator(), BB); 842 while (Dep.isDef() || Dep.isClobber()) { 843 Instruction *Dependency = Dep.getInst(); 844 if (!hasAnalyzableMemoryWrite(Dependency, *TLI) || 845 !isRemovable(Dependency)) 846 break; 847 848 Value *DepPointer = 849 getUnderlyingObject(getStoredPointerOperand(Dependency, *TLI)); 850 851 // Check for aliasing. 852 if (!AA->isMustAlias(F->getArgOperand(0), DepPointer)) 853 break; 854 855 LLVM_DEBUG( 856 dbgs() << "DSE: Dead Store to soon to be freed memory:\n DEAD: " 857 << *Dependency << '\n'); 858 859 // DCE instructions only used to calculate that store. 860 BasicBlock::iterator BBI(Dependency); 861 deleteDeadInstruction(Dependency, &BBI, *MD, *TLI, IOL, 862 ThrowableInst); 863 ++NumFastStores; 864 MadeChange = true; 865 866 // Inst's old Dependency is now deleted. Compute the next dependency, 867 // which may also be dead, as in 868 // s[0] = 0; 869 // s[1] = 0; // This has just been deleted. 870 // free(s); 871 Dep = MD->getPointerDependencyFrom(Loc, false, BBI, BB); 872 } 873 874 if (Dep.isNonLocal()) 875 findUnconditionalPreds(Blocks, BB, DT); 876 } 877 878 return MadeChange; 879 } 880 881 /// Check to see if the specified location may alias any of the stack objects in 882 /// the DeadStackObjects set. If so, they become live because the location is 883 /// being loaded. 884 static void removeAccessedObjects(const MemoryLocation &LoadedLoc, 885 SmallSetVector<const Value *, 16> &DeadStackObjects, 886 const DataLayout &DL, AliasAnalysis *AA, 887 const TargetLibraryInfo *TLI, 888 const Function *F) { 889 const Value *UnderlyingPointer = getUnderlyingObject(LoadedLoc.Ptr); 890 891 // A constant can't be in the dead pointer set. 892 if (isa<Constant>(UnderlyingPointer)) 893 return; 894 895 // If the kill pointer can be easily reduced to an alloca, don't bother doing 896 // extraneous AA queries. 897 if (isa<AllocaInst>(UnderlyingPointer) || isa<Argument>(UnderlyingPointer)) { 898 DeadStackObjects.remove(UnderlyingPointer); 899 return; 900 } 901 902 // Remove objects that could alias LoadedLoc. 903 DeadStackObjects.remove_if([&](const Value *I) { 904 // See if the loaded location could alias the stack location. 905 MemoryLocation StackLoc(I, getPointerSize(I, DL, *TLI, F)); 906 return !AA->isNoAlias(StackLoc, LoadedLoc); 907 }); 908 } 909 910 /// Remove dead stores to stack-allocated locations in the function end block. 911 /// Ex: 912 /// %A = alloca i32 913 /// ... 914 /// store i32 1, i32* %A 915 /// ret void 916 static bool handleEndBlock(BasicBlock &BB, AliasAnalysis *AA, 917 MemoryDependenceResults *MD, 918 const TargetLibraryInfo *TLI, 919 InstOverlapIntervalsTy &IOL, 920 MapVector<Instruction *, bool> &ThrowableInst) { 921 bool MadeChange = false; 922 923 // Keep track of all of the stack objects that are dead at the end of the 924 // function. 925 SmallSetVector<const Value*, 16> DeadStackObjects; 926 927 // Find all of the alloca'd pointers in the entry block. 928 BasicBlock &Entry = BB.getParent()->front(); 929 for (Instruction &I : Entry) { 930 if (isa<AllocaInst>(&I)) 931 DeadStackObjects.insert(&I); 932 933 // Okay, so these are dead heap objects, but if the pointer never escapes 934 // then it's leaked by this function anyways. 935 else if (isAllocLikeFn(&I, TLI) && !PointerMayBeCaptured(&I, true, true)) 936 DeadStackObjects.insert(&I); 937 } 938 939 // Treat byval or inalloca arguments the same, stores to them are dead at the 940 // end of the function. 941 for (Argument &AI : BB.getParent()->args()) 942 if (AI.hasPassPointeeByValueCopyAttr()) 943 DeadStackObjects.insert(&AI); 944 945 const DataLayout &DL = BB.getModule()->getDataLayout(); 946 947 // Scan the basic block backwards 948 for (BasicBlock::iterator BBI = BB.end(); BBI != BB.begin(); ){ 949 --BBI; 950 951 // If we find a store, check to see if it points into a dead stack value. 952 if (hasAnalyzableMemoryWrite(&*BBI, *TLI) && isRemovable(&*BBI)) { 953 // See through pointer-to-pointer bitcasts 954 SmallVector<const Value *, 4> Pointers; 955 getUnderlyingObjects(getStoredPointerOperand(&*BBI, *TLI), Pointers); 956 957 // Stores to stack values are valid candidates for removal. 958 bool AllDead = true; 959 for (const Value *Pointer : Pointers) 960 if (!DeadStackObjects.count(Pointer)) { 961 AllDead = false; 962 break; 963 } 964 965 if (AllDead) { 966 Instruction *Dead = &*BBI; 967 968 LLVM_DEBUG(dbgs() << "DSE: Dead Store at End of Block:\n DEAD: " 969 << *Dead << "\n Objects: "; 970 for (SmallVectorImpl<const Value *>::iterator I = 971 Pointers.begin(), 972 E = Pointers.end(); 973 I != E; ++I) { 974 dbgs() << **I; 975 if (std::next(I) != E) 976 dbgs() << ", "; 977 } dbgs() 978 << '\n'); 979 980 // DCE instructions only used to calculate that store. 981 deleteDeadInstruction(Dead, &BBI, *MD, *TLI, IOL, ThrowableInst, 982 &DeadStackObjects); 983 ++NumFastStores; 984 MadeChange = true; 985 continue; 986 } 987 } 988 989 // Remove any dead non-memory-mutating instructions. 990 if (isInstructionTriviallyDead(&*BBI, TLI)) { 991 LLVM_DEBUG(dbgs() << "DSE: Removing trivially dead instruction:\n DEAD: " 992 << *&*BBI << '\n'); 993 deleteDeadInstruction(&*BBI, &BBI, *MD, *TLI, IOL, ThrowableInst, 994 &DeadStackObjects); 995 ++NumFastOther; 996 MadeChange = true; 997 continue; 998 } 999 1000 if (isa<AllocaInst>(BBI)) { 1001 // Remove allocas from the list of dead stack objects; there can't be 1002 // any references before the definition. 1003 DeadStackObjects.remove(&*BBI); 1004 continue; 1005 } 1006 1007 if (auto *Call = dyn_cast<CallBase>(&*BBI)) { 1008 // Remove allocation function calls from the list of dead stack objects; 1009 // there can't be any references before the definition. 1010 if (isAllocLikeFn(&*BBI, TLI)) 1011 DeadStackObjects.remove(&*BBI); 1012 1013 // If this call does not access memory, it can't be loading any of our 1014 // pointers. 1015 if (AA->doesNotAccessMemory(Call)) 1016 continue; 1017 1018 // If the call might load from any of our allocas, then any store above 1019 // the call is live. 1020 DeadStackObjects.remove_if([&](const Value *I) { 1021 // See if the call site touches the value. 1022 return isRefSet(AA->getModRefInfo( 1023 Call, I, getPointerSize(I, DL, *TLI, BB.getParent()))); 1024 }); 1025 1026 // If all of the allocas were clobbered by the call then we're not going 1027 // to find anything else to process. 1028 if (DeadStackObjects.empty()) 1029 break; 1030 1031 continue; 1032 } 1033 1034 // We can remove the dead stores, irrespective of the fence and its ordering 1035 // (release/acquire/seq_cst). Fences only constraints the ordering of 1036 // already visible stores, it does not make a store visible to other 1037 // threads. So, skipping over a fence does not change a store from being 1038 // dead. 1039 if (isa<FenceInst>(*BBI)) 1040 continue; 1041 1042 MemoryLocation LoadedLoc; 1043 1044 // If we encounter a use of the pointer, it is no longer considered dead 1045 if (LoadInst *L = dyn_cast<LoadInst>(BBI)) { 1046 if (!L->isUnordered()) // Be conservative with atomic/volatile load 1047 break; 1048 LoadedLoc = MemoryLocation::get(L); 1049 } else if (VAArgInst *V = dyn_cast<VAArgInst>(BBI)) { 1050 LoadedLoc = MemoryLocation::get(V); 1051 } else if (!BBI->mayReadFromMemory()) { 1052 // Instruction doesn't read memory. Note that stores that weren't removed 1053 // above will hit this case. 1054 continue; 1055 } else { 1056 // Unknown inst; assume it clobbers everything. 1057 break; 1058 } 1059 1060 // Remove any allocas from the DeadPointer set that are loaded, as this 1061 // makes any stores above the access live. 1062 removeAccessedObjects(LoadedLoc, DeadStackObjects, DL, AA, TLI, BB.getParent()); 1063 1064 // If all of the allocas were clobbered by the access then we're not going 1065 // to find anything else to process. 1066 if (DeadStackObjects.empty()) 1067 break; 1068 } 1069 1070 return MadeChange; 1071 } 1072 1073 static bool tryToShorten(Instruction *EarlierWrite, int64_t &EarlierOffset, 1074 uint64_t &EarlierSize, int64_t LaterOffset, 1075 uint64_t LaterSize, bool IsOverwriteEnd) { 1076 // TODO: base this on the target vector size so that if the earlier 1077 // store was too small to get vector writes anyway then its likely 1078 // a good idea to shorten it 1079 // Power of 2 vector writes are probably always a bad idea to optimize 1080 // as any store/memset/memcpy is likely using vector instructions so 1081 // shortening it to not vector size is likely to be slower 1082 auto *EarlierIntrinsic = cast<AnyMemIntrinsic>(EarlierWrite); 1083 unsigned EarlierWriteAlign = EarlierIntrinsic->getDestAlignment(); 1084 if (!IsOverwriteEnd) 1085 LaterOffset = int64_t(LaterOffset + LaterSize); 1086 1087 if (!(isPowerOf2_64(LaterOffset) && EarlierWriteAlign <= LaterOffset) && 1088 !