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      1 //===- DeadStoreElimination.cpp - MemorySSA Backed 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 // The code below implements dead store elimination using MemorySSA. It uses
     10 // the following general approach: given a MemoryDef, walk upwards to find
     11 // clobbering MemoryDefs that may be killed by the starting def. Then check
     12 // that there are no uses that may read the location of the original MemoryDef
     13 // in between both MemoryDefs. A bit more concretely:
     14 //
     15 // For all MemoryDefs StartDef:
     16 // 1. Get the next dominating clobbering MemoryDef (EarlierAccess) by walking
     17 //    upwards.
     18 // 2. Check that there are no reads between EarlierAccess and the StartDef by
     19 //    checking all uses starting at EarlierAccess and walking until we see
     20 //    StartDef.
     21 // 3. For each found CurrentDef, check that:
     22 //   1. There are no barrier instructions between CurrentDef and StartDef (like
     23 //       throws or stores with ordering constraints).
     24 //   2. StartDef is executed whenever CurrentDef is executed.
     25 //   3. StartDef completely overwrites CurrentDef.
     26 // 4. Erase CurrentDef from the function and MemorySSA.
     27 //
     28 //===----------------------------------------------------------------------===//
     29 
     30 #include "llvm/Transforms/Scalar/DeadStoreElimination.h"
     31 #include "llvm/ADT/APInt.h"
     32 #include "llvm/ADT/DenseMap.h"
     33 #include "llvm/ADT/MapVector.h"
     34 #include "llvm/ADT/PostOrderIterator.h"
     35 #include "llvm/ADT/SetVector.h"
     36 #include "llvm/ADT/SmallPtrSet.h"
     37 #include "llvm/ADT/SmallVector.h"
     38 #include "llvm/ADT/Statistic.h"
     39 #include "llvm/ADT/StringRef.h"
     40 #include "llvm/Analysis/AliasAnalysis.h"
     41 #include "llvm/Analysis/CaptureTracking.h"
     42 #include "llvm/Analysis/GlobalsModRef.h"
     43 #include "llvm/Analysis/MemoryBuiltins.h"
     44 #include "llvm/Analysis/MemoryLocation.h"
     45 #include "llvm/Analysis/MemorySSA.h"
     46 #include "llvm/Analysis/MemorySSAUpdater.h"
     47 #include "llvm/Analysis/PostDominators.h"
     48 #include "llvm/Analysis/TargetLibraryInfo.h"
     49 #include "llvm/Analysis/ValueTracking.h"
     50 #include "llvm/IR/Argument.h"
     51 #include "llvm/IR/BasicBlock.h"
     52 #include "llvm/IR/Constant.h"
     53 #include "llvm/IR/Constants.h"
     54 #include "llvm/IR/DataLayout.h"
     55 #include "llvm/IR/Dominators.h"
     56 #include "llvm/IR/Function.h"
     57 #include "llvm/IR/InstIterator.h"
     58 #include "llvm/IR/InstrTypes.h"
     59 #include "llvm/IR/Instruction.h"
     60 #include "llvm/IR/Instructions.h"
     61 #include "llvm/IR/IntrinsicInst.h"
     62 #include "llvm/IR/Intrinsics.h"
     63 #include "llvm/IR/LLVMContext.h"
     64 #include "llvm/IR/Module.h"
     65 #include "llvm/IR/PassManager.h"
     66 #include "llvm/IR/PatternMatch.h"
     67 #include "llvm/IR/Value.h"
     68 #include "llvm/InitializePasses.h"
     69 #include "llvm/Pass.h"
     70 #include "llvm/Support/Casting.h"
     71 #include "llvm/Support/CommandLine.h"
     72 #include "llvm/Support/Debug.h"
     73 #include "llvm/Support/DebugCounter.h"
     74 #include "llvm/Support/ErrorHandling.h"
     75 #include "llvm/Support/MathExtras.h"
     76 #include "llvm/Support/raw_ostream.h"
     77 #include "llvm/Transforms/Scalar.h"
     78 #include "llvm/Transforms/Utils/AssumeBundleBuilder.h"
     79 #include "llvm/Transforms/Utils/Local.h"
     80 #include <algorithm>
     81 #include <cassert>
     82 #include <cstddef>
     83 #include <cstdint>
     84 #include <iterator>
     85 #include <map>
     86 #include <utility>
     87 
     88 using namespace llvm;
     89 using namespace PatternMatch;
     90 
     91 #define DEBUG_TYPE "dse"
     92 
     93 STATISTIC(NumRemainingStores, "Number of stores remaining after DSE");
     94 STATISTIC(NumRedundantStores, "Number of redundant stores deleted");
     95 STATISTIC(NumFastStores, "Number of stores deleted");
     96 STATISTIC(NumFastOther, "Number of other instrs removed");
     97 STATISTIC(NumCompletePartials, "Number of stores dead by later partials");
     98 STATISTIC(NumModifiedStores, "Number of stores modified");
     99 STATISTIC(NumCFGChecks, "Number of stores modified");
    100 STATISTIC(NumCFGTries, "Number of stores modified");
    101 STATISTIC(NumCFGSuccess, "Number of stores modified");
    102 STATISTIC(NumGetDomMemoryDefPassed,
    103           "Number of times a valid candidate is returned from getDomMemoryDef");
    104 STATISTIC(NumDomMemDefChecks,
    105           "Number iterations check for reads in getDomMemoryDef");
    106 
    107 DEBUG_COUNTER(MemorySSACounter, "dse-memoryssa",
    108               "Controls which MemoryDefs are eliminated.");
    109 
    110 static cl::opt<bool>
    111 EnablePartialOverwriteTracking("enable-dse-partial-overwrite-tracking",
    112   cl::init(true), cl::Hidden,
    113   cl::desc("Enable partial-overwrite tracking in DSE"));
    114 
    115 static cl::opt<bool>
    116 EnablePartialStoreMerging("enable-dse-partial-store-merging",
    117   cl::init(true), cl::Hidden,
    118   cl::desc("Enable partial store merging in DSE"));
    119 
    120 static cl::opt<unsigned>
    121     MemorySSAScanLimit("dse-memoryssa-scanlimit", cl::init(150), cl::Hidden,
    122                        cl::desc("The number of memory instructions to scan for "
    123                                 "dead store elimination (default = 100)"));
    124 static cl::opt<unsigned> MemorySSAUpwardsStepLimit(
    125     "dse-memoryssa-walklimit", cl::init(90), cl::Hidden,
    126     cl::desc("The maximum number of steps while walking upwards to find "
    127              "MemoryDefs that may be killed (default = 90)"));
    128 
    129 static cl::opt<unsigned> MemorySSAPartialStoreLimit(
    130     "dse-memoryssa-partial-store-limit", cl::init(5), cl::Hidden,
    131     cl::desc("The maximum number candidates that only partially overwrite the "
    132              "killing MemoryDef to consider"
    133              " (default = 5)"));
    134 
    135 static cl::opt<unsigned> MemorySSADefsPerBlockLimit(
    136     "dse-memoryssa-defs-per-block-limit", cl::init(5000), cl::Hidden,
    137     cl::desc("The number of MemoryDefs we consider as candidates to eliminated "
    138              "other stores per basic block (default = 5000)"));
    139 
    140 static cl::opt<unsigned> MemorySSASameBBStepCost(
    141     "dse-memoryssa-samebb-cost", cl::init(1), cl::Hidden,
    142     cl::desc(
    143         "The cost of a step in the same basic block as the killing MemoryDef"
    144         "(default = 1)"));
    145 
    146 static cl::opt<unsigned>
    147     MemorySSAOtherBBStepCost("dse-memoryssa-otherbb-cost", cl::init(5),
    148                              cl::Hidden,
    149                              cl::desc("The cost of a step in a different basic "
    150                                       "block than the killing MemoryDef"
    151                                       "(default = 5)"));
    152 
    153 static cl::opt<unsigned> MemorySSAPathCheckLimit(
    154     "dse-memoryssa-path-check-limit", cl::init(50), cl::Hidden,
    155     cl::desc("The maximum number of blocks to check when trying to prove that "
    156              "all paths to an exit go through a killing block (default = 50)"));
    157 
    158 //===----------------------------------------------------------------------===//
    159 // Helper functions
    160 //===----------------------------------------------------------------------===//
    161 using OverlapIntervalsTy = std::map<int64_t, int64_t>;
    162 using InstOverlapIntervalsTy = DenseMap<Instruction *, OverlapIntervalsTy>;
    163 
    164 /// Does this instruction write some memory?  This only returns true for things
    165 /// that we can analyze with other helpers below.
    166 static bool hasAnalyzableMemoryWrite(Instruction *I,
    167                                      const TargetLibraryInfo &TLI) {
    168   if (isa<StoreInst>(I))
    169     return true;
    170   if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) {
    171     switch (II->getIntrinsicID()) {
    172     default:
    173       return false;
    174     case Intrinsic::memset:
    175     case Intrinsic::memmove:
    176     case Intrinsic::memcpy:
    177     case Intrinsic::memcpy_inline:
    178     case Intrinsic::memcpy_element_unordered_atomic:
    179     case Intrinsic::memmove_element_unordered_atomic:
    180     case Intrinsic::memset_element_unordered_atomic:
    181     case Intrinsic::init_trampoline:
    182     case Intrinsic::lifetime_end:
    183     case Intrinsic::masked_store:
    184       return true;
    185     }
    186   }
    187   if (auto *CB = dyn_cast<CallBase>(I)) {
    188     LibFunc LF;
    189     if (TLI.getLibFunc(*CB, LF) && TLI.has(LF)) {
    190       switch (LF) {
    191       case LibFunc_strcpy:
    192       case LibFunc_strncpy:
    193       case LibFunc_strcat:
    194       case LibFunc_strncat:
    195         return true;
    196       default:
    197         return false;
    198       }
    199     }
    200   }
    201   return false;
    202 }
    203 
    204 /// Return a Location stored to by the specified instruction. If isRemovable
    205 /// returns true, this function and getLocForRead completely describe the memory
    206 /// operations for this instruction.
    207 static MemoryLocation getLocForWrite(Instruction *Inst,
    208                                      const TargetLibraryInfo &TLI) {
    209   if (StoreInst *SI = dyn_cast<StoreInst>(Inst))
    210     return MemoryLocation::get(SI);
    211 
    212   // memcpy/memmove/memset.
    213   if (auto *MI = dyn_cast<AnyMemIntrinsic>(Inst))
    214     return MemoryLocation::getForDest(MI);
    215 
    216   if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) {
    217     switch (II->getIntrinsicID()) {
    218     default:
    219       return MemoryLocation(); // Unhandled intrinsic.
    220     case Intrinsic::init_trampoline:
    221       return MemoryLocation::getAfter(II->getArgOperand(0));
    222     case Intrinsic::masked_store:
    223       return MemoryLocation::getForArgument(II, 1, TLI);
    224     case Intrinsic::lifetime_end: {
    225       uint64_t Len = cast<ConstantInt>(II->getArgOperand(0))->getZExtValue();
    226       return MemoryLocation(II->getArgOperand(1), Len);
    227     }
    228     }
    229   }
    230   if (auto *CB = dyn_cast<CallBase>(Inst))
    231     // All the supported TLI functions so far happen to have dest as their
    232     // first argument.
    233     return MemoryLocation::getAfter(CB->getArgOperand(0));
    234   return MemoryLocation();
    235 }
    236 
    237 /// If the value of this instruction and the memory it writes to is unused, may
    238 /// we delete this instruction?
    239 static bool isRemovable(Instruction *I) {
    240   // Don't remove volatile/atomic stores.
    241   if (StoreInst *SI = dyn_cast<StoreInst>(I))
    242     return SI->isUnordered();
    243 
    244   if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) {
    245     switch (II->getIntrinsicID()) {
    246     default: llvm_unreachable("doesn't pass 'hasAnalyzableMemoryWrite' predicate");
    247     case Intrinsic::lifetime_end:
    248       // Never remove dead lifetime_end's, e.g. because it is followed by a
    249       // free.
    250       return false;
    251     case Intrinsic::init_trampoline:
    252       // Always safe to remove init_trampoline.
    253       return true;
    254     case Intrinsic::memset:
    255     case Intrinsic::memmove:
    256     case Intrinsic::memcpy:
    257     case Intrinsic::memcpy_inline:
    258       // Don't remove volatile memory intrinsics.
    259       return !cast<MemIntrinsic>(II)->isVolatile();
    260     case Intrinsic::memcpy_element_unordered_atomic:
    261     case Intrinsic::memmove_element_unordered_atomic:
    262     case Intrinsic::memset_element_unordered_atomic:
    263     case Intrinsic::masked_store:
    264       return true;
    265     }
    266   }
    267 
    268   // note: only get here for calls with analyzable writes - i.e. libcalls
    269   if (auto *CB = dyn_cast<CallBase>(I))
    270     return CB->use_empty();
    271 
    272   return false;
    273 }
    274 
    275 /// Returns true if the end of this instruction can be safely shortened in
    276 /// length.
