macro-assembler-x64.cc 159 KB
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// Copyright 2012 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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#if V8_TARGET_ARCH_X64
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#include "src/base/bits.h"
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#include "src/base/division-by-constant.h"
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#include "src/bootstrapper.h"
#include "src/codegen.h"
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#include "src/debug/debug.h"
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#include "src/heap/heap.h"
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#include "src/register-configuration.h"
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#include "src/x64/assembler-x64.h"
#include "src/x64/macro-assembler-x64.h"
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namespace v8 {
namespace internal {
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MacroAssembler::MacroAssembler(Isolate* arg_isolate, void* buffer, int size,
                               CodeObjectRequired create_code_object)
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    : Assembler(arg_isolate, buffer, size),
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      generating_stub_(false),
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      has_frame_(false),
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      root_array_available_(true) {
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  if (create_code_object == CodeObjectRequired::kYes) {
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    code_object_ =
        Handle<Object>::New(isolate()->heap()->undefined_value(), isolate());
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  }
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}

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static const int64_t kInvalidRootRegisterDelta = -1;
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int64_t MacroAssembler::RootRegisterDelta(ExternalReference other) {
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  if (predictable_code_size() &&
      (other.address() < reinterpret_cast<Address>(isolate()) ||
       other.address() >= reinterpret_cast<Address>(isolate() + 1))) {
    return kInvalidRootRegisterDelta;
  }
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  Address roots_register_value = kRootRegisterBias +
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      reinterpret_cast<Address>(isolate()->heap()->roots_array_start());
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  int64_t delta = kInvalidRootRegisterDelta;  // Bogus initialization.
  if (kPointerSize == kInt64Size) {
    delta = other.address() - roots_register_value;
  } else {
    // For x32, zero extend the address to 64-bit and calculate the delta.
    uint64_t o = static_cast<uint32_t>(
        reinterpret_cast<intptr_t>(other.address()));
    uint64_t r = static_cast<uint32_t>(
        reinterpret_cast<intptr_t>(roots_register_value));
    delta = o - r;
  }
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  return delta;
}


Operand MacroAssembler::ExternalOperand(ExternalReference target,
                                        Register scratch) {
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  if (root_array_available_ && !serializer_enabled()) {
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    int64_t delta = RootRegisterDelta(target);
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    if (delta != kInvalidRootRegisterDelta && is_int32(delta)) {
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      return Operand(kRootRegister, static_cast<int32_t>(delta));
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    }
  }
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  Move(scratch, target);
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  return Operand(scratch, 0);
}


void MacroAssembler::Load(Register destination, ExternalReference source) {
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  if (root_array_available_ && !serializer_enabled()) {
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    int64_t delta = RootRegisterDelta(source);
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    if (delta != kInvalidRootRegisterDelta && is_int32(delta)) {
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      movp(destination, Operand(kRootRegister, static_cast<int32_t>(delta)));
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      return;
    }
  }
  // Safe code.
  if (destination.is(rax)) {
    load_rax(source);
  } else {
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    Move(kScratchRegister, source);
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    movp(destination, Operand(kScratchRegister, 0));
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  }
}


void MacroAssembler::Store(ExternalReference destination, Register source) {
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  if (root_array_available_ && !serializer_enabled()) {
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    int64_t delta = RootRegisterDelta(destination);
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    if (delta != kInvalidRootRegisterDelta && is_int32(delta)) {
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      movp(Operand(kRootRegister, static_cast<int32_t>(delta)), source);
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      return;
    }
  }
  // Safe code.
  if (source.is(rax)) {
    store_rax(destination);
  } else {
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    Move(kScratchRegister, destination);
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    movp(Operand(kScratchRegister, 0), source);
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  }
}


void MacroAssembler::LoadAddress(Register destination,
                                 ExternalReference source) {
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  if (root_array_available_ && !serializer_enabled()) {
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    int64_t delta = RootRegisterDelta(source);
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    if (delta != kInvalidRootRegisterDelta && is_int32(delta)) {
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      leap(destination, Operand(kRootRegister, static_cast<int32_t>(delta)));
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      return;
    }
  }
  // Safe code.
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  Move(destination, source);
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}


