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      1 //===- LoopAccessAnalysis.cpp - Loop Access Analysis Implementation --------==//
      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 implementation for the loop memory dependence that was originally
     10 // developed for the loop vectorizer.
     11 //
     12 //===----------------------------------------------------------------------===//
     13 
     14 #include "llvm/Analysis/LoopAccessAnalysis.h"
     15 #include "llvm/ADT/APInt.h"
     16 #include "llvm/ADT/DenseMap.h"
     17 #include "llvm/ADT/DepthFirstIterator.h"
     18 #include "llvm/ADT/EquivalenceClasses.h"
     19 #include "llvm/ADT/PointerIntPair.h"
     20 #include "llvm/ADT/STLExtras.h"
     21 #include "llvm/ADT/SetVector.h"
     22 #include "llvm/ADT/SmallPtrSet.h"
     23 #include "llvm/ADT/SmallSet.h"
     24 #include "llvm/ADT/SmallVector.h"
     25 #include "llvm/ADT/iterator_range.h"
     26 #include "llvm/Analysis/AliasAnalysis.h"
     27 #include "llvm/Analysis/AliasSetTracker.h"
     28 #include "llvm/Analysis/LoopAnalysisManager.h"
     29 #include "llvm/Analysis/LoopInfo.h"
     30 #include "llvm/Analysis/MemoryLocation.h"
     31 #include "llvm/Analysis/OptimizationRemarkEmitter.h"
     32 #include "llvm/Analysis/ScalarEvolution.h"
     33 #include "llvm/Analysis/ScalarEvolutionExpressions.h"
     34 #include "llvm/Analysis/TargetLibraryInfo.h"
     35 #include "llvm/Analysis/ValueTracking.h"
     36 #include "llvm/Analysis/VectorUtils.h"
     37 #include "llvm/IR/BasicBlock.h"
     38 #include "llvm/IR/Constants.h"
     39 #include "llvm/IR/DataLayout.h"
     40 #include "llvm/IR/DebugLoc.h"
     41 #include "llvm/IR/DerivedTypes.h"
     42 #include "llvm/IR/DiagnosticInfo.h"
     43 #include "llvm/IR/Dominators.h"
     44 #include "llvm/IR/Function.h"
     45 #include "llvm/IR/InstrTypes.h"
     46 #include "llvm/IR/Instruction.h"
     47 #include "llvm/IR/Instructions.h"
     48 #include "llvm/IR/Operator.h"
     49 #include "llvm/IR/PassManager.h"
     50 #include "llvm/IR/Type.h"
     51 #include "llvm/IR/Value.h"
     52 #include "llvm/IR/ValueHandle.h"
     53 #include "llvm/InitializePasses.h"
     54 #include "llvm/Pass.h"
     55 #include "llvm/Support/Casting.h"
     56 #include "llvm/Support/CommandLine.h"
     57 #include "llvm/Support/Debug.h"
     58 #include "llvm/Support/ErrorHandling.h"
     59 #include "llvm/Support/raw_ostream.h"
     60 #include <algorithm>
     61 #include <cassert>
     62 #include <cstdint>
     63 #include <cstdlib>
     64 #include <iterator>
     65 #include <utility>
     66 #include <vector>
     67 
     68 using namespace llvm;
     69 
     70 #define DEBUG_TYPE "loop-accesses"
     71 
     72 static cl::opt<unsigned, true>
     73 VectorizationFactor("force-vector-width", cl::Hidden,
     74                     cl::desc("Sets the SIMD width. Zero is autoselect."),
     75                     cl::location(VectorizerParams::VectorizationFactor));
     76 unsigned VectorizerParams::VectorizationFactor;
     77 
     78 static cl::opt<unsigned, true>
     79 VectorizationInterleave("force-vector-interleave", cl::Hidden,
     80                         cl::desc("Sets the vectorization interleave count. "
     81                                  "Zero is autoselect."),
     82                         cl::location(
     83                             VectorizerParams::VectorizationInterleave));
     84 unsigned VectorizerParams::VectorizationInterleave;
     85 
     86 static cl::opt<unsigned, true> RuntimeMemoryCheckThreshold(
     87     "runtime-memory-check-threshold", cl::Hidden,
     88     cl::desc("When performing memory disambiguation checks at runtime do not "
     89              "generate more than this number of comparisons (default = 8)."),
     90     cl::location(VectorizerParams::RuntimeMemoryCheckThreshold), cl::init(8));
     91 unsigned VectorizerParams::RuntimeMemoryCheckThreshold;
     92 
     93 /// The maximum iterations used to merge memory checks
     94 static cl::opt<unsigned> MemoryCheckMergeThreshold(
     95     "memory-check-merge-threshold", cl::Hidden,
     96     cl::desc("Maximum number of comparisons done when trying to merge "
     97              "runtime memory checks. (default = 100)"),
     98     cl::init(100));
     99 
    100 /// Maximum SIMD width.
    101 const unsigned VectorizerParams::MaxVectorWidth = 64;
    102 
    103 /// We collect dependences up to this threshold.
    104 static cl::opt<unsigned>
    105     MaxDependences("max-dependences", cl::Hidden,
    106                    cl::desc("Maximum number of dependences collected by "
    107                             "loop-access analysis (default = 100)"),
    108                    cl::init(100));
    109 
    110 /// This enables versioning on the strides of symbolically striding memory
    111 /// accesses in code like the following.
    112 ///   for (i = 0; i < N; ++i)
    113 ///     A[i * Stride1] += B[i * Stride2] ...
    114 ///
    115 /// Will be roughly translated to
    116 ///    if (Stride1 == 1 && Stride2 == 1) {
    117 ///      for (i = 0; i < N; i+=4)
    118 ///       A[i:i+3] += ...
    119 ///    } else
    120 ///      ...
    121 static cl::opt<bool> EnableMemAccessVersioning(
    122     "enable-mem-access-versioning", cl::init(true), cl::Hidden,
    123     cl::desc("Enable symbolic stride memory access versioning"));
    124 
    125 /// Enable store-to-load forwarding conflict detection. This option can
    126 /// be disabled for correctness testing.
    127 static cl::opt<bool> EnableForwardingConflictDetection(
    128     "store-to-load-forwarding-conflict-detection", cl::Hidden,
    129     cl::desc("Enable conflict detection in loop-access analysis"),
    130     cl::init(true));
    131 
    132 bool VectorizerParams::isInterleaveForced() {
    133   return ::VectorizationInterleave.getNumOccurrences() > 0;
    134 }
    135 
    136 Value *llvm::stripIntegerCast(Value *V) {
    137   if (auto *CI = dyn_cast<CastInst>(V))
    138     if (CI->getOperand(0)->getType()->isIntegerTy())
    139       return CI->getOperand(0);
    140   return V;
    141 }
    142 
    143 const SCEV *llvm::replaceSymbolicStrideSCEV(PredicatedScalarEvolution &PSE,
    144                                             const ValueToValueMap &PtrToStride,
    145                                             Value *Ptr, Value *OrigPtr) {
    146   const SCEV *OrigSCEV = PSE.getSCEV(Ptr);
    147 
    148   // If there is an entry in the map return the SCEV of the pointer with the
    149   // symbolic stride replaced by one.
    150   ValueToValueMap::const_iterator SI =
    151       PtrToStride.find(OrigPtr ? OrigPtr : Ptr);
    152   if (SI == PtrToStride.end())
    153     // For a non-symbolic stride, just return the original expression.
    154     return OrigSCEV;
    155 
    156   Value *StrideVal = stripIntegerCast(SI->second);
    157 
    158   ScalarEvolution *SE = PSE.getSE();
    159   const auto *U = cast<SCEVUnknown>(SE->getSCEV(StrideVal));
    160   const auto *CT =
    161     static_cast<const SCEVConstant *>(SE->getOne(StrideVal->getType()));
    162 
    163   PSE.addPredicate(*SE->getEqualPredicate(U, CT));
    164   auto *Expr = PSE.getSCEV(Ptr);
    165 
    166   LLVM_DEBUG(dbgs() << "LAA: Replacing SCEV: " << *OrigSCEV
    167 	     << " by: " << *Expr << "\n");
    168   return Expr;
    169 }
    170 
    171 RuntimeCheckingPtrGroup::RuntimeCheckingPtrGroup(
    172     unsigned Index, RuntimePointerChecking &RtCheck)
    173     : RtCheck(RtCheck), High(RtCheck.Pointers[Index].End),
    174       Low(RtCheck.Pointers[Index].Start) {
    175   Members.push_back(Index);
    176 }
    177 
    178 /// Calculate Start and End points of memory access.
    179 /// Let's assume A is the first access and B is a memory access on N-th loop
    180 /// iteration. Then B is calculated as:
    181 ///   B = A + Step*N .
    182 /// Step value may be positive or negative.
    183 /// N is a calculated back-edge taken count:
    184 ///     N = (TripCount > 0) ? RoundDown(TripCount -1 , VF) : 0
    185 /// Start and End points are calculated in the following way:
    186 /// Start = UMIN(A, B) ; End = UMAX(A, B) + SizeOfElt,
    187 /// where SizeOfElt is the size of single memory access in bytes.
    188 ///
    189 /// There is no conflict when the intervals are disjoint:
    190 /// NoConflict = (P2.Start >= P1.End) || (P1.Start >= P2.End)
    191 void RuntimePointerChecking::insert(Loop *Lp, Value *Ptr, bool WritePtr,
    192                                     unsigned DepSetId, unsigned ASId,
    193                                     const ValueToValueMap &Strides,
    194                                     PredicatedScalarEvolution &PSE) {
    195   // Get the stride replaced scev.
    196   const SCEV *Sc = replaceSymbolicStrideSCEV(PSE, Strides, Ptr);
    197   ScalarEvolution *SE = PSE.getSE();
    198 
    199   const SCEV *ScStart;
    200   const SCEV *ScEnd;
    201 
    202   if (SE->isLoopInvariant(Sc, Lp))
    203     ScStart = ScEnd = Sc;
    204   else {
    205     const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(Sc);
    206     assert(AR && "Invalid addrec expression");
    207     const SCEV *Ex = PSE.getBackedgeTakenCount();
    208 
    209     ScStart = AR->getStart();
    210     ScEnd = AR->evaluateAtIteration(Ex, *SE);
    211     const SCEV *Step = AR->getStepRecurrence(*SE);
    212 
    213     // For expressions with negative step, the upper bound is ScStart and the
    214     // lower bound is ScEnd.
    215     if (const auto *CStep = dyn_cast<SCEVConstant>(Step)) {
    216       if (CStep->getValue()->isNegative())
    217         std::swap(ScStart, ScEnd);
    218     } else {
    219       // Fallback case: the step is not constant, but we can still
    220       // get the upper and lower bounds of the interval by using min/max
    221       // expressions.
    222       ScStart = SE->getUMinExpr(ScStart, ScEnd);
    223       ScEnd = SE->getUMaxExpr(AR->getStart(), ScEnd);
    224     }
    225     // Add the size of the pointed element to ScEnd.
    226     auto &DL = Lp->getHeader()->getModule()->getDataLayout();
    227     Type *IdxTy = DL.getIndexType(Ptr->getType());
    228     const SCEV *EltSizeSCEV =
    229         SE->getStoreSizeOfExpr(IdxTy, Ptr->getType()->getPointerElementType());
    230     ScEnd = SE->getAddExpr(ScEnd, EltSizeSCEV);
    231   }
    232 
    233   Pointers.emplace_back(Ptr, ScStart, ScEnd, WritePtr, DepSetId, ASId, Sc);
    234 }
    235 
    236 SmallVector<RuntimePointerCheck, 4>
    237 RuntimePointerChecking::generateChecks() const {
    238   SmallVector<RuntimePointerCheck, 4> Checks;
    239 
    240   for (unsigned I = 0; I < CheckingGroups.size(); ++I) {
    241     for (unsigned J = I + 1; J < CheckingGroups.size(); ++J) {
    242       const RuntimeCheckingPtrGroup &CGI = CheckingGroups[I];
    243       const RuntimeCheckingPtrGroup &CGJ = CheckingGroups[J];
    244 
    245       if (needsChecking(CGI, CGJ))
    246         Checks.push_back(std::make_pair(&CGI, &CGJ));
    247     }
    248   }
    249   return Checks;
    250 }
    251 
    252 void RuntimePointerChecking::generateChecks(
    253     MemoryDepChecker::DepCandidates &DepCands, bool UseDependencies) {
    254   assert(Checks.empty() && "Checks is not empty");
    255   groupChecks(DepCands, UseDependencies);
    256   Checks = generateChecks();
    257 }
    258 
    259 bool RuntimePointerChecking::needsChecking(
    260     const RuntimeCheckingPtrGroup &M, const RuntimeCheckingPtrGroup &N) const {
    261   for (unsigned I = 0, EI = M.Members.size(); EI != I; ++I)
    262     for (unsigned J = 0, EJ = N.Members.size(); EJ != J; ++J)
    263       if (needsChecking(M.Members[I], N.Members[J]))
    264         return true;
    265   return false;
    266 }
    267 
    268 /// Compare \p I and \p J and return the minimum.
    269 /// Return nullptr in case we couldn't find an answer.
    270 static const SCEV *getMinFromExprs(const SCEV *I, const SCEV *J,
    271                                    ScalarEvolution *SE) {
    272   const SCEV *Diff = SE->getMinusSCEV(J, I);
    273   const SCEVConstant *C = dyn_cast<const SCEVConstant>(Diff);
    274 
    275   if (!C)
    276     return nullptr;
    277   if (C->getValue()->isNegative())
    278     return J;
    279   return I;
    280 }
    281 
    282 bool RuntimeCheckingPtrGroup::addPointer(unsigned Index) {
    283   const SCEV *Start = RtCheck.Pointers[Index].Start;
    284   const SCEV *End = RtCheck.Pointers[Index].End;
    285 
    286   // Compare the starts and ends with the known minimum and maximum
    287   // of this set. We need to know how we compare against the min/max
    288   // of the set in order to be able to emit memchecks.
