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      1 //===- GVNHoist.cpp - Hoist scalar and load expressions -------------------===//
      2 //
      3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
      4 // See https://llvm.org/LICENSE.txt for license information.
      5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
      6 //
      7 //===----------------------------------------------------------------------===//
      8 //
      9 // This pass hoists expressions from branches to a common dominator. It uses
     10 // GVN (global value numbering) to discover expressions computing the same
     11 // values. The primary goals of code-hoisting are:
     12 // 1. To reduce the code size.
     13 // 2. In some cases reduce critical path (by exposing more ILP).
     14 //
     15 // The algorithm factors out the reachability of values such that multiple
     16 // queries to find reachability of values are fast. This is based on finding the
     17 // ANTIC points in the CFG which do not change during hoisting. The ANTIC points
     18 // are basically the dominance-frontiers in the inverse graph. So we introduce a
     19 // data structure (CHI nodes) to keep track of values flowing out of a basic
     20 // block. We only do this for values with multiple occurrences in the function
     21 // as they are the potential hoistable candidates. This approach allows us to
     22 // hoist instructions to a basic block with more than two successors, as well as
     23 // deal with infinite loops in a trivial way.
     24 //
     25 // Limitations: This pass does not hoist fully redundant expressions because
     26 // they are already handled by GVN-PRE. It is advisable to run gvn-hoist before
     27 // and after gvn-pre because gvn-pre creates opportunities for more instructions
     28 // to be hoisted.
     29 //
     30 // Hoisting may affect the performance in some cases. To mitigate that, hoisting
     31 // is disabled in the following cases.
     32 // 1. Scalars across calls.
     33 // 2. geps when corresponding load/store cannot be hoisted.
     34 //===----------------------------------------------------------------------===//
     35 
     36 #include "llvm/ADT/DenseMap.h"
     37 #include "llvm/ADT/DenseSet.h"
     38 #include "llvm/ADT/STLExtras.h"
     39 #include "llvm/ADT/SmallPtrSet.h"
     40 #include "llvm/ADT/SmallVector.h"
     41 #include "llvm/ADT/Statistic.h"
     42 #include "llvm/ADT/iterator_range.h"
     43 #include "llvm/Analysis/AliasAnalysis.h"
     44 #include "llvm/Analysis/GlobalsModRef.h"
     45 #include "llvm/Analysis/IteratedDominanceFrontier.h"
     46 #include "llvm/Analysis/MemoryDependenceAnalysis.h"
     47 #include "llvm/Analysis/MemorySSA.h"
     48 #include "llvm/Analysis/MemorySSAUpdater.h"
     49 #include "llvm/Analysis/PostDominators.h"
     50 #include "llvm/Analysis/ValueTracking.h"
     51 #include "llvm/IR/Argument.h"
     52 #include "llvm/IR/BasicBlock.h"
     53 #include "llvm/IR/CFG.h"
     54 #include "llvm/IR/Constants.h"
     55 #include "llvm/IR/Dominators.h"
     56 #include "llvm/IR/Function.h"
     57 #include "llvm/IR/InstrTypes.h"
     58 #include "llvm/IR/Instruction.h"
     59 #include "llvm/IR/Instructions.h"
     60 #include "llvm/IR/IntrinsicInst.h"
     61 #include "llvm/IR/Intrinsics.h"
     62 #include "llvm/IR/LLVMContext.h"
     63 #include "llvm/IR/PassManager.h"
     64 #include "llvm/IR/Use.h"
     65 #include "llvm/IR/User.h"
     66 #include "llvm/IR/Value.h"
     67 #include "llvm/InitializePasses.h"
     68 #include "llvm/Pass.h"
     69 #include "llvm/Support/Casting.h"
     70 #include "llvm/Support/CommandLine.h"
     71 #include "llvm/Support/Debug.h"
     72 #include "llvm/Support/raw_ostream.h"
     73 #include "llvm/Transforms/Scalar.h"
     74 #include "llvm/Transforms/Scalar/GVN.h"
     75 #include "llvm/Transforms/Utils/Local.h"
     76 #include <algorithm>
     77 #include <cassert>
     78 #include <iterator>
     79 #include <memory>
     80 #include <utility>
     81 #include <vector>
     82 
     83 using namespace llvm;
     84 
     85 #define DEBUG_TYPE "gvn-hoist"
     86 
     87 STATISTIC(NumHoisted, "Number of instructions hoisted");
     88 STATISTIC(NumRemoved, "Number of instructions removed");
     89 STATISTIC(NumLoadsHoisted, "Number of loads hoisted");
     90 STATISTIC(NumLoadsRemoved, "Number of loads removed");
     91 STATISTIC(NumStoresHoisted, "Number of stores hoisted");
     92 STATISTIC(NumStoresRemoved, "Number of stores removed");
     93 STATISTIC(NumCallsHoisted, "Number of calls hoisted");
     94 STATISTIC(NumCallsRemoved, "Number of calls removed");
     95 
     96 static cl::opt<int>
     97     MaxHoistedThreshold("gvn-max-hoisted", cl::Hidden, cl::init(-1),
     98                         cl::desc("Max number of instructions to hoist "
     99                                  "(default unlimited = -1)"));
    100 
    101 static cl::opt<int> MaxNumberOfBBSInPath(
    102     "gvn-hoist-max-bbs", cl::Hidden, cl::init(4),
    103     cl::desc("Max number of basic blocks on the path between "
    104              "hoisting locations (default = 4, unlimited = -1)"));
    105 
    106 static cl::opt<int> MaxDepthInBB(
    107     "gvn-hoist-max-depth", cl::Hidden, cl::init(100),
    108     cl::desc("Hoist instructions from the beginning of the BB up to the "
    109              "maximum specified depth (default = 100, unlimited = -1)"));
    110 
    111 static cl::opt<int>
    112     MaxChainLength("gvn-hoist-max-chain-length", cl::Hidden, cl::init(10),
    113                    cl::desc("Maximum length of dependent chains to hoist "
    114                             "(default = 10, unlimited = -1)"));
    115 
    116 namespace llvm {
    117 
    118 using BBSideEffectsSet = DenseMap<const BasicBlock *, bool>;
    119 using SmallVecInsn = SmallVector<Instruction *, 4>;
    120 using SmallVecImplInsn = SmallVectorImpl<Instruction *>;
    121 
    122 // Each element of a hoisting list contains the basic block where to hoist and
    123 // a list of instructions to be hoisted.
    124 using HoistingPointInfo = std::pair<BasicBlock *, SmallVecInsn>;
    125 
    126 using HoistingPointList = SmallVector<HoistingPointInfo, 4>;
    127 
    128 // A map from a pair of VNs to all the instructions with those VNs.
    129 using VNType = std::pair<unsigned, unsigned>;
    130 
    131 using VNtoInsns = DenseMap<VNType, SmallVector<Instruction *, 4>>;
    132 
    133 // CHI keeps information about values flowing out of a basic block.  It is
    134 // similar to PHI but in the inverse graph, and used for outgoing values on each
    135 // edge. For conciseness, it is computed only for instructions with multiple
    136 // occurrences in the CFG because they are the only hoistable candidates.
    137 //     A (CHI[{V, B, I1}, {V, C, I2}]
    138 //  /     \
    139 // /       \
    140 // B(I1)  C (I2)
    141 // The Value number for both I1 and I2 is V, the CHI node will save the
    142 // instruction as well as the edge where the value is flowing to.
    143 struct CHIArg {
    144   VNType VN;
    145 
    146   // Edge destination (shows the direction of flow), may not be where the I is.
