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      1 //===- ScalarEvolutionExpander.cpp - Scalar Evolution Analysis ------------===//
      2 //
      3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
      4 // See https://llvm.org/LICENSE.txt for license information.
      5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
      6 //
      7 //===----------------------------------------------------------------------===//
      8 //
      9 // This file contains the implementation of the scalar evolution expander,
     10 // which is used to generate the code corresponding to a given scalar evolution
     11 // expression.
     12 //
     13 //===----------------------------------------------------------------------===//
     14 
     15 #include "llvm/Transforms/Utils/ScalarEvolutionExpander.h"
     16 #include "llvm/ADT/STLExtras.h"
     17 #include "llvm/ADT/SmallSet.h"
     18 #include "llvm/Analysis/InstructionSimplify.h"
     19 #include "llvm/Analysis/LoopInfo.h"
     20 #include "llvm/Analysis/TargetTransformInfo.h"
     21 #include "llvm/IR/DataLayout.h"
     22 #include "llvm/IR/Dominators.h"
     23 #include "llvm/IR/IntrinsicInst.h"
     24 #include "llvm/IR/LLVMContext.h"
     25 #include "llvm/IR/Module.h"
     26 #include "llvm/IR/PatternMatch.h"
     27 #include "llvm/Support/CommandLine.h"
     28 #include "llvm/Support/Debug.h"
     29 #include "llvm/Support/raw_ostream.h"
     30 #include "llvm/Transforms/Utils/LoopUtils.h"
     31 
     32 using namespace llvm;
     33 
     34 cl::opt<unsigned> llvm::SCEVCheapExpansionBudget(
     35     "scev-cheap-expansion-budget", cl::Hidden, cl::init(4),
     36     cl::desc("When performing SCEV expansion only if it is cheap to do, this "
     37              "controls the budget that is considered cheap (default = 4)"));
     38 
     39 using namespace PatternMatch;
     40 
     41 /// ReuseOrCreateCast - Arrange for there to be a cast of V to Ty at IP,
     42 /// reusing an existing cast if a suitable one (= dominating IP) exists, or
     43 /// creating a new one.
     44 Value *SCEVExpander::ReuseOrCreateCast(Value *V, Type *Ty,
     45                                        Instruction::CastOps Op,
     46                                        BasicBlock::iterator IP) {
     47   // This function must be called with the builder having a valid insertion
     48   // point. It doesn't need to be the actual IP where the uses of the returned
     49   // cast will be added, but it must dominate such IP.
     50   // We use this precondition to produce a cast that will dominate all its
     51   // uses. In particular, this is crucial for the case where the builder's
     52   // insertion point *is* the point where we were asked to put the cast.
     53   // Since we don't know the builder's insertion point is actually
     54   // where the uses will be added (only that it dominates it), we are
     55   // not allowed to move it.
     56   BasicBlock::iterator BIP = Builder.GetInsertPoint();
     57 
     58   Value *Ret = nullptr;
     59 
     60   // Check to see if there is already a cast!
     61   for (User *U : V->users()) {
     62     if (U->getType() != Ty)
     63       continue;
     64     CastInst *CI = dyn_cast<CastInst>(U);
     65     if (!CI || CI->getOpcode() != Op)
     66       continue;
     67 
     68     // Found a suitable cast that is at IP or comes before IP. Use it. Note that
     69     // the cast must also properly dominate the Builder's insertion point.
     70     if (IP->getParent() == CI->getParent() && &*BIP != CI &&
     71         (&*IP == CI || CI->comesBefore(&*IP))) {
     72       Ret = CI;
     73       break;
     74     }
     75   }
     76 
     77   // Create a new cast.
     78   if (!Ret) {
     79     SCEVInsertPointGuard Guard(Builder, this);
     80     Builder.SetInsertPoint(&*IP);
     81     Ret = Builder.CreateCast(Op, V, Ty, V->getName());
     82   }
     83 
     84   // We assert at the end of the function since IP might point to an
     85   // instruction with different dominance properties than a cast
     86   // (an invoke for example) and not dominate BIP (but the cast does).
     87   assert(!isa<Instruction>(Ret) ||
     88          SE.DT.dominates(cast<Instruction>(Ret), &*BIP));
     89 
     90   return Ret;
     91 }
     92 
     93 BasicBlock::iterator
     94 SCEVExpander::findInsertPointAfter(Instruction *I,
     95                                    Instruction *MustDominate) const {
     96   BasicBlock::iterator IP = ++I->getIterator();
     97   if (auto *II = dyn_cast<InvokeInst>(I))
     98     IP = II->getNormalDest()->begin();
     99 
    100   while (isa<PHINode>(IP))
    101     ++IP;
    102 
    103   if (isa<FuncletPadInst>(IP) || isa<LandingPadInst>(IP)) {
    104     ++IP;
    105   } else if (isa<CatchSwitchInst>(IP)) {
    106     IP = MustDominate->getParent()->getFirstInsertionPt();
    107   } else {
    108     assert(!IP->isEHPad() && "unexpected eh pad!");
    109   }
    110 
    111   // Adjust insert point to be after instructions inserted by the expander, so
    112   // we can re-use already inserted instructions. Avoid skipping past the
    113   // original \p MustDominate, in case it is an inserted instruction.
    114   while (isInsertedInstruction(&*IP) && &*IP != MustDominate)
    115     ++IP;
    116 
    117   return IP;
    118 }
    119 
    120 BasicBlock::iterator
    121 SCEVExpander::GetOptimalInsertionPointForCastOf(Value *V) const {
    122   // Cast the argument at the beginning of the entry block, after
    123   // any bitcasts of other arguments.
    124   if (Argument *A = dyn_cast<Argument>(V)) {
    125     BasicBlock::iterator IP = A->getParent()->getEntryBlock().begin();
    126     while ((isa<BitCastInst>(IP) &&
    127             isa<Argument>(cast<BitCastInst>(IP)->getOperand(0)) &&
    128             cast<BitCastInst>(IP)->getOperand(0) != A) ||
    129            isa<DbgInfoIntrinsic>(IP))
    130       ++IP;
    131     return IP;
    132   }
    133 
    134   // Cast the instruction immediately after the instruction.
    135   if (Instruction *I = dyn_cast<Instruction>(V))
    136     return findInsertPointAfter(I, &*Builder.GetInsertPoint());
    137 
    138   // Otherwise, this must be some kind of a constant,
    139   // so let's plop this cast into the function's entry block.
    140   assert(isa<Constant>(V) &&
    141          "Expected the cast argument to be a global/constant");
    142   return Builder.GetInsertBlock()
    143       ->getParent()
    144       ->getEntryBlock()
    145       .getFirstInsertionPt();
    146 }
    147 
    148 /// InsertNoopCastOfTo - Insert a cast of V to the specified type,
    149 /// which must be possible with a noop cast, doing what we can to share
    150 /// the casts.
    151 Value *SCEVExpander::InsertNoopCastOfTo(Value *V, Type *Ty) {
    152   Instruction::CastOps Op = CastInst::getCastOpcode(V, false, Ty, false);
    153   assert((Op == Instruction::BitCast ||
    154           Op == Instruction::PtrToInt ||
    155           Op == Instruction::IntToPtr) &&
    156          "InsertNoopCastOfTo cannot perform non-noop casts!");
    157   assert(SE.getTypeSizeInBits(V->getType()) == SE.getTypeSizeInBits(Ty) &&
    158          "InsertNoopCastOfTo cannot change sizes!");
    159 
    160   // inttoptr only works for integral pointers. For non-integral pointers, we
    161   // can create a GEP on i8* null  with the integral value as index. Note that
    162   // it is safe to use GEP of null instead of inttoptr here, because only
    163   // expressions already based on a GEP of null should be converted to pointers
    164   // during expansion.
    165   if (Op == Instruction::IntToPtr) {
    166     auto *PtrTy = cast<PointerType>(Ty);
    167     if (DL.isNonIntegralPointerType(PtrTy)) {
    168       auto *Int8PtrTy = Builder.getInt8PtrTy(PtrTy->getAddressSpace());
    169       assert(DL.getTypeAllocSize(Int8PtrTy->getElementType()) == 1 &&
    170              "alloc size of i8 must by 1 byte for the GEP to be correct");
    171       auto *GEP = Builder.CreateGEP(
    172           Builder.getInt8Ty(), Constant::getNullValue(Int8PtrTy), V, "uglygep");
    173       return Builder.CreateBitCast(GEP, Ty);
    174     }
    175   }
    176   // Short-circuit unnecessary bitcasts.
    177   if (Op == Instruction::BitCast) {
    178     if (V->getType() == Ty)
    179       return V;
    180     if (CastInst *CI = dyn_cast<CastInst>(V)) {
    181       if (CI->getOperand(0)->getType() == Ty)
    182         return CI->getOperand(0);
    183     }
    184   }
    185   // Short-circuit unnecessary inttoptr<->ptrtoint casts.
    186   if ((Op == Instruction::PtrToInt || Op == Instruction::IntToPtr) &&
    187       SE.getTypeSizeInBits(Ty) == SE.getTypeSizeInBits(V->getType())) {
    188     if (CastInst *CI = dyn_cast<CastInst>(V))
    189       if ((CI->getOpcode() == Instruction::PtrToInt ||
    190            CI->getOpcode() == Instruction::IntToPtr) &&
    191           SE.getTypeSizeInBits(CI->getType()) ==
    192           SE.getTypeSizeInBits(CI->getOperand(0)->getType()))
    193         return CI->getOperand(0);
    194     if (ConstantExpr *CE = dyn_cast<ConstantExpr>(V))
    195       if ((CE->getOpcode() == Instruction::PtrToInt ||
    196            CE->getOpcode() == Instruction::IntToPtr) &&
    197           SE.getTypeSizeInBits(CE->getType()) ==
    198           SE.getTypeSizeInBits(CE->getOperand(0)->getType()))
    199         return CE->getOperand(0);
    200   }
    201 
    202   // Fold a cast of a constant.
    203   if (Constant *C = dyn_cast<Constant>(V))
    204     return ConstantExpr::getCast(Op, C, Ty);
    205 
    206   // Try to reuse existing cast, or insert one.
    207   return ReuseOrCreateCast(V, Ty, Op, GetOptimalInsertionPointForCastOf(V));
    208 }
    209 
    210 /// InsertBinop - Insert the specified binary operator, doing a small amount
    211 /// of work to avoid inserting an obviously redundant operation, and hoisting
    212 /// to an outer loop when the opportunity is there and it is safe.
    213 Value *SCEVExpander::InsertBinop(Instruction::BinaryOps Opcode,
    214                                  Value *LHS, Value *RHS,
    215                                  SCEV::NoWrapFlags Flags, bool IsSafeToHoist) {
    216   // Fold a binop with constant operands.
    217   if (Constant *CLHS = dyn_cast<Constant>(LHS))
    218     if (Constant *CRHS = dyn_cast<Constant>(RHS))
    219       return ConstantExpr::get(Opcode, CLHS, CRHS);
    220 
    221   // Do a quick scan to see if we have this binop nearby.  If so, reuse it.
    222   unsigned ScanLimit = 6;
    223   BasicBlock::iterator BlockBegin = Builder.GetInsertBlock()->begin();
    224   // Scanning starts from the last instruction before the insertion point.
    225   BasicBlock::iterator IP = Builder.GetInsertPoint();
    226   if (IP != BlockBegin) {
    227     --IP;
    228     for (; ScanLimit; --IP, --ScanLimit) {
    229       // Don't count dbg.value against the ScanLimit, to avoid perturbing the
    230       // generated code.
    231       if (isa<DbgInfoIntrinsic>(IP))
    232         ScanLimit++;
    233 
    234       auto canGenerateIncompatiblePoison = [&Flags](Instruction *I) {
    235         // Ensure that no-wrap flags match.
    236         if (isa<OverflowingBinaryOperator>(I)) {
    237           if (I->hasNoSignedWrap() != (Flags & SCEV::FlagNSW))
    238             return true;
    239           if (I->hasNoUnsignedWrap() != (Flags & SCEV::FlagNUW))
    240             return true;
    241         }
    242         // Conservatively, do not use any instruction which has any of exact
    243         // flags installed.
    244         if (isa<PossiblyExactOperator>(I) && I->isExact())
    245           return true;
    246         return false;
    247       };
    248       if (IP->getOpcode() == (unsigned)Opcode && IP->getOperand(0) == LHS &&
    249           IP->getOperand(1) == RHS && !canGenerateIncompatiblePoison(&*IP))
    250         return &*IP;
    251       if (IP == BlockBegin) break;
    252     }
    253   }
    254 
    255   // Save the original insertion point so we can restore it when we're done.
    256   DebugLoc Loc = Builder.GetInsertPoint()->getDebugLoc();
    257   SCEVInsertPointGuard Guard(Builder, this);
    258 
    259   if (IsSafeToHoist) {
    260     // Move the insertion point out of as many loops as we can.
    261     while (const Loop *L = SE.LI.getLoopFor(Builder.GetInsertBlock())) {
    262       if (!L->isLoopInvariant(LHS) || !L->isLoopInvariant(RHS)) break;
    263       BasicBlock *Preheader = L->getLoopPreheader();
    264       if (!Preheader) break;
    265 
    266       // Ok, move up a level.
    267       Builder.SetInsertPoint(Preheader->getTerminator());
    268     }
    269   }
    270 
    271   // If we haven't found this binop, insert it.
    272   Instruction *BO = cast<Instruction>(Builder.CreateBinOp(Opcode, LHS, RHS));
    273   BO->setDebugLoc(Loc);
    274   if (Flags & SCEV::FlagNUW)
    275     BO->setHasNoUnsignedWrap();
    276   if (Flags & SCEV::FlagNSW)
    277     BO->setHasNoSignedWrap();
    278 
    279   return BO;
    280 }
    281 
    282 /// FactorOutConstant - Test if S is divisible by Factor, using signed
    283 /// division. If so, update S with Factor divided out and return true.
    284 /// S need not be evenly divisible if a reasonable remainder can be
    285 /// computed.
    286 static bool FactorOutConstant(const SCEV *&S, const SCEV *&Remainder,
    287                               const SCEV *Factor, ScalarEvolution &SE,
    288                               const DataLayout &DL) {
    289   // Everything is divisible by one.
    290   if (Factor->isOne())
    291     return true;
    292 
    293   // x/x == 1.
    294   if (S == Factor) {
    295     S = SE.getConstant(S->getType(), 1);
    296     return true;
    297   }
    298 
    299   // For a Constant, check for a multiple of the given factor.
    300   if (const SCEVConstant *C = dyn_cast<SCEVConstant>(S)) {
    301     // 0/x == 0.
    302     if (C->isZero())
    303       return true;
    304     // Check for divisibility.
    305     if (const SCEVConstant *FC = dyn_cast<SCEVConstant>(Factor)) {
    306       ConstantInt *CI =
    307           ConstantInt::get(SE.getContext(), C->getAPInt().sdiv(FC->getAPInt()));
    308       // If the quotient is zero and the remainder is non-zero, reject
    309       // the value at this scale. It will be considered for subsequent
    310       // smaller scales.
    311       if (!CI->isZero()) {
    312         const SCEV *Div = SE.getConstant(CI);
    313         S = Div;
    314         Remainder = SE.getAddExpr(
    315             Remainder, SE.getConstant(C->getAPInt().srem(FC->getAPInt())));
    316         return true;
    317       }
    318     }
    319   }
    320 
    321   // In a Mul, check if there is a constant operand which is a multiple
    322   // of the given factor.
    323   if (const SCEVMulExpr *M = dyn_cast<SCEVMulExpr>(S)) {
    324     // Size is known, check if there is a constant operand which is a multiple
    325     // of the given factor. If so, we can factor it.
    326     if (const SCEVConstant *FC = dyn_cast<SCEVConstant>(Factor))
    327       if (const SCEVConstant *C = dyn_cast<SCEVConstant>(M->getOperand(0)))
    328         if (!C->getAPInt().srem(FC->getAPInt())) {
    329           SmallVector<const SCEV *, 4> NewMulOps(M->operands());
    330           NewMulOps[0] = SE.getConstant(C->getAPInt().sdiv(FC->getAPInt()));
    331           S = SE.getMulExpr(NewMulOps);
    332           return true;
    333         }
    334   }
    335 
    336   // In an AddRec, check if both start and step are divisible.
    337   if (const SCEVAddRecExpr *A = dyn_cast<SCEVAddRecExpr>(S)) {
    338     const SCEV *Step = A->getStepRecurrence(SE);
    339     const SCEV *StepRem = SE.getConstant(Step->getType(), 0);
    340     if (!FactorOutConstant(Step, StepRem, Factor, SE, DL))
    341       return false;
    342     if (!StepRem->isZero())
    343       return false;
    344     const SCEV *Start = A->getStart();
    345     if (!FactorOutConstant(Start, Remainder, Factor, SE, DL))
    346       return false;
    347     S = SE.getAddRecExpr(Start, Step, A->getLoop(),
    348                          A->getNoWrapFlags(SCEV::FlagNW));
    349     return true;
    350   }
    351 
    352   return false;
    353 }
    354 
    355 /// SimplifyAddOperands - Sort and simplify a list of add operands. NumAddRecs
    356 /// is the number of SCEVAddRecExprs present, which are kept at the end of
    357 /// the list.
    358 ///
    359 static void SimplifyAddOperands(SmallVectorImpl<const SCEV *> &Ops,
    360                                 Type *Ty,
    361                                 ScalarEvolution &SE) {
    362   unsigned NumAddRecs = 0;
    363   for (unsigned i = Ops.size(); i > 0 && isa<SCEVAddRecExpr>(Ops[i-1]); --i)
    364     ++NumAddRecs;
    365   // Group Ops into non-addrecs and addrecs.