    289   const SCEV *Min0 = getMinFromExprs(Start, Low, RtCheck.SE);
    290   if (!Min0)
    291     return false;
    292 
    293   const SCEV *Min1 = getMinFromExprs(End, High, RtCheck.SE);
    294   if (!Min1)
    295     return false;
    296 
    297   // Update the low bound  expression if we've found a new min value.
    298   if (Min0 == Start)
    299     Low = Start;
    300 
    301   // Update the high bound expression if we've found a new max value.
    302   if (Min1 != End)
    303     High = End;
    304 
    305   Members.push_back(Index);
    306   return true;
    307 }
    308 
    309 void RuntimePointerChecking::groupChecks(
    310     MemoryDepChecker::DepCandidates &DepCands, bool UseDependencies) {
    311   // We build the groups from dependency candidates equivalence classes
    312   // because:
    313   //    - We know that pointers in the same equivalence class share
    314   //      the same underlying object and therefore there is a chance
    315   //      that we can compare pointers
    316   //    - We wouldn't be able to merge two pointers for which we need
    317   //      to emit a memcheck. The classes in DepCands are already
    318   //      conveniently built such that no two pointers in the same
    319   //      class need checking against each other.
    320 
    321   // We use the following (greedy) algorithm to construct the groups
    322   // For every pointer in the equivalence class:
    323   //   For each existing group:
    324   //   - if the difference between this pointer and the min/max bounds
    325   //     of the group is a constant, then make the pointer part of the
    326   //     group and update the min/max bounds of that group as required.
    327 
    328   CheckingGroups.clear();
    329 
    330   // If we need to check two pointers to the same underlying object
    331   // with a non-constant difference, we shouldn't perform any pointer
    332   // grouping with those pointers. This is because we can easily get
    333   // into cases where the resulting check would return false, even when
    334   // the accesses are safe.
    335   //
    336   // The following example shows this:
    337   // for (i = 0; i < 1000; ++i)
    338   //   a[5000 + i * m] = a[i] + a[i + 9000]
    339   //
    340   // Here grouping gives a check of (5000, 5000 + 1000 * m) against
    341   // (0, 10000) which is always false. However, if m is 1, there is no
    342   // dependence. Not grouping the checks for a[i] and a[i + 9000] allows
    343   // us to perform an accurate check in this case.
    344   //
    345   // The above case requires that we have an UnknownDependence between
    346   // accesses to the same underlying object. This cannot happen unless
    347   // FoundNonConstantDistanceDependence is set, and therefore UseDependencies
    348   // is also false. In this case we will use the fallback path and create
    349   // separate checking groups for all pointers.
    350 
    351   // If we don't have the dependency partitions, construct a new
    352   // checking pointer group for each pointer. This is also required
    353   // for correctness, because in this case we can have checking between
    354   // pointers to the same underlying object.
    355   if (!UseDependencies) {
    356     for (unsigned I = 0; I < Pointers.size(); ++I)
    357       CheckingGroups.push_back(RuntimeCheckingPtrGroup(I, *this));
    358     return;
    359   }
    360 
    361   unsigned TotalComparisons = 0;
    362 
    363   DenseMap<Value *, unsigned> PositionMap;
    364   for (unsigned Index = 0; Index < Pointers.size(); ++Index)
    365     PositionMap[Pointers[Index].PointerValue] = Index;
    366 
    367   // We need to keep track of what pointers we've already seen so we
    368   // don't process them twice.
    369   SmallSet<unsigned, 2> Seen;
    370 
    371   // Go through all equivalence classes, get the "pointer check groups"
    372   // and add them to the overall solution. We use the order in which accesses
    373   // appear in 'Pointers' to enforce determinism.
    374   for (unsigned I = 0; I < Pointers.size(); ++I) {
    375     // We've seen this pointer before, and therefore already processed
    376     // its equivalence class.
    377     if (Seen.count(I))
    378       continue;
    379 
    380     MemoryDepChecker::MemAccessInfo Access(Pointers[I].PointerValue,
    381                                            Pointers[I].IsWritePtr);
    382 
    383     SmallVector<RuntimeCheckingPtrGroup, 2> Groups;
    384     auto LeaderI = DepCands.findValue(DepCands.getLeaderValue(Access));
    385 
    386     // Because DepCands is constructed by visiting accesses in the order in
    387     // which they appear in alias sets (which is deterministic) and the
    388     // iteration order within an equivalence class member is only dependent on
    389     // the order in which unions and insertions are performed on the
    390     // equivalence class, the iteration order is deterministic.
    391     for (auto MI = DepCands.member_begin(LeaderI), ME = DepCands.member_end();
    392          MI != ME; ++MI) {
    393       auto PointerI = PositionMap.find(MI->getPointer());
    394       assert(PointerI != PositionMap.end() &&
    395              "pointer in equivalence class not found in PositionMap");
    396       unsigned Pointer = PointerI->second;
    397       bool Merged = false;
    398       // Mark this pointer as seen.
    399       Seen.insert(Pointer);
    400 
    401       // Go through all the existing sets and see if we can find one
    402       // which can include this pointer.
    403       for (RuntimeCheckingPtrGroup &Group : Groups) {
    404         // Don't perform more than a certain amount of comparisons.
    405         // This should limit the cost of grouping the pointers to something
    406         // reasonable.  If we do end up hitting this threshold, the algorithm
    407         // will create separate groups for all remaining pointers.
    408         if (TotalComparisons > MemoryCheckMergeThreshold)
    409           break;
    410 
    411         TotalComparisons++;
    412 
    413         if (Group.addPointer(Pointer)) {
    414           Merged = true;
    415           break;
    416         }
    417       }
    418 
    419       if (!Merged)
    420         // We couldn't add this pointer to any existing set or the threshold
    421         // for the number of comparisons has been reached. Create a new group
    422         // to hold the current pointer.
    423         Groups.push_back(RuntimeCheckingPtrGroup(Pointer, *this));
    424     }
    425 
    426     // We've computed the grouped checks for this partition.
    427     // Save the results and continue with the next one.
    428     llvm::copy(Groups, std::back_inserter(CheckingGroups));
    429   }
    430 }
    431 
    432 bool RuntimePointerChecking::arePointersInSamePartition(
    433     const SmallVectorImpl<int> &PtrToPartition, unsigned PtrIdx1,
    434     unsigned PtrIdx2) {
    435   return (PtrToPartition[PtrIdx1] != -1 &&
    436           PtrToPartition[PtrIdx1] == PtrToPartition[PtrIdx2]);
    437 }
    438 
    439 bool RuntimePointerChecking::needsChecking(unsigned I, unsigned J) const {
    440   const PointerInfo &PointerI = Pointers[I];
    441   const PointerInfo &PointerJ = Pointers[J];
    442 
    443   // No need to check if two readonly pointers intersect.
    444   if (!PointerI.IsWritePtr && !PointerJ.IsWritePtr)
    445     return false;
    446 
    447   // Only need to check pointers between two different dependency sets.
    448   if (PointerI.DependencySetId == PointerJ.DependencySetId)
    449     return false;
    450 
    451   // Only need to check pointers in the same alias set.
    452   if (PointerI.AliasSetId != PointerJ.AliasSetId)
    453     return false;
    454 
    455   return true;
    456 }
    457 
    458 void RuntimePointerChecking::printChecks(
    459     raw_ostream &OS, const SmallVectorImpl<RuntimePointerCheck> &Checks,
    460     unsigned Depth) const {
    461   unsigned N = 0;
    462   for (const auto &Check : Checks) {
    463     const auto &First = Check.first->Members, &Second = Check.second->Members;
    464 
    465     OS.indent(Depth) << "Check " << N++ << ":\n";
    466 
    467     OS.indent(Depth + 2) << "Comparing group (" << Check.first << "):\n";
    468     for (unsigned K = 0; K < First.size(); ++K)
    469       OS.indent(Depth + 2) << *Pointers[First[K]].PointerValue << "\n";
    470 
    471     OS.indent(Depth + 2) << "Against group (" << Check.second << "):\n";
    472     for (unsigned K = 0; K < Second.size(); ++K)
    473       OS.indent(Depth + 2) << *Pointers[Second[K]].PointerValue << "\n";
    474   }
    475 }
    476 
    477 void RuntimePointerChecking::print(raw_ostream &OS, unsigned Depth) const {
    478 
    479   OS.indent(Depth) << "Run-time memory checks:\n";
    480   printChecks(OS, Checks, Depth);
    481 
    482   OS.indent(Depth) << "Grouped accesses:\n";
    483   for (unsigned I = 0; I < CheckingGroups.size(); ++I) {
    484     const auto &CG = CheckingGroups[I];
    485 
    486     OS.indent(Depth + 2) << "Group " << &CG << ":\n";
    487     OS.indent(Depth + 4) << "(Low: " << *CG.Low << " High: " << *CG.High
    488                          << ")\n";
    489     for (unsigned J = 0; J < CG.Members.size(); ++J) {
    490       OS.indent(Depth + 6) << "Member: " << *Pointers[CG.Members[J]].Expr
    491                            << "\n";
    492     }
    493   }
    494 }
    495 
    496 namespace {
    497 
    498 /// Analyses memory accesses in a loop.
    499 ///
    500 /// Checks whether run time pointer checks are needed and builds sets for data
    501 /// dependence checking.
    502 class AccessAnalysis {
    503 public:
    504   /// Read or write access location.
    505   typedef PointerIntPair<Value *, 1, bool> MemAccessInfo;
    506   typedef SmallVector<MemAccessInfo, 8> MemAccessInfoList;
    507 
    508   AccessAnalysis(Loop *TheLoop, AAResults *AA, LoopInfo *LI,
    509                  MemoryDepChecker::DepCandidates &DA,
    510                  PredicatedScalarEvolution &PSE)
    511       : TheLoop(TheLoop), AST(*AA), LI(LI), DepCands(DA),
    512         IsRTCheckAnalysisNeeded(false), PSE(PSE) {}
    513 
    514   /// Register a load  and whether it is only read from.
    515   void addLoad(MemoryLocation &Loc, bool IsReadOnly) {
    516     Value *Ptr = const_cast<Value*>(Loc.Ptr);
    517     AST.add(Ptr, LocationSize::beforeOrAfterPointer(), Loc.AATags);
    518     Accesses.insert(MemAccessInfo(Ptr, false));
    519     if (IsReadOnly)
    520       ReadOnlyPtr.insert(Ptr);
    521   }
    522 
    523   /// Register a store.
    524   void addStore(MemoryLocation &Loc) {
    525     Value *Ptr = const_cast<Value*>(Loc.Ptr);
    526     AST.add(Ptr, LocationSize::beforeOrAfterPointer(), Loc.AATags);
    527     Accesses.insert(MemAccessInfo(Ptr, true));
    528   }
    529 
    530   /// Check if we can emit a run-time no-alias check for \p Access.
    531   ///
    532   /// Returns true if we can emit a run-time no alias check for \p Access.
    533   /// If we can check this access, this also adds it to a dependence set and
    534   /// adds a run-time to check for it to \p RtCheck. If \p Assume is true,
    535   /// we will attempt to use additional run-time checks in order to get
    536   /// the bounds of the pointer.
    537   bool createCheckForAccess(RuntimePointerChecking &RtCheck,
    538                             MemAccessInfo Access,
    539                             const ValueToValueMap &Strides,
    540                             DenseMap<Value *, unsigned> &DepSetId,
    541                             Loop *TheLoop, unsigned &RunningDepId,
    542                             unsigned ASId, bool ShouldCheckStride,
    543                             bool Assume);
    544 
    545   /// Check whether we can check the pointers at runtime for
    546   /// non-intersection.
    547   ///
    548   /// Returns true if we need no check or if we do and we can generate them
    549   /// (i.e. the pointers have computable bounds).
    550   bool canCheckPtrAtRT(RuntimePointerChecking &RtCheck, ScalarEvolution *SE,
    551                        Loop *TheLoop, const ValueToValueMap &Strides,
    552                        bool ShouldCheckWrap = false);
    553 
    554   /// Goes over all memory accesses, checks whether a RT check is needed
    555   /// and builds sets of dependent accesses.
    556   void buildDependenceSets() {
    557     processMemAccesses();
    558   }
    559 
    560   /// Initial processing of memory accesses determined that we need to
    561   /// perform dependency checking.
    562   ///
    563   /// Note that this can later be cleared if we retry memcheck analysis without
    564   /// dependency checking (i.e. FoundNonConstantDistanceDependence).
    565   bool isDependencyCheckNeeded() { return !CheckDeps.empty(); }
    566 
    567   /// We decided that no dependence analysis would be used.  Reset the state.
    568   void resetDepChecks(MemoryDepChecker &DepChecker) {
    569     CheckDeps.clear();
    570     DepChecker.clearDependences();
    571   }
    572 
    573   MemAccessInfoList &getDependenciesToCheck() { return CheckDeps; }
    574 
    575 private:
    576   typedef SetVector<MemAccessInfo> PtrAccessSet;
    577 
    578   /// Go over all memory access and check whether runtime pointer checks
    579   /// are needed and build sets of dependency check candidates.
    580   void processMemAccesses();
    581 
    582   /// Set of all accesses.
    583   PtrAccessSet Accesses;
    584 
    585   /// The loop being checked.
    586   const Loop *TheLoop;
    587 
    588   /// List of accesses that need a further dependence check.
    589   MemAccessInfoList CheckDeps;
    590 
    591   /// Set of pointers that are read only.
    592   SmallPtrSet<Value*, 16> ReadOnlyPtr;
    593 
    594   /// An alias set tracker to partition the access set by underlying object and
    595   //intrinsic property (such as TBAA metadata).
    596   AliasSetTracker AST;
    597 
    598   LoopInfo *LI;
    599 
    600   /// Sets of potentially dependent accesses - members of one set share an
    601   /// underlying pointer. The set "CheckDeps" identfies which sets really need a
    602   /// dependence check.