((EarlierWriteAlign != 0) && LaterOffset % EarlierWriteAlign == 0)) 1089 return false; 1090 1091 int64_t NewLength = IsOverwriteEnd 1092 ? LaterOffset - EarlierOffset 1093 : EarlierSize - (LaterOffset - EarlierOffset); 1094 1095 if (auto *AMI = dyn_cast<AtomicMemIntrinsic>(EarlierWrite)) { 1096 // When shortening an atomic memory intrinsic, the newly shortened 1097 // length must remain an integer multiple of the element size. 1098 const uint32_t ElementSize = AMI->getElementSizeInBytes(); 1099 if (0 != NewLength % ElementSize) 1100 return false; 1101 } 1102 1103 LLVM_DEBUG(dbgs() << "DSE: Remove Dead Store:\n OW " 1104 << (IsOverwriteEnd ? "END" : "BEGIN") << ": " 1105 << *EarlierWrite << "\n KILLER (offset " << LaterOffset 1106 << ", " << EarlierSize << ")\n"); 1107 1108 Value *EarlierWriteLength = EarlierIntrinsic->getLength(); 1109 Value *TrimmedLength = 1110 ConstantInt::get(EarlierWriteLength->getType(), NewLength); 1111 EarlierIntrinsic->setLength(TrimmedLength); 1112 1113 EarlierSize = NewLength; 1114 if (!IsOverwriteEnd) { 1115 int64_t OffsetMoved = (LaterOffset - EarlierOffset); 1116 Value *Indices[1] = { 1117 ConstantInt::get(EarlierWriteLength->getType(), OffsetMoved)}; 1118 GetElementPtrInst *NewDestGEP = GetElementPtrInst::CreateInBounds( 1119 EarlierIntrinsic->getRawDest()->getType()->getPointerElementType(), 1120 EarlierIntrinsic->getRawDest(), Indices, "", EarlierWrite); 1121 NewDestGEP->setDebugLoc(EarlierIntrinsic->getDebugLoc()); 1122 EarlierIntrinsic->setDest(NewDestGEP); 1123 EarlierOffset = EarlierOffset + OffsetMoved; 1124 } 1125 return true; 1126 } 1127 1128 static bool tryToShortenEnd(Instruction *EarlierWrite, 1129 OverlapIntervalsTy &IntervalMap, 1130 int64_t &EarlierStart, uint64_t &EarlierSize) { 1131 if (IntervalMap.empty() || !isShortenableAtTheEnd(EarlierWrite)) 1132 return false; 1133 1134 OverlapIntervalsTy::iterator OII = --IntervalMap.end(); 1135 int64_t LaterStart = OII->second; 1136 uint64_t LaterSize = OII->first - LaterStart; 1137 1138 assert(OII->first - LaterStart >= 0 && "Size expected to be positive"); 1139 1140 if (LaterStart > EarlierStart && 1141 // Note: "LaterStart - EarlierStart" is known to be positive due to 1142 // preceding check. 1143 (uint64_t)(LaterStart - EarlierStart) < EarlierSize && 1144 // Note: "EarlierSize - (uint64_t)(LaterStart - EarlierStart)" is known to 1145 // be non negative due to preceding checks. 1146 LaterSize >= EarlierSize - (uint64_t)(LaterStart - EarlierStart)) { 1147 if (tryToShorten(EarlierWrite, EarlierStart, EarlierSize, LaterStart, 1148 LaterSize, true)) { 1149 IntervalMap.erase(OII); 1150 return true; 1151 } 1152 } 1153 return false; 1154 } 1155 1156 static bool tryToShortenBegin(Instruction *EarlierWrite, 1157 OverlapIntervalsTy &IntervalMap, 1158 int64_t &EarlierStart, uint64_t &EarlierSize) { 1159 if (IntervalMap.empty() || !isShortenableAtTheBeginning(EarlierWrite)) 1160 return false; 1161 1162 OverlapIntervalsTy::iterator OII = IntervalMap.begin(); 1163 int64_t LaterStart = OII->second; 1164 uint64_t LaterSize = OII->first - LaterStart; 1165 1166 assert(OII->first - LaterStart >= 0 && "Size expected to be positive"); 1167 1168 if (LaterStart <= EarlierStart && 1169 // Note: "EarlierStart - LaterStart" is known to be non negative due to 1170 // preceding check. 1171 LaterSize > (uint64_t)(EarlierStart - LaterStart)) { 1172 // Note: "LaterSize - (uint64_t)(EarlierStart - LaterStart)" is known to be 1173 // positive due to preceding checks. 1174 assert(LaterSize - (uint64_t)(EarlierStart - LaterStart) < EarlierSize && 1175 "Should have been handled as OW_Complete"); 1176 if (tryToShorten(EarlierWrite, EarlierStart, EarlierSize, LaterStart, 1177 LaterSize, false)) { 1178 IntervalMap.erase(OII); 1179 return true; 1180 } 1181 } 1182 return false; 1183 } 1184 1185 static bool removePartiallyOverlappedStores(const DataLayout &DL, 1186 InstOverlapIntervalsTy &IOL, 1187 const TargetLibraryInfo &TLI) { 1188 bool Changed = false; 1189 for (auto OI : IOL) { 1190 Instruction *EarlierWrite = OI.first; 1191 MemoryLocation Loc = getLocForWrite(EarlierWrite, TLI); 1192 assert(isRemovable(EarlierWrite) && "Expect only removable instruction"); 1193 1194 const Value *Ptr = Loc.Ptr->stripPointerCasts(); 1195 int64_t EarlierStart = 0; 1196 uint64_t EarlierSize = Loc.Size.getValue(); 1197 GetPointerBaseWithConstantOffset(Ptr, EarlierStart, DL); 1198 OverlapIntervalsTy &IntervalMap = OI.second; 1199 Changed |= 1200 tryToShortenEnd(EarlierWrite, IntervalMap, EarlierStart, EarlierSize); 1201 if (IntervalMap.empty()) 1202 continue; 1203 Changed |= 1204 tryToShortenBegin(EarlierWrite, IntervalMap, EarlierStart, EarlierSize); 1205 } 1206 return Changed; 1207 } 1208 1209 static bool eliminateNoopStore(Instruction *Inst, BasicBlock::iterator &BBI, 1210 AliasAnalysis *AA, MemoryDependenceResults *MD, 1211 const DataLayout &DL, 1212 const TargetLibraryInfo *TLI, 1213 InstOverlapIntervalsTy &IOL, 1214 MapVector<Instruction *, bool> &ThrowableInst, 1215 DominatorTree *DT) { 1216 // Must be a store instruction. 1217 StoreInst *SI = dyn_cast<StoreInst>(Inst); 1218 if (!SI) 1219 return false; 1220 1221 // If we're storing the same value back to a pointer that we just loaded from, 1222 // then the store can be removed. 1223 if (LoadInst *DepLoad = dyn_cast<LoadInst>(SI->getValueOperand())) { 1224 if (SI->getPointerOperand() == DepLoad->getPointerOperand() && 1225 isRemovable(SI) && 1226 memoryIsNotModifiedBetween(DepLoad, SI, *AA, DL, DT)) { 1227 1228 LLVM_DEBUG( 1229 dbgs() << "DSE: Remove Store Of Load from same pointer:\n LOAD: " 1230 << *DepLoad << "\n STORE: " << *SI << '\n'); 1231 1232 deleteDeadInstruction(SI, &BBI, *MD, *TLI, IOL, ThrowableInst); 1233 ++NumRedundantStores; 1234 return true; 1235 } 1236 } 1237 1238 // Remove null stores into the calloc'ed objects 1239 Constant *StoredConstant = dyn_cast<Constant>(SI->getValueOperand()); 1240 if (StoredConstant && StoredConstant->isNullValue() && isRemovable(SI)) { 1241 Instruction *UnderlyingPointer = 1242 dyn_cast<Instruction>(getUnderlyingObject(SI->getPointerOperand())); 1243 1244 if (UnderlyingPointer && isCallocLikeFn(UnderlyingPointer, TLI) && 1245 memoryIsNotModifiedBetween(UnderlyingPointer, SI, *AA, DL, DT)) { 1246 LLVM_DEBUG( 1247 dbgs() << "DSE: Remove null store to the calloc'ed object:\n DEAD: " 1248 << *Inst << "\n OBJECT: " << *UnderlyingPointer << '\n'); 1249 1250 deleteDeadInstruction(SI, &BBI, *MD, *TLI, IOL, ThrowableInst); 1251 ++NumRedundantStores; 1252 return true; 1253 } 1254 } 1255 return false; 1256 } 1257 1258 template <typename AATy> 1259 static Constant *tryToMergePartialOverlappingStores( 1260 StoreInst *Earlier, StoreInst *Later, int64_t InstWriteOffset, 1261 int64_t DepWriteOffset, const DataLayout &DL, AATy &AA, DominatorTree *DT) { 1262 1263 if (Earlier && isa<ConstantInt>(Earlier->getValueOperand()) && 1264 DL.typeSizeEqualsStoreSize(Earlier->getValueOperand()->getType()) && 1265 Later && isa<ConstantInt>(Later->getValueOperand()) && 1266 DL.typeSizeEqualsStoreSize(Later->getValueOperand()->getType()) && 1267 memoryIsNotModifiedBetween(Earlier, Later, AA, DL, DT)) { 1268 // If the store we find is: 1269 // a) partially overwritten by the store to 'Loc' 1270 // b) the later store is fully contained in the earlier one and 1271 // c) they both have a constant value 1272 // d) none of the two stores need padding 1273 // Merge the two stores, replacing the earlier store's value with a 1274 // merge of both values. 1275 // TODO: Deal with other constant types (vectors, etc), and probably 1276 // some mem intrinsics (if needed) 1277 1278 APInt EarlierValue = 1279 cast<ConstantInt>(Earlier->getValueOperand())->getValue(); 1280 APInt LaterValue = cast<ConstantInt>(Later->getValueOperand())->getValue(); 1281 unsigned LaterBits = LaterValue.getBitWidth(); 1282 assert(EarlierValue.getBitWidth() > LaterValue.getBitWidth()); 1283 LaterValue = LaterValue.zext(EarlierValue.getBitWidth()); 1284 1285 // Offset of the smaller store inside the larger store 1286 unsigned BitOffsetDiff = (InstWriteOffset - DepWriteOffset) * 8; 1287 unsigned LShiftAmount = DL.isBigEndian() ? EarlierValue.getBitWidth() - 1288 BitOffsetDiff - LaterBits 1289 : BitOffsetDiff; 1290 APInt Mask = APInt::getBitsSet(EarlierValue.getBitWidth(), LShiftAmount, 1291 LShiftAmount + LaterBits); 1292 // Clear the bits we'll be replacing, then OR with the smaller 1293 // store, shifted appropriately. 1294 APInt Merged = (EarlierValue & ~Mask) | (LaterValue << LShiftAmount); 1295 LLVM_DEBUG(dbgs() << "DSE: Merge Stores:\n Earlier: " << *Earlier 1296 << "\n Later: " << *Later 1297 << "\n Merged Value: " << Merged << '\n'); 1298 return ConstantInt::get(Earlier->getValueOperand()->getType(), Merged); 1299 } 1300 return nullptr; 1301 } 1302 1303 static bool eliminateDeadStores(BasicBlock &BB, AliasAnalysis *AA, 1304 MemoryDependenceResults *MD, DominatorTree *DT, 1305 const TargetLibraryInfo *TLI) { 1306 const DataLayout &DL = BB.getModule()->getDataLayout(); 1307 bool MadeChange = false; 1308 1309 MapVector<Instruction *, bool> ThrowableInst; 1310 1311 // A map of interval maps representing partially-overwritten value parts. 1312 InstOverlapIntervalsTy IOL; 1313 1314 // Do a top-down walk on the BB. 1315 for (BasicBlock::iterator BBI = BB.begin(), BBE = BB.end(); BBI != BBE; ) { 1316 // Handle 'free' calls specially. 1317 if (CallInst *F = isFreeCall(&*BBI, TLI)) { 1318 MadeChange |= handleFree(F, AA, MD, DT, TLI, IOL, ThrowableInst); 1319 // Increment BBI after handleFree has potentially deleted instructions. 1320 // This ensures we maintain a valid iterator. 1321 ++BBI; 1322 continue; 1323 } 1324 1325 Instruction *Inst = &*BBI++; 1326 1327 if (Inst->mayThrow()) { 1328 ThrowableInst[Inst] = true; 1329 continue; 1330 } 1331 1332 // Check to see if Inst writes to memory. If not, continue. 