int MacroAssembler::LoadAddressSize(ExternalReference source) {
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  if (root_array_available_ && !serializer_enabled()) {
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    // This calculation depends on the internals of LoadAddress.
    // It's correctness is ensured by the asserts in the Call
    // instruction below.
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    int64_t delta = RootRegisterDelta(source);
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    if (delta != kInvalidRootRegisterDelta && is_int32(delta)) {
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      // Operand is leap(scratch, Operand(kRootRegister, delta));
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      // Opcodes : REX.W 8D ModRM Disp8/Disp32  - 4 or 7.
      int size = 4;
      if (!is_int8(static_cast<int32_t>(delta))) {
        size += 3;  // Need full four-byte displacement in lea.
      }
      return size;
    }
  }
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  // Size of movp(destination, src);
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  return Assembler::kMoveAddressIntoScratchRegisterInstructionLength;
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}


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void MacroAssembler::PushAddress(ExternalReference source) {
  int64_t address = reinterpret_cast<int64_t>(source.address());
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  if (is_int32(address) && !serializer_enabled()) {
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    if (emit_debug_code()) {
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      Move(kScratchRegister, kZapValue, Assembler::RelocInfoNone());
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    }
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    Push(Immediate(static_cast<int32_t>(address)));
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    return;
  }
  LoadAddress(kScratchRegister, source);
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  Push(kScratchRegister);
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}


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void MacroAssembler::LoadRoot(Register destination, Heap::RootListIndex index) {
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  DCHECK(root_array_available_);
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  movp(destination, Operand(kRootRegister,
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                            (index << kPointerSizeLog2) - kRootRegisterBias));
}


void MacroAssembler::LoadRootIndexed(Register destination,
                                     Register variable_offset,
                                     int fixed_offset) {
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  DCHECK(root_array_available_);
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  movp(destination,
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       Operand(kRootRegister,
               variable_offset, times_pointer_size,
               (fixed_offset << kPointerSizeLog2) - kRootRegisterBias));
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}


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void MacroAssembler::StoreRoot(Register source, Heap::RootListIndex index) {
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  DCHECK(Heap::RootCanBeWrittenAfterInitialization(index));
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  DCHECK(root_array_available_);
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  movp(Operand(kRootRegister, (index << kPointerSizeLog2) - kRootRegisterBias),
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       source);
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}


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void MacroAssembler::PushRoot(Heap::RootListIndex index) {
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  DCHECK(root_array_available_);
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  Push(Operand(kRootRegister, (index << kPointerSizeLog2) - kRootRegisterBias));
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}


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void MacroAssembler::CompareRoot(Register with, Heap::RootListIndex index) {
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  DCHECK(root_array_available_);
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  cmpp(with, Operand(kRootRegister,
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                     (index << kPointerSizeLog2) - kRootRegisterBias));
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}

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void MacroAssembler::CompareRoot(const Operand& with,
                                 Heap::RootListIndex index) {
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  DCHECK(root_array_available_);
  DCHECK(!with.AddressUsesRegister(kScratchRegister));
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  LoadRoot(kScratchRegister, index);
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  cmpp(with, kScratchRegister);
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}


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void MacroAssembler::RememberedSetHelper(Register object,  // For debug tests.
                                         Register addr,
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                                         Register scratch,
                                         SaveFPRegsMode save_fp,
                                         RememberedSetFinalAction and_then) {
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  if (emit_debug_code()) {
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    Label ok;
    JumpIfNotInNewSpace(object, scratch, &ok, Label::kNear);
    int3();
    bind(&ok);
  }
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  // Load store buffer top.
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  ExternalReference store_buffer =
      ExternalReference::store_buffer_top(isolate());
  movp(scratch, ExternalOperand(store_buffer));
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  // Store pointer to buffer.
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  movp(Operand(scratch, 0), addr);
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  // Increment buffer top.
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  addp(scratch, Immediate(kPointerSize));
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  // Write back new top of buffer.
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  movp(ExternalOperand(store_buffer), scratch);
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  // Call stub on end of buffer.
  Label done;
  // Check for end of buffer.
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  testp(scratch, Immediate(StoreBuffer::kStoreBufferMask));
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  if (and_then == kReturnAtEnd) {
    Label buffer_overflowed;
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    j(equal, &buffer_overflowed, Label::kNear);
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    ret(0);
    bind(&buffer_overflowed);
  } else {
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    DCHECK(and_then == kFallThroughAtEnd);
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    j(not_equal, &done, Label::kNear);
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  }
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  StoreBufferOverflowStub store_buffer_overflow(isolate(), save_fp);
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  CallStub(&store_buffer_overflow);
  if (and_then == kReturnAtEnd) {
    ret(0);
  } else {
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    DCHECK(and_then == kFallThroughAtEnd);
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    bind(&done);
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  }
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}


