lithium-arm64.cc 92.6 KB
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// Copyright 2013 the V8 project authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file.
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#include <sstream>

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#include "src/v8.h"
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#include "src/arm64/lithium-codegen-arm64.h"
#include "src/hydrogen-osr.h"
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#include "src/lithium-inl.h"
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namespace v8 {
namespace internal {

#define DEFINE_COMPILE(type)                            \
  void L##type::CompileToNative(LCodeGen* generator) {  \
    generator->Do##type(this);                          \
  }
LITHIUM_CONCRETE_INSTRUCTION_LIST(DEFINE_COMPILE)
#undef DEFINE_COMPILE

#ifdef DEBUG
void LInstruction::VerifyCall() {
  // Call instructions can use only fixed registers as temporaries and
  // outputs because all registers are blocked by the calling convention.
  // Inputs operands must use a fixed register or use-at-start policy or
  // a non-register policy.
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  DCHECK(Output() == NULL ||
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         LUnallocated::cast(Output())->HasFixedPolicy() ||
         !LUnallocated::cast(Output())->HasRegisterPolicy());
  for (UseIterator it(this); !it.Done(); it.Advance()) {
    LUnallocated* operand = LUnallocated::cast(it.Current());
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    DCHECK(operand->HasFixedPolicy() ||
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           operand->IsUsedAtStart());
  }
  for (TempIterator it(this); !it.Done(); it.Advance()) {
    LUnallocated* operand = LUnallocated::cast(it.Current());
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    DCHECK(operand->HasFixedPolicy() ||!operand->HasRegisterPolicy());
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  }
}
#endif


void LLabel::PrintDataTo(StringStream* stream) {
  LGap::PrintDataTo(stream);
  LLabel* rep = replacement();
  if (rep != NULL) {
    stream->Add(" Dead block replaced with B%d", rep->block_id());
  }
}


void LAccessArgumentsAt::PrintDataTo(StringStream* stream) {
  arguments()->PrintTo(stream);
  stream->Add(" length ");
  length()->PrintTo(stream);
  stream->Add(" index ");
  index()->PrintTo(stream);
}


void LBranch::PrintDataTo(StringStream* stream) {
  stream->Add("B%d | B%d on ", true_block_id(), false_block_id());
  value()->PrintTo(stream);
}


void LCallJSFunction::PrintDataTo(StringStream* stream) {
  stream->Add("= ");
  function()->PrintTo(stream);
  stream->Add("#%d / ", arity());
}


void LCallWithDescriptor::PrintDataTo(StringStream* stream) {
  for (int i = 0; i < InputCount(); i++) {
    InputAt(i)->PrintTo(stream);
    stream->Add(" ");
  }
  stream->Add("#%d / ", arity());
}


void LCallNew::PrintDataTo(StringStream* stream) {
  stream->Add("= ");
  constructor()->PrintTo(stream);
  stream->Add(" #%d / ", arity());
}


void LCallNewArray::PrintDataTo(StringStream* stream) {
  stream->Add("= ");
  constructor()->PrintTo(stream);
  stream->Add(" #%d / ", arity());
  ElementsKind kind = hydrogen()->elements_kind();
  stream->Add(" (%s) ", ElementsKindToString(kind));
}


void LClassOfTestAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if class_of_test(");
  value()->PrintTo(stream);
  stream->Add(", \"%o\") then B%d else B%d",
              *hydrogen()->class_name(),
              true_block_id(),
              false_block_id());
}


void LCompareNumericAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if ");
  left()->PrintTo(stream);
  stream->Add(" %s ", Token::String(op()));
  right()->PrintTo(stream);
  stream->Add(" then B%d else B%d", true_block_id(), false_block_id());
}


void LHasCachedArrayIndexAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if has_cached_array_index(");
  value()->PrintTo(stream);
  stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
}


bool LGoto::HasInterestingComment(LCodeGen* gen) const {
  return !gen->IsNextEmittedBlock(block_id());
}


void LGoto::PrintDataTo(StringStream* stream) {
  stream->Add("B%d", block_id());
}


void LInnerAllocatedObject::PrintDataTo(StringStream* stream) {
  stream->Add(" = ");
  base_object()->PrintTo(stream);
  stream->Add(" + ");
  offset()->PrintTo(stream);
}


void LInvokeFunction::PrintDataTo(StringStream* stream) {
  stream->Add("= ");
  function()->PrintTo(stream);
  stream->Add(" #%d / ", arity());
}


void LInstruction::PrintTo(StringStream* stream) {
  stream->Add("%s ", this->Mnemonic());

  PrintOutputOperandTo(stream);

  PrintDataTo(stream);

  if (HasEnvironment()) {
    stream->Add(" ");
    environment()->PrintTo(stream);
  }

  if (HasPointerMap()) {
    stream->Add(" ");
    pointer_map()->PrintTo(stream);
  }
}


void LInstruction::PrintDataTo(StringStream* stream) {
  stream->Add("= ");
  for (int i = 0; i < InputCount(); i++) {
    if (i > 0) stream->Add(" ");
    if (InputAt(i) == NULL) {
      stream->Add("NULL");
    } else {
      InputAt(i)->PrintTo(stream);
    }
  }
}


void LInstruction::PrintOutputOperandTo(StringStream* stream) {
  if (HasResult()) result()->PrintTo(stream);
}


void LHasInstanceTypeAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if has_instance_type(");
  value()->PrintTo(stream);
  stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
}


void LIsObjectAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if is_object(");
  value()->PrintTo(stream);
  stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
}


void LIsStringAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if is_string(");
  value()->PrintTo(stream);
  stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
}


void LIsSmiAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if is_smi(");
  value()->PrintTo(stream);
  stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
}


void LTypeofIsAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if typeof ");
  value()->PrintTo(stream);
  stream->Add(" == \"%s\" then B%d else B%d",
              hydrogen()->type_literal()->ToCString().get(),
              true_block_id(), false_block_id());
}


void LIsUndetectableAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if is_undetectable(");
  value()->PrintTo(stream);
  stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
}


bool LGap::IsRedundant() const {
  for (int i = 0; i < 4; i++) {
    if ((parallel_moves_[i] != NULL) && !parallel_moves_[i]->IsRedundant()) {
      return false;
    }
  }

  return true;
}


void LGap::PrintDataTo(StringStream* stream) {
  for (int i = 0; i < 4; i++) {
    stream->Add("(");
    if (parallel_moves_[i] != NULL) {
      parallel_moves_[i]->PrintDataTo(stream);
    }
    stream->Add(") ");
  }
}


void LLoadContextSlot::PrintDataTo(StringStream* stream) {
  context()->PrintTo(stream);
  stream->Add("[%d]", slot_index());
}


void LStoreCodeEntry::PrintDataTo(StringStream* stream) {
  stream->Add(" = ");
  function()->PrintTo(stream);
  stream->Add(".code_entry = ");
  code_object()->PrintTo(stream);
}


void LStoreContextSlot::PrintDataTo(StringStream* stream) {
  context()->PrintTo(stream);
  stream->Add("[%d] <- ", slot_index());
  value()->PrintTo(stream);
}


void LStoreKeyedGeneric::PrintDataTo(StringStream* stream) {
  object()->PrintTo(stream);
  stream->Add("[");
  key()->PrintTo(stream);
  stream->Add("] <- ");
  value()->PrintTo(stream);
}


void LStoreNamedField::PrintDataTo(StringStream* stream) {
  object()->PrintTo(stream);
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  std::ostringstream os;
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  os << hydrogen()->access();
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  stream->Add(os.str().c_str());
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  stream->Add(" <- ");
  value()->PrintTo(stream);
}


void LStoreNamedGeneric::PrintDataTo(StringStream* stream) {
  object()->PrintTo(stream);
  stream->Add(".");
  stream->Add(String::cast(*name())->ToCString().get());
  stream->Add(" <- ");
  value()->PrintTo(stream);
}


void LStringCompareAndBranch::PrintDataTo(StringStream* stream) {
  stream->Add("if string_compare(");
  left()->PrintTo(stream);
  right()->PrintTo(stream);
  stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
}


void LTransitionElementsKind::PrintDataTo(StringStream* stream) {
  object()->PrintTo(stream);
  stream->Add("%p -> %p", *original_map(), *transitioned_map());
}


template<int T>
void LUnaryMathOperation<T>::PrintDataTo(StringStream* stream) {
  value()->PrintTo(stream);
}


const char* LArithmeticD::Mnemonic() const {
  switch (op()) {
    case Token::ADD: return "add-d";
    case Token::SUB: return "sub-d";
    case Token::MUL: return "mul-d";
    case Token::DIV: return "div-d";
    case Token::MOD: return "mod-d";
    default:
      UNREACHABLE();
      return NULL;
  }
}


const char* LArithmeticT::Mnemonic() const {
  switch (op()) {
    case Token::ADD: return "add-t";
    case Token::SUB: return "sub-t";
    case Token::MUL: return "mul-t";
    case Token::MOD: return "mod-t";
    case Token::DIV: return "div-t";
    case Token::BIT_AND: return "bit-and-t";
    case Token::BIT_OR: return "bit-or-t";
    case Token::BIT_XOR: return "bit-xor-t";
    case Token::ROR: return "ror-t";
    case Token::SHL: return "shl-t";
    case Token::SAR: return "sar-t";
    case Token::SHR: return "shr-t";
    default:
      UNREACHABLE();
      return NULL;
  }
}


LUnallocated* LChunkBuilder::ToUnallocated(Register reg) {
  return new(zone()) LUnallocated(LUnallocated::FIXED_REGISTER,
                                  Register::ToAllocationIndex(reg));
}


LUnallocated* LChunkBuilder::ToUnallocated(DoubleRegister reg) {
  return new(zone()) LUnallocated(LUnallocated::FIXED_DOUBLE_REGISTER,
                                  DoubleRegister::ToAllocationIndex(reg));
}


LOperand* LChunkBuilder::Use(HValue* value, LUnallocated* operand) {
  if (value->EmitAtUses()) {
    HInstruction* instr = HInstruction::cast(value);
    VisitInstruction(instr);
  }
  operand->set_virtual_register(value->id());
  return operand;
}


LOperand* LChunkBuilder::UseFixed(HValue* value, Register fixed_register) {
  return Use(value, ToUnallocated(fixed_register));
}


LOperand* LChunkBuilder::UseFixedDouble(HValue* value,
                                        DoubleRegister fixed_register) {
  return Use(value, ToUnallocated(fixed_register));
}


LOperand* LChunkBuilder::UseRegister(HValue* value) {
  return Use(value, new(zone()) LUnallocated(LUnallocated::MUST_HAVE_REGISTER));
}


LOperand* LChunkBuilder::UseRegisterAndClobber(HValue* value) {
  return Use(value, new(zone()) LUnallocated(LUnallocated::WRITABLE_REGISTER));
}


LOperand* LChunkBuilder::UseRegisterAtStart(HValue* value) {
  return Use(value,
             new(zone()) LUnallocated(LUnallocated::MUST_HAVE_REGISTER,
                                      LUnallocated::USED_AT_START));
}


LOperand* LChunkBuilder::UseRegisterOrConstant(HValue* value) {
  return value->IsConstant() ? UseConstant(value) : UseRegister(value);
}


LOperand* LChunkBuilder::UseRegisterOrConstantAtStart(HValue* value) {
  return value->IsConstant() ? UseConstant(value) : UseRegisterAtStart(value);
}


LConstantOperand* LChunkBuilder::UseConstant(HValue* value) {
  return chunk_->DefineConstantOperand(HConstant::cast(value));
}


LOperand* LChunkBuilder::UseAny(HValue* value) {
  return value->IsConstant()
      ? UseConstant(value)
      : Use(value, new(zone()) LUnallocated(LUnallocated::ANY));
}


LInstruction* LChunkBuilder::Define(LTemplateResultInstruction<1>* instr,
                                    LUnallocated* result) {
  result->set_virtual_register(current_instruction_->id());
  instr->set_result(result);
  return instr;
}


LInstruction* LChunkBuilder::DefineAsRegister(
    LTemplateResultInstruction<1>* instr) {
  return Define(instr,
                new(zone()) LUnallocated(LUnallocated::MUST_HAVE_REGISTER));
}


LInstruction* LChunkBuilder::DefineAsSpilled(
    LTemplateResultInstruction<1>* instr, int index) {
  return Define(instr,
                new(zone()) LUnallocated(LUnallocated::FIXED_SLOT, index));
}


LInstruction* LChunkBuilder::DefineSameAsFirst(
    LTemplateResultInstruction<1>* instr) {
  return Define(instr,
                new(zone()) LUnallocated(LUnallocated::SAME_AS_FIRST_INPUT));
}


LInstruction* LChunkBuilder::DefineFixed(
    LTemplateResultInstruction<1>* instr, Register reg) {
  return Define(instr, ToUnallocated(reg));
}


LInstruction* LChunkBuilder::DefineFixedDouble(
    LTemplateResultInstruction<1>* instr, DoubleRegister reg) {
  return Define(instr, ToUnallocated(reg));
}


LInstruction* LChunkBuilder::MarkAsCall(LInstruction* instr,
                                        HInstruction* hinstr,
                                        CanDeoptimize can_deoptimize) {
  info()->MarkAsNonDeferredCalling();
#ifdef DEBUG
  instr->VerifyCall();
#endif
  instr->MarkAsCall();
  instr = AssignPointerMap(instr);