    147   BasicBlock *Dest;
    148 
    149   // The instruction (VN) which uses the values flowing out of CHI.
    150   Instruction *I;
    151 
    152   bool operator==(const CHIArg &A) const { return VN == A.VN; }
    153   bool operator!=(const CHIArg &A) const { return !(*this == A); }
    154 };
    155 
    156 using CHIIt = SmallVectorImpl<CHIArg>::iterator;
    157 using CHIArgs = iterator_range<CHIIt>;
    158 using OutValuesType = DenseMap<BasicBlock *, SmallVector<CHIArg, 2>>;
    159 using InValuesType =
    160     DenseMap<BasicBlock *, SmallVector<std::pair<VNType, Instruction *>, 2>>;
    161 
    162 // An invalid value number Used when inserting a single value number into
    163 // VNtoInsns.
    164 enum : unsigned { InvalidVN = ~2U };
    165 
    166 // Records all scalar instructions candidate for code hoisting.
    167 class InsnInfo {
    168   VNtoInsns VNtoScalars;
    169 
    170 public:
    171   // Inserts I and its value number in VNtoScalars.
    172   void insert(Instruction *I, GVN::ValueTable &VN) {
    173     // Scalar instruction.
    174     unsigned V = VN.lookupOrAdd(I);
    175     VNtoScalars[{V, InvalidVN}].push_back(I);
    176   }
    177 
    178   const VNtoInsns &getVNTable() const { return VNtoScalars; }
    179 };
    180 
    181 // Records all load instructions candidate for code hoisting.
    182 class LoadInfo {
    183   VNtoInsns VNtoLoads;
    184 
    185 public:
    186   // Insert Load and the value number of its memory address in VNtoLoads.
    187   void insert(LoadInst *Load, GVN::ValueTable &VN) {
    188     if (Load->isSimple()) {
    189       unsigned V = VN.lookupOrAdd(Load->getPointerOperand());
    190       VNtoLoads[{V, InvalidVN}].push_back(Load);
    191     }
    192   }
    193 
    194   const VNtoInsns &getVNTable() const { return VNtoLoads; }
    195 };
    196 
    197 // Records all store instructions candidate for code hoisting.
    198 class StoreInfo {
    199   VNtoInsns VNtoStores;
    200 
    201 public:
    202   // Insert the Store and a hash number of the store address and the stored
    203   // value in VNtoStores.
    204   void insert(StoreInst *Store, GVN::ValueTable &VN) {
    205     if (!Store->isSimple())
    206       return;
    207     // Hash the store address and the stored value.
    208     Value *Ptr = Store->getPointerOperand();
    209     Value *Val = Store->getValueOperand();
    210     VNtoStores[{VN.lookupOrAdd(Ptr), VN.lookupOrAdd(Val)}].push_back(Store);
    211   }
    212 
    213   const VNtoInsns &getVNTable() const { return VNtoStores; }
    214 };
    215 
    216 // Records all call instructions candidate for code hoisting.
    217 class CallInfo {
    218   VNtoInsns VNtoCallsScalars;
    219   VNtoInsns VNtoCallsLoads;
    220   VNtoInsns VNtoCallsStores;
    221 
    222 public:
    223   // Insert Call and its value numbering in one of the VNtoCalls* containers.
    224   void insert(CallInst *Call, GVN::ValueTable &VN) {
    225     // A call that doesNotAccessMemory is handled as a Scalar,
    226     // onlyReadsMemory will be handled as a Load instruction,
    227     // all other calls will be handled as stores.
    228     unsigned V = VN.lookupOrAdd(Call);
    229     auto Entry = std::make_pair(V, InvalidVN);
    230 
    231     if (Call->doesNotAccessMemory())
    232       VNtoCallsScalars[Entry].push_back(Call);
    233     else if (Call->onlyReadsMemory())
    234       VNtoCallsLoads[Entry].push_back(Call);
    235     else
    236       VNtoCallsStores[Entry].push_back(Call);
    237   }
    238 
    239   const VNtoInsns &getScalarVNTable() const { return VNtoCallsScalars; }
    240   const VNtoInsns &getLoadVNTable() const { return VNtoCallsLoads; }
    241   const VNtoInsns &getStoreVNTable() const { return VNtoCallsStores; }
    242 };
    243 
    244 static void combineKnownMetadata(Instruction *ReplInst, Instruction *I) {
    245   static const unsigned KnownIDs[] = {LLVMContext::MD_tbaa,
    246                                       LLVMContext::MD_alias_scope,
    247                                       LLVMContext::MD_noalias,
    248                                       LLVMContext::MD_range,
    249                                       LLVMContext::MD_fpmath,
    250                                       LLVMContext::MD_invariant_load,
    251                                       LLVMContext::MD_invariant_group,
    252                                       LLVMContext::MD_access_group};
    253   combineMetadata(ReplInst, I, KnownIDs, true);
    254 }
    255 
    256 // This pass hoists common computations across branches sharing common
    257 // dominator. The primary goal is to reduce the code size, and in some
    258 // cases reduce critical path (by exposing more ILP).
    259 class GVNHoist {
    260 public:
    261   GVNHoist(DominatorTree *DT, PostDominatorTree *PDT, AliasAnalysis *AA,
    262            MemoryDependenceResults *MD, MemorySSA *MSSA)
    263       : DT(DT), PDT(PDT), AA(AA), MD(MD), MSSA(MSSA),
    264         MSSAUpdater(std::make_unique<MemorySSAUpdater>(MSSA)) {}
    265 
    266   bool run(Function &F);
    267 
    268   // Copied from NewGVN.cpp
    269   // This function provides global ranking of operations so that we can place
    270   // them in a canonical order.  Note that rank alone is not necessarily enough
    271   // for a complete ordering, as constants all have the same rank.  However,
    272   // generally, we will simplify an operation with all constants so that it
    273   // doesn't matter what order they appear in.
    274   unsigned int rank(const Value *V) const;
    275 
    276 private:
    277   GVN::ValueTable VN;
    278   DominatorTree *DT;
    279   PostDominatorTree *PDT;
    280   AliasAnalysis *AA;
    281   MemoryDependenceResults *MD;
    282   MemorySSA *MSSA;
    283   std::unique_ptr<MemorySSAUpdater> MSSAUpdater;
    284   DenseMap<const Value *, unsigned> DFSNumber;
    285   BBSideEffectsSet BBSideEffects;
    286   DenseSet<const BasicBlock *> HoistBarrier;
    287   SmallVector<BasicBlock *, 32> IDFBlocks;
    288   unsigned NumFuncArgs;
    289   const bool HoistingGeps = false;
    290 
    291   enum InsKind { Unknown, Scalar, Load, Store };
    292 
    293   // Return true when there are exception handling in BB.
    294   bool hasEH(const BasicBlock *BB);
    295 
    296   // Return true when I1 appears before I2 in the instructions of BB.
    297   bool firstInBB(const Instruction *I1, const Instruction *I2) {
    298     assert(I1->getParent() == I2->getParent());
    299     unsigned I1DFS = DFSNumber.lookup(I1);
    300     unsigned I2DFS = DFSNumber.lookup(I2);
    301     assert(I1DFS && I2DFS);
    302     return I1DFS < I2DFS;
    303   }
    304 
    305   // Return true when there are memory uses of Def in BB.
    306   bool hasMemoryUse(const Instruction *NewPt, MemoryDef *Def,
    307                     const BasicBlock *BB);
    308 
    309   bool hasEHhelper(const BasicBlock *BB, const BasicBlock *SrcBB,
    310                    int &NBBsOnAllPaths);
    311 
    312   // Return true when there are exception handling or loads of memory Def
    313   // between Def and NewPt.  This function is only called for stores: Def is
    314   // the MemoryDef of the store to be hoisted.