    603   MemoryDepChecker::DepCandidates &DepCands;
    604 
    605   /// Initial processing of memory accesses determined that we may need
    606   /// to add memchecks.  Perform the analysis to determine the necessary checks.
    607   ///
    608   /// Note that, this is different from isDependencyCheckNeeded.  When we retry
    609   /// memcheck analysis without dependency checking
    610   /// (i.e. FoundNonConstantDistanceDependence), isDependencyCheckNeeded is
    611   /// cleared while this remains set if we have potentially dependent accesses.
    612   bool IsRTCheckAnalysisNeeded;
    613 
    614   /// The SCEV predicate containing all the SCEV-related assumptions.
    615   PredicatedScalarEvolution &PSE;
    616 };
    617 
    618 } // end anonymous namespace
    619 
    620 /// Check whether a pointer can participate in a runtime bounds check.
    621 /// If \p Assume, try harder to prove that we can compute the bounds of \p Ptr
    622 /// by adding run-time checks (overflow checks) if necessary.
    623 static bool hasComputableBounds(PredicatedScalarEvolution &PSE,
    624                                 const ValueToValueMap &Strides, Value *Ptr,
    625                                 Loop *L, bool Assume) {
    626   const SCEV *PtrScev = replaceSymbolicStrideSCEV(PSE, Strides, Ptr);
    627 
    628   // The bounds for loop-invariant pointer is trivial.
    629   if (PSE.getSE()->isLoopInvariant(PtrScev, L))
    630     return true;
    631 
    632   const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(PtrScev);
    633 
    634   if (!AR && Assume)
    635     AR = PSE.getAsAddRec(Ptr);
    636 
    637   if (!AR)
    638     return false;
    639 
    640   return AR->isAffine();
    641 }
    642 
    643 /// Check whether a pointer address cannot wrap.
    644 static bool isNoWrap(PredicatedScalarEvolution &PSE,
    645                      const ValueToValueMap &Strides, Value *Ptr, Loop *L) {
    646   const SCEV *PtrScev = PSE.getSCEV(Ptr);
    647   if (PSE.getSE()->isLoopInvariant(PtrScev, L))
    648     return true;
    649 
    650   int64_t Stride = getPtrStride(PSE, Ptr, L, Strides);
    651   if (Stride == 1 || PSE.hasNoOverflow(Ptr, SCEVWrapPredicate::IncrementNUSW))
    652     return true;
    653 
    654   return false;
    655 }
    656 
    657 bool AccessAnalysis::createCheckForAccess(RuntimePointerChecking &RtCheck,
    658                                           MemAccessInfo Access,
    659                                           const ValueToValueMap &StridesMap,
    660                                           DenseMap<Value *, unsigned> &DepSetId,
    661                                           Loop *TheLoop, unsigned &RunningDepId,
    662                                           unsigned ASId, bool ShouldCheckWrap,
    663                                           bool Assume) {
    664   Value *Ptr = Access.getPointer();
    665 
    666   if (!hasComputableBounds(PSE, StridesMap, Ptr, TheLoop, Assume))
    667     return false;
    668 
    669   // When we run after a failing dependency check we have to make sure
    670   // we don't have wrapping pointers.
    671   if (ShouldCheckWrap && !isNoWrap(PSE, StridesMap, Ptr, TheLoop)) {
    672     auto *Expr = PSE.getSCEV(Ptr);
    673     if (!Assume || !isa<SCEVAddRecExpr>(Expr))
    674       return false;
    675     PSE.setNoOverflow(Ptr, SCEVWrapPredicate::IncrementNUSW);
    676   }
    677 
    678   // The id of the dependence set.
    679   unsigned DepId;
    680 
    681   if (isDependencyCheckNeeded()) {
    682     Value *Leader = DepCands.getLeaderValue(Access).getPointer();
    683     unsigned &LeaderId = DepSetId[Leader];
    684     if (!LeaderId)
    685       LeaderId = RunningDepId++;
    686     DepId = LeaderId;
    687   } else
    688     // Each access has its own dependence set.
    689     DepId = RunningDepId++;
    690 
    691   bool IsWrite = Access.getInt();
    692   RtCheck.insert(TheLoop, Ptr, IsWrite, DepId, ASId, StridesMap, PSE);
    693   LLVM_DEBUG(dbgs() << "LAA: Found a runtime check ptr:" << *Ptr << '\n');
    694 
    695   return true;
    696  }
    697 
    698 bool AccessAnalysis::canCheckPtrAtRT(RuntimePointerChecking &RtCheck,
    699                                      ScalarEvolution *SE, Loop *TheLoop,
    700                                      const ValueToValueMap &StridesMap,
    701                                      bool ShouldCheckWrap) {
    702   // Find pointers with computable bounds. We are going to use this information
    703   // to place a runtime bound check.
    704   bool CanDoRT = true;
    705 
    706   bool MayNeedRTCheck = false;
    707   if (!IsRTCheckAnalysisNeeded) return true;
    708 
    709   bool IsDepCheckNeeded = isDependencyCheckNeeded();
    710 
    711   // We assign a consecutive id to access from different alias sets.
    712   // Accesses between different groups doesn't need to be checked.
    713   unsigned ASId = 0;
    714   for (auto &AS : AST) {
    715     int NumReadPtrChecks = 0;
    716     int NumWritePtrChecks = 0;
    717     bool CanDoAliasSetRT = true;
    718     ++ASId;
    719 
    720     // We assign consecutive id to access from different dependence sets.
    721     // Accesses within the same set don't need a runtime check.
    722     unsigned RunningDepId = 1;
    723     DenseMap<Value *, unsigned> DepSetId;
    724 
    725     SmallVector<MemAccessInfo, 4> Retries;
    726 
    727     // First, count how many write and read accesses are in the alias set. Also
    728     // collect MemAccessInfos for later.
    729     SmallVector<MemAccessInfo, 4> AccessInfos;
    730     for (const auto &A : AS) {
    731       Value *Ptr = A.getValue();
    732       bool IsWrite = Accesses.count(MemAccessInfo(Ptr, true));
    733 
    734       if (IsWrite)
    735         ++NumWritePtrChecks;
    736       else
    737         ++NumReadPtrChecks;
    738       AccessInfos.emplace_back(Ptr, IsWrite);
    739     }
    740 
    741     // We do not need runtime checks for this alias set, if there are no writes
    742     // or a single write and no reads.
    743     if (NumWritePtrChecks == 0 ||
    744         (NumWritePtrChecks == 1 && NumReadPtrChecks == 0)) {
    745       assert((AS.size() <= 1 ||
    746               all_of(AS,
    747                      [this](auto AC) {
    748                        MemAccessInfo AccessWrite(AC.getValue(), true);
    749                        return DepCands.findValue(AccessWrite) == DepCands.end();
    750                      })) &&
    751              "Can only skip updating CanDoRT below, if all entries in AS "
    752              "are reads or there is at most 1 entry");
    753       continue;
    754     }
    755 
    756     for (auto &Access : AccessInfos) {
    757       if (!createCheckForAccess(RtCheck, Access, StridesMap, DepSetId, TheLoop,
    758                                 RunningDepId, ASId, ShouldCheckWrap, false)) {
    759         LLVM_DEBUG(dbgs() << "LAA: Can't find bounds for ptr:"
    760                           << *Access.getPointer() << '\n');
    761         Retries.push_back(Access);
    762         CanDoAliasSetRT = false;
    763       }
    764     }
    765 
    766     // Note that this function computes CanDoRT and MayNeedRTCheck
    767     // independently. For example CanDoRT=false, MayNeedRTCheck=false means that
    768     // we have a pointer for which we couldn't find the bounds but we don't
    769     // actually need to emit any checks so it does not matter.
    770     //
    771     // We need runtime checks for this alias set, if there are at least 2
    772     // dependence sets (in which case RunningDepId > 2) or if we need to re-try
    773     // any bound checks (because in that case the number of dependence sets is
    774     // incomplete).
    775     bool NeedsAliasSetRTCheck = RunningDepId > 2 || !Retries.empty();
    776 
    777     // We need to perform run-time alias checks, but some pointers had bounds
    778     // that couldn't be checked.
    779     if (NeedsAliasSetRTCheck && !CanDoAliasSetRT) {
    780       // Reset the CanDoSetRt flag and retry all accesses that have failed.
    781       // We know that we need these checks, so we can now be more aggressive
    782       // and add further checks if required (overflow checks).
    783       CanDoAliasSetRT = true;
    784       for (auto Access : Retries)
    785         if (!createCheckForAccess(RtCheck, Access, StridesMap, DepSetId,
    786                                   TheLoop, RunningDepId, ASId,
    787                                   ShouldCheckWrap, /*Assume=*/true)) {
    788           CanDoAliasSetRT = false;
    789           break;
    790         }
    791     }
    792 
    793     CanDoRT &= CanDoAliasSetRT;
    794     MayNeedRTCheck |= NeedsAliasSetRTCheck;
    795     ++ASId;
    796   }
    797 
    798   // If the pointers that we would use for the bounds comparison have different
    799   // address spaces, assume the values aren't directly comparable, so we can't
    800   // use them for the runtime check. We also have to assume they could
    801   // overlap. In the future there should be metadata for whether address spaces
    802   // are disjoint.
    803   unsigned NumPointers = RtCheck.Pointers.size();
    804   for (unsigned i = 0; i < NumPointers; ++i) {
    805     for (unsigned j = i + 1; j < NumPointers; ++j) {
    806       // Only need to check pointers between two different dependency sets.
    807       if (RtCheck.Pointers[i].DependencySetId ==
    808           RtCheck.Pointers[j].DependencySetId)
    809        continue;
    810       // Only need to check pointers in the same alias set.
    811       if (RtCheck.Pointers[i].AliasSetId != RtCheck.Pointers[j].AliasSetId)
    812         continue;
    813 
    814       Value *PtrI = RtCheck.Pointers[i].PointerValue;
    815       Value *PtrJ = RtCheck.Pointers[j].PointerValue;
    816 
    817       unsigned ASi = PtrI->getType()->getPointerAddressSpace();
    818       unsigned ASj = PtrJ->getType()->getPointerAddressSpace();
    819       if (ASi != ASj) {
    820         LLVM_DEBUG(
    821             dbgs() << "LAA: Runtime check would require comparison between"
    822                       " different address spaces\n");
    823         return false;
    824       }
    825     }
    826   }
    827 
    828   if (MayNeedRTCheck && CanDoRT)
    829     RtCheck.generateChecks(DepCands, IsDepCheckNeeded);
    830 
    831   LLVM_DEBUG(dbgs() << "LAA: We need to do " << RtCheck.getNumberOfChecks()
    832                     << " pointer comparisons.\n");
    833 
    834   // If we can do run-time checks, but there are no checks, no runtime checks
    835   // are needed. This can happen when all pointers point to the same underlying
    836   // object for example.
    837   RtCheck.Need = CanDoRT ? RtCheck.getNumberOfChecks() != 0 : MayNeedRTCheck;
    838 
    839   bool CanDoRTIfNeeded = !RtCheck.Need || CanDoRT;
    840   if (!CanDoRTIfNeeded)
    841     RtCheck.reset();
    842   return CanDoRTIfNeeded;
    843 }
    844 
    845 void AccessAnalysis::processMemAccesses() {
    846   // We process the set twice: first we process read-write pointers, last we
    847   // process read-only pointers. This allows us to skip dependence tests for
    848   // read-only pointers.
    849 
    850   LLVM_DEBUG(dbgs() << "LAA: Processing memory accesses...\n");
    851   LLVM_DEBUG(dbgs() << "  AST: "; AST.dump());
    852   LLVM_DEBUG(dbgs() << "LAA:   Accesses(" << Accesses.size() << "):\n");
    853   LLVM_DEBUG({
    854     for (auto A : Accesses)
    855       dbgs() << "\t" << *A.getPointer() << " (" <<
    856                 (A.getInt() ? "write" : (ReadOnlyPtr.count(A.getPointer()) ?
    857                                          "read-only" : "read")) << ")\n";
    858   });
    859 
    860   // The AliasSetTracker has nicely partitioned our pointers by metadata
    861   // compatibility and potential for underlying-object overlap. As a result, we
    862   // only need to check for potential pointer dependencies within each alias
    863   // set.
    864   for (const auto &AS : AST) {
    865     // Note that both the alias-set tracker and the alias sets themselves used
    866     // linked lists internally and so the iteration order here is deterministic
    867     // (matching the original instruction order within each set).
    868 
    869     bool SetHasWrite = false;
    870 
    871     // Map of pointers to last access encountered.
    872     typedef DenseMap<const Value*, MemAccessInfo> UnderlyingObjToAccessMap;
    873     UnderlyingObjToAccessMap ObjToLastAccess;
    874 
    875     // Set of access to check after all writes have been processed.
    876     PtrAccessSet DeferredAccesses;
    877 
    878     // Iterate over each alias set twice, once to process read/write pointers,
    879     // and then to process read-only pointers.
    880     for (int SetIteration = 0; SetIteration < 2; ++SetIteration) {
    881       bool UseDeferred = SetIteration > 0;
    882       PtrAccessSet &S = UseDeferred ? DeferredAccesses : Accesses;
    883 
    884       for (const auto &AV : AS) {
    885         Value *Ptr = AV.getValue();
    886 
    887         // For a single memory access in AliasSetTracker, Accesses may contain
    888         // both read and write, and they both need to be handled for CheckDeps.
    889         for (const auto &AC : S) {
    890           if (AC.getPointer() != Ptr)
    891             continue;
    892 
    893           bool IsWrite = AC.getInt();
    894 
    895           // If we're using the deferred access set, then it contains only
    896           // reads.
    897           bool IsReadOnlyPtr = ReadOnlyPtr.count(Ptr) && !IsWrite;
    898           if (UseDeferred && !IsReadOnlyPtr)
    899             continue;
    900           // Otherwise, the pointer must be in the PtrAccessSet, either as a
    901           // read or a write.