  // If instruction does not have side-effects lazy deoptimization
  // after the call will try to deoptimize to the point before the call.
  // Thus we still need to attach environment to this call even if
  // call sequence can not deoptimize eagerly.
  bool needs_environment =
      (can_deoptimize == CAN_DEOPTIMIZE_EAGERLY) ||
      !hinstr->HasObservableSideEffects();
  if (needs_environment && !instr->HasEnvironment()) {
    instr = AssignEnvironment(instr);
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    // We can't really figure out if the environment is needed or not.
    instr->environment()->set_has_been_used();
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  }

  return instr;
}


LInstruction* LChunkBuilder::AssignPointerMap(LInstruction* instr) {
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  DCHECK(!instr->HasPointerMap());
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  instr->set_pointer_map(new(zone()) LPointerMap(zone()));
  return instr;
}


LUnallocated* LChunkBuilder::TempRegister() {
  LUnallocated* operand =
      new(zone()) LUnallocated(LUnallocated::MUST_HAVE_REGISTER);
  int vreg = allocator_->GetVirtualRegister();
  if (!allocator_->AllocationOk()) {
    Abort(kOutOfVirtualRegistersWhileTryingToAllocateTempRegister);
    vreg = 0;
  }
  operand->set_virtual_register(vreg);
  return operand;
}


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LUnallocated* LChunkBuilder::TempDoubleRegister() {
  LUnallocated* operand =
      new(zone()) LUnallocated(LUnallocated::MUST_HAVE_DOUBLE_REGISTER);
  int vreg = allocator_->GetVirtualRegister();
  if (!allocator_->AllocationOk()) {
    Abort(kOutOfVirtualRegistersWhileTryingToAllocateTempRegister);
    vreg = 0;
  }
  operand->set_virtual_register(vreg);
  return operand;
}


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int LPlatformChunk::GetNextSpillIndex() {
  return spill_slot_count_++;
}


LOperand* LPlatformChunk::GetNextSpillSlot(RegisterKind kind) {
  int index = GetNextSpillIndex();
  if (kind == DOUBLE_REGISTERS) {
    return LDoubleStackSlot::Create(index, zone());
  } else {
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    DCHECK(kind == GENERAL_REGISTERS);
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    return LStackSlot::Create(index, zone());
  }
}


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LOperand* LChunkBuilder::FixedTemp(Register reg) {
  LUnallocated* operand = ToUnallocated(reg);
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  DCHECK(operand->HasFixedPolicy());
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  return operand;
}


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LOperand* LChunkBuilder::FixedTemp(DoubleRegister reg) {
  LUnallocated* operand = ToUnallocated(reg);
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  DCHECK(operand->HasFixedPolicy());
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  return operand;
}


LPlatformChunk* LChunkBuilder::Build() {
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  DCHECK(is_unused());
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  chunk_ = new(zone()) LPlatformChunk(info_, graph_);
  LPhase phase("L_Building chunk", chunk_);
  status_ = BUILDING;

  // If compiling for OSR, reserve space for the unoptimized frame,
  // which will be subsumed into this frame.
  if (graph()->has_osr()) {
    // TODO(all): GetNextSpillIndex just increments a field. It has no other
    // side effects, so we should get rid of this loop.
    for (int i = graph()->osr()->UnoptimizedFrameSlots(); i > 0; i--) {
      chunk_->GetNextSpillIndex();
    }
  }

  const ZoneList<HBasicBlock*>* blocks = graph_->blocks();
  for (int i = 0; i < blocks->length(); i++) {
    DoBasicBlock(blocks->at(i));
    if (is_aborted()) return NULL;
  }
  status_ = DONE;
  return chunk_;
}


void LChunkBuilder::DoBasicBlock(HBasicBlock* block) {
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  DCHECK(is_building());
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  current_block_ = block;

  if (block->IsStartBlock()) {
    block->UpdateEnvironment(graph_->start_environment());
    argument_count_ = 0;
  } else if (block->predecessors()->length() == 1) {
    // We have a single predecessor => copy environment and outgoing
    // argument count from the predecessor.
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    DCHECK(block->phis()->length() == 0);
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    HBasicBlock* pred = block->predecessors()->at(0);
    HEnvironment* last_environment = pred->last_environment();
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    DCHECK(last_environment != NULL);
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    // Only copy the environment, if it is later used again.
    if (pred->end()->SecondSuccessor() == NULL) {
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      DCHECK(pred->end()->FirstSuccessor() == block);
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    } else {
      if ((pred->end()->FirstSuccessor()->block_id() > block->block_id()) ||
          (pred->end()->SecondSuccessor()->block_id() > block->block_id())) {
        last_environment = last_environment->Copy();
      }
    }
    block->UpdateEnvironment(last_environment);
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    DCHECK(pred->argument_count() >= 0);
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    argument_count_ = pred->argument_count();
  } else {
    // We are at a state join => process phis.
    HBasicBlock* pred = block->predecessors()->at(0);
    // No need to copy the environment, it cannot be used later.
    HEnvironment* last_environment = pred->last_environment();
    for (int i = 0; i < block->phis()->length(); ++i) {
      HPhi* phi = block->phis()->at(i);
      if (phi->HasMergedIndex()) {
        last_environment->SetValueAt(phi->merged_index(), phi);
      }
    }
    for (int i = 0; i < block->deleted_phis()->length(); ++i) {
      if (block->deleted_phis()->at(i) < last_environment->length()) {
        last_environment->SetValueAt(block->deleted_phis()->at(i),
                                     graph_->GetConstantUndefined());
      }
    }
    block->UpdateEnvironment(last_environment);
    // Pick up the outgoing argument count of one of the predecessors.
    argument_count_ = pred->argument_count();
  }

  // Translate hydrogen instructions to lithium ones for the current block.
  HInstruction* current = block->first();
  int start = chunk_->instructions()->length();
  while ((current != NULL) && !is_aborted()) {
    // Code for constants in registers is generated lazily.
    if (!current->EmitAtUses()) {
      VisitInstruction(current);
    }
    current = current->next();
  }
  int end = chunk_->instructions()->length() - 1;
  if (end >= start) {
    block->set_first_instruction_index(start);
    block->set_last_instruction_index(end);
  }
  block->set_argument_count(argument_count_);
  current_block_ = NULL;
}


void LChunkBuilder::VisitInstruction(HInstruction* current) {
  HInstruction* old_current = current_instruction_;
  current_instruction_ = current;

  LInstruction* instr = NULL;
  if (current->CanReplaceWithDummyUses()) {
    if (current->OperandCount() == 0) {
      instr = DefineAsRegister(new(zone()) LDummy());
    } else {
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      DCHECK(!current->OperandAt(0)->IsControlInstruction());
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      instr = DefineAsRegister(new(zone())
          LDummyUse(UseAny(current->OperandAt(0))));
    }
    for (int i = 1; i < current->OperandCount(); ++i) {
      if (current->OperandAt(i)->IsControlInstruction()) continue;
      LInstruction* dummy =
          new(zone()) LDummyUse(UseAny(current->OperandAt(i)));
      dummy->set_hydrogen_value(current);
      chunk_->AddInstruction(dummy, current_block_);
    }
  } else {
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    HBasicBlock* successor;
    if (current->IsControlInstruction() &&
        HControlInstruction::cast(current)->KnownSuccessorBlock(&successor) &&
        successor != NULL) {
      instr = new(zone()) LGoto(successor);
    } else {
      instr = current->CompileToLithium(this);
    }
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  }

  argument_count_ += current->argument_delta();
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  DCHECK(argument_count_ >= 0);
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  if (instr != NULL) {
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    AddInstruction(instr, current);
  }

  current_instruction_ = old_current;
}


void LChunkBuilder::AddInstruction(LInstruction* instr,
                                   HInstruction* hydrogen_val) {
  // Associate the hydrogen instruction first, since we may need it for
  // the ClobbersRegisters() or ClobbersDoubleRegisters() calls below.
  instr->set_hydrogen_value(hydrogen_val);
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#if DEBUG
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  // Make sure that the lithium instruction has either no fixed register
  // constraints in temps or the result OR no uses that are only used at
  // start. If this invariant doesn't hold, the register allocator can decide
  // to insert a split of a range immediately before the instruction due to an
  // already allocated register needing to be used for the instruction's fixed
  // register constraint. In this case, the register allocator won't see an
  // interference between the split child and the use-at-start (it would if
  // the it was just a plain use), so it is free to move the split child into
  // the same register that is used for the use-at-start.
  // See https://code.google.com/p/chromium/issues/detail?id=201590
  if (!(instr->ClobbersRegisters() &&
        instr->ClobbersDoubleRegisters(isolate()))) {
    int fixed = 0;
    int used_at_start = 0;
    for (UseIterator it(instr); !it.Done(); it.Advance()) {
      LUnallocated* operand = LUnallocated::cast(it.Current());
      if (operand->IsUsedAtStart()) ++used_at_start;
    }
    if (instr->Output() != NULL) {
      if (LUnallocated::cast(instr->Output())->HasFixedPolicy()) ++fixed;
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    }
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    for (TempIterator it(instr); !it.Done(); it.Advance()) {
      LUnallocated* operand = LUnallocated::cast(it.Current());
      if (operand->HasFixedPolicy()) ++fixed;
    }
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    DCHECK(fixed == 0 || used_at_start == 0);
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  }
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#endif

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  if (FLAG_stress_pointer_maps && !instr->HasPointerMap()) {
    instr = AssignPointerMap(instr);
  }
  if (FLAG_stress_environments && !instr->HasEnvironment()) {
    instr = AssignEnvironment(instr);
  }
  chunk_->AddInstruction(instr, current_block_);

  if (instr->IsCall()) {
    HValue* hydrogen_value_for_lazy_bailout = hydrogen_val;
    LInstruction* instruction_needing_environment = NULL;
    if (hydrogen_val->HasObservableSideEffects()) {
      HSimulate* sim = HSimulate::cast(hydrogen_val->next());
      instruction_needing_environment = instr;
      sim->ReplayEnvironment(current_block_->last_environment());
      hydrogen_value_for_lazy_bailout = sim;
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    }
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    LInstruction* bailout = AssignEnvironment(new(zone()) LLazyBailout());
    bailout->set_hydrogen_value(hydrogen_value_for_lazy_bailout);
    chunk_->AddInstruction(bailout, current_block_);
    if (instruction_needing_environment != NULL) {
      // Store the lazy deopt environment with the instruction if needed.
      // Right now it is only used for LInstanceOfKnownGlobal.
      instruction_needing_environment->
          SetDeferredLazyDeoptimizationEnvironment(bailout->environment());
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    }
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  }
}


LInstruction* LChunkBuilder::AssignEnvironment(LInstruction* instr) {
  HEnvironment* hydrogen_env = current_block_->last_environment();
  int argument_index_accumulator = 0;
  ZoneList<HValue*> objects_to_materialize(0, zone());
  instr->set_environment(CreateEnvironment(hydrogen_env,
                                           &argument_index_accumulator,
                                           &objects_to_materialize));
  return instr;
}


LInstruction* LChunkBuilder::DoAbnormalExit(HAbnormalExit* instr) {
  // The control instruction marking the end of a block that completed
  // abruptly (e.g., threw an exception). There is nothing specific to do.
  return NULL;
}


LInstruction* LChunkBuilder::DoArithmeticD(Token::Value op,
                                           HArithmeticBinaryOperation* instr) {
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  DCHECK(instr->representation().IsDouble());
  DCHECK(instr->left()->representation().IsDouble());
  DCHECK(instr->right()->representation().IsDouble());
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  if (op == Token::MOD) {
    LOperand* left = UseFixedDouble(instr->left(), d0);
    LOperand* right = UseFixedDouble(instr->right(), d1);
    LArithmeticD* result = new(zone()) LArithmeticD(Token::MOD, left, right);
    return MarkAsCall(DefineFixedDouble(result, d0), instr);
  } else {
    LOperand* left = UseRegisterAtStart(instr->left());
    LOperand* right = UseRegisterAtStart(instr->right());
    LArithmeticD* result = new(zone()) LArithmeticD(op, left, right);
    return DefineAsRegister(result);
  }
}


LInstruction* LChunkBuilder::DoArithmeticT(Token::Value op,
                                           HBinaryOperation* instr) {
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  DCHECK((op == Token::ADD) || (op == Token::SUB) || (op == Token::MUL) ||
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         (op == Token::DIV) || (op == Token::MOD) || (op == Token::SHR) ||
         (op == Token::SHL) || (op == Token::SAR) || (op == Token::ROR) ||
         (op == Token::BIT_OR) || (op == Token::BIT_AND) ||
         (op == Token::BIT_XOR));
  HValue* left = instr->left();
  HValue* right = instr->right();

  // TODO(jbramley): Once we've implemented smi support for all arithmetic
  // operations, these assertions should check IsTagged().
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  DCHECK(instr->representation().IsSmiOrTagged());
  DCHECK(left->representation().IsSmiOrTagged());
  DCHECK(right->representation().IsSmiOrTagged());
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  LOperand* context = UseFixed(instr->context(), cp);
  LOperand* left_operand = UseFixed(left, x1);
  LOperand* right_operand = UseFixed(right, x0);
  LArithmeticT* result =
      new(zone()) LArithmeticT(op, context, left_operand, right_operand);
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoBoundsCheckBaseIndexInformation(
    HBoundsCheckBaseIndexInformation* instr) {
  UNREACHABLE();
  return NULL;
}