    277 static bool isShortenableAtTheEnd(Instruction *I) {
    278   // Don't shorten stores for now
    279   if (isa<StoreInst>(I))
    280     return false;
    281 
    282   if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) {
    283     switch (II->getIntrinsicID()) {
    284       default: return false;
    285       case Intrinsic::memset:
    286       case Intrinsic::memcpy:
    287       case Intrinsic::memcpy_element_unordered_atomic:
    288       case Intrinsic::memset_element_unordered_atomic:
    289         // Do shorten memory intrinsics.
    290         // FIXME: Add memmove if it's also safe to transform.
    291         return true;
    292     }
    293   }
    294 
    295   // Don't shorten libcalls calls for now.
    296 
    297   return false;
    298 }
    299 
    300 /// Returns true if the beginning of this instruction can be safely shortened
    301 /// in length.
    302 static bool isShortenableAtTheBeginning(Instruction *I) {
    303   // FIXME: Handle only memset for now. Supporting memcpy/memmove should be
    304   // easily done by offsetting the source address.
    305   return isa<AnyMemSetInst>(I);
    306 }
    307 
    308 static uint64_t getPointerSize(const Value *V, const DataLayout &DL,
    309                                const TargetLibraryInfo &TLI,
    310                                const Function *F) {
    311   uint64_t Size;
    312   ObjectSizeOpts Opts;
    313   Opts.NullIsUnknownSize = NullPointerIsDefined(F);
    314 
    315   if (getObjectSize(V, Size, DL, &TLI, Opts))
    316     return Size;
    317   return MemoryLocation::UnknownSize;
    318 }
    319 
    320 namespace {
    321 
    322 enum OverwriteResult {
    323   OW_Begin,
    324   OW_Complete,
    325   OW_End,
    326   OW_PartialEarlierWithFullLater,
    327   OW_MaybePartial,
    328   OW_Unknown
    329 };
    330 
    331 } // end anonymous namespace
    332 
    333 /// Check if two instruction are masked stores that completely
    334 /// overwrite one another. More specifically, \p Later has to
    335 /// overwrite \p Earlier.
    336 static OverwriteResult isMaskedStoreOverwrite(const Instruction *Later,
    337                                               const Instruction *Earlier,
    338                                               BatchAAResults &AA) {
    339   const auto *IIL = dyn_cast<IntrinsicInst>(Later);
    340   const auto *IIE = dyn_cast<IntrinsicInst>(Earlier);
    341   if (IIL == nullptr || IIE == nullptr)
    342     return OW_Unknown;
    343   if (IIL->getIntrinsicID() != Intrinsic::masked_store ||
    344       IIE->getIntrinsicID() != Intrinsic::masked_store)
    345     return OW_Unknown;
    346   // Pointers.
    347   Value *LP = IIL->getArgOperand(1)->stripPointerCasts();
    348   Value *EP = IIE->getArgOperand(1)->stripPointerCasts();
    349   if (LP != EP && !AA.isMustAlias(LP, EP))
    350     return OW_Unknown;
    351   // Masks.
    352   // TODO: check that Later's mask is a superset of the Earlier's mask.
    353   if (IIL->getArgOperand(3) != IIE->getArgOperand(3))
    354     return OW_Unknown;
    355   return OW_Complete;
    356 }
    357 
    358 /// Return 'OW_Complete' if a store to the 'Later' location completely
    359 /// overwrites a store to the 'Earlier' location, 'OW_End' if the end of the
    360 /// 'Earlier' location is completely overwritten by 'Later', 'OW_Begin' if the
    361 /// beginning of the 'Earlier' location is overwritten by 'Later'.
    362 /// 'OW_PartialEarlierWithFullLater' means that an earlier (big) store was
    363 /// overwritten by a latter (smaller) store which doesn't write outside the big
    364 /// store's memory locations. Returns 'OW_Unknown' if nothing can be determined.
    365 /// NOTE: This function must only be called if both \p Later and \p Earlier
    366 /// write to the same underlying object with valid \p EarlierOff and \p
    367 /// LaterOff.
    368 static OverwriteResult isPartialOverwrite(const MemoryLocation &Later,
    369                                           const MemoryLocation &Earlier,
    370                                           int64_t EarlierOff, int64_t LaterOff,
    371                                           Instruction *DepWrite,
    372                                           InstOverlapIntervalsTy &IOL) {
    373   const uint64_t LaterSize = Later.Size.getValue();
    374   const uint64_t EarlierSize = Earlier.Size.getValue();
    375   // We may now overlap, although the overlap is not complete. There might also
    376   // be other incomplete overlaps, and together, they might cover the complete
    377   // earlier write.
    378   // Note: The correctness of this logic depends on the fact that this function
    379   // is not even called providing DepWrite when there are any intervening reads.
    380   if (EnablePartialOverwriteTracking &&
    381       LaterOff < int64_t(EarlierOff + EarlierSize) &&
    382       int64_t(LaterOff + LaterSize) >= EarlierOff) {
    383 
    384     // Insert our part of the overlap into the map.
    385     auto &IM = IOL[DepWrite];
    386     LLVM_DEBUG(dbgs() << "DSE: Partial overwrite: Earlier [" << EarlierOff
    387                       << ", " << int64_t(EarlierOff + EarlierSize)
    388                       << ") Later [" << LaterOff << ", "
    389                       << int64_t(LaterOff + LaterSize) << ")\n");
    390 
    391     // Make sure that we only insert non-overlapping intervals and combine
    392     // adjacent intervals. The intervals are stored in the map with the ending
    393     // offset as the key (in the half-open sense) and the starting offset as
    394     // the value.
    395     int64_t LaterIntStart = LaterOff, LaterIntEnd = LaterOff + LaterSize;
    396 
    397     // Find any intervals ending at, or after, LaterIntStart which start
    398     // before LaterIntEnd.
    399     auto ILI = IM.lower_bound(LaterIntStart);
    400     if (ILI != IM.end() && ILI->second <= LaterIntEnd) {
    401       // This existing interval is overlapped with the current store somewhere
    402       // in [LaterIntStart, LaterIntEnd]. Merge them by erasing the existing
    403       // intervals and adjusting our start and end.
    404       LaterIntStart = std::min(LaterIntStart, ILI->second);
    405       LaterIntEnd = std::max(LaterIntEnd, ILI->first);
    406       ILI = IM.erase(ILI);
    407 
    408       // Continue erasing and adjusting our end in case other previous
    409       // intervals are also overlapped with the current store.
    410       //
    411       // |--- ealier 1 ---|  |--- ealier 2 ---|
    412       //     |------- later---------|
    413       //
    414       while (ILI != IM.end() && ILI->second <= LaterIntEnd) {
    415         assert(ILI->second > LaterIntStart && "Unexpected interval");
    416         LaterIntEnd = std::max(LaterIntEnd, ILI->first);
    417         ILI = IM.erase(ILI);
    418       }
    419     }
    420 
    421     IM[LaterIntEnd] = LaterIntStart;
    422 
    423     ILI = IM.begin();
    424     if (ILI->second <= EarlierOff &&
    425         ILI->first >= int64_t(EarlierOff + EarlierSize)) {
    426       LLVM_DEBUG(dbgs() << "DSE: Full overwrite from partials: Earlier ["
    427                         << EarlierOff << ", "
    428                         << int64_t(EarlierOff + EarlierSize)
    429                         << ") Composite Later [" << ILI->second << ", "
    430                         << ILI->first << ")\n");
    431       ++NumCompletePartials;
    432       return OW_Complete;
    433     }
    434   }
    435 
    436   // Check for an earlier store which writes to all the memory locations that
    437   // the later store writes to.
    438   if (EnablePartialStoreMerging && LaterOff >= EarlierOff &&
    439       int64_t(EarlierOff + EarlierSize) > LaterOff &&
    440       uint64_t(LaterOff - EarlierOff) + LaterSize <= EarlierSize) {
    441     LLVM_DEBUG(dbgs() << "DSE: Partial overwrite an earlier load ["
    442                       << EarlierOff << ", "
    443                       << int64_t(EarlierOff + EarlierSize)
    444                       << ") by a later store [" << LaterOff << ", "
    445                       << int64_t(LaterOff + LaterSize) << ")\n");
    446     // TODO: Maybe come up with a better name?
    447     return OW_PartialEarlierWithFullLater;
    448   }
    449 
    450   // Another interesting case is if the later store overwrites the end of the
    451   // earlier store.
    452   //
    453   //      |--earlier--|
    454   //                |--   later   --|
    455   //
    456   // In this case we may want to trim the size of earlier to avoid generating
    457   // writes to addresses which will definitely be overwritten later
    458   if (!EnablePartialOverwriteTracking &&
    459       (LaterOff > EarlierOff && LaterOff < int64_t(EarlierOff + EarlierSize) &&
    460        int64_t(LaterOff + LaterSize) >= int64_t(EarlierOff + EarlierSize)))
    461     return OW_End;
    462 
    463   // Finally, we also need to check if the later store overwrites the beginning
    464   // of the earlier store.
    465   //
    466   //                |--earlier--|
    467   //      |--   later   --|
    468   //
    469   // In this case we may want to move the destination address and trim the size
    470   // of earlier to avoid generating writes to addresses which will definitely
    471   // be overwritten later.
    472   if (!EnablePartialOverwriteTracking &&
    473       (LaterOff <= EarlierOff && int64_t(LaterOff + LaterSize) > EarlierOff)) {
    474     assert(int64_t(LaterOff + LaterSize) < int64_t(EarlierOff + EarlierSize) &&
    475            "Expect to be handled as OW_Complete");
    476     return OW_Begin;
    477   }
    478   // Otherwise, they don't completely overlap.
    479   return OW_Unknown;
    480 }
    481 
    482 /// Returns true if the memory which is accessed by the second instruction is not
    483 /// modified between the first and the second instruction.
    484 /// Precondition: Second instruction must be dominated by the first
    485 /// instruction.
    486 static bool
    487 memoryIsNotModifiedBetween(Instruction *FirstI, Instruction *SecondI,
    488                            BatchAAResults &AA, const DataLayout &DL,
    489                            DominatorTree *DT) {
    490   // Do a backwards scan through the CFG from SecondI to FirstI. Look for
    491   // instructions which can modify the memory location accessed by SecondI.
    492   //
    493   // While doing the walk keep track of the address to check. It might be
    494   // different in different basic blocks due to PHI translation.
    495   using BlockAddressPair = std::pair<BasicBlock *, PHITransAddr>;
    496   SmallVector<BlockAddressPair, 16> WorkList;
    497   // Keep track of the address we visited each block with. Bail out if we
    498   // visit a block with different addresses.
    499   DenseMap<BasicBlock *, Value *> Visited;
    500 
    501   BasicBlock::iterator FirstBBI(FirstI);
    502   ++FirstBBI;
    503   BasicBlock::iterator SecondBBI(SecondI);
    504   BasicBlock *FirstBB = FirstI->getParent();
    505   BasicBlock *SecondBB = SecondI->getParent();
    506   MemoryLocation MemLoc = MemoryLocation::get(SecondI);
    507   auto *MemLocPtr = const_cast<Value *>(MemLoc.Ptr);
    508 
    509   // Start checking the SecondBB.
    510   WorkList.push_back(
    511       std::make_pair(SecondBB, PHITransAddr(MemLocPtr, DL, nullptr)));
    512   bool isFirstBlock = true;
    513 
    514   // Check all blocks going backward until we reach the FirstBB.
    515   while (!WorkList.empty()) {
    516     BlockAddressPair Current = WorkList.pop_back_val();
    517     BasicBlock *B = Current.first;
    518     PHITransAddr &Addr = Current.second;
    519     Value *Ptr = Addr.getAddr();
    520 
    521     // Ignore instructions before FirstI if this is the FirstBB.
    522     BasicBlock::iterator BI = (B == FirstBB ? FirstBBI : B->begin());
    523 
    524     BasicBlock::iterator EI;
    525     if (isFirstBlock) {
    526       // Ignore instructions after SecondI if this is the first visit of SecondBB.
    527       assert(B == SecondBB && "first block is not the store block");
    528       EI = SecondBBI;
    529       isFirstBlock = false;
    530     } else {
    531       // It's not SecondBB or (in case of a loop) the second visit of SecondBB.
    532       // In this case we also have to look at instructions after SecondI.