    902           assert(((IsReadOnlyPtr && UseDeferred) || IsWrite ||
    903                   S.count(MemAccessInfo(Ptr, false))) &&
    904                  "Alias-set pointer not in the access set?");
    905 
    906           MemAccessInfo Access(Ptr, IsWrite);
    907           DepCands.insert(Access);
    908 
    909           // Memorize read-only pointers for later processing and skip them in
    910           // the first round (they need to be checked after we have seen all
    911           // write pointers). Note: we also mark pointer that are not
    912           // consecutive as "read-only" pointers (so that we check
    913           // "a[b[i]] +="). Hence, we need the second check for "!IsWrite".
    914           if (!UseDeferred && IsReadOnlyPtr) {
    915             DeferredAccesses.insert(Access);
    916             continue;
    917           }
    918 
    919           // If this is a write - check other reads and writes for conflicts. If
    920           // this is a read only check other writes for conflicts (but only if
    921           // there is no other write to the ptr - this is an optimization to
    922           // catch "a[i] = a[i] + " without having to do a dependence check).
    923           if ((IsWrite || IsReadOnlyPtr) && SetHasWrite) {
    924             CheckDeps.push_back(Access);
    925             IsRTCheckAnalysisNeeded = true;
    926           }
    927 
    928           if (IsWrite)
    929             SetHasWrite = true;
    930 
    931           // Create sets of pointers connected by a shared alias set and
    932           // underlying object.
    933           typedef SmallVector<const Value *, 16> ValueVector;
    934           ValueVector TempObjects;
    935 
    936           getUnderlyingObjects(Ptr, TempObjects, LI);
    937           LLVM_DEBUG(dbgs()
    938                      << "Underlying objects for pointer " << *Ptr << "\n");
    939           for (const Value *UnderlyingObj : TempObjects) {
    940             // nullptr never alias, don't join sets for pointer that have "null"
    941             // in their UnderlyingObjects list.
    942             if (isa<ConstantPointerNull>(UnderlyingObj) &&
    943                 !NullPointerIsDefined(
    944                     TheLoop->getHeader()->getParent(),
    945                     UnderlyingObj->getType()->getPointerAddressSpace()))
    946               continue;
    947 
    948             UnderlyingObjToAccessMap::iterator Prev =
    949                 ObjToLastAccess.find(UnderlyingObj);
    950             if (Prev != ObjToLastAccess.end())
    951               DepCands.unionSets(Access, Prev->second);
    952 
    953             ObjToLastAccess[UnderlyingObj] = Access;
    954             LLVM_DEBUG(dbgs() << "  " << *UnderlyingObj << "\n");
    955           }
    956         }
    957       }
    958     }
    959   }
    960 }
    961 
    962 static bool isInBoundsGep(Value *Ptr) {
    963   if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Ptr))
    964     return GEP->isInBounds();
    965   return false;
    966 }
    967 
    968 /// Return true if an AddRec pointer \p Ptr is unsigned non-wrapping,
    969 /// i.e. monotonically increasing/decreasing.
    970 static bool isNoWrapAddRec(Value *Ptr, const SCEVAddRecExpr *AR,
    971                            PredicatedScalarEvolution &PSE, const Loop *L) {
    972   // FIXME: This should probably only return true for NUW.
    973   if (AR->getNoWrapFlags(SCEV::NoWrapMask))
    974     return true;
    975 
    976   // Scalar evolution does not propagate the non-wrapping flags to values that
    977   // are derived from a non-wrapping induction variable because non-wrapping
    978   // could be flow-sensitive.
    979   //
    980   // Look through the potentially overflowing instruction to try to prove
    981   // non-wrapping for the *specific* value of Ptr.
    982 
    983   // The arithmetic implied by an inbounds GEP can't overflow.
    984   auto *GEP = dyn_cast<GetElementPtrInst>(Ptr);
    985   if (!GEP || !GEP->isInBounds())
    986     return false;
    987 
    988   // Make sure there is only one non-const index and analyze that.
    989   Value *NonConstIndex = nullptr;
    990   for (Value *Index : GEP->indices())
    991     if (!isa<ConstantInt>(Index)) {
    992       if (NonConstIndex)
    993         return false;
    994       NonConstIndex = Index;
    995     }
    996   if (!NonConstIndex)
    997     // The recurrence is on the pointer, ignore for now.
    998     return false;
    999 
   1000   // The index in GEP is signed.  It is non-wrapping if it's derived from a NSW
   1001   // AddRec using a NSW operation.
   1002   if (auto *OBO = dyn_cast<OverflowingBinaryOperator>(NonConstIndex))
   1003     if (OBO->hasNoSignedWrap() &&
   1004         // Assume constant for other the operand so that the AddRec can be
   1005         // easily found.
   1006         isa<ConstantInt>(OBO->getOperand(1))) {
   1007       auto *OpScev = PSE.getSCEV(OBO->getOperand(0));
   1008 
   1009       if (auto *OpAR = dyn_cast<SCEVAddRecExpr>(OpScev))
   1010         return OpAR->getLoop() == L && OpAR->getNoWrapFlags(SCEV::FlagNSW);
   1011     }
   1012 
   1013   return false;
   1014 }
   1015 
   1016 /// Check whether the access through \p Ptr has a constant stride.
   1017 int64_t llvm::getPtrStride(PredicatedScalarEvolution &PSE, Value *Ptr,
   1018                            const Loop *Lp, const ValueToValueMap &StridesMap,
   1019                            bool Assume, bool ShouldCheckWrap) {
   1020   Type *Ty = Ptr->getType();
   1021   assert(Ty->isPointerTy() && "Unexpected non-ptr");
   1022 
   1023   // Make sure that the pointer does not point to aggregate types.
   1024   auto *PtrTy = cast<PointerType>(Ty);
   1025   if (PtrTy->getElementType()->isAggregateType()) {
   1026     LLVM_DEBUG(dbgs() << "LAA: Bad stride - Not a pointer to a scalar type"
   1027                       << *Ptr << "\n");
   1028     return 0;
   1029   }
   1030 
   1031   const SCEV *PtrScev = replaceSymbolicStrideSCEV(PSE, StridesMap, Ptr);
   1032 
   1033   const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(PtrScev);
   1034   if (Assume && !AR)
   1035     AR = PSE.getAsAddRec(Ptr);
   1036 
   1037   if (!AR) {
   1038     LLVM_DEBUG(dbgs() << "LAA: Bad stride - Not an AddRecExpr pointer " << *Ptr
   1039                       << " SCEV: " << *PtrScev << "\n");
   1040     return 0;
   1041   }
   1042 
   1043   // The access function must stride over the innermost loop.
   1044   if (Lp != AR->getLoop()) {
   1045     LLVM_DEBUG(dbgs() << "LAA: Bad stride - Not striding over innermost loop "
   1046                       << *Ptr << " SCEV: " << *AR << "\n");
   1047     return 0;
   1048   }
   1049 
   1050   // The address calculation must not wrap. Otherwise, a dependence could be
   1051   // inverted.
   1052   // An inbounds getelementptr that is a AddRec with a unit stride
   1053   // cannot wrap per definition. The unit stride requirement is checked later.
   1054   // An getelementptr without an inbounds attribute and unit stride would have
   1055   // to access the pointer value "0" which is undefined behavior in address
   1056   // space 0, therefore we can also vectorize this case.
   1057   bool IsInBoundsGEP = isInBoundsGep(Ptr);
   1058   bool IsNoWrapAddRec = !ShouldCheckWrap ||
   1059     PSE.hasNoOverflow(Ptr, SCEVWrapPredicate::IncrementNUSW) ||
   1060     isNoWrapAddRec(Ptr, AR, PSE, Lp);
   1061   if (!IsNoWrapAddRec && !IsInBoundsGEP &&
   1062       NullPointerIsDefined(Lp->getHeader()->getParent(),
   1063                            PtrTy->getAddressSpace())) {
   1064     if (Assume) {
   1065       PSE.setNoOverflow(Ptr, SCEVWrapPredicate::IncrementNUSW);
   1066       IsNoWrapAddRec = true;
   1067       LLVM_DEBUG(dbgs() << "LAA: Pointer may wrap in the address space:\n"
   1068                         << "LAA:   Pointer: " << *Ptr << "\n"
   1069                         << "LAA:   SCEV: " << *AR << "\n"
   1070                         << "LAA:   Added an overflow assumption\n");
   1071     } else {
   1072       LLVM_DEBUG(
   1073           dbgs() << "LAA: Bad stride - Pointer may wrap in the address space "
   1074                  << *Ptr << " SCEV: " << *AR << "\n");
   1075       return 0;
   1076     }
   1077   }
   1078 
   1079   // Check the step is constant.
   1080   const SCEV *Step = AR->getStepRecurrence(*PSE.getSE());
   1081 
   1082   // Calculate the pointer stride and check if it is constant.
   1083   const SCEVConstant *C = dyn_cast<SCEVConstant>(Step);
   1084   if (!C) {
   1085     LLVM_DEBUG(dbgs() << "LAA: Bad stride - Not a constant strided " << *Ptr
   1086                       << " SCEV: " << *AR << "\n");
   1087     return 0;
   1088   }
   1089 
   1090   auto &DL = Lp->getHeader()->getModule()->getDataLayout();
   1091   int64_t Size = DL.getTypeAllocSize(PtrTy->getElementType());
   1092   const APInt &APStepVal = C->getAPInt();
   1093 
   1094   // Huge step value - give up.
   1095   if (APStepVal.getBitWidth() > 64)
   1096     return 0;
   1097 
   1098   int64_t StepVal = APStepVal.getSExtValue();
   1099 
   1100   // Strided access.
   1101   int64_t Stride = StepVal / Size;
   1102   int64_t Rem = StepVal % Size;
   1103   if (Rem)
   1104     return 0;
   1105 
   1106   // If the SCEV could wrap but we have an inbounds gep with a unit stride we
   1107   // know we can't "wrap around the address space". In case of address space
   1108   // zero we know that this won't happen without triggering undefined behavior.
   1109   if (!IsNoWrapAddRec && Stride != 1 && Stride != -1 &&
   1110       (IsInBoundsGEP || !NullPointerIsDefined(Lp->getHeader()->getParent(),
   1111                                               PtrTy->getAddressSpace()))) {
   1112     if (Assume) {
   1113       // We can avoid this case by adding a run-time check.
   1114       LLVM_DEBUG(dbgs() << "LAA: Non unit strided pointer which is not either "
   1115                         << "inbounds or in address space 0 may wrap:\n"
   1116                         << "LAA:   Pointer: " << *Ptr << "\n"
   1117                         << "LAA:   SCEV: " << *AR << "\n"
   1118                         << "LAA:   Added an overflow assumption\n");
   1119       PSE.setNoOverflow(Ptr, SCEVWrapPredicate::IncrementNUSW);
   1120     } else
   1121       return 0;
   1122   }
   1123 
   1124   return Stride;
   1125 }
   1126 
   1127 Optional<int> llvm::getPointersDiff(Value *PtrA, Value *PtrB,
   1128                                     const DataLayout &DL, ScalarEvolution &SE,
   1129                                     bool StrictCheck, bool CheckType) {
   1130   assert(PtrA && PtrB && "Expected non-nullptr pointers.");
   1131   // Make sure that A and B are different pointers.
   1132   if (PtrA == PtrB)
   1133     return 0;
   1134 
   1135   // Make sure that PtrA and PtrB have the same type if required
   1136   if (CheckType && PtrA->getType() != PtrB->getType())
   1137     return None;
   1138 
   1139   unsigned ASA = PtrA->getType()->getPointerAddressSpace();
   1140   unsigned ASB = PtrB->getType()->getPointerAddressSpace();
   1141 
   1142   // Check that the address spaces match.
   1143   if (ASA != ASB)
   1144     return None;
   1145   unsigned IdxWidth = DL.getIndexSizeInBits(ASA);
   1146 
   1147   APInt OffsetA(IdxWidth, 0), OffsetB(IdxWidth, 0);
   1148   Value *PtrA1 = PtrA->stripAndAccumulateInBoundsConstantOffsets(DL, OffsetA);
   1149   Value *PtrB1 = PtrB->stripAndAccumulateInBoundsConstantOffsets(DL, OffsetB);
   1150 
   1151   int Val;
   1152   if (PtrA1 == PtrB1) {
   1153     // Retrieve the address space again as pointer stripping now tracks through
   1154     // `addrspacecast`.
   1155     ASA = cast<PointerType>(PtrA1->getType())->getAddressSpace();
   1156     ASB = cast<PointerType>(PtrB1->getType())->getAddressSpace();
   1157     // Check that the address spaces match and that the pointers are valid.
   1158     if (ASA != ASB)
   1159       return None;
   1160 
   1161     IdxWidth = DL.getIndexSizeInBits(ASA);
   1162     OffsetA = OffsetA.sextOrTrunc(IdxWidth);
   1163     OffsetB = OffsetB.sextOrTrunc(IdxWidth);
   1164 
   1165     OffsetB -= OffsetA;
   1166     Val = OffsetB.getSExtValue();
   1167   } else {
   1168     // Otherwise compute the distance with SCEV between the base pointers.
   1169     const SCEV *PtrSCEVA = SE.getSCEV(PtrA);
   1170     const SCEV *PtrSCEVB = SE.getSCEV(PtrB);
   1171     const auto *Diff =
   1172         dyn_cast<SCEVConstant>(SE.getMinusSCEV(PtrSCEVB, PtrSCEVA));
   1173     if (!Diff)
   1174       return None;
   1175     Val = Diff->getAPInt().getSExtValue();
   1176   }
   1177   Type *Ty = cast<PointerType>(PtrA->getType())->getElementType();
   1178   int Size = DL.getTypeStoreSize(Ty);
   1179   int Dist = Val / Size;
   1180 
   1181   // Ensure that the calculated distance matches the type-based one after all
   1182   // the bitcasts removal in the provided pointers.