LInstruction* LChunkBuilder::DoAccessArgumentsAt(HAccessArgumentsAt* instr) {
  info()->MarkAsRequiresFrame();
  LOperand* args = NULL;
  LOperand* length = NULL;
  LOperand* index = NULL;

  if (instr->length()->IsConstant() && instr->index()->IsConstant()) {
    args = UseRegisterAtStart(instr->arguments());
    length = UseConstant(instr->length());
    index = UseConstant(instr->index());
  } else {
    args = UseRegister(instr->arguments());
    length = UseRegisterAtStart(instr->length());
    index = UseRegisterOrConstantAtStart(instr->index());
  }

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  return DefineAsRegister(new(zone()) LAccessArgumentsAt(args, length, index));
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}


LInstruction* LChunkBuilder::DoAdd(HAdd* instr) {
  if (instr->representation().IsSmiOrInteger32()) {
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    DCHECK(instr->left()->representation().Equals(instr->representation()));
    DCHECK(instr->right()->representation().Equals(instr->representation()));
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    LInstruction* shifted_operation = TryDoOpWithShiftedRightOperand(instr);
    if (shifted_operation != NULL) {
      return shifted_operation;
    }

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    LOperand* left = UseRegisterAtStart(instr->BetterLeftOperand());
    LOperand* right =
        UseRegisterOrConstantAtStart(instr->BetterRightOperand());
    LInstruction* result = instr->representation().IsSmi() ?
        DefineAsRegister(new(zone()) LAddS(left, right)) :
        DefineAsRegister(new(zone()) LAddI(left, right));
    if (instr->CheckFlag(HValue::kCanOverflow)) {
      result = AssignEnvironment(result);
    }
    return result;
  } else if (instr->representation().IsExternal()) {
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    DCHECK(instr->left()->representation().IsExternal());
    DCHECK(instr->right()->representation().IsInteger32());
    DCHECK(!instr->CheckFlag(HValue::kCanOverflow));
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    LOperand* left = UseRegisterAtStart(instr->left());
    LOperand* right = UseRegisterOrConstantAtStart(instr->right());
    return DefineAsRegister(new(zone()) LAddE(left, right));
  } else if (instr->representation().IsDouble()) {
    return DoArithmeticD(Token::ADD, instr);
  } else {
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    DCHECK(instr->representation().IsTagged());
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    return DoArithmeticT(Token::ADD, instr);
  }
}


LInstruction* LChunkBuilder::DoAllocate(HAllocate* instr) {
  info()->MarkAsDeferredCalling();
  LOperand* context = UseAny(instr->context());
  LOperand* size = UseRegisterOrConstant(instr->size());
  LOperand* temp1 = TempRegister();
  LOperand* temp2 = TempRegister();
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  LOperand* temp3 = instr->MustPrefillWithFiller() ? TempRegister() : NULL;
  LAllocate* result = new(zone()) LAllocate(context, size, temp1, temp2, temp3);
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  return AssignPointerMap(DefineAsRegister(result));
}


LInstruction* LChunkBuilder::DoApplyArguments(HApplyArguments* instr) {
  LOperand* function = UseFixed(instr->function(), x1);
  LOperand* receiver = UseFixed(instr->receiver(), x0);
  LOperand* length = UseFixed(instr->length(), x2);
  LOperand* elements = UseFixed(instr->elements(), x3);
  LApplyArguments* result = new(zone()) LApplyArguments(function,
                                                        receiver,
                                                        length,
                                                        elements);
  return MarkAsCall(DefineFixed(result, x0), instr, CAN_DEOPTIMIZE_EAGERLY);
}


LInstruction* LChunkBuilder::DoArgumentsElements(HArgumentsElements* instr) {
  info()->MarkAsRequiresFrame();
  LOperand* temp = instr->from_inlined() ? NULL : TempRegister();
  return DefineAsRegister(new(zone()) LArgumentsElements(temp));
}


LInstruction* LChunkBuilder::DoArgumentsLength(HArgumentsLength* instr) {
  info()->MarkAsRequiresFrame();
  LOperand* value = UseRegisterAtStart(instr->value());
  return DefineAsRegister(new(zone()) LArgumentsLength(value));
}


LInstruction* LChunkBuilder::DoArgumentsObject(HArgumentsObject* instr) {
  // There are no real uses of the arguments object.
  // arguments.length and element access are supported directly on
  // stack arguments, and any real arguments object use causes a bailout.
  // So this value is never used.
  return NULL;
}


LInstruction* LChunkBuilder::DoBitwise(HBitwise* instr) {
  if (instr->representation().IsSmiOrInteger32()) {
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    DCHECK(instr->left()->representation().Equals(instr->representation()));
    DCHECK(instr->right()->representation().Equals(instr->representation()));
    DCHECK(instr->CheckFlag(HValue::kTruncatingToInt32));
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    LInstruction* shifted_operation = TryDoOpWithShiftedRightOperand(instr);
    if (shifted_operation != NULL) {
      return shifted_operation;
    }

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    LOperand* left = UseRegisterAtStart(instr->BetterLeftOperand());
    LOperand* right =
        UseRegisterOrConstantAtStart(instr->BetterRightOperand());
    return instr->representation().IsSmi() ?
        DefineAsRegister(new(zone()) LBitS(left, right)) :
        DefineAsRegister(new(zone()) LBitI(left, right));
  } else {
    return DoArithmeticT(instr->op(), instr);
  }
}


LInstruction* LChunkBuilder::DoBlockEntry(HBlockEntry* instr) {
  // V8 expects a label to be generated for each basic block.
  // This is used in some places like LAllocator::IsBlockBoundary
  // in lithium-allocator.cc
  return new(zone()) LLabel(instr->block());
}


LInstruction* LChunkBuilder::DoBoundsCheck(HBoundsCheck* instr) {
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  if (!FLAG_debug_code && instr->skip_check()) return NULL;
  LOperand* index = UseRegisterOrConstantAtStart(instr->index());
  LOperand* length = !index->IsConstantOperand()
      ? UseRegisterOrConstantAtStart(instr->length())
      : UseRegisterAtStart(instr->length());
  LInstruction* result = new(zone()) LBoundsCheck(index, length);
  if (!FLAG_debug_code || !instr->skip_check()) {
    result = AssignEnvironment(result);
  }
  return result;
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}


LInstruction* LChunkBuilder::DoBranch(HBranch* instr) {
  HValue* value = instr->value();
  Representation r = value->representation();
  HType type = value->type();

  if (r.IsInteger32() || r.IsSmi() || r.IsDouble()) {
    // These representations have simple checks that cannot deoptimize.
    return new(zone()) LBranch(UseRegister(value), NULL, NULL);
  } else {
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    DCHECK(r.IsTagged());
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    if (type.IsBoolean() || type.IsSmi() || type.IsJSArray() ||
        type.IsHeapNumber()) {
      // These types have simple checks that cannot deoptimize.
      return new(zone()) LBranch(UseRegister(value), NULL, NULL);
    }

    if (type.IsString()) {
      // This type cannot deoptimize, but needs a scratch register.
      return new(zone()) LBranch(UseRegister(value), TempRegister(), NULL);
    }

    ToBooleanStub::Types expected = instr->expected_input_types();
    bool needs_temps = expected.NeedsMap() || expected.IsEmpty();
    LOperand* temp1 = needs_temps ? TempRegister() : NULL;
    LOperand* temp2 = needs_temps ? TempRegister() : NULL;

    if (expected.IsGeneric() || expected.IsEmpty()) {
      // The generic case cannot deoptimize because it already supports every
      // possible input type.
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      DCHECK(needs_temps);
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      return new(zone()) LBranch(UseRegister(value), temp1, temp2);
    } else {
      return AssignEnvironment(
          new(zone()) LBranch(UseRegister(value), temp1, temp2));
    }
  }
}


LInstruction* LChunkBuilder::DoCallJSFunction(
    HCallJSFunction* instr) {
  LOperand* function = UseFixed(instr->function(), x1);

  LCallJSFunction* result = new(zone()) LCallJSFunction(function);

  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoCallWithDescriptor(
    HCallWithDescriptor* instr) {
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  CallInterfaceDescriptor descriptor = instr->descriptor();
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  LOperand* target = UseRegisterOrConstantAtStart(instr->target());
  ZoneList<LOperand*> ops(instr->OperandCount(), zone());
  ops.Add(target, zone());
  for (int i = 1; i < instr->OperandCount(); i++) {
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    LOperand* op =
        UseFixed(instr->OperandAt(i), descriptor.GetParameterRegister(i - 1));
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    ops.Add(op, zone());
  }

  LCallWithDescriptor* result = new(zone()) LCallWithDescriptor(descriptor,
                                                                ops,
                                                                zone());
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoCallFunction(HCallFunction* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  LOperand* function = UseFixed(instr->function(), x1);
  LCallFunction* call = new(zone()) LCallFunction(context, function);
  return MarkAsCall(DefineFixed(call, x0), instr);
}


LInstruction* LChunkBuilder::DoCallNew(HCallNew* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  // The call to CallConstructStub will expect the constructor to be in x1.
  LOperand* constructor = UseFixed(instr->constructor(), x1);
  LCallNew* result = new(zone()) LCallNew(context, constructor);
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoCallNewArray(HCallNewArray* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  // The call to ArrayConstructCode will expect the constructor to be in x1.
  LOperand* constructor = UseFixed(instr->constructor(), x1);
  LCallNewArray* result = new(zone()) LCallNewArray(context, constructor);
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoCallRuntime(HCallRuntime* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  return MarkAsCall(DefineFixed(new(zone()) LCallRuntime(context), x0), instr);
}


LInstruction* LChunkBuilder::DoCallStub(HCallStub* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  return MarkAsCall(DefineFixed(new(zone()) LCallStub(context), x0), instr);
}


LInstruction* LChunkBuilder::DoCapturedObject(HCapturedObject* instr) {
  instr->ReplayEnvironment(current_block_->last_environment());

  // There are no real uses of a captured object.
  return NULL;
}


LInstruction* LChunkBuilder::DoChange(HChange* instr) {
  Representation from = instr->from();
  Representation to = instr->to();
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  HValue* val = instr->value();
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  if (from.IsSmi()) {
    if (to.IsTagged()) {
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      LOperand* value = UseRegister(val);
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      return DefineSameAsFirst(new(zone()) LDummyUse(value));
    }
    from = Representation::Tagged();
  }
  if (from.IsTagged()) {
    if (to.IsDouble()) {
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      LOperand* value = UseRegister(val);
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      LOperand* temp = TempRegister();
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      LInstruction* result =
          DefineAsRegister(new(zone()) LNumberUntagD(value, temp));
      if (!val->representation().IsSmi()) result = AssignEnvironment(result);
      return result;
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    } else if (to.IsSmi()) {
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      LOperand* value = UseRegister(val);
      if (val->type().IsSmi()) {
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        return DefineSameAsFirst(new(zone()) LDummyUse(value));
      }
      return AssignEnvironment(DefineSameAsFirst(new(zone()) LCheckSmi(value)));
    } else {
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      DCHECK(to.IsInteger32());
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      if (val->type().IsSmi() || val->representation().IsSmi()) {
        LOperand* value = UseRegisterAtStart(val);
        return DefineAsRegister(new(zone()) LSmiUntag(value, false));
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      } else {
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        LOperand* value = UseRegister(val);
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        LOperand* temp1 = TempRegister();
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        LOperand* temp2 = instr->CanTruncateToInt32()
            ? NULL : TempDoubleRegister();
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        LInstruction* result =
            DefineAsRegister(new(zone()) LTaggedToI(value, temp1, temp2));
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        if (!val->representation().IsSmi()) result = AssignEnvironment(result);
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        return result;
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      }
    }
  } else if (from.IsDouble()) {
    if (to.IsTagged()) {
      info()->MarkAsDeferredCalling();
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      LOperand* value = UseRegister(val);
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      LOperand* temp1 = TempRegister();
      LOperand* temp2 = TempRegister();
      LNumberTagD* result = new(zone()) LNumberTagD(value, temp1, temp2);
      return AssignPointerMap(DefineAsRegister(result));
    } else {
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      DCHECK(to.IsSmi() || to.IsInteger32());
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      if (instr->CanTruncateToInt32()) {
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        LOperand* value = UseRegister(val);
        return DefineAsRegister(new(zone()) LTruncateDoubleToIntOrSmi(value));
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      } else {
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        LOperand* value = UseRegister(val);
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        LDoubleToIntOrSmi* result = new(zone()) LDoubleToIntOrSmi(value);
        return AssignEnvironment(DefineAsRegister(result));
      }
    }
  } else if (from.IsInteger32()) {
    info()->MarkAsDeferredCalling();
    if (to.IsTagged()) {
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      if (val->CheckFlag(HInstruction::kUint32)) {
        LOperand* value = UseRegister(val);
        LNumberTagU* result =
            new(zone()) LNumberTagU(value, TempRegister(), TempRegister());
        return AssignPointerMap(DefineAsRegister(result));
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      } else {
        STATIC_ASSERT((kMinInt == Smi::kMinValue) &&
                      (kMaxInt == Smi::kMaxValue));
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        LOperand* value = UseRegisterAtStart(val);
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        return DefineAsRegister(new(zone()) LSmiTag(value));
      }
    } else if (to.IsSmi()) {
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      LOperand* value = UseRegisterAtStart(val);
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      LInstruction* result = DefineAsRegister(new(zone()) LSmiTag(value));
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      if (val->CheckFlag(HInstruction::kUint32)) {
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        result = AssignEnvironment(result);
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      }
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      return result;
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    } else {
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      DCHECK(to.IsDouble());
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      if (val->CheckFlag(HInstruction::kUint32)) {
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        return DefineAsRegister(
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            new(zone()) LUint32ToDouble(UseRegisterAtStart(val)));
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      } else {
        return DefineAsRegister(
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            new(zone()) LInteger32ToDouble(UseRegisterAtStart(val)));
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      }
    }
  }
  UNREACHABLE();
  return NULL;
}