    315 
    316   // Decrement by 1 NBBsOnAllPaths for each block between HoistPt and BB, and
    317   // return true when the counter NBBsOnAllPaths reaces 0, except when it is
    318   // initialized to -1 which is unlimited.
    319   bool hasEHOrLoadsOnPath(const Instruction *NewPt, MemoryDef *Def,
    320                           int &NBBsOnAllPaths);
    321 
    322   // Return true when there are exception handling between HoistPt and BB.
    323   // Decrement by 1 NBBsOnAllPaths for each block between HoistPt and BB, and
    324   // return true when the counter NBBsOnAllPaths reaches 0, except when it is
    325   // initialized to -1 which is unlimited.
    326   bool hasEHOnPath(const BasicBlock *HoistPt, const BasicBlock *SrcBB,
    327                    int &NBBsOnAllPaths);
    328 
    329   // Return true when it is safe to hoist a memory load or store U from OldPt
    330   // to NewPt.
    331   bool safeToHoistLdSt(const Instruction *NewPt, const Instruction *OldPt,
    332                        MemoryUseOrDef *U, InsKind K, int &NBBsOnAllPaths);
    333 
    334   // Return true when it is safe to hoist scalar instructions from all blocks in
    335   // WL to HoistBB.
    336   bool safeToHoistScalar(const BasicBlock *HoistBB, const BasicBlock *BB,
    337                          int &NBBsOnAllPaths) {
    338     return !hasEHOnPath(HoistBB, BB, NBBsOnAllPaths);
    339   }
    340 
    341   // In the inverse CFG, the dominance frontier of basic block (BB) is the
    342   // point where ANTIC needs to be computed for instructions which are going
    343   // to be hoisted. Since this point does not change during gvn-hoist,
    344   // we compute it only once (on demand).
    345   // The ides is inspired from:
    346   // "Partial Redundancy Elimination in SSA Form"
    347   // ROBERT KENNEDY, SUN CHAN, SHIN-MING LIU, RAYMOND LO, PENG TU and FRED CHOW
    348   // They use similar idea in the forward graph to find fully redundant and
    349   // partially redundant expressions, here it is used in the inverse graph to
    350   // find fully anticipable instructions at merge point (post-dominator in
    351   // the inverse CFG).
    352   // Returns the edge via which an instruction in BB will get the values from.
    353 
    354   // Returns true when the values are flowing out to each edge.
    355   bool valueAnticipable(CHIArgs C, Instruction *TI) const;
    356 
    357   // Check if it is safe to hoist values tracked by CHI in the range
    358   // [Begin, End) and accumulate them in Safe.
    359   void checkSafety(CHIArgs C, BasicBlock *BB, InsKind K,
    360                    SmallVectorImpl<CHIArg> &Safe);
    361 
    362   using RenameStackType = DenseMap<VNType, SmallVector<Instruction *, 2>>;
    363 
    364   // Push all the VNs corresponding to BB into RenameStack.
    365   void fillRenameStack(BasicBlock *BB, InValuesType &ValueBBs,
    366                        RenameStackType &RenameStack);
    367 
    368   void fillChiArgs(BasicBlock *BB, OutValuesType &CHIBBs,
    369                    RenameStackType &RenameStack);
    370 
    371   // Walk the post-dominator tree top-down and use a stack for each value to
    372   // store the last value you see. When you hit a CHI from a given edge, the
    373   // value to use as the argument is at the top of the stack, add the value to
    374   // CHI and pop.
    375   void insertCHI(InValuesType &ValueBBs, OutValuesType &CHIBBs) {
    376     auto Root = PDT->getNode(nullptr);
    377     if (!Root)
    378       return;
    379     // Depth first walk on PDom tree to fill the CHIargs at each PDF.
    380     RenameStackType RenameStack;
    381     for (auto Node : depth_first(Root)) {
    382       BasicBlock *BB = Node->getBlock();
    383       if (!BB)
    384         continue;
    385 
    386       // Collect all values in BB and push to stack.
    387       fillRenameStack(BB, ValueBBs, RenameStack);
    388 
    389       // Fill outgoing values in each CHI corresponding to BB.
    390       fillChiArgs(BB, CHIBBs, RenameStack);
    391     }
    392   }
    393 
    394   // Walk all the CHI-nodes to find ones which have a empty-entry and remove
    395   // them Then collect all the instructions which are safe to hoist and see if
    396   // they form a list of anticipable values. OutValues contains CHIs
    397   // corresponding to each basic block.
    398   void findHoistableCandidates(OutValuesType &CHIBBs, InsKind K,
    399                                HoistingPointList &HPL);
    400 
    401   // Compute insertion points for each values which can be fully anticipated at
    402   // a dominator. HPL contains all such values.
    403   void computeInsertionPoints(const VNtoInsns &Map, HoistingPointList &HPL,
    404                               InsKind K) {
    405     // Sort VNs based on their rankings
    406     std::vector<VNType> Ranks;
    407     for (const auto &Entry : Map) {
    408       Ranks.push_back(Entry.first);
    409     }
    410 
    411     // TODO: Remove fully-redundant expressions.
    412     // Get instruction from the Map, assume that all the Instructions
    413     // with same VNs have same rank (this is an approximation).
    414     llvm::sort(Ranks, [this, &Map](const VNType &r1, const VNType &r2) {
    415       return (rank(*Map.lookup(r1).begin()) < rank(*Map.lookup(r2).begin()));
    416     });
    417 
    418     // - Sort VNs according to their rank, and start with lowest ranked VN
    419     // - Take a VN and for each instruction with same VN
    420     //   - Find the dominance frontier in the inverse graph (PDF)
    421     //   - Insert the chi-node at PDF
    422     // - Remove the chi-nodes with missing entries
    423     // - Remove values from CHI-nodes which do not truly flow out, e.g.,
    424     //   modified along the path.
    425     // - Collect the remaining values that are still anticipable
    426     SmallVector<BasicBlock *, 2> IDFBlocks;
    427     ReverseIDFCalculator IDFs(*PDT);
    428     OutValuesType OutValue;
    429     InValuesType InValue;
    430     for (const auto &R : Ranks) {
    431       const SmallVecInsn &V = Map.lookup(R);
    432       if (V.size() < 2)
    433         continue;
    434       const VNType &VN = R;
    435       SmallPtrSet<BasicBlock *, 2> VNBlocks;
    436       for (auto &I : V) {
    437         BasicBlock *BBI = I->getParent();
    438         if (!hasEH(BBI))
    439           VNBlocks.insert(BBI);
    440       }
    441       // Compute the Post Dominance Frontiers of each basic block
    442       // The dominance frontier of a live block X in the reverse
    443       // control graph is the set of blocks upon which X is control
    444       // dependent. The following sequence computes the set of blocks
    445       // which currently have dead terminators that are control
    446       // dependence sources of a block which is in NewLiveBlocks.
    447       IDFs.setDefiningBlocks(VNBlocks);
    448       IDFBlocks.clear();
    449       IDFs.calculate(IDFBlocks);
    450 
    451       // Make a map of BB vs instructions to be hoisted.
    452       for (unsigned i = 0; i < V.size(); ++i) {
    453         InValue[V[i]->getParent()].push_back(std::make_pair(VN, V[i]));
    454       }
    455       // Insert empty CHI node for this VN. This is used to factor out
    456       // basic blocks where the ANTIC can potentially change.