    366   SmallVector<const SCEV *, 8> NoAddRecs(Ops.begin(), Ops.end() - NumAddRecs);
    367   SmallVector<const SCEV *, 8> AddRecs(Ops.end() - NumAddRecs, Ops.end());
    368   // Let ScalarEvolution sort and simplify the non-addrecs list.
    369   const SCEV *Sum = NoAddRecs.empty() ?
    370                     SE.getConstant(Ty, 0) :
    371                     SE.getAddExpr(NoAddRecs);
    372   // If it returned an add, use the operands. Otherwise it simplified
    373   // the sum into a single value, so just use that.
    374   Ops.clear();
    375   if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(Sum))
    376     Ops.append(Add->op_begin(), Add->op_end());
    377   else if (!Sum->isZero())
    378     Ops.push_back(Sum);
    379   // Then append the addrecs.
    380   Ops.append(AddRecs.begin(), AddRecs.end());
    381 }
    382 
    383 /// SplitAddRecs - Flatten a list of add operands, moving addrec start values
    384 /// out to the top level. For example, convert {a + b,+,c} to a, b, {0,+,d}.
    385 /// This helps expose more opportunities for folding parts of the expressions
    386 /// into GEP indices.
    387 ///
    388 static void SplitAddRecs(SmallVectorImpl<const SCEV *> &Ops,
    389                          Type *Ty,
    390                          ScalarEvolution &SE) {
    391   // Find the addrecs.
    392   SmallVector<const SCEV *, 8> AddRecs;
    393   for (unsigned i = 0, e = Ops.size(); i != e; ++i)
    394     while (const SCEVAddRecExpr *A = dyn_cast<SCEVAddRecExpr>(Ops[i])) {
    395       const SCEV *Start = A->getStart();
    396       if (Start->isZero()) break;
    397       const SCEV *Zero = SE.getConstant(Ty, 0);
    398       AddRecs.push_back(SE.getAddRecExpr(Zero,
    399                                          A->getStepRecurrence(SE),
    400                                          A->getLoop(),
    401                                          A->getNoWrapFlags(SCEV::FlagNW)));
    402       if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(Start)) {
    403         Ops[i] = Zero;
    404         Ops.append(Add->op_begin(), Add->op_end());
    405         e += Add->getNumOperands();
    406       } else {
    407         Ops[i] = Start;
    408       }
    409     }
    410   if (!AddRecs.empty()) {
    411     // Add the addrecs onto the end of the list.
    412     Ops.append(AddRecs.begin(), AddRecs.end());
    413     // Resort the operand list, moving any constants to the front.
    414     SimplifyAddOperands(Ops, Ty, SE);
    415   }
    416 }
    417 
    418 /// expandAddToGEP - Expand an addition expression with a pointer type into
    419 /// a GEP instead of using ptrtoint+arithmetic+inttoptr. This helps
    420 /// BasicAliasAnalysis and other passes analyze the result. See the rules
    421 /// for getelementptr vs. inttoptr in
    422 /// http://llvm.org/docs/LangRef.html#pointeraliasing
    423 /// for details.
    424 ///
    425 /// Design note: The correctness of using getelementptr here depends on
    426 /// ScalarEvolution not recognizing inttoptr and ptrtoint operators, as
    427 /// they may introduce pointer arithmetic which may not be safely converted
    428 /// into getelementptr.
    429 ///
    430 /// Design note: It might seem desirable for this function to be more
    431 /// loop-aware. If some of the indices are loop-invariant while others
    432 /// aren't, it might seem desirable to emit multiple GEPs, keeping the
    433 /// loop-invariant portions of the overall computation outside the loop.
    434 /// However, there are a few reasons this is not done here. Hoisting simple
    435 /// arithmetic is a low-level optimization that often isn't very
    436 /// important until late in the optimization process. In fact, passes
    437 /// like InstructionCombining will combine GEPs, even if it means
    438 /// pushing loop-invariant computation down into loops, so even if the
    439 /// GEPs were split here, the work would quickly be undone. The
    440 /// LoopStrengthReduction pass, which is usually run quite late (and
    441 /// after the last InstructionCombining pass), takes care of hoisting
    442 /// loop-invariant portions of expressions, after considering what
    443 /// can be folded using target addressing modes.
    444 ///
    445 Value *SCEVExpander::expandAddToGEP(const SCEV *const *op_begin,
    446                                     const SCEV *const *op_end,
    447                                     PointerType *PTy,
    448                                     Type *Ty,
    449                                     Value *V) {
    450   Type *OriginalElTy = PTy->getElementType();
    451   Type *ElTy = OriginalElTy;
    452   SmallVector<Value *, 4> GepIndices;
    453   SmallVector<const SCEV *, 8> Ops(op_begin, op_end);
    454   bool AnyNonZeroIndices = false;
    455 
    456   // Split AddRecs up into parts as either of the parts may be usable
    457   // without the other.
    458   SplitAddRecs(Ops, Ty, SE);
    459 
    460   Type *IntIdxTy = DL.getIndexType(PTy);
    461 
    462   // Descend down the pointer's type and attempt to convert the other
    463   // operands into GEP indices, at each level. The first index in a GEP
    464   // indexes into the array implied by the pointer operand; the rest of
    465   // the indices index into the element or field type selected by the
    466   // preceding index.
    467   for (;;) {
    468     // If the scale size is not 0, attempt to factor out a scale for
    469     // array indexing.
    470     SmallVector<const SCEV *, 8> ScaledOps;
    471     if (ElTy->isSized()) {
    472       const SCEV *ElSize = SE.getSizeOfExpr(IntIdxTy, ElTy);
    473       if (!ElSize->isZero()) {
    474         SmallVector<const SCEV *, 8> NewOps;
    475         for (const SCEV *Op : Ops) {
    476           const SCEV *Remainder = SE.getConstant(Ty, 0);
    477           if (FactorOutConstant(Op, Remainder, ElSize, SE, DL)) {
    478             // Op now has ElSize factored out.
    479             ScaledOps.push_back(Op);
    480             if (!Remainder->isZero())
    481               NewOps.push_back(Remainder);
    482             AnyNonZeroIndices = true;
    483           } else {
    484             // The operand was not divisible, so add it to the list of operands
    485             // we'll scan next iteration.
    486             NewOps.push_back(Op);
    487           }
    488         }
    489         // If we made any changes, update Ops.
    490         if (!ScaledOps.empty()) {
    491           Ops = NewOps;
    492           SimplifyAddOperands(Ops, Ty, SE);
    493         }
    494       }
    495     }
    496 
    497     // Record the scaled array index for this level of the type. If
    498     // we didn't find any operands that could be factored, tentatively
    499     // assume that element zero was selected (since the zero offset
    500     // would obviously be folded away).
    501     Value *Scaled =
    502         ScaledOps.empty()
    503             ? Constant::getNullValue(Ty)
    504             : expandCodeForImpl(SE.getAddExpr(ScaledOps), Ty, false);
    505     GepIndices.push_back(Scaled);
    506 
    507     // Collect struct field index operands.
    508     while (StructType *STy = dyn_cast<StructType>(ElTy)) {
    509       bool FoundFieldNo = false;
    510       // An empty struct has no fields.
    511       if (STy->getNumElements() == 0) break;
    512       // Field offsets are known. See if a constant offset falls within any of
    513       // the struct fields.
    514       if (Ops.empty())
    515         break;
    516       if (const SCEVConstant *C = dyn_cast<SCEVConstant>(Ops[0]))
    517         if (SE.getTypeSizeInBits(C->getType()) <= 64) {
    518           const StructLayout &SL = *DL.getStructLayout(STy);
    519           uint64_t FullOffset = C->getValue()->getZExtValue();
    520           if (FullOffset < SL.getSizeInBytes()) {
    521             unsigned ElIdx = SL.getElementContainingOffset(FullOffset);
    522             GepIndices.push_back(
    523                 ConstantInt::get(Type::getInt32Ty(Ty->getContext()), ElIdx));
    524             ElTy = STy->getTypeAtIndex(ElIdx);
    525             Ops[0] =
    526                 SE.getConstant(Ty, FullOffset - SL.getElementOffset(ElIdx));
    527             AnyNonZeroIndices = true;
    528             FoundFieldNo = true;
    529           }
    530         }
    531       // If no struct field offsets were found, tentatively assume that
    532       // field zero was selected (since the zero offset would obviously
    533       // be folded away).
    534       if (!FoundFieldNo) {
    535         ElTy = STy->getTypeAtIndex(0u);
    536         GepIndices.push_back(
    537           Constant::getNullValue(Type::getInt32Ty(Ty->getContext())));
    538       }
    539     }
    540 
    541     if (ArrayType *ATy = dyn_cast<ArrayType>(ElTy))
    542       ElTy = ATy->getElementType();
    543     else
    544       // FIXME: Handle VectorType.
    545       // E.g., If ElTy is scalable vector, then ElSize is not a compile-time
    546       // constant, therefore can not be factored out. The generated IR is less
    547       // ideal with base 'V' cast to i8* and do ugly getelementptr over that.
    548       break;
    549   }
    550 
    551   // If none of the operands were convertible to proper GEP indices, cast
    552   // the base to i8* and do an ugly getelementptr with that. It's still
    553   // better than ptrtoint+arithmetic+inttoptr at least.
    554   if (!AnyNonZeroIndices) {
    555     // Cast the base to i8*.
    556     V = InsertNoopCastOfTo(V,
    557        Type::getInt8PtrTy(Ty->getContext(), PTy->getAddressSpace()));
    558 
    559     assert(!isa<Instruction>(V) ||
    560            SE.DT.dominates(cast<Instruction>(V), &*Builder.GetInsertPoint()));
    561 
    562     // Expand the operands for a plain byte offset.
    563     Value *Idx = expandCodeForImpl(SE.getAddExpr(Ops), Ty, false);
    564 
    565     // Fold a GEP with constant operands.
    566     if (Constant *CLHS = dyn_cast<Constant>(V))
    567       if (Constant *CRHS = dyn_cast<Constant>(Idx))
    568         return ConstantExpr::getGetElementPtr(Type::getInt8Ty(Ty->getContext()),
    569                                               CLHS, CRHS);
    570 
    571     // Do a quick scan to see if we have this GEP nearby.  If so, reuse it.
    572     unsigned ScanLimit = 6;
    573     BasicBlock::iterator BlockBegin = Builder.GetInsertBlock()->begin();
    574     // Scanning starts from the last instruction before the insertion point.
    575     BasicBlock::iterator IP = Builder.GetInsertPoint();
    576     if (IP != BlockBegin) {
    577       --IP;
    578       for (; ScanLimit; --IP, --ScanLimit) {
    579         // Don't count dbg.value against the ScanLimit, to avoid perturbing the
    580         // generated code.
    581         if (isa<DbgInfoIntrinsic>(IP))
    582           ScanLimit++;
    583         if (IP->getOpcode() == Instruction::GetElementPtr &&
    584             IP->getOperand(0) == V && IP->getOperand(1) == Idx)
    585           return &*IP;
    586         if (IP == BlockBegin) break;
    587       }
    588     }
    589 
    590     // Save the original insertion point so we can restore it when we're done.
    591     SCEVInsertPointGuard Guard(Builder, this);
    592 
    593     // Move the insertion point out of as many loops as we can.
    594     while (const Loop *L = SE.LI.getLoopFor(Builder.GetInsertBlock())) {
    595       if (!L->isLoopInvariant(V) || !L->isLoopInvariant(Idx)) break;
    596       BasicBlock *Preheader = L->getLoopPreheader();
    597       if (!Preheader) break;
    598 
    599       // Ok, move up a level.
    600       Builder.SetInsertPoint(Preheader->getTerminator());
    601     }
    602 
    603     // Emit a GEP.
    604     return Builder.CreateGEP(Builder.getInt8Ty(), V, Idx, "uglygep");
    605   }
    606 
    607   {
    608     SCEVInsertPointGuard Guard(Builder, this);
    609 
    610     // Move the insertion point out of as many loops as we can.
    611     while (const Loop *L = SE.LI.getLoopFor(Builder.GetInsertBlock())) {
    612       if (!L->isLoopInvariant(V)) break;
    613 
    614       bool AnyIndexNotLoopInvariant = any_of(
    615           GepIndices, [L](Value *Op) { return !L->isLoopInvariant(Op); });
    616 
    617       if (AnyIndexNotLoopInvariant)
    618         break;
    619 
    620       BasicBlock *Preheader = L->getLoopPreheader();
    621       if (!Preheader) break;
    622 
    623       // Ok, move up a level.
    624       Builder.SetInsertPoint(Preheader->getTerminator());
    625     }
    626 
    627     // Insert a pretty getelementptr. Note that this GEP is not marked inbounds,
    628     // because ScalarEvolution may have changed the address arithmetic to
    629     // compute a value which is beyond the end of the allocated object.
    630     Value *Casted = V;
    631     if (V->getType() != PTy)
    632       Casted = InsertNoopCastOfTo(Casted, PTy);
    633     Value *GEP = Builder.CreateGEP(OriginalElTy, Casted, GepIndices, "scevgep");
    634     Ops.push_back(SE.getUnknown(GEP));
    635   }
    636 
    637   return expand(SE.getAddExpr(Ops));
    638 }
    639 
    640 Value *SCEVExpander::expandAddToGEP(const SCEV *Op, PointerType *PTy, Type *Ty,
    641                                     Value *V) {
    642   const SCEV *const Ops[1] = {Op};
    643   return expandAddToGEP(Ops, Ops + 1, PTy, Ty, V);
    644 }
    645 
    646 /// PickMostRelevantLoop - Given two loops pick the one that's most relevant for
    647 /// SCEV expansion. If they are nested, this is the most nested. If they are
    648 /// neighboring, pick the later.
    649 static const Loop *PickMostRelevantLoop(const Loop *A, const Loop *B,
    650                                         DominatorTree &DT) {
    651   if (!A) return B;
    652   if (!B) return A;
    653   if (A->contains(B)) return B;
    654   if (B->contains(A)) return A;
    655   if (DT.dominates(A->getHeader(), B->getHeader())) return B;
    656   if (DT.dominates(B->getHeader(), A->getHeader())) return A;
    657   return A; // Arbitrarily break the tie.
    658 }
    659 
    660 /// getRelevantLoop - Get the most relevant loop associated with the given
    661 /// expression, according to PickMostRelevantLoop.
    662 const Loop *SCEVExpander::getRelevantLoop(const SCEV *S) {
    663   // Test whether we've already computed the most relevant loop for this SCEV.
    664   auto Pair = RelevantLoops.insert(std::make_pair(S, nullptr));
    665   if (!Pair.second)
    666     return Pair.first->second;
    667 
    668   if (isa<SCEVConstant>(S))
    669     // A constant has no relevant loops.
    670     return nullptr;
    671   if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(S)) {
    672     if (const Instruction *I = dyn_cast<Instruction>(U->getValue()))
    673       return Pair.first->second = SE.LI.getLoopFor(I->getParent());
    674     // A non-instruction has no relevant loops.
    675     return nullptr;
    676   }
    677   if (const SCEVNAryExpr *N = dyn_cast<SCEVNAryExpr>(S)) {
    678     const Loop *L = nullptr;
    679     if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S))
    680       L = AR->getLoop();
    681     for (const SCEV *Op : N->operands())
    682       L = PickMostRelevantLoop(L, getRelevantLoop(Op), SE.DT);
    683     return RelevantLoops[N] = L;
    684   }
    685   if (const SCEVCastExpr *C = dyn_cast<SCEVCastExpr>(S)) {
    686     const Loop *Result = getRelevantLoop(C->getOperand());
    687     return RelevantLoops[C] = Result;
    688   }
    689   if (const SCEVUDivExpr *D = dyn_cast<SCEVUDivExpr>(S)) {
    690     const Loop *Result = PickMostRelevantLoop(
    691         getRelevantLoop(D->getLHS()), getRelevantLoop(D->getRHS()), SE.DT);
    692     return RelevantLoops[D] = Result;
    693   }
    694   llvm_unreachable("Unexpected SCEV type!");
    695 }
    696 
    697 namespace {
    698 
    699 /// LoopCompare - Compare loops by PickMostRelevantLoop.
    700 class LoopCompare {
    701   DominatorTree &DT;
    702 public:
    703   explicit LoopCompare(DominatorTree &dt) : DT(dt) {}
    704 
    705   bool operator()(std::pair<const Loop *, const SCEV *> LHS,
    706                   std::pair<const Loop *, const SCEV *> RHS) const {
    707     // Keep pointer operands sorted at the end.
    708     if (LHS.second->getType()->isPointerTy() !=
    709         RHS.second->getType()->isPointerTy())
    710       return LHS.second->getType()->isPointerTy();
    711 
    712     // Compare loops with PickMostRelevantLoop.
    713     if (LHS.first != RHS.first)
    714       return PickMostRelevantLoop(LHS.first, RHS.first, DT) != LHS.first;
    715 
    716     // If one operand is a non-constant negative and the other is not,
    717     // put the non-constant negative on the right so that a sub can
    718     // be used instead of a negate and add.
    719     if (LHS.second->isNonConstantNegative()) {
    720       if (!RHS.second->isNonConstantNegative())
    721         return false;
    722     } else if (RHS.second->isNonConstantNegative())
    723       return true;
    724 
    725     // Otherwise they are equivalent according to this comparison.