LInstruction* LChunkBuilder::DoCheckValue(HCheckValue* instr) {
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  LOperand* value = UseRegisterAtStart(instr->value());
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  return AssignEnvironment(new(zone()) LCheckValue(value));
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}


LInstruction* LChunkBuilder::DoCheckInstanceType(HCheckInstanceType* instr) {
  LOperand* value = UseRegisterAtStart(instr->value());
  LOperand* temp = TempRegister();
  LInstruction* result = new(zone()) LCheckInstanceType(value, temp);
  return AssignEnvironment(result);
}


LInstruction* LChunkBuilder::DoCheckMaps(HCheckMaps* instr) {
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  if (instr->IsStabilityCheck()) return new(zone()) LCheckMaps;
  LOperand* value = UseRegisterAtStart(instr->value());
  LOperand* temp = TempRegister();
  LInstruction* result = AssignEnvironment(new(zone()) LCheckMaps(value, temp));
  if (instr->HasMigrationTarget()) {
    info()->MarkAsDeferredCalling();
    result = AssignPointerMap(result);
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  }
  return result;
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}


LInstruction* LChunkBuilder::DoCheckHeapObject(HCheckHeapObject* instr) {
  LOperand* value = UseRegisterAtStart(instr->value());
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  LInstruction* result = new(zone()) LCheckNonSmi(value);
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  if (!instr->value()->type().IsHeapObject()) {
    result = AssignEnvironment(result);
  }
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  return result;
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}


LInstruction* LChunkBuilder::DoCheckSmi(HCheckSmi* instr) {
  LOperand* value = UseRegisterAtStart(instr->value());
  return AssignEnvironment(new(zone()) LCheckSmi(value));
}


LInstruction* LChunkBuilder::DoClampToUint8(HClampToUint8* instr) {
  HValue* value = instr->value();
  Representation input_rep = value->representation();
  LOperand* reg = UseRegister(value);
  if (input_rep.IsDouble()) {
    return DefineAsRegister(new(zone()) LClampDToUint8(reg));
  } else if (input_rep.IsInteger32()) {
    return DefineAsRegister(new(zone()) LClampIToUint8(reg));
  } else {
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    DCHECK(input_rep.IsSmiOrTagged());
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    return AssignEnvironment(
        DefineAsRegister(new(zone()) LClampTToUint8(reg,
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                                                    TempDoubleRegister())));
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  }
}


LInstruction* LChunkBuilder::DoClassOfTestAndBranch(
    HClassOfTestAndBranch* instr) {
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  DCHECK(instr->value()->representation().IsTagged());
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  LOperand* value = UseRegisterAtStart(instr->value());
  return new(zone()) LClassOfTestAndBranch(value,
                                           TempRegister(),
                                           TempRegister());
}


LInstruction* LChunkBuilder::DoCompareNumericAndBranch(
    HCompareNumericAndBranch* instr) {
  Representation r = instr->representation();
  if (r.IsSmiOrInteger32()) {
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    DCHECK(instr->left()->representation().Equals(r));
    DCHECK(instr->right()->representation().Equals(r));
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    LOperand* left = UseRegisterOrConstantAtStart(instr->left());
    LOperand* right = UseRegisterOrConstantAtStart(instr->right());
    return new(zone()) LCompareNumericAndBranch(left, right);
  } else {
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    DCHECK(r.IsDouble());
    DCHECK(instr->left()->representation().IsDouble());
    DCHECK(instr->right()->representation().IsDouble());
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    if (instr->left()->IsConstant() && instr->right()->IsConstant()) {
      LOperand* left = UseConstant(instr->left());
      LOperand* right = UseConstant(instr->right());
      return new(zone()) LCompareNumericAndBranch(left, right);
    }
    LOperand* left = UseRegisterAtStart(instr->left());
    LOperand* right = UseRegisterAtStart(instr->right());
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    return new(zone()) LCompareNumericAndBranch(left, right);
  }
}


LInstruction* LChunkBuilder::DoCompareGeneric(HCompareGeneric* instr) {
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  DCHECK(instr->left()->representation().IsTagged());
  DCHECK(instr->right()->representation().IsTagged());
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  LOperand* context = UseFixed(instr->context(), cp);
  LOperand* left = UseFixed(instr->left(), x1);
  LOperand* right = UseFixed(instr->right(), x0);
  LCmpT* result = new(zone()) LCmpT(context, left, right);
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoCompareHoleAndBranch(
    HCompareHoleAndBranch* instr) {
  LOperand* value = UseRegister(instr->value());
  if (instr->representation().IsTagged()) {
    return new(zone()) LCmpHoleAndBranchT(value);
  } else {
    LOperand* temp = TempRegister();
    return new(zone()) LCmpHoleAndBranchD(value, temp);
  }
}


LInstruction* LChunkBuilder::DoCompareObjectEqAndBranch(
    HCompareObjectEqAndBranch* instr) {
  LOperand* left = UseRegisterAtStart(instr->left());
  LOperand* right = UseRegisterAtStart(instr->right());
  return new(zone()) LCmpObjectEqAndBranch(left, right);
}


LInstruction* LChunkBuilder::DoCompareMap(HCompareMap* instr) {
1323
  DCHECK(instr->value()->representation().IsTagged());
1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382
  LOperand* value = UseRegisterAtStart(instr->value());
  LOperand* temp = TempRegister();
  return new(zone()) LCmpMapAndBranch(value, temp);
}


LInstruction* LChunkBuilder::DoConstant(HConstant* instr) {
  Representation r = instr->representation();
  if (r.IsSmi()) {
    return DefineAsRegister(new(zone()) LConstantS);
  } else if (r.IsInteger32()) {
    return DefineAsRegister(new(zone()) LConstantI);
  } else if (r.IsDouble()) {
    return DefineAsRegister(new(zone()) LConstantD);
  } else if (r.IsExternal()) {
    return DefineAsRegister(new(zone()) LConstantE);
  } else if (r.IsTagged()) {
    return DefineAsRegister(new(zone()) LConstantT);
  } else {
    UNREACHABLE();
    return NULL;
  }
}


LInstruction* LChunkBuilder::DoContext(HContext* instr) {
  if (instr->HasNoUses()) return NULL;

  if (info()->IsStub()) {
    return DefineFixed(new(zone()) LContext, cp);
  }

  return DefineAsRegister(new(zone()) LContext);
}


LInstruction* LChunkBuilder::DoDateField(HDateField* instr) {
  LOperand* object = UseFixed(instr->value(), x0);
  LDateField* result = new(zone()) LDateField(object, instr->index());
  return MarkAsCall(DefineFixed(result, x0), instr, CAN_DEOPTIMIZE_EAGERLY);
}


LInstruction* LChunkBuilder::DoDebugBreak(HDebugBreak* instr) {
  return new(zone()) LDebugBreak();
}


LInstruction* LChunkBuilder::DoDeclareGlobals(HDeclareGlobals* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  return MarkAsCall(new(zone()) LDeclareGlobals(context), instr);
}


LInstruction* LChunkBuilder::DoDeoptimize(HDeoptimize* instr) {
  return AssignEnvironment(new(zone()) LDeoptimize);
}


1383
LInstruction* LChunkBuilder::DoDivByPowerOf2I(HDiv* instr) {
1384 1385 1386
  DCHECK(instr->representation().IsInteger32());
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
1387 1388
  LOperand* dividend = UseRegister(instr->left());
  int32_t divisor = instr->right()->GetInteger32Constant();
1389 1390 1391 1392
  LInstruction* result = DefineAsRegister(new(zone()) LDivByPowerOf2I(
          dividend, divisor));
  if ((instr->CheckFlag(HValue::kBailoutOnMinusZero) && divisor < 0) ||
      (instr->CheckFlag(HValue::kCanOverflow) && divisor == -1) ||
1393
      (!instr->CheckFlag(HInstruction::kAllUsesTruncatingToInt32) &&
1394 1395 1396 1397
       divisor != 1 && divisor != -1)) {
    result = AssignEnvironment(result);
  }
  return result;
1398 1399 1400
}


1401
LInstruction* LChunkBuilder::DoDivByConstI(HDiv* instr) {
1402 1403 1404
  DCHECK(instr->representation().IsInteger32());
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
1405 1406
  LOperand* dividend = UseRegister(instr->left());
  int32_t divisor = instr->right()->GetInteger32Constant();
1407 1408 1409 1410 1411 1412 1413 1414 1415 1416
  LOperand* temp = instr->CheckFlag(HInstruction::kAllUsesTruncatingToInt32)
      ? NULL : TempRegister();
  LInstruction* result = DefineAsRegister(new(zone()) LDivByConstI(
          dividend, divisor, temp));
  if (divisor == 0 ||
      (instr->CheckFlag(HValue::kBailoutOnMinusZero) && divisor < 0) ||
      !instr->CheckFlag(HInstruction::kAllUsesTruncatingToInt32)) {
    result = AssignEnvironment(result);
  }
  return result;
1417 1418 1419
}


1420
LInstruction* LChunkBuilder::DoDivI(HBinaryOperation* instr) {
1421 1422 1423
  DCHECK(instr->representation().IsSmiOrInteger32());
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
1424 1425 1426 1427
  LOperand* dividend = UseRegister(instr->left());
  LOperand* divisor = UseRegister(instr->right());
  LOperand* temp = instr->CheckFlag(HInstruction::kAllUsesTruncatingToInt32)
      ? NULL : TempRegister();
1428 1429 1430 1431 1432 1433
  LInstruction* result =
      DefineAsRegister(new(zone()) LDivI(dividend, divisor, temp));
  if (!instr->CheckFlag(HValue::kAllUsesTruncatingToInt32)) {
    result = AssignEnvironment(result);
  }
  return result;
1434 1435 1436
}


1437
LInstruction* LChunkBuilder::DoDiv(HDiv* instr) {
1438
  if (instr->representation().IsSmiOrInteger32()) {
1439 1440 1441 1442 1443 1444 1445
    if (instr->RightIsPowerOf2()) {
      return DoDivByPowerOf2I(instr);
    } else if (instr->right()->IsConstant()) {
      return DoDivByConstI(instr);
    } else {
      return DoDivI(instr);
    }
1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460
  } else if (instr->representation().IsDouble()) {
    return DoArithmeticD(Token::DIV, instr);
  } else {
    return DoArithmeticT(Token::DIV, instr);
  }
}


LInstruction* LChunkBuilder::DoDummyUse(HDummyUse* instr) {
  return DefineAsRegister(new(zone()) LDummyUse(UseAny(instr->value())));
}


LInstruction* LChunkBuilder::DoEnterInlined(HEnterInlined* instr) {
  HEnvironment* outer = current_block_->last_environment();
1461
  outer->set_ast_id(instr->ReturnId());
1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472
  HConstant* undefined = graph()->GetConstantUndefined();
  HEnvironment* inner = outer->CopyForInlining(instr->closure(),
                                               instr->arguments_count(),
                                               instr->function(),
                                               undefined,
                                               instr->inlining_kind());
  // Only replay binding of arguments object if it wasn't removed from graph.
  if ((instr->arguments_var() != NULL) &&
      instr->arguments_object()->IsLinked()) {
    inner->Bind(instr->arguments_var(), instr->arguments_object());
  }
1473
  inner->BindContext(instr->closure_context());
1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504
  inner->set_entry(instr);
  current_block_->UpdateEnvironment(inner);
  chunk_->AddInlinedClosure(instr->closure());
  return NULL;
}


LInstruction* LChunkBuilder::DoEnvironmentMarker(HEnvironmentMarker* instr) {
  UNREACHABLE();
  return NULL;
}


LInstruction* LChunkBuilder::DoForceRepresentation(
    HForceRepresentation* instr) {
  // All HForceRepresentation instructions should be eliminated in the
  // representation change phase of Hydrogen.
  UNREACHABLE();
  return NULL;
}


LInstruction* LChunkBuilder::DoFunctionLiteral(HFunctionLiteral* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  return MarkAsCall(
      DefineFixed(new(zone()) LFunctionLiteral(context), x0), instr);
}


LInstruction* LChunkBuilder::DoGetCachedArrayIndex(
    HGetCachedArrayIndex* instr) {
1505
  DCHECK(instr->value()->representation().IsTagged());
1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517
  LOperand* value = UseRegisterAtStart(instr->value());
  return DefineAsRegister(new(zone()) LGetCachedArrayIndex(value));
}


LInstruction* LChunkBuilder::DoGoto(HGoto* instr) {
  return new(zone()) LGoto(instr->FirstSuccessor());
}


LInstruction* LChunkBuilder::DoHasCachedArrayIndexAndBranch(
    HHasCachedArrayIndexAndBranch* instr) {
1518
  DCHECK(instr->value()->representation().IsTagged());
1519 1520 1521 1522 1523 1524 1525
  return new(zone()) LHasCachedArrayIndexAndBranch(
      UseRegisterAtStart(instr->value()), TempRegister());
}


LInstruction* LChunkBuilder::DoHasInstanceTypeAndBranch(
    HHasInstanceTypeAndBranch* instr) {
1526
  DCHECK(instr->value()->representation().IsTagged());
1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559
  LOperand* value = UseRegisterAtStart(instr->value());
  return new(zone()) LHasInstanceTypeAndBranch(value, TempRegister());
}