    533       EI = B->end();
    534     }
    535     for (; BI != EI; ++BI) {
    536       Instruction *I = &*BI;
    537       if (I->mayWriteToMemory() && I != SecondI)
    538         if (isModSet(AA.getModRefInfo(I, MemLoc.getWithNewPtr(Ptr))))
    539           return false;
    540     }
    541     if (B != FirstBB) {
    542       assert(B != &FirstBB->getParent()->getEntryBlock() &&
    543           "Should not hit the entry block because SI must be dominated by LI");
    544       for (BasicBlock *Pred : predecessors(B)) {
    545         PHITransAddr PredAddr = Addr;
    546         if (PredAddr.NeedsPHITranslationFromBlock(B)) {
    547           if (!PredAddr.IsPotentiallyPHITranslatable())
    548             return false;
    549           if (PredAddr.PHITranslateValue(B, Pred, DT, false))
    550             return false;
    551         }
    552         Value *TranslatedPtr = PredAddr.getAddr();
    553         auto Inserted = Visited.insert(std::make_pair(Pred, TranslatedPtr));
    554         if (!Inserted.second) {
    555           // We already visited this block before. If it was with a different
    556           // address - bail out!
    557           if (TranslatedPtr != Inserted.first->second)
    558             return false;
    559           // ... otherwise just skip it.
    560           continue;
    561         }
    562         WorkList.push_back(std::make_pair(Pred, PredAddr));
    563       }
    564     }
    565   }
    566   return true;
    567 }
    568 
    569 static bool tryToShorten(Instruction *EarlierWrite, int64_t &EarlierStart,
    570                          uint64_t &EarlierSize, int64_t LaterStart,
    571                          uint64_t LaterSize, bool IsOverwriteEnd) {
    572   auto *EarlierIntrinsic = cast<AnyMemIntrinsic>(EarlierWrite);
    573   Align PrefAlign = EarlierIntrinsic->getDestAlign().valueOrOne();
    574 
    575   // We assume that memet/memcpy operates in chunks of the "largest" native
    576   // type size and aligned on the same value. That means optimal start and size
    577   // of memset/memcpy should be modulo of preferred alignment of that type. That
    578   // is it there is no any sense in trying to reduce store size any further
    579   // since any "extra" stores comes for free anyway.
    580   // On the other hand, maximum alignment we can achieve is limited by alignment
    581   // of initial store.
    582 
    583   // TODO: Limit maximum alignment by preferred (or abi?) alignment of the
    584   // "largest" native type.
    585   // Note: What is the proper way to get that value?
    586   // Should TargetTransformInfo::getRegisterBitWidth be used or anything else?
    587   // PrefAlign = std::min(DL.getPrefTypeAlign(LargestType), PrefAlign);
    588 
    589   int64_t ToRemoveStart = 0;
    590   uint64_t ToRemoveSize = 0;
    591   // Compute start and size of the region to remove. Make sure 'PrefAlign' is
    592   // maintained on the remaining store.
    593   if (IsOverwriteEnd) {
    594     // Calculate required adjustment for 'LaterStart'in order to keep remaining
    595     // store size aligned on 'PerfAlign'.
    596     uint64_t Off =
    597         offsetToAlignment(uint64_t(LaterStart - EarlierStart), PrefAlign);
    598     ToRemoveStart = LaterStart + Off;
    599     if (EarlierSize <= uint64_t(ToRemoveStart - EarlierStart))
    600       return false;
    601     ToRemoveSize = EarlierSize - uint64_t(ToRemoveStart - EarlierStart);
    602   } else {
    603     ToRemoveStart = EarlierStart;
    604     assert(LaterSize >= uint64_t(EarlierStart - LaterStart) &&
    605            "Not overlapping accesses?");
    606     ToRemoveSize = LaterSize - uint64_t(EarlierStart - LaterStart);
    607     // Calculate required adjustment for 'ToRemoveSize'in order to keep
    608     // start of the remaining store aligned on 'PerfAlign'.
    609     uint64_t Off = offsetToAlignment(ToRemoveSize, PrefAlign);
    610     if (Off != 0) {
    611       if (ToRemoveSize <= (PrefAlign.value() - Off))
    612         return false;
    613       ToRemoveSize -= PrefAlign.value() - Off;
    614     }
    615     assert(isAligned(PrefAlign, ToRemoveSize) &&
    616            "Should preserve selected alignment");
    617   }
    618 
    619   assert(ToRemoveSize > 0 && "Shouldn't reach here if nothing to remove");
    620   assert(EarlierSize > ToRemoveSize && "Can't remove more than original size");
    621 
    622   uint64_t NewSize = EarlierSize - ToRemoveSize;
    623   if (auto *AMI = dyn_cast<AtomicMemIntrinsic>(EarlierWrite)) {
    624     // When shortening an atomic memory intrinsic, the newly shortened
    625     // length must remain an integer multiple of the element size.
    626     const uint32_t ElementSize = AMI->getElementSizeInBytes();
    627     if (0 != NewSize % ElementSize)
    628       return false;
    629   }
    630 
    631   LLVM_DEBUG(dbgs() << "DSE: Remove Dead Store:\n  OW "
    632                     << (IsOverwriteEnd ? "END" : "BEGIN") << ": "
    633                     << *EarlierWrite << "\n  KILLER [" << ToRemoveStart << ", "
    634                     << int64_t(ToRemoveStart + ToRemoveSize) << ")\n");
    635 
    636   Value *EarlierWriteLength = EarlierIntrinsic->getLength();
    637   Value *TrimmedLength =
    638       ConstantInt::get(EarlierWriteLength->getType(), NewSize);
    639   EarlierIntrinsic->setLength(TrimmedLength);
    640   EarlierIntrinsic->setDestAlignment(PrefAlign);
    641 
    642   if (!IsOverwriteEnd) {
    643     Value *Indices[1] = {
    644         ConstantInt::get(EarlierWriteLength->getType(), ToRemoveSize)};
    645     GetElementPtrInst *NewDestGEP = GetElementPtrInst::CreateInBounds(
    646         EarlierIntrinsic->getRawDest()->getType()->getPointerElementType(),
    647         EarlierIntrinsic->getRawDest(), Indices, "", EarlierWrite);
    648     NewDestGEP->setDebugLoc(EarlierIntrinsic->getDebugLoc());
    649     EarlierIntrinsic->setDest(NewDestGEP);
    650   }
    651 
    652   // Finally update start and size of earlier access.
    653   if (!IsOverwriteEnd)
    654     EarlierStart += ToRemoveSize;
    655   EarlierSize = NewSize;
    656 
    657   return true;
    658 }
    659 
    660 static bool tryToShortenEnd(Instruction *EarlierWrite,
    661                             OverlapIntervalsTy &IntervalMap,
    662                             int64_t &EarlierStart, uint64_t &EarlierSize) {
    663   if (IntervalMap.empty() || !isShortenableAtTheEnd(EarlierWrite))
    664     return false;
    665 
    666   OverlapIntervalsTy::iterator OII = --IntervalMap.end();
    667   int64_t LaterStart = OII->second;
    668   uint64_t LaterSize = OII->first - LaterStart;
    669 
    670   assert(OII->first - LaterStart >= 0 && "Size expected to be positive");
    671 
    672   if (LaterStart > EarlierStart &&
    673       // Note: "LaterStart - EarlierStart" is known to be positive due to
    674       // preceding check.
    675       (uint64_t)(LaterStart - EarlierStart) < EarlierSize &&
    676       // Note: "EarlierSize - (uint64_t)(LaterStart - EarlierStart)" is known to
    677       // be non negative due to preceding checks.
    678       LaterSize >= EarlierSize - (uint64_t)(LaterStart - EarlierStart)) {
    679     if (tryToShorten(EarlierWrite, EarlierStart, EarlierSize, LaterStart,
    680                      LaterSize, true)) {
    681       IntervalMap.erase(OII);
    682       return true;
    683     }
    684   }
    685   return false;
    686 }
    687 
    688 static bool tryToShortenBegin(Instruction *EarlierWrite,
    689                               OverlapIntervalsTy &IntervalMap,
    690                               int64_t &EarlierStart, uint64_t &EarlierSize) {
    691   if (IntervalMap.empty() || !isShortenableAtTheBeginning(EarlierWrite))
    692     return false;
    693 
    694   OverlapIntervalsTy::iterator OII = IntervalMap.begin();
    695   int64_t LaterStart = OII->second;
    696   uint64_t LaterSize = OII->first - LaterStart;
    697 
    698   assert(OII->first - LaterStart >= 0 && "Size expected to be positive");
    699 
    700   if (LaterStart <= EarlierStart &&
    701       // Note: "EarlierStart - LaterStart" is known to be non negative due to
    702       // preceding check.
    703       LaterSize > (uint64_t)(EarlierStart - LaterStart)) {
    704     // Note: "LaterSize - (uint64_t)(EarlierStart - LaterStart)" is known to be
    705     // positive due to preceding checks.
    706     assert(LaterSize - (uint64_t)(EarlierStart - LaterStart) < EarlierSize &&
    707            "Should have been handled as OW_Complete");
    708     if (tryToShorten(EarlierWrite, EarlierStart, EarlierSize, LaterStart,
    709                      LaterSize, false)) {
    710       IntervalMap.erase(OII);
    711       return true;
    712     }
    713   }
    714   return false;
    715 }
    716 
    717 static bool removePartiallyOverlappedStores(const DataLayout &DL,
    718                                             InstOverlapIntervalsTy &IOL,
    719                                             const TargetLibraryInfo &TLI) {
    720   bool Changed = false;
    721   for (auto OI : IOL) {
    722     Instruction *EarlierWrite = OI.first;
    723     MemoryLocation Loc = getLocForWrite(EarlierWrite, TLI);
    724     assert(isRemovable(EarlierWrite) && "Expect only removable instruction");
    725 
    726     const Value *Ptr = Loc.Ptr->stripPointerCasts();
    727     int64_t EarlierStart = 0;
    728     uint64_t EarlierSize = Loc.Size.getValue();
    729     GetPointerBaseWithConstantOffset(Ptr, EarlierStart, DL);
    730     OverlapIntervalsTy &IntervalMap = OI.second;
    731     Changed |=
    732         tryToShortenEnd(EarlierWrite, IntervalMap, EarlierStart, EarlierSize);
    733     if (IntervalMap.empty())
    734       continue;
    735     Changed |=
    736         tryToShortenBegin(EarlierWrite, IntervalMap, EarlierStart, EarlierSize);
    737   }
    738   return Changed;
    739 }
    740 
    741 static Constant *tryToMergePartialOverlappingStores(
    742     StoreInst *Earlier, StoreInst *Later, int64_t InstWriteOffset,
    743     int64_t DepWriteOffset, const DataLayout &DL, BatchAAResults &AA,
    744     DominatorTree *DT) {
    745 
    746   if (Earlier && isa<ConstantInt>(Earlier->getValueOperand()) &&
    747       DL.typeSizeEqualsStoreSize(Earlier->getValueOperand()->getType()) &&
    748       Later && isa<ConstantInt>(Later->getValueOperand()) &&
    749       DL.typeSizeEqualsStoreSize(Later->getValueOperand()->getType()) &&
    750       memoryIsNotModifiedBetween(Earlier, Later, AA, DL, DT)) {
    751     // If the store we find is:
    752     //   a) partially overwritten by the store to 'Loc'
    753     //   b) the later store is fully contained in the earlier one and
    754     //   c) they both have a constant value
    755     //   d) none of the two stores need padding
    756     // Merge the two stores, replacing the earlier store's value with a
    757     // merge of both values.
    758     // TODO: Deal with other constant types (vectors, etc), and probably
    759     // some mem intrinsics (if needed)
    760 
    761     APInt EarlierValue =
    762         cast<ConstantInt>(Earlier->getValueOperand())->getValue();
    763     APInt LaterValue = cast<ConstantInt>(Later->getValueOperand())->getValue();
    764     unsigned LaterBits = LaterValue.getBitWidth();
    765     assert(EarlierValue.getBitWidth() > LaterValue.getBitWidth());
    766     LaterValue = LaterValue.zext(EarlierValue.getBitWidth());
    767 
    768     // Offset of the smaller store inside the larger store
    769     unsigned BitOffsetDiff = (InstWriteOffset - DepWriteOffset) * 8;
    770     unsigned LShiftAmount = DL.isBigEndian() ? EarlierValue.getBitWidth() -
    771                                                    BitOffsetDiff - LaterBits
    772                                              : BitOffsetDiff;
    773     APInt Mask = APInt::getBitsSet(EarlierValue.getBitWidth(), LShiftAmount,
    774                                    LShiftAmount + LaterBits);
    775     // Clear the bits we'll be replacing, then OR with the smaller
    776     // store, shifted appropriately.
    777     APInt Merged = (EarlierValue & ~Mask) | (LaterValue << LShiftAmount);
    778     LLVM_DEBUG(dbgs() << "DSE: Merge Stores:\n  Earlier: " << *Earlier
    779                       << "\n  Later: " << *Later
    780                       << "\n  Merged Value: " << Merged << '\n');
    781     return ConstantInt::get(Earlier->getValueOperand()->getType(), Merged);
    782   }
    783   return nullptr;
    784 }
    785 
    786 namespace {
    787 // Returns true if \p I is an intrisnic that does not read or write memory.