1333 if (!hasAnalyzableMemoryWrite(Inst, *TLI)) 1334 continue; 1335 1336 // eliminateNoopStore will update in iterator, if necessary. 1337 if (eliminateNoopStore(Inst, BBI, AA, MD, DL, TLI, IOL, 1338 ThrowableInst, DT)) { 1339 MadeChange = true; 1340 continue; 1341 } 1342 1343 // If we find something that writes memory, get its memory dependence. 1344 MemDepResult InstDep = MD->getDependency(Inst); 1345 1346 // Ignore any store where we can't find a local dependence. 1347 // FIXME: cross-block DSE would be fun. :) 1348 if (!InstDep.isDef() && !InstDep.isClobber()) 1349 continue; 1350 1351 // Figure out what location is being stored to. 1352 MemoryLocation Loc = getLocForWrite(Inst, *TLI); 1353 1354 // If we didn't get a useful location, fail. 1355 if (!Loc.Ptr) 1356 continue; 1357 1358 // Loop until we find a store we can eliminate or a load that 1359 // invalidates the analysis. Without an upper bound on the number of 1360 // instructions examined, this analysis can become very time-consuming. 1361 // However, the potential gain diminishes as we process more instructions 1362 // without eliminating any of them. Therefore, we limit the number of 1363 // instructions we look at. 1364 auto Limit = MD->getDefaultBlockScanLimit(); 1365 while (InstDep.isDef() || InstDep.isClobber()) { 1366 // Get the memory clobbered by the instruction we depend on. MemDep will 1367 // skip any instructions that 'Loc' clearly doesn't interact with. If we 1368 // end up depending on a may- or must-aliased load, then we can't optimize 1369 // away the store and we bail out. However, if we depend on something 1370 // that overwrites the memory location we *can* potentially optimize it. 1371 // 1372 // Find out what memory location the dependent instruction stores. 1373 Instruction *DepWrite = InstDep.getInst(); 1374 if (!hasAnalyzableMemoryWrite(DepWrite, *TLI)) 1375 break; 1376 MemoryLocation DepLoc = getLocForWrite(DepWrite, *TLI); 1377 // If we didn't get a useful location, or if it isn't a size, bail out. 1378 if (!DepLoc.Ptr) 1379 break; 1380 1381 // Find the last throwable instruction not removed by call to 1382 // deleteDeadInstruction. 1383 Instruction *LastThrowing = nullptr; 1384 if (!ThrowableInst.empty()) 1385 LastThrowing = ThrowableInst.back().first; 1386 1387 // Make sure we don't look past a call which might throw. This is an 1388 // issue because MemoryDependenceAnalysis works in the wrong direction: 1389 // it finds instructions which dominate the current instruction, rather than 1390 // instructions which are post-dominated by the current instruction. 1391 // 1392 // If the underlying object is a non-escaping memory allocation, any store 1393 // to it is dead along the unwind edge. Otherwise, we need to preserve 1394 // the store. 1395 if (LastThrowing && DepWrite->comesBefore(LastThrowing)) { 1396 const Value *Underlying = getUnderlyingObject(DepLoc.Ptr); 1397 bool IsStoreDeadOnUnwind = isa<AllocaInst>(Underlying); 1398 if (!IsStoreDeadOnUnwind) { 1399 // We're looking for a call to an allocation function 1400 // where the allocation doesn't escape before the last 1401 // throwing instruction; PointerMayBeCaptured 1402 // reasonably fast approximation. 1403 IsStoreDeadOnUnwind = isAllocLikeFn(Underlying, TLI) && 1404 !PointerMayBeCaptured(Underlying, false, true); 1405 } 1406 if (!IsStoreDeadOnUnwind) 1407 break; 1408 } 1409 1410 // If we find a write that is a) removable (i.e., non-volatile), b) is 1411 // completely obliterated by the store to 'Loc', and c) which we know that 1412 // 'Inst' doesn't load from, then we can remove it. 1413 // Also try to merge two stores if a later one only touches memory written 1414 // to by the earlier one. 1415 if (isRemovable(DepWrite) && 1416 !isPossibleSelfRead(Inst, Loc, DepWrite, *TLI, *AA)) { 1417 int64_t InstWriteOffset, DepWriteOffset; 1418 OverwriteResult OR = isOverwrite(Inst, DepWrite, Loc, DepLoc, DL, *TLI, 1419 DepWriteOffset, InstWriteOffset, *AA, 1420 BB.getParent()); 1421 if (OR == OW_MaybePartial) 1422 OR = isPartialOverwrite(Loc, DepLoc, DepWriteOffset, InstWriteOffset, 1423 DepWrite, IOL); 1424 1425 if (OR == OW_Complete) { 1426 LLVM_DEBUG(dbgs() << "DSE: Remove Dead Store:\n DEAD: " << *DepWrite 1427 << "\n KILLER: " << *Inst << '\n'); 1428 1429 // Delete the store and now-dead instructions that feed it. 1430 deleteDeadInstruction(DepWrite, &BBI, *MD, *TLI, IOL, 1431 ThrowableInst); 1432 ++NumFastStores; 1433 MadeChange = true; 1434 1435 // We erased DepWrite; start over. 1436 InstDep = MD->getDependency(Inst); 1437 continue; 1438 } else if ((OR == OW_End && isShortenableAtTheEnd(DepWrite)) || 1439 ((OR == OW_Begin && 1440 isShortenableAtTheBeginning(DepWrite)))) { 1441 assert(!EnablePartialOverwriteTracking && "Do not expect to perform " 1442 "when partial-overwrite " 1443 "tracking is enabled"); 1444 // The overwrite result is known, so these must be known, too. 1445 uint64_t EarlierSize = DepLoc.Size.getValue(); 1446 uint64_t LaterSize = Loc.Size.getValue(); 1447 bool IsOverwriteEnd = (OR == OW_End); 1448 MadeChange |= tryToShorten(DepWrite, DepWriteOffset, EarlierSize, 1449 InstWriteOffset, LaterSize, IsOverwriteEnd); 1450 } else if (EnablePartialStoreMerging && 1451 OR == OW_PartialEarlierWithFullLater) { 1452 auto *Earlier = dyn_cast<StoreInst>(DepWrite); 1453 auto *Later = dyn_cast<StoreInst>(Inst); 1454 if (Constant *C = tryToMergePartialOverlappingStores( 1455 Earlier, Later, InstWriteOffset, DepWriteOffset, DL, *AA, 1456 DT)) { 1457 auto *SI = new StoreInst( 1458 C, Earlier->getPointerOperand(), false, Earlier->getAlign(), 1459 Earlier->getOrdering(), Earlier->getSyncScopeID(), DepWrite); 1460 1461 unsigned MDToKeep[] = {LLVMContext::MD_dbg, LLVMContext::MD_tbaa, 1462 LLVMContext::MD_alias_scope, 1463 LLVMContext::MD_noalias, 1464 LLVMContext::MD_nontemporal}; 1465 SI->copyMetadata(*DepWrite, MDToKeep); 1466 ++NumModifiedStores; 1467 1468 // Delete the old stores and now-dead instructions that feed them. 1469 deleteDeadInstruction(Inst, &BBI, *MD, *TLI, IOL, 1470 ThrowableInst); 1471 deleteDeadInstruction(DepWrite, &BBI, *MD, *TLI, IOL, 1472 ThrowableInst); 1473 MadeChange = true; 1474 1475 // We erased DepWrite and Inst (Loc); start over. 1476 break; 1477 } 1478 } 1479 } 1480 1481 // If this is a may-aliased store that is clobbering the store value, we 1482 // can keep searching past it for another must-aliased pointer that stores 1483 // to the same location. For example, in: 1484 // store -> P 1485 // store -> Q 1486 // store -> P 1487 // we can remove the first store to P even though we don't know if P and Q 1488 // alias. 1489 if (DepWrite == &BB.front()) break; 1490 1491 // Can't look past this instruction if it might read 'Loc'. 1492 if (isRefSet(AA->getModRefInfo(DepWrite, Loc))) 1493 break; 1494 1495 InstDep = MD->getPointerDependencyFrom(Loc, /*isLoad=*/ false, 1496 DepWrite->getIterator(), &BB, 1497 /*QueryInst=*/ nullptr, &Limit); 1498 } 1499 } 1500 1501 if (EnablePartialOverwriteTracking) 1502 MadeChange |= removePartiallyOverlappedStores(DL, IOL, *TLI); 1503 1504 // If this block ends in a return, unwind, or unreachable, all allocas are 1505 // dead at its end, which means stores to them are also dead. 1506 if (BB.getTerminator()->getNumSuccessors() == 0) 1507 MadeChange |= handleEndBlock(BB, AA, MD, TLI, IOL, ThrowableInst); 1508 1509 return MadeChange; 1510 } 1511 1512 static bool eliminateDeadStores(Function &F, AliasAnalysis *AA, 1513 MemoryDependenceResults *MD, DominatorTree *DT, 1514 const TargetLibraryInfo *TLI) { 1515 bool MadeChange = false; 1516 for (BasicBlock &BB : F) 1517 // Only check non-dead blocks. Dead blocks may have strange pointer 1518 // cycles that will confuse alias analysis. 1519 if (DT->isReachableFromEntry(&BB)) 1520 MadeChange |= eliminateDeadStores(BB, AA, MD, DT, TLI); 1521 1522 return MadeChange; 1523 } 1524 1525 namespace { 1526 //============================================================================= 1527 // MemorySSA backed dead store elimination. 1528 // 1529 // The code below implements dead store elimination using MemorySSA. It uses 1530 // the following general approach: given a MemoryDef, walk upwards to find 1531 // clobbering MemoryDefs that may be killed by the starting def. Then check 1532 // that there are no uses that may read the location of the original MemoryDef 1533 // in between both MemoryDefs. A bit more concretely: 1534 // 1535 // For all MemoryDefs StartDef: 1536 // 1. Get the next dominating clobbering MemoryDef (EarlierAccess) by walking 1537 // upwards. 1538 // 2. Check that there are no reads between EarlierAccess and the StartDef by 1539 // checking all uses starting at EarlierAccess and walking until we see 1540 // StartDef. 1541 // 3. For each found CurrentDef, check that: 1542 // 1. There are no barrier instructions between CurrentDef and StartDef (like 1543 // throws or stores with ordering constraints). 1544 // 2. StartDef is executed whenever CurrentDef is executed. 1545 // 3. StartDef completely overwrites CurrentDef. 1546 // 4. Erase CurrentDef from the function and MemorySSA. 1547 1548 // Returns true if \p I is an intrisnic that does not read or write memory. 