LInstruction* LChunkBuilder::DoInnerAllocatedObject(
    HInnerAllocatedObject* instr) {
  LOperand* base_object = UseRegisterAtStart(instr->base_object());
  LOperand* offset = UseRegisterOrConstantAtStart(instr->offset());
  return DefineAsRegister(
      new(zone()) LInnerAllocatedObject(base_object, offset));
}


LInstruction* LChunkBuilder::DoInstanceOf(HInstanceOf* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  LInstanceOf* result = new(zone()) LInstanceOf(
      context,
      UseFixed(instr->left(), InstanceofStub::left()),
      UseFixed(instr->right(), InstanceofStub::right()));
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoInstanceOfKnownGlobal(
    HInstanceOfKnownGlobal* instr) {
  LInstanceOfKnownGlobal* result = new(zone()) LInstanceOfKnownGlobal(
      UseFixed(instr->context(), cp),
      UseFixed(instr->left(), InstanceofStub::left()));
  return MarkAsCall(DefineFixed(result, x0), instr);
}


1560 1561 1562 1563 1564 1565 1566
LInstruction* LChunkBuilder::DoTailCallThroughMegamorphicCache(
    HTailCallThroughMegamorphicCache* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  LOperand* receiver_register =
      UseFixed(instr->receiver(), LoadDescriptor::ReceiverRegister());
  LOperand* name_register =
      UseFixed(instr->name(), LoadDescriptor::NameRegister());
1567 1568 1569 1570 1571 1572 1573 1574
  LOperand* slot = NULL;
  LOperand* vector = NULL;
  if (FLAG_vector_ics) {
    slot = UseFixed(instr->slot(), VectorLoadICDescriptor::SlotRegister());
    vector =
        UseFixed(instr->vector(), VectorLoadICDescriptor::VectorRegister());
  }

1575 1576
  // Not marked as call. It can't deoptimize, and it never returns.
  return new (zone()) LTailCallThroughMegamorphicCache(
1577
      context, receiver_register, name_register, slot, vector);
1578 1579 1580
}


1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604
LInstruction* LChunkBuilder::DoInvokeFunction(HInvokeFunction* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  // The function is required (by MacroAssembler::InvokeFunction) to be in x1.
  LOperand* function = UseFixed(instr->function(), x1);
  LInvokeFunction* result = new(zone()) LInvokeFunction(context, function);
  return MarkAsCall(DefineFixed(result, x0), instr, CANNOT_DEOPTIMIZE_EAGERLY);
}


LInstruction* LChunkBuilder::DoIsConstructCallAndBranch(
    HIsConstructCallAndBranch* instr) {
  return new(zone()) LIsConstructCallAndBranch(TempRegister(), TempRegister());
}


LInstruction* LChunkBuilder::DoCompareMinusZeroAndBranch(
    HCompareMinusZeroAndBranch* instr) {
  LOperand* value = UseRegister(instr->value());
  LOperand* scratch = TempRegister();
  return new(zone()) LCompareMinusZeroAndBranch(value, scratch);
}


LInstruction* LChunkBuilder::DoIsObjectAndBranch(HIsObjectAndBranch* instr) {
1605
  DCHECK(instr->value()->representation().IsTagged());
1606 1607 1608 1609 1610 1611 1612 1613
  LOperand* value = UseRegisterAtStart(instr->value());
  LOperand* temp1 = TempRegister();
  LOperand* temp2 = TempRegister();
  return new(zone()) LIsObjectAndBranch(value, temp1, temp2);
}


LInstruction* LChunkBuilder::DoIsStringAndBranch(HIsStringAndBranch* instr) {
1614
  DCHECK(instr->value()->representation().IsTagged());
1615 1616 1617 1618 1619 1620 1621
  LOperand* value = UseRegisterAtStart(instr->value());
  LOperand* temp = TempRegister();
  return new(zone()) LIsStringAndBranch(value, temp);
}


LInstruction* LChunkBuilder::DoIsSmiAndBranch(HIsSmiAndBranch* instr) {
1622
  DCHECK(instr->value()->representation().IsTagged());
1623 1624 1625 1626 1627 1628
  return new(zone()) LIsSmiAndBranch(UseRegisterAtStart(instr->value()));
}


LInstruction* LChunkBuilder::DoIsUndetectableAndBranch(
    HIsUndetectableAndBranch* instr) {
1629
  DCHECK(instr->value()->representation().IsTagged());
1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641
  LOperand* value = UseRegisterAtStart(instr->value());
  return new(zone()) LIsUndetectableAndBranch(value, TempRegister());
}


LInstruction* LChunkBuilder::DoLeaveInlined(HLeaveInlined* instr) {
  LInstruction* pop = NULL;
  HEnvironment* env = current_block_->last_environment();

  if (env->entry()->arguments_pushed()) {
    int argument_count = env->arguments_environment()->parameter_count();
    pop = new(zone()) LDrop(argument_count);
1642
    DCHECK(instr->argument_delta() == -argument_count);
1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656
  }

  HEnvironment* outer =
      current_block_->last_environment()->DiscardInlined(false);
  current_block_->UpdateEnvironment(outer);

  return pop;
}


LInstruction* LChunkBuilder::DoLoadContextSlot(HLoadContextSlot* instr) {
  LOperand* context = UseRegisterAtStart(instr->value());
  LInstruction* result =
      DefineAsRegister(new(zone()) LLoadContextSlot(context));
1657 1658 1659 1660
  if (instr->RequiresHoleCheck() && instr->DeoptimizesOnHole()) {
    result = AssignEnvironment(result);
  }
  return result;
1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682
}


LInstruction* LChunkBuilder::DoLoadFunctionPrototype(
    HLoadFunctionPrototype* instr) {
  LOperand* function = UseRegister(instr->function());
  LOperand* temp = TempRegister();
  return AssignEnvironment(DefineAsRegister(
      new(zone()) LLoadFunctionPrototype(function, temp)));
}


LInstruction* LChunkBuilder::DoLoadGlobalCell(HLoadGlobalCell* instr) {
  LLoadGlobalCell* result = new(zone()) LLoadGlobalCell();
  return instr->RequiresHoleCheck()
      ? AssignEnvironment(DefineAsRegister(result))
      : DefineAsRegister(result);
}


LInstruction* LChunkBuilder::DoLoadGlobalGeneric(HLoadGlobalGeneric* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
1683
  LOperand* global_object =
1684
      UseFixed(instr->global_object(), LoadDescriptor::ReceiverRegister());
1685
  LOperand* vector = NULL;
1686
  if (instr->HasVectorAndSlot()) {
1687
    vector = FixedTemp(VectorLoadICDescriptor::VectorRegister());
1688 1689
  }

1690
  LLoadGlobalGeneric* result =
1691
      new(zone()) LLoadGlobalGeneric(context, global_object, vector);
1692 1693 1694 1695 1696
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoLoadKeyed(HLoadKeyed* instr) {
1697
  DCHECK(instr->key()->representation().IsSmiOrInteger32());
1698 1699
  ElementsKind elements_kind = instr->elements_kind();
  LOperand* elements = UseRegister(instr->elements());
1700
  LOperand* key = UseRegisterOrConstant(instr->key());
1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714

  if (!instr->is_typed_elements()) {
    if (instr->representation().IsDouble()) {
      LOperand* temp = (!instr->key()->IsConstant() ||
                        instr->RequiresHoleCheck())
             ? TempRegister()
             : NULL;

      LLoadKeyedFixedDouble* result =
          new(zone()) LLoadKeyedFixedDouble(elements, key, temp);
      return instr->RequiresHoleCheck()
          ? AssignEnvironment(DefineAsRegister(result))
          : DefineAsRegister(result);
    } else {
1715
      DCHECK(instr->representation().IsSmiOrTagged() ||
1716 1717 1718 1719 1720 1721 1722 1723 1724
             instr->representation().IsInteger32());
      LOperand* temp = instr->key()->IsConstant() ? NULL : TempRegister();
      LLoadKeyedFixed* result =
          new(zone()) LLoadKeyedFixed(elements, key, temp);
      return instr->RequiresHoleCheck()
          ? AssignEnvironment(DefineAsRegister(result))
          : DefineAsRegister(result);
    }
  } else {
1725
    DCHECK((instr->representation().IsInteger32() &&
1726 1727 1728 1729 1730
            !IsDoubleOrFloatElementsKind(instr->elements_kind())) ||
           (instr->representation().IsDouble() &&
            IsDoubleOrFloatElementsKind(instr->elements_kind())));

    LOperand* temp = instr->key()->IsConstant() ? NULL : TempRegister();
1731 1732 1733 1734 1735 1736
    LInstruction* result = DefineAsRegister(
        new(zone()) LLoadKeyedExternal(elements, key, temp));
    if ((elements_kind == EXTERNAL_UINT32_ELEMENTS ||
         elements_kind == UINT32_ELEMENTS) &&
        !instr->CheckFlag(HInstruction::kUint32)) {
      result = AssignEnvironment(result);
1737
    }
1738
    return result;
1739 1740 1741 1742 1743 1744
  }
}


LInstruction* LChunkBuilder::DoLoadKeyedGeneric(HLoadKeyedGeneric* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
1745
  LOperand* object =
1746 1747
      UseFixed(instr->object(), LoadDescriptor::ReceiverRegister());
  LOperand* key = UseFixed(instr->key(), LoadDescriptor::NameRegister());
1748
  LOperand* vector = NULL;
1749
  if (instr->HasVectorAndSlot()) {
1750
    vector = FixedTemp(VectorLoadICDescriptor::VectorRegister());
1751
  }
1752 1753

  LInstruction* result =
1754 1755
      DefineFixed(new(zone()) LLoadKeyedGeneric(context, object, key, vector),
                  x0);
1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767
  return MarkAsCall(result, instr);
}


LInstruction* LChunkBuilder::DoLoadNamedField(HLoadNamedField* instr) {
  LOperand* object = UseRegisterAtStart(instr->object());
  return DefineAsRegister(new(zone()) LLoadNamedField(object));
}


LInstruction* LChunkBuilder::DoLoadNamedGeneric(HLoadNamedGeneric* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
1768
  LOperand* object =
1769
      UseFixed(instr->object(), LoadDescriptor::ReceiverRegister());
1770
  LOperand* vector = NULL;
1771
  if (instr->HasVectorAndSlot()) {
1772
    vector = FixedTemp(VectorLoadICDescriptor::VectorRegister());
1773 1774
  }

1775
  LInstruction* result =
1776
      DefineFixed(new(zone()) LLoadNamedGeneric(context, object, vector), x0);
1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791
  return MarkAsCall(result, instr);
}


LInstruction* LChunkBuilder::DoLoadRoot(HLoadRoot* instr) {
  return DefineAsRegister(new(zone()) LLoadRoot);
}


LInstruction* LChunkBuilder::DoMapEnumLength(HMapEnumLength* instr) {
  LOperand* map = UseRegisterAtStart(instr->value());
  return DefineAsRegister(new(zone()) LMapEnumLength(map));
}


1792
LInstruction* LChunkBuilder::DoFlooringDivByPowerOf2I(HMathFloorOfDiv* instr) {
1793 1794 1795
  DCHECK(instr->representation().IsInteger32());
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
1796 1797
  LOperand* dividend = UseRegisterAtStart(instr->left());
  int32_t divisor = instr->right()->GetInteger32Constant();
1798 1799 1800 1801 1802 1803 1804
  LInstruction* result = DefineAsRegister(new(zone()) LFlooringDivByPowerOf2I(
          dividend, divisor));
  if ((instr->CheckFlag(HValue::kBailoutOnMinusZero) && divisor < 0) ||
      (instr->CheckFlag(HValue::kLeftCanBeMinInt) && divisor == -1)) {
    result = AssignEnvironment(result);
  }
  return result;
1805 1806 1807
}


1808
LInstruction* LChunkBuilder::DoFlooringDivByConstI(HMathFloorOfDiv* instr) {
1809 1810 1811
  DCHECK(instr->representation().IsInteger32());
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
1812 1813
  LOperand* dividend = UseRegister(instr->left());
  int32_t divisor = instr->right()->GetInteger32Constant();
1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824
  LOperand* temp =
      ((divisor > 0 && !instr->CheckFlag(HValue::kLeftCanBeNegative)) ||
       (divisor < 0 && !instr->CheckFlag(HValue::kLeftCanBePositive))) ?
      NULL : TempRegister();
  LInstruction* result = DefineAsRegister(
      new(zone()) LFlooringDivByConstI(dividend, divisor, temp));
  if (divisor == 0 ||
      (instr->CheckFlag(HValue::kBailoutOnMinusZero) && divisor < 0)) {
    result = AssignEnvironment(result);
  }
  return result;
1825 1826 1827
}


1828
LInstruction* LChunkBuilder::DoFlooringDivI(HMathFloorOfDiv* instr) {
1829
  LOperand* dividend = UseRegister(instr->left());
1830
  LOperand* divisor = UseRegister(instr->right());
1831
  LOperand* remainder = TempRegister();
1832 1833 1834 1835 1836 1837 1838 1839 1840
  LInstruction* result =
      DefineAsRegister(new(zone()) LFlooringDivI(dividend, divisor, remainder));
  return AssignEnvironment(result);
}


LInstruction* LChunkBuilder::DoMathFloorOfDiv(HMathFloorOfDiv* instr) {
  if (instr->RightIsPowerOf2()) {
    return DoFlooringDivByPowerOf2I(instr);
1841 1842
  } else if (instr->right()->IsConstant()) {
    return DoFlooringDivByConstI(instr);
1843 1844 1845
  } else {
    return DoFlooringDivI(instr);
  }
1846 1847 1848 1849 1850 1851 1852
}