    788 bool isNoopIntrinsic(Instruction *I) {
    789   if (const IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) {
    790     switch (II->getIntrinsicID()) {
    791     case Intrinsic::lifetime_start:
    792     case Intrinsic::lifetime_end:
    793     case Intrinsic::invariant_end:
    794     case Intrinsic::launder_invariant_group:
    795     case Intrinsic::assume:
    796       return true;
    797     case Intrinsic::dbg_addr:
    798     case Intrinsic::dbg_declare:
    799     case Intrinsic::dbg_label:
    800     case Intrinsic::dbg_value:
    801       llvm_unreachable("Intrinsic should not be modeled in MemorySSA");
    802     default:
    803       return false;
    804     }
    805   }
    806   return false;
    807 }
    808 
    809 // Check if we can ignore \p D for DSE.
    810 bool canSkipDef(MemoryDef *D, bool DefVisibleToCaller) {
    811   Instruction *DI = D->getMemoryInst();
    812   // Calls that only access inaccessible memory cannot read or write any memory
    813   // locations we consider for elimination.
    814   if (auto *CB = dyn_cast<CallBase>(DI))
    815     if (CB->onlyAccessesInaccessibleMemory())
    816       return true;
    817 
    818   // We can eliminate stores to locations not visible to the caller across
    819   // throwing instructions.
    820   if (DI->mayThrow() && !DefVisibleToCaller)
    821     return true;
    822 
    823   // We can remove the dead stores, irrespective of the fence and its ordering
    824   // (release/acquire/seq_cst). Fences only constraints the ordering of
    825   // already visible stores, it does not make a store visible to other
    826   // threads. So, skipping over a fence does not change a store from being
    827   // dead.
    828   if (isa<FenceInst>(DI))
    829     return true;
    830 
    831   // Skip intrinsics that do not really read or modify memory.
    832   if (isNoopIntrinsic(D->getMemoryInst()))
    833     return true;
    834 
    835   return false;
    836 }
    837 
    838 struct DSEState {
    839   Function &F;
    840   AliasAnalysis &AA;
    841 
    842   /// The single BatchAA instance that is used to cache AA queries. It will
    843   /// not be invalidated over the whole run. This is safe, because:
    844   /// 1. Only memory writes are removed, so the alias cache for memory
    845   ///    locations remains valid.
    846   /// 2. No new instructions are added (only instructions removed), so cached
    847   ///    information for a deleted value cannot be accessed by a re-used new
    848   ///    value pointer.
    849   BatchAAResults BatchAA;
    850 
    851   MemorySSA &MSSA;
    852   DominatorTree &DT;
    853   PostDominatorTree &PDT;
    854   const TargetLibraryInfo &TLI;
    855   const DataLayout &DL;
    856 
    857   // All MemoryDefs that potentially could kill other MemDefs.
    858   SmallVector<MemoryDef *, 64> MemDefs;
    859   // Any that should be skipped as they are already deleted
    860   SmallPtrSet<MemoryAccess *, 4> SkipStores;
    861   // Keep track of all of the objects that are invisible to the caller before
    862   // the function returns.
    863   // SmallPtrSet<const Value *, 16> InvisibleToCallerBeforeRet;
    864   DenseMap<const Value *, bool> InvisibleToCallerBeforeRet;
    865   // Keep track of all of the objects that are invisible to the caller after
    866   // the function returns.
    867   DenseMap<const Value *, bool> InvisibleToCallerAfterRet;
    868   // Keep track of blocks with throwing instructions not modeled in MemorySSA.
    869   SmallPtrSet<BasicBlock *, 16> ThrowingBlocks;
    870   // Post-order numbers for each basic block. Used to figure out if memory
    871   // accesses are executed before another access.
    872   DenseMap<BasicBlock *, unsigned> PostOrderNumbers;
    873 
    874   /// Keep track of instructions (partly) overlapping with killing MemoryDefs per
    875   /// basic block.
    876   DenseMap<BasicBlock *, InstOverlapIntervalsTy> IOLs;
    877 
    878   DSEState(Function &F, AliasAnalysis &AA, MemorySSA &MSSA, DominatorTree &DT,
    879            PostDominatorTree &PDT, const TargetLibraryInfo &TLI)
    880       : F(F), AA(AA), BatchAA(AA), MSSA(MSSA), DT(DT), PDT(PDT), TLI(TLI),
    881         DL(F.getParent()->getDataLayout()) {}
    882 
    883   static DSEState get(Function &F, AliasAnalysis &AA, MemorySSA &MSSA,
    884                       DominatorTree &DT, PostDominatorTree &PDT,
    885                       const TargetLibraryInfo &TLI) {
    886     DSEState State(F, AA, MSSA, DT, PDT, TLI);
    887     // Collect blocks with throwing instructions not modeled in MemorySSA and
    888     // alloc-like objects.
    889     unsigned PO = 0;
    890     for (BasicBlock *BB : post_order(&F)) {
    891       State.PostOrderNumbers[BB] = PO++;
    892       for (Instruction &I : *BB) {
    893         MemoryAccess *MA = MSSA.getMemoryAccess(&I);
    894         if (I.mayThrow() && !MA)
    895           State.ThrowingBlocks.insert(I.getParent());
    896 
    897         auto *MD = dyn_cast_or_null<MemoryDef>(MA);
    898         if (MD && State.MemDefs.size() < MemorySSADefsPerBlockLimit &&
    899             (State.getLocForWriteEx(&I) || State.isMemTerminatorInst(&I)))
    900           State.MemDefs.push_back(MD);
    901       }
    902     }
    903 
    904     // Treat byval or inalloca arguments the same as Allocas, stores to them are
    905     // dead at the end of the function.
    906     for (Argument &AI : F.args())
    907       if (AI.hasPassPointeeByValueCopyAttr()) {
    908         // For byval, the caller doesn't know the address of the allocation.
    909         if (AI.hasByValAttr())
    910           State.InvisibleToCallerBeforeRet.insert({&AI, true});
    911         State.InvisibleToCallerAfterRet.insert({&AI, true});
    912       }
    913 
    914     return State;
    915   }
    916 
    917   /// Return 'OW_Complete' if a store to the 'Later' location (by \p LaterI
    918   /// instruction) completely overwrites a store to the 'Earlier' location.
    919   /// (by \p EarlierI instruction).
    920   /// Return OW_MaybePartial if \p Later does not completely overwrite
    921   /// \p Earlier, but they both write to the same underlying object. In that
    922   /// case, use isPartialOverwrite to check if \p Later partially overwrites
    923   /// \p Earlier. Returns 'OW_Unknown' if nothing can be determined.
    924   OverwriteResult
    925   isOverwrite(const Instruction *LaterI, const Instruction *EarlierI,
    926               const MemoryLocation &Later, const MemoryLocation &Earlier,
    927               int64_t &EarlierOff, int64_t &LaterOff) {
    928     // FIXME: Vet that this works for size upper-bounds. Seems unlikely that we'll
    929     // get imprecise values here, though (except for unknown sizes).
    930     if (!Later.Size.isPrecise() || !Earlier.Size.isPrecise()) {
    931       // In case no constant size is known, try to an IR values for the number
    932       // of bytes written and check if they match.
    933       const auto *LaterMemI = dyn_cast<MemIntrinsic>(LaterI);
    934       const auto *EarlierMemI = dyn_cast<MemIntrinsic>(EarlierI);
    935       if (LaterMemI && EarlierMemI) {
    936         const Value *LaterV = LaterMemI->getLength();
    937         const Value *EarlierV = EarlierMemI->getLength();
    938         if (LaterV == EarlierV && BatchAA.isMustAlias(Earlier, Later))
    939           return OW_Complete;
    940       }
    941 
    942       // Masked stores have imprecise locations, but we can reason about them
    943       // to some extent.
    944       return isMaskedStoreOverwrite(LaterI, EarlierI, BatchAA);
    945     }
    946 
    947     const uint64_t LaterSize = Later.Size.getValue();
    948     const uint64_t EarlierSize = Earlier.Size.getValue();
    949 
    950     // Query the alias information
    951     AliasResult AAR = BatchAA.alias(Later, Earlier);
    952 
    953     // If the start pointers are the same, we just have to compare sizes to see if
    954     // the later store was larger than the earlier store.
    955     if (AAR == AliasResult::MustAlias) {
    956       // Make sure that the Later size is >= the Earlier size.
    957       if (LaterSize >= EarlierSize)
    958         return OW_Complete;
    959     }
    960 
    961     // If we hit a partial alias we may have a full overwrite
    962     if (AAR == AliasResult::PartialAlias && AAR.hasOffset()) {
    963       int32_t Off = AAR.getOffset();
    964       if (Off >= 0 && (uint64_t)Off + EarlierSize <= LaterSize)
    965         return OW_Complete;
    966     }
    967 
    968     // Check to see if the later store is to the entire object (either a global,
    969     // an alloca, or a byval/inalloca argument).  If so, then it clearly
    970     // overwrites any other store to the same object.
    971     const Value *P1 = Earlier.Ptr->stripPointerCasts();
    972     const Value *P2 = Later.Ptr->stripPointerCasts();
    973     const Value *UO1 = getUnderlyingObject(P1), *UO2 = getUnderlyingObject(P2);
    974 
    975     // If we can't resolve the same pointers to the same object, then we can't
    976     // analyze them at all.
    977     if (UO1 != UO2)
    978       return OW_Unknown;
    979 
    980     // If the "Later" store is to a recognizable object, get its size.
    981     uint64_t ObjectSize = getPointerSize(UO2, DL, TLI, &F);
    982     if (ObjectSize != MemoryLocation::UnknownSize)
    983       if (ObjectSize == LaterSize && ObjectSize >= EarlierSize)
    984         return OW_Complete;
    985 
    986     // Okay, we have stores to two completely different pointers.  Try to
    987     // decompose the pointer into a "base + constant_offset" form.  If the base
    988     // pointers are equal, then we can reason about the two stores.
    989     EarlierOff = 0;
    990     LaterOff = 0;
    991     const Value *BP1 = GetPointerBaseWithConstantOffset(P1, EarlierOff, DL);
    992     const Value *BP2 = GetPointerBaseWithConstantOffset(P2, LaterOff, DL);
    993 
    994     // If the base pointers still differ, we have two completely different stores.
    995     if (BP1 != BP2)
    996       return OW_Unknown;
    997 
    998     // The later access completely overlaps the earlier store if and only if
    999     // both start and end of the earlier one is "inside" the later one:
   1000     //    |<->|--earlier--|<->|
   1001     //    |-------later-------|
   1002     // Accesses may overlap if and only if start of one of them is "inside"
   1003     // another one:
   1004     //    |<->|--earlier--|<----->|
   1005     //    |-------later-------|
   1006     //           OR
   1007     //    |----- earlier -----|
   1008     //    |<->|---later---|<----->|
   1009     //
   1010     // We have to be careful here as *Off is signed while *.Size is unsigned.
   1011 
   1012     // Check if the earlier access starts "not before" the later one.
   1013     if (EarlierOff >= LaterOff) {
   1014       // If the earlier access ends "not after" the later access then the earlier
   1015       // one is completely overwritten by the later one.
   1016       if (uint64_t(EarlierOff - LaterOff) + EarlierSize <= LaterSize)
   1017         return OW_Complete;
   1018       // If start of the earlier access is "before" end of the later access then
   1019       // accesses overlap.
   1020       else if ((uint64_t)(EarlierOff - LaterOff) < LaterSize)
   1021         return OW_MaybePartial;
   1022     }
   1023     // If start of the later access is "before" end of the earlier access then
   1024     // accesses overlap.
   1025     else if ((uint64_t)(LaterOff - EarlierOff) < EarlierSize) {
   1026       return OW_MaybePartial;
   1027     }
   1028 
   1029     // Can reach here only if accesses are known not to overlap. There is no
   1030     // dedicated code to indicate no overlap so signal "unknown".
   1031     return OW_Unknown;
   1032   }
   1033 
   1034   bool isInvisibleToCallerAfterRet(const Value *V) {
   1035     if (isa<AllocaInst>(V))
   1036       return true;
   1037     auto I = InvisibleToCallerAfterRet.insert({V, false});
   1038     if (I.second) {
   1039       if (!isInvisibleToCallerBeforeRet(V)) {
   1040         I.first->second = false;
   1041       } else {
   1042         auto *Inst = dyn_cast<Instruction>(V);
   1043         if (Inst && isAllocLikeFn(Inst, &TLI))
   1044           I.first->second = !PointerMayBeCaptured(V, true, false);
   1045       }
   1046     }
   1047     return I.first->second;
   1048   }
   1049 
   1050   bool isInvisibleToCallerBeforeRet(const Value *V) {
   1051     if (isa<AllocaInst>(V))
   1052       return true;
   1053     auto I = InvisibleToCallerBeforeRet.insert({V, false});
   1054     if (I.second) {
   1055       auto *Inst = dyn_cast<Instruction>(V);
   1056       if (Inst && isAllocLikeFn(Inst, &TLI))
   1057         // NOTE: This could be made more precise by PointerMayBeCapturedBefore
   1058         // with the killing MemoryDef. But we refrain from doing so for now to
   1059         // limit compile-time and this does not cause any changes to the number
   1060         // of stores removed on a large test set in practice.