1549 bool isNoopIntrinsic(Instruction *I) { 1550 if (const IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) { 1551 switch (II->getIntrinsicID()) { 1552 case Intrinsic::lifetime_start: 1553 case Intrinsic::lifetime_end: 1554 case Intrinsic::invariant_end: 1555 case Intrinsic::launder_invariant_group: 1556 case Intrinsic::assume: 1557 return true; 1558 case Intrinsic::dbg_addr: 1559 case Intrinsic::dbg_declare: 1560 case Intrinsic::dbg_label: 1561 case Intrinsic::dbg_value: 1562 llvm_unreachable("Intrinsic should not be modeled in MemorySSA"); 1563 default: 1564 return false; 1565 } 1566 } 1567 return false; 1568 } 1569 1570 // Check if we can ignore \p D for DSE. 1571 bool canSkipDef(MemoryDef *D, bool DefVisibleToCaller) { 1572 Instruction *DI = D->getMemoryInst(); 1573 // Calls that only access inaccessible memory cannot read or write any memory 1574 // locations we consider for elimination. 1575 if (auto *CB = dyn_cast<CallBase>(DI)) 1576 if (CB->onlyAccessesInaccessibleMemory()) 1577 return true; 1578 1579 // We can eliminate stores to locations not visible to the caller across 1580 // throwing instructions. 1581 if (DI->mayThrow() && !DefVisibleToCaller) 1582 return true; 1583 1584 // We can remove the dead stores, irrespective of the fence and its ordering 1585 // (release/acquire/seq_cst). Fences only constraints the ordering of 1586 // already visible stores, it does not make a store visible to other 1587 // threads. So, skipping over a fence does not change a store from being 1588 // dead. 1589 if (isa<FenceInst>(DI)) 1590 return true; 1591 1592 // Skip intrinsics that do not really read or modify memory. 1593 if (isNoopIntrinsic(D->getMemoryInst())) 1594 return true; 1595 1596 return false; 1597 } 1598 1599 struct DSEState { 1600 Function &F; 1601 AliasAnalysis &AA; 1602 1603 /// The single BatchAA instance that is used to cache AA queries. It will 1604 /// not be invalidated over the whole run. This is safe, because: 1605 /// 1. Only memory writes are removed, so the alias cache for memory 1606 /// locations remains valid. 1607 /// 2. No new instructions are added (only instructions removed), so cached 1608 /// information for a deleted value cannot be accessed by a re-used new 1609 /// value pointer. 1610 BatchAAResults BatchAA; 1611 1612 MemorySSA &MSSA; 1613 DominatorTree &DT; 1614 PostDominatorTree &PDT; 1615 const TargetLibraryInfo &TLI; 1616 const DataLayout &DL; 1617 1618 // All MemoryDefs that potentially could kill other MemDefs. 1619 SmallVector<MemoryDef *, 64> MemDefs; 1620 // Any that should be skipped as they are already deleted 1621 SmallPtrSet<MemoryAccess *, 4> SkipStores; 1622 // Keep track of all of the objects that are invisible to the caller before 1623 // the function returns. 1624 // SmallPtrSet<const Value *, 16> InvisibleToCallerBeforeRet; 1625 DenseMap<const Value *, bool> InvisibleToCallerBeforeRet; 1626 // Keep track of all of the objects that are invisible to the caller after 1627 // the function returns. 1628 DenseMap<const Value *, bool> InvisibleToCallerAfterRet; 1629 // Keep track of blocks with throwing instructions not modeled in MemorySSA. 1630 SmallPtrSet<BasicBlock *, 16> ThrowingBlocks; 1631 // Post-order numbers for each basic block. Used to figure out if memory 1632 // accesses are executed before another access. 1633 DenseMap<BasicBlock *, unsigned> PostOrderNumbers; 1634 1635 /// Keep track of instructions (partly) overlapping with killing MemoryDefs per 1636 /// basic block. 1637 DenseMap<BasicBlock *, InstOverlapIntervalsTy> IOLs; 1638 1639 struct CheckCache { 1640 SmallPtrSet<MemoryAccess *, 16> KnownNoReads; 1641 SmallPtrSet<MemoryAccess *, 16> KnownReads; 1642 1643 bool isKnownNoRead(MemoryAccess *A) const { 1644 return KnownNoReads.find(A) != KnownNoReads.end(); 1645 } 1646 bool isKnownRead(MemoryAccess *A) const { 1647 return KnownReads.find(A) != KnownReads.end(); 1648 } 1649 }; 1650 1651 DSEState(Function &F, AliasAnalysis &AA, MemorySSA &MSSA, DominatorTree &DT, 1652 PostDominatorTree &PDT, const TargetLibraryInfo &TLI) 1653 : F(F), AA(AA), BatchAA(AA), MSSA(MSSA), DT(DT), PDT(PDT), TLI(TLI), 1654 DL(F.getParent()->getDataLayout()) {} 1655 1656 static DSEState get(Function &F, AliasAnalysis &AA, MemorySSA &MSSA, 1657 DominatorTree &DT, PostDominatorTree &PDT, 1658 const TargetLibraryInfo &TLI) { 1659 DSEState State(F, AA, MSSA, DT, PDT, TLI); 1660 // Collect blocks with throwing instructions not modeled in MemorySSA and 1661 // alloc-like objects. 1662 unsigned PO = 0; 1663 for (BasicBlock *BB : post_order(&F)) { 1664 State.PostOrderNumbers[BB] = PO++; 1665 for (Instruction &I : *BB) { 1666 MemoryAccess *MA = MSSA.getMemoryAccess(&I); 1667 if (I.mayThrow() && !MA) 1668 State.ThrowingBlocks.insert(I.getParent()); 1669 1670 auto *MD = dyn_cast_or_null<MemoryDef>(MA); 1671 if (MD && State.MemDefs.size() < MemorySSADefsPerBlockLimit && 1672 (State.getLocForWriteEx(&I) || State.isMemTerminatorInst(&I))) 1673 State.MemDefs.push_back(MD); 1674 } 1675 } 1676 1677 // Treat byval or inalloca arguments the same as Allocas, stores to them are 1678 // dead at the end of the function. 1679 for (Argument &AI : F.args()) 1680 if (AI.hasPassPointeeByValueCopyAttr()) { 1681 // For byval, the caller doesn't know the address of the allocation. 1682 if (AI.hasByValAttr()) 1683 State.InvisibleToCallerBeforeRet.insert({&AI, true}); 1684 State.InvisibleToCallerAfterRet.insert({&AI, true}); 1685 } 1686 1687 return State; 1688 } 1689 1690 bool isInvisibleToCallerAfterRet(const Value *V) { 1691 if (isa<AllocaInst>(V)) 1692 return true; 1693 auto I = InvisibleToCallerAfterRet.insert({V, false}); 1694 if (I.second) { 1695 if (!isInvisibleToCallerBeforeRet(V)) { 1696 I.first->second = false; 1697 } else { 1698 auto *Inst = dyn_cast<Instruction>(V); 1699 if (Inst && isAllocLikeFn(Inst, &TLI)) 1700 I.first->second = !PointerMayBeCaptured(V, true, false); 1701 } 1702 } 1703 return I.first->second; 1704 } 1705 1706 bool isInvisibleToCallerBeforeRet(const Value *V) { 1707 if (isa<AllocaInst>(V)) 1708 return true; 1709 auto I = InvisibleToCallerBeforeRet.insert({V, false}); 1710 if (I.second) { 1711 auto *Inst = dyn_cast<Instruction>(V); 1712 if (Inst && isAllocLikeFn(Inst, &TLI)) 1713 // NOTE: This could be made more precise by PointerMayBeCapturedBefore 1714 // with the killing MemoryDef. But we refrain from doing so for now to 1715 // limit compile-time and this does not cause any changes to the number 1716 // of stores removed on a large test set in practice. 1717 I.first->second = !PointerMayBeCaptured(V, false, true); 1718 } 1719 return I.first->second; 1720 } 1721 1722 Optional<MemoryLocation> getLocForWriteEx(Instruction *I) const { 1723 if (!I->mayWriteToMemory()) 1724 return None; 1725 1726 if (auto *MTI = dyn_cast<AnyMemIntrinsic>(I)) 1727 return {MemoryLocation::getForDest(MTI)}; 1728 1729 if (auto *CB = dyn_cast<CallBase>(I)) { 1730 // If the functions may write to memory we do not know about, bail out. 1731 if (!CB->onlyAccessesArgMemory() && 1732 !CB->onlyAccessesInaccessibleMemOrArgMem()) 1733 return None; 1734 1735 LibFunc LF; 1736 if (TLI.getLibFunc(*CB, LF) && TLI.has(LF)) { 1737 switch (LF) { 1738 case LibFunc_strcpy: 1739 case LibFunc_strncpy: 1740 case LibFunc_strcat: 1741 case LibFunc_strncat: 1742 return {MemoryLocation::getAfter(CB->getArgOperand(0))}; 1743 default: 1744 break; 1745 } 1746 } 1747 switch (CB->getIntrinsicID()) { 1748 case Intrinsic::init_trampoline: 1749 return {MemoryLocation::getAfter(CB->getArgOperand(0))}; 1750 case Intrinsic::masked_store: 1751 return {MemoryLocation::getForArgument(CB, 1, TLI)}; 1752 default: 1753 break; 1754 } 1755 return None; 1756 } 1757 1758 return MemoryLocation::getOrNone(I); 1759 } 1760 1761 /// Returns true if \p UseInst completely overwrites \p DefLoc 1762 /// (stored by \p DefInst). 1763 bool isCompleteOverwrite(MemoryLocation DefLoc, Instruction *DefInst, 1764 Instruction *UseInst) { 1765 // UseInst has a MemoryDef associated in MemorySSA. It's possible for a 1766 // MemoryDef to not write to memory, e.g. a volatile load is modeled as a 1767 // MemoryDef. 1768 if (!UseInst->mayWriteToMemory()) 1769 return false; 1770 1771 if (auto *CB = dyn_cast<CallBase>(UseInst)) 1772 if (CB->onlyAccessesInaccessibleMemory()) 1773 return false; 1774 1775 int64_t InstWriteOffset, DepWriteOffset; 1776 if (auto CC = getLocForWriteEx(UseInst)) 1777 return isOverwrite(UseInst, DefInst, *CC, DefLoc, DL, TLI, DepWriteOffset, 1778 InstWriteOffset, BatchAA, &F) == OW_Complete; 1779 return false; 1780 } 1781 1782 /// Returns true if \p Def is not read before returning from the function. 1783 bool isWriteAtEndOfFunction(MemoryDef *Def) { 1784 LLVM_DEBUG(dbgs() << " Check if def " << *Def << " (" 1785 << *Def->getMemoryInst() 1786 << ") is at the end the function \n"); 1787 1788 auto MaybeLoc = getLocForWriteEx(Def->getMemoryInst()); 1789 if (!MaybeLoc) { 1790 LLVM_DEBUG(dbgs() << " ... could not get location for write.\n"); 1791 return false; 1792 } 1793 1794 SmallVector<MemoryAccess *, 4> WorkList; 1795 SmallPtrSet<MemoryAccess *, 8> Visited; 1796 auto PushMemUses = [&WorkList, &Visited](MemoryAccess *Acc) { 1797 if (!Visited.insert(Acc).second) 1798 return; 1799 for (Use &U : Acc->uses()) 1800 WorkList.push_back(cast<MemoryAccess>(U.getUser())); 1801 }; 1802 PushMemUses(Def); 1803 for (unsigned I = 0; I < WorkList.size(); I++) { 1804 if (WorkList.size() >= MemorySSAScanLimit) { 1805 LLVM_DEBUG(dbgs() << " ... hit exploration limit.