LInstruction* LChunkBuilder::DoMathMinMax(HMathMinMax* instr) {
  LOperand* left = NULL;
  LOperand* right = NULL;
  if (instr->representation().IsSmiOrInteger32()) {
1853 1854
    DCHECK(instr->left()->representation().Equals(instr->representation()));
    DCHECK(instr->right()->representation().Equals(instr->representation()));
1855 1856 1857
    left = UseRegisterAtStart(instr->BetterLeftOperand());
    right = UseRegisterOrConstantAtStart(instr->BetterRightOperand());
  } else {
1858 1859 1860
    DCHECK(instr->representation().IsDouble());
    DCHECK(instr->left()->representation().IsDouble());
    DCHECK(instr->right()->representation().IsDouble());
1861 1862 1863 1864 1865 1866 1867
    left = UseRegisterAtStart(instr->left());
    right = UseRegisterAtStart(instr->right());
  }
  return DefineAsRegister(new(zone()) LMathMinMax(left, right));
}


1868
LInstruction* LChunkBuilder::DoModByPowerOf2I(HMod* instr) {
1869 1870 1871
  DCHECK(instr->representation().IsInteger32());
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
1872 1873
  LOperand* dividend = UseRegisterAtStart(instr->left());
  int32_t divisor = instr->right()->GetInteger32Constant();
1874 1875
  LInstruction* result = DefineSameAsFirst(new(zone()) LModByPowerOf2I(
          dividend, divisor));
1876 1877
  if (instr->CheckFlag(HValue::kLeftCanBeNegative) &&
      instr->CheckFlag(HValue::kBailoutOnMinusZero)) {
1878 1879 1880
    result = AssignEnvironment(result);
  }
  return result;
1881
}
1882 1883


1884
LInstruction* LChunkBuilder::DoModByConstI(HMod* instr) {
1885 1886 1887
  DCHECK(instr->representation().IsInteger32());
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
1888 1889 1890
  LOperand* dividend = UseRegister(instr->left());
  int32_t divisor = instr->right()->GetInteger32Constant();
  LOperand* temp = TempRegister();
1891 1892 1893 1894 1895 1896
  LInstruction* result = DefineAsRegister(new(zone()) LModByConstI(
          dividend, divisor, temp));
  if (divisor == 0 || instr->CheckFlag(HValue::kBailoutOnMinusZero)) {
    result = AssignEnvironment(result);
  }
  return result;
1897 1898 1899
}


1900
LInstruction* LChunkBuilder::DoModI(HMod* instr) {
1901 1902 1903
  DCHECK(instr->representation().IsSmiOrInteger32());
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
1904 1905
  LOperand* dividend = UseRegister(instr->left());
  LOperand* divisor = UseRegister(instr->right());
1906 1907 1908 1909 1910 1911
  LInstruction* result = DefineAsRegister(new(zone()) LModI(dividend, divisor));
  if (instr->CheckFlag(HValue::kCanBeDivByZero) ||
      instr->CheckFlag(HValue::kBailoutOnMinusZero)) {
    result = AssignEnvironment(result);
  }
  return result;
1912
}
1913 1914


1915 1916
LInstruction* LChunkBuilder::DoMod(HMod* instr) {
  if (instr->representation().IsSmiOrInteger32()) {
1917 1918 1919 1920 1921 1922 1923
    if (instr->RightIsPowerOf2()) {
      return DoModByPowerOf2I(instr);
    } else if (instr->right()->IsConstant()) {
      return DoModByConstI(instr);
    } else {
      return DoModI(instr);
    }
1924 1925
  } else if (instr->representation().IsDouble()) {
    return DoArithmeticD(Token::MOD, instr);
1926
  } else {
1927
    return DoArithmeticT(Token::MOD, instr);
1928 1929 1930 1931 1932 1933
  }
}


LInstruction* LChunkBuilder::DoMul(HMul* instr) {
  if (instr->representation().IsSmiOrInteger32()) {
1934 1935
    DCHECK(instr->left()->representation().Equals(instr->representation()));
    DCHECK(instr->right()->representation().Equals(instr->representation()));
1936 1937 1938 1939 1940 1941 1942 1943 1944 1945

    bool can_overflow = instr->CheckFlag(HValue::kCanOverflow);
    bool bailout_on_minus_zero = instr->CheckFlag(HValue::kBailoutOnMinusZero);

    HValue* least_const = instr->BetterLeftOperand();
    HValue* most_const = instr->BetterRightOperand();

    // LMulConstI can handle a subset of constants:
    //  With support for overflow detection:
    //    -1, 0, 1, 2
1946
    //    2^n, -(2^n)
1947
    //  Without support for overflow detection:
1948 1949 1950
    //    2^n + 1, -(2^n - 1)
    if (most_const->IsConstant()) {
      int32_t constant = HConstant::cast(most_const)->Integer32Value();
1951 1952 1953 1954 1955
      bool small_constant = (constant >= -1) && (constant <= 2);
      bool end_range_constant = (constant <= -kMaxInt) || (constant == kMaxInt);
      int32_t constant_abs = Abs(constant);

      if (!end_range_constant &&
1956 1957 1958
          (small_constant || (base::bits::IsPowerOfTwo32(constant_abs)) ||
           (!can_overflow && (base::bits::IsPowerOfTwo32(constant_abs + 1) ||
                              base::bits::IsPowerOfTwo32(constant_abs - 1))))) {
1959
        LConstantOperand* right = UseConstant(most_const);
1960 1961
        bool need_register =
            base::bits::IsPowerOfTwo32(constant_abs) && !small_constant;
1962 1963 1964 1965 1966 1967 1968 1969
        LOperand* left = need_register ? UseRegister(least_const)
                                       : UseRegisterAtStart(least_const);
        LInstruction* result =
            DefineAsRegister(new(zone()) LMulConstIS(left, right));
        if ((bailout_on_minus_zero && constant <= 0) || can_overflow) {
          result = AssignEnvironment(result);
        }
        return result;
1970 1971 1972 1973 1974
      }
    }

    // LMulI/S can handle all cases, but it requires that a register is
    // allocated for the second operand.
1975 1976 1977 1978 1979 1980 1981
    LOperand* left = UseRegisterAtStart(least_const);
    LOperand* right = UseRegisterAtStart(most_const);
    LInstruction* result = instr->representation().IsSmi()
        ? DefineAsRegister(new(zone()) LMulS(left, right))
        : DefineAsRegister(new(zone()) LMulI(left, right));
    if ((bailout_on_minus_zero && least_const != most_const) || can_overflow) {
      result = AssignEnvironment(result);
1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992
    }
    return result;
  } else if (instr->representation().IsDouble()) {
    return DoArithmeticD(Token::MUL, instr);
  } else {
    return DoArithmeticT(Token::MUL, instr);
  }
}


LInstruction* LChunkBuilder::DoOsrEntry(HOsrEntry* instr) {
1993
  DCHECK(argument_count_ == 0);
1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005
  allocator_->MarkAsOsrEntry();
  current_block_->last_environment()->set_ast_id(instr->ast_id());
  return AssignEnvironment(new(zone()) LOsrEntry);
}


LInstruction* LChunkBuilder::DoParameter(HParameter* instr) {
  LParameter* result = new(zone()) LParameter;
  if (instr->kind() == HParameter::STACK_PARAMETER) {
    int spill_index = chunk_->GetParameterStackSlot(instr->index());
    return DefineAsSpilled(result, spill_index);
  } else {
2006
    DCHECK(info()->IsStub());
2007 2008
    CallInterfaceDescriptor descriptor =
        info()->code_stub()->GetCallInterfaceDescriptor();
2009
    int index = static_cast<int>(instr->index());
2010
    Register reg = descriptor.GetEnvironmentParameterRegister(index);
2011 2012 2013 2014 2015 2016
    return DefineFixed(result, reg);
  }
}


LInstruction* LChunkBuilder::DoPower(HPower* instr) {
2017
  DCHECK(instr->representation().IsDouble());
2018 2019 2020
  // We call a C function for double power. It can't trigger a GC.
  // We need to use fixed result register for the call.
  Representation exponent_type = instr->right()->representation();
2021
  DCHECK(instr->left()->representation().IsDouble());
2022
  LOperand* left = UseFixedDouble(instr->left(), d0);
2023 2024 2025 2026 2027 2028 2029 2030
  LOperand* right;
  if (exponent_type.IsInteger32()) {
    right = UseFixed(instr->right(), MathPowIntegerDescriptor::exponent());
  } else if (exponent_type.IsDouble()) {
    right = UseFixedDouble(instr->right(), d1);
  } else {
    right = UseFixed(instr->right(), MathPowTaggedDescriptor::exponent());
  }
2031 2032 2033 2034 2035 2036 2037
  LPower* result = new(zone()) LPower(left, right);
  return MarkAsCall(DefineFixedDouble(result, d0),
                    instr,
                    CAN_DEOPTIMIZE_EAGERLY);
}


2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052
LInstruction* LChunkBuilder::DoPushArguments(HPushArguments* instr) {
  int argc = instr->OperandCount();
  AddInstruction(new(zone()) LPreparePushArguments(argc), instr);

  LPushArguments* push_args = new(zone()) LPushArguments(zone());

  for (int i = 0; i < argc; ++i) {
    if (push_args->ShouldSplitPush()) {
      AddInstruction(push_args, instr);
      push_args = new(zone()) LPushArguments(zone());
    }
    push_args->AddArgument(UseRegister(instr->argument(i)));
  }

  return push_args;
2053 2054 2055 2056 2057 2058 2059 2060 2061 2062
}


LInstruction* LChunkBuilder::DoRegExpLiteral(HRegExpLiteral* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  return MarkAsCall(
      DefineFixed(new(zone()) LRegExpLiteral(context), x0), instr);
}


2063 2064
LInstruction* LChunkBuilder::DoDoubleBits(HDoubleBits* instr) {
  HValue* value = instr->value();
2065
  DCHECK(value->representation().IsDouble());
2066 2067 2068 2069 2070
  return DefineAsRegister(new(zone()) LDoubleBits(UseRegister(value)));
}


LInstruction* LChunkBuilder::DoConstructDouble(HConstructDouble* instr) {
2071
  LOperand* lo = UseRegisterAndClobber(instr->lo());
2072
  LOperand* hi = UseRegister(instr->hi());
2073
  return DefineAsRegister(new(zone()) LConstructDouble(hi, lo));
2074 2075 2076
}


2077 2078 2079 2080 2081 2082 2083 2084 2085 2086 2087
LInstruction* LChunkBuilder::DoReturn(HReturn* instr) {
  LOperand* context = info()->IsStub()
      ? UseFixed(instr->context(), cp)
      : NULL;
  LOperand* parameter_count = UseRegisterOrConstant(instr->parameter_count());
  return new(zone()) LReturn(UseFixed(instr->value(), x0), context,
                             parameter_count);
}


LInstruction* LChunkBuilder::DoSeqStringGetChar(HSeqStringGetChar* instr) {
2088 2089
  LOperand* string = UseRegisterAtStart(instr->string());
  LOperand* index = UseRegisterOrConstantAtStart(instr->index());
2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109 2110
  LOperand* temp = TempRegister();
  LSeqStringGetChar* result =
      new(zone()) LSeqStringGetChar(string, index, temp);
  return DefineAsRegister(result);
}


LInstruction* LChunkBuilder::DoSeqStringSetChar(HSeqStringSetChar* instr) {
  LOperand* string = UseRegister(instr->string());
  LOperand* index = FLAG_debug_code
      ? UseRegister(instr->index())
      : UseRegisterOrConstant(instr->index());
  LOperand* value = UseRegister(instr->value());
  LOperand* context = FLAG_debug_code ? UseFixed(instr->context(), cp) : NULL;
  LOperand* temp = TempRegister();
  LSeqStringSetChar* result =
      new(zone()) LSeqStringSetChar(context, string, index, value, temp);
  return DefineAsRegister(result);
}


2111 2112 2113 2114 2115 2116 2117 2118
HBitwiseBinaryOperation* LChunkBuilder::CanTransformToShiftedOp(HValue* val,
                                                                HValue** left) {
  if (!val->representation().IsInteger32()) return NULL;
  if (!(val->IsBitwise() || val->IsAdd() || val->IsSub())) return NULL;

  HBinaryOperation* hinstr = HBinaryOperation::cast(val);
  HValue* hleft = hinstr->left();
  HValue* hright = hinstr->right();
2119 2120
  DCHECK(hleft->representation().Equals(hinstr->representation()));
  DCHECK(hright->representation().Equals(hinstr->representation()));
2121 2122 2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191

  if ((hright->IsConstant() &&
       LikelyFitsImmField(hinstr, HConstant::cast(hright)->Integer32Value())) ||
      (hinstr->IsCommutative() && hleft->IsConstant() &&
       LikelyFitsImmField(hinstr, HConstant::cast(hleft)->Integer32Value()))) {
    // The constant operand will likely fit in the immediate field. We are
    // better off with
    //     lsl x8, x9, #imm
    //     add x0, x8, #imm2
    // than with
    //     mov x16, #imm2
    //     add x0, x16, x9 LSL #imm
    return NULL;
  }