   1183   if (!StrictCheck || Dist * Size == Val)
   1184     return Dist;
   1185   return None;
   1186 }
   1187 
   1188 bool llvm::sortPtrAccesses(ArrayRef<Value *> VL, const DataLayout &DL,
   1189                            ScalarEvolution &SE,
   1190                            SmallVectorImpl<unsigned> &SortedIndices) {
   1191   assert(llvm::all_of(
   1192              VL, [](const Value *V) { return V->getType()->isPointerTy(); }) &&
   1193          "Expected list of pointer operands.");
   1194   // Walk over the pointers, and map each of them to an offset relative to
   1195   // first pointer in the array.
   1196   Value *Ptr0 = VL[0];
   1197 
   1198   using DistOrdPair = std::pair<int64_t, int>;
   1199   auto Compare = [](const DistOrdPair &L, const DistOrdPair &R) {
   1200     return L.first < R.first;
   1201   };
   1202   std::set<DistOrdPair, decltype(Compare)> Offsets(Compare);
   1203   Offsets.emplace(0, 0);
   1204   int Cnt = 1;
   1205   bool IsConsecutive = true;
   1206   for (auto *Ptr : VL.drop_front()) {
   1207     Optional<int> Diff =
   1208         getPointersDiff(Ptr0, Ptr, DL, SE, /*StrictCheck=*/true);
   1209     if (!Diff)
   1210       return false;
   1211 
   1212     // Check if the pointer with the same offset is found.
   1213     int64_t Offset = *Diff;
   1214     auto Res = Offsets.emplace(Offset, Cnt);
   1215     if (!Res.second)
   1216       return false;
   1217     // Consecutive order if the inserted element is the last one.
   1218     IsConsecutive = IsConsecutive && std::next(Res.first) == Offsets.end();
   1219     ++Cnt;
   1220   }
   1221   SortedIndices.clear();
   1222   if (!IsConsecutive) {
   1223     // Fill SortedIndices array only if it is non-consecutive.
   1224     SortedIndices.resize(VL.size());
   1225     Cnt = 0;
   1226     for (const std::pair<int64_t, int> &Pair : Offsets) {
   1227       SortedIndices[Cnt] = Pair.second;
   1228       ++Cnt;
   1229     }
   1230   }
   1231   return true;
   1232 }
   1233 
   1234 /// Returns true if the memory operations \p A and \p B are consecutive.
   1235 bool llvm::isConsecutiveAccess(Value *A, Value *B, const DataLayout &DL,
   1236                                ScalarEvolution &SE, bool CheckType) {
   1237   Value *PtrA = getLoadStorePointerOperand(A);
   1238   Value *PtrB = getLoadStorePointerOperand(B);
   1239   if (!PtrA || !PtrB)
   1240     return false;
   1241   Optional<int> Diff =
   1242       getPointersDiff(PtrA, PtrB, DL, SE, /*StrictCheck=*/true, CheckType);
   1243   return Diff && *Diff == 1;
   1244 }
   1245 
   1246 MemoryDepChecker::VectorizationSafetyStatus
   1247 MemoryDepChecker::Dependence::isSafeForVectorization(DepType Type) {
   1248   switch (Type) {
   1249   case NoDep:
   1250   case Forward:
   1251   case BackwardVectorizable:
   1252     return VectorizationSafetyStatus::Safe;
   1253 
   1254   case Unknown:
   1255     return VectorizationSafetyStatus::PossiblySafeWithRtChecks;
   1256   case ForwardButPreventsForwarding:
   1257   case Backward:
   1258   case BackwardVectorizableButPreventsForwarding:
   1259     return VectorizationSafetyStatus::Unsafe;
   1260   }
   1261   llvm_unreachable("unexpected DepType!");
   1262 }
   1263 
   1264 bool MemoryDepChecker::Dependence::isBackward() const {
   1265   switch (Type) {
   1266   case NoDep:
   1267   case Forward:
   1268   case ForwardButPreventsForwarding:
   1269   case Unknown:
   1270     return false;
   1271 
   1272   case BackwardVectorizable:
   1273   case Backward:
   1274   case BackwardVectorizableButPreventsForwarding:
   1275     return true;
   1276   }
   1277   llvm_unreachable("unexpected DepType!");
   1278 }
   1279 
   1280 bool MemoryDepChecker::Dependence::isPossiblyBackward() const {
   1281   return isBackward() || Type == Unknown;
   1282 }
   1283 
   1284 bool MemoryDepChecker::Dependence::isForward() const {
   1285   switch (Type) {
   1286   case Forward:
   1287   case ForwardButPreventsForwarding:
   1288     return true;
   1289 
   1290   case NoDep:
   1291   case Unknown:
   1292   case BackwardVectorizable:
   1293   case Backward:
   1294   case BackwardVectorizableButPreventsForwarding:
   1295     return false;
   1296   }
   1297   llvm_unreachable("unexpected DepType!");
   1298 }
   1299 
   1300 bool MemoryDepChecker::couldPreventStoreLoadForward(uint64_t Distance,
   1301                                                     uint64_t TypeByteSize) {
   1302   // If loads occur at a distance that is not a multiple of a feasible vector
   1303   // factor store-load forwarding does not take place.
   1304   // Positive dependences might cause troubles because vectorizing them might
   1305   // prevent store-load forwarding making vectorized code run a lot slower.
   1306   //   a[i] = a[i-3] ^ a[i-8];
   1307   //   The stores to a[i:i+1] don't align with the stores to a[i-3:i-2] and
   1308   //   hence on your typical architecture store-load forwarding does not take
   1309   //   place. Vectorizing in such cases does not make sense.
   1310   // Store-load forwarding distance.
   1311 
   1312   // After this many iterations store-to-load forwarding conflicts should not
   1313   // cause any slowdowns.
   1314   const uint64_t NumItersForStoreLoadThroughMemory = 8 * TypeByteSize;
   1315   // Maximum vector factor.
   1316   uint64_t MaxVFWithoutSLForwardIssues = std::min(
   1317       VectorizerParams::MaxVectorWidth * TypeByteSize, MaxSafeDepDistBytes);
   1318 
   1319   // Compute the smallest VF at which the store and load would be misaligned.
   1320   for (uint64_t VF = 2 * TypeByteSize; VF <= MaxVFWithoutSLForwardIssues;
   1321        VF *= 2) {
   1322     // If the number of vector iteration between the store and the load are
   1323     // small we could incur conflicts.
   1324     if (Distance % VF && Distance / VF < NumItersForStoreLoadThroughMemory) {
   1325       MaxVFWithoutSLForwardIssues = (VF >> 1);
   1326       break;
   1327     }
   1328   }
   1329 
   1330   if (MaxVFWithoutSLForwardIssues < 2 * TypeByteSize) {
   1331     LLVM_DEBUG(
   1332         dbgs() << "LAA: Distance " << Distance
   1333                << " that could cause a store-load forwarding conflict\n");
   1334     return true;
   1335   }
   1336 
   1337   if (MaxVFWithoutSLForwardIssues < MaxSafeDepDistBytes &&
   1338       MaxVFWithoutSLForwardIssues !=
   1339           VectorizerParams::MaxVectorWidth * TypeByteSize)
   1340     MaxSafeDepDistBytes = MaxVFWithoutSLForwardIssues;
   1341   return false;
   1342 }
   1343 
   1344 void MemoryDepChecker::mergeInStatus(VectorizationSafetyStatus S) {
   1345   if (Status < S)
   1346     Status = S;
   1347 }
   1348 
   1349 /// Given a non-constant (unknown) dependence-distance \p Dist between two
   1350 /// memory accesses, that have the same stride whose absolute value is given
   1351 /// in \p Stride, and that have the same type size \p TypeByteSize,
   1352 /// in a loop whose takenCount is \p BackedgeTakenCount, check if it is
   1353 /// possible to prove statically that the dependence distance is larger
   1354 /// than the range that the accesses will travel through the execution of
   1355 /// the loop. If so, return true; false otherwise. This is useful for
   1356 /// example in loops such as the following (PR31098):
   1357 ///     for (i = 0; i < D; ++i) {
   1358 ///                = out[i];
   1359 ///       out[i+D] =
   1360 ///     }
   1361 static bool isSafeDependenceDistance(const DataLayout &DL, ScalarEvolution &SE,
   1362                                      const SCEV &BackedgeTakenCount,
   1363                                      const SCEV &Dist, uint64_t Stride,
   1364                                      uint64_t TypeByteSize) {
   1365 
   1366   // If we can prove that
   1367   //      (**) |Dist| > BackedgeTakenCount * Step
   1368   // where Step is the absolute stride of the memory accesses in bytes,
   1369   // then there is no dependence.
   1370   //
   1371   // Rationale:
   1372   // We basically want to check if the absolute distance (|Dist/Step|)
   1373   // is >= the loop iteration count (or > BackedgeTakenCount).
   1374   // This is equivalent to the Strong SIV Test (Practical Dependence Testing,
   1375   // Section 4.2.1); Note, that for vectorization it is sufficient to prove
   1376   // that the dependence distance is >= VF; This is checked elsewhere.
   1377   // But in some cases we can prune unknown dependence distances early, and
   1378   // even before selecting the VF, and without a runtime test, by comparing
   1379   // the distance against the loop iteration count. Since the vectorized code
   1380   // will be executed only if LoopCount >= VF, proving distance >= LoopCount
   1381   // also guarantees that distance >= VF.
   1382   //
   1383   const uint64_t ByteStride = Stride * TypeByteSize;
   1384   const SCEV *Step = SE.getConstant(BackedgeTakenCount.getType(), ByteStride);
   1385   const SCEV *Product = SE.getMulExpr(&BackedgeTakenCount, Step);
   1386 
   1387   const SCEV *CastedDist = &Dist;
   1388   const SCEV *CastedProduct = Product;
   1389   uint64_t DistTypeSize = DL.getTypeAllocSize(Dist.getType());
   1390   uint64_t ProductTypeSize = DL.getTypeAllocSize(Product->getType());
   1391 
   1392   // The dependence distance can be positive/negative, so we sign extend Dist;
   1393   // The multiplication of the absolute stride in bytes and the
   1394   // backedgeTakenCount is non-negative, so we zero extend Product.
   1395   if (DistTypeSize > ProductTypeSize)
   1396     CastedProduct = SE.getZeroExtendExpr(Product, Dist.getType());
   1397   else
   1398     CastedDist = SE.getNoopOrSignExtend(&Dist, Product->getType());
   1399 
   1400   // Is  Dist - (BackedgeTakenCount * Step) > 0 ?
   1401   // (If so, then we have proven (**) because |Dist| >= Dist)
   1402   const SCEV *Minus = SE.getMinusSCEV(CastedDist, CastedProduct);
   1403   if (SE.isKnownPositive(Minus))
   1404     return true;
   1405 
   1406   // Second try: Is  -Dist - (BackedgeTakenCount * Step) > 0 ?
   1407   // (If so, then we have proven (**) because |Dist| >= -1*Dist)
   1408   const SCEV *NegDist = SE.getNegativeSCEV(CastedDist);
   1409   Minus = SE.getMinusSCEV(NegDist, CastedProduct);
   1410   if (SE.isKnownPositive(Minus))
   1411     return true;
   1412 
   1413   return false;
   1414 }
   1415 
   1416 /// Check the dependence for two accesses with the same stride \p Stride.
   1417 /// \p Distance is the positive distance and \p TypeByteSize is type size in
   1418 /// bytes.
   1419 ///
   1420 /// \returns true if they are independent.
   1421 static bool areStridedAccessesIndependent(uint64_t Distance, uint64_t Stride,
   1422                                           uint64_t TypeByteSize) {
   1423   assert(Stride > 1 && "The stride must be greater than 1");
   1424   assert(TypeByteSize > 0 && "The type size in byte must be non-zero");
   1425   assert(Distance > 0 && "The distance must be non-zero");
   1426 
   1427   // Skip if the distance is not multiple of type byte size.
   1428   if (Distance % TypeByteSize)
   1429     return false;
   1430 
   1431   uint64_t ScaledDist = Distance / TypeByteSize;
   1432 
   1433   // No dependence if the scaled distance is not multiple of the stride.
   1434   // E.g.
   1435   //      for (i = 0; i < 1024 ; i += 4)
   1436   //        A[i+2] = A[i] + 1;
   1437   //
   1438   // Two accesses in memory (scaled distance is 2, stride is 4):
   1439   //     | A[0] |      |      |      | A[4] |      |      |      |
   1440   //     |      |      | A[2] |      |      |      | A[6] |      |
   1441   //
   1442   // E.g.
   1443   //      for (i = 0; i < 1024 ; i += 3)
   1444   //        A[i+4] = A[i] + 1;
   1445   //
   1446   // Two accesses in memory (scaled distance is 4, stride is 3):
   1447   //     | A[0] |      |      | A[3] |      |      | A[6] |      |      |
   1448   //     |      |      |      |      | A[4] |      |      | A[7] |      |
   1449   return ScaledDist % Stride;
   1450 }
   1451 
   1452 MemoryDepChecker::Dependence::DepType
   1453 MemoryDepChecker::isDependent(const MemAccessInfo &A, unsigned AIdx,
   1454                               const MemAccessInfo &B, unsigned BIdx,
   1455                               const ValueToValueMap &Strides) {
   1456   assert (AIdx < BIdx && "Must pass arguments in program order");
   1457 
   1458   Value *APtr = A.getPointer();
   1459   Value *BPtr = B.getPointer();
   1460   bool AIsWrite = A.getInt();
   1461   bool BIsWrite = B.getInt();
   1462 
   1463   // Two reads are independent.
   1464   if (!AIsWrite && !BIsWrite)
   1465     return Dependence::NoDep;
   1466 
   1467   // We cannot check pointers in different address spaces.
   1468   if (APtr->getType()->getPointerAddressSpace() !=
   1469       BPtr->getType()->getPointerAddressSpace())
   1470     return Dependence::Unknown;
   1471 
   1472   int64_t StrideAPtr = getPtrStride(PSE, APtr, InnermostLoop, Strides, true);
   1473   int64_t StrideBPtr = getPtrStride(PSE, BPtr, InnermostLoop, Strides, true);
   1474 
   1475   const SCEV *Src = PSE.getSCEV(APtr);
   1476   const SCEV *Sink = PSE.getSCEV(BPtr);
   1477 
   1478   // If the induction step is negative we have to invert source and sink of the
   1479   // dependence.
