327 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C++
		
	
	
	
			
		
		
	
	
			327 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C++
		
	
	
	
//===-- VPlanTransforms.cpp - Utility VPlan to VPlan transforms -----------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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///
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/// \file
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/// This file implements a set of utility VPlan to VPlan transformations.
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///
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//===----------------------------------------------------------------------===//
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#include "VPlanTransforms.h"
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#include "llvm/ADT/PostOrderIterator.h"
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using namespace llvm;
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void VPlanTransforms::VPInstructionsToVPRecipes(
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    Loop *OrigLoop, VPlanPtr &Plan,
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    function_ref<const InductionDescriptor *(PHINode *)>
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        GetIntOrFpInductionDescriptor,
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    SmallPtrSetImpl<Instruction *> &DeadInstructions, ScalarEvolution &SE) {
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  auto *TopRegion = cast<VPRegionBlock>(Plan->getEntry());
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  ReversePostOrderTraversal<VPBlockBase *> RPOT(TopRegion->getEntry());
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  for (VPBlockBase *Base : RPOT) {
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    // Do not widen instructions in pre-header and exit blocks.
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    if (Base->getNumPredecessors() == 0 || Base->getNumSuccessors() == 0)
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      continue;
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    VPBasicBlock *VPBB = Base->getEntryBasicBlock();
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    // Introduce each ingredient into VPlan.
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    for (VPRecipeBase &Ingredient : llvm::make_early_inc_range(*VPBB)) {
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      VPValue *VPV = Ingredient.getVPSingleValue();
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      Instruction *Inst = cast<Instruction>(VPV->getUnderlyingValue());
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      if (DeadInstructions.count(Inst)) {
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        VPValue DummyValue;
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        VPV->replaceAllUsesWith(&DummyValue);
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        Ingredient.eraseFromParent();
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        continue;
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      }
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      VPRecipeBase *NewRecipe = nullptr;
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      if (auto *VPPhi = dyn_cast<VPWidenPHIRecipe>(&Ingredient)) {
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        auto *Phi = cast<PHINode>(VPPhi->getUnderlyingValue());
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        if (const auto *II = GetIntOrFpInductionDescriptor(Phi)) {
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          VPValue *Start = Plan->getOrAddVPValue(II->getStartValue());
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          NewRecipe = new VPWidenIntOrFpInductionRecipe(Phi, Start, *II);
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        } else {
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          Plan->addVPValue(Phi, VPPhi);
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          continue;
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        }
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      } else {
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        assert(isa<VPInstruction>(&Ingredient) &&
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               "only VPInstructions expected here");
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        assert(!isa<PHINode>(Inst) && "phis should be handled above");
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        // Create VPWidenMemoryInstructionRecipe for loads and stores.
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        if (LoadInst *Load = dyn_cast<LoadInst>(Inst)) {
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          NewRecipe = new VPWidenMemoryInstructionRecipe(
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              *Load, Plan->getOrAddVPValue(getLoadStorePointerOperand(Inst)),
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              nullptr /*Mask*/, false /*Consecutive*/, false /*Reverse*/);
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        } else if (StoreInst *Store = dyn_cast<StoreInst>(Inst)) {
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          NewRecipe = new VPWidenMemoryInstructionRecipe(
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              *Store, Plan->getOrAddVPValue(getLoadStorePointerOperand(Inst)),
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              Plan->getOrAddVPValue(Store->getValueOperand()), nullptr /*Mask*/,
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              false /*Consecutive*/, false /*Reverse*/);
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        } else if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Inst)) {
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          NewRecipe = new VPWidenGEPRecipe(
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              GEP, Plan->mapToVPValues(GEP->operands()), OrigLoop);
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        } else if (CallInst *CI = dyn_cast<CallInst>(Inst)) {
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          NewRecipe =
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              new VPWidenCallRecipe(*CI, Plan->mapToVPValues(CI->args()));
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        } else if (SelectInst *SI = dyn_cast<SelectInst>(Inst)) {
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          bool InvariantCond =
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              SE.isLoopInvariant(SE.getSCEV(SI->getOperand(0)), OrigLoop);
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          NewRecipe = new VPWidenSelectRecipe(
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              *SI, Plan->mapToVPValues(SI->operands()), InvariantCond);