  HBitwiseBinaryOperation* shift = NULL;
  // TODO(aleram): We will miss situations where a shift operation is used by
  // different instructions both as a left and right operands.
  if (hright->IsBitwiseBinaryShift() &&
      HBitwiseBinaryOperation::cast(hright)->right()->IsConstant()) {
    shift = HBitwiseBinaryOperation::cast(hright);
    if (left != NULL) {
      *left = hleft;
    }
  } else if (hinstr->IsCommutative() &&
             hleft->IsBitwiseBinaryShift() &&
             HBitwiseBinaryOperation::cast(hleft)->right()->IsConstant()) {
    shift = HBitwiseBinaryOperation::cast(hleft);
    if (left != NULL) {
      *left = hright;
    }
  } else {
    return NULL;
  }

  if ((JSShiftAmountFromHConstant(shift->right()) == 0) && shift->IsShr()) {
    // Shifts right by zero can deoptimize.
    return NULL;
  }

  return shift;
}


bool LChunkBuilder::ShiftCanBeOptimizedAway(HBitwiseBinaryOperation* shift) {
  if (!shift->representation().IsInteger32()) {
    return false;
  }
  for (HUseIterator it(shift->uses()); !it.Done(); it.Advance()) {
    if (shift != CanTransformToShiftedOp(it.value())) {
      return false;
    }
  }
  return true;
}


LInstruction* LChunkBuilder::TryDoOpWithShiftedRightOperand(
    HBinaryOperation* instr) {
  HValue* left;
  HBitwiseBinaryOperation* shift = CanTransformToShiftedOp(instr, &left);

  if ((shift != NULL) && ShiftCanBeOptimizedAway(shift)) {
    return DoShiftedBinaryOp(instr, left, shift);
  }
  return NULL;
}


LInstruction* LChunkBuilder::DoShiftedBinaryOp(
    HBinaryOperation* hinstr, HValue* hleft, HBitwiseBinaryOperation* hshift) {
2192 2193
  DCHECK(hshift->IsBitwiseBinaryShift());
  DCHECK(!hshift->IsShr() || (JSShiftAmountFromHConstant(hshift->right()) > 0));
2194 2195 2196 2197 2198 2199 2200 2201 2202 2203 2204 2205 2206 2207 2208 2209 2210 2211

  LTemplateResultInstruction<1>* res;
  LOperand* left = UseRegisterAtStart(hleft);
  LOperand* right = UseRegisterAtStart(hshift->left());
  LOperand* shift_amount = UseConstant(hshift->right());
  Shift shift_op;
  switch (hshift->opcode()) {
    case HValue::kShl: shift_op = LSL; break;
    case HValue::kShr: shift_op = LSR; break;
    case HValue::kSar: shift_op = ASR; break;
    default: UNREACHABLE(); shift_op = NO_SHIFT;
  }

  if (hinstr->IsBitwise()) {
    res = new(zone()) LBitI(left, right, shift_op, shift_amount);
  } else if (hinstr->IsAdd()) {
    res = new(zone()) LAddI(left, right, shift_op, shift_amount);
  } else {
2212
    DCHECK(hinstr->IsSub());
2213 2214 2215 2216 2217 2218 2219 2220 2221
    res = new(zone()) LSubI(left, right, shift_op, shift_amount);
  }
  if (hinstr->CheckFlag(HValue::kCanOverflow)) {
    AssignEnvironment(res);
  }
  return DefineAsRegister(res);
}


2222 2223 2224 2225 2226 2227
LInstruction* LChunkBuilder::DoShift(Token::Value op,
                                     HBitwiseBinaryOperation* instr) {
  if (instr->representation().IsTagged()) {
    return DoArithmeticT(op, instr);
  }

2228
  DCHECK(instr->representation().IsSmiOrInteger32());
2229 2230
  DCHECK(instr->left()->representation().Equals(instr->representation()));
  DCHECK(instr->right()->representation().Equals(instr->representation()));
2231

2232 2233 2234 2235
  if (ShiftCanBeOptimizedAway(instr)) {
    return NULL;
  }

2236 2237 2238
  LOperand* left = instr->representation().IsSmi()
      ? UseRegister(instr->left())
      : UseRegisterAtStart(instr->left());
2239 2240 2241 2242 2243 2244 2245 2246
  LOperand* right = UseRegisterOrConstantAtStart(instr->right());

  // The only shift that can deoptimize is `left >>> 0`, where left is negative.
  // In these cases, the result is a uint32 that is too large for an int32.
  bool right_can_be_zero = !instr->right()->IsConstant() ||
                           (JSShiftAmountFromHConstant(instr->right()) == 0);
  bool can_deopt = false;
  if ((op == Token::SHR) && right_can_be_zero) {
2247
    can_deopt = !instr->CheckFlag(HInstruction::kUint32);
2248 2249 2250 2251
  }

  LInstruction* result;
  if (instr->representation().IsInteger32()) {
2252
    result = DefineAsRegister(new (zone()) LShiftI(op, left, right, can_deopt));
2253
  } else {
2254
    DCHECK(instr->representation().IsSmi());
2255
    result = DefineAsRegister(new (zone()) LShiftS(op, left, right, can_deopt));
2256 2257
  }

2258
  return can_deopt ? AssignEnvironment(result) : result;
2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278 2279 2280 2281 2282 2283 2284 2285 2286 2287 2288 2289 2290 2291 2292
}


LInstruction* LChunkBuilder::DoRor(HRor* instr) {
  return DoShift(Token::ROR, instr);
}


LInstruction* LChunkBuilder::DoSar(HSar* instr) {
  return DoShift(Token::SAR, instr);
}


LInstruction* LChunkBuilder::DoShl(HShl* instr) {
  return DoShift(Token::SHL, instr);
}


LInstruction* LChunkBuilder::DoShr(HShr* instr) {
  return DoShift(Token::SHR, instr);
}


LInstruction* LChunkBuilder::DoSimulate(HSimulate* instr) {
  instr->ReplayEnvironment(current_block_->last_environment());
  return NULL;
}


LInstruction* LChunkBuilder::DoStackCheck(HStackCheck* instr) {
  if (instr->is_function_entry()) {
    LOperand* context = UseFixed(instr->context(), cp);
    return MarkAsCall(new(zone()) LStackCheck(context), instr);
  } else {
2293
    DCHECK(instr->is_backwards_branch());
2294 2295 2296 2297 2298 2299 2300 2301 2302 2303 2304 2305 2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321 2322
    LOperand* context = UseAny(instr->context());
    return AssignEnvironment(
        AssignPointerMap(new(zone()) LStackCheck(context)));
  }
}


LInstruction* LChunkBuilder::DoStoreCodeEntry(HStoreCodeEntry* instr) {
  LOperand* function = UseRegister(instr->function());
  LOperand* code_object = UseRegisterAtStart(instr->code_object());
  LOperand* temp = TempRegister();
  return new(zone()) LStoreCodeEntry(function, code_object, temp);
}


LInstruction* LChunkBuilder::DoStoreContextSlot(HStoreContextSlot* instr) {
  LOperand* temp = TempRegister();
  LOperand* context;
  LOperand* value;
  if (instr->NeedsWriteBarrier()) {
    // TODO(all): Replace these constraints when RecordWriteStub has been
    // rewritten.
    context = UseRegisterAndClobber(instr->context());
    value = UseRegisterAndClobber(instr->value());
  } else {
    context = UseRegister(instr->context());
    value = UseRegister(instr->value());
  }
  LInstruction* result = new(zone()) LStoreContextSlot(context, value, temp);
2323 2324 2325 2326
  if (instr->RequiresHoleCheck() && instr->DeoptimizesOnHole()) {
    result = AssignEnvironment(result);
  }
  return result;
2327 2328 2329 2330 2331 2332 2333 2334 2335 2336 2337 2338 2339 2340 2341 2342
}


LInstruction* LChunkBuilder::DoStoreGlobalCell(HStoreGlobalCell* instr) {
  LOperand* value = UseRegister(instr->value());
  if (instr->RequiresHoleCheck()) {
    return AssignEnvironment(new(zone()) LStoreGlobalCell(value,
                                                          TempRegister(),
                                                          TempRegister()));
  } else {
    return new(zone()) LStoreGlobalCell(value, TempRegister(), NULL);
  }
}


LInstruction* LChunkBuilder::DoStoreKeyed(HStoreKeyed* instr) {
2343
  LOperand* key = UseRegisterOrConstant(instr->key());
2344 2345 2346 2347 2348 2349 2350 2351 2352 2353
  LOperand* temp = NULL;
  LOperand* elements = NULL;
  LOperand* val = NULL;

  if (!instr->is_typed_elements() &&
      instr->value()->representation().IsTagged() &&
      instr->NeedsWriteBarrier()) {
    // RecordWrite() will clobber all registers.
    elements = UseRegisterAndClobber(instr->elements());
    val = UseRegisterAndClobber(instr->value());
2354
    temp = TempRegister();
2355 2356 2357
  } else {
    elements = UseRegister(instr->elements());
    val = UseRegister(instr->value());
2358
    temp = instr->key()->IsConstant() ? NULL : TempRegister();
2359 2360 2361
  }

  if (instr->is_typed_elements()) {
2362
    DCHECK((instr->value()->representation().IsInteger32() &&
2363 2364 2365
            !IsDoubleOrFloatElementsKind(instr->elements_kind())) ||
           (instr->value()->representation().IsDouble() &&
            IsDoubleOrFloatElementsKind(instr->elements_kind())));
2366
    DCHECK((instr->is_fixed_typed_array() &&
2367 2368 2369 2370 2371 2372
            instr->elements()->representation().IsTagged()) ||
           (instr->is_external() &&
            instr->elements()->representation().IsExternal()));
    return new(zone()) LStoreKeyedExternal(elements, key, val, temp);

  } else if (instr->value()->representation().IsDouble()) {
2373
    DCHECK(instr->elements()->representation().IsTagged());
2374 2375 2376
    return new(zone()) LStoreKeyedFixedDouble(elements, key, val, temp);

  } else {
2377 2378
    DCHECK(instr->elements()->representation().IsTagged());
    DCHECK(instr->value()->representation().IsSmiOrTagged() ||
2379 2380 2381 2382 2383 2384 2385 2386
           instr->value()->representation().IsInteger32());
    return new(zone()) LStoreKeyedFixed(elements, key, val, temp);
  }
}


LInstruction* LChunkBuilder::DoStoreKeyedGeneric(HStoreKeyedGeneric* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
2387
  LOperand* object =
2388 2389 2390
      UseFixed(instr->object(), StoreDescriptor::ReceiverRegister());
  LOperand* key = UseFixed(instr->key(), StoreDescriptor::NameRegister());
  LOperand* value = UseFixed(instr->value(), StoreDescriptor::ValueRegister());
2391

2392 2393 2394
  DCHECK(instr->object()->representation().IsTagged());
  DCHECK(instr->key()->representation().IsTagged());
  DCHECK(instr->value()->representation().IsTagged());
2395 2396 2397 2398 2399 2400 2401 2402 2403 2404 2405

  return MarkAsCall(
      new(zone()) LStoreKeyedGeneric(context, object, key, value), instr);
}


LInstruction* LChunkBuilder::DoStoreNamedField(HStoreNamedField* instr) {
  // TODO(jbramley): It might be beneficial to allow value to be a constant in
  // some cases. x64 makes use of this with FLAG_track_fields, for example.

  LOperand* object = UseRegister(instr->object());
2406 2407 2408 2409 2410
  LOperand* value;
  LOperand* temp0 = NULL;
  LOperand* temp1 = NULL;

  if (instr->access().IsExternalMemory() ||
2411
      (!FLAG_unbox_double_fields && instr->field_representation().IsDouble())) {
2412 2413 2414 2415 2416
    value = UseRegister(instr->value());
  } else if (instr->NeedsWriteBarrier()) {
    value = UseRegisterAndClobber(instr->value());
    temp0 = TempRegister();
    temp1 = TempRegister();
2417 2418 2419 2420
  } else if (instr->NeedsWriteBarrierForMap()) {
    value = UseRegister(instr->value());
    temp0 = TempRegister();
    temp1 = TempRegister();
2421 2422 2423 2424
  } else {
    value = UseRegister(instr->value());
    temp0 = TempRegister();
  }
2425

2426
  return new(zone()) LStoreNamedField(object, value, temp0, temp1);
2427 2428 2429 2430 2431
}


LInstruction* LChunkBuilder::DoStoreNamedGeneric(HStoreNamedGeneric* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
2432
  LOperand* object =
2433 2434
      UseFixed(instr->object(), StoreDescriptor::ReceiverRegister());
  LOperand* value = UseFixed(instr->value(), StoreDescriptor::ValueRegister());
2435

2436 2437 2438 2439 2440 2441 2442 2443 2444 2445 2446 2447 2448 2449 2450 2451 2452 2453 2454 2455 2456
  LInstruction* result = new(zone()) LStoreNamedGeneric(context, object, value);
  return MarkAsCall(result, instr);
}


LInstruction* LChunkBuilder::DoStringAdd(HStringAdd* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  LOperand* left = UseFixed(instr->left(), x1);
  LOperand* right = UseFixed(instr->right(), x0);

  LStringAdd* result = new(zone()) LStringAdd(context, left, right);
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoStringCharCodeAt(HStringCharCodeAt* instr) {
  LOperand* string = UseRegisterAndClobber(instr->string());
  LOperand* index = UseRegisterAndClobber(instr->index());
  LOperand* context = UseAny(instr->context());
  LStringCharCodeAt* result =
      new(zone()) LStringCharCodeAt(context, string, index);
2457
  return AssignPointerMap(DefineAsRegister(result));
2458 2459 2460 2461 2462 2463 2464 2465 2466 2467 2468 2469 2470 2471
}


LInstruction* LChunkBuilder::DoStringCharFromCode(HStringCharFromCode* instr) {
  LOperand* char_code = UseRegister(instr->value());
  LOperand* context = UseAny(instr->context());
  LStringCharFromCode* result =
      new(zone()) LStringCharFromCode(context, char_code);
  return AssignPointerMap(DefineAsRegister(result));
}