\n"); 1806 return false; 1807 } 1808 1809 MemoryAccess *UseAccess = WorkList[I]; 1810 // Simply adding the users of MemoryPhi to the worklist is not enough, 1811 // because we might miss read clobbers in different iterations of a loop, 1812 // for example. 1813 // TODO: Add support for phi translation to handle the loop case. 1814 if (isa<MemoryPhi>(UseAccess)) 1815 return false; 1816 1817 // TODO: Checking for aliasing is expensive. Consider reducing the amount 1818 // of times this is called and/or caching it. 1819 Instruction *UseInst = cast<MemoryUseOrDef>(UseAccess)->getMemoryInst(); 1820 if (isReadClobber(*MaybeLoc, UseInst)) { 1821 LLVM_DEBUG(dbgs() << " ... hit read clobber " << *UseInst << ".\n"); 1822 return false; 1823 } 1824 1825 if (MemoryDef *UseDef = dyn_cast<MemoryDef>(UseAccess)) 1826 PushMemUses(UseDef); 1827 } 1828 return true; 1829 } 1830 1831 /// If \p I is a memory terminator like llvm.lifetime.end or free, return a 1832 /// pair with the MemoryLocation terminated by \p I and a boolean flag 1833 /// indicating whether \p I is a free-like call. 1834 Optional<std::pair<MemoryLocation, bool>> 1835 getLocForTerminator(Instruction *I) const { 1836 uint64_t Len; 1837 Value *Ptr; 1838 if (match(I, m_Intrinsic<Intrinsic::lifetime_end>(m_ConstantInt(Len), 1839 m_Value(Ptr)))) 1840 return {std::make_pair(MemoryLocation(Ptr, Len), false)}; 1841 1842 if (auto *CB = dyn_cast<CallBase>(I)) { 1843 if (isFreeCall(I, &TLI)) 1844 return {std::make_pair(MemoryLocation::getAfter(CB->getArgOperand(0)), 1845 true)}; 1846 } 1847 1848 return None; 1849 } 1850 1851 /// Returns true if \p I is a memory terminator instruction like 1852 /// llvm.lifetime.end or free. 1853 bool isMemTerminatorInst(Instruction *I) const { 1854 IntrinsicInst *II = dyn_cast<IntrinsicInst>(I); 1855 return (II && II->getIntrinsicID() == Intrinsic::lifetime_end) || 1856 isFreeCall(I, &TLI); 1857 } 1858 1859 /// Returns true if \p MaybeTerm is a memory terminator for \p Loc from 1860 /// instruction \p AccessI. 1861 bool isMemTerminator(MemoryLocation Loc, Instruction *AccessI, 1862 Instruction *MaybeTerm) { 1863 Optional<std::pair<MemoryLocation, bool>> MaybeTermLoc = 1864 getLocForTerminator(MaybeTerm); 1865 1866 if (!MaybeTermLoc) 1867 return false; 1868 1869 // If the terminator is a free-like call, all accesses to the underlying 1870 // object can be considered terminated. 1871 if (getUnderlyingObject(Loc.Ptr) != 1872 getUnderlyingObject(MaybeTermLoc->first.Ptr)) 1873 return false; 1874 1875 auto TermLoc = MaybeTermLoc->first; 1876 if (MaybeTermLoc->second) { 1877 const Value *LocUO = getUnderlyingObject(Loc.Ptr); 1878 return BatchAA.isMustAlias(TermLoc.Ptr, LocUO); 1879 } 1880 int64_t InstWriteOffset, DepWriteOffset; 1881 return isOverwrite(MaybeTerm, AccessI, TermLoc, Loc, DL, TLI, 1882 DepWriteOffset, InstWriteOffset, BatchAA, 1883 &F) == OW_Complete; 1884 } 1885 1886 // Returns true if \p Use may read from \p DefLoc. 1887 bool isReadClobber(MemoryLocation DefLoc, Instruction *UseInst) { 1888 if (isNoopIntrinsic(UseInst)) 1889 return false; 1890 1891 // Monotonic or weaker atomic stores can be re-ordered and do not need to be 1892 // treated as read clobber. 1893 if (auto SI = dyn_cast<StoreInst>(UseInst)) 1894 return isStrongerThan(SI->getOrdering(), AtomicOrdering::Monotonic); 1895 1896 if (!UseInst->mayReadFromMemory()) 1897 return false; 1898 1899 if (auto *CB = dyn_cast<CallBase>(UseInst)) 1900 if (CB->onlyAccessesInaccessibleMemory()) 1901 return false; 1902 1903 // NOTE: For calls, the number of stores removed could be slightly improved 1904 // by using AA.callCapturesBefore(UseInst, DefLoc, &DT), but that showed to 1905 // be expensive compared to the benefits in practice. For now, avoid more 1906 // expensive analysis to limit compile-time. 1907 return isRefSet(BatchAA.getModRefInfo(UseInst, DefLoc)); 1908 } 1909 1910 /// Returns true if \p Ptr is guaranteed to be loop invariant for any possible 1911 /// loop. In particular, this guarantees that it only references a single 1912 /// MemoryLocation during execution of the containing function. 1913 bool IsGuaranteedLoopInvariant(Value *Ptr) { 1914 auto IsGuaranteedLoopInvariantBase = [this](Value *Ptr) { 1915 Ptr = Ptr->stripPointerCasts(); 1916 if (auto *I = dyn_cast<Instruction>(Ptr)) { 1917 if (isa<AllocaInst>(Ptr)) 1918 return true; 1919 1920 if (isAllocLikeFn(I, &TLI)) 1921 return true; 1922 1923 return false; 1924 } 1925 return true; 1926 }; 1927 1928 Ptr = Ptr->stripPointerCasts(); 1929 if (auto *GEP = dyn_cast<GEPOperator>(Ptr)) { 1930 return IsGuaranteedLoopInvariantBase(GEP->getPointerOperand()) && 1931 GEP->hasAllConstantIndices(); 1932 } 1933 return IsGuaranteedLoopInvariantBase(Ptr); 1934 } 1935 1936 // Find a MemoryDef writing to \p DefLoc and dominating \p StartAccess, with 1937 // no read access between them or on any other path to a function exit block 1938 // if \p DefLoc is not accessible after the function returns. If there is no 1939 // such MemoryDef, return None. The returned value may not (completely) 1940 // overwrite \p DefLoc. Currently we bail out when we encounter an aliasing 1941 // MemoryUse (read). 1942 Optional<MemoryAccess *> 1943 getDomMemoryDef(MemoryDef *KillingDef, MemoryAccess *StartAccess, 1944 MemoryLocation DefLoc, const Value *DefUO, CheckCache &Cache, 1945 unsigned &ScanLimit, unsigned &WalkerStepLimit, 1946 bool IsMemTerm, unsigned &PartialLimit) { 1947 if (ScanLimit == 0 || WalkerStepLimit == 0) { 1948 LLVM_DEBUG(dbgs() << "\n ... hit scan limit\n"); 1949 return None; 1950 } 1951 1952 MemoryAccess *Current = StartAccess; 1953 Instruction *KillingI = KillingDef->getMemoryInst(); 1954 bool StepAgain; 1955 LLVM_DEBUG(dbgs() << " trying to get dominating access\n"); 1956 1957 // Find the next clobbering Mod access for DefLoc, starting at StartAccess. 1958 do { 1959 StepAgain = false; 1960 LLVM_DEBUG({ 1961 dbgs() << " visiting " << *Current; 1962 if (!MSSA.isLiveOnEntryDef(Current) && isa<MemoryUseOrDef>(Current)) 1963 dbgs() << " (" << *cast<MemoryUseOrDef>(Current)->getMemoryInst() 1964 << ")"; 1965 dbgs() << "\n"; 1966 }); 1967 1968 // Reached TOP. 1969 if (MSSA.isLiveOnEntryDef(Current)) { 1970 LLVM_DEBUG(dbgs() << " ... found LiveOnEntryDef\n"); 1971 return None; 1972 } 1973 1974 // Cost of a step. Accesses in the same block are more likely to be valid 1975 // candidates for elimination, hence consider them cheaper. 1976 unsigned StepCost = KillingDef->getBlock() == Current->getBlock() 1977 ? MemorySSASameBBStepCost 1978 : MemorySSAOtherBBStepCost; 1979 if (WalkerStepLimit <= StepCost) { 1980 LLVM_DEBUG(dbgs() << " ... hit walker step limit\n"); 1981 return None; 1982 } 1983 WalkerStepLimit -= StepCost; 1984 1985 // Return for MemoryPhis. They cannot be eliminated directly and the 1986 // caller is responsible for traversing them. 1987 if (isa<MemoryPhi>(Current)) { 1988 LLVM_DEBUG(dbgs() << " ... found MemoryPhi\n"); 1989 return Current; 1990 } 1991 1992 // Below, check if CurrentDef is a valid candidate to be eliminated by 1993 // KillingDef. If it is not, check the next candidate. 1994 MemoryDef *CurrentDef = cast<MemoryDef>(Current); 1995 Instruction *CurrentI = CurrentDef->getMemoryInst(); 1996 1997 if (canSkipDef(CurrentDef, !isInvisibleToCallerBeforeRet(DefUO))) { 1998 StepAgain = true; 1999 Current = CurrentDef->getDefiningAccess(); 2000 continue; 2001 } 2002 2003 // Before we try to remove anything, check for any extra throwing 2004 // instructions that block us from DSEing 2005 if (mayThrowBetween(KillingI, CurrentI, DefUO)) { 2006 LLVM_DEBUG(dbgs() << " ... skip, may throw!\n"); 2007 return None; 2008 } 2009 2010 // Check for anything that looks like it will be a barrier to further 2011 // removal 2012 if (isDSEBarrier(DefUO, CurrentI)) { 2013 LLVM_DEBUG(dbgs() << " ... skip, barrier\n"); 2014 return None; 2015 } 2016 2017 // If Current is known to be on path that reads DefLoc or is a read 2018 // clobber, bail out, as the path is not profitable. We skip this check 2019 // for intrinsic calls, because the code knows how to handle memcpy 2020 // intrinsics. 2021 if (!isa<IntrinsicInst>(CurrentI) && 2022 (Cache.KnownReads.contains(Current) || 2023 isReadClobber(DefLoc, CurrentI))) { 2024 Cache.KnownReads.insert(Current); 2025 return None; 2026 } 2027 2028 // Quick check if there are direct uses that are read-clobbers. 2029 if (any_of(Current->uses(), [this, &DefLoc, StartAccess](Use &U) { 2030 if (auto *UseOrDef = dyn_cast<MemoryUseOrDef>(U.getUser())) 2031 return !MSSA.dominates(StartAccess, UseOrDef) && 2032 isReadClobber(DefLoc, UseOrDef->getMemoryInst()); 2033 return false; 2034 })) { 2035 Cache.KnownReads.insert(Current); 2036 LLVM_DEBUG(dbgs() << " ... found a read clobber\n"); 2037 return None; 2038 } 2039 2040 // If Current cannot be analyzed or is not removable, check the next 2041 // candidate. 2042 if (!hasAnalyzableMemoryWrite(CurrentI, TLI) || !isRemovable(CurrentI)) { 2043 StepAgain = true; 2044 Current = CurrentDef->getDefiningAccess(); 2045 continue; 2046 } 2047 2048 // If Current does not have an analyzable write location, skip it 2049 auto CurrentLoc = getLocForWriteEx(CurrentI); 2050 if (!CurrentLoc) { 2051 StepAgain = true; 2052 Current = CurrentDef->getDefiningAccess(); 2053 continue; 2054 } 2055 2056 if (IsMemTerm) { 2057 // If the killing def is a memory terminator (e.g. lifetime.end), check 2058 // the next candidate if the current Current does not write the same 2059 // underlying object as the terminator. 