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        } else {
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          NewRecipe =
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              new VPWidenRecipe(*Inst, Plan->mapToVPValues(Inst->operands()));
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        }
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      }
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      NewRecipe->insertBefore(&Ingredient);
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      if (NewRecipe->getNumDefinedValues() == 1)
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        VPV->replaceAllUsesWith(NewRecipe->getVPSingleValue());
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      else
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        assert(NewRecipe->getNumDefinedValues() == 0 &&
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               "Only recpies with zero or one defined values expected");
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      Ingredient.eraseFromParent();
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      Plan->removeVPValueFor(Inst);
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      for (auto *Def : NewRecipe->definedValues()) {
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        Plan->addVPValue(Inst, Def);
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      }
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    }
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  }
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}
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bool VPlanTransforms::sinkScalarOperands(VPlan &Plan) {
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  auto Iter = depth_first(
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      VPBlockRecursiveTraversalWrapper<VPBlockBase *>(Plan.getEntry()));
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  bool Changed = false;
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  // First, collect the operands of all predicated replicate recipes as seeds
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  // for sinking.
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  SetVector<std::pair<VPBasicBlock *, VPValue *>> WorkList;
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  for (VPBasicBlock *VPBB : VPBlockUtils::blocksOnly<VPBasicBlock>(Iter)) {
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    for (auto &Recipe : *VPBB) {
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      auto *RepR = dyn_cast<VPReplicateRecipe>(&Recipe);
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      if (!RepR || !RepR->isPredicated())
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        continue;
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      for (VPValue *Op : RepR->operands())
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        WorkList.insert(std::make_pair(RepR->getParent(), Op));
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    }
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  }
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  // Try to sink each replicate recipe in the worklist.
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  while (!WorkList.empty()) {
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    VPBasicBlock *SinkTo;
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    VPValue *C;
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    std::tie(SinkTo, C) = WorkList.pop_back_val();
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    auto *SinkCandidate = dyn_cast_or_null<VPReplicateRecipe>(C->Def);
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    if (!SinkCandidate || SinkCandidate->isUniform() ||
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        SinkCandidate->getParent() == SinkTo ||
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        SinkCandidate->mayHaveSideEffects() ||
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        SinkCandidate->mayReadOrWriteMemory())
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      continue;
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    bool NeedsDuplicating = false;
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    // All recipe users of the sink candidate must be in the same block SinkTo
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    // or all users outside of SinkTo must be uniform-after-vectorization (
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    // i.e., only first lane is used) . In the latter case, we need to duplicate
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    // SinkCandidate. At the moment, we identify such UAV's by looking for the
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    // address operands of widened memory recipes.
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    auto CanSinkWithUser = [SinkTo, &NeedsDuplicating,
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                            SinkCandidate](VPUser *U) {
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      auto *UI = dyn_cast<VPRecipeBase>(U);
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      if (!UI)
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        return false;
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      if (UI->getParent() == SinkTo)
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        return true;
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      auto *WidenI = dyn_cast<VPWidenMemoryInstructionRecipe>(UI);
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      if (WidenI && WidenI->getAddr() == SinkCandidate) {
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        NeedsDuplicating = true;
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        return true;
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      }
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      return false;
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    };
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    if (!all_of(SinkCandidate->users(), CanSinkWithUser))
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      continue;
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    if (NeedsDuplicating) {
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      Instruction *I = cast<Instruction>(SinkCandidate->getUnderlyingValue());
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      auto *Clone =
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          new VPReplicateRecipe(I, SinkCandidate->operands(), true, false);
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      // TODO: add ".cloned" suffix to name of Clone's VPValue.
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      Clone->insertBefore(SinkCandidate);