LInstruction* LChunkBuilder::DoStringCompareAndBranch(
    HStringCompareAndBranch* instr) {
2472 2473
  DCHECK(instr->left()->representation().IsTagged());
  DCHECK(instr->right()->representation().IsTagged());
2474 2475 2476 2477 2478 2479 2480 2481 2482 2483 2484
  LOperand* context = UseFixed(instr->context(), cp);
  LOperand* left = UseFixed(instr->left(), x1);
  LOperand* right = UseFixed(instr->right(), x0);
  LStringCompareAndBranch* result =
      new(zone()) LStringCompareAndBranch(context, left, right);
  return MarkAsCall(result, instr);
}


LInstruction* LChunkBuilder::DoSub(HSub* instr) {
  if (instr->representation().IsSmiOrInteger32()) {
2485 2486
    DCHECK(instr->left()->representation().Equals(instr->representation()));
    DCHECK(instr->right()->representation().Equals(instr->representation()));
2487 2488 2489 2490 2491 2492

    LInstruction* shifted_operation = TryDoOpWithShiftedRightOperand(instr);
    if (shifted_operation != NULL) {
      return shifted_operation;
    }

2493 2494
    LOperand *left;
    if (instr->left()->IsConstant() &&
2495
        (HConstant::cast(instr->left())->Integer32Value() == 0)) {
2496 2497 2498 2499 2500 2501 2502 2503 2504 2505 2506 2507 2508 2509 2510 2511 2512 2513 2514 2515 2516 2517 2518 2519 2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531 2532 2533 2534
      left = UseConstant(instr->left());
    } else {
      left = UseRegisterAtStart(instr->left());
    }
    LOperand* right = UseRegisterOrConstantAtStart(instr->right());
    LInstruction* result = instr->representation().IsSmi() ?
        DefineAsRegister(new(zone()) LSubS(left, right)) :
        DefineAsRegister(new(zone()) LSubI(left, right));
    if (instr->CheckFlag(HValue::kCanOverflow)) {
      result = AssignEnvironment(result);
    }
    return result;
  } else if (instr->representation().IsDouble()) {
    return DoArithmeticD(Token::SUB, instr);
  } else {
    return DoArithmeticT(Token::SUB, instr);
  }
}


LInstruction* LChunkBuilder::DoThisFunction(HThisFunction* instr) {
  if (instr->HasNoUses()) {
    return NULL;
  } else {
    return DefineAsRegister(new(zone()) LThisFunction);
  }
}


LInstruction* LChunkBuilder::DoToFastProperties(HToFastProperties* instr) {
  LOperand* object = UseFixed(instr->value(), x0);
  LToFastProperties* result = new(zone()) LToFastProperties(object);
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoTransitionElementsKind(
    HTransitionElementsKind* instr) {
  if (IsSimpleMapChangeTransition(instr->from_kind(), instr->to_kind())) {
2535
    LOperand* object = UseRegister(instr->object());
2536 2537 2538 2539 2540
    LTransitionElementsKind* result =
        new(zone()) LTransitionElementsKind(object, NULL,
                                            TempRegister(), TempRegister());
    return result;
  } else {
2541
    LOperand* object = UseFixed(instr->object(), x0);
2542 2543
    LOperand* context = UseFixed(instr->context(), cp);
    LTransitionElementsKind* result =
2544 2545
        new(zone()) LTransitionElementsKind(object, context, NULL, NULL);
    return MarkAsCall(result, instr);
2546 2547 2548 2549 2550 2551 2552 2553 2554 2555 2556 2557 2558 2559 2560 2561 2562 2563 2564 2565 2566 2567 2568 2569 2570 2571 2572 2573 2574 2575 2576 2577 2578 2579 2580 2581 2582 2583 2584 2585 2586 2587 2588 2589 2590 2591 2592 2593 2594 2595
  }
}


LInstruction* LChunkBuilder::DoTrapAllocationMemento(
    HTrapAllocationMemento* instr) {
  LOperand* object = UseRegister(instr->object());
  LOperand* temp1 = TempRegister();
  LOperand* temp2 = TempRegister();
  LTrapAllocationMemento* result =
      new(zone()) LTrapAllocationMemento(object, temp1, temp2);
  return AssignEnvironment(result);
}


LInstruction* LChunkBuilder::DoTypeof(HTypeof* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  // TODO(jbramley): In ARM, this uses UseFixed to force the input to x0.
  // However, LCodeGen::DoTypeof just pushes it to the stack (for CallRuntime)
  // anyway, so the input doesn't have to be in x0. We might be able to improve
  // the ARM back-end a little by relaxing this restriction.
  LTypeof* result =
      new(zone()) LTypeof(context, UseRegisterAtStart(instr->value()));
  return MarkAsCall(DefineFixed(result, x0), instr);
}


LInstruction* LChunkBuilder::DoTypeofIsAndBranch(HTypeofIsAndBranch* instr) {
  // We only need temp registers in some cases, but we can't dereference the
  // instr->type_literal() handle to test that here.
  LOperand* temp1 = TempRegister();
  LOperand* temp2 = TempRegister();

  return new(zone()) LTypeofIsAndBranch(
      UseRegister(instr->value()), temp1, temp2);
}


LInstruction* LChunkBuilder::DoUnaryMathOperation(HUnaryMathOperation* instr) {
  switch (instr->op()) {
    case kMathAbs: {
      Representation r = instr->representation();
      if (r.IsTagged()) {
        // The tagged case might need to allocate a HeapNumber for the result,
        // so it is handled by a separate LInstruction.
        LOperand* context = UseFixed(instr->context(), cp);
        LOperand* input = UseRegister(instr->value());
        LOperand* temp1 = TempRegister();
        LOperand* temp2 = TempRegister();
        LOperand* temp3 = TempRegister();
2596 2597 2598
        LInstruction* result = DefineAsRegister(
            new(zone()) LMathAbsTagged(context, input, temp1, temp2, temp3));
        return AssignEnvironment(AssignPointerMap(result));
2599 2600
      } else {
        LOperand* input = UseRegisterAtStart(instr->value());
2601 2602 2603
        LInstruction* result = DefineAsRegister(new(zone()) LMathAbs(input));
        if (!r.IsDouble()) result = AssignEnvironment(result);
        return result;
2604 2605 2606
      }
    }
    case kMathExp: {
2607 2608
      DCHECK(instr->representation().IsDouble());
      DCHECK(instr->value()->representation().IsDouble());
2609
      LOperand* input = UseRegister(instr->value());
2610
      LOperand* double_temp1 = TempDoubleRegister();
2611 2612 2613 2614 2615 2616 2617 2618
      LOperand* temp1 = TempRegister();
      LOperand* temp2 = TempRegister();
      LOperand* temp3 = TempRegister();
      LMathExp* result = new(zone()) LMathExp(input, double_temp1,
                                              temp1, temp2, temp3);
      return DefineAsRegister(result);
    }
    case kMathFloor: {
2619
      DCHECK(instr->value()->representation().IsDouble());
2620
      LOperand* input = UseRegisterAtStart(instr->value());
2621 2622 2623 2624
      if (instr->representation().IsInteger32()) {
        LMathFloorI* result = new(zone()) LMathFloorI(input);
        return AssignEnvironment(AssignPointerMap(DefineAsRegister(result)));
      } else {
2625
        DCHECK(instr->representation().IsDouble());
2626 2627 2628
        LMathFloorD* result = new(zone()) LMathFloorD(input);
        return DefineAsRegister(result);
      }
2629 2630
    }
    case kMathLog: {
2631 2632
      DCHECK(instr->representation().IsDouble());
      DCHECK(instr->value()->representation().IsDouble());
2633 2634 2635 2636 2637
      LOperand* input = UseFixedDouble(instr->value(), d0);
      LMathLog* result = new(zone()) LMathLog(input);
      return MarkAsCall(DefineFixedDouble(result, d0), instr);
    }
    case kMathPowHalf: {
2638 2639
      DCHECK(instr->representation().IsDouble());
      DCHECK(instr->value()->representation().IsDouble());
2640 2641 2642 2643
      LOperand* input = UseRegister(instr->value());
      return DefineAsRegister(new(zone()) LMathPowHalf(input));
    }
    case kMathRound: {
2644
      DCHECK(instr->value()->representation().IsDouble());
2645
      LOperand* input = UseRegister(instr->value());
2646
      if (instr->representation().IsInteger32()) {
2647 2648
        LOperand* temp = TempDoubleRegister();
        LMathRoundI* result = new(zone()) LMathRoundI(input, temp);
2649 2650
        return AssignEnvironment(DefineAsRegister(result));
      } else {
2651
        DCHECK(instr->representation().IsDouble());
2652 2653 2654
        LMathRoundD* result = new(zone()) LMathRoundD(input);
        return DefineAsRegister(result);
      }
2655
    }
2656
    case kMathFround: {
2657
      DCHECK(instr->value()->representation().IsDouble());
2658 2659 2660 2661
      LOperand* input = UseRegister(instr->value());
      LMathFround* result = new (zone()) LMathFround(input);
      return DefineAsRegister(result);
    }
2662
    case kMathSqrt: {
2663 2664
      DCHECK(instr->representation().IsDouble());
      DCHECK(instr->value()->representation().IsDouble());
2665 2666 2667
      LOperand* input = UseRegisterAtStart(instr->value());
      return DefineAsRegister(new(zone()) LMathSqrt(input));
    }
2668
    case kMathClz32: {
2669 2670
      DCHECK(instr->representation().IsInteger32());
      DCHECK(instr->value()->representation().IsInteger32());
2671 2672 2673
      LOperand* input = UseRegisterAtStart(instr->value());
      return DefineAsRegister(new(zone()) LMathClz32(input));
    }
2674 2675 2676 2677 2678 2679 2680 2681 2682 2683 2684 2685 2686 2687 2688 2689 2690
    default:
      UNREACHABLE();
      return NULL;
  }
}


LInstruction* LChunkBuilder::DoUnknownOSRValue(HUnknownOSRValue* instr) {
  // Use an index that corresponds to the location in the unoptimized frame,
  // which the optimized frame will subsume.
  int env_index = instr->index();
  int spill_index = 0;
  if (instr->environment()->is_parameter_index(env_index)) {
    spill_index = chunk_->GetParameterStackSlot(env_index);
  } else {
    spill_index = env_index - instr->environment()->first_local_index();
    if (spill_index > LUnallocated::kMaxFixedSlotIndex) {
2691
      Retry(kTooManySpillSlotsNeededForOSR);
2692 2693 2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716 2717 2718 2719 2720 2721 2722 2723 2724 2725 2726 2727 2728 2729
      spill_index = 0;
    }
  }
  return DefineAsSpilled(new(zone()) LUnknownOSRValue, spill_index);
}


LInstruction* LChunkBuilder::DoUseConst(HUseConst* instr) {
  return NULL;
}


LInstruction* LChunkBuilder::DoForInPrepareMap(HForInPrepareMap* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  // Assign object to a fixed register different from those already used in
  // LForInPrepareMap.
  LOperand* object = UseFixed(instr->enumerable(), x0);
  LForInPrepareMap* result = new(zone()) LForInPrepareMap(context, object);
  return MarkAsCall(DefineFixed(result, x0), instr, CAN_DEOPTIMIZE_EAGERLY);
}


LInstruction* LChunkBuilder::DoForInCacheArray(HForInCacheArray* instr) {
  LOperand* map = UseRegister(instr->map());
  return AssignEnvironment(DefineAsRegister(new(zone()) LForInCacheArray(map)));
}


LInstruction* LChunkBuilder::DoCheckMapValue(HCheckMapValue* instr) {
  LOperand* value = UseRegisterAtStart(instr->value());
  LOperand* map = UseRegister(instr->map());
  LOperand* temp = TempRegister();
  return AssignEnvironment(new(zone()) LCheckMapValue(value, map, temp));
}


LInstruction* LChunkBuilder::DoLoadFieldByIndex(HLoadFieldByIndex* instr) {
  LOperand* object = UseRegisterAtStart(instr->object());
2730
  LOperand* index = UseRegisterAndClobber(instr->index());
2731 2732 2733
  LLoadFieldByIndex* load = new(zone()) LLoadFieldByIndex(object, index);
  LInstruction* result = DefineSameAsFirst(load);
  return AssignPointerMap(result);
2734 2735 2736 2737 2738 2739 2740 2741 2742 2743 2744
}


LInstruction* LChunkBuilder::DoWrapReceiver(HWrapReceiver* instr) {
  LOperand* receiver = UseRegister(instr->receiver());
  LOperand* function = UseRegister(instr->function());
  LWrapReceiver* result = new(zone()) LWrapReceiver(receiver, function);
  return AssignEnvironment(DefineAsRegister(result));
}


2745 2746 2747 2748 2749 2750 2751 2752 2753 2754 2755 2756 2757 2758 2759 2760
LInstruction* LChunkBuilder::DoStoreFrameContext(HStoreFrameContext* instr) {
  LOperand* context = UseRegisterAtStart(instr->context());
  return new(zone()) LStoreFrameContext(context);
}


LInstruction* LChunkBuilder::DoAllocateBlockContext(
    HAllocateBlockContext* instr) {
  LOperand* context = UseFixed(instr->context(), cp);
  LOperand* function = UseRegisterAtStart(instr->function());
  LAllocateBlockContext* result =
      new(zone()) LAllocateBlockContext(context, function);
  return MarkAsCall(DefineFixed(result, cp), instr);
}


2761
} }  // namespace v8::internal