    457       CHIArg EmptyChi = {VN, nullptr, nullptr};
    458       for (auto *IDFBB : IDFBlocks) {
    459         for (unsigned i = 0; i < V.size(); ++i) {
    460           // Ignore spurious PDFs.
    461           if (DT->properlyDominates(IDFBB, V[i]->getParent())) {
    462             OutValue[IDFBB].push_back(EmptyChi);
    463             LLVM_DEBUG(dbgs() << "\nInserting a CHI for BB: "
    464                               << IDFBB->getName() << ", for Insn: " << *V[i]);
    465           }
    466         }
    467       }
    468     }
    469 
    470     // Insert CHI args at each PDF to iterate on factored graph of
    471     // control dependence.
    472     insertCHI(InValue, OutValue);
    473     // Using the CHI args inserted at each PDF, find fully anticipable values.
    474     findHoistableCandidates(OutValue, K, HPL);
    475   }
    476 
    477   // Return true when all operands of Instr are available at insertion point
    478   // HoistPt. When limiting the number of hoisted expressions, one could hoist
    479   // a load without hoisting its access function. So before hoisting any
    480   // expression, make sure that all its operands are available at insert point.
    481   bool allOperandsAvailable(const Instruction *I,
    482                             const BasicBlock *HoistPt) const;
    483 
    484   // Same as allOperandsAvailable with recursive check for GEP operands.
    485   bool allGepOperandsAvailable(const Instruction *I,
    486                                const BasicBlock *HoistPt) const;
    487 
    488   // Make all operands of the GEP available.
    489   void makeGepsAvailable(Instruction *Repl, BasicBlock *HoistPt,
    490                          const SmallVecInsn &InstructionsToHoist,
    491                          Instruction *Gep) const;
    492 
    493   void updateAlignment(Instruction *I, Instruction *Repl);
    494 
    495   // Remove all the instructions in Candidates and replace their usage with
    496   // Repl. Returns the number of instructions removed.
    497   unsigned rauw(const SmallVecInsn &Candidates, Instruction *Repl,
    498                 MemoryUseOrDef *NewMemAcc);
    499 
    500   // Replace all Memory PHI usage with NewMemAcc.
    501   void raMPHIuw(MemoryUseOrDef *NewMemAcc);
    502 
    503   // Remove all other instructions and replace them with Repl.
    504   unsigned removeAndReplace(const SmallVecInsn &Candidates, Instruction *Repl,
    505                             BasicBlock *DestBB, bool MoveAccess);
    506 
    507   // In the case Repl is a load or a store, we make all their GEPs
    508   // available: GEPs are not hoisted by default to avoid the address
    509   // computations to be hoisted without the associated load or store.
    510   bool makeGepOperandsAvailable(Instruction *Repl, BasicBlock *HoistPt,
    511                                 const SmallVecInsn &InstructionsToHoist) const;
    512 
    513   std::pair<unsigned, unsigned> hoist(HoistingPointList &HPL);
    514 
    515   // Hoist all expressions. Returns Number of scalars hoisted
    516   // and number of non-scalars hoisted.
    517   std::pair<unsigned, unsigned> hoistExpressions(Function &F);
    518 };
    519 
    520 class GVNHoistLegacyPass : public FunctionPass {
    521 public:
    522   static char ID;
    523 
    524   GVNHoistLegacyPass() : FunctionPass(ID) {
    525     initializeGVNHoistLegacyPassPass(*PassRegistry::getPassRegistry());
    526   }
    527 
    528   bool runOnFunction(Function &F) override {
    529     if (skipFunction(F))
    530       return false;
    531     auto &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree();
    532     auto &PDT = getAnalysis<PostDominatorTreeWrapperPass>().getPostDomTree();
    533     auto &AA = getAnalysis<AAResultsWrapperPass>().getAAResults();
    534     auto &MD = getAnalysis<MemoryDependenceWrapperPass>().getMemDep();
    535     auto &MSSA = getAnalysis<MemorySSAWrapperPass>().getMSSA();
    536 
    537     GVNHoist G(&DT, &PDT, &AA, &MD, &MSSA);
    538     return G.run(F);
    539   }
    540 
    541   void getAnalysisUsage(AnalysisUsage &AU) const override {
    542     AU.addRequired<DominatorTreeWrapperPass>();
    543     AU.addRequired<PostDominatorTreeWrapperPass>();
    544     AU.addRequired<AAResultsWrapperPass>();
    545     AU.addRequired<MemoryDependenceWrapperPass>();
    546     AU.addRequired<MemorySSAWrapperPass>();
    547     AU.addPreserved<DominatorTreeWrapperPass>();
    548     AU.addPreserved<MemorySSAWrapperPass>();
    549     AU.addPreserved<GlobalsAAWrapperPass>();
    550   }
    551 };
    552 
    553 bool GVNHoist::run(Function &F) {
    554   NumFuncArgs = F.arg_size();
    555   VN.setDomTree(DT);
    556   VN.setAliasAnalysis(AA);
    557   VN.setMemDep(MD);
    558   bool Res = false;
    559   // Perform DFS Numbering of instructions.
    560   unsigned BBI = 0;
    561   for (const BasicBlock *BB : depth_first(&F.getEntryBlock())) {
    562     DFSNumber[BB] = ++BBI;
    563     unsigned I = 0;
    564     for (auto &Inst : *BB)
    565       DFSNumber[&Inst] = ++I;
    566   }
    567 
    568   int ChainLength = 0;
    569 
    570   // FIXME: use lazy evaluation of VN to avoid the fix-point computation.
    571   while (true) {
    572     if (MaxChainLength != -1 && ++ChainLength >= MaxChainLength)
    573       return Res;
    574 
    575     auto HoistStat = hoistExpressions(F);
    576     if (HoistStat.first + HoistStat.second == 0)
    577       return Res;
    578 
    579     if (HoistStat.second > 0)
    580       // To address a limitation of the current GVN, we need to rerun the
    581       // hoisting after we hoisted loads or stores in order to be able to
    582       // hoist all scalars dependent on the hoisted ld/st.
    583       VN.clear();
    584 
    585     Res = true;
    586   }
    587 
    588   return Res;
    589 }
    590 
    591 unsigned int GVNHoist::rank(const Value *V) const {
    592   // Prefer constants to undef to anything else
    593   // Undef is a constant, have to check it first.
    594   // Prefer smaller constants to constantexprs
    595   if (isa<ConstantExpr>(V))
    596     return 2;
    597   if (isa<UndefValue>(V))
    598     return 1;
    599   if (isa<Constant>(V))
    600     return 0;
    601   else if (auto *A = dyn_cast<Argument>(V))
    602     return 3 + A->getArgNo();
    603 
    604   // Need to shift the instruction DFS by number of arguments + 3 to account
    605   // for the constant and argument ranking above.
    606   auto Result = DFSNumber.lookup(V);
    607   if (Result > 0)
    608     return 4 + NumFuncArgs + Result;
    609   // Unreachable or something else, just return a really large number.