   1061         I.first->second = !PointerMayBeCaptured(V, false, true);
   1062     }
   1063     return I.first->second;
   1064   }
   1065 
   1066   Optional<MemoryLocation> getLocForWriteEx(Instruction *I) const {
   1067     if (!I->mayWriteToMemory())
   1068       return None;
   1069 
   1070     if (auto *MTI = dyn_cast<AnyMemIntrinsic>(I))
   1071       return {MemoryLocation::getForDest(MTI)};
   1072 
   1073     if (auto *CB = dyn_cast<CallBase>(I)) {
   1074       // If the functions may write to memory we do not know about, bail out.
   1075       if (!CB->onlyAccessesArgMemory() &&
   1076           !CB->onlyAccessesInaccessibleMemOrArgMem())
   1077         return None;
   1078 
   1079       LibFunc LF;
   1080       if (TLI.getLibFunc(*CB, LF) && TLI.has(LF)) {
   1081         switch (LF) {
   1082         case LibFunc_strcpy:
   1083         case LibFunc_strncpy:
   1084         case LibFunc_strcat:
   1085         case LibFunc_strncat:
   1086           return {MemoryLocation::getAfter(CB->getArgOperand(0))};
   1087         default:
   1088           break;
   1089         }
   1090       }
   1091       switch (CB->getIntrinsicID()) {
   1092       case Intrinsic::init_trampoline:
   1093         return {MemoryLocation::getAfter(CB->getArgOperand(0))};
   1094       case Intrinsic::masked_store:
   1095         return {MemoryLocation::getForArgument(CB, 1, TLI)};
   1096       default:
   1097         break;
   1098       }
   1099       return None;
   1100     }
   1101 
   1102     return MemoryLocation::getOrNone(I);
   1103   }
   1104 
   1105   /// Returns true if \p UseInst completely overwrites \p DefLoc
   1106   /// (stored by \p DefInst).
   1107   bool isCompleteOverwrite(const MemoryLocation &DefLoc, Instruction *DefInst,
   1108                            Instruction *UseInst) {
   1109     // UseInst has a MemoryDef associated in MemorySSA. It's possible for a
   1110     // MemoryDef to not write to memory, e.g. a volatile load is modeled as a
   1111     // MemoryDef.
   1112     if (!UseInst->mayWriteToMemory())
   1113       return false;
   1114 
   1115     if (auto *CB = dyn_cast<CallBase>(UseInst))
   1116       if (CB->onlyAccessesInaccessibleMemory())
   1117         return false;
   1118 
   1119     int64_t InstWriteOffset, DepWriteOffset;
   1120     if (auto CC = getLocForWriteEx(UseInst))
   1121       return isOverwrite(UseInst, DefInst, *CC, DefLoc, DepWriteOffset,
   1122                          InstWriteOffset) == OW_Complete;
   1123     return false;
   1124   }
   1125 
   1126   /// Returns true if \p Def is not read before returning from the function.
   1127   bool isWriteAtEndOfFunction(MemoryDef *Def) {
   1128     LLVM_DEBUG(dbgs() << "  Check if def " << *Def << " ("
   1129                       << *Def->getMemoryInst()
   1130                       << ") is at the end the function \n");
   1131 
   1132     auto MaybeLoc = getLocForWriteEx(Def->getMemoryInst());
   1133     if (!MaybeLoc) {
   1134       LLVM_DEBUG(dbgs() << "  ... could not get location for write.\n");
   1135       return false;
   1136     }
   1137 
   1138     SmallVector<MemoryAccess *, 4> WorkList;
   1139     SmallPtrSet<MemoryAccess *, 8> Visited;
   1140     auto PushMemUses = [&WorkList, &Visited](MemoryAccess *Acc) {
   1141       if (!Visited.insert(Acc).second)
   1142         return;
   1143       for (Use &U : Acc->uses())
   1144         WorkList.push_back(cast<MemoryAccess>(U.getUser()));
   1145     };
   1146     PushMemUses(Def);
   1147     for (unsigned I = 0; I < WorkList.size(); I++) {
   1148       if (WorkList.size() >= MemorySSAScanLimit) {
   1149         LLVM_DEBUG(dbgs() << "  ... hit exploration limit.\n");
   1150         return false;
   1151       }
   1152 
   1153       MemoryAccess *UseAccess = WorkList[I];
   1154       // Simply adding the users of MemoryPhi to the worklist is not enough,
   1155       // because we might miss read clobbers in different iterations of a loop,
   1156       // for example.
   1157       // TODO: Add support for phi translation to handle the loop case.
   1158       if (isa<MemoryPhi>(UseAccess))
   1159         return false;
   1160 
   1161       // TODO: Checking for aliasing is expensive. Consider reducing the amount
   1162       // of times this is called and/or caching it.
   1163       Instruction *UseInst = cast<MemoryUseOrDef>(UseAccess)->getMemoryInst();
   1164       if (isReadClobber(*MaybeLoc, UseInst)) {
   1165         LLVM_DEBUG(dbgs() << "  ... hit read clobber " << *UseInst << ".\n");
   1166         return false;
   1167       }
   1168 
   1169       if (MemoryDef *UseDef = dyn_cast<MemoryDef>(UseAccess))
   1170         PushMemUses(UseDef);
   1171     }
   1172     return true;
   1173   }
   1174 
   1175   /// If \p I is a memory  terminator like llvm.lifetime.end or free, return a
   1176   /// pair with the MemoryLocation terminated by \p I and a boolean flag
   1177   /// indicating whether \p I is a free-like call.
   1178   Optional<std::pair<MemoryLocation, bool>>
   1179   getLocForTerminator(Instruction *I) const {
   1180     uint64_t Len;
   1181     Value *Ptr;
   1182     if (match(I, m_Intrinsic<Intrinsic::lifetime_end>(m_ConstantInt(Len),
   1183                                                       m_Value(Ptr))))
   1184       return {std::make_pair(MemoryLocation(Ptr, Len), false)};
   1185 
   1186     if (auto *CB = dyn_cast<CallBase>(I)) {
   1187       if (isFreeCall(I, &TLI))
   1188         return {std::make_pair(MemoryLocation::getAfter(CB->getArgOperand(0)),
   1189                                true)};
   1190     }
   1191 
   1192     return None;
   1193   }
   1194 
   1195   /// Returns true if \p I is a memory terminator instruction like
   1196   /// llvm.lifetime.end or free.
   1197   bool isMemTerminatorInst(Instruction *I) const {
   1198     IntrinsicInst *II = dyn_cast<IntrinsicInst>(I);
   1199     return (II && II->getIntrinsicID() == Intrinsic::lifetime_end) ||
   1200            isFreeCall(I, &TLI);
   1201   }
   1202 
   1203   /// Returns true if \p MaybeTerm is a memory terminator for \p Loc from
   1204   /// instruction \p AccessI.
   1205   bool isMemTerminator(const MemoryLocation &Loc, Instruction *AccessI,
   1206                        Instruction *MaybeTerm) {
   1207     Optional<std::pair<MemoryLocation, bool>> MaybeTermLoc =
   1208         getLocForTerminator(MaybeTerm);
   1209 
   1210     if (!MaybeTermLoc)
   1211       return false;
   1212 
   1213     // If the terminator is a free-like call, all accesses to the underlying
   1214     // object can be considered terminated.
   1215     if (getUnderlyingObject(Loc.Ptr) !=
   1216         getUnderlyingObject(MaybeTermLoc->first.Ptr))
   1217       return false;
   1218 
   1219     auto TermLoc = MaybeTermLoc->first;
   1220     if (MaybeTermLoc->second) {
   1221       const Value *LocUO = getUnderlyingObject(Loc.Ptr);
   1222       return BatchAA.isMustAlias(TermLoc.Ptr, LocUO);
   1223     }
   1224     int64_t InstWriteOffset, DepWriteOffset;
   1225     return isOverwrite(MaybeTerm, AccessI, TermLoc, Loc, DepWriteOffset,
   1226                        InstWriteOffset) == OW_Complete;
   1227   }
   1228 
   1229   // Returns true if \p Use may read from \p DefLoc.
   1230   bool isReadClobber(const MemoryLocation &DefLoc, Instruction *UseInst) {
   1231     if (isNoopIntrinsic(UseInst))
   1232       return false;
   1233 
   1234     // Monotonic or weaker atomic stores can be re-ordered and do not need to be
   1235     // treated as read clobber.
   1236     if (auto SI = dyn_cast<StoreInst>(UseInst))
   1237       return isStrongerThan(SI->getOrdering(), AtomicOrdering::Monotonic);
   1238 
   1239     if (!UseInst->mayReadFromMemory())
   1240       return false;
   1241 
   1242     if (auto *CB = dyn_cast<CallBase>(UseInst))
   1243       if (CB->onlyAccessesInaccessibleMemory())
   1244         return false;
   1245 
   1246     // NOTE: For calls, the number of stores removed could be slightly improved
   1247     // by using AA.callCapturesBefore(UseInst, DefLoc, &DT), but that showed to
   1248     // be expensive compared to the benefits in practice. For now, avoid more
   1249     // expensive analysis to limit compile-time.
   1250     return isRefSet(BatchAA.getModRefInfo(UseInst, DefLoc));
   1251   }
   1252 
   1253   /// Returns true if \p Ptr is guaranteed to be loop invariant for any possible
   1254   /// loop. In particular, this guarantees that it only references a single
   1255   /// MemoryLocation during execution of the containing function.
   1256   bool IsGuaranteedLoopInvariant(Value *Ptr) {
   1257     auto IsGuaranteedLoopInvariantBase = [this](Value *Ptr) {
   1258       Ptr = Ptr->stripPointerCasts();
   1259       if (auto *I = dyn_cast<Instruction>(Ptr)) {
   1260         if (isa<AllocaInst>(Ptr))
   1261           return true;
   1262 
   1263         if (isAllocLikeFn(I, &TLI))
   1264           return true;
   1265 
   1266         return false;
   1267       }
   1268       return true;
   1269     };
   1270 
   1271     Ptr = Ptr->stripPointerCasts();
   1272     if (auto *I = dyn_cast<Instruction>(Ptr)) {
   1273       if (I->getParent()->isEntryBlock())
   1274         return true;
   1275     }
   1276     if (auto *GEP = dyn_cast<GEPOperator>(Ptr)) {
   1277       return IsGuaranteedLoopInvariantBase(GEP->getPointerOperand()) &&
   1278              GEP->hasAllConstantIndices();
   1279     }
   1280     return IsGuaranteedLoopInvariantBase(Ptr);
   1281   }
   1282 
   1283   // Find a MemoryDef writing to \p DefLoc and dominating \p StartAccess, with
   1284   // no read access between them or on any other path to a function exit block
   1285   // if \p DefLoc is not accessible after the function returns. If there is no
   1286   // such MemoryDef, return None. The returned value may not (completely)
   1287   // overwrite \p DefLoc. Currently we bail out when we encounter an aliasing
   1288   // MemoryUse (read).
   1289   Optional<MemoryAccess *>
   1290   getDomMemoryDef(MemoryDef *KillingDef, MemoryAccess *StartAccess,
   1291                   const MemoryLocation &DefLoc, const Value *DefUO,
   1292                   unsigned &ScanLimit, unsigned &WalkerStepLimit,
   1293                   bool IsMemTerm, unsigned &PartialLimit) {
   1294     if (ScanLimit == 0 || WalkerStepLimit == 0) {
   1295       LLVM_DEBUG(dbgs() << "\n    ...  hit scan limit\n");
   1296       return None;
   1297     }
   1298 
   1299     MemoryAccess *Current = StartAccess;
   1300     Instruction *KillingI = KillingDef->getMemoryInst();
   1301     bool StepAgain;
   1302     LLVM_DEBUG(dbgs() << "  trying to get dominating access\n");
   1303 
   1304     // Find the next clobbering Mod access for DefLoc, starting at StartAccess.
   1305     Optional<MemoryLocation> CurrentLoc;
   1306     do {
   1307       StepAgain = false;
   1308       LLVM_DEBUG({
   1309         dbgs() << "   visiting " << *Current;
   1310         if (!MSSA.isLiveOnEntryDef(Current) && isa<MemoryUseOrDef>(Current))
   1311           dbgs() << " (" << *cast<MemoryUseOrDef>(Current)->getMemoryInst()
   1312                  << ")";
   1313         dbgs() << "\n";
   1314       });
   1315 
   1316       // Reached TOP.