    726     return false;
    727   }
    728 };
    729 
    730 }
    731 
    732 Value *SCEVExpander::visitAddExpr(const SCEVAddExpr *S) {
    733   Type *Ty = SE.getEffectiveSCEVType(S->getType());
    734 
    735   // Collect all the add operands in a loop, along with their associated loops.
    736   // Iterate in reverse so that constants are emitted last, all else equal, and
    737   // so that pointer operands are inserted first, which the code below relies on
    738   // to form more involved GEPs.
    739   SmallVector<std::pair<const Loop *, const SCEV *>, 8> OpsAndLoops;
    740   for (std::reverse_iterator<SCEVAddExpr::op_iterator> I(S->op_end()),
    741        E(S->op_begin()); I != E; ++I)
    742     OpsAndLoops.push_back(std::make_pair(getRelevantLoop(*I), *I));
    743 
    744   // Sort by loop. Use a stable sort so that constants follow non-constants and
    745   // pointer operands precede non-pointer operands.
    746   llvm::stable_sort(OpsAndLoops, LoopCompare(SE.DT));
    747 
    748   // Emit instructions to add all the operands. Hoist as much as possible
    749   // out of loops, and form meaningful getelementptrs where possible.
    750   Value *Sum = nullptr;
    751   for (auto I = OpsAndLoops.begin(), E = OpsAndLoops.end(); I != E;) {
    752     const Loop *CurLoop = I->first;
    753     const SCEV *Op = I->second;
    754     if (!Sum) {
    755       // This is the first operand. Just expand it.
    756       Sum = expand(Op);
    757       ++I;
    758     } else if (PointerType *PTy = dyn_cast<PointerType>(Sum->getType())) {
    759       // The running sum expression is a pointer. Try to form a getelementptr
    760       // at this level with that as the base.
    761       SmallVector<const SCEV *, 4> NewOps;
    762       for (; I != E && I->first == CurLoop; ++I) {
    763         // If the operand is SCEVUnknown and not instructions, peek through
    764         // it, to enable more of it to be folded into the GEP.
    765         const SCEV *X = I->second;
    766         if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(X))
    767           if (!isa<Instruction>(U->getValue()))
    768             X = SE.getSCEV(U->getValue());
    769         NewOps.push_back(X);
    770       }
    771       Sum = expandAddToGEP(NewOps.begin(), NewOps.end(), PTy, Ty, Sum);
    772     } else if (PointerType *PTy = dyn_cast<PointerType>(Op->getType())) {
    773       // The running sum is an integer, and there's a pointer at this level.
    774       // Try to form a getelementptr. If the running sum is instructions,
    775       // use a SCEVUnknown to avoid re-analyzing them.
    776       SmallVector<const SCEV *, 4> NewOps;
    777       NewOps.push_back(isa<Instruction>(Sum) ? SE.getUnknown(Sum) :
    778                                                SE.getSCEV(Sum));
    779       for (++I; I != E && I->first == CurLoop; ++I)
    780         NewOps.push_back(I->second);
    781       Sum = expandAddToGEP(NewOps.begin(), NewOps.end(), PTy, Ty, expand(Op));
    782     } else if (Op->isNonConstantNegative()) {
    783       // Instead of doing a negate and add, just do a subtract.
    784       Value *W = expandCodeForImpl(SE.getNegativeSCEV(Op), Ty, false);
    785       Sum = InsertNoopCastOfTo(Sum, Ty);
    786       Sum = InsertBinop(Instruction::Sub, Sum, W, SCEV::FlagAnyWrap,
    787                         /*IsSafeToHoist*/ true);
    788       ++I;
    789     } else {
    790       // A simple add.
    791       Value *W = expandCodeForImpl(Op, Ty, false);
    792       Sum = InsertNoopCastOfTo(Sum, Ty);
    793       // Canonicalize a constant to the RHS.
    794       if (isa<Constant>(Sum)) std::swap(Sum, W);
    795       Sum = InsertBinop(Instruction::Add, Sum, W, S->getNoWrapFlags(),
    796                         /*IsSafeToHoist*/ true);
    797       ++I;
    798     }
    799   }
    800 
    801   return Sum;
    802 }
    803 
    804 Value *SCEVExpander::visitMulExpr(const SCEVMulExpr *S) {
    805   Type *Ty = SE.getEffectiveSCEVType(S->getType());
    806 
    807   // Collect all the mul operands in a loop, along with their associated loops.
    808   // Iterate in reverse so that constants are emitted last, all else equal.
    809   SmallVector<std::pair<const Loop *, const SCEV *>, 8> OpsAndLoops;
    810   for (std::reverse_iterator<SCEVMulExpr::op_iterator> I(S->op_end()),
    811        E(S->op_begin()); I != E; ++I)
    812     OpsAndLoops.push_back(std::make_pair(getRelevantLoop(*I), *I));
    813 
    814   // Sort by loop. Use a stable sort so that constants follow non-constants.
    815   llvm::stable_sort(OpsAndLoops, LoopCompare(SE.DT));
    816 
    817   // Emit instructions to mul all the operands. Hoist as much as possible
    818   // out of loops.
    819   Value *Prod = nullptr;
    820   auto I = OpsAndLoops.begin();
    821 
    822   // Expand the calculation of X pow N in the following manner:
    823   // Let N = P1 + P2 + ... + PK, where all P are powers of 2. Then:
    824   // X pow N = (X pow P1) * (X pow P2) * ... * (X pow PK).
    825   const auto ExpandOpBinPowN = [this, &I, &OpsAndLoops, &Ty]() {
    826     auto E = I;
    827     // Calculate how many times the same operand from the same loop is included
    828     // into this power.
    829     uint64_t Exponent = 0;
    830     const uint64_t MaxExponent = UINT64_MAX >> 1;
    831     // No one sane will ever try to calculate such huge exponents, but if we
    832     // need this, we stop on UINT64_MAX / 2 because we need to exit the loop
    833     // below when the power of 2 exceeds our Exponent, and we want it to be
    834     // 1u << 31 at most to not deal with unsigned overflow.
    835     while (E != OpsAndLoops.end() && *I == *E && Exponent != MaxExponent) {
    836       ++Exponent;
    837       ++E;
    838     }
    839     assert(Exponent > 0 && "Trying to calculate a zeroth exponent of operand?");
    840 
    841     // Calculate powers with exponents 1, 2, 4, 8 etc. and include those of them
    842     // that are needed into the result.
    843     Value *P = expandCodeForImpl(I->second, Ty, false);
    844     Value *Result = nullptr;
    845     if (Exponent & 1)
    846       Result = P;
    847     for (uint64_t BinExp = 2; BinExp <= Exponent; BinExp <<= 1) {
    848       P = InsertBinop(Instruction::Mul, P, P, SCEV::FlagAnyWrap,
    849                       /*IsSafeToHoist*/ true);
    850       if (Exponent & BinExp)
    851         Result = Result ? InsertBinop(Instruction::Mul, Result, P,
    852                                       SCEV::FlagAnyWrap,
    853                                       /*IsSafeToHoist*/ true)
    854                         : P;
    855     }
    856 
    857     I = E;
    858     assert(Result && "Nothing was expanded?");
    859     return Result;
    860   };
    861 
    862   while (I != OpsAndLoops.end()) {
    863     if (!Prod) {
    864       // This is the first operand. Just expand it.
    865       Prod = ExpandOpBinPowN();
    866     } else if (I->second->isAllOnesValue()) {
    867       // Instead of doing a multiply by negative one, just do a negate.
    868       Prod = InsertNoopCastOfTo(Prod, Ty);
    869       Prod = InsertBinop(Instruction::Sub, Constant::getNullValue(Ty), Prod,
    870                          SCEV::FlagAnyWrap, /*IsSafeToHoist*/ true);
    871       ++I;
    872     } else {
    873       // A simple mul.
    874       Value *W = ExpandOpBinPowN();
    875       Prod = InsertNoopCastOfTo(Prod, Ty);
    876       // Canonicalize a constant to the RHS.
    877       if (isa<Constant>(Prod)) std::swap(Prod, W);
    878       const APInt *RHS;
    879       if (match(W, m_Power2(RHS))) {
    880         // Canonicalize Prod*(1<<C) to Prod<<C.
    881         assert(!Ty->isVectorTy() && "vector types are not SCEVable");
    882         auto NWFlags = S->getNoWrapFlags();
    883         // clear nsw flag if shl will produce poison value.
    884         if (RHS->logBase2() == RHS->getBitWidth() - 1)
    885           NWFlags = ScalarEvolution::clearFlags(NWFlags, SCEV::FlagNSW);
    886         Prod = InsertBinop(Instruction::Shl, Prod,
    887                            ConstantInt::get(Ty, RHS->logBase2()), NWFlags,
    888                            /*IsSafeToHoist*/ true);
    889       } else {
    890         Prod = InsertBinop(Instruction::Mul, Prod, W, S->getNoWrapFlags(),
    891                            /*IsSafeToHoist*/ true);
    892       }
    893     }
    894   }
    895 
    896   return Prod;
    897 }
    898 
    899 Value *SCEVExpander::visitUDivExpr(const SCEVUDivExpr *S) {
    900   Type *Ty = SE.getEffectiveSCEVType(S->getType());
    901 
    902   Value *LHS = expandCodeForImpl(S->getLHS(), Ty, false);
    903   if (const SCEVConstant *SC = dyn_cast<SCEVConstant>(S->getRHS())) {
    904     const APInt &RHS = SC->getAPInt();
    905     if (RHS.isPowerOf2())
    906       return InsertBinop(Instruction::LShr, LHS,
    907                          ConstantInt::get(Ty, RHS.logBase2()),
    908                          SCEV::FlagAnyWrap, /*IsSafeToHoist*/ true);
    909   }
    910 
    911   Value *RHS = expandCodeForImpl(S->getRHS(), Ty, false);
    912   return InsertBinop(Instruction::UDiv, LHS, RHS, SCEV::FlagAnyWrap,
    913                      /*IsSafeToHoist*/ SE.isKnownNonZero(S->getRHS()));
    914 }
    915 
    916 /// Move parts of Base into Rest to leave Base with the minimal
    917 /// expression that provides a pointer operand suitable for a
    918 /// GEP expansion.
    919 static void ExposePointerBase(const SCEV *&Base, const SCEV *&Rest,
    920                               ScalarEvolution &SE) {
    921   while (const SCEVAddRecExpr *A = dyn_cast<SCEVAddRecExpr>(Base)) {
    922     Base = A->getStart();
    923     Rest = SE.getAddExpr(Rest,
    924                          SE.getAddRecExpr(SE.getConstant(A->getType(), 0),
    925                                           A->getStepRecurrence(SE),
    926                                           A->getLoop(),
    927                                           A->getNoWrapFlags(SCEV::FlagNW)));
    928   }
    929   if (const SCEVAddExpr *A = dyn_cast<SCEVAddExpr>(Base)) {
    930     Base = A->getOperand(A->getNumOperands()-1);
    931     SmallVector<const SCEV *, 8> NewAddOps(A->operands());
    932     NewAddOps.back() = Rest;
    933     Rest = SE.getAddExpr(NewAddOps);
    934     ExposePointerBase(Base, Rest, SE);
    935   }
    936 }
    937 
    938 /// Determine if this is a well-behaved chain of instructions leading back to
    939 /// the PHI. If so, it may be reused by expanded expressions.
    940 bool SCEVExpander::isNormalAddRecExprPHI(PHINode *PN, Instruction *IncV,
    941                                          const Loop *L) {
    942   if (IncV->getNumOperands() == 0 || isa<PHINode>(IncV) ||
    943       (isa<CastInst>(IncV) && !isa<BitCastInst>(IncV)))
    944     return false;
    945   // If any of the operands don't dominate the insert position, bail.
    946   // Addrec operands are always loop-invariant, so this can only happen
    947   // if there are instructions which haven't been hoisted.
    948   if (L == IVIncInsertLoop) {
    949     for (Use &Op : llvm::drop_begin(IncV->operands()))
    950       if (Instruction *OInst = dyn_cast<Instruction>(Op))
    951         if (!SE.DT.dominates(OInst, IVIncInsertPos))
    952           return false;
    953   }
    954   // Advance to the next instruction.
    955   IncV = dyn_cast<Instruction>(IncV->getOperand(0));
    956   if (!IncV)
    957     return false;
    958 
    959   if (IncV->mayHaveSideEffects())
    960     return false;
    961 
    962   if (IncV == PN)
    963     return true;
    964 
    965   return isNormalAddRecExprPHI(PN, IncV, L);
    966 }
    967 
    968 /// getIVIncOperand returns an induction variable increment's induction
    969 /// variable operand.
    970 ///
    971 /// If allowScale is set, any type of GEP is allowed as long as the nonIV
    972 /// operands dominate InsertPos.
    973 ///
    974 /// If allowScale is not set, ensure that a GEP increment conforms to one of the
    975 /// simple patterns generated by getAddRecExprPHILiterally and
    976 /// expandAddtoGEP. If the pattern isn't recognized, return NULL.
    977 Instruction *SCEVExpander::getIVIncOperand(Instruction *IncV,
    978                                            Instruction *InsertPos,
    979                                            bool allowScale) {
    980   if (IncV == InsertPos)
    981     return nullptr;
    982 
    983   switch (IncV->getOpcode()) {
    984   default:
    985     return nullptr;
    986   // Check for a simple Add/Sub or GEP of a loop invariant step.
    987   case Instruction::Add:
    988   case Instruction::Sub: {
    989     Instruction *OInst = dyn_cast<Instruction>(IncV->getOperand(1));
    990     if (!OInst || SE.DT.dominates(OInst, InsertPos))
    991       return dyn_cast<Instruction>(IncV->getOperand(0));
    992     return nullptr;
    993   }
    994   case Instruction::BitCast:
    995     return dyn_cast<Instruction>(IncV->getOperand(0));
    996   case Instruction::GetElementPtr:
    997     for (Use &U : llvm::drop_begin(IncV->operands())) {
    998       if (isa<Constant>(U))
    999         continue;
   1000       if (Instruction *OInst = dyn_cast<Instruction>(U)) {
   1001         if (!SE.DT.dominates(OInst, InsertPos))
   1002           return nullptr;
   1003       }
   1004       if (allowScale) {
   1005         // allow any kind of GEP as long as it can be hoisted.
   1006         continue;
   1007       }
   1008       // This must be a pointer addition of constants (pretty), which is already
   1009       // handled, or some number of address-size elements (ugly). Ugly geps
   1010       // have 2 operands. i1* is used by the expander to represent an
   1011       // address-size element.
   1012       if (IncV->getNumOperands() != 2)
   1013         return nullptr;
   1014       unsigned AS = cast<PointerType>(IncV->getType())->getAddressSpace();
   1015       if (IncV->getType() != Type::getInt1PtrTy(SE.getContext(), AS)
   1016           && IncV->getType() != Type::getInt8PtrTy(SE.getContext(), AS))
   1017         return nullptr;
   1018       break;
   1019     }
   1020     return dyn_cast<Instruction>(IncV->getOperand(0));
   1021   }
   1022 }
   1023 
   1024 /// If the insert point of the current builder or any of the builders on the
   1025 /// stack of saved builders has 'I' as its insert point, update it to point to
   1026 /// the instruction after 'I'.  This is intended to be used when the instruction
   1027 /// 'I' is being moved.  If this fixup is not done and 'I' is moved to a
   1028 /// different block, the inconsistent insert point (with a mismatched
   1029 /// Instruction and Block) can lead to an instruction being inserted in a block
   1030 /// other than its parent.
   1031 void SCEVExpander::fixupInsertPoints(Instruction *I) {
   1032   BasicBlock::iterator It(*I);
   1033   BasicBlock::iterator NewInsertPt = std::next(It);
   1034   if (Builder.GetInsertPoint() == It)
   1035     Builder.SetInsertPoint(&*NewInsertPt);
   1036   for (auto *InsertPtGuard : InsertPointGuards)
   1037     if (InsertPtGuard->GetInsertPoint() == It)
   1038       InsertPtGuard->SetInsertPoint(NewInsertPt);
   1039 }
   1040 
   1041 /// hoistStep - Attempt to hoist a simple IV increment above InsertPos to make
   1042 /// it available to other uses in this loop. Recursively hoist any operands,
   1043 /// until we reach a value that dominates InsertPos.
   1044 bool SCEVExpander::hoistIVInc(Instruction *IncV, Instruction *InsertPos) {
   1045   if (SE.DT.dominates(IncV, InsertPos))
   1046       return true;
   1047 
   1048   // InsertPos must itself dominate IncV so that IncV's new position satisfies
   1049   // its existing users.
   1050   if (isa<PHINode>(InsertPos) ||
   1051       !SE.DT.dominates(InsertPos->getParent(), IncV->getParent()))
   1052     return false;
   1053 
   1054   if (!SE.LI.movementPreservesLCSSAForm(IncV, InsertPos))
   1055     return false;
   1056 
   1057   // Check that the chain of IV operands leading back to Phi can be hoisted.
   1058   SmallVector<Instruction*, 4> IVIncs;
   1059   for(;;) {
   1060     Instruction *Oper = getIVIncOperand(IncV, InsertPos, /*allowScale*/true);
   1061     if (!Oper)
   1062       return false;
   1063     // IncV is safe to hoist.