2060 if (!isMemTerminator(*CurrentLoc, CurrentI, KillingI)) { 2061 StepAgain = true; 2062 Current = CurrentDef->getDefiningAccess(); 2063 } 2064 continue; 2065 } else { 2066 // AliasAnalysis does not account for loops. Limit elimination to 2067 // candidates for which we can guarantee they always store to the same 2068 // memory location and not multiple locations in a loop. 2069 if (Current->getBlock() != KillingDef->getBlock() && 2070 !IsGuaranteedLoopInvariant(const_cast<Value *>(CurrentLoc->Ptr))) { 2071 StepAgain = true; 2072 Current = CurrentDef->getDefiningAccess(); 2073 WalkerStepLimit -= 1; 2074 continue; 2075 } 2076 2077 int64_t InstWriteOffset, DepWriteOffset; 2078 auto OR = isOverwrite(KillingI, CurrentI, DefLoc, *CurrentLoc, DL, TLI, 2079 DepWriteOffset, InstWriteOffset, BatchAA, &F); 2080 // If Current does not write to the same object as KillingDef, check 2081 // the next candidate. 2082 if (OR == OW_Unknown) { 2083 StepAgain = true; 2084 Current = CurrentDef->getDefiningAccess(); 2085 } else if (OR == OW_MaybePartial) { 2086 // If KillingDef only partially overwrites Current, check the next 2087 // candidate if the partial step limit is exceeded. This aggressively 2088 // limits the number of candidates for partial store elimination, 2089 // which are less likely to be removable in the end. 2090 if (PartialLimit <= 1) { 2091 StepAgain = true; 2092 Current = CurrentDef->getDefiningAccess(); 2093 WalkerStepLimit -= 1; 2094 continue; 2095 } 2096 PartialLimit -= 1; 2097 } 2098 } 2099 } while (StepAgain); 2100 2101 // Accesses to objects accessible after the function returns can only be 2102 // eliminated if the access is killed along all paths to the exit. Collect 2103 // the blocks with killing (=completely overwriting MemoryDefs) and check if 2104 // they cover all paths from EarlierAccess to any function exit. 2105 SmallPtrSet<Instruction *, 16> KillingDefs; 2106 KillingDefs.insert(KillingDef->getMemoryInst()); 2107 MemoryAccess *EarlierAccess = Current; 2108 Instruction *EarlierMemInst = 2109 cast<MemoryDef>(EarlierAccess)->getMemoryInst(); 2110 LLVM_DEBUG(dbgs() << " Checking for reads of " << *EarlierAccess << " (" 2111 << *EarlierMemInst << ")\n"); 2112 2113 SmallSetVector<MemoryAccess *, 32> WorkList; 2114 auto PushMemUses = [&WorkList](MemoryAccess *Acc) { 2115 for (Use &U : Acc->uses()) 2116 WorkList.insert(cast<MemoryAccess>(U.getUser())); 2117 }; 2118 PushMemUses(EarlierAccess); 2119 2120 // Optimistically collect all accesses for reads. If we do not find any 2121 // read clobbers, add them to the cache. 2122 SmallPtrSet<MemoryAccess *, 16> KnownNoReads; 2123 if (!EarlierMemInst->mayReadFromMemory()) 2124 KnownNoReads.insert(EarlierAccess); 2125 // Check if EarlierDef may be read. 2126 for (unsigned I = 0; I < WorkList.size(); I++) { 2127 MemoryAccess *UseAccess = WorkList[I]; 2128 2129 LLVM_DEBUG(dbgs() << " " << *UseAccess); 2130 // Bail out if the number of accesses to check exceeds the scan limit. 2131 if (ScanLimit < (WorkList.size() - I)) { 2132 LLVM_DEBUG(dbgs() << "\n ... hit scan limit\n"); 2133 return None; 2134 } 2135 --ScanLimit; 2136 NumDomMemDefChecks++; 2137 2138 // Check if we already visited this access. 2139 if (Cache.isKnownNoRead(UseAccess)) { 2140 LLVM_DEBUG(dbgs() << " ... skip, discovered that " << *UseAccess 2141 << " is safe earlier.\n"); 2142 continue; 2143 } 2144 if (Cache.isKnownRead(UseAccess)) { 2145 LLVM_DEBUG(dbgs() << " ... bail out, discovered that " << *UseAccess 2146 << " has a read-clobber earlier.\n"); 2147 return None; 2148 } 2149 KnownNoReads.insert(UseAccess); 2150 2151 if (isa<MemoryPhi>(UseAccess)) { 2152 if (any_of(KillingDefs, [this, UseAccess](Instruction *KI) { 2153 return DT.properlyDominates(KI->getParent(), 2154 UseAccess->getBlock()); 2155 })) { 2156 LLVM_DEBUG(dbgs() << " ... skipping, dominated by killing block\n"); 2157 continue; 2158 } 2159 LLVM_DEBUG(dbgs() << "\n ... adding PHI uses\n"); 2160 PushMemUses(UseAccess); 2161 continue; 2162 } 2163 2164 Instruction *UseInst = cast<MemoryUseOrDef>(UseAccess)->getMemoryInst(); 2165 LLVM_DEBUG(dbgs() << " (" << *UseInst << ")\n"); 2166 2167 if (any_of(KillingDefs, [this, UseInst](Instruction *KI) { 2168 return DT.dominates(KI, UseInst); 2169 })) { 2170 LLVM_DEBUG(dbgs() << " ... skipping, dominated by killing def\n"); 2171 continue; 2172 } 2173 2174 // A memory terminator kills all preceeding MemoryDefs and all succeeding 2175 // MemoryAccesses. We do not have to check it's users. 2176 if (isMemTerminator(DefLoc, KillingI, UseInst)) { 2177 LLVM_DEBUG( 2178 dbgs() 2179 << " ... skipping, memterminator invalidates following accesses\n"); 2180 continue; 2181 } 2182 2183 if (isNoopIntrinsic(cast<MemoryUseOrDef>(UseAccess)->getMemoryInst())) { 2184 LLVM_DEBUG(dbgs() << " ... adding uses of intrinsic\n"); 2185 PushMemUses(UseAccess); 2186 continue; 2187 } 2188 2189 if (UseInst->mayThrow() && !isInvisibleToCallerBeforeRet(DefUO)) { 2190 LLVM_DEBUG(dbgs() << " ... found throwing instruction\n"); 2191 Cache.KnownReads.insert(UseAccess); 2192 Cache.KnownReads.insert(StartAccess); 2193 Cache.KnownReads.insert(EarlierAccess); 2194 return None; 2195 } 2196 2197 // Uses which may read the original MemoryDef mean we cannot eliminate the 2198 // original MD. Stop walk. 2199 if (isReadClobber(DefLoc, UseInst)) { 2200 LLVM_DEBUG(dbgs() << " ... found read clobber\n"); 2201 Cache.KnownReads.insert(UseAccess); 2202 Cache.KnownReads.insert(StartAccess); 2203 Cache.KnownReads.insert(EarlierAccess); 2204 return None; 2205 } 2206 2207 // For the KillingDef and EarlierAccess we only have to check if it reads 2208 // the memory location. 2209 // TODO: It would probably be better to check for self-reads before 2210 // calling the function. 2211 if (KillingDef == UseAccess || EarlierAccess == UseAccess) { 2212 LLVM_DEBUG(dbgs() << " ... skipping killing def/dom access\n"); 2213 continue; 2214 } 2215 2216 // Check all uses for MemoryDefs, except for defs completely overwriting 2217 // the original location. Otherwise we have to check uses of *all* 2218 // MemoryDefs we discover, including non-aliasing ones. Otherwise we might 2219 // miss cases like the following 2220 // 1 = Def(LoE) ; <----- EarlierDef stores [0,1] 2221 // 2 = Def(1) ; (2, 1) = NoAlias, stores [2,3] 2222 // Use(2) ; MayAlias 2 *and* 1, loads [0, 3]. 2223 // (The Use points to the *first* Def it may alias) 2224 // 3 = Def(1) ; <---- Current (3, 2) = NoAlias, (3,1) = MayAlias, 2225 // stores [0,1] 2226 if (MemoryDef *UseDef = dyn_cast<MemoryDef>(UseAccess)) { 2227 if (isCompleteOverwrite(DefLoc, KillingI, UseInst)) { 2228 if (!isInvisibleToCallerAfterRet(DefUO) && 2229 UseAccess != EarlierAccess) { 2230 BasicBlock *MaybeKillingBlock = UseInst->getParent(); 2231 if (PostOrderNumbers.find(MaybeKillingBlock)->second < 2232 PostOrderNumbers.find(EarlierAccess->getBlock())->second) { 2233 2234 LLVM_DEBUG(dbgs() 2235 << " ... found killing def " << *UseInst << "\n"); 2236 KillingDefs.insert(UseInst); 2237 } 2238 } 2239 } else 2240 PushMemUses(UseDef); 2241 } 2242 } 2243 2244 // For accesses to locations visible after the function returns, make sure 2245 // that the location is killed (=overwritten) along all paths from 2246 // EarlierAccess to the exit. 2247 if (!isInvisibleToCallerAfterRet(DefUO)) { 2248 SmallPtrSet<BasicBlock *, 16> KillingBlocks; 2249 for (Instruction *KD : KillingDefs) 2250 KillingBlocks.insert(KD->getParent()); 2251 assert(!KillingBlocks.empty() && 2252 "Expected at least a single killing block"); 2253 2254 // Find the common post-dominator of all killing blocks. 2255 BasicBlock *CommonPred = *KillingBlocks.begin(); 2256 for (auto I = std::next(KillingBlocks.begin()), E = KillingBlocks.end(); 2257 I != E; I++) { 2258 if (!CommonPred) 2259 break; 2260 CommonPred = PDT.findNearestCommonDominator(CommonPred, *I); 2261 } 2262 2263 // If CommonPred is in the set of killing blocks, just check if it 2264 // post-dominates EarlierAccess. 2265 if (KillingBlocks.count(CommonPred)) { 2266 if (PDT.dominates(CommonPred, EarlierAccess->getBlock())) 2267 return {EarlierAccess}; 2268 return None; 2269 } 2270 2271 // If the common post-dominator does not post-dominate EarlierAccess, 2272 // there is a path from EarlierAccess to an exit not going through a 2273 // killing block. 2274 if (PDT.dominates(CommonPred, EarlierAccess->getBlock())) { 2275 SetVector<BasicBlock *> WorkList; 2276 2277 // If CommonPred is null, there are multiple exits from the function. 2278 // They all have to be added to the worklist. 2279 if (CommonPred) 2280 WorkList.insert(CommonPred); 2281 else 2282 for (BasicBlock *R : PDT.roots()) 2283 WorkList.insert(R); 2284 2285 NumCFGTries++; 2286 // Check if all paths starting from an exit node go through one of the 2287 // killing blocks before reaching EarlierAccess. 