   1480   if (StrideAPtr < 0) {
   1481     std::swap(APtr, BPtr);
   1482     std::swap(Src, Sink);
   1483     std::swap(AIsWrite, BIsWrite);
   1484     std::swap(AIdx, BIdx);
   1485     std::swap(StrideAPtr, StrideBPtr);
   1486   }
   1487 
   1488   const SCEV *Dist = PSE.getSE()->getMinusSCEV(Sink, Src);
   1489 
   1490   LLVM_DEBUG(dbgs() << "LAA: Src Scev: " << *Src << "Sink Scev: " << *Sink
   1491                     << "(Induction step: " << StrideAPtr << ")\n");
   1492   LLVM_DEBUG(dbgs() << "LAA: Distance for " << *InstMap[AIdx] << " to "
   1493                     << *InstMap[BIdx] << ": " << *Dist << "\n");
   1494 
   1495   // Need accesses with constant stride. We don't want to vectorize
   1496   // "A[B[i]] += ..." and similar code or pointer arithmetic that could wrap in
   1497   // the address space.
   1498   if (!StrideAPtr || !StrideBPtr || StrideAPtr != StrideBPtr){
   1499     LLVM_DEBUG(dbgs() << "Pointer access with non-constant stride\n");
   1500     return Dependence::Unknown;
   1501   }
   1502 
   1503   Type *ATy = APtr->getType()->getPointerElementType();
   1504   Type *BTy = BPtr->getType()->getPointerElementType();
   1505   auto &DL = InnermostLoop->getHeader()->getModule()->getDataLayout();
   1506   uint64_t TypeByteSize = DL.getTypeAllocSize(ATy);
   1507   uint64_t Stride = std::abs(StrideAPtr);
   1508   const SCEVConstant *C = dyn_cast<SCEVConstant>(Dist);
   1509   if (!C) {
   1510     if (TypeByteSize == DL.getTypeAllocSize(BTy) &&
   1511         isSafeDependenceDistance(DL, *(PSE.getSE()),
   1512                                  *(PSE.getBackedgeTakenCount()), *Dist, Stride,
   1513                                  TypeByteSize))
   1514       return Dependence::NoDep;
   1515 
   1516     LLVM_DEBUG(dbgs() << "LAA: Dependence because of non-constant distance\n");
   1517     FoundNonConstantDistanceDependence = true;
   1518     return Dependence::Unknown;
   1519   }
   1520 
   1521   const APInt &Val = C->getAPInt();
   1522   int64_t Distance = Val.getSExtValue();
   1523 
   1524   // Attempt to prove strided accesses independent.
   1525   if (std::abs(Distance) > 0 && Stride > 1 && ATy == BTy &&
   1526       areStridedAccessesIndependent(std::abs(Distance), Stride, TypeByteSize)) {
   1527     LLVM_DEBUG(dbgs() << "LAA: Strided accesses are independent\n");
   1528     return Dependence::NoDep;
   1529   }
   1530 
   1531   // Negative distances are not plausible dependencies.
   1532   if (Val.isNegative()) {
   1533     bool IsTrueDataDependence = (AIsWrite && !BIsWrite);
   1534     if (IsTrueDataDependence && EnableForwardingConflictDetection &&
   1535         (couldPreventStoreLoadForward(Val.abs().getZExtValue(), TypeByteSize) ||
   1536          ATy != BTy)) {
   1537       LLVM_DEBUG(dbgs() << "LAA: Forward but may prevent st->ld forwarding\n");
   1538       return Dependence::ForwardButPreventsForwarding;
   1539     }
   1540 
   1541     LLVM_DEBUG(dbgs() << "LAA: Dependence is negative\n");
   1542     return Dependence::Forward;
   1543   }
   1544 
   1545   // Write to the same location with the same size.
   1546   // Could be improved to assert type sizes are the same (i32 == float, etc).
   1547   if (Val == 0) {
   1548     if (ATy == BTy)
   1549       return Dependence::Forward;
   1550     LLVM_DEBUG(
   1551         dbgs() << "LAA: Zero dependence difference but different types\n");
   1552     return Dependence::Unknown;
   1553   }
   1554 
   1555   assert(Val.isStrictlyPositive() && "Expect a positive value");
   1556 
   1557   if (ATy != BTy) {
   1558     LLVM_DEBUG(
   1559         dbgs()
   1560         << "LAA: ReadWrite-Write positive dependency with different types\n");
   1561     return Dependence::Unknown;
   1562   }
   1563 
   1564   // Bail out early if passed-in parameters make vectorization not feasible.
   1565   unsigned ForcedFactor = (VectorizerParams::VectorizationFactor ?
   1566                            VectorizerParams::VectorizationFactor : 1);
   1567   unsigned ForcedUnroll = (VectorizerParams::VectorizationInterleave ?
   1568                            VectorizerParams::VectorizationInterleave : 1);
   1569   // The minimum number of iterations for a vectorized/unrolled version.
   1570   unsigned MinNumIter = std::max(ForcedFactor * ForcedUnroll, 2U);
   1571 
   1572   // It's not vectorizable if the distance is smaller than the minimum distance
   1573   // needed for a vectroized/unrolled version. Vectorizing one iteration in
   1574   // front needs TypeByteSize * Stride. Vectorizing the last iteration needs
   1575   // TypeByteSize (No need to plus the last gap distance).
   1576   //
   1577   // E.g. Assume one char is 1 byte in memory and one int is 4 bytes.
   1578   //      foo(int *A) {
   1579   //        int *B = (int *)((char *)A + 14);
   1580   //        for (i = 0 ; i < 1024 ; i += 2)
   1581   //          B[i] = A[i] + 1;
   1582   //      }
   1583   //
   1584   // Two accesses in memory (stride is 2):
   1585   //     | A[0] |      | A[2] |      | A[4] |      | A[6] |      |
   1586   //                              | B[0] |      | B[2] |      | B[4] |
   1587   //
   1588   // Distance needs for vectorizing iterations except the last iteration:
   1589   // 4 * 2 * (MinNumIter - 1). Distance needs for the last iteration: 4.
   1590   // So the minimum distance needed is: 4 * 2 * (MinNumIter - 1) + 4.
   1591   //
   1592   // If MinNumIter is 2, it is vectorizable as the minimum distance needed is
   1593   // 12, which is less than distance.
   1594   //
   1595   // If MinNumIter is 4 (Say if a user forces the vectorization factor to be 4),
   1596   // the minimum distance needed is 28, which is greater than distance. It is
   1597   // not safe to do vectorization.
   1598   uint64_t MinDistanceNeeded =
   1599       TypeByteSize * Stride * (MinNumIter - 1) + TypeByteSize;
   1600   if (MinDistanceNeeded > static_cast<uint64_t>(Distance)) {
   1601     LLVM_DEBUG(dbgs() << "LAA: Failure because of positive distance "
   1602                       << Distance << '\n');
   1603     return Dependence::Backward;
   1604   }
   1605 
   1606   // Unsafe if the minimum distance needed is greater than max safe distance.
   1607   if (MinDistanceNeeded > MaxSafeDepDistBytes) {
   1608     LLVM_DEBUG(dbgs() << "LAA: Failure because it needs at least "
   1609                       << MinDistanceNeeded << " size in bytes");
   1610     return Dependence::Backward;
   1611   }
   1612 
   1613   // Positive distance bigger than max vectorization factor.
   1614   // FIXME: Should use max factor instead of max distance in bytes, which could
   1615   // not handle different types.
   1616   // E.g. Assume one char is 1 byte in memory and one int is 4 bytes.
   1617   //      void foo (int *A, char *B) {
   1618   //        for (unsigned i = 0; i < 1024; i++) {
   1619   //          A[i+2] = A[i] + 1;
   1620   //          B[i+2] = B[i] + 1;
   1621   //        }
   1622   //      }
   1623   //
   1624   // This case is currently unsafe according to the max safe distance. If we
   1625   // analyze the two accesses on array B, the max safe dependence distance
   1626   // is 2. Then we analyze the accesses on array A, the minimum distance needed
   1627   // is 8, which is less than 2 and forbidden vectorization, But actually
   1628   // both A and B could be vectorized by 2 iterations.
   1629   MaxSafeDepDistBytes =
   1630       std::min(static_cast<uint64_t>(Distance), MaxSafeDepDistBytes);
   1631 
   1632   bool IsTrueDataDependence = (!AIsWrite && BIsWrite);
   1633   if (IsTrueDataDependence && EnableForwardingConflictDetection &&
   1634       couldPreventStoreLoadForward(Distance, TypeByteSize))
   1635     return Dependence::BackwardVectorizableButPreventsForwarding;
   1636 
   1637   uint64_t MaxVF = MaxSafeDepDistBytes / (TypeByteSize * Stride);
   1638   LLVM_DEBUG(dbgs() << "LAA: Positive distance " << Val.getSExtValue()
   1639                     << " with max VF = " << MaxVF << '\n');
   1640   uint64_t MaxVFInBits = MaxVF * TypeByteSize * 8;
   1641   MaxSafeVectorWidthInBits = std::min(MaxSafeVectorWidthInBits, MaxVFInBits);
   1642   return Dependence::BackwardVectorizable;
   1643 }
   1644 
   1645 bool MemoryDepChecker::areDepsSafe(DepCandidates &AccessSets,
   1646                                    MemAccessInfoList &CheckDeps,
   1647                                    const ValueToValueMap &Strides) {
   1648 
   1649   MaxSafeDepDistBytes = -1;
   1650   SmallPtrSet<MemAccessInfo, 8> Visited;
   1651   for (MemAccessInfo CurAccess : CheckDeps) {
   1652     if (Visited.count(CurAccess))
   1653       continue;
   1654 
   1655     // Get the relevant memory access set.
   1656     EquivalenceClasses<MemAccessInfo>::iterator I =
   1657       AccessSets.findValue(AccessSets.getLeaderValue(CurAccess));
   1658 
   1659     // Check accesses within this set.
   1660     EquivalenceClasses<MemAccessInfo>::member_iterator AI =
   1661         AccessSets.member_begin(I);
   1662     EquivalenceClasses<MemAccessInfo>::member_iterator AE =
   1663         AccessSets.member_end();
   1664 
   1665     // Check every access pair.
   1666     while (AI != AE) {
   1667       Visited.insert(*AI);
   1668       bool AIIsWrite = AI->getInt();
   1669       // Check loads only against next equivalent class, but stores also against
   1670       // other stores in the same equivalence class - to the same address.
   1671       EquivalenceClasses<MemAccessInfo>::member_iterator OI =
   1672           (AIIsWrite ? AI : std::next(AI));
   1673       while (OI != AE) {
   1674         // Check every accessing instruction pair in program order.
   1675         for (std::vector<unsigned>::iterator I1 = Accesses[*AI].begin(),
   1676              I1E = Accesses[*AI].end(); I1 != I1E; ++I1)
   1677           // Scan all accesses of another equivalence class, but only the next
   1678           // accesses of the same equivalent class.
   1679           for (std::vector<unsigned>::iterator
   1680                    I2 = (OI == AI ? std::next(I1) : Accesses[*OI].begin()),
   1681                    I2E = (OI == AI ? I1E : Accesses[*OI].end());
   1682                I2 != I2E; ++I2) {
   1683             auto A = std::make_pair(&*AI, *I1);
   1684             auto B = std::make_pair(&*OI, *I2);
   1685 
   1686             assert(*I1 != *I2);
   1687             if (*I1 > *I2)
   1688               std::swap(A, B);
   1689 
   1690             Dependence::DepType Type =
   1691                 isDependent(*A.first, A.second, *B.first, B.second, Strides);
   1692             mergeInStatus(Dependence::isSafeForVectorization(Type));
   1693 
   1694             // Gather dependences unless we accumulated MaxDependences
   1695             // dependences.  In that case return as soon as we find the first
   1696             // unsafe dependence.  This puts a limit on this quadratic
   1697             // algorithm.
   1698             if (RecordDependences) {
   1699               if (Type != Dependence::NoDep)
   1700                 Dependences.push_back(Dependence(A.second, B.second, Type));
   1701 
   1702               if (Dependences.size() >= MaxDependences) {
   1703                 RecordDependences = false;
   1704                 Dependences.clear();
   1705                 LLVM_DEBUG(dbgs()
   1706                            << "Too many dependences, stopped recording\n");
   1707               }
   1708             }
   1709             if (!RecordDependences && !isSafeForVectorization())
   1710               return false;
   1711           }
   1712         ++OI;
   1713       }
   1714       AI++;
   1715     }
   1716   }
   1717 
   1718   LLVM_DEBUG(dbgs() << "Total Dependences: " << Dependences.size() << "\n");
   1719   return isSafeForVectorization();
   1720 }
   1721 
   1722 SmallVector<Instruction *, 4>
   1723 MemoryDepChecker::getInstructionsForAccess(Value *Ptr, bool isWrite) const {
   1724   MemAccessInfo Access(Ptr, isWrite);
   1725   auto &IndexVector = Accesses.find(Access)->second;
   1726 
   1727   SmallVector<Instruction *, 4> Insts;
   1728   transform(IndexVector,
   1729                  std::back_inserter(Insts),
   1730                  [&](unsigned Idx) { return this->InstMap[Idx]; });
   1731   return Insts;
   1732 }
   1733 
   1734 const char *MemoryDepChecker::Dependence::DepName[] = {
   1735     "NoDep", "Unknown", "Forward", "ForwardButPreventsForwarding", "Backward",
   1736     "BackwardVectorizable", "BackwardVectorizableButPreventsForwarding"};
   1737 
   1738 void MemoryDepChecker::Dependence::print(
   1739     raw_ostream &OS, unsigned Depth,
   1740     const SmallVectorImpl<Instruction *> &Instrs) const {
   1741   OS.indent(Depth) << DepName[Type] << ":\n";
   1742   OS.indent(Depth + 2) << *Instrs[Source] << " -> \n";
   1743   OS.indent(Depth + 2) << *Instrs[Destination] << "\n";
   1744 }
   1745 
   1746 bool LoopAccessInfo::canAnalyzeLoop() {
   1747   // We need to have a loop header.