   1317       if (MSSA.isLiveOnEntryDef(Current)) {
   1318         LLVM_DEBUG(dbgs() << "   ...  found LiveOnEntryDef\n");
   1319         return None;
   1320       }
   1321 
   1322       // Cost of a step. Accesses in the same block are more likely to be valid
   1323       // candidates for elimination, hence consider them cheaper.
   1324       unsigned StepCost = KillingDef->getBlock() == Current->getBlock()
   1325                               ? MemorySSASameBBStepCost
   1326                               : MemorySSAOtherBBStepCost;
   1327       if (WalkerStepLimit <= StepCost) {
   1328         LLVM_DEBUG(dbgs() << "   ...  hit walker step limit\n");
   1329         return None;
   1330       }
   1331       WalkerStepLimit -= StepCost;
   1332 
   1333       // Return for MemoryPhis. They cannot be eliminated directly and the
   1334       // caller is responsible for traversing them.
   1335       if (isa<MemoryPhi>(Current)) {
   1336         LLVM_DEBUG(dbgs() << "   ...  found MemoryPhi\n");
   1337         return Current;
   1338       }
   1339 
   1340       // Below, check if CurrentDef is a valid candidate to be eliminated by
   1341       // KillingDef. If it is not, check the next candidate.
   1342       MemoryDef *CurrentDef = cast<MemoryDef>(Current);
   1343       Instruction *CurrentI = CurrentDef->getMemoryInst();
   1344 
   1345       if (canSkipDef(CurrentDef, !isInvisibleToCallerBeforeRet(DefUO))) {
   1346         StepAgain = true;
   1347         Current = CurrentDef->getDefiningAccess();
   1348         continue;
   1349       }
   1350 
   1351       // Before we try to remove anything, check for any extra throwing
   1352       // instructions that block us from DSEing
   1353       if (mayThrowBetween(KillingI, CurrentI, DefUO)) {
   1354         LLVM_DEBUG(dbgs() << "  ... skip, may throw!\n");
   1355         return None;
   1356       }
   1357 
   1358       // Check for anything that looks like it will be a barrier to further
   1359       // removal
   1360       if (isDSEBarrier(DefUO, CurrentI)) {
   1361         LLVM_DEBUG(dbgs() << "  ... skip, barrier\n");
   1362         return None;
   1363       }
   1364 
   1365       // If Current is known to be on path that reads DefLoc or is a read
   1366       // clobber, bail out, as the path is not profitable. We skip this check
   1367       // for intrinsic calls, because the code knows how to handle memcpy
   1368       // intrinsics.
   1369       if (!isa<IntrinsicInst>(CurrentI) && isReadClobber(DefLoc, CurrentI))
   1370         return None;
   1371 
   1372       // Quick check if there are direct uses that are read-clobbers.
   1373       if (any_of(Current->uses(), [this, &DefLoc, StartAccess](Use &U) {
   1374             if (auto *UseOrDef = dyn_cast<MemoryUseOrDef>(U.getUser()))
   1375               return !MSSA.dominates(StartAccess, UseOrDef) &&
   1376                      isReadClobber(DefLoc, UseOrDef->getMemoryInst());
   1377             return false;
   1378           })) {
   1379         LLVM_DEBUG(dbgs() << "   ...  found a read clobber\n");
   1380         return None;
   1381       }
   1382 
   1383       // If Current cannot be analyzed or is not removable, check the next
   1384       // candidate.
   1385       if (!hasAnalyzableMemoryWrite(CurrentI, TLI) || !isRemovable(CurrentI)) {
   1386         StepAgain = true;
   1387         Current = CurrentDef->getDefiningAccess();
   1388         continue;
   1389       }
   1390 
   1391       // If Current does not have an analyzable write location, skip it
   1392       CurrentLoc = getLocForWriteEx(CurrentI);
   1393       if (!CurrentLoc) {
   1394         StepAgain = true;
   1395         Current = CurrentDef->getDefiningAccess();
   1396         continue;
   1397       }
   1398 
   1399       // AliasAnalysis does not account for loops. Limit elimination to
   1400       // candidates for which we can guarantee they always store to the same
   1401       // memory location and not multiple locations in a loop.
   1402       if (Current->getBlock() != KillingDef->getBlock() &&
   1403           !IsGuaranteedLoopInvariant(const_cast<Value *>(CurrentLoc->Ptr))) {
   1404         StepAgain = true;
   1405         Current = CurrentDef->getDefiningAccess();
   1406         WalkerStepLimit -= 1;
   1407         continue;
   1408       }
   1409 
   1410       if (IsMemTerm) {
   1411         // If the killing def is a memory terminator (e.g. lifetime.end), check
   1412         // the next candidate if the current Current does not write the same
   1413         // underlying object as the terminator.
   1414         if (!isMemTerminator(*CurrentLoc, CurrentI, KillingI)) {
   1415           StepAgain = true;
   1416           Current = CurrentDef->getDefiningAccess();
   1417         }
   1418         continue;
   1419       } else {
   1420         int64_t InstWriteOffset, DepWriteOffset;
   1421         auto OR = isOverwrite(KillingI, CurrentI, DefLoc, *CurrentLoc,
   1422                               DepWriteOffset, InstWriteOffset);
   1423         // If Current does not write to the same object as KillingDef, check
   1424         // the next candidate.
   1425         if (OR == OW_Unknown) {
   1426           StepAgain = true;
   1427           Current = CurrentDef->getDefiningAccess();
   1428         } else if (OR == OW_MaybePartial) {
   1429           // If KillingDef only partially overwrites Current, check the next
   1430           // candidate if the partial step limit is exceeded. This aggressively
   1431           // limits the number of candidates for partial store elimination,
   1432           // which are less likely to be removable in the end.
   1433           if (PartialLimit <= 1) {
   1434             StepAgain = true;
   1435             Current = CurrentDef->getDefiningAccess();
   1436             WalkerStepLimit -= 1;
   1437             continue;
   1438           }
   1439           PartialLimit -= 1;
   1440         }
   1441       }
   1442     } while (StepAgain);
   1443 
   1444     // Accesses to objects accessible after the function returns can only be
   1445     // eliminated if the access is killed along all paths to the exit. Collect
   1446     // the blocks with killing (=completely overwriting MemoryDefs) and check if
   1447     // they cover all paths from EarlierAccess to any function exit.
   1448     SmallPtrSet<Instruction *, 16> KillingDefs;
   1449     KillingDefs.insert(KillingDef->getMemoryInst());
   1450     MemoryAccess *EarlierAccess = Current;
   1451     Instruction *EarlierMemInst =
   1452         cast<MemoryDef>(EarlierAccess)->getMemoryInst();
   1453     LLVM_DEBUG(dbgs() << "  Checking for reads of " << *EarlierAccess << " ("
   1454                       << *EarlierMemInst << ")\n");
   1455 
   1456     SmallSetVector<MemoryAccess *, 32> WorkList;
   1457     auto PushMemUses = [&WorkList](MemoryAccess *Acc) {
   1458       for (Use &U : Acc->uses())
   1459         WorkList.insert(cast<MemoryAccess>(U.getUser()));
   1460     };
   1461     PushMemUses(EarlierAccess);
   1462 
   1463     // Optimistically collect all accesses for reads. If we do not find any
   1464     // read clobbers, add them to the cache.
   1465     SmallPtrSet<MemoryAccess *, 16> KnownNoReads;
   1466     if (!EarlierMemInst->mayReadFromMemory())
   1467       KnownNoReads.insert(EarlierAccess);
   1468     // Check if EarlierDef may be read.
   1469     for (unsigned I = 0; I < WorkList.size(); I++) {
   1470       MemoryAccess *UseAccess = WorkList[I];
   1471 
   1472       LLVM_DEBUG(dbgs() << "   " << *UseAccess);
   1473       // Bail out if the number of accesses to check exceeds the scan limit.
   1474       if (ScanLimit < (WorkList.size() - I)) {
   1475         LLVM_DEBUG(dbgs() << "\n    ...  hit scan limit\n");
   1476         return None;
   1477       }
   1478       --ScanLimit;
   1479       NumDomMemDefChecks++;
   1480       KnownNoReads.insert(UseAccess);
   1481 
   1482       if (isa<MemoryPhi>(UseAccess)) {
   1483         if (any_of(KillingDefs, [this, UseAccess](Instruction *KI) {
   1484               return DT.properlyDominates(KI->getParent(),
   1485                                           UseAccess->getBlock());
   1486             })) {
   1487           LLVM_DEBUG(dbgs() << " ... skipping, dominated by killing block\n");
   1488           continue;
   1489         }
   1490         LLVM_DEBUG(dbgs() << "\n    ... adding PHI uses\n");
   1491         PushMemUses(UseAccess);
   1492         continue;
   1493       }
   1494 
   1495       Instruction *UseInst = cast<MemoryUseOrDef>(UseAccess)->getMemoryInst();
   1496       LLVM_DEBUG(dbgs() << " (" << *UseInst << ")\n");
   1497 
   1498       if (any_of(KillingDefs, [this, UseInst](Instruction *KI) {
   1499             return DT.dominates(KI, UseInst);
   1500           })) {
   1501         LLVM_DEBUG(dbgs() << " ... skipping, dominated by killing def\n");
   1502         continue;
   1503       }
   1504 
   1505       // A memory terminator kills all preceeding MemoryDefs and all succeeding
   1506       // MemoryAccesses. We do not have to check it's users.
   1507       if (isMemTerminator(*CurrentLoc, EarlierMemInst, UseInst)) {
   1508         LLVM_DEBUG(
   1509             dbgs()
   1510             << " ... skipping, memterminator invalidates following accesses\n");
   1511         continue;
   1512       }
   1513 
   1514       if (isNoopIntrinsic(cast<MemoryUseOrDef>(UseAccess)->getMemoryInst())) {
   1515         LLVM_DEBUG(dbgs() << "    ... adding uses of intrinsic\n");
   1516         PushMemUses(UseAccess);
   1517         continue;
   1518       }
   1519 
   1520       if (UseInst->mayThrow() && !isInvisibleToCallerBeforeRet(DefUO)) {
   1521         LLVM_DEBUG(dbgs() << "  ... found throwing instruction\n");
   1522         return None;
   1523       }
   1524 
   1525       // Uses which may read the original MemoryDef mean we cannot eliminate the
   1526       // original MD. Stop walk.
   1527       if (isReadClobber(*CurrentLoc, UseInst)) {
   1528         LLVM_DEBUG(dbgs() << "    ... found read clobber\n");
   1529         return None;
   1530       }
   1531 
   1532       // For the KillingDef and EarlierAccess we only have to check if it reads
   1533       // the memory location.
   1534       // TODO: It would probably be better to check for self-reads before
   1535       // calling the function.
   1536       if (KillingDef == UseAccess || EarlierAccess == UseAccess) {
   1537         LLVM_DEBUG(dbgs() << "    ... skipping killing def/dom access\n");
   1538         continue;
   1539       }
   1540 
   1541       // Check all uses for MemoryDefs, except for defs completely overwriting
   1542       // the original location. Otherwise we have to check uses of *all*
   1543       // MemoryDefs we discover, including non-aliasing ones. Otherwise we might
   1544       // miss cases like the following
   1545       //   1 = Def(LoE) ; <----- EarlierDef stores [0,1]
   1546       //   2 = Def(1)   ; (2, 1) = NoAlias,   stores [2,3]
   1547       //   Use(2)       ; MayAlias 2 *and* 1, loads [0, 3].
   1548       //                  (The Use points to the *first* Def it may alias)
   1549       //   3 = Def(1)   ; <---- Current  (3, 2) = NoAlias, (3,1) = MayAlias,
   1550       //                  stores [0,1]
   1551       if (MemoryDef *UseDef = dyn_cast<MemoryDef>(UseAccess)) {
   1552         if (isCompleteOverwrite(*CurrentLoc, EarlierMemInst, UseInst)) {
   1553           if (!isInvisibleToCallerAfterRet(DefUO) &&
   1554               UseAccess != EarlierAccess) {
   1555             BasicBlock *MaybeKillingBlock = UseInst->getParent();
   1556             if (PostOrderNumbers.find(MaybeKillingBlock)->second <
   1557                 PostOrderNumbers.find(EarlierAccess->getBlock())->second) {
   1558 
   1559               LLVM_DEBUG(dbgs()
   1560                          << "    ... found killing def " << *UseInst << "\n");
   1561               KillingDefs.insert(UseInst);
   1562             }
   1563           }
   1564         } else
   1565           PushMemUses(UseDef);
   1566       }
   1567     }
   1568 
   1569     // For accesses to locations visible after the function returns, make sure
   1570     // that the location is killed (=overwritten) along all paths from
   1571     // EarlierAccess to the exit.