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      SmallVector<VPUser *, 4> Users(SinkCandidate->users());
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      for (auto *U : Users) {
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        auto *UI = cast<VPRecipeBase>(U);
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        if (UI->getParent() == SinkTo)
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          continue;
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        for (unsigned Idx = 0; Idx != UI->getNumOperands(); Idx++) {
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          if (UI->getOperand(Idx) != SinkCandidate)
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            continue;
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          UI->setOperand(Idx, Clone);
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        }
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      }
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    }
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    SinkCandidate->moveBefore(*SinkTo, SinkTo->getFirstNonPhi());
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    for (VPValue *Op : SinkCandidate->operands())
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      WorkList.insert(std::make_pair(SinkTo, Op));
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    Changed = true;
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  }
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  return Changed;
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}
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/// If \p R is a region with a VPBranchOnMaskRecipe in the entry block, return
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/// the mask.
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VPValue *getPredicatedMask(VPRegionBlock *R) {
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  auto *EntryBB = dyn_cast<VPBasicBlock>(R->getEntry());
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  if (!EntryBB || EntryBB->size() != 1 ||
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      !isa<VPBranchOnMaskRecipe>(EntryBB->begin()))
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    return nullptr;
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  return cast<VPBranchOnMaskRecipe>(&*EntryBB->begin())->getOperand(0);
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}
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/// If \p R is a triangle region, return the 'then' block of the triangle.
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static VPBasicBlock *getPredicatedThenBlock(VPRegionBlock *R) {
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  auto *EntryBB = cast<VPBasicBlock>(R->getEntry());
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  if (EntryBB->getNumSuccessors() != 2)
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    return nullptr;
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  auto *Succ0 = dyn_cast<VPBasicBlock>(EntryBB->getSuccessors()[0]);
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  auto *Succ1 = dyn_cast<VPBasicBlock>(EntryBB->getSuccessors()[1]);
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  if (!Succ0 || !Succ1)
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    return nullptr;
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  if (Succ0->getNumSuccessors() + Succ1->getNumSuccessors() != 1)
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    return nullptr;
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  if (Succ0->getSingleSuccessor() == Succ1)
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    return Succ0;
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  if (Succ1->getSingleSuccessor() == Succ0)
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    return Succ1;
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  return nullptr;
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}
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bool VPlanTransforms::mergeReplicateRegions(VPlan &Plan) {
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  SetVector<VPRegionBlock *> DeletedRegions;
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  bool Changed = false;
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  // Collect region blocks to process up-front, to avoid iterator invalidation
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  // issues while merging regions.
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  SmallVector<VPRegionBlock *, 8> CandidateRegions(
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      VPBlockUtils::blocksOnly<VPRegionBlock>(depth_first(
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          VPBlockRecursiveTraversalWrapper<VPBlockBase *>(Plan.getEntry()))));
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  // Check if Base is a predicated triangle, followed by an empty block,
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  // followed by another predicate triangle. If that's the case, move the
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  // recipes from the first to the second triangle.
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  for (VPRegionBlock *Region1 : CandidateRegions) {
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    if (DeletedRegions.contains(Region1))
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      continue;
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    auto *MiddleBasicBlock =
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        dyn_cast_or_null<VPBasicBlock>(Region1->getSingleSuccessor());
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    if (!MiddleBasicBlock || !MiddleBasicBlock->empty())
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      continue;
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    auto *Region2 =
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        dyn_cast_or_null<VPRegionBlock>(MiddleBasicBlock->getSingleSuccessor());
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    if (!Region2)
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      continue;
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    VPValue *Mask1 = getPredicatedMask(Region1);
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    VPValue *Mask2 = getPredicatedMask(Region2);
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    if (!Mask1 || Mask1 != Mask2)
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      continue;
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    VPBasicBlock *Then1 = getPredicatedThenBlock(Region1);
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    VPBasicBlock *Then2 = getPredicatedThenBlock(Region2);
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    if (!Then1 || !Then2)
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      continue;