   1064     IVIncs.push_back(IncV);
   1065     IncV = Oper;
   1066     if (SE.DT.dominates(IncV, InsertPos))
   1067       break;
   1068   }
   1069   for (auto I = IVIncs.rbegin(), E = IVIncs.rend(); I != E; ++I) {
   1070     fixupInsertPoints(*I);
   1071     (*I)->moveBefore(InsertPos);
   1072   }
   1073   return true;
   1074 }
   1075 
   1076 /// Determine if this cyclic phi is in a form that would have been generated by
   1077 /// LSR. We don't care if the phi was actually expanded in this pass, as long
   1078 /// as it is in a low-cost form, for example, no implied multiplication. This
   1079 /// should match any patterns generated by getAddRecExprPHILiterally and
   1080 /// expandAddtoGEP.
   1081 bool SCEVExpander::isExpandedAddRecExprPHI(PHINode *PN, Instruction *IncV,
   1082                                            const Loop *L) {
   1083   for(Instruction *IVOper = IncV;
   1084       (IVOper = getIVIncOperand(IVOper, L->getLoopPreheader()->getTerminator(),
   1085                                 /*allowScale=*/false));) {
   1086     if (IVOper == PN)
   1087       return true;
   1088   }
   1089   return false;
   1090 }
   1091 
   1092 /// expandIVInc - Expand an IV increment at Builder's current InsertPos.
   1093 /// Typically this is the LatchBlock terminator or IVIncInsertPos, but we may
   1094 /// need to materialize IV increments elsewhere to handle difficult situations.
   1095 Value *SCEVExpander::expandIVInc(PHINode *PN, Value *StepV, const Loop *L,
   1096                                  Type *ExpandTy, Type *IntTy,
   1097                                  bool useSubtract) {
   1098   Value *IncV;
   1099   // If the PHI is a pointer, use a GEP, otherwise use an add or sub.
   1100   if (ExpandTy->isPointerTy()) {
   1101     PointerType *GEPPtrTy = cast<PointerType>(ExpandTy);
   1102     // If the step isn't constant, don't use an implicitly scaled GEP, because
   1103     // that would require a multiply inside the loop.
   1104     if (!isa<ConstantInt>(StepV))
   1105       GEPPtrTy = PointerType::get(Type::getInt1Ty(SE.getContext()),
   1106                                   GEPPtrTy->getAddressSpace());
   1107     IncV = expandAddToGEP(SE.getSCEV(StepV), GEPPtrTy, IntTy, PN);
   1108     if (IncV->getType() != PN->getType())
   1109       IncV = Builder.CreateBitCast(IncV, PN->getType());
   1110   } else {
   1111     IncV = useSubtract ?
   1112       Builder.CreateSub(PN, StepV, Twine(IVName) + ".iv.next") :
   1113       Builder.CreateAdd(PN, StepV, Twine(IVName) + ".iv.next");
   1114   }
   1115   return IncV;
   1116 }
   1117 
   1118 /// Hoist the addrec instruction chain rooted in the loop phi above the
   1119 /// position. This routine assumes that this is possible (has been checked).
   1120 void SCEVExpander::hoistBeforePos(DominatorTree *DT, Instruction *InstToHoist,
   1121                                   Instruction *Pos, PHINode *LoopPhi) {
   1122   do {
   1123     if (DT->dominates(InstToHoist, Pos))
   1124       break;
   1125     // Make sure the increment is where we want it. But don't move it
   1126     // down past a potential existing post-inc user.
   1127     fixupInsertPoints(InstToHoist);
   1128     InstToHoist->moveBefore(Pos);
   1129     Pos = InstToHoist;
   1130     InstToHoist = cast<Instruction>(InstToHoist->getOperand(0));
   1131   } while (InstToHoist != LoopPhi);
   1132 }
   1133 
   1134 /// Check whether we can cheaply express the requested SCEV in terms of
   1135 /// the available PHI SCEV by truncation and/or inversion of the step.
   1136 static bool canBeCheaplyTransformed(ScalarEvolution &SE,
   1137                                     const SCEVAddRecExpr *Phi,
   1138                                     const SCEVAddRecExpr *Requested,
   1139                                     bool &InvertStep) {
   1140   Type *PhiTy = SE.getEffectiveSCEVType(Phi->getType());
   1141   Type *RequestedTy = SE.getEffectiveSCEVType(Requested->getType());
   1142 
   1143   if (RequestedTy->getIntegerBitWidth() > PhiTy->getIntegerBitWidth())
   1144     return false;
   1145 
   1146   // Try truncate it if necessary.
   1147   Phi = dyn_cast<SCEVAddRecExpr>(SE.getTruncateOrNoop(Phi, RequestedTy));
   1148   if (!Phi)
   1149     return false;
   1150 
   1151   // Check whether truncation will help.
   1152   if (Phi == Requested) {
   1153     InvertStep = false;
   1154     return true;
   1155   }
   1156 
   1157   // Check whether inverting will help: {R,+,-1} == R - {0,+,1}.
   1158   if (SE.getAddExpr(Requested->getStart(),
   1159                     SE.getNegativeSCEV(Requested)) == Phi) {
   1160     InvertStep = true;
   1161     return true;
   1162   }
   1163 
   1164   return false;
   1165 }
   1166 
   1167 static bool IsIncrementNSW(ScalarEvolution &SE, const SCEVAddRecExpr *AR) {
   1168   if (!isa<IntegerType>(AR->getType()))
   1169     return false;
   1170 
   1171   unsigned BitWidth = cast<IntegerType>(AR->getType())->getBitWidth();
   1172   Type *WideTy = IntegerType::get(AR->getType()->getContext(), BitWidth * 2);
   1173   const SCEV *Step = AR->getStepRecurrence(SE);
   1174   const SCEV *OpAfterExtend = SE.getAddExpr(SE.getSignExtendExpr(Step, WideTy),
   1175                                             SE.getSignExtendExpr(AR, WideTy));
   1176   const SCEV *ExtendAfterOp =
   1177     SE.getSignExtendExpr(SE.getAddExpr(AR, Step), WideTy);
   1178   return ExtendAfterOp == OpAfterExtend;
   1179 }
   1180 
   1181 static bool IsIncrementNUW(ScalarEvolution &SE, const SCEVAddRecExpr *AR) {
   1182   if (!isa<IntegerType>(AR->getType()))
   1183     return false;
   1184 
   1185   unsigned BitWidth = cast<IntegerType>(AR->getType())->getBitWidth();
   1186   Type *WideTy = IntegerType::get(AR->getType()->getContext(), BitWidth * 2);
   1187   const SCEV *Step = AR->getStepRecurrence(SE);
   1188   const SCEV *OpAfterExtend = SE.getAddExpr(SE.getZeroExtendExpr(Step, WideTy),
   1189                                             SE.getZeroExtendExpr(AR, WideTy));
   1190   const SCEV *ExtendAfterOp =
   1191     SE.getZeroExtendExpr(SE.getAddExpr(AR, Step), WideTy);
   1192   return ExtendAfterOp == OpAfterExtend;
   1193 }
   1194 
   1195 /// getAddRecExprPHILiterally - Helper for expandAddRecExprLiterally. Expand
   1196 /// the base addrec, which is the addrec without any non-loop-dominating
   1197 /// values, and return the PHI.
   1198 PHINode *
   1199 SCEVExpander::getAddRecExprPHILiterally(const SCEVAddRecExpr *Normalized,
   1200                                         const Loop *L,
   1201                                         Type *ExpandTy,
   1202                                         Type *IntTy,
   1203                                         Type *&TruncTy,
   1204                                         bool &InvertStep) {
   1205   assert((!IVIncInsertLoop||IVIncInsertPos) && "Uninitialized insert position");
   1206 
   1207   // Reuse a previously-inserted PHI, if present.
   1208   BasicBlock *LatchBlock = L->getLoopLatch();
   1209   if (LatchBlock) {
   1210     PHINode *AddRecPhiMatch = nullptr;
   1211     Instruction *IncV = nullptr;
   1212     TruncTy = nullptr;
   1213     InvertStep = false;
   1214 
   1215     // Only try partially matching scevs that need truncation and/or
   1216     // step-inversion if we know this loop is outside the current loop.
   1217     bool TryNonMatchingSCEV =
   1218         IVIncInsertLoop &&
   1219         SE.DT.properlyDominates(LatchBlock, IVIncInsertLoop->getHeader());
   1220 
   1221     for (PHINode &PN : L->getHeader()->phis()) {
   1222       if (!SE.isSCEVable(PN.getType()))
   1223         continue;
   1224 
   1225       // We should not look for a incomplete PHI. Getting SCEV for a incomplete
   1226       // PHI has no meaning at all.
   1227       if (!PN.isComplete()) {
   1228         DEBUG_WITH_TYPE(
   1229             DebugType, dbgs() << "One incomplete PHI is found: " << PN << "\n");
   1230         continue;
   1231       }
   1232 
   1233       const SCEVAddRecExpr *PhiSCEV = dyn_cast<SCEVAddRecExpr>(SE.getSCEV(&PN));
   1234       if (!PhiSCEV)
   1235         continue;
   1236 
   1237       bool IsMatchingSCEV = PhiSCEV == Normalized;
   1238       // We only handle truncation and inversion of phi recurrences for the
   1239       // expanded expression if the expanded expression's loop dominates the
   1240       // loop we insert to. Check now, so we can bail out early.
   1241       if (!IsMatchingSCEV && !TryNonMatchingSCEV)
   1242           continue;
   1243 
   1244       // TODO: this possibly can be reworked to avoid this cast at all.
   1245       Instruction *TempIncV =
   1246           dyn_cast<Instruction>(PN.getIncomingValueForBlock(LatchBlock));
   1247       if (!TempIncV)
   1248         continue;
   1249 
   1250       // Check whether we can reuse this PHI node.
   1251       if (LSRMode) {
   1252         if (!isExpandedAddRecExprPHI(&PN, TempIncV, L))
   1253           continue;
   1254         if (L == IVIncInsertLoop && !hoistIVInc(TempIncV, IVIncInsertPos))
   1255           continue;
   1256       } else {
   1257         if (!isNormalAddRecExprPHI(&PN, TempIncV, L))
   1258           continue;
   1259       }
   1260 
   1261       // Stop if we have found an exact match SCEV.
   1262       if (IsMatchingSCEV) {
   1263         IncV = TempIncV;
   1264         TruncTy = nullptr;
   1265         InvertStep = false;
   1266         AddRecPhiMatch = &PN;
   1267         break;
   1268       }
   1269 
   1270       // Try whether the phi can be translated into the requested form
   1271       // (truncated and/or offset by a constant).
   1272       if ((!TruncTy || InvertStep) &&
   1273           canBeCheaplyTransformed(SE, PhiSCEV, Normalized, InvertStep)) {
   1274         // Record the phi node. But don't stop we might find an exact match
   1275         // later.
   1276         AddRecPhiMatch = &PN;
   1277         IncV = TempIncV;
   1278         TruncTy = SE.getEffectiveSCEVType(Normalized->getType());
   1279       }
   1280     }
   1281 
   1282     if (AddRecPhiMatch) {
   1283       // Potentially, move the increment. We have made sure in
   1284       // isExpandedAddRecExprPHI or hoistIVInc that this is possible.
   1285       if (L == IVIncInsertLoop)
   1286         hoistBeforePos(&SE.DT, IncV, IVIncInsertPos, AddRecPhiMatch);
   1287 
   1288       // Ok, the add recurrence looks usable.
   1289       // Remember this PHI, even in post-inc mode.
   1290       InsertedValues.insert(AddRecPhiMatch);
   1291       // Remember the increment.
   1292       rememberInstruction(IncV);
   1293       // Those values were not actually inserted but re-used.
   1294       ReusedValues.insert(AddRecPhiMatch);
   1295       ReusedValues.insert(IncV);
   1296       return AddRecPhiMatch;
   1297     }
   1298   }
   1299 
   1300   // Save the original insertion point so we can restore it when we're done.
   1301   SCEVInsertPointGuard Guard(Builder, this);
   1302 
   1303   // Another AddRec may need to be recursively expanded below. For example, if
   1304   // this AddRec is quadratic, the StepV may itself be an AddRec in this
   1305   // loop. Remove this loop from the PostIncLoops set before expanding such
   1306   // AddRecs. Otherwise, we cannot find a valid position for the step
   1307   // (i.e. StepV can never dominate its loop header).  Ideally, we could do
   1308   // SavedIncLoops.swap(PostIncLoops), but we generally have a single element,
   1309   // so it's not worth implementing SmallPtrSet::swap.
   1310   PostIncLoopSet SavedPostIncLoops = PostIncLoops;
   1311   PostIncLoops.clear();
   1312 
   1313   // Expand code for the start value into the loop preheader.
   1314   assert(L->getLoopPreheader() &&
   1315          "Can't expand add recurrences without a loop preheader!");
   1316   Value *StartV =
   1317       expandCodeForImpl(Normalized->getStart(), ExpandTy,
   1318                         L->getLoopPreheader()->getTerminator(), false);
   1319 
   1320   // StartV must have been be inserted into L's preheader to dominate the new
   1321   // phi.
   1322   assert(!isa<Instruction>(StartV) ||
   1323          SE.DT.properlyDominates(cast<Instruction>(StartV)->getParent(),
   1324                                  L->getHeader()));
   1325 
   1326   // Expand code for the step value. Do this before creating the PHI so that PHI
   1327   // reuse code doesn't see an incomplete PHI.
   1328   const SCEV *Step = Normalized->getStepRecurrence(SE);
   1329   // If the stride is negative, insert a sub instead of an add for the increment
   1330   // (unless it's a constant, because subtracts of constants are canonicalized
   1331   // to adds).
   1332   bool useSubtract = !ExpandTy->isPointerTy() && Step->isNonConstantNegative();
   1333   if (useSubtract)
   1334     Step = SE.getNegativeSCEV(Step);
   1335   // Expand the step somewhere that dominates the loop header.
   1336   Value *StepV = expandCodeForImpl(
   1337       Step, IntTy, &*L->getHeader()->getFirstInsertionPt(), false);
   1338 
   1339   // The no-wrap behavior proved by IsIncrement(NUW|NSW) is only applicable if
   1340   // we actually do emit an addition.  It does not apply if we emit a
   1341   // subtraction.
   1342   bool IncrementIsNUW = !useSubtract && IsIncrementNUW(SE, Normalized);
   1343   bool IncrementIsNSW = !useSubtract && IsIncrementNSW(SE, Normalized);
   1344 
   1345   // Create the PHI.
   1346   BasicBlock *Header = L->getHeader();
   1347   Builder.SetInsertPoint(Header, Header->begin());
   1348   pred_iterator HPB = pred_begin(Header), HPE = pred_end(Header);
   1349   PHINode *PN = Builder.CreatePHI(ExpandTy, std::distance(HPB, HPE),
   1350                                   Twine(IVName) + ".iv");
   1351 
   1352   // Create the step instructions and populate the PHI.
   1353   for (pred_iterator HPI = HPB; HPI != HPE; ++HPI) {
   1354     BasicBlock *Pred = *HPI;
   1355 
   1356     // Add a start value.
   1357     if (!L->contains(Pred)) {
   1358       PN->addIncoming(StartV, Pred);
   1359       continue;
   1360     }
   1361 
   1362     // Create a step value and add it to the PHI.
   1363     // If IVIncInsertLoop is non-null and equal to the addrec's loop, insert the
   1364     // instructions at IVIncInsertPos.
   1365     Instruction *InsertPos = L == IVIncInsertLoop ?
   1366       IVIncInsertPos : Pred->getTerminator();
   1367     Builder.SetInsertPoint(InsertPos);
   1368     Value *IncV = expandIVInc(PN, StepV, L, ExpandTy, IntTy, useSubtract);
   1369 
   1370     if (isa<OverflowingBinaryOperator>(IncV)) {
   1371       if (IncrementIsNUW)
   1372         cast<BinaryOperator>(IncV)->setHasNoUnsignedWrap();
   1373       if (IncrementIsNSW)
   1374         cast<BinaryOperator>(IncV)->setHasNoSignedWrap();
   1375     }
   1376     PN->addIncoming(IncV, Pred);
   1377   }
   1378 
   1379   // After expanding subexpressions, restore the PostIncLoops set so the caller
   1380   // can ensure that IVIncrement dominates the current uses.
   1381   PostIncLoops = SavedPostIncLoops;
   1382 
   1383   // Remember this PHI, even in post-inc mode.
   1384   InsertedValues.insert(PN);
   1385 
   1386   return PN;
   1387 }
   1388 
   1389 Value *SCEVExpander::expandAddRecExprLiterally(const SCEVAddRecExpr *S) {
   1390   Type *STy = S->getType();
   1391   Type *IntTy = SE.getEffectiveSCEVType(STy);
   1392   const Loop *L = S->getLoop();
   1393 
   1394   // Determine a normalized form of this expression, which is the expression
   1395   // before any post-inc adjustment is made.
   1396   const SCEVAddRecExpr *Normalized = S;
   1397   if (PostIncLoops.count(L)) {
   1398     PostIncLoopSet Loops;
   1399     Loops.insert(L);
   1400     Normalized = cast<SCEVAddRecExpr>(normalizeForPostIncUse(S, Loops, SE));
   1401   }
   1402 
   1403   // Strip off any non-loop-dominating component from the addrec start.
   1404   const SCEV *Start = Normalized->getStart();
   1405   const SCEV *PostLoopOffset = nullptr;
   1406   if (!SE.properlyDominates(Start, L->getHeader())) {
   1407     PostLoopOffset = Start;
   1408     Start = SE.getConstant(Normalized->getType(), 0);
   1409     Normalized = cast<SCEVAddRecExpr>(
   1410       SE.getAddRecExpr(Start, Normalized->getStepRecurrence(SE),
   1411                        Normalized->getLoop(),
   1412                        Normalized->getNoWrapFlags(SCEV::FlagNW)));
   1413   }
   1414 
   1415   // Strip off any non-loop-dominating component from the addrec step.