   1572     if (!isInvisibleToCallerAfterRet(DefUO)) {
   1573       SmallPtrSet<BasicBlock *, 16> KillingBlocks;
   1574       for (Instruction *KD : KillingDefs)
   1575         KillingBlocks.insert(KD->getParent());
   1576       assert(!KillingBlocks.empty() &&
   1577              "Expected at least a single killing block");
   1578 
   1579       // Find the common post-dominator of all killing blocks.
   1580       BasicBlock *CommonPred = *KillingBlocks.begin();
   1581       for (auto I = std::next(KillingBlocks.begin()), E = KillingBlocks.end();
   1582            I != E; I++) {
   1583         if (!CommonPred)
   1584           break;
   1585         CommonPred = PDT.findNearestCommonDominator(CommonPred, *I);
   1586       }
   1587 
   1588       // If CommonPred is in the set of killing blocks, just check if it
   1589       // post-dominates EarlierAccess.
   1590       if (KillingBlocks.count(CommonPred)) {
   1591         if (PDT.dominates(CommonPred, EarlierAccess->getBlock()))
   1592           return {EarlierAccess};
   1593         return None;
   1594       }
   1595 
   1596       // If the common post-dominator does not post-dominate EarlierAccess,
   1597       // there is a path from EarlierAccess to an exit not going through a
   1598       // killing block.
   1599       if (PDT.dominates(CommonPred, EarlierAccess->getBlock())) {
   1600         SetVector<BasicBlock *> WorkList;
   1601 
   1602         // If CommonPred is null, there are multiple exits from the function.
   1603         // They all have to be added to the worklist.
   1604         if (CommonPred)
   1605           WorkList.insert(CommonPred);
   1606         else
   1607           for (BasicBlock *R : PDT.roots())
   1608             WorkList.insert(R);
   1609 
   1610         NumCFGTries++;
   1611         // Check if all paths starting from an exit node go through one of the
   1612         // killing blocks before reaching EarlierAccess.
   1613         for (unsigned I = 0; I < WorkList.size(); I++) {
   1614           NumCFGChecks++;
   1615           BasicBlock *Current = WorkList[I];
   1616           if (KillingBlocks.count(Current))
   1617             continue;
   1618           if (Current == EarlierAccess->getBlock())
   1619             return None;
   1620 
   1621           // EarlierAccess is reachable from the entry, so we don't have to
   1622           // explore unreachable blocks further.
   1623           if (!DT.isReachableFromEntry(Current))
   1624             continue;
   1625 
   1626           for (BasicBlock *Pred : predecessors(Current))
   1627             WorkList.insert(Pred);
   1628 
   1629           if (WorkList.size() >= MemorySSAPathCheckLimit)
   1630             return None;
   1631         }
   1632         NumCFGSuccess++;
   1633         return {EarlierAccess};
   1634       }
   1635       return None;
   1636     }
   1637 
   1638     // No aliasing MemoryUses of EarlierAccess found, EarlierAccess is
   1639     // potentially dead.
   1640     return {EarlierAccess};
   1641   }
   1642 
   1643   // Delete dead memory defs
   1644   void deleteDeadInstruction(Instruction *SI) {
   1645     MemorySSAUpdater Updater(&MSSA);
   1646     SmallVector<Instruction *, 32> NowDeadInsts;
   1647     NowDeadInsts.push_back(SI);
   1648     --NumFastOther;
   1649 
   1650     while (!NowDeadInsts.empty()) {
   1651       Instruction *DeadInst = NowDeadInsts.pop_back_val();
   1652       ++NumFastOther;
   1653 
   1654       // Try to preserve debug information attached to the dead instruction.
   1655       salvageDebugInfo(*DeadInst);
   1656       salvageKnowledge(DeadInst);
   1657 
   1658       // Remove the Instruction from MSSA.
   1659       if (MemoryAccess *MA = MSSA.getMemoryAccess(DeadInst)) {
   1660         if (MemoryDef *MD = dyn_cast<MemoryDef>(MA)) {
   1661           SkipStores.insert(MD);
   1662         }
   1663         Updater.removeMemoryAccess(MA);
   1664       }
   1665 
   1666       auto I = IOLs.find(DeadInst->getParent());
   1667       if (I != IOLs.end())
   1668         I->second.erase(DeadInst);
   1669       // Remove its operands
   1670       for (Use &O : DeadInst->operands())
   1671         if (Instruction *OpI = dyn_cast<Instruction>(O)) {
   1672           O = nullptr;
   1673           if (isInstructionTriviallyDead(OpI, &TLI))
   1674             NowDeadInsts.push_back(OpI);
   1675         }
   1676 
   1677       DeadInst->eraseFromParent();
   1678     }
   1679   }
   1680 
   1681   // Check for any extra throws between SI and NI that block DSE.  This only
   1682   // checks extra maythrows (those that aren't MemoryDef's). MemoryDef that may
   1683   // throw are handled during the walk from one def to the next.
   1684   bool mayThrowBetween(Instruction *SI, Instruction *NI,
   1685                        const Value *SILocUnd) {
   1686     // First see if we can ignore it by using the fact that SI is an
   1687     // alloca/alloca like object that is not visible to the caller during
   1688     // execution of the function.
   1689     if (SILocUnd && isInvisibleToCallerBeforeRet(SILocUnd))
   1690       return false;
   1691 
   1692     if (SI->getParent() == NI->getParent())
   1693       return ThrowingBlocks.count(SI->getParent());
   1694     return !ThrowingBlocks.empty();
   1695   }
   1696 
   1697   // Check if \p NI acts as a DSE barrier for \p SI. The following instructions
   1698   // act as barriers:
   1699   //  * A memory instruction that may throw and \p SI accesses a non-stack
   1700   //  object.
   1701   //  * Atomic stores stronger that monotonic.
   1702   bool isDSEBarrier(const Value *SILocUnd, Instruction *NI) {
   1703     // If NI may throw it acts as a barrier, unless we are to an alloca/alloca
   1704     // like object that does not escape.
   1705     if (NI->mayThrow() && !isInvisibleToCallerBeforeRet(SILocUnd))
   1706       return true;
   1707 
   1708     // If NI is an atomic load/store stronger than monotonic, do not try to
   1709     // eliminate/reorder it.
   1710     if (NI->isAtomic()) {
   1711       if (auto *LI = dyn_cast<LoadInst>(NI))
   1712         return isStrongerThanMonotonic(LI->getOrdering());
   1713       if (auto *SI = dyn_cast<StoreInst>(NI))
   1714         return isStrongerThanMonotonic(SI->getOrdering());
   1715       if (auto *ARMW = dyn_cast<AtomicRMWInst>(NI))
   1716         return isStrongerThanMonotonic(ARMW->getOrdering());
   1717       if (auto *CmpXchg = dyn_cast<AtomicCmpXchgInst>(NI))
   1718         return isStrongerThanMonotonic(CmpXchg->getSuccessOrdering()) ||
   1719                isStrongerThanMonotonic(CmpXchg->getFailureOrdering());
   1720       llvm_unreachable("other instructions should be skipped in MemorySSA");
   1721     }
   1722     return false;
   1723   }
   1724 
   1725   /// Eliminate writes to objects that are not visible in the caller and are not
   1726   /// accessed before returning from the function.
   1727   bool eliminateDeadWritesAtEndOfFunction() {
   1728     bool MadeChange = false;
   1729     LLVM_DEBUG(
   1730         dbgs()
   1731         << "Trying to eliminate MemoryDefs at the end of the function\n");
   1732     for (int I = MemDefs.size() - 1; I >= 0; I--) {
   1733       MemoryDef *Def = MemDefs[I];
   1734       if (SkipStores.contains(Def) || !isRemovable(Def->getMemoryInst()))
   1735         continue;
   1736 
   1737       Instruction *DefI = Def->getMemoryInst();
   1738       SmallVector<const Value *, 4> Pointers;
   1739       auto DefLoc = getLocForWriteEx(DefI);
   1740       if (!DefLoc)
   1741         continue;
   1742 
   1743       // NOTE: Currently eliminating writes at the end of a function is limited
   1744       // to MemoryDefs with a single underlying object, to save compile-time. In
   1745       // practice it appears the case with multiple underlying objects is very
   1746       // uncommon. If it turns out to be important, we can use
   1747       // getUnderlyingObjects here instead.
   1748       const Value *UO = getUnderlyingObject(DefLoc->Ptr);
   1749       if (!UO || !isInvisibleToCallerAfterRet(UO))
   1750         continue;
   1751 
   1752       if (isWriteAtEndOfFunction(Def)) {
   1753         // See through pointer-to-pointer bitcasts
   1754         LLVM_DEBUG(dbgs() << "   ... MemoryDef is not accessed until the end "
   1755                              "of the function\n");
   1756         deleteDeadInstruction(DefI);
   1757         ++NumFastStores;
   1758         MadeChange = true;
   1759       }
   1760     }
   1761     return MadeChange;
   1762   }
   1763 
   1764   /// \returns true if \p Def is a no-op store, either because it
   1765   /// directly stores back a loaded value or stores zero to a calloced object.
   1766   bool storeIsNoop(MemoryDef *Def, const MemoryLocation &DefLoc,
   1767                    const Value *DefUO) {
   1768     StoreInst *Store = dyn_cast<StoreInst>(Def->getMemoryInst());
   1769     MemSetInst *MemSet = dyn_cast<MemSetInst>(Def->getMemoryInst());
   1770     Constant *StoredConstant = nullptr;
   1771     if (Store)
   1772       StoredConstant = dyn_cast<Constant>(Store->getOperand(0));
   1773     if (MemSet)
   1774       StoredConstant = dyn_cast<Constant>(MemSet->getValue());
   1775 
   1776     if (StoredConstant && StoredConstant->isNullValue()) {
   1777       auto *DefUOInst = dyn_cast<Instruction>(DefUO);
   1778       if (DefUOInst && isCallocLikeFn(DefUOInst, &TLI)) {
   1779         auto *UnderlyingDef = cast<MemoryDef>(MSSA.getMemoryAccess(DefUOInst));
   1780         // If UnderlyingDef is the clobbering access of Def, no instructions
   1781         // between them can modify the memory location.
   1782         auto *ClobberDef =
   1783             MSSA.getSkipSelfWalker()->getClobberingMemoryAccess(Def);
   1784         return UnderlyingDef == ClobberDef;
   1785       }
   1786     }
   1787 
   1788     if (!Store)
   1789       return false;
   1790 
   1791     if (auto *LoadI = dyn_cast<LoadInst>(Store->getOperand(0))) {
   1792       if (LoadI->getPointerOperand() == Store->getOperand(1)) {
   1793         // Get the defining access for the load.
   1794         auto *LoadAccess = MSSA.getMemoryAccess(LoadI)->getDefiningAccess();
   1795         // Fast path: the defining accesses are the same.
   1796         if (LoadAccess == Def->getDefiningAccess())
   1797           return true;
   1798 
   1799         // Look through phi accesses. Recursively scan all phi accesses by
   1800         // adding them to a worklist. Bail when we run into a memory def that
   1801         // does not match LoadAccess.
   1802         SetVector<MemoryAccess *> ToCheck;
   1803         MemoryAccess *Current =
   1804             MSSA.getWalker()->getClobberingMemoryAccess(Def);
   1805         // We don't want to bail when we run into the store memory def. But,
   1806         // the phi access may point to it. So, pretend like we've already
   1807         // checked it.
   1808         ToCheck.insert(Def);
   1809         ToCheck.insert(Current);
   1810         // Start at current (1) to simulate already having checked Def.
   1811         for (unsigned I = 1; I < ToCheck.size(); ++I) {
   1812           Current = ToCheck[I];
   1813           if (auto PhiAccess = dyn_cast<MemoryPhi>(Current)) {
   1814             // Check all the operands.
   1815             for (auto &Use : PhiAccess->incoming_values())
   1816               ToCheck.insert(cast<MemoryAccess>(&Use));
   1817             continue;
   1818           }
   1819 
   1820           // If we found a memory def, bail. This happens when we have an
   1821           // unrelated write in between an otherwise noop store.
   1822           assert(isa<MemoryDef>(Current) &&
   1823                  "Only MemoryDefs should reach here.");
   1824           // TODO: Skip no alias MemoryDefs that have no aliasing reads.
   1825           // We are searching for the definition of the store's destination.
   1826           // So, if that is the same definition as the load, then this is a
   1827           // noop. Otherwise, fail.