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    assert(Mask1 && Mask2 && "both region must have conditions");
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    // Note: No fusion-preventing memory dependencies are expected in either
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    // region. Such dependencies should be rejected during earlier dependence
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    // checks, which guarantee accesses can be re-ordered for vectorization.
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    //
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    // Move recipes to the successor region.
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    for (VPRecipeBase &ToMove : make_early_inc_range(reverse(*Then1)))
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      ToMove.moveBefore(*Then2, Then2->getFirstNonPhi());
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    auto *Merge1 = cast<VPBasicBlock>(Then1->getSingleSuccessor());
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    auto *Merge2 = cast<VPBasicBlock>(Then2->getSingleSuccessor());
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    // Move VPPredInstPHIRecipes from the merge block to the successor region's
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    // merge block. Update all users inside the successor region to use the
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    // original values.
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    for (VPRecipeBase &Phi1ToMove : make_early_inc_range(reverse(*Merge1))) {
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      VPValue *PredInst1 =
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          cast<VPPredInstPHIRecipe>(&Phi1ToMove)->getOperand(0);
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      VPValue *Phi1ToMoveV = Phi1ToMove.getVPSingleValue();
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      SmallVector<VPUser *> Users(Phi1ToMoveV->users());
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      for (VPUser *U : Users) {
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        auto *UI = dyn_cast<VPRecipeBase>(U);
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        if (!UI || UI->getParent() != Then2)
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          continue;
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        for (unsigned I = 0, E = U->getNumOperands(); I != E; ++I) {
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          if (Phi1ToMoveV != U->getOperand(I))
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            continue;
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          U->setOperand(I, PredInst1);
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        }
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      }
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      Phi1ToMove.moveBefore(*Merge2, Merge2->begin());
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    }
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    // Finally, remove the first region.
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    for (VPBlockBase *Pred : make_early_inc_range(Region1->getPredecessors())) {
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      VPBlockUtils::disconnectBlocks(Pred, Region1);
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      VPBlockUtils::connectBlocks(Pred, MiddleBasicBlock);
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    }
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    VPBlockUtils::disconnectBlocks(Region1, MiddleBasicBlock);
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    DeletedRegions.insert(Region1);
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  }
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  for (VPRegionBlock *ToDelete : DeletedRegions)
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    delete ToDelete;
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  return Changed;
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}
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void VPlanTransforms::removeRedundantInductionCasts(VPlan &Plan) {
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  SmallVector<std::pair<VPRecipeBase *, VPValue *>> CastsToRemove;
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  for (auto &Phi : Plan.getEntry()->getEntryBasicBlock()->phis()) {
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    auto *IV = dyn_cast<VPWidenIntOrFpInductionRecipe>(&Phi);
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    if (!IV || IV->getTruncInst())
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      continue;
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    // Visit all casts connected to IV and in Casts. Collect them.
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    // remember them for removal.
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    auto &Casts = IV->getInductionDescriptor().getCastInsts();
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    VPValue *FindMyCast = IV;
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    for (Instruction *IRCast : reverse(Casts)) {
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      VPRecipeBase *FoundUserCast = nullptr;
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      for (auto *U : FindMyCast->users()) {
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        auto *UserCast = cast<VPRecipeBase>(U);
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        if (UserCast->getNumDefinedValues() == 1 &&
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            UserCast->getVPSingleValue()->getUnderlyingValue() == IRCast) {
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          FoundUserCast = UserCast;
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          break;
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        }
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      }
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      assert(FoundUserCast && "Missing a cast to remove");
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      CastsToRemove.emplace_back(FoundUserCast, IV);
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      FindMyCast = FoundUserCast->getVPSingleValue();
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    }
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  }
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  for (auto &E : CastsToRemove) {
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    E.first->getVPSingleValue()->replaceAllUsesWith(E.second);
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    E.first->eraseFromParent();
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  }
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}
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