   1416   const SCEV *Step = Normalized->getStepRecurrence(SE);
   1417   const SCEV *PostLoopScale = nullptr;
   1418   if (!SE.dominates(Step, L->getHeader())) {
   1419     PostLoopScale = Step;
   1420     Step = SE.getConstant(Normalized->getType(), 1);
   1421     if (!Start->isZero()) {
   1422         // The normalization below assumes that Start is constant zero, so if
   1423         // it isn't re-associate Start to PostLoopOffset.
   1424         assert(!PostLoopOffset && "Start not-null but PostLoopOffset set?");
   1425         PostLoopOffset = Start;
   1426         Start = SE.getConstant(Normalized->getType(), 0);
   1427     }
   1428     Normalized =
   1429       cast<SCEVAddRecExpr>(SE.getAddRecExpr(
   1430                              Start, Step, Normalized->getLoop(),
   1431                              Normalized->getNoWrapFlags(SCEV::FlagNW)));
   1432   }
   1433 
   1434   // Expand the core addrec. If we need post-loop scaling, force it to
   1435   // expand to an integer type to avoid the need for additional casting.
   1436   Type *ExpandTy = PostLoopScale ? IntTy : STy;
   1437   // We can't use a pointer type for the addrec if the pointer type is
   1438   // non-integral.
   1439   Type *AddRecPHIExpandTy =
   1440       DL.isNonIntegralPointerType(STy) ? Normalized->getType() : ExpandTy;
   1441 
   1442   // In some cases, we decide to reuse an existing phi node but need to truncate
   1443   // it and/or invert the step.
   1444   Type *TruncTy = nullptr;
   1445   bool InvertStep = false;
   1446   PHINode *PN = getAddRecExprPHILiterally(Normalized, L, AddRecPHIExpandTy,
   1447                                           IntTy, TruncTy, InvertStep);
   1448 
   1449   // Accommodate post-inc mode, if necessary.
   1450   Value *Result;
   1451   if (!PostIncLoops.count(L))
   1452     Result = PN;
   1453   else {
   1454     // In PostInc mode, use the post-incremented value.
   1455     BasicBlock *LatchBlock = L->getLoopLatch();
   1456     assert(LatchBlock && "PostInc mode requires a unique loop latch!");
   1457     Result = PN->getIncomingValueForBlock(LatchBlock);
   1458 
   1459     // We might be introducing a new use of the post-inc IV that is not poison
   1460     // safe, in which case we should drop poison generating flags. Only keep
   1461     // those flags for which SCEV has proven that they always hold.
   1462     if (isa<OverflowingBinaryOperator>(Result)) {
   1463       auto *I = cast<Instruction>(Result);
   1464       if (!S->hasNoUnsignedWrap())
   1465         I->setHasNoUnsignedWrap(false);
   1466       if (!S->hasNoSignedWrap())
   1467         I->setHasNoSignedWrap(false);
   1468     }
   1469 
   1470     // For an expansion to use the postinc form, the client must call
   1471     // expandCodeFor with an InsertPoint that is either outside the PostIncLoop
   1472     // or dominated by IVIncInsertPos.
   1473     if (isa<Instruction>(Result) &&
   1474         !SE.DT.dominates(cast<Instruction>(Result),
   1475                          &*Builder.GetInsertPoint())) {
   1476       // The induction variable's postinc expansion does not dominate this use.
   1477       // IVUsers tries to prevent this case, so it is rare. However, it can
   1478       // happen when an IVUser outside the loop is not dominated by the latch
   1479       // block. Adjusting IVIncInsertPos before expansion begins cannot handle
   1480       // all cases. Consider a phi outside whose operand is replaced during
   1481       // expansion with the value of the postinc user. Without fundamentally
   1482       // changing the way postinc users are tracked, the only remedy is
   1483       // inserting an extra IV increment. StepV might fold into PostLoopOffset,
   1484       // but hopefully expandCodeFor handles that.
   1485       bool useSubtract =
   1486         !ExpandTy->isPointerTy() && Step->isNonConstantNegative();
   1487       if (useSubtract)
   1488         Step = SE.getNegativeSCEV(Step);
   1489       Value *StepV;
   1490       {
   1491         // Expand the step somewhere that dominates the loop header.
   1492         SCEVInsertPointGuard Guard(Builder, this);
   1493         StepV = expandCodeForImpl(
   1494             Step, IntTy, &*L->getHeader()->getFirstInsertionPt(), false);
   1495       }
   1496       Result = expandIVInc(PN, StepV, L, ExpandTy, IntTy, useSubtract);
   1497     }
   1498   }
   1499 
   1500   // We have decided to reuse an induction variable of a dominating loop. Apply
   1501   // truncation and/or inversion of the step.
   1502   if (TruncTy) {
   1503     Type *ResTy = Result->getType();
   1504     // Normalize the result type.
   1505     if (ResTy != SE.getEffectiveSCEVType(ResTy))
   1506       Result = InsertNoopCastOfTo(Result, SE.getEffectiveSCEVType(ResTy));
   1507     // Truncate the result.
   1508     if (TruncTy != Result->getType())
   1509       Result = Builder.CreateTrunc(Result, TruncTy);
   1510 
   1511     // Invert the result.
   1512     if (InvertStep)
   1513       Result = Builder.CreateSub(
   1514           expandCodeForImpl(Normalized->getStart(), TruncTy, false), Result);
   1515   }
   1516 
   1517   // Re-apply any non-loop-dominating scale.
   1518   if (PostLoopScale) {
   1519     assert(S->isAffine() && "Can't linearly scale non-affine recurrences.");
   1520     Result = InsertNoopCastOfTo(Result, IntTy);
   1521     Result = Builder.CreateMul(Result,
   1522                                expandCodeForImpl(PostLoopScale, IntTy, false));
   1523   }
   1524 
   1525   // Re-apply any non-loop-dominating offset.
   1526   if (PostLoopOffset) {
   1527     if (PointerType *PTy = dyn_cast<PointerType>(ExpandTy)) {
   1528       if (Result->getType()->isIntegerTy()) {
   1529         Value *Base = expandCodeForImpl(PostLoopOffset, ExpandTy, false);
   1530         Result = expandAddToGEP(SE.getUnknown(Result), PTy, IntTy, Base);
   1531       } else {
   1532         Result = expandAddToGEP(PostLoopOffset, PTy, IntTy, Result);
   1533       }
   1534     } else {
   1535       Result = InsertNoopCastOfTo(Result, IntTy);
   1536       Result = Builder.CreateAdd(
   1537           Result, expandCodeForImpl(PostLoopOffset, IntTy, false));
   1538     }
   1539   }
   1540 
   1541   return Result;
   1542 }
   1543 
   1544 Value *SCEVExpander::visitAddRecExpr(const SCEVAddRecExpr *S) {
   1545   // In canonical mode we compute the addrec as an expression of a canonical IV
   1546   // using evaluateAtIteration and expand the resulting SCEV expression. This
   1547   // way we avoid introducing new IVs to carry on the comutation of the addrec
   1548   // throughout the loop.
   1549   //
   1550   // For nested addrecs evaluateAtIteration might need a canonical IV of a
   1551   // type wider than the addrec itself. Emitting a canonical IV of the
   1552   // proper type might produce non-legal types, for example expanding an i64
   1553   // {0,+,2,+,1} addrec would need an i65 canonical IV. To avoid this just fall
   1554   // back to non-canonical mode for nested addrecs.
   1555   if (!CanonicalMode || (S->getNumOperands() > 2))
   1556     return expandAddRecExprLiterally(S);
   1557 
   1558   Type *Ty = SE.getEffectiveSCEVType(S->getType());
   1559   const Loop *L = S->getLoop();
   1560 
   1561   // First check for an existing canonical IV in a suitable type.
   1562   PHINode *CanonicalIV = nullptr;
   1563   if (PHINode *PN = L->getCanonicalInductionVariable())
   1564     if (SE.getTypeSizeInBits(PN->getType()) >= SE.getTypeSizeInBits(Ty))
   1565       CanonicalIV = PN;
   1566 
   1567   // Rewrite an AddRec in terms of the canonical induction variable, if
   1568   // its type is more narrow.
   1569   if (CanonicalIV &&
   1570       SE.getTypeSizeInBits(CanonicalIV->getType()) >
   1571       SE.getTypeSizeInBits(Ty)) {
   1572     SmallVector<const SCEV *, 4> NewOps(S->getNumOperands());
   1573     for (unsigned i = 0, e = S->getNumOperands(); i != e; ++i)
   1574       NewOps[i] = SE.getAnyExtendExpr(S->op_begin()[i], CanonicalIV->getType());
   1575     Value *V = expand(SE.getAddRecExpr(NewOps, S->getLoop(),
   1576                                        S->getNoWrapFlags(SCEV::FlagNW)));
   1577     BasicBlock::iterator NewInsertPt =
   1578         findInsertPointAfter(cast<Instruction>(V), &*Builder.GetInsertPoint());
   1579     V = expandCodeForImpl(SE.getTruncateExpr(SE.getUnknown(V), Ty), nullptr,
   1580                           &*NewInsertPt, false);
   1581     return V;
   1582   }
   1583 
   1584   // {X,+,F} --> X + {0,+,F}
   1585   if (!S->getStart()->isZero()) {
   1586     SmallVector<const SCEV *, 4> NewOps(S->operands());
   1587     NewOps[0] = SE.getConstant(Ty, 0);
   1588     const SCEV *Rest = SE.getAddRecExpr(NewOps, L,
   1589                                         S->getNoWrapFlags(SCEV::FlagNW));
   1590 
   1591     // Turn things like ptrtoint+arithmetic+inttoptr into GEP. See the
   1592     // comments on expandAddToGEP for details.
   1593     const SCEV *Base = S->getStart();
   1594     // Dig into the expression to find the pointer base for a GEP.
   1595     const SCEV *ExposedRest = Rest;
   1596     ExposePointerBase(Base, ExposedRest, SE);
   1597     // If we found a pointer, expand the AddRec with a GEP.
   1598     if (PointerType *PTy = dyn_cast<PointerType>(Base->getType())) {
   1599       // Make sure the Base isn't something exotic, such as a multiplied
   1600       // or divided pointer value. In those cases, the result type isn't
   1601       // actually a pointer type.
   1602       if (!isa<SCEVMulExpr>(Base) && !isa<SCEVUDivExpr>(Base)) {
   1603         Value *StartV = expand(Base);
   1604         assert(StartV->getType() == PTy && "Pointer type mismatch for GEP!");
   1605         return expandAddToGEP(ExposedRest, PTy, Ty, StartV);
   1606       }
   1607     }
   1608 
   1609     // Just do a normal add. Pre-expand the operands to suppress folding.
   1610     //
   1611     // The LHS and RHS values are factored out of the expand call to make the
   1612     // output independent of the argument evaluation order.
   1613     const SCEV *AddExprLHS = SE.getUnknown(expand(S->getStart()));
   1614     const SCEV *AddExprRHS = SE.getUnknown(expand(Rest));
   1615     return expand(SE.getAddExpr(AddExprLHS, AddExprRHS));
   1616   }
   1617 
   1618   // If we don't yet have a canonical IV, create one.
   1619   if (!CanonicalIV) {
   1620     // Create and insert the PHI node for the induction variable in the
   1621     // specified loop.
   1622     BasicBlock *Header = L->getHeader();
   1623     pred_iterator HPB = pred_begin(Header), HPE = pred_end(Header);
   1624     CanonicalIV = PHINode::Create(Ty, std::distance(HPB, HPE), "indvar",
   1625                                   &Header->front());
   1626     rememberInstruction(CanonicalIV);
   1627 
   1628     SmallSet<BasicBlock *, 4> PredSeen;
   1629     Constant *One = ConstantInt::get(Ty, 1);
   1630     for (pred_iterator HPI = HPB; HPI != HPE; ++HPI) {
   1631       BasicBlock *HP = *HPI;
   1632       if (!PredSeen.insert(HP).second) {
   1633         // There must be an incoming value for each predecessor, even the
   1634         // duplicates!
   1635         CanonicalIV->addIncoming(CanonicalIV->getIncomingValueForBlock(HP), HP);
   1636         continue;
   1637       }
   1638 
   1639       if (L->contains(HP)) {
   1640         // Insert a unit add instruction right before the terminator
   1641         // corresponding to the back-edge.
   1642         Instruction *Add = BinaryOperator::CreateAdd(CanonicalIV, One,
   1643                                                      "indvar.next",
   1644                                                      HP->getTerminator());
   1645         Add->setDebugLoc(HP->getTerminator()->getDebugLoc());
   1646         rememberInstruction(Add);
   1647         CanonicalIV->addIncoming(Add, HP);
   1648       } else {
   1649         CanonicalIV->addIncoming(Constant::getNullValue(Ty), HP);
   1650       }
   1651     }
   1652   }
   1653 
   1654   // {0,+,1} --> Insert a canonical induction variable into the loop!
   1655   if (S->isAffine() && S->getOperand(1)->isOne()) {
   1656     assert(Ty == SE.getEffectiveSCEVType(CanonicalIV->getType()) &&
   1657            "IVs with types different from the canonical IV should "
   1658            "already have been handled!");
   1659     return CanonicalIV;
   1660   }
   1661 
   1662   // {0,+,F} --> {0,+,1} * F
   1663 
   1664   // If this is a simple linear addrec, emit it now as a special case.
   1665   if (S->isAffine())    // {0,+,F} --> i*F
   1666     return
   1667       expand(SE.getTruncateOrNoop(
   1668         SE.getMulExpr(SE.getUnknown(CanonicalIV),
   1669                       SE.getNoopOrAnyExtend(S->getOperand(1),
   1670                                             CanonicalIV->getType())),
   1671         Ty));
   1672 
   1673   // If this is a chain of recurrences, turn it into a closed form, using the
   1674   // folders, then expandCodeFor the closed form.  This allows the folders to
   1675   // simplify the expression without having to build a bunch of special code
   1676   // into this folder.
   1677   const SCEV *IH = SE.getUnknown(CanonicalIV);   // Get I as a "symbolic" SCEV.
   1678 
   1679   // Promote S up to the canonical IV type, if the cast is foldable.
   1680   const SCEV *NewS = S;
   1681   const SCEV *Ext = SE.getNoopOrAnyExtend(S, CanonicalIV->getType());
   1682   if (isa<SCEVAddRecExpr>(Ext))
   1683     NewS = Ext;
   1684 
   1685   const SCEV *V = cast<SCEVAddRecExpr>(NewS)->evaluateAtIteration(IH, SE);
   1686   //cerr << "Evaluated: " << *this << "\n     to: " << *V << "\n";
   1687 
   1688   // Truncate the result down to the original type, if needed.
   1689   const SCEV *T = SE.getTruncateOrNoop(V, Ty);
   1690   return expand(T);
   1691 }
   1692 
   1693 Value *SCEVExpander::visitPtrToIntExpr(const SCEVPtrToIntExpr *S) {
   1694   Value *V =
   1695       expandCodeForImpl(S->getOperand(), S->getOperand()->getType(), false);
   1696   return ReuseOrCreateCast(V, S->getType(), CastInst::PtrToInt,
   1697                            GetOptimalInsertionPointForCastOf(V));
   1698 }
   1699 
   1700 Value *SCEVExpander::visitTruncateExpr(const SCEVTruncateExpr *S) {
   1701   Type *Ty = SE.getEffectiveSCEVType(S->getType());
   1702   Value *V = expandCodeForImpl(
   1703       S->getOperand(), SE.getEffectiveSCEVType(S->getOperand()->getType()),
   1704       false);
   1705   return Builder.CreateTrunc(V, Ty);
   1706 }
   1707 
   1708 Value *SCEVExpander::visitZeroExtendExpr(const SCEVZeroExtendExpr *S) {
   1709   Type *Ty = SE.getEffectiveSCEVType(S->getType());
   1710   Value *V = expandCodeForImpl(
   1711       S->getOperand(), SE.getEffectiveSCEVType(S->getOperand()->getType()),
   1712       false);
   1713   return Builder.CreateZExt(V, Ty);
   1714 }
   1715 
   1716 Value *SCEVExpander::visitSignExtendExpr(const SCEVSignExtendExpr *S) {
   1717   Type *Ty = SE.getEffectiveSCEVType(S->getType());
   1718   Value *V = expandCodeForImpl(
   1719       S->getOperand(), SE.getEffectiveSCEVType(S->getOperand()->getType()),
   1720       false);
   1721   return Builder.CreateSExt(V, Ty);
   1722 }
   1723 
   1724 Value *SCEVExpander::visitSMaxExpr(const SCEVSMaxExpr *S) {
   1725   Value *LHS = expand(S->getOperand(S->getNumOperands()-1));
   1726   Type *Ty = LHS->getType();
   1727   for (int i = S->getNumOperands()-2; i >= 0; --i) {
   1728     // In the case of mixed integer and pointer types, do the
   1729     // rest of the comparisons as integer.
   1730     Type *OpTy = S->getOperand(i)->getType();
   1731     if (OpTy->isIntegerTy() != Ty->isIntegerTy()) {
   1732       Ty = SE.getEffectiveSCEVType(Ty);
   1733       LHS = InsertNoopCastOfTo(LHS, Ty);
   1734     }
   1735     Value *RHS = expandCodeForImpl(S->getOperand(i), Ty, false);
   1736     Value *Sel;
   1737     if (Ty->isIntegerTy())
   1738       Sel = Builder.CreateIntrinsic(Intrinsic::smax, {Ty}, {LHS, RHS},
   1739                                     /*FMFSource=*/nullptr, "smax");
   1740     else {
   1741       Value *ICmp = Builder.CreateICmpSGT(LHS, RHS);
   1742       Sel = Builder.CreateSelect(ICmp, LHS, RHS, "smax");
   1743     }
   1744     LHS = Sel;
   1745   }
   1746   // In the case of mixed integer and pointer types, cast the
   1747   // final result back to the pointer type.