2288 for (unsigned I = 0; I < WorkList.size(); I++) { 2289 NumCFGChecks++; 2290 BasicBlock *Current = WorkList[I]; 2291 if (KillingBlocks.count(Current)) 2292 continue; 2293 if (Current == EarlierAccess->getBlock()) 2294 return None; 2295 2296 // EarlierAccess is reachable from the entry, so we don't have to 2297 // explore unreachable blocks further. 2298 if (!DT.isReachableFromEntry(Current)) 2299 continue; 2300 2301 for (BasicBlock *Pred : predecessors(Current)) 2302 WorkList.insert(Pred); 2303 2304 if (WorkList.size() >= MemorySSAPathCheckLimit) 2305 return None; 2306 } 2307 NumCFGSuccess++; 2308 return {EarlierAccess}; 2309 } 2310 return None; 2311 } 2312 2313 // No aliasing MemoryUses of EarlierAccess found, EarlierAccess is 2314 // potentially dead. 2315 Cache.KnownNoReads.insert(KnownNoReads.begin(), KnownNoReads.end()); 2316 return {EarlierAccess}; 2317 } 2318 2319 // Delete dead memory defs 2320 void deleteDeadInstruction(Instruction *SI) { 2321 MemorySSAUpdater Updater(&MSSA); 2322 SmallVector<Instruction *, 32> NowDeadInsts; 2323 NowDeadInsts.push_back(SI); 2324 --NumFastOther; 2325 2326 while (!NowDeadInsts.empty()) { 2327 Instruction *DeadInst = NowDeadInsts.pop_back_val(); 2328 ++NumFastOther; 2329 2330 // Try to preserve debug information attached to the dead instruction. 2331 salvageDebugInfo(*DeadInst); 2332 salvageKnowledge(DeadInst); 2333 2334 // Remove the Instruction from MSSA. 2335 if (MemoryAccess *MA = MSSA.getMemoryAccess(DeadInst)) { 2336 if (MemoryDef *MD = dyn_cast<MemoryDef>(MA)) { 2337 SkipStores.insert(MD); 2338 } 2339 Updater.removeMemoryAccess(MA); 2340 } 2341 2342 auto I = IOLs.find(DeadInst->getParent()); 2343 if (I != IOLs.end()) 2344 I->second.erase(DeadInst); 2345 // Remove its operands 2346 for (Use &O : DeadInst->operands()) 2347 if (Instruction *OpI = dyn_cast<Instruction>(O)) { 2348 O = nullptr; 2349 if (isInstructionTriviallyDead(OpI, &TLI)) 2350 NowDeadInsts.push_back(OpI); 2351 } 2352 2353 DeadInst->eraseFromParent(); 2354 } 2355 } 2356 2357 // Check for any extra throws between SI and NI that block DSE. This only 2358 // checks extra maythrows (those that aren't MemoryDef's). MemoryDef that may 2359 // throw are handled during the walk from one def to the next. 2360 bool mayThrowBetween(Instruction *SI, Instruction *NI, 2361 const Value *SILocUnd) { 2362 // First see if we can ignore it by using the fact that SI is an 2363 // alloca/alloca like object that is not visible to the caller during 2364 // execution of the function. 2365 if (SILocUnd && isInvisibleToCallerBeforeRet(SILocUnd)) 2366 return false; 2367 2368 if (SI->getParent() == NI->getParent()) 2369 return ThrowingBlocks.count(SI->getParent()); 2370 return !ThrowingBlocks.empty(); 2371 } 2372 2373 // Check if \p NI acts as a DSE barrier for \p SI. The following instructions 2374 // act as barriers: 2375 // * A memory instruction that may throw and \p SI accesses a non-stack 2376 // object. 2377 // * Atomic stores stronger that monotonic. 2378 bool isDSEBarrier(const Value *SILocUnd, Instruction *NI) { 2379 // If NI may throw it acts as a barrier, unless we are to an alloca/alloca 2380 // like object that does not escape. 2381 if (NI->mayThrow() && !isInvisibleToCallerBeforeRet(SILocUnd)) 2382 return true; 2383 2384 // If NI is an atomic load/store stronger than monotonic, do not try to 2385 // eliminate/reorder it. 2386 if (NI->isAtomic()) { 2387 if (auto *LI = dyn_cast<LoadInst>(NI)) 2388 return isStrongerThanMonotonic(LI->getOrdering()); 2389 if (auto *SI = dyn_cast<StoreInst>(NI)) 2390 return isStrongerThanMonotonic(SI->getOrdering()); 2391 if (auto *ARMW = dyn_cast<AtomicRMWInst>(NI)) 2392 return isStrongerThanMonotonic(ARMW->getOrdering()); 2393 if (auto *CmpXchg = dyn_cast<AtomicCmpXchgInst>(NI)) 2394 return isStrongerThanMonotonic(CmpXchg->getSuccessOrdering()) || 2395 isStrongerThanMonotonic(CmpXchg->getFailureOrdering()); 2396 llvm_unreachable("other instructions should be skipped in MemorySSA"); 2397 } 2398 return false; 2399 } 2400 2401 /// Eliminate writes to objects that are not visible in the caller and are not 2402 /// accessed before returning from the function. 2403 bool eliminateDeadWritesAtEndOfFunction() { 2404 bool MadeChange = false; 2405 LLVM_DEBUG( 2406 dbgs() 2407 << "Trying to eliminate MemoryDefs at the end of the function\n"); 2408 for (int I = MemDefs.size() - 1; I >= 0; I--) { 2409 MemoryDef *Def = MemDefs[I]; 2410 if (SkipStores.find(Def) != SkipStores.end() || 2411 !isRemovable(Def->getMemoryInst())) 2412 continue; 2413 2414 Instruction *DefI = Def->getMemoryInst(); 2415 SmallVector<const Value *, 4> Pointers; 2416 auto DefLoc = getLocForWriteEx(DefI); 2417 if (!DefLoc) 2418 continue; 2419 2420 // NOTE: Currently eliminating writes at the end of a function is limited 2421 // to MemoryDefs with a single underlying object, to save compile-time. In 2422 // practice it appears the case with multiple underlying objects is very 2423 // uncommon. If it turns out to be important, we can use 2424 // getUnderlyingObjects here instead. 2425 const Value *UO = getUnderlyingObject(DefLoc->Ptr); 2426 if (!UO || !isInvisibleToCallerAfterRet(UO)) 2427 continue; 2428 2429 if (isWriteAtEndOfFunction(Def)) { 2430 // See through pointer-to-pointer bitcasts 2431 LLVM_DEBUG(dbgs() << " ... MemoryDef is not accessed until the end " 2432 "of the function\n"); 2433 deleteDeadInstruction(DefI); 2434 ++NumFastStores; 2435 MadeChange = true; 2436 } 2437 } 2438 return MadeChange; 2439 } 2440 2441 /// \returns true if \p Def is a no-op store, either because it 2442 /// directly stores back a loaded value or stores zero to a calloced object. 2443 bool storeIsNoop(MemoryDef *Def, MemoryLocation DefLoc, const Value *DefUO) { 2444 StoreInst *Store = dyn_cast<StoreInst>(Def->getMemoryInst()); 2445 if (!Store) 2446 return false; 2447 2448 if (auto *LoadI = dyn_cast<LoadInst>(Store->getOperand(0))) { 2449 if (LoadI->getPointerOperand() == Store->getOperand(1)) { 2450 // Get the defining access for the load. 2451 auto *LoadAccess = MSSA.getMemoryAccess(LoadI)->getDefiningAccess(); 2452 // Fast path: the defining accesses are the same. 2453 if (LoadAccess == Def->getDefiningAccess()) 2454 return true; 2455 2456 // Look through phi accesses. Recursively scan all phi accesses by 2457 // adding them to a worklist. Bail when we run into a memory def that 2458 // does not match LoadAccess. 2459 SetVector<MemoryAccess *> ToCheck; 2460 MemoryAccess *Current = 2461 MSSA.getWalker()->getClobberingMemoryAccess(Def); 2462 // We don't want to bail when we run into the store memory def. But, 2463 // the phi access may point to it. So, pretend like we've already 2464 // checked it. 2465 ToCheck.insert(Def); 2466 ToCheck.insert(Current); 2467 // Start at current (1) to simulate already having checked Def. 2468 for (unsigned I = 1; I < ToCheck.size(); ++I) { 2469 Current = ToCheck[I]; 2470 if (auto PhiAccess = dyn_cast<MemoryPhi>(Current)) { 2471 // Check all the operands. 2472 for (auto &Use : PhiAccess->incoming_values()) 2473 ToCheck.insert(cast<MemoryAccess>(&Use)); 2474 continue; 2475 } 2476 2477 // If we found a memory def, bail. This happens when we have an 2478 // unrelated write in between an otherwise noop store. 2479 assert(isa<MemoryDef>(Current) && 2480 "Only MemoryDefs should reach here."); 2481 // TODO: Skip no alias MemoryDefs that have no aliasing reads. 2482 // We are searching for the definition of the store's destination. 2483 // So, if that is the same definition as the load, then this is a 2484 // noop. Otherwise, fail. 2485 if (LoadAccess != Current) 2486 return false; 2487 } 2488 return true; 2489 } 2490 } 2491 2492 Constant *StoredConstant = dyn_cast<Constant>(Store->getOperand(0)); 2493 if (StoredConstant && StoredConstant->isNullValue()) { 2494 auto *DefUOInst = dyn_cast<Instruction>(DefUO); 2495 if (DefUOInst && isCallocLikeFn(DefUOInst, &TLI)) { 2496 auto *UnderlyingDef = cast<MemoryDef>(MSSA.getMemoryAccess(DefUOInst)); 2497 // If UnderlyingDef is the clobbering access of Def, no instructions 2498 // between them can modify the memory location. 2499 auto *ClobberDef = 2500 MSSA.getSkipSelfWalker()->getClobberingMemoryAccess(Def); 2501 return UnderlyingDef == ClobberDef; 2502 } 2503 } 2504 return false; 2505 } 2506 }; 2507 2508 bool eliminateDeadStoresMemorySSA(Function &F, AliasAnalysis &AA, 2509 MemorySSA &MSSA, DominatorTree &DT, 2510 PostDominatorTree &PDT, 2511 const TargetLibraryInfo &TLI) { 2512 bool MadeChange = false; 2513 2514 DSEState State = DSEState::get(F, AA, MSSA, DT, PDT, TLI); 2515 // For each store: 2516 for (unsigned I = 0; I < State.MemDefs.size(); I++) { 2517 MemoryDef *KillingDef = State.MemDefs[I]; 2518 if (State.SkipStores.count(KillingDef)) 2519 continue; 2520 Instruction *SI = KillingDef->getMemoryInst(); 2521 2522 Optional<MemoryLocation> MaybeSILoc; 2523 if (State.isMemTerminatorInst(SI)) 2524 MaybeSILoc = State.getLocForTerminator(SI).map( 2525 [](const std::pair<MemoryLocation, bool> &P) { return P.first; }); 2526 else 2527 MaybeSILoc = State.getLocForWriteEx(SI); 2528 2529 if (!MaybeSILoc) { 2530 LLVM_DEBUG(dbgs() << "Failed to find analyzable write location for " 2531 << *SI << "\n"); 2532 continue; 2533 } 2534 MemoryLocation SILoc = *MaybeSILoc; 2535 assert(SILoc.Ptr && "SILoc should not be null"); 2536 const Value *SILocUnd = getUnderlyingObject(SILoc.Ptr); 2537 2538 MemoryAccess *Current = KillingDef; 2539 LLVM_DEBUG(dbgs() << "Trying to eliminate MemoryDefs killed by " 2540 << *KillingDef << " (" << *SI << ")\n"); 2541 2542 unsigned ScanLimit = MemorySSAScanLimit; 2543 unsigned WalkerStepLimit = MemorySSAUpwardsStepLimit; 2544 unsigned PartialLimit = MemorySSAPartialStoreLimit; 2545 // Worklist of MemoryAccesses that may be killed by KillingDef. 