    610   return ~0;
    611 }
    612 
    613 bool GVNHoist::hasEH(const BasicBlock *BB) {
    614   auto It = BBSideEffects.find(BB);
    615   if (It != BBSideEffects.end())
    616     return It->second;
    617 
    618   if (BB->isEHPad() || BB->hasAddressTaken()) {
    619     BBSideEffects[BB] = true;
    620     return true;
    621   }
    622 
    623   if (BB->getTerminator()->mayThrow()) {
    624     BBSideEffects[BB] = true;
    625     return true;
    626   }
    627 
    628   BBSideEffects[BB] = false;
    629   return false;
    630 }
    631 
    632 bool GVNHoist::hasMemoryUse(const Instruction *NewPt, MemoryDef *Def,
    633                             const BasicBlock *BB) {
    634   const MemorySSA::AccessList *Acc = MSSA->getBlockAccesses(BB);
    635   if (!Acc)
    636     return false;
    637 
    638   Instruction *OldPt = Def->getMemoryInst();
    639   const BasicBlock *OldBB = OldPt->getParent();
    640   const BasicBlock *NewBB = NewPt->getParent();
    641   bool ReachedNewPt = false;
    642 
    643   for (const MemoryAccess &MA : *Acc)
    644     if (const MemoryUse *MU = dyn_cast<MemoryUse>(&MA)) {
    645       Instruction *Insn = MU->getMemoryInst();
    646 
    647       // Do not check whether MU aliases Def when MU occurs after OldPt.
    648       if (BB == OldBB && firstInBB(OldPt, Insn))
    649         break;
    650 
    651       // Do not check whether MU aliases Def when MU occurs before NewPt.
    652       if (BB == NewBB) {
    653         if (!ReachedNewPt) {
    654           if (firstInBB(Insn, NewPt))
    655             continue;
    656           ReachedNewPt = true;
    657         }
    658       }
    659       if (MemorySSAUtil::defClobbersUseOrDef(Def, MU, *AA))
    660         return true;
    661     }
    662 
    663   return false;
    664 }
    665 
    666 bool GVNHoist::hasEHhelper(const BasicBlock *BB, const BasicBlock *SrcBB,
    667                            int &NBBsOnAllPaths) {
    668   // Stop walk once the limit is reached.
    669   if (NBBsOnAllPaths == 0)
    670     return true;
    671 
    672   // Impossible to hoist with exceptions on the path.
    673   if (hasEH(BB))
    674     return true;
    675 
    676   // No such instruction after HoistBarrier in a basic block was
    677   // selected for hoisting so instructions selected within basic block with
    678   // a hoist barrier can be hoisted.
    679   if ((BB != SrcBB) && HoistBarrier.count(BB))
    680     return true;
    681 
    682   return false;
    683 }
    684 
    685 bool GVNHoist::hasEHOrLoadsOnPath(const Instruction *NewPt, MemoryDef *Def,
    686                                   int &NBBsOnAllPaths) {
    687   const BasicBlock *NewBB = NewPt->getParent();
    688   const BasicBlock *OldBB = Def->getBlock();
    689   assert(DT->dominates(NewBB, OldBB) && "invalid path");
    690   assert(DT->dominates(Def->getDefiningAccess()->getBlock(), NewBB) &&
    691          "def does not dominate new hoisting point");
    692 
    693   // Walk all basic blocks reachable in depth-first iteration on the inverse
    694   // CFG from OldBB to NewBB. These blocks are all the blocks that may be
    695   // executed between the execution of NewBB and OldBB. Hoisting an expression
    696   // from OldBB into NewBB has to be safe on all execution paths.
    697   for (auto I = idf_begin(OldBB), E = idf_end(OldBB); I != E;) {
    698     const BasicBlock *BB = *I;
    699     if (BB == NewBB) {
    700       // Stop traversal when reaching HoistPt.
    701       I.skipChildren();
    702       continue;
    703     }
    704 
    705     if (hasEHhelper(BB, OldBB, NBBsOnAllPaths))
    706       return true;
    707 
    708     // Check that we do not move a store past loads.
    709     if (hasMemoryUse(NewPt, Def, BB))
    710       return true;
    711 
    712     // -1 is unlimited number of blocks on all paths.
    713     if (NBBsOnAllPaths != -1)
    714       --NBBsOnAllPaths;
    715 
    716     ++I;
    717   }
    718 
    719   return false;
    720 }
    721 
    722 bool GVNHoist::hasEHOnPath(const BasicBlock *HoistPt, const BasicBlock *SrcBB,
    723                            int &NBBsOnAllPaths) {
    724   assert(DT->dominates(HoistPt, SrcBB) && "Invalid path");
    725 
    726   // Walk all basic blocks reachable in depth-first iteration on
    727   // the inverse CFG from BBInsn to NewHoistPt. These blocks are all the
    728   // blocks that may be executed between the execution of NewHoistPt and
    729   // BBInsn. Hoisting an expression from BBInsn into NewHoistPt has to be safe
    730   // on all execution paths.
    731   for (auto I = idf_begin(SrcBB), E = idf_end(SrcBB); I != E;) {
    732     const BasicBlock *BB = *I;
    733     if (BB == HoistPt) {
    734       // Stop traversal when reaching NewHoistPt.
    735       I.skipChildren();
    736       continue;
    737     }
    738 
    739     if (hasEHhelper(BB, SrcBB, NBBsOnAllPaths))
    740       return true;
    741 
    742     // -1 is unlimited number of blocks on all paths.
    743     if (NBBsOnAllPaths != -1)
    744       --NBBsOnAllPaths;
    745 
    746     ++I;
    747   }
    748 
    749   return false;
    750 }
    751 
    752 bool GVNHoist::safeToHoistLdSt(const Instruction *NewPt,
    753                                const Instruction *OldPt, MemoryUseOrDef *U,
    754                                GVNHoist::InsKind K, int &NBBsOnAllPaths) {
    755   // In place hoisting is safe.
    756   if (NewPt == OldPt)
    757     return true;
    758 
    759   const BasicBlock *NewBB = NewPt->getParent();
    760   const BasicBlock *OldBB = OldPt->getParent();
    761   const BasicBlock *UBB = U->getBlock();
    762 
    763   // Check for dependences on the Memory SSA.
    764   MemoryAccess *D = U->getDefiningAccess();
    765   BasicBlock *DBB = D->getBlock();
    766   if (DT->properlyDominates(NewBB, DBB))
    767     // Cannot move the load or store to NewBB above its definition in DBB.
    768     return false;
    769 
    770   if (NewBB == DBB && !MSSA->isLiveOnEntryDef(D))
    771     if (auto *UD = dyn_cast<MemoryUseOrDef>(D))
    772       if (!firstInBB(UD->getMemoryInst(), NewPt))
    773         // Cannot move the load or store to NewPt above its definition in D.
    774         return false;
    775 
    776   // Check for unsafe hoistings due to side effects.
    777   if (K == InsKind::Store) {
    778     if (hasEHOrLoadsOnPath(NewPt, cast<MemoryDef>(U), NBBsOnAllPaths))
    779       return false;
    780   } else if (hasEHOnPath(NewBB, OldBB, NBBsOnAllPaths))
    781     return false;
    782 
    783   if (UBB == NewBB) {
    784     if (DT->properlyDominates(DBB, NewBB))
    785       return true;
    786     assert(UBB == DBB);
    787     assert(MSSA->locallyDominates(D, U));
    788   }
    789 
    790   // No side effects: it is safe to hoist.
    791   return true;
    792 }
    793 
    794 bool GVNHoist::valueAnticipable(CHIArgs C, Instruction *TI) const {
    795   if (TI->getNumSuccessors() > (unsigned)size(C))
    796     return false; // Not enough args in this CHI.
    797 
    798   for (auto CHI : C) {
    799     // Find if all the edges have values flowing out of BB.
    800     if (!llvm::is_contained(successors(TI), CHI.Dest))
    801       return false;
    802   }
    803   return true;
    804 }
    805 
    806 void GVNHoist::checkSafety(CHIArgs C, BasicBlock *BB, GVNHoist::InsKind K,
    807                            SmallVectorImpl<CHIArg> &Safe) {
    808   int NumBBsOnAllPaths = MaxNumberOfBBSInPath;
    809   for (auto CHI : C) {
    810     Instruction *Insn = CHI.I;
    811     if (!Insn) // No instruction was inserted in this CHI.