   1828           if (LoadAccess != Current)
   1829             return false;
   1830         }
   1831         return true;
   1832       }
   1833     }
   1834 
   1835     return false;
   1836   }
   1837 };
   1838 
   1839 bool eliminateDeadStores(Function &F, AliasAnalysis &AA, MemorySSA &MSSA,
   1840                          DominatorTree &DT, PostDominatorTree &PDT,
   1841                          const TargetLibraryInfo &TLI) {
   1842   bool MadeChange = false;
   1843 
   1844   DSEState State = DSEState::get(F, AA, MSSA, DT, PDT, TLI);
   1845   // For each store:
   1846   for (unsigned I = 0; I < State.MemDefs.size(); I++) {
   1847     MemoryDef *KillingDef = State.MemDefs[I];
   1848     if (State.SkipStores.count(KillingDef))
   1849       continue;
   1850     Instruction *SI = KillingDef->getMemoryInst();
   1851 
   1852     Optional<MemoryLocation> MaybeSILoc;
   1853     if (State.isMemTerminatorInst(SI))
   1854       MaybeSILoc = State.getLocForTerminator(SI).map(
   1855           [](const std::pair<MemoryLocation, bool> &P) { return P.first; });
   1856     else
   1857       MaybeSILoc = State.getLocForWriteEx(SI);
   1858 
   1859     if (!MaybeSILoc) {
   1860       LLVM_DEBUG(dbgs() << "Failed to find analyzable write location for "
   1861                         << *SI << "\n");
   1862       continue;
   1863     }
   1864     MemoryLocation SILoc = *MaybeSILoc;
   1865     assert(SILoc.Ptr && "SILoc should not be null");
   1866     const Value *SILocUnd = getUnderlyingObject(SILoc.Ptr);
   1867 
   1868     MemoryAccess *Current = KillingDef;
   1869     LLVM_DEBUG(dbgs() << "Trying to eliminate MemoryDefs killed by "
   1870                       << *Current << " (" << *SI << ")\n");
   1871 
   1872     unsigned ScanLimit = MemorySSAScanLimit;
   1873     unsigned WalkerStepLimit = MemorySSAUpwardsStepLimit;
   1874     unsigned PartialLimit = MemorySSAPartialStoreLimit;
   1875     // Worklist of MemoryAccesses that may be killed by KillingDef.
   1876     SetVector<MemoryAccess *> ToCheck;
   1877 
   1878     if (SILocUnd)
   1879       ToCheck.insert(KillingDef->getDefiningAccess());
   1880 
   1881     bool Shortend = false;
   1882     bool IsMemTerm = State.isMemTerminatorInst(SI);
   1883     // Check if MemoryAccesses in the worklist are killed by KillingDef.
   1884     for (unsigned I = 0; I < ToCheck.size(); I++) {
   1885       Current = ToCheck[I];
   1886       if (State.SkipStores.count(Current))
   1887         continue;
   1888 
   1889       Optional<MemoryAccess *> Next = State.getDomMemoryDef(
   1890           KillingDef, Current, SILoc, SILocUnd, ScanLimit, WalkerStepLimit,
   1891           IsMemTerm, PartialLimit);
   1892 
   1893       if (!Next) {
   1894         LLVM_DEBUG(dbgs() << "  finished walk\n");
   1895         continue;
   1896       }
   1897 
   1898       MemoryAccess *EarlierAccess = *Next;
   1899       LLVM_DEBUG(dbgs() << " Checking if we can kill " << *EarlierAccess);
   1900       if (isa<MemoryPhi>(EarlierAccess)) {
   1901         LLVM_DEBUG(dbgs() << "\n  ... adding incoming values to worklist\n");
   1902         for (Value *V : cast<MemoryPhi>(EarlierAccess)->incoming_values()) {
   1903           MemoryAccess *IncomingAccess = cast<MemoryAccess>(V);
   1904           BasicBlock *IncomingBlock = IncomingAccess->getBlock();
   1905           BasicBlock *PhiBlock = EarlierAccess->getBlock();
   1906 
   1907           // We only consider incoming MemoryAccesses that come before the
   1908           // MemoryPhi. Otherwise we could discover candidates that do not
   1909           // strictly dominate our starting def.
   1910           if (State.PostOrderNumbers[IncomingBlock] >
   1911               State.PostOrderNumbers[PhiBlock])
   1912             ToCheck.insert(IncomingAccess);
   1913         }
   1914         continue;
   1915       }
   1916       auto *NextDef = cast<MemoryDef>(EarlierAccess);
   1917       Instruction *NI = NextDef->getMemoryInst();
   1918       LLVM_DEBUG(dbgs() << " (" << *NI << ")\n");
   1919       ToCheck.insert(NextDef->getDefiningAccess());
   1920       NumGetDomMemoryDefPassed++;
   1921 
   1922       if (!DebugCounter::shouldExecute(MemorySSACounter))
   1923         continue;
   1924 
   1925       MemoryLocation NILoc = *State.getLocForWriteEx(NI);
   1926 
   1927       if (IsMemTerm) {
   1928         const Value *NIUnd = getUnderlyingObject(NILoc.Ptr);
   1929         if (SILocUnd != NIUnd)
   1930           continue;
   1931         LLVM_DEBUG(dbgs() << "DSE: Remove Dead Store:\n  DEAD: " << *NI
   1932                           << "\n  KILLER: " << *SI << '\n');
   1933         State.deleteDeadInstruction(NI);
   1934         ++NumFastStores;
   1935         MadeChange = true;
   1936       } else {
   1937         // Check if NI overwrites SI.
   1938         int64_t InstWriteOffset, DepWriteOffset;
   1939         OverwriteResult OR = State.isOverwrite(SI, NI, SILoc, NILoc,
   1940                                                DepWriteOffset, InstWriteOffset);
   1941         if (OR == OW_MaybePartial) {
   1942           auto Iter = State.IOLs.insert(
   1943               std::make_pair<BasicBlock *, InstOverlapIntervalsTy>(
   1944                   NI->getParent(), InstOverlapIntervalsTy()));
   1945           auto &IOL = Iter.first->second;
   1946           OR = isPartialOverwrite(SILoc, NILoc, DepWriteOffset, InstWriteOffset,
   1947                                   NI, IOL);
   1948         }
   1949 
   1950         if (EnablePartialStoreMerging && OR == OW_PartialEarlierWithFullLater) {
   1951           auto *Earlier = dyn_cast<StoreInst>(NI);
   1952           auto *Later = dyn_cast<StoreInst>(SI);
   1953           // We are re-using tryToMergePartialOverlappingStores, which requires
   1954           // Earlier to domiante Later.
   1955           // TODO: implement tryToMergeParialOverlappingStores using MemorySSA.
   1956           if (Earlier && Later && DT.dominates(Earlier, Later)) {
   1957             if (Constant *Merged = tryToMergePartialOverlappingStores(
   1958                     Earlier, Later, InstWriteOffset, DepWriteOffset, State.DL,
   1959                     State.BatchAA, &DT)) {
   1960 
   1961               // Update stored value of earlier store to merged constant.
   1962               Earlier->setOperand(0, Merged);
   1963               ++NumModifiedStores;
   1964               MadeChange = true;
   1965 
   1966               Shortend = true;
   1967               // Remove later store and remove any outstanding overlap intervals
   1968               // for the updated store.
   1969               State.deleteDeadInstruction(Later);
   1970               auto I = State.IOLs.find(Earlier->getParent());
   1971               if (I != State.IOLs.end())
   1972                 I->second.erase(Earlier);
   1973               break;
   1974             }
   1975           }
   1976         }
   1977 
   1978         if (OR == OW_Complete) {
   1979           LLVM_DEBUG(dbgs() << "DSE: Remove Dead Store:\n  DEAD: " << *NI
   1980                             << "\n  KILLER: " << *SI << '\n');
   1981           State.deleteDeadInstruction(NI);
   1982           ++NumFastStores;
   1983           MadeChange = true;
   1984         }
   1985       }
   1986     }
   1987 
   1988     // Check if the store is a no-op.
   1989     if (!Shortend && isRemovable(SI) &&
   1990         State.storeIsNoop(KillingDef, SILoc, SILocUnd)) {
   1991       LLVM_DEBUG(dbgs() << "DSE: Remove No-Op Store:\n  DEAD: " << *SI << '\n');
   1992       State.deleteDeadInstruction(SI);
   1993       NumRedundantStores++;
   1994       MadeChange = true;
   1995       continue;
   1996     }
   1997   }
   1998 
   1999   if (EnablePartialOverwriteTracking)
   2000     for (auto &KV : State.IOLs)
   2001       MadeChange |= removePartiallyOverlappedStores(State.DL, KV.second, TLI);
   2002 
   2003   MadeChange |= State.eliminateDeadWritesAtEndOfFunction();
   2004   return MadeChange;
   2005 }
   2006 } // end anonymous namespace
   2007 
   2008 //===----------------------------------------------------------------------===//
   2009 // DSE Pass
   2010 //===----------------------------------------------------------------------===//
   2011 PreservedAnalyses DSEPass::run(Function &F, FunctionAnalysisManager &AM) {
   2012   AliasAnalysis &AA = AM.getResult<AAManager>(F);
   2013   const TargetLibraryInfo &TLI = AM.getResult<TargetLibraryAnalysis>(F);
   2014   DominatorTree &DT = AM.getResult<DominatorTreeAnalysis>(F);
   2015   MemorySSA &MSSA = AM.getResult<MemorySSAAnalysis>(F).getMSSA();
   2016   PostDominatorTree &PDT = AM.getResult<PostDominatorTreeAnalysis>(F);
   2017 
   2018   bool Changed = eliminateDeadStores(F, AA, MSSA, DT, PDT, TLI);
   2019 
   2020 #ifdef LLVM_ENABLE_STATS
   2021   if (AreStatisticsEnabled())
   2022     for (auto &I : instructions(F))
   2023       NumRemainingStores += isa<StoreInst>(&I);
   2024 #endif
   2025 
   2026   if (!Changed)
   2027     return PreservedAnalyses::all();
   2028 
   2029   PreservedAnalyses PA;
   2030   PA.preserveSet<CFGAnalyses>();
   2031   PA.preserve<MemorySSAAnalysis>();
   2032   return PA;
   2033 }
   2034 
   2035 namespace {
   2036 
   2037 /// A legacy pass for the legacy pass manager that wraps \c DSEPass.
   2038 class DSELegacyPass : public FunctionPass {
   2039 public:
   2040   static char ID; // Pass identification, replacement for typeid
   2041 
   2042   DSELegacyPass() : FunctionPass(ID) {
   2043     initializeDSELegacyPassPass(*PassRegistry::getPassRegistry());
   2044   }
   2045 
   2046   bool runOnFunction(Function &F) override {
   2047     if (skipFunction(F))
   2048       return false;
   2049 
   2050     AliasAnalysis &AA = getAnalysis<AAResultsWrapperPass>().getAAResults();
   2051     DominatorTree &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree();
   2052     const TargetLibraryInfo &TLI =
   2053         getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(F);
   2054     MemorySSA &MSSA = getAnalysis<MemorySSAWrapperPass>().getMSSA();
   2055     PostDominatorTree &PDT =
   2056         getAnalysis<PostDominatorTreeWrapperPass>().getPostDomTree();
   2057 
   2058     bool Changed = eliminateDeadStores(F, AA, MSSA, DT, PDT, TLI);
   2059 
   2060 #ifdef LLVM_ENABLE_STATS
   2061     if (AreStatisticsEnabled())
   2062       for (auto &I : instructions(F))
   2063         NumRemainingStores += isa<StoreInst>(&I);
   2064 #endif
   2065 
   2066     return Changed;
   2067   }
   2068 
   2069   void getAnalysisUsage(AnalysisUsage &AU) const override {
   2070     AU.setPreservesCFG();
   2071     AU.addRequired<AAResultsWrapperPass>();
   2072     AU.addRequired<TargetLibraryInfoWrapperPass>();
   2073     AU.addPreserved<GlobalsAAWrapperPass>();
   2074     AU.addRequired<DominatorTreeWrapperPass>();
   2075     AU.addPreserved<DominatorTreeWrapperPass>();
   2076     AU.addRequired<PostDominatorTreeWrapperPass>();
   2077     AU.addRequired<MemorySSAWrapperPass>();
   2078     AU.addPreserved<PostDominatorTreeWrapperPass>();
   2079     AU.addPreserved<MemorySSAWrapperPass>();
   2080   }
   2081 };
   2082 
   2083 } // end anonymous namespace
   2084 
   2085 char DSELegacyPass::ID = 0;
   2086 
   2087 INITIALIZE_PASS_BEGIN(DSELegacyPass, "dse", "Dead Store Elimination", false,
   2088                       false)
   2089 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
   2090 INITIALIZE_PASS_DEPENDENCY(PostDominatorTreeWrapperPass)
   2091 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass)
   2092 INITIALIZE_PASS_DEPENDENCY(GlobalsAAWrapperPass)
   2093 INITIALIZE_PASS_DEPENDENCY(MemorySSAWrapperPass)
   2094 INITIALIZE_PASS_DEPENDENCY(MemoryDependenceWrapperPass)
   2095 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
   2096 INITIALIZE_PASS_END(DSELegacyPass, "dse", "Dead Store Elimination", false,
   2097                     false)
   2098 
   2099 FunctionPass *llvm::createDeadStoreEliminationPass() {
   2100   return new DSELegacyPass();
   2101 }
   2102