   1748   if (LHS->getType() != S->getType())
   1749     LHS = InsertNoopCastOfTo(LHS, S->getType());
   1750   return LHS;
   1751 }
   1752 
   1753 Value *SCEVExpander::visitUMaxExpr(const SCEVUMaxExpr *S) {
   1754   Value *LHS = expand(S->getOperand(S->getNumOperands()-1));
   1755   Type *Ty = LHS->getType();
   1756   for (int i = S->getNumOperands()-2; i >= 0; --i) {
   1757     // In the case of mixed integer and pointer types, do the
   1758     // rest of the comparisons as integer.
   1759     Type *OpTy = S->getOperand(i)->getType();
   1760     if (OpTy->isIntegerTy() != Ty->isIntegerTy()) {
   1761       Ty = SE.getEffectiveSCEVType(Ty);
   1762       LHS = InsertNoopCastOfTo(LHS, Ty);
   1763     }
   1764     Value *RHS = expandCodeForImpl(S->getOperand(i), Ty, false);
   1765     Value *Sel;
   1766     if (Ty->isIntegerTy())
   1767       Sel = Builder.CreateIntrinsic(Intrinsic::umax, {Ty}, {LHS, RHS},
   1768                                     /*FMFSource=*/nullptr, "umax");
   1769     else {
   1770       Value *ICmp = Builder.CreateICmpUGT(LHS, RHS);
   1771       Sel = Builder.CreateSelect(ICmp, LHS, RHS, "umax");
   1772     }
   1773     LHS = Sel;
   1774   }
   1775   // In the case of mixed integer and pointer types, cast the
   1776   // final result back to the pointer type.
   1777   if (LHS->getType() != S->getType())
   1778     LHS = InsertNoopCastOfTo(LHS, S->getType());
   1779   return LHS;
   1780 }
   1781 
   1782 Value *SCEVExpander::visitSMinExpr(const SCEVSMinExpr *S) {
   1783   Value *LHS = expand(S->getOperand(S->getNumOperands() - 1));
   1784   Type *Ty = LHS->getType();
   1785   for (int i = S->getNumOperands() - 2; i >= 0; --i) {
   1786     // In the case of mixed integer and pointer types, do the
   1787     // rest of the comparisons as integer.
   1788     Type *OpTy = S->getOperand(i)->getType();
   1789     if (OpTy->isIntegerTy() != Ty->isIntegerTy()) {
   1790       Ty = SE.getEffectiveSCEVType(Ty);
   1791       LHS = InsertNoopCastOfTo(LHS, Ty);
   1792     }
   1793     Value *RHS = expandCodeForImpl(S->getOperand(i), Ty, false);
   1794     Value *Sel;
   1795     if (Ty->isIntegerTy())
   1796       Sel = Builder.CreateIntrinsic(Intrinsic::smin, {Ty}, {LHS, RHS},
   1797                                     /*FMFSource=*/nullptr, "smin");
   1798     else {
   1799       Value *ICmp = Builder.CreateICmpSLT(LHS, RHS);
   1800       Sel = Builder.CreateSelect(ICmp, LHS, RHS, "smin");
   1801     }
   1802     LHS = Sel;
   1803   }
   1804   // In the case of mixed integer and pointer types, cast the
   1805   // final result back to the pointer type.
   1806   if (LHS->getType() != S->getType())
   1807     LHS = InsertNoopCastOfTo(LHS, S->getType());
   1808   return LHS;
   1809 }
   1810 
   1811 Value *SCEVExpander::visitUMinExpr(const SCEVUMinExpr *S) {
   1812   Value *LHS = expand(S->getOperand(S->getNumOperands() - 1));
   1813   Type *Ty = LHS->getType();
   1814   for (int i = S->getNumOperands() - 2; i >= 0; --i) {
   1815     // In the case of mixed integer and pointer types, do the
   1816     // rest of the comparisons as integer.
   1817     Type *OpTy = S->getOperand(i)->getType();
   1818     if (OpTy->isIntegerTy() != Ty->isIntegerTy()) {
   1819       Ty = SE.getEffectiveSCEVType(Ty);
   1820       LHS = InsertNoopCastOfTo(LHS, Ty);
   1821     }
   1822     Value *RHS = expandCodeForImpl(S->getOperand(i), Ty, false);
   1823     Value *Sel;
   1824     if (Ty->isIntegerTy())
   1825       Sel = Builder.CreateIntrinsic(Intrinsic::umin, {Ty}, {LHS, RHS},
   1826                                     /*FMFSource=*/nullptr, "umin");
   1827     else {
   1828       Value *ICmp = Builder.CreateICmpULT(LHS, RHS);
   1829       Sel = Builder.CreateSelect(ICmp, LHS, RHS, "umin");
   1830     }
   1831     LHS = Sel;
   1832   }
   1833   // In the case of mixed integer and pointer types, cast the
   1834   // final result back to the pointer type.
   1835   if (LHS->getType() != S->getType())
   1836     LHS = InsertNoopCastOfTo(LHS, S->getType());
   1837   return LHS;
   1838 }
   1839 
   1840 Value *SCEVExpander::expandCodeForImpl(const SCEV *SH, Type *Ty,
   1841                                        Instruction *IP, bool Root) {
   1842   setInsertPoint(IP);
   1843   Value *V = expandCodeForImpl(SH, Ty, Root);
   1844   return V;
   1845 }
   1846 
   1847 Value *SCEVExpander::expandCodeForImpl(const SCEV *SH, Type *Ty, bool Root) {
   1848   // Expand the code for this SCEV.
   1849   Value *V = expand(SH);
   1850 
   1851   if (PreserveLCSSA) {
   1852     if (auto *Inst = dyn_cast<Instruction>(V)) {
   1853       // Create a temporary instruction to at the current insertion point, so we
   1854       // can hand it off to the helper to create LCSSA PHIs if required for the
   1855       // new use.
   1856       // FIXME: Ideally formLCSSAForInstructions (used in fixupLCSSAFormFor)
   1857       // would accept a insertion point and return an LCSSA phi for that
   1858       // insertion point, so there is no need to insert & remove the temporary
   1859       // instruction.
   1860       Instruction *Tmp;
   1861       if (Inst->getType()->isIntegerTy())
   1862         Tmp =
   1863             cast<Instruction>(Builder.CreateAdd(Inst, Inst, "tmp.lcssa.user"));
   1864       else {
   1865         assert(Inst->getType()->isPointerTy());
   1866         Tmp = cast<Instruction>(
   1867             Builder.CreateGEP(Inst, Builder.getInt32(1), "tmp.lcssa.user"));
   1868       }
   1869       V = fixupLCSSAFormFor(Tmp, 0);
   1870 
   1871       // Clean up temporary instruction.
   1872       InsertedValues.erase(Tmp);
   1873       InsertedPostIncValues.erase(Tmp);
   1874       Tmp->eraseFromParent();
   1875     }
   1876   }
   1877 
   1878   InsertedExpressions[std::make_pair(SH, &*Builder.GetInsertPoint())] = V;
   1879   if (Ty) {
   1880     assert(SE.getTypeSizeInBits(Ty) == SE.getTypeSizeInBits(SH->getType()) &&
   1881            "non-trivial casts should be done with the SCEVs directly!");
   1882     V = InsertNoopCastOfTo(V, Ty);
   1883   }
   1884   return V;
   1885 }
   1886 
   1887 ScalarEvolution::ValueOffsetPair
   1888 SCEVExpander::FindValueInExprValueMap(const SCEV *S,
   1889                                       const Instruction *InsertPt) {
   1890   SetVector<ScalarEvolution::ValueOffsetPair> *Set = SE.getSCEVValues(S);
   1891   // If the expansion is not in CanonicalMode, and the SCEV contains any
   1892   // sub scAddRecExpr type SCEV, it is required to expand the SCEV literally.
   1893   if (CanonicalMode || !SE.containsAddRecurrence(S)) {
   1894     // If S is scConstant, it may be worse to reuse an existing Value.
   1895     if (S->getSCEVType() != scConstant && Set) {
   1896       // Choose a Value from the set which dominates the insertPt.
   1897       // insertPt should be inside the Value's parent loop so as not to break
   1898       // the LCSSA form.
   1899       for (auto const &VOPair : *Set) {
   1900         Value *V = VOPair.first;
   1901         ConstantInt *Offset = VOPair.second;
   1902         Instruction *EntInst = nullptr;
   1903         if (V && isa<Instruction>(V) && (EntInst = cast<Instruction>(V)) &&
   1904             S->getType() == V->getType() &&
   1905             EntInst->getFunction() == InsertPt->getFunction() &&
   1906             SE.DT.dominates(EntInst, InsertPt) &&
   1907             (SE.LI.getLoopFor(EntInst->getParent()) == nullptr ||
   1908              SE.LI.getLoopFor(EntInst->getParent())->contains(InsertPt)))
   1909           return {V, Offset};
   1910       }
   1911     }
   1912   }
   1913   return {nullptr, nullptr};
   1914 }
   1915 
   1916 // The expansion of SCEV will either reuse a previous Value in ExprValueMap,
   1917 // or expand the SCEV literally. Specifically, if the expansion is in LSRMode,
   1918 // and the SCEV contains any sub scAddRecExpr type SCEV, it will be expanded
   1919 // literally, to prevent LSR's transformed SCEV from being reverted. Otherwise,
   1920 // the expansion will try to reuse Value from ExprValueMap, and only when it
   1921 // fails, expand the SCEV literally.
   1922 Value *SCEVExpander::expand(const SCEV *S) {
   1923   // Compute an insertion point for this SCEV object. Hoist the instructions
   1924   // as far out in the loop nest as possible.
   1925   Instruction *InsertPt = &*Builder.GetInsertPoint();
   1926 
   1927   // We can move insertion point only if there is no div or rem operations
   1928   // otherwise we are risky to move it over the check for zero denominator.
   1929   auto SafeToHoist = [](const SCEV *S) {
   1930     return !SCEVExprContains(S, [](const SCEV *S) {
   1931               if (const auto *D = dyn_cast<SCEVUDivExpr>(S)) {
   1932                 if (const auto *SC = dyn_cast<SCEVConstant>(D->getRHS()))
   1933                   // Division by non-zero constants can be hoisted.
   1934                   return SC->getValue()->isZero();
   1935                 // All other divisions should not be moved as they may be
   1936                 // divisions by zero and should be kept within the
   1937                 // conditions of the surrounding loops that guard their
   1938                 // execution (see PR35406).
   1939                 return true;
   1940               }
   1941               return false;
   1942             });
   1943   };
   1944   if (SafeToHoist(S)) {
   1945     for (Loop *L = SE.LI.getLoopFor(Builder.GetInsertBlock());;
   1946          L = L->getParentLoop()) {
   1947       if (SE.isLoopInvariant(S, L)) {
   1948         if (!L) break;
   1949         if (BasicBlock *Preheader = L->getLoopPreheader())
   1950           InsertPt = Preheader->getTerminator();
   1951         else
   1952           // LSR sets the insertion point for AddRec start/step values to the
   1953           // block start to simplify value reuse, even though it's an invalid
   1954           // position. SCEVExpander must correct for this in all cases.
   1955           InsertPt = &*L->getHeader()->getFirstInsertionPt();
   1956       } else {
   1957         // If the SCEV is computable at this level, insert it into the header
   1958         // after the PHIs (and after any other instructions that we've inserted
   1959         // there) so that it is guaranteed to dominate any user inside the loop.
   1960         if (L && SE.hasComputableLoopEvolution(S, L) && !PostIncLoops.count(L))
   1961           InsertPt = &*L->getHeader()->getFirstInsertionPt();
   1962 
   1963         while (InsertPt->getIterator() != Builder.GetInsertPoint() &&
   1964                (isInsertedInstruction(InsertPt) ||
   1965                 isa<DbgInfoIntrinsic>(InsertPt))) {
   1966           InsertPt = &*std::next(InsertPt->getIterator());
   1967         }
   1968         break;
   1969       }
   1970     }
   1971   }
   1972 
   1973   // Check to see if we already expanded this here.
   1974   auto I = InsertedExpressions.find(std::make_pair(S, InsertPt));
   1975   if (I != InsertedExpressions.end())
   1976     return I->second;
   1977 
   1978   SCEVInsertPointGuard Guard(Builder, this);
   1979   Builder.SetInsertPoint(InsertPt);
   1980 
   1981   // Expand the expression into instructions.
   1982   ScalarEvolution::ValueOffsetPair VO = FindValueInExprValueMap(S, InsertPt);
   1983   Value *V = VO.first;
   1984 
   1985   if (!V)
   1986     V = visit(S);
   1987   else if (VO.second) {
   1988     if (PointerType *Vty = dyn_cast<PointerType>(V->getType())) {
   1989       Type *Ety = Vty->getPointerElementType();
   1990       int64_t Offset = VO.second->getSExtValue();
   1991       int64_t ESize = SE.getTypeSizeInBits(Ety);
   1992       if ((Offset * 8) % ESize == 0) {
   1993         ConstantInt *Idx =
   1994             ConstantInt::getSigned(VO.second->getType(), -(Offset * 8) / ESize);
   1995         V = Builder.CreateGEP(Ety, V, Idx, "scevgep");
   1996       } else {
   1997         ConstantInt *Idx =
   1998             ConstantInt::getSigned(VO.second->getType(), -Offset);
   1999         unsigned AS = Vty->getAddressSpace();
   2000         V = Builder.CreateBitCast(V, Type::getInt8PtrTy(SE.getContext(), AS));
   2001         V = Builder.CreateGEP(Type::getInt8Ty(SE.getContext()), V, Idx,
   2002                               "uglygep");
   2003         V = Builder.CreateBitCast(V, Vty);
   2004       }
   2005     } else {
   2006       V = Builder.CreateSub(V, VO.second);
   2007     }
   2008   }
   2009   // Remember the expanded value for this SCEV at this location.
   2010   //
   2011   // This is independent of PostIncLoops. The mapped value simply materializes
   2012   // the expression at this insertion point. If the mapped value happened to be
   2013   // a postinc expansion, it could be reused by a non-postinc user, but only if
   2014   // its insertion point was already at the head of the loop.
   2015   InsertedExpressions[std::make_pair(S, InsertPt)] = V;
   2016   return V;
   2017 }
   2018 
   2019 void SCEVExpander::rememberInstruction(Value *I) {
   2020   auto DoInsert = [this](Value *V) {
   2021     if (!PostIncLoops.empty())
   2022       InsertedPostIncValues.insert(V);
   2023     else
   2024       InsertedValues.insert(V);
   2025   };
   2026   DoInsert(I);
   2027 
   2028   if (!PreserveLCSSA)
   2029     return;
   2030 
   2031   if (auto *Inst = dyn_cast<Instruction>(I)) {
   2032     // A new instruction has been added, which might introduce new uses outside
   2033     // a defining loop. Fix LCSSA from for each operand of the new instruction,
   2034     // if required.
   2035     for (unsigned OpIdx = 0, OpEnd = Inst->getNumOperands(); OpIdx != OpEnd;
   2036          OpIdx++)
   2037       fixupLCSSAFormFor(Inst, OpIdx);
   2038   }
   2039 }
   2040 
   2041 /// replaceCongruentIVs - Check for congruent phis in this loop header and
   2042 /// replace them with their most canonical representative. Return the number of
   2043 /// phis eliminated.
   2044 ///
   2045 /// This does not depend on any SCEVExpander state but should be used in
   2046 /// the same context that SCEVExpander is used.
   2047 unsigned
   2048 SCEVExpander::replaceCongruentIVs(Loop *L, const DominatorTree *DT,
   2049                                   SmallVectorImpl<WeakTrackingVH> &DeadInsts,
   2050                                   const TargetTransformInfo *TTI) {
   2051   // Find integer phis in order of increasing width.
   2052   SmallVector<PHINode*, 8> Phis;
   2053   for (PHINode &PN : L->getHeader()->phis())
   2054     Phis.push_back(&PN);
   2055 
   2056   if (TTI)
   2057     llvm::sort(Phis, [](Value *LHS, Value *RHS) {
   2058       // Put pointers at the back and make sure pointer < pointer = false.
   2059       if (!LHS->getType()->isIntegerTy() || !RHS->getType()->isIntegerTy())
   2060         return RHS->getType()->isIntegerTy() && !LHS->getType()->isIntegerTy();
   2061       return RHS->getType()->getPrimitiveSizeInBits().getFixedSize() <
   2062              LHS->getType()->getPrimitiveSizeInBits().getFixedSize();
   2063     });
   2064 
   2065   unsigned NumElim = 0;
   2066   DenseMap<const SCEV *, PHINode *> ExprToIVMap;
   2067   // Process phis from wide to narrow. Map wide phis to their truncation
   2068   // so narrow phis can reuse them.
   2069   for (PHINode *Phi : Phis) {
   2070     auto SimplifyPHINode = [&](PHINode *PN) -> Value * {
   2071       if (Value *V = SimplifyInstruction(PN, {DL, &SE.TLI, &SE.DT, &SE.AC}))
   2072         return V;
   2073       if (!SE.isSCEVable(PN->getType()))
   2074         return nullptr;
   2075       auto *Const = dyn_cast<SCEVConstant>(SE.getSCEV(PN));
   2076       if (!Const)
   2077         return nullptr;
   2078       return Const->getValue();
   2079     };
   2080 
   2081     // Fold constant phis. They may be congruent to other constant phis and
   2082     // would confuse the logic below that expects proper IVs.