   1748   LLVM_DEBUG(dbgs() << "LAA: Found a loop in "
   1749                     << TheLoop->getHeader()->getParent()->getName() << ": "
   1750                     << TheLoop->getHeader()->getName() << '\n');
   1751 
   1752   // We can only analyze innermost loops.
   1753   if (!TheLoop->isInnermost()) {
   1754     LLVM_DEBUG(dbgs() << "LAA: loop is not the innermost loop\n");
   1755     recordAnalysis("NotInnerMostLoop") << "loop is not the innermost loop";
   1756     return false;
   1757   }
   1758 
   1759   // We must have a single backedge.
   1760   if (TheLoop->getNumBackEdges() != 1) {
   1761     LLVM_DEBUG(
   1762         dbgs() << "LAA: loop control flow is not understood by analyzer\n");
   1763     recordAnalysis("CFGNotUnderstood")
   1764         << "loop control flow is not understood by analyzer";
   1765     return false;
   1766   }
   1767 
   1768   // ScalarEvolution needs to be able to find the exit count.
   1769   const SCEV *ExitCount = PSE->getBackedgeTakenCount();
   1770   if (isa<SCEVCouldNotCompute>(ExitCount)) {
   1771     recordAnalysis("CantComputeNumberOfIterations")
   1772         << "could not determine number of loop iterations";
   1773     LLVM_DEBUG(dbgs() << "LAA: SCEV could not compute the loop exit count.\n");
   1774     return false;
   1775   }
   1776 
   1777   return true;
   1778 }
   1779 
   1780 void LoopAccessInfo::analyzeLoop(AAResults *AA, LoopInfo *LI,
   1781                                  const TargetLibraryInfo *TLI,
   1782                                  DominatorTree *DT) {
   1783   typedef SmallPtrSet<Value*, 16> ValueSet;
   1784 
   1785   // Holds the Load and Store instructions.
   1786   SmallVector<LoadInst *, 16> Loads;
   1787   SmallVector<StoreInst *, 16> Stores;
   1788 
   1789   // Holds all the different accesses in the loop.
   1790   unsigned NumReads = 0;
   1791   unsigned NumReadWrites = 0;
   1792 
   1793   bool HasComplexMemInst = false;
   1794 
   1795   // A runtime check is only legal to insert if there are no convergent calls.
   1796   HasConvergentOp = false;
   1797 
   1798   PtrRtChecking->Pointers.clear();
   1799   PtrRtChecking->Need = false;
   1800 
   1801   const bool IsAnnotatedParallel = TheLoop->isAnnotatedParallel();
   1802 
   1803   const bool EnableMemAccessVersioningOfLoop =
   1804       EnableMemAccessVersioning &&
   1805       !TheLoop->getHeader()->getParent()->hasOptSize();
   1806 
   1807   // For each block.
   1808   for (BasicBlock *BB : TheLoop->blocks()) {
   1809     // Scan the BB and collect legal loads and stores. Also detect any
   1810     // convergent instructions.
   1811     for (Instruction &I : *BB) {
   1812       if (auto *Call = dyn_cast<CallBase>(&I)) {
   1813         if (Call->isConvergent())
   1814           HasConvergentOp = true;
   1815       }
   1816 
   1817       // With both a non-vectorizable memory instruction and a convergent
   1818       // operation, found in this loop, no reason to continue the search.
   1819       if (HasComplexMemInst && HasConvergentOp) {
   1820         CanVecMem = false;
   1821         return;
   1822       }
   1823 
   1824       // Avoid hitting recordAnalysis multiple times.
   1825       if (HasComplexMemInst)
   1826         continue;
   1827 
   1828       // If this is a load, save it. If this instruction can read from memory
   1829       // but is not a load, then we quit. Notice that we don't handle function
   1830       // calls that read or write.
   1831       if (I.mayReadFromMemory()) {
   1832         // Many math library functions read the rounding mode. We will only
   1833         // vectorize a loop if it contains known function calls that don't set
   1834         // the flag. Therefore, it is safe to ignore this read from memory.
   1835         auto *Call = dyn_cast<CallInst>(&I);
   1836         if (Call && getVectorIntrinsicIDForCall(Call, TLI))
   1837           continue;
   1838 
   1839         // If the function has an explicit vectorized counterpart, we can safely
   1840         // assume that it can be vectorized.
   1841         if (Call && !Call->isNoBuiltin() && Call->getCalledFunction() &&
   1842             !VFDatabase::getMappings(*Call).empty())
   1843           continue;
   1844 
   1845         auto *Ld = dyn_cast<LoadInst>(&I);
   1846         if (!Ld) {
   1847           recordAnalysis("CantVectorizeInstruction", Ld)
   1848             << "instruction cannot be vectorized";
   1849           HasComplexMemInst = true;
   1850           continue;
   1851         }
   1852         if (!Ld->isSimple() && !IsAnnotatedParallel) {
   1853           recordAnalysis("NonSimpleLoad", Ld)
   1854               << "read with atomic ordering or volatile read";
   1855           LLVM_DEBUG(dbgs() << "LAA: Found a non-simple load.\n");
   1856           HasComplexMemInst = true;
   1857           continue;
   1858         }
   1859         NumLoads++;
   1860         Loads.push_back(Ld);
   1861         DepChecker->addAccess(Ld);
   1862         if (EnableMemAccessVersioningOfLoop)
   1863           collectStridedAccess(Ld);
   1864         continue;
   1865       }
   1866 
   1867       // Save 'store' instructions. Abort if other instructions write to memory.
   1868       if (I.mayWriteToMemory()) {
   1869         auto *St = dyn_cast<StoreInst>(&I);
   1870         if (!St) {
   1871           recordAnalysis("CantVectorizeInstruction", St)
   1872               << "instruction cannot be vectorized";
   1873           HasComplexMemInst = true;
   1874           continue;
   1875         }
   1876         if (!St->isSimple() && !IsAnnotatedParallel) {
   1877           recordAnalysis("NonSimpleStore", St)
   1878               << "write with atomic ordering or volatile write";
   1879           LLVM_DEBUG(dbgs() << "LAA: Found a non-simple store.\n");
   1880           HasComplexMemInst = true;
   1881           continue;
   1882         }
   1883         NumStores++;
   1884         Stores.push_back(St);
   1885         DepChecker->addAccess(St);
   1886         if (EnableMemAccessVersioningOfLoop)
   1887           collectStridedAccess(St);
   1888       }
   1889     } // Next instr.
   1890   } // Next block.
   1891 
   1892   if (HasComplexMemInst) {
   1893     CanVecMem = false;
   1894     return;
   1895   }
   1896 
   1897   // Now we have two lists that hold the loads and the stores.
   1898   // Next, we find the pointers that they use.
   1899 
   1900   // Check if we see any stores. If there are no stores, then we don't
   1901   // care if the pointers are *restrict*.
   1902   if (!Stores.size()) {
   1903     LLVM_DEBUG(dbgs() << "LAA: Found a read-only loop!\n");
   1904     CanVecMem = true;
   1905     return;
   1906   }
   1907 
   1908   MemoryDepChecker::DepCandidates DependentAccesses;
   1909   AccessAnalysis Accesses(TheLoop, AA, LI, DependentAccesses, *PSE);
   1910 
   1911   // Holds the analyzed pointers. We don't want to call getUnderlyingObjects
   1912   // multiple times on the same object. If the ptr is accessed twice, once
   1913   // for read and once for write, it will only appear once (on the write
   1914   // list). This is okay, since we are going to check for conflicts between
   1915   // writes and between reads and writes, but not between reads and reads.
   1916   ValueSet Seen;
   1917 
   1918   // Record uniform store addresses to identify if we have multiple stores
   1919   // to the same address.
   1920   ValueSet UniformStores;
   1921 
   1922   for (StoreInst *ST : Stores) {
   1923     Value *Ptr = ST->getPointerOperand();
   1924 
   1925     if (isUniform(Ptr))
   1926       HasDependenceInvolvingLoopInvariantAddress |=
   1927           !UniformStores.insert(Ptr).second;
   1928 
   1929     // If we did *not* see this pointer before, insert it to  the read-write
   1930     // list. At this phase it is only a 'write' list.
   1931     if (Seen.insert(Ptr).second) {
   1932       ++NumReadWrites;
   1933 
   1934       MemoryLocation Loc = MemoryLocation::get(ST);
   1935       // The TBAA metadata could have a control dependency on the predication
   1936       // condition, so we cannot rely on it when determining whether or not we
   1937       // need runtime pointer checks.
   1938       if (blockNeedsPredication(ST->getParent(), TheLoop, DT))
   1939         Loc.AATags.TBAA = nullptr;
   1940 
   1941       // SCEV does not look through non-header PHIs inside the loop. Such phis
   1942       // can be analyzed by adding separate accesses for each incoming pointer
   1943       // value.
   1944       auto *PN = dyn_cast<PHINode>(Loc.Ptr);
   1945       if (PN && TheLoop->contains(PN->getParent()) &&
   1946           PN->getParent() != TheLoop->getHeader()) {
   1947         for (const Use &Inc : PN->incoming_values()) {
   1948           MemoryLocation NewLoc = Loc.getWithNewPtr(Inc);
   1949           Accesses.addStore(NewLoc);
   1950         }
   1951       } else
   1952         Accesses.addStore(Loc);
   1953     }
   1954   }
   1955 
   1956   if (IsAnnotatedParallel) {
   1957     LLVM_DEBUG(
   1958         dbgs() << "LAA: A loop annotated parallel, ignore memory dependency "
   1959                << "checks.\n");
   1960     CanVecMem = true;
   1961     return;
   1962   }
   1963 
   1964   for (LoadInst *LD : Loads) {
   1965     Value *Ptr = LD->getPointerOperand();
   1966     // If we did *not* see this pointer before, insert it to the
   1967     // read list. If we *did* see it before, then it is already in
   1968     // the read-write list. This allows us to vectorize expressions
   1969     // such as A[i] += x;  Because the address of A[i] is a read-write
   1970     // pointer. This only works if the index of A[i] is consecutive.
   1971     // If the address of i is unknown (for example A[B[i]]) then we may
   1972     // read a few words, modify, and write a few words, and some of the
   1973     // words may be written to the same address.
   1974     bool IsReadOnlyPtr = false;
   1975     if (Seen.insert(Ptr).second ||
   1976         !getPtrStride(*PSE, Ptr, TheLoop, SymbolicStrides)) {
   1977       ++NumReads;
   1978       IsReadOnlyPtr = true;
   1979     }
   1980 
   1981     // See if there is an unsafe dependency between a load to a uniform address and
   1982     // store to the same uniform address.
   1983     if (UniformStores.count(Ptr)) {
   1984       LLVM_DEBUG(dbgs() << "LAA: Found an unsafe dependency between a uniform "
   1985                            "load and uniform store to the same address!\n");
   1986       HasDependenceInvolvingLoopInvariantAddress = true;
   1987     }
   1988 
   1989     MemoryLocation Loc = MemoryLocation::get(LD);
   1990     // The TBAA metadata could have a control dependency on the predication
   1991     // condition, so we cannot rely on it when determining whether or not we
   1992     // need runtime pointer checks.
   1993     if (blockNeedsPredication(LD->getParent(), TheLoop, DT))
   1994       Loc.AATags.TBAA = nullptr;
   1995 
   1996     // SCEV does not look through non-header PHIs inside the loop. Such phis can
   1997     // be analyzed by adding separate accesses for each incoming pointer value.
   1998     auto *PN = dyn_cast<PHINode>(Loc.Ptr);
   1999     if (PN && TheLoop->contains(PN->getParent()) &&
   2000         PN->getParent() != TheLoop->getHeader()) {
   2001       for (const Use &Inc : PN->incoming_values()) {
   2002         MemoryLocation NewLoc = Loc.getWithNewPtr(Inc);
   2003         Accesses.addLoad(NewLoc, IsReadOnlyPtr);
   2004       }
   2005     } else
   2006       Accesses.addLoad(Loc, IsReadOnlyPtr);
   2007   }
   2008 
   2009   // If we write (or read-write) to a single destination and there are no
   2010   // other reads in this loop then is it safe to vectorize.
   2011   if (NumReadWrites == 1 && NumReads == 0) {
   2012     LLVM_DEBUG(dbgs() << "LAA: Found a write-only loop!\n");
   2013     CanVecMem = true;
   2014     return;
   2015   }
   2016 
   2017   // Build dependence sets and check whether we need a runtime pointer bounds
   2018   // check.
   2019   Accesses.buildDependenceSets();
   2020 
   2021   // Find pointers with computable bounds. We are going to use this information
   2022   // to place a runtime bound check.
   2023   bool CanDoRTIfNeeded = Accesses.canCheckPtrAtRT(*PtrRtChecking, PSE->getSE(),
   2024                                                   TheLoop, SymbolicStrides);
   2025   if (!CanDoRTIfNeeded) {
   2026     recordAnalysis("CantIdentifyArrayBounds") << "cannot identify array bounds";
   2027     LLVM_DEBUG(dbgs() << "LAA: We can't vectorize because we can't find "
   2028                       << "the array bounds.\n");
   2029     CanVecMem = false;
   2030     return;
   2031   }
   2032 
   2033   LLVM_DEBUG(
   2034     dbgs() << "LAA: May be able to perform a memory runtime check if needed.\n");
   2035 
   2036   CanVecMem = true;
   2037   if (Accesses.isDependencyCheckNeeded()) {
   2038     LLVM_DEBUG(dbgs() << "LAA: Checking memory dependencies\n");
   2039     CanVecMem = DepChecker->areDepsSafe(
   2040         DependentAccesses, Accesses.getDependenciesToCheck(), SymbolicStrides);
   2041     MaxSafeDepDistBytes = DepChecker->getMaxSafeDepDistBytes();
   2042 
   2043     if (!CanVecMem && DepChecker->shouldRetryWithRuntimeCheck()) {
   2044       LLVM_DEBUG(dbgs() << "LAA: Retrying with memory checks\n");
   2045 
   2046       // Clear the dependency checks. We assume they are not needed.