2546 SetVector<MemoryAccess *> ToCheck; 2547 2548 if (SILocUnd) 2549 ToCheck.insert(KillingDef->getDefiningAccess()); 2550 2551 bool Shortend = false; 2552 bool IsMemTerm = State.isMemTerminatorInst(SI); 2553 DSEState::CheckCache Cache; 2554 // Check if MemoryAccesses in the worklist are killed by KillingDef. 2555 for (unsigned I = 0; I < ToCheck.size(); I++) { 2556 Current = ToCheck[I]; 2557 if (State.SkipStores.count(Current)) 2558 continue; 2559 2560 Optional<MemoryAccess *> Next = State.getDomMemoryDef( 2561 KillingDef, Current, SILoc, SILocUnd, Cache, ScanLimit, 2562 WalkerStepLimit, IsMemTerm, PartialLimit); 2563 2564 if (!Next) { 2565 LLVM_DEBUG(dbgs() << " finished walk\n"); 2566 continue; 2567 } 2568 2569 MemoryAccess *EarlierAccess = *Next; 2570 LLVM_DEBUG(dbgs() << " Checking if we can kill " << *EarlierAccess); 2571 if (isa<MemoryPhi>(EarlierAccess)) { 2572 LLVM_DEBUG(dbgs() << "\n ... adding incoming values to worklist\n"); 2573 for (Value *V : cast<MemoryPhi>(EarlierAccess)->incoming_values()) { 2574 MemoryAccess *IncomingAccess = cast<MemoryAccess>(V); 2575 BasicBlock *IncomingBlock = IncomingAccess->getBlock(); 2576 BasicBlock *PhiBlock = EarlierAccess->getBlock(); 2577 2578 // We only consider incoming MemoryAccesses that come before the 2579 // MemoryPhi. Otherwise we could discover candidates that do not 2580 // strictly dominate our starting def. 2581 if (State.PostOrderNumbers[IncomingBlock] > 2582 State.PostOrderNumbers[PhiBlock]) 2583 ToCheck.insert(IncomingAccess); 2584 } 2585 continue; 2586 } 2587 auto *NextDef = cast<MemoryDef>(EarlierAccess); 2588 Instruction *NI = NextDef->getMemoryInst(); 2589 LLVM_DEBUG(dbgs() << " (" << *NI << ")\n"); 2590 ToCheck.insert(NextDef->getDefiningAccess()); 2591 NumGetDomMemoryDefPassed++; 2592 2593 if (!DebugCounter::shouldExecute(MemorySSACounter)) 2594 continue; 2595 2596 MemoryLocation NILoc = *State.getLocForWriteEx(NI); 2597 2598 if (IsMemTerm) { 2599 const Value *NIUnd = getUnderlyingObject(NILoc.Ptr); 2600 if (SILocUnd != NIUnd) 2601 continue; 2602 LLVM_DEBUG(dbgs() << "DSE: Remove Dead Store:\n DEAD: " << *NI 2603 << "\n KILLER: " << *SI << '\n'); 2604 State.deleteDeadInstruction(NI); 2605 ++NumFastStores; 2606 MadeChange = true; 2607 } else { 2608 // Check if NI overwrites SI. 2609 int64_t InstWriteOffset, DepWriteOffset; 2610 OverwriteResult OR = 2611 isOverwrite(SI, NI, SILoc, NILoc, State.DL, TLI, DepWriteOffset, 2612 InstWriteOffset, State.BatchAA, &F); 2613 if (OR == OW_MaybePartial) { 2614 auto Iter = State.IOLs.insert( 2615 std::make_pair<BasicBlock *, InstOverlapIntervalsTy>( 2616 NI->getParent(), InstOverlapIntervalsTy())); 2617 auto &IOL = Iter.first->second; 2618 OR = isPartialOverwrite(SILoc, NILoc, DepWriteOffset, InstWriteOffset, 2619 NI, IOL); 2620 } 2621 2622 if (EnablePartialStoreMerging && OR == OW_PartialEarlierWithFullLater) { 2623 auto *Earlier = dyn_cast<StoreInst>(NI); 2624 auto *Later = dyn_cast<StoreInst>(SI); 2625 // We are re-using tryToMergePartialOverlappingStores, which requires 2626 // Earlier to domiante Later. 2627 // TODO: implement tryToMergeParialOverlappingStores using MemorySSA. 2628 if (Earlier && Later && DT.dominates(Earlier, Later)) { 2629 if (Constant *Merged = tryToMergePartialOverlappingStores( 2630 Earlier, Later, InstWriteOffset, DepWriteOffset, State.DL, 2631 State.BatchAA, &DT)) { 2632 2633 // Update stored value of earlier store to merged constant. 2634 Earlier->setOperand(0, Merged); 2635 ++NumModifiedStores; 2636 MadeChange = true; 2637 2638 Shortend = true; 2639 // Remove later store and remove any outstanding overlap intervals 2640 // for the updated store. 2641 State.deleteDeadInstruction(Later); 2642 auto I = State.IOLs.find(Earlier->getParent()); 2643 if (I != State.IOLs.end()) 2644 I->second.erase(Earlier); 2645 break; 2646 } 2647 } 2648 } 2649 2650 if (OR == OW_Complete) { 2651 LLVM_DEBUG(dbgs() << "DSE: Remove Dead Store:\n DEAD: " << *NI 2652 << "\n KILLER: " << *SI << '\n'); 2653 State.deleteDeadInstruction(NI); 2654 ++NumFastStores; 2655 MadeChange = true; 2656 } 2657 } 2658 } 2659 2660 // Check if the store is a no-op. 2661 if (!Shortend && isRemovable(SI) && 2662 State.storeIsNoop(KillingDef, SILoc, SILocUnd)) { 2663 LLVM_DEBUG(dbgs() << "DSE: Remove No-Op Store:\n DEAD: " << *SI << '\n'); 2664 State.deleteDeadInstruction(SI); 2665 NumRedundantStores++; 2666 MadeChange = true; 2667 continue; 2668 } 2669 } 2670 2671 if (EnablePartialOverwriteTracking) 2672 for (auto &KV : State.IOLs) 2673 MadeChange |= removePartiallyOverlappedStores(State.DL, KV.second, TLI); 2674 2675 MadeChange |= State.eliminateDeadWritesAtEndOfFunction(); 2676 return MadeChange; 2677 } 2678 } // end anonymous namespace 2679 2680 //===----------------------------------------------------------------------===// 2681 // DSE Pass 2682 //===----------------------------------------------------------------------===// 2683 PreservedAnalyses DSEPass::run(Function &F, FunctionAnalysisManager &AM) { 2684 AliasAnalysis &AA = AM.getResult<AAManager>(F); 2685 const TargetLibraryInfo &TLI = AM.getResult<TargetLibraryAnalysis>(F); 2686 DominatorTree &DT = AM.getResult<DominatorTreeAnalysis>(F); 2687 2688 bool Changed = false; 2689 if (EnableMemorySSA) { 2690 MemorySSA &MSSA = AM.getResult<MemorySSAAnalysis>(F).getMSSA(); 2691 PostDominatorTree &PDT = AM.getResult<PostDominatorTreeAnalysis>(F); 2692 2693 Changed = eliminateDeadStoresMemorySSA(F, AA, MSSA, DT, PDT, TLI); 2694 } else { 2695 MemoryDependenceResults &MD = AM.getResult<MemoryDependenceAnalysis>(F); 2696 2697 Changed = eliminateDeadStores(F, &AA, &MD, &DT, &TLI); 2698 } 2699 2700 #ifdef LLVM_ENABLE_STATS 2701 if (AreStatisticsEnabled()) 2702 for (auto &I : instructions(F)) 2703 NumRemainingStores += isa<StoreInst>(&I); 2704 #endif 2705 2706 if (!Changed) 2707 return PreservedAnalyses::all(); 2708 2709 PreservedAnalyses PA; 2710 PA.preserveSet<CFGAnalyses>(); 2711 PA.preserve<GlobalsAA>(); 2712 if (EnableMemorySSA) 2713 PA.preserve<MemorySSAAnalysis>(); 2714 else 2715 PA.preserve<MemoryDependenceAnalysis>(); 2716 return PA; 2717 } 2718 2719 namespace { 2720 2721 /// A legacy pass for the legacy pass manager that wraps \c DSEPass. 2722 class DSELegacyPass : public FunctionPass { 2723 public: 2724 static char ID; // Pass identification, replacement for typeid 2725 2726 DSELegacyPass() : FunctionPass(ID) { 2727 initializeDSELegacyPassPass(*PassRegistry::getPassRegistry()); 2728 } 2729 2730 bool runOnFunction(Function &F) override { 2731 if (skipFunction(F)) 2732 return false; 2733 2734 AliasAnalysis &AA = getAnalysis<AAResultsWrapperPass>().getAAResults(); 2735 DominatorTree &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree(); 2736 const TargetLibraryInfo &TLI = 2737 getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(F); 2738 2739 bool Changed = false; 2740 if (EnableMemorySSA) { 2741 MemorySSA &MSSA = getAnalysis<MemorySSAWrapperPass>().getMSSA(); 2742 PostDominatorTree &PDT = 2743 getAnalysis<PostDominatorTreeWrapperPass>().getPostDomTree(); 2744 2745 Changed = eliminateDeadStoresMemorySSA(F, AA, MSSA, DT, PDT, TLI); 2746 } else { 2747 MemoryDependenceResults &MD = 2748 getAnalysis<MemoryDependenceWrapperPass>().getMemDep(); 2749 2750 Changed = eliminateDeadStores(F, &AA, &MD, &DT, &TLI); 2751 } 2752 2753 #ifdef LLVM_ENABLE_STATS 2754 if (AreStatisticsEnabled()) 2755 for (auto &I : instructions(F)) 2756 NumRemainingStores += isa<StoreInst>(&I); 2757 #endif 2758 2759 return Changed; 2760 } 2761 2762 void getAnalysisUsage(AnalysisUsage &AU) const override { 2763 AU.setPreservesCFG(); 2764 AU.addRequired<AAResultsWrapperPass>(); 2765 AU.addRequired<TargetLibraryInfoWrapperPass>(); 2766 AU.addPreserved<GlobalsAAWrapperPass>(); 2767 AU.addRequired<DominatorTreeWrapperPass>(); 2768 AU.addPreserved<DominatorTreeWrapperPass>(); 2769 2770 if (EnableMemorySSA) { 2771 AU.addRequired<PostDominatorTreeWrapperPass>(); 2772 AU.addRequired<MemorySSAWrapperPass>(); 2773 AU.addPreserved<PostDominatorTreeWrapperPass>(); 2774 AU.addPreserved<MemorySSAWrapperPass>(); 2775 } else { 2776 AU.addRequired<MemoryDependenceWrapperPass>(); 2777 AU.addPreserved<MemoryDependenceWrapperPass>(); 2778 } 2779 } 2780 }; 2781 2782 } // end anonymous namespace 2783 2784 char DSELegacyPass::ID = 0; 2785 2786 INITIALIZE_PASS_BEGIN(DSELegacyPass, "dse", "Dead Store Elimination", false, 2787 false) 2788 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) 2789 INITIALIZE_PASS_DEPENDENCY(PostDominatorTreeWrapperPass) 2790 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass) 2791 INITIALIZE_PASS_DEPENDENCY(GlobalsAAWrapperPass) 2792 INITIALIZE_PASS_DEPENDENCY(MemorySSAWrapperPass) 2793 INITIALIZE_PASS_DEPENDENCY(MemoryDependenceWrapperPass) 2794 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass) 2795 INITIALIZE_PASS_END(DSELegacyPass, "dse", "Dead Store Elimination", false, 2796 false) 2797 2798 FunctionPass *llvm::createDeadStoreEliminationPass() { 2799 return new DSELegacyPass(); 2800 } 2801