    812       continue;
    813     if (K == InsKind::Scalar) {
    814       if (safeToHoistScalar(BB, Insn->getParent(), NumBBsOnAllPaths))
    815         Safe.push_back(CHI);
    816     } else {
    817       auto *T = BB->getTerminator();
    818       if (MemoryUseOrDef *UD = MSSA->getMemoryAccess(Insn))
    819         if (safeToHoistLdSt(T, Insn, UD, K, NumBBsOnAllPaths))
    820           Safe.push_back(CHI);
    821     }
    822   }
    823 }
    824 
    825 void GVNHoist::fillRenameStack(BasicBlock *BB, InValuesType &ValueBBs,
    826                                GVNHoist::RenameStackType &RenameStack) {
    827   auto it1 = ValueBBs.find(BB);
    828   if (it1 != ValueBBs.end()) {
    829     // Iterate in reverse order to keep lower ranked values on the top.
    830     for (std::pair<VNType, Instruction *> &VI : reverse(it1->second)) {
    831       // Get the value of instruction I
    832       LLVM_DEBUG(dbgs() << "\nPushing on stack: " << *VI.second);
    833       RenameStack[VI.first].push_back(VI.second);
    834     }
    835   }
    836 }
    837 
    838 void GVNHoist::fillChiArgs(BasicBlock *BB, OutValuesType &CHIBBs,
    839                            GVNHoist::RenameStackType &RenameStack) {
    840   // For each *predecessor* (because Post-DOM) of BB check if it has a CHI
    841   for (auto Pred : predecessors(BB)) {
    842     auto P = CHIBBs.find(Pred);
    843     if (P == CHIBBs.end()) {
    844       continue;
    845     }
    846     LLVM_DEBUG(dbgs() << "\nLooking at CHIs in: " << Pred->getName(););
    847     // A CHI is found (BB -> Pred is an edge in the CFG)
    848     // Pop the stack until Top(V) = Ve.
    849     auto &VCHI = P->second;
    850     for (auto It = VCHI.begin(), E = VCHI.end(); It != E;) {
    851       CHIArg &C = *It;
    852       if (!C.Dest) {
    853         auto si = RenameStack.find(C.VN);
    854         // The Basic Block where CHI is must dominate the value we want to
    855         // track in a CHI. In the PDom walk, there can be values in the
    856         // stack which are not control dependent e.g., nested loop.
    857         if (si != RenameStack.end() && si->second.size() &&
    858             DT->properlyDominates(Pred, si->second.back()->getParent())) {
    859           C.Dest = BB;                     // Assign the edge
    860           C.I = si->second.pop_back_val(); // Assign the argument
    861           LLVM_DEBUG(dbgs()
    862                      << "\nCHI Inserted in BB: " << C.Dest->getName() << *C.I
    863                      << ", VN: " << C.VN.first << ", " << C.VN.second);
    864         }
    865         // Move to next CHI of a different value
    866         It = std::find_if(It, VCHI.end(), [It](CHIArg &A) { return A != *It; });
    867       } else
    868         ++It;
    869     }
    870   }
    871 }
    872 
    873 void GVNHoist::findHoistableCandidates(OutValuesType &CHIBBs,
    874                                        GVNHoist::InsKind K,
    875                                        HoistingPointList &HPL) {
    876   auto cmpVN = [](const CHIArg &A, const CHIArg &B) { return A.VN < B.VN; };
    877 
    878   // CHIArgs now have the outgoing values, so check for anticipability and
    879   // accumulate hoistable candidates in HPL.
    880   for (std::pair<BasicBlock *, SmallVector<CHIArg, 2>> &A : CHIBBs) {
    881     BasicBlock *BB = A.first;
    882     SmallVectorImpl<CHIArg> &CHIs = A.second;
    883     // Vector of PHIs contains PHIs for different instructions.
    884     // Sort the args according to their VNs, such that identical
    885     // instructions are together.
    886     llvm::stable_sort(CHIs, cmpVN);
    887     auto TI = BB->getTerminator();
    888     auto B = CHIs.begin();
    889     // [PreIt, PHIIt) form a range of CHIs which have identical VNs.
    890     auto PHIIt = llvm::find_if(CHIs, [B](CHIArg &A) { return A != *B; });
    891     auto PrevIt = CHIs.begin();
    892     while (PrevIt != PHIIt) {
    893       // Collect values which satisfy safety checks.
    894       SmallVector<CHIArg, 2> Safe;
    895       // We check for safety first because there might be multiple values in
    896       // the same path, some of which are not safe to be hoisted, but overall
    897       // each edge has at least one value which can be hoisted, making the
    898       // value anticipable along that path.
    899       checkSafety(make_range(PrevIt, PHIIt), BB, K, Safe);
    900 
    901       // List of safe values should be anticipable at TI.
    902       if (valueAnticipable(make_range(Safe.begin(), Safe.end()), TI)) {
    903         HPL.push_back({BB, SmallVecInsn()});
    904         SmallVecInsn &V = HPL.back().second;
    905         for (auto B : Safe)
    906           V.push_back(B.I);
    907       }
    908 
    909       // Check other VNs
    910       PrevIt = PHIIt;
    911       PHIIt = std::find_if(PrevIt, CHIs.end(),
    912                            [PrevIt](CHIArg &A) { return A != *PrevIt; });
    913     }
    914   }
    915 }
    916 
    917 bool GVNHoist::allOperandsAvailable(const Instruction *I,
    918                                     const BasicBlock *HoistPt) const {
    919   for (const Use &Op : I->operands())
    920     if (const auto *Inst = dyn_cast<Instruction>(&Op))
    921       if (!DT->dominates(Inst->getParent(), HoistPt))
    922         return false;
    923 
    924   return true;
    925 }
    926 
    927 bool GVNHoist::allGepOperandsAvailable(const Instruction *I,
    928                                        const BasicBlock *HoistPt) const {
    929   for (const Use &Op : I->operands())
    930     if (const auto *Inst = dyn_cast<Instruction>(&Op))
    931       if (!DT->dominates(Inst->getParent(), HoistPt)) {
    932         if (const GetElementPtrInst *GepOp =
    933                 dyn_cast<GetElementPtrInst>(Inst)) {
    934           if (!allGepOperandsAvailable(GepOp, HoistPt))
    935             return false;
    936           // Gep is available if all operands of GepOp are available.
    937         } else {
    938           // Gep is not available if it has operands other than GEPs that are
    939           // defined in blocks not dominating HoistPt.
    940           return false;
    941         }
    942       }
    943   return true;
    944 }
    945 
    946 void GVNHoist::makeGepsAvailable(Instruction *Repl, BasicBlock *HoistPt,
    947                                  const SmallVecInsn &InstructionsToHoist,
    948                                  Instruction *Gep) const {
    949   assert(allGepOperandsAvailable(Gep, HoistPt) && "GEP operands not available");
    950 
    951   Instruction *ClonedGep = Gep->clone();
    952   for (unsigned i = 0, e = Gep->getNumOperands(); i != e; ++i)
    953     if (Instruction *Op = dyn_cast<Instruction>(Gep->getOperand(i))) {
    954       // Check whether the operand is already available.
    955       if (DT->dominates(Op->getParent(), HoistPt))
    956         continue;
    957 
    958       // As a GEP can refer to other GEPs, recursively make all the operands
    959       // of this GEP available at HoistPt.