   2047       Accesses.resetDepChecks(*DepChecker);
   2048 
   2049       PtrRtChecking->reset();
   2050       PtrRtChecking->Need = true;
   2051 
   2052       auto *SE = PSE->getSE();
   2053       CanDoRTIfNeeded = Accesses.canCheckPtrAtRT(*PtrRtChecking, SE, TheLoop,
   2054                                                  SymbolicStrides, true);
   2055 
   2056       // Check that we found the bounds for the pointer.
   2057       if (!CanDoRTIfNeeded) {
   2058         recordAnalysis("CantCheckMemDepsAtRunTime")
   2059             << "cannot check memory dependencies at runtime";
   2060         LLVM_DEBUG(dbgs() << "LAA: Can't vectorize with memory checks\n");
   2061         CanVecMem = false;
   2062         return;
   2063       }
   2064 
   2065       CanVecMem = true;
   2066     }
   2067   }
   2068 
   2069   if (HasConvergentOp) {
   2070     recordAnalysis("CantInsertRuntimeCheckWithConvergent")
   2071       << "cannot add control dependency to convergent operation";
   2072     LLVM_DEBUG(dbgs() << "LAA: We can't vectorize because a runtime check "
   2073                          "would be needed with a convergent operation\n");
   2074     CanVecMem = false;
   2075     return;
   2076   }
   2077 
   2078   if (CanVecMem)
   2079     LLVM_DEBUG(
   2080         dbgs() << "LAA: No unsafe dependent memory operations in loop.  We"
   2081                << (PtrRtChecking->Need ? "" : " don't")
   2082                << " need runtime memory checks.\n");
   2083   else {
   2084     recordAnalysis("UnsafeMemDep")
   2085         << "unsafe dependent memory operations in loop. Use "
   2086            "#pragma loop distribute(enable) to allow loop distribution "
   2087            "to attempt to isolate the offending operations into a separate "
   2088            "loop";
   2089     LLVM_DEBUG(dbgs() << "LAA: unsafe dependent memory operations in loop\n");
   2090   }
   2091 }
   2092 
   2093 bool LoopAccessInfo::blockNeedsPredication(BasicBlock *BB, Loop *TheLoop,
   2094                                            DominatorTree *DT)  {
   2095   assert(TheLoop->contains(BB) && "Unknown block used");
   2096 
   2097   // Blocks that do not dominate the latch need predication.
   2098   BasicBlock* Latch = TheLoop->getLoopLatch();
   2099   return !DT->dominates(BB, Latch);
   2100 }
   2101 
   2102 OptimizationRemarkAnalysis &LoopAccessInfo::recordAnalysis(StringRef RemarkName,
   2103                                                            Instruction *I) {
   2104   assert(!Report && "Multiple reports generated");
   2105 
   2106   Value *CodeRegion = TheLoop->getHeader();
   2107   DebugLoc DL = TheLoop->getStartLoc();
   2108 
   2109   if (I) {
   2110     CodeRegion = I->getParent();
   2111     // If there is no debug location attached to the instruction, revert back to
   2112     // using the loop's.
   2113     if (I->getDebugLoc())
   2114       DL = I->getDebugLoc();
   2115   }
   2116 
   2117   Report = std::make_unique<OptimizationRemarkAnalysis>(DEBUG_TYPE, RemarkName, DL,
   2118                                                    CodeRegion);
   2119   return *Report;
   2120 }
   2121 
   2122 bool LoopAccessInfo::isUniform(Value *V) const {
   2123   auto *SE = PSE->getSE();
   2124   // Since we rely on SCEV for uniformity, if the type is not SCEVable, it is
   2125   // never considered uniform.
   2126   // TODO: Is this really what we want? Even without FP SCEV, we may want some
   2127   // trivially loop-invariant FP values to be considered uniform.
   2128   if (!SE->isSCEVable(V->getType()))
   2129     return false;
   2130   return (SE->isLoopInvariant(SE->getSCEV(V), TheLoop));
   2131 }
   2132 
   2133 void LoopAccessInfo::collectStridedAccess(Value *MemAccess) {
   2134   Value *Ptr = getLoadStorePointerOperand(MemAccess);
   2135   if (!Ptr)
   2136     return;
   2137 
   2138   Value *Stride = getStrideFromPointer(Ptr, PSE->getSE(), TheLoop);
   2139   if (!Stride)
   2140     return;
   2141 
   2142   LLVM_DEBUG(dbgs() << "LAA: Found a strided access that is a candidate for "
   2143                        "versioning:");
   2144   LLVM_DEBUG(dbgs() << "  Ptr: " << *Ptr << " Stride: " << *Stride << "\n");
   2145 
   2146   // Avoid adding the "Stride == 1" predicate when we know that
   2147   // Stride >= Trip-Count. Such a predicate will effectively optimize a single
   2148   // or zero iteration loop, as Trip-Count <= Stride == 1.
   2149   //
   2150   // TODO: We are currently not making a very informed decision on when it is
   2151   // beneficial to apply stride versioning. It might make more sense that the
   2152   // users of this analysis (such as the vectorizer) will trigger it, based on
   2153   // their specific cost considerations; For example, in cases where stride
   2154   // versioning does  not help resolving memory accesses/dependences, the
   2155   // vectorizer should evaluate the cost of the runtime test, and the benefit
   2156   // of various possible stride specializations, considering the alternatives
   2157   // of using gather/scatters (if available).
   2158 
   2159   const SCEV *StrideExpr = PSE->getSCEV(Stride);
   2160   const SCEV *BETakenCount = PSE->getBackedgeTakenCount();
   2161 
   2162   // Match the types so we can compare the stride and the BETakenCount.
   2163   // The Stride can be positive/negative, so we sign extend Stride;
   2164   // The backedgeTakenCount is non-negative, so we zero extend BETakenCount.
   2165   const DataLayout &DL = TheLoop->getHeader()->getModule()->getDataLayout();
   2166   uint64_t StrideTypeSize = DL.getTypeAllocSize(StrideExpr->getType());
   2167   uint64_t BETypeSize = DL.getTypeAllocSize(BETakenCount->getType());
   2168   const SCEV *CastedStride = StrideExpr;
   2169   const SCEV *CastedBECount = BETakenCount;
   2170   ScalarEvolution *SE = PSE->getSE();
   2171   if (BETypeSize >= StrideTypeSize)
   2172     CastedStride = SE->getNoopOrSignExtend(StrideExpr, BETakenCount->getType());
   2173   else
   2174     CastedBECount = SE->getZeroExtendExpr(BETakenCount, StrideExpr->getType());
   2175   const SCEV *StrideMinusBETaken = SE->getMinusSCEV(CastedStride, CastedBECount);
   2176   // Since TripCount == BackEdgeTakenCount + 1, checking:
   2177   // "Stride >= TripCount" is equivalent to checking:
   2178   // Stride - BETakenCount > 0
   2179   if (SE->isKnownPositive(StrideMinusBETaken)) {
   2180     LLVM_DEBUG(
   2181         dbgs() << "LAA: Stride>=TripCount; No point in versioning as the "
   2182                   "Stride==1 predicate will imply that the loop executes "
   2183                   "at most once.\n");
   2184     return;
   2185   }
   2186   LLVM_DEBUG(dbgs() << "LAA: Found a strided access that we can version.");
   2187 
   2188   SymbolicStrides[Ptr] = Stride;
   2189   StrideSet.insert(Stride);
   2190 }
   2191 
   2192 LoopAccessInfo::LoopAccessInfo(Loop *L, ScalarEvolution *SE,
   2193                                const TargetLibraryInfo *TLI, AAResults *AA,
   2194                                DominatorTree *DT, LoopInfo *LI)
   2195     : PSE(std::make_unique<PredicatedScalarEvolution>(*SE, *L)),
   2196       PtrRtChecking(std::make_unique<RuntimePointerChecking>(SE)),
   2197       DepChecker(std::make_unique<MemoryDepChecker>(*PSE, L)), TheLoop(L),
   2198       NumLoads(0), NumStores(0), MaxSafeDepDistBytes(-1), CanVecMem(false),
   2199       HasConvergentOp(false),
   2200       HasDependenceInvolvingLoopInvariantAddress(false) {
   2201   if (canAnalyzeLoop())
   2202     analyzeLoop(AA, LI, TLI, DT);
   2203 }
   2204 
   2205 void LoopAccessInfo::print(raw_ostream &OS, unsigned Depth) const {
   2206   if (CanVecMem) {
   2207     OS.indent(Depth) << "Memory dependences are safe";
   2208     if (MaxSafeDepDistBytes != -1ULL)
   2209       OS << " with a maximum dependence distance of " << MaxSafeDepDistBytes
   2210          << " bytes";
   2211     if (PtrRtChecking->Need)
   2212       OS << " with run-time checks";
   2213     OS << "\n";
   2214   }
   2215 
   2216   if (HasConvergentOp)
   2217     OS.indent(Depth) << "Has convergent operation in loop\n";
   2218 
   2219   if (Report)
   2220     OS.indent(Depth) << "Report: " << Report->getMsg() << "\n";
   2221 
   2222   if (auto *Dependences = DepChecker->getDependences()) {
   2223     OS.indent(Depth) << "Dependences:\n";
   2224     for (auto &Dep : *Dependences) {
   2225       Dep.print(OS, Depth + 2, DepChecker->getMemoryInstructions());
   2226       OS << "\n";
   2227     }
   2228   } else
   2229     OS.indent(Depth) << "Too many dependences, not recorded\n";
   2230 
   2231   // List the pair of accesses need run-time checks to prove independence.
   2232   PtrRtChecking->print(OS, Depth);
   2233   OS << "\n";
   2234 
   2235   OS.indent(Depth) << "Non vectorizable stores to invariant address were "
   2236                    << (HasDependenceInvolvingLoopInvariantAddress ? "" : "not ")
   2237                    << "found in loop.\n";
   2238 
   2239   OS.indent(Depth) << "SCEV assumptions:\n";
   2240   PSE->getUnionPredicate().print(OS, Depth);
   2241 
   2242   OS << "\n";
   2243 
   2244   OS.indent(Depth) << "Expressions re-written:\n";
   2245   PSE->print(OS, Depth);
   2246 }
   2247 
   2248 LoopAccessLegacyAnalysis::LoopAccessLegacyAnalysis() : FunctionPass(ID) {
   2249   initializeLoopAccessLegacyAnalysisPass(*PassRegistry::getPassRegistry());
   2250 }
   2251 
   2252 const LoopAccessInfo &LoopAccessLegacyAnalysis::getInfo(Loop *L) {
   2253   auto &LAI = LoopAccessInfoMap[L];
   2254 
   2255   if (!LAI)
   2256     LAI = std::make_unique<LoopAccessInfo>(L, SE, TLI, AA, DT, LI);
   2257 
   2258   return *LAI.get();
   2259 }
   2260 
   2261 void LoopAccessLegacyAnalysis::print(raw_ostream &OS, const Module *M) const {
   2262   LoopAccessLegacyAnalysis &LAA = *const_cast<LoopAccessLegacyAnalysis *>(this);
   2263 
   2264   for (Loop *TopLevelLoop : *LI)
   2265     for (Loop *L : depth_first(TopLevelLoop)) {
   2266       OS.indent(2) << L->getHeader()->getName() << ":\n";
   2267       auto &LAI = LAA.getInfo(L);
   2268       LAI.print(OS, 4);
   2269     }
   2270 }
   2271 
   2272 bool LoopAccessLegacyAnalysis::runOnFunction(Function &F) {
   2273   SE = &getAnalysis<ScalarEvolutionWrapperPass>().getSE();
   2274   auto *TLIP = getAnalysisIfAvailable<TargetLibraryInfoWrapperPass>();
   2275   TLI = TLIP ? &TLIP->getTLI(F) : nullptr;
   2276   AA = &getAnalysis<AAResultsWrapperPass>().getAAResults();
   2277   DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree();
   2278   LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo();
   2279 
   2280   return false;
   2281 }
   2282 
   2283 void LoopAccessLegacyAnalysis::getAnalysisUsage(AnalysisUsage &AU) const {
   2284   AU.addRequiredTransitive<ScalarEvolutionWrapperPass>();
   2285   AU.addRequiredTransitive<AAResultsWrapperPass>();
   2286   AU.addRequiredTransitive<DominatorTreeWrapperPass>();
   2287   AU.addRequiredTransitive<LoopInfoWrapperPass>();
   2288 
   2289   AU.setPreservesAll();
   2290 }
   2291 
   2292 char LoopAccessLegacyAnalysis::ID = 0;
   2293 static const char laa_name[] = "Loop Access Analysis";
   2294 #define LAA_NAME "loop-accesses"
   2295 
   2296 INITIALIZE_PASS_BEGIN(LoopAccessLegacyAnalysis, LAA_NAME, laa_name, false, true)
   2297 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass)
   2298 INITIALIZE_PASS_DEPENDENCY(ScalarEvolutionWrapperPass)
   2299 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
   2300 INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass)
   2301 INITIALIZE_PASS_END(LoopAccessLegacyAnalysis, LAA_NAME, laa_name, false, true)
   2302 
   2303 AnalysisKey LoopAccessAnalysis::Key;
   2304 
   2305 LoopAccessInfo LoopAccessAnalysis::run(Loop &L, LoopAnalysisManager &AM,
   2306                                        LoopStandardAnalysisResults &AR) {
   2307   return LoopAccessInfo(&L, &AR.SE, &AR.TLI, &AR.AA, &AR.DT, &AR.LI);
   2308 }
   2309 
   2310 namespace llvm {
   2311 
   2312   Pass *createLAAPass() {
   2313     return new LoopAccessLegacyAnalysis();
   2314   }
   2315 
   2316 } // end namespace llvm
   2317