   2083     if (Value *V = SimplifyPHINode(Phi)) {
   2084       if (V->getType() != Phi->getType())
   2085         continue;
   2086       Phi->replaceAllUsesWith(V);
   2087       DeadInsts.emplace_back(Phi);
   2088       ++NumElim;
   2089       DEBUG_WITH_TYPE(DebugType, dbgs()
   2090                       << "INDVARS: Eliminated constant iv: " << *Phi << '\n');
   2091       continue;
   2092     }
   2093 
   2094     if (!SE.isSCEVable(Phi->getType()))
   2095       continue;
   2096 
   2097     PHINode *&OrigPhiRef = ExprToIVMap[SE.getSCEV(Phi)];
   2098     if (!OrigPhiRef) {
   2099       OrigPhiRef = Phi;
   2100       if (Phi->getType()->isIntegerTy() && TTI &&
   2101           TTI->isTruncateFree(Phi->getType(), Phis.back()->getType())) {
   2102         // This phi can be freely truncated to the narrowest phi type. Map the
   2103         // truncated expression to it so it will be reused for narrow types.
   2104         const SCEV *TruncExpr =
   2105           SE.getTruncateExpr(SE.getSCEV(Phi), Phis.back()->getType());
   2106         ExprToIVMap[TruncExpr] = Phi;
   2107       }
   2108       continue;
   2109     }
   2110 
   2111     // Replacing a pointer phi with an integer phi or vice-versa doesn't make
   2112     // sense.
   2113     if (OrigPhiRef->getType()->isPointerTy() != Phi->getType()->isPointerTy())
   2114       continue;
   2115 
   2116     if (BasicBlock *LatchBlock = L->getLoopLatch()) {
   2117       Instruction *OrigInc = dyn_cast<Instruction>(
   2118           OrigPhiRef->getIncomingValueForBlock(LatchBlock));
   2119       Instruction *IsomorphicInc =
   2120           dyn_cast<Instruction>(Phi->getIncomingValueForBlock(LatchBlock));
   2121 
   2122       if (OrigInc && IsomorphicInc) {
   2123         // If this phi has the same width but is more canonical, replace the
   2124         // original with it. As part of the "more canonical" determination,
   2125         // respect a prior decision to use an IV chain.
   2126         if (OrigPhiRef->getType() == Phi->getType() &&
   2127             !(ChainedPhis.count(Phi) ||
   2128               isExpandedAddRecExprPHI(OrigPhiRef, OrigInc, L)) &&
   2129             (ChainedPhis.count(Phi) ||
   2130              isExpandedAddRecExprPHI(Phi, IsomorphicInc, L))) {
   2131           std::swap(OrigPhiRef, Phi);
   2132           std::swap(OrigInc, IsomorphicInc);
   2133         }
   2134         // Replacing the congruent phi is sufficient because acyclic
   2135         // redundancy elimination, CSE/GVN, should handle the
   2136         // rest. However, once SCEV proves that a phi is congruent,
   2137         // it's often the head of an IV user cycle that is isomorphic
   2138         // with the original phi. It's worth eagerly cleaning up the
   2139         // common case of a single IV increment so that DeleteDeadPHIs
   2140         // can remove cycles that had postinc uses.
   2141         const SCEV *TruncExpr =
   2142             SE.getTruncateOrNoop(SE.getSCEV(OrigInc), IsomorphicInc->getType());
   2143         if (OrigInc != IsomorphicInc &&
   2144             TruncExpr == SE.getSCEV(IsomorphicInc) &&
   2145             SE.LI.replacementPreservesLCSSAForm(IsomorphicInc, OrigInc) &&
   2146             hoistIVInc(OrigInc, IsomorphicInc)) {
   2147           DEBUG_WITH_TYPE(DebugType,
   2148                           dbgs() << "INDVARS: Eliminated congruent iv.inc: "
   2149                                  << *IsomorphicInc << '\n');
   2150           Value *NewInc = OrigInc;
   2151           if (OrigInc->getType() != IsomorphicInc->getType()) {
   2152             Instruction *IP = nullptr;
   2153             if (PHINode *PN = dyn_cast<PHINode>(OrigInc))
   2154               IP = &*PN->getParent()->getFirstInsertionPt();
   2155             else
   2156               IP = OrigInc->getNextNode();
   2157 
   2158             IRBuilder<> Builder(IP);
   2159             Builder.SetCurrentDebugLocation(IsomorphicInc->getDebugLoc());
   2160             NewInc = Builder.CreateTruncOrBitCast(
   2161                 OrigInc, IsomorphicInc->getType(), IVName);
   2162           }
   2163           IsomorphicInc->replaceAllUsesWith(NewInc);
   2164           DeadInsts.emplace_back(IsomorphicInc);
   2165         }
   2166       }
   2167     }
   2168     DEBUG_WITH_TYPE(DebugType, dbgs() << "INDVARS: Eliminated congruent iv: "
   2169                                       << *Phi << '\n');
   2170     DEBUG_WITH_TYPE(DebugType, dbgs() << "INDVARS: Original iv: "
   2171                                       << *OrigPhiRef << '\n');
   2172     ++NumElim;
   2173     Value *NewIV = OrigPhiRef;
   2174     if (OrigPhiRef->getType() != Phi->getType()) {
   2175       IRBuilder<> Builder(&*L->getHeader()->getFirstInsertionPt());
   2176       Builder.SetCurrentDebugLocation(Phi->getDebugLoc());
   2177       NewIV = Builder.CreateTruncOrBitCast(OrigPhiRef, Phi->getType(), IVName);
   2178     }
   2179     Phi->replaceAllUsesWith(NewIV);
   2180     DeadInsts.emplace_back(Phi);
   2181   }
   2182   return NumElim;
   2183 }
   2184 
   2185 Optional<ScalarEvolution::ValueOffsetPair>
   2186 SCEVExpander::getRelatedExistingExpansion(const SCEV *S, const Instruction *At,
   2187                                           Loop *L) {
   2188   using namespace llvm::PatternMatch;
   2189 
   2190   SmallVector<BasicBlock *, 4> ExitingBlocks;
   2191   L->getExitingBlocks(ExitingBlocks);
   2192 
   2193   // Look for suitable value in simple conditions at the loop exits.
   2194   for (BasicBlock *BB : ExitingBlocks) {
   2195     ICmpInst::Predicate Pred;
   2196     Instruction *LHS, *RHS;
   2197 
   2198     if (!match(BB->getTerminator(),
   2199                m_Br(m_ICmp(Pred, m_Instruction(LHS), m_Instruction(RHS)),
   2200                     m_BasicBlock(), m_BasicBlock())))
   2201       continue;
   2202 
   2203     if (SE.getSCEV(LHS) == S && SE.DT.dominates(LHS, At))
   2204       return ScalarEvolution::ValueOffsetPair(LHS, nullptr);
   2205 
   2206     if (SE.getSCEV(RHS) == S && SE.DT.dominates(RHS, At))
   2207       return ScalarEvolution::ValueOffsetPair(RHS, nullptr);
   2208   }
   2209 
   2210   // Use expand's logic which is used for reusing a previous Value in
   2211   // ExprValueMap.
   2212   ScalarEvolution::ValueOffsetPair VO = FindValueInExprValueMap(S, At);
   2213   if (VO.first)
   2214     return VO;
   2215 
   2216   // There is potential to make this significantly smarter, but this simple
   2217   // heuristic already gets some interesting cases.
   2218 
   2219   // Can not find suitable value.
   2220   return None;
   2221 }
   2222 
   2223 template<typename T> static InstructionCost costAndCollectOperands(
   2224   const SCEVOperand &WorkItem, const TargetTransformInfo &TTI,
   2225   TargetTransformInfo::TargetCostKind CostKind,
   2226   SmallVectorImpl<SCEVOperand> &Worklist) {
   2227 
   2228   const T *S = cast<T>(WorkItem.S);
   2229   InstructionCost Cost = 0;
   2230   // Object to help map SCEV operands to expanded IR instructions.
   2231   struct OperationIndices {
   2232     OperationIndices(unsigned Opc, size_t min, size_t max) :
   2233       Opcode(Opc), MinIdx(min), MaxIdx(max) { }
   2234     unsigned Opcode;
   2235     size_t MinIdx;
   2236     size_t MaxIdx;
   2237   };
   2238 
   2239   // Collect the operations of all the instructions that will be needed to
   2240   // expand the SCEVExpr. This is so that when we come to cost the operands,
   2241   // we know what the generated user(s) will be.
   2242   SmallVector<OperationIndices, 2> Operations;
   2243 
   2244   auto CastCost = [&](unsigned Opcode) -> InstructionCost {
   2245     Operations.emplace_back(Opcode, 0, 0);
   2246     return TTI.getCastInstrCost(Opcode, S->getType(),
   2247                                 S->getOperand(0)->getType(),
   2248                                 TTI::CastContextHint::None, CostKind);
   2249   };
   2250 
   2251   auto ArithCost = [&](unsigned Opcode, unsigned NumRequired,
   2252                        unsigned MinIdx = 0,
   2253                        unsigned MaxIdx = 1) -> InstructionCost {
   2254     Operations.emplace_back(Opcode, MinIdx, MaxIdx);
   2255     return NumRequired *
   2256       TTI.getArithmeticInstrCost(Opcode, S->getType(), CostKind);
   2257   };
   2258 
   2259   auto CmpSelCost = [&](unsigned Opcode, unsigned NumRequired, unsigned MinIdx,
   2260                         unsigned MaxIdx) -> InstructionCost {
   2261     Operations.emplace_back(Opcode, MinIdx, MaxIdx);
   2262     Type *OpType = S->getOperand(0)->getType();
   2263     return NumRequired * TTI.getCmpSelInstrCost(
   2264                              Opcode, OpType, CmpInst::makeCmpResultType(OpType),
   2265                              CmpInst::BAD_ICMP_PREDICATE, CostKind);
   2266   };
   2267 
   2268   switch (S->getSCEVType()) {
   2269   case scCouldNotCompute:
   2270     llvm_unreachable("Attempt to use a SCEVCouldNotCompute object!");
   2271   case scUnknown:
   2272   case scConstant:
   2273     return 0;
   2274   case scPtrToInt:
   2275     Cost = CastCost(Instruction::PtrToInt);
   2276     break;
   2277   case scTruncate:
   2278     Cost = CastCost(Instruction::Trunc);
   2279     break;
   2280   case scZeroExtend:
   2281     Cost = CastCost(Instruction::ZExt);
   2282     break;
   2283   case scSignExtend:
   2284     Cost = CastCost(Instruction::SExt);
   2285     break;
   2286   case scUDivExpr: {
   2287     unsigned Opcode = Instruction::UDiv;
   2288     if (auto *SC = dyn_cast<SCEVConstant>(S->getOperand(1)))
   2289       if (SC->getAPInt().isPowerOf2())
   2290         Opcode = Instruction::LShr;
   2291     Cost = ArithCost(Opcode, 1);
   2292     break;
   2293   }
   2294   case scAddExpr:
   2295     Cost = ArithCost(Instruction::Add, S->getNumOperands() - 1);
   2296     break;
   2297   case scMulExpr:
   2298     // TODO: this is a very pessimistic cost modelling for Mul,
   2299     // because of Bin Pow algorithm actually used by the expander,
   2300     // see SCEVExpander::visitMulExpr(), ExpandOpBinPowN().
   2301     Cost = ArithCost(Instruction::Mul, S->getNumOperands() - 1);
   2302     break;
   2303   case scSMaxExpr:
   2304   case scUMaxExpr:
   2305   case scSMinExpr:
   2306   case scUMinExpr: {
   2307     // FIXME: should this ask the cost for Intrinsic's?
   2308     Cost += CmpSelCost(Instruction::ICmp, S->getNumOperands() - 1, 0, 1);
   2309     Cost += CmpSelCost(Instruction::Select, S->getNumOperands() - 1, 0, 2);
   2310     break;
   2311   }
   2312   case scAddRecExpr: {
   2313     // In this polynominal, we may have some zero operands, and we shouldn't
   2314     // really charge for those. So how many non-zero coeffients are there?
   2315     int NumTerms = llvm::count_if(S->operands(), [](const SCEV *Op) {
   2316                                     return !Op->isZero();
   2317                                   });
   2318 
   2319     assert(NumTerms >= 1 && "Polynominal should have at least one term.");
   2320     assert(!(*std::prev(S->operands().end()))->isZero() &&
   2321            "Last operand should not be zero");
   2322 
   2323     // Ignoring constant term (operand 0), how many of the coeffients are u> 1?
   2324     int NumNonZeroDegreeNonOneTerms =
   2325       llvm::count_if(S->operands(), [](const SCEV *Op) {
   2326                       auto *SConst = dyn_cast<SCEVConstant>(Op);
   2327                       return !SConst || SConst->getAPInt().ugt(1);
   2328                     });
   2329 
   2330     // Much like with normal add expr, the polynominal will require
   2331     // one less addition than the number of it's terms.
   2332     InstructionCost AddCost = ArithCost(Instruction::Add, NumTerms - 1,
   2333                                         /*MinIdx*/ 1, /*MaxIdx*/ 1);
   2334     // Here, *each* one of those will require a multiplication.
   2335     InstructionCost MulCost =
   2336         ArithCost(Instruction::Mul, NumNonZeroDegreeNonOneTerms);
   2337     Cost = AddCost + MulCost;
   2338 
   2339     // What is the degree of this polynominal?
   2340     int PolyDegree = S->getNumOperands() - 1;
   2341     assert(PolyDegree >= 1 && "Should be at least affine.");
   2342 
   2343     // The final term will be:
   2344     //   Op_{PolyDegree} * x ^ {PolyDegree}
   2345     // Where  x ^ {PolyDegree}  will again require PolyDegree-1 mul operations.
   2346     // Note that  x ^ {PolyDegree} = x * x ^ {PolyDegree-1}  so charging for
   2347     // x ^ {PolyDegree}  will give us  x ^ {2} .. x ^ {PolyDegree-1}  for free.
   2348     // FIXME: this is conservatively correct, but might be overly pessimistic.
   2349     Cost += MulCost * (PolyDegree - 1);
   2350     break;
   2351   }
   2352   }
   2353 
   2354   for (auto &CostOp : Operations) {
   2355     for (auto SCEVOp : enumerate(S->operands())) {
   2356       // Clamp the index to account for multiple IR operations being chained.
   2357       size_t MinIdx = std::max(SCEVOp.index(), CostOp.MinIdx);
   2358       size_t OpIdx = std::min(MinIdx, CostOp.MaxIdx);
   2359       Worklist.emplace_back(CostOp.Opcode, OpIdx, SCEVOp.value());
   2360     }
   2361   }
   2362   return Cost;
   2363 }
   2364 
   2365 bool SCEVExpander::isHighCostExpansionHelper(
   2366     const SCEVOperand &WorkItem, Loop *L, const Instruction &At,
   2367     InstructionCost &Cost, unsigned Budget, const TargetTransformInfo &TTI,
   2368     SmallPtrSetImpl<const SCEV *> &Processed,
   2369     SmallVectorImpl<SCEVOperand> &Worklist) {
   2370   if (Cost > Budget)
   2371     return true; // Already run out of budget, give up.
   2372 
   2373   const SCEV *S = WorkItem.S;
   2374   // Was the cost of expansion of this expression already accounted for?
   2375   if (!isa<SCEVConstant>(S) && !Processed.insert(S).second)
   2376     return false; // We have already accounted for this expression.
   2377 
   2378   // If we can find an existing value for this scev available at the point "At"
   2379   // then consider the expression cheap.
   2380   if (getRelatedExistingExpansion(S, &At, L))
   2381     return false; // Consider the expression to be free.
   2382 
   2383   TargetTransformInfo::TargetCostKind CostKind =
   2384       L->getHeader()->getParent()->hasMinSize()
   2385           ? TargetTransformInfo::TCK_CodeSize
   2386           : TargetTransformInfo::TCK_RecipThroughput;
   2387 
   2388   switch (S->getSCEVType()) {
   2389   case scCouldNotCompute:
   2390     llvm_unreachable("Attempt to use a SCEVCouldNotCompute object!");
   2391   case scUnknown:
   2392     // Assume to be zero-cost.
   2393     return false;
   2394   case scConstant: {
   2395     // Only evalulate the costs of constants when optimizing for size.
   2396     if (CostKind != TargetTransformInfo::TCK_CodeSize)
   2397       return 0;
   2398     const APInt &Imm = cast<SCEVConstant>(S)->getAPInt();
   2399     Type *Ty = S->getType();
   2400     Cost += TTI.getIntImmCostInst(
   2401         WorkItem.ParentOpcode, WorkItem.OperandIdx, Imm, Ty, CostKind);
   2402     return Cost > Budget;
   2403   }
   2404   case scTruncate:
   2405   case scPtrToInt:
   2406   case scZeroExtend:
   2407   case scSignExtend: {
   2408     Cost +=
   2409         costAndCollectOperands<SCEVCastExpr>(WorkItem, TTI, CostKind, Worklist);
   2410     return false; // Will answer upon next entry into this function.
   2411   }
   2412   case scUDivExpr: {
   2413     // UDivExpr is very likely a UDiv that ScalarEvolution's HowFarToZero or
   2414     // HowManyLessThans produced to compute a precise expression, rather than a
   2415     // UDiv from the user's code. If we can't find a UDiv in the code with some
   2416     // simple searching, we need to account for it's cost.