    960       if (GetElementPtrInst *GepOp = dyn_cast<GetElementPtrInst>(Op))
    961         makeGepsAvailable(ClonedGep, HoistPt, InstructionsToHoist, GepOp);
    962     }
    963 
    964   // Copy Gep and replace its uses in Repl with ClonedGep.
    965   ClonedGep->insertBefore(HoistPt->getTerminator());
    966 
    967   // Conservatively discard any optimization hints, they may differ on the
    968   // other paths.
    969   ClonedGep->dropUnknownNonDebugMetadata();
    970 
    971   // If we have optimization hints which agree with each other along different
    972   // paths, preserve them.
    973   for (const Instruction *OtherInst : InstructionsToHoist) {
    974     const GetElementPtrInst *OtherGep;
    975     if (auto *OtherLd = dyn_cast<LoadInst>(OtherInst))
    976       OtherGep = cast<GetElementPtrInst>(OtherLd->getPointerOperand());
    977     else
    978       OtherGep = cast<GetElementPtrInst>(
    979           cast<StoreInst>(OtherInst)->getPointerOperand());
    980     ClonedGep->andIRFlags(OtherGep);
    981   }
    982 
    983   // Replace uses of Gep with ClonedGep in Repl.
    984   Repl->replaceUsesOfWith(Gep, ClonedGep);
    985 }
    986 
    987 void GVNHoist::updateAlignment(Instruction *I, Instruction *Repl) {
    988   if (auto *ReplacementLoad = dyn_cast<LoadInst>(Repl)) {
    989     ReplacementLoad->setAlignment(
    990         std::min(ReplacementLoad->getAlign(), cast<LoadInst>(I)->getAlign()));
    991     ++NumLoadsRemoved;
    992   } else if (auto *ReplacementStore = dyn_cast<StoreInst>(Repl)) {
    993     ReplacementStore->setAlignment(
    994         std::min(ReplacementStore->getAlign(), cast<StoreInst>(I)->getAlign()));
    995     ++NumStoresRemoved;
    996   } else if (auto *ReplacementAlloca = dyn_cast<AllocaInst>(Repl)) {
    997     ReplacementAlloca->setAlignment(std::max(ReplacementAlloca->getAlign(),
    998                                              cast<AllocaInst>(I)->getAlign()));
    999   } else if (isa<CallInst>(Repl)) {
   1000     ++NumCallsRemoved;
   1001   }
   1002 }
   1003 
   1004 unsigned GVNHoist::rauw(const SmallVecInsn &Candidates, Instruction *Repl,
   1005                         MemoryUseOrDef *NewMemAcc) {
   1006   unsigned NR = 0;
   1007   for (Instruction *I : Candidates) {
   1008     if (I != Repl) {
   1009       ++NR;
   1010       updateAlignment(I, Repl);
   1011       if (NewMemAcc) {
   1012         // Update the uses of the old MSSA access with NewMemAcc.
   1013         MemoryAccess *OldMA = MSSA->getMemoryAccess(I);
   1014         OldMA->replaceAllUsesWith(NewMemAcc);
   1015         MSSAUpdater->removeMemoryAccess(OldMA);
   1016       }
   1017 
   1018       Repl->andIRFlags(I);
   1019       combineKnownMetadata(Repl, I);
   1020       I->replaceAllUsesWith(Repl);
   1021       // Also invalidate the Alias Analysis cache.
   1022       MD->removeInstruction(I);
   1023       I->eraseFromParent();
   1024     }
   1025   }
   1026   return NR;
   1027 }
   1028 
   1029 void GVNHoist::raMPHIuw(MemoryUseOrDef *NewMemAcc) {
   1030   SmallPtrSet<MemoryPhi *, 4> UsePhis;
   1031   for (User *U : NewMemAcc->users())
   1032     if (MemoryPhi *Phi = dyn_cast<MemoryPhi>(U))
   1033       UsePhis.insert(Phi);
   1034 
   1035   for (MemoryPhi *Phi : UsePhis) {
   1036     auto In = Phi->incoming_values();
   1037     if (llvm::all_of(In, [&](Use &U) { return U == NewMemAcc; })) {
   1038       Phi->replaceAllUsesWith(NewMemAcc);
   1039       MSSAUpdater->removeMemoryAccess(Phi);
   1040     }
   1041   }
   1042 }
   1043 
   1044 unsigned GVNHoist::removeAndReplace(const SmallVecInsn &Candidates,
   1045                                     Instruction *Repl, BasicBlock *DestBB,
   1046                                     bool MoveAccess) {
   1047   MemoryUseOrDef *NewMemAcc = MSSA->getMemoryAccess(Repl);
   1048   if (MoveAccess && NewMemAcc) {
   1049     // The definition of this ld/st will not change: ld/st hoisting is
   1050     // legal when the ld/st is not moved past its current definition.
   1051     MSSAUpdater->moveToPlace(NewMemAcc, DestBB, MemorySSA::BeforeTerminator);
   1052   }
   1053 
   1054   // Replace all other instructions with Repl with memory access NewMemAcc.
   1055   unsigned NR = rauw(Candidates, Repl, NewMemAcc);
   1056 
   1057   // Remove MemorySSA phi nodes with the same arguments.
   1058   if (NewMemAcc)
   1059     raMPHIuw(NewMemAcc);
   1060   return NR;
   1061 }
   1062 
   1063 bool GVNHoist::makeGepOperandsAvailable(
   1064     Instruction *Repl, BasicBlock *HoistPt,
   1065     const SmallVecInsn &InstructionsToHoist) const {
   1066   // Check whether the GEP of a ld/st can be synthesized at HoistPt.
   1067   GetElementPtrInst *Gep = nullptr;
   1068   Instruction *Val = nullptr;
   1069   if (auto *Ld = dyn_cast<LoadInst>(Repl)) {
   1070     Gep = dyn_cast<GetElementPtrInst>(Ld->getPointerOperand());
   1071   } else if (auto *St = dyn_cast<StoreInst>(Repl)) {
   1072     Gep = dyn_cast<GetElementPtrInst>(St->getPointerOperand());
   1073     Val = dyn_cast<Instruction>(St->getValueOperand());
   1074     // Check that the stored value is available.
   1075     if (Val) {
   1076       if (isa<GetElementPtrInst>(Val)) {
   1077         // Check whether we can compute the GEP at HoistPt.
   1078         if (!allGepOperandsAvailable(Val, HoistPt))
   1079           return false;
   1080       } else if (!DT->dominates(Val->getParent(), HoistPt))
   1081         return false;
   1082     }
   1083   }
   1084 
   1085   // Check whether we can compute the Gep at HoistPt.
   1086   if (!Gep || !allGepOperandsAvailable(Gep, HoistPt))
   1087     return false;
   1088 
   1089   makeGepsAvailable(Repl, HoistPt, InstructionsToHoist, Gep);
   1090 
   1091   if (Val && isa<GetElementPtrInst>(Val))
   1092     makeGepsAvailable(Repl, HoistPt, InstructionsToHoist, Val);
   1093 
   1094   return true;
   1095 }
   1096 
   1097 std::pair<unsigned, unsigned> GVNHoist::hoist(HoistingPointList &HPL) {
   1098   unsigned NI = 0, NL = 0, NS = 0, NC = 0, NR = 0;
   1099   for (const HoistingPointInfo &HP : HPL) {
   1100     // Find out whether we already have one of the instructions in HoistPt,
   1101     // in which case we do not have to move it.
   1102     BasicBlock *DestBB = HP.first;
   1103     const SmallVecInsn &InstructionsToHoist = HP.second;
   1104     Instruction *Repl = nullptr;
   1105     for (Instruction *I : InstructionsToHoist)
   1106       if (I->getParent() == DestBB)
   1107         // If there are two instructions in HoistPt to be hoisted in place:
   1108         // update Repl to be the first one, such that we can rename the uses
   1109         // of the second based on the first.