   2417 
   2418     // At the beginning of this function we already tried to find existing
   2419     // value for plain 'S'. Now try to lookup 'S + 1' since it is common
   2420     // pattern involving division. This is just a simple search heuristic.
   2421     if (getRelatedExistingExpansion(
   2422             SE.getAddExpr(S, SE.getConstant(S->getType(), 1)), &At, L))
   2423       return false; // Consider it to be free.
   2424 
   2425     Cost +=
   2426         costAndCollectOperands<SCEVUDivExpr>(WorkItem, TTI, CostKind, Worklist);
   2427     return false; // Will answer upon next entry into this function.
   2428   }
   2429   case scAddExpr:
   2430   case scMulExpr:
   2431   case scUMaxExpr:
   2432   case scSMaxExpr:
   2433   case scUMinExpr:
   2434   case scSMinExpr: {
   2435     assert(cast<SCEVNAryExpr>(S)->getNumOperands() > 1 &&
   2436            "Nary expr should have more than 1 operand.");
   2437     // The simple nary expr will require one less op (or pair of ops)
   2438     // than the number of it's terms.
   2439     Cost +=
   2440         costAndCollectOperands<SCEVNAryExpr>(WorkItem, TTI, CostKind, Worklist);
   2441     return Cost > Budget;
   2442   }
   2443   case scAddRecExpr: {
   2444     assert(cast<SCEVAddRecExpr>(S)->getNumOperands() >= 2 &&
   2445            "Polynomial should be at least linear");
   2446     Cost += costAndCollectOperands<SCEVAddRecExpr>(
   2447         WorkItem, TTI, CostKind, Worklist);
   2448     return Cost > Budget;
   2449   }
   2450   }
   2451   llvm_unreachable("Unknown SCEV kind!");
   2452 }
   2453 
   2454 Value *SCEVExpander::expandCodeForPredicate(const SCEVPredicate *Pred,
   2455                                             Instruction *IP) {
   2456   assert(IP);
   2457   switch (Pred->getKind()) {
   2458   case SCEVPredicate::P_Union:
   2459     return expandUnionPredicate(cast<SCEVUnionPredicate>(Pred), IP);
   2460   case SCEVPredicate::P_Equal:
   2461     return expandEqualPredicate(cast<SCEVEqualPredicate>(Pred), IP);
   2462   case SCEVPredicate::P_Wrap: {
   2463     auto *AddRecPred = cast<SCEVWrapPredicate>(Pred);
   2464     return expandWrapPredicate(AddRecPred, IP);
   2465   }
   2466   }
   2467   llvm_unreachable("Unknown SCEV predicate type");
   2468 }
   2469 
   2470 Value *SCEVExpander::expandEqualPredicate(const SCEVEqualPredicate *Pred,
   2471                                           Instruction *IP) {
   2472   Value *Expr0 =
   2473       expandCodeForImpl(Pred->getLHS(), Pred->getLHS()->getType(), IP, false);
   2474   Value *Expr1 =
   2475       expandCodeForImpl(Pred->getRHS(), Pred->getRHS()->getType(), IP, false);
   2476 
   2477   Builder.SetInsertPoint(IP);
   2478   auto *I = Builder.CreateICmpNE(Expr0, Expr1, "ident.check");
   2479   return I;
   2480 }
   2481 
   2482 Value *SCEVExpander::generateOverflowCheck(const SCEVAddRecExpr *AR,
   2483                                            Instruction *Loc, bool Signed) {
   2484   assert(AR->isAffine() && "Cannot generate RT check for "
   2485                            "non-affine expression");
   2486 
   2487   SCEVUnionPredicate Pred;
   2488   const SCEV *ExitCount =
   2489       SE.getPredicatedBackedgeTakenCount(AR->getLoop(), Pred);
   2490 
   2491   assert(!isa<SCEVCouldNotCompute>(ExitCount) && "Invalid loop count");
   2492 
   2493   const SCEV *Step = AR->getStepRecurrence(SE);
   2494   const SCEV *Start = AR->getStart();
   2495 
   2496   Type *ARTy = AR->getType();
   2497   unsigned SrcBits = SE.getTypeSizeInBits(ExitCount->getType());
   2498   unsigned DstBits = SE.getTypeSizeInBits(ARTy);
   2499 
   2500   // The expression {Start,+,Step} has nusw/nssw if
   2501   //   Step < 0, Start - |Step| * Backedge <= Start
   2502   //   Step >= 0, Start + |Step| * Backedge > Start
   2503   // and |Step| * Backedge doesn't unsigned overflow.
   2504 
   2505   IntegerType *CountTy = IntegerType::get(Loc->getContext(), SrcBits);
   2506   Builder.SetInsertPoint(Loc);
   2507   Value *TripCountVal = expandCodeForImpl(ExitCount, CountTy, Loc, false);
   2508 
   2509   IntegerType *Ty =
   2510       IntegerType::get(Loc->getContext(), SE.getTypeSizeInBits(ARTy));
   2511   Type *ARExpandTy = DL.isNonIntegralPointerType(ARTy) ? ARTy : Ty;
   2512 
   2513   Value *StepValue = expandCodeForImpl(Step, Ty, Loc, false);
   2514   Value *NegStepValue =
   2515       expandCodeForImpl(SE.getNegativeSCEV(Step), Ty, Loc, false);
   2516   Value *StartValue = expandCodeForImpl(
   2517       isa<PointerType>(ARExpandTy) ? Start
   2518                                    : SE.getPtrToIntExpr(Start, ARExpandTy),
   2519       ARExpandTy, Loc, false);
   2520 
   2521   ConstantInt *Zero =
   2522       ConstantInt::get(Loc->getContext(), APInt::getNullValue(DstBits));
   2523 
   2524   Builder.SetInsertPoint(Loc);
   2525   // Compute |Step|
   2526   Value *StepCompare = Builder.CreateICmp(ICmpInst::ICMP_SLT, StepValue, Zero);
   2527   Value *AbsStep = Builder.CreateSelect(StepCompare, NegStepValue, StepValue);
   2528 
   2529   // Get the backedge taken count and truncate or extended to the AR type.
   2530   Value *TruncTripCount = Builder.CreateZExtOrTrunc(TripCountVal, Ty);
   2531   auto *MulF = Intrinsic::getDeclaration(Loc->getModule(),
   2532                                          Intrinsic::umul_with_overflow, Ty);
   2533 
   2534   // Compute |Step| * Backedge
   2535   CallInst *Mul = Builder.CreateCall(MulF, {AbsStep, TruncTripCount}, "mul");
   2536   Value *MulV = Builder.CreateExtractValue(Mul, 0, "mul.result");
   2537   Value *OfMul = Builder.CreateExtractValue(Mul, 1, "mul.overflow");
   2538 
   2539   // Compute:
   2540   //   Start + |Step| * Backedge < Start
   2541   //   Start - |Step| * Backedge > Start
   2542   Value *Add = nullptr, *Sub = nullptr;
   2543   if (PointerType *ARPtrTy = dyn_cast<PointerType>(ARExpandTy)) {
   2544     const SCEV *MulS = SE.getSCEV(MulV);
   2545     const SCEV *NegMulS = SE.getNegativeSCEV(MulS);
   2546     Add = Builder.CreateBitCast(expandAddToGEP(MulS, ARPtrTy, Ty, StartValue),
   2547                                 ARPtrTy);
   2548     Sub = Builder.CreateBitCast(
   2549         expandAddToGEP(NegMulS, ARPtrTy, Ty, StartValue), ARPtrTy);
   2550   } else {
   2551     Add = Builder.CreateAdd(StartValue, MulV);
   2552     Sub = Builder.CreateSub(StartValue, MulV);
   2553   }
   2554 
   2555   Value *EndCompareGT = Builder.CreateICmp(
   2556       Signed ? ICmpInst::ICMP_SGT : ICmpInst::ICMP_UGT, Sub, StartValue);
   2557 
   2558   Value *EndCompareLT = Builder.CreateICmp(
   2559       Signed ? ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT, Add, StartValue);
   2560 
   2561   // Select the answer based on the sign of Step.
   2562   Value *EndCheck =
   2563       Builder.CreateSelect(StepCompare, EndCompareGT, EndCompareLT);
   2564 
   2565   // If the backedge taken count type is larger than the AR type,
   2566   // check that we don't drop any bits by truncating it. If we are
   2567   // dropping bits, then we have overflow (unless the step is zero).
   2568   if (SE.getTypeSizeInBits(CountTy) > SE.getTypeSizeInBits(Ty)) {
   2569     auto MaxVal = APInt::getMaxValue(DstBits).zext(SrcBits);
   2570     auto *BackedgeCheck =
   2571         Builder.CreateICmp(ICmpInst::ICMP_UGT, TripCountVal,
   2572                            ConstantInt::get(Loc->getContext(), MaxVal));
   2573     BackedgeCheck = Builder.CreateAnd(
   2574         BackedgeCheck, Builder.CreateICmp(ICmpInst::ICMP_NE, StepValue, Zero));
   2575 
   2576     EndCheck = Builder.CreateOr(EndCheck, BackedgeCheck);
   2577   }
   2578 
   2579   return Builder.CreateOr(EndCheck, OfMul);
   2580 }
   2581 
   2582 Value *SCEVExpander::expandWrapPredicate(const SCEVWrapPredicate *Pred,
   2583                                          Instruction *IP) {
   2584   const auto *A = cast<SCEVAddRecExpr>(Pred->getExpr());
   2585   Value *NSSWCheck = nullptr, *NUSWCheck = nullptr;
   2586 
   2587   // Add a check for NUSW
   2588   if (Pred->getFlags() & SCEVWrapPredicate::IncrementNUSW)
   2589     NUSWCheck = generateOverflowCheck(A, IP, false);
   2590 
   2591   // Add a check for NSSW
   2592   if (Pred->getFlags() & SCEVWrapPredicate::IncrementNSSW)
   2593     NSSWCheck = generateOverflowCheck(A, IP, true);
   2594 
   2595   if (NUSWCheck && NSSWCheck)
   2596     return Builder.CreateOr(NUSWCheck, NSSWCheck);
   2597 
   2598   if (NUSWCheck)
   2599     return NUSWCheck;
   2600 
   2601   if (NSSWCheck)
   2602     return NSSWCheck;
   2603 
   2604   return ConstantInt::getFalse(IP->getContext());
   2605 }
   2606 
   2607 Value *SCEVExpander::expandUnionPredicate(const SCEVUnionPredicate *Union,
   2608                                           Instruction *IP) {
   2609   auto *BoolType = IntegerType::get(IP->getContext(), 1);
   2610   Value *Check = ConstantInt::getNullValue(BoolType);
   2611 
   2612   // Loop over all checks in this set.
   2613   for (auto Pred : Union->getPredicates()) {
   2614     auto *NextCheck = expandCodeForPredicate(Pred, IP);
   2615     Builder.SetInsertPoint(IP);
   2616     Check = Builder.CreateOr(Check, NextCheck);
   2617   }
   2618 
   2619   return Check;
   2620 }
   2621 
   2622 Value *SCEVExpander::fixupLCSSAFormFor(Instruction *User, unsigned OpIdx) {
   2623   assert(PreserveLCSSA);
   2624   SmallVector<Instruction *, 1> ToUpdate;
   2625 
   2626   auto *OpV = User->getOperand(OpIdx);
   2627   auto *OpI = dyn_cast<Instruction>(OpV);
   2628   if (!OpI)
   2629     return OpV;
   2630 
   2631   Loop *DefLoop = SE.LI.getLoopFor(OpI->getParent());
   2632   Loop *UseLoop = SE.LI.getLoopFor(User->getParent());
   2633   if (!DefLoop || UseLoop == DefLoop || DefLoop->contains(UseLoop))
   2634     return OpV;
   2635 
   2636   ToUpdate.push_back(OpI);
   2637   SmallVector<PHINode *, 16> PHIsToRemove;
   2638   formLCSSAForInstructions(ToUpdate, SE.DT, SE.LI, &SE, Builder, &PHIsToRemove);
   2639   for (PHINode *PN : PHIsToRemove) {
   2640     if (!PN->use_empty())
   2641       continue;
   2642     InsertedValues.erase(PN);
   2643     InsertedPostIncValues.erase(PN);
   2644     PN->eraseFromParent();
   2645   }
   2646 
   2647   return User->getOperand(OpIdx);
   2648 }
   2649 
   2650 namespace {
   2651 // Search for a SCEV subexpression that is not safe to expand.  Any expression
   2652 // that may expand to a !isSafeToSpeculativelyExecute value is unsafe, namely
   2653 // UDiv expressions. We don't know if the UDiv is derived from an IR divide
   2654 // instruction, but the important thing is that we prove the denominator is
   2655 // nonzero before expansion.
   2656 //
   2657 // IVUsers already checks that IV-derived expressions are safe. So this check is
   2658 // only needed when the expression includes some subexpression that is not IV
   2659 // derived.
   2660 //
   2661 // Currently, we only allow division by a nonzero constant here. If this is
   2662 // inadequate, we could easily allow division by SCEVUnknown by using
   2663 // ValueTracking to check isKnownNonZero().
   2664 //
   2665 // We cannot generally expand recurrences unless the step dominates the loop
   2666 // header. The expander handles the special case of affine recurrences by
   2667 // scaling the recurrence outside the loop, but this technique isn't generally
   2668 // applicable. Expanding a nested recurrence outside a loop requires computing
   2669 // binomial coefficients. This could be done, but the recurrence has to be in a
   2670 // perfectly reduced form, which can't be guaranteed.
   2671 struct SCEVFindUnsafe {
   2672   ScalarEvolution &SE;
   2673   bool IsUnsafe;
   2674 
   2675   SCEVFindUnsafe(ScalarEvolution &se): SE(se), IsUnsafe(false) {}
   2676 
   2677   bool follow(const SCEV *S) {
   2678     if (const SCEVUDivExpr *D = dyn_cast<SCEVUDivExpr>(S)) {
   2679       const SCEVConstant *SC = dyn_cast<SCEVConstant>(D->getRHS());
   2680       if (!SC || SC->getValue()->isZero()) {
   2681         IsUnsafe = true;
   2682         return false;
   2683       }
   2684     }
   2685     if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S)) {
   2686       const SCEV *Step = AR->getStepRecurrence(SE);
   2687       if (!AR->isAffine() && !SE.dominates(Step, AR->getLoop()->getHeader())) {
   2688         IsUnsafe = true;
   2689         return false;
   2690       }
   2691     }
   2692     return true;
   2693   }
   2694   bool isDone() const { return IsUnsafe; }
   2695 };
   2696 }
   2697 
   2698 namespace llvm {
   2699 bool isSafeToExpand(const SCEV *S, ScalarEvolution &SE) {
   2700   SCEVFindUnsafe Search(SE);
   2701   visitAll(S, Search);
   2702   return !Search.IsUnsafe;
   2703 }
   2704 
   2705 bool isSafeToExpandAt(const SCEV *S, const Instruction *InsertionPoint,
   2706                       ScalarEvolution &SE) {
   2707   if (!isSafeToExpand(S, SE))
   2708     return false;
   2709   // We have to prove that the expanded site of S dominates InsertionPoint.
   2710   // This is easy when not in the same block, but hard when S is an instruction
   2711   // to be expanded somewhere inside the same block as our insertion point.
   2712   // What we really need here is something analogous to an OrderedBasicBlock,
   2713   // but for the moment, we paper over the problem by handling two common and
   2714   // cheap to check cases.
   2715   if (SE.properlyDominates(S, InsertionPoint->getParent()))
   2716     return true;
   2717   if (SE.dominates(S, InsertionPoint->getParent())) {
   2718     if (InsertionPoint->getParent()->getTerminator() == InsertionPoint)
   2719       return true;
   2720     if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(S))
   2721       if (llvm::is_contained(InsertionPoint->operand_values(), U->getValue()))
   2722         return true;
   2723   }
   2724   return false;
   2725 }
   2726 
   2727 void SCEVExpanderCleaner::cleanup() {
   2728   // Result is used, nothing to remove.
   2729   if (ResultUsed)
   2730     return;
   2731 
   2732   auto InsertedInstructions = Expander.getAllInsertedInstructions();
   2733 #ifndef NDEBUG
   2734   SmallPtrSet<Instruction *, 8> InsertedSet(InsertedInstructions.begin(),
   2735                                             InsertedInstructions.end());
   2736   (void)InsertedSet;
   2737 #endif
   2738   // Remove sets with value handles.
   2739   Expander.clear();
   2740 
   2741   // Sort so that earlier instructions do not dominate later instructions.
   2742   stable_sort(InsertedInstructions, [this](Instruction *A, Instruction *B) {
   2743     return DT.dominates(B, A);
   2744   });
   2745   // Remove all inserted instructions.
   2746   for (Instruction *I : InsertedInstructions) {
   2747 
   2748 #ifndef NDEBUG
   2749     assert(all_of(I->users(),
   2750                   [&InsertedSet](Value *U) {
   2751                     return InsertedSet.contains(cast<Instruction>(U));
   2752                   }) &&
   2753            "removed instruction should only be used by instructions inserted "
   2754            "during expansion");
   2755 #endif
   2756     assert(!I->getType()->isVoidTy() &&
   2757            "inserted instruction should have non-void types");
   2758     I->replaceAllUsesWith(UndefValue::get(I->getType()));
   2759     I->eraseFromParent();
   2760   }
   2761 }
   2762 }
   2763