   1110         if (!Repl || firstInBB(I, Repl))
   1111           Repl = I;
   1112 
   1113     // Keep track of whether we moved the instruction so we know whether we
   1114     // should move the MemoryAccess.
   1115     bool MoveAccess = true;
   1116     if (Repl) {
   1117       // Repl is already in HoistPt: it remains in place.
   1118       assert(allOperandsAvailable(Repl, DestBB) &&
   1119              "instruction depends on operands that are not available");
   1120       MoveAccess = false;
   1121     } else {
   1122       // When we do not find Repl in HoistPt, select the first in the list
   1123       // and move it to HoistPt.
   1124       Repl = InstructionsToHoist.front();
   1125 
   1126       // We can move Repl in HoistPt only when all operands are available.
   1127       // The order in which hoistings are done may influence the availability
   1128       // of operands.
   1129       if (!allOperandsAvailable(Repl, DestBB)) {
   1130         // When HoistingGeps there is nothing more we can do to make the
   1131         // operands available: just continue.
   1132         if (HoistingGeps)
   1133           continue;
   1134 
   1135         // When not HoistingGeps we need to copy the GEPs.
   1136         if (!makeGepOperandsAvailable(Repl, DestBB, InstructionsToHoist))
   1137           continue;
   1138       }
   1139 
   1140       // Move the instruction at the end of HoistPt.
   1141       Instruction *Last = DestBB->getTerminator();
   1142       MD->removeInstruction(Repl);
   1143       Repl->moveBefore(Last);
   1144 
   1145       DFSNumber[Repl] = DFSNumber[Last]++;
   1146     }
   1147 
   1148     NR += removeAndReplace(InstructionsToHoist, Repl, DestBB, MoveAccess);
   1149 
   1150     if (isa<LoadInst>(Repl))
   1151       ++NL;
   1152     else if (isa<StoreInst>(Repl))
   1153       ++NS;
   1154     else if (isa<CallInst>(Repl))
   1155       ++NC;
   1156     else // Scalar
   1157       ++NI;
   1158   }
   1159 
   1160   if (MSSA && VerifyMemorySSA)
   1161     MSSA->verifyMemorySSA();
   1162 
   1163   NumHoisted += NL + NS + NC + NI;
   1164   NumRemoved += NR;
   1165   NumLoadsHoisted += NL;
   1166   NumStoresHoisted += NS;
   1167   NumCallsHoisted += NC;
   1168   return {NI, NL + NC + NS};
   1169 }
   1170 
   1171 std::pair<unsigned, unsigned> GVNHoist::hoistExpressions(Function &F) {
   1172   InsnInfo II;
   1173   LoadInfo LI;
   1174   StoreInfo SI;
   1175   CallInfo CI;
   1176   for (BasicBlock *BB : depth_first(&F.getEntryBlock())) {
   1177     int InstructionNb = 0;
   1178     for (Instruction &I1 : *BB) {
   1179       // If I1 cannot guarantee progress, subsequent instructions
   1180       // in BB cannot be hoisted anyways.
   1181       if (!isGuaranteedToTransferExecutionToSuccessor(&I1)) {
   1182         HoistBarrier.insert(BB);
   1183         break;
   1184       }
   1185       // Only hoist the first instructions in BB up to MaxDepthInBB. Hoisting
   1186       // deeper may increase the register pressure and compilation time.
   1187       if (MaxDepthInBB != -1 && InstructionNb++ >= MaxDepthInBB)
   1188         break;
   1189 
   1190       // Do not value number terminator instructions.
   1191       if (I1.isTerminator())
   1192         break;
   1193 
   1194       if (auto *Load = dyn_cast<LoadInst>(&I1))
   1195         LI.insert(Load, VN);
   1196       else if (auto *Store = dyn_cast<StoreInst>(&I1))
   1197         SI.insert(Store, VN);
   1198       else if (auto *Call = dyn_cast<CallInst>(&I1)) {
   1199         if (auto *Intr = dyn_cast<IntrinsicInst>(Call)) {
   1200           if (isa<DbgInfoIntrinsic>(Intr) ||
   1201               Intr->getIntrinsicID() == Intrinsic::assume ||
   1202               Intr->getIntrinsicID() == Intrinsic::sideeffect)
   1203             continue;
   1204         }
   1205         if (Call->mayHaveSideEffects())
   1206           break;
   1207 
   1208         if (Call->isConvergent())
   1209           break;
   1210 
   1211         CI.insert(Call, VN);
   1212       } else if (HoistingGeps || !isa<GetElementPtrInst>(&I1))
   1213         // Do not hoist scalars past calls that may write to memory because
   1214         // that could result in spills later. geps are handled separately.
   1215         // TODO: We can relax this for targets like AArch64 as they have more
   1216         // registers than X86.
   1217         II.insert(&I1, VN);
   1218     }
   1219   }
   1220 
   1221   HoistingPointList HPL;
   1222   computeInsertionPoints(II.getVNTable(), HPL, InsKind::Scalar);
   1223   computeInsertionPoints(LI.getVNTable(), HPL, InsKind::Load);
   1224   computeInsertionPoints(SI.getVNTable(), HPL, InsKind::Store);
   1225   computeInsertionPoints(CI.getScalarVNTable(), HPL, InsKind::Scalar);
   1226   computeInsertionPoints(CI.getLoadVNTable(), HPL, InsKind::Load);
   1227   computeInsertionPoints(CI.getStoreVNTable(), HPL, InsKind::Store);
   1228   return hoist(HPL);
   1229 }
   1230 
   1231 } // end namespace llvm
   1232 
   1233 PreservedAnalyses GVNHoistPass::run(Function &F, FunctionAnalysisManager &AM) {
   1234   DominatorTree &DT = AM.getResult<DominatorTreeAnalysis>(F);
   1235   PostDominatorTree &PDT = AM.getResult<PostDominatorTreeAnalysis>(F);
   1236   AliasAnalysis &AA = AM.getResult<AAManager>(F);
   1237   MemoryDependenceResults &MD = AM.getResult<MemoryDependenceAnalysis>(F);
   1238   MemorySSA &MSSA = AM.getResult<MemorySSAAnalysis>(F).getMSSA();
   1239   GVNHoist G(&DT, &PDT, &AA, &MD, &MSSA);
   1240   if (!G.run(F))
   1241     return PreservedAnalyses::all();
   1242 
   1243   PreservedAnalyses PA;
   1244   PA.preserve<DominatorTreeAnalysis>();
   1245   PA.preserve<MemorySSAAnalysis>();
   1246   return PA;
   1247 }
   1248 
   1249 char GVNHoistLegacyPass::ID = 0;
   1250 
   1251 INITIALIZE_PASS_BEGIN(GVNHoistLegacyPass, "gvn-hoist",
   1252                       "Early GVN Hoisting of Expressions", false, false)
   1253 INITIALIZE_PASS_DEPENDENCY(MemoryDependenceWrapperPass)
   1254 INITIALIZE_PASS_DEPENDENCY(MemorySSAWrapperPass)
   1255 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
   1256 INITIALIZE_PASS_DEPENDENCY(PostDominatorTreeWrapperPass)
   1257 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass)
   1258 INITIALIZE_PASS_END(GVNHoistLegacyPass, "gvn-hoist",
   1259                     "Early GVN Hoisting of Expressions", false, false)
   1260 
   1261 FunctionPass *llvm::createGVNHoistPass() { return new GVNHoistLegacyPass(); }
   1262