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void MacroAssembler::InNewSpace(Register object,
                                Register scratch,
                                Condition cc,
                                Label* branch,
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                                Label::Distance distance) {
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  CheckPageFlag(object, scratch, MemoryChunk::kIsInNewSpaceMask, cc, branch,
                distance);
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}


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void MacroAssembler::RecordWriteField(
    Register object,
    int offset,
    Register value,
    Register dst,
    SaveFPRegsMode save_fp,
    RememberedSetAction remembered_set_action,
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    SmiCheck smi_check,
    PointersToHereCheck pointers_to_here_check_for_value) {
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  // First, check if a write barrier is even needed. The tests below
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  // catch stores of Smis.
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  Label done;

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  // Skip barrier if writing a smi.
  if (smi_check == INLINE_SMI_CHECK) {
    JumpIfSmi(value, &done);
  }

  // Although the object register is tagged, the offset is relative to the start
  // of the object, so so offset must be a multiple of kPointerSize.
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  DCHECK(IsAligned(offset, kPointerSize));
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  leap(dst, FieldOperand(object, offset));
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  if (emit_debug_code()) {
    Label ok;
    testb(dst, Immediate((1 << kPointerSizeLog2) - 1));
    j(zero, &ok, Label::kNear);
    int3();
    bind(&ok);
  }

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  RecordWrite(object, dst, value, save_fp, remembered_set_action,
              OMIT_SMI_CHECK, pointers_to_here_check_for_value);
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  bind(&done);
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  // Clobber clobbered input registers when running with the debug-code flag
  // turned on to provoke errors.
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  if (emit_debug_code()) {
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    Move(value, kZapValue, Assembler::RelocInfoNone());
    Move(dst, kZapValue, Assembler::RelocInfoNone());
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  }
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}


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void MacroAssembler::RecordWriteArray(
    Register object,
    Register value,
    Register index,
    SaveFPRegsMode save_fp,
    RememberedSetAction remembered_set_action,
    SmiCheck smi_check,
    PointersToHereCheck pointers_to_here_check_for_value) {
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  // First, check if a write barrier is even needed. The tests below
  // catch stores of Smis.
  Label done;

  // Skip barrier if writing a smi.
  if (smi_check == INLINE_SMI_CHECK) {
    JumpIfSmi(value, &done);
  }

  // Array access: calculate the destination address. Index is not a smi.
  Register dst = index;
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  leap(dst, Operand(object, index, times_pointer_size,
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                   FixedArray::kHeaderSize - kHeapObjectTag));

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  RecordWrite(object, dst, value, save_fp, remembered_set_action,
              OMIT_SMI_CHECK, pointers_to_here_check_for_value);
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  bind(&done);

  // Clobber clobbered input registers when running with the debug-code flag
  // turned on to provoke errors.
  if (emit_debug_code()) {
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    Move(value, kZapValue, Assembler::RelocInfoNone());
    Move(index, kZapValue, Assembler::RelocInfoNone());
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  }
}


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void MacroAssembler::RecordWriteForMap(Register object,
                                       Register map,
                                       Register dst,
                                       SaveFPRegsMode fp_mode) {
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  DCHECK(!object.is(kScratchRegister));
  DCHECK(!object.is(map));
  DCHECK(!object.is(dst));
  DCHECK(!map.is(dst));
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  AssertNotSmi(object);

  if (emit_debug_code()) {
    Label ok;
    if (map.is(kScratchRegister)) pushq(map);
    CompareMap(map, isolate()->factory()->meta_map());
    if (map.is(kScratchRegister)) popq(map);
    j(equal, &ok, Label::kNear);
    int3();
    bind(&ok);
  }

  if (!FLAG_incremental_marking) {
    return;
  }

  if (emit_debug_code()) {
    Label ok;
    if (map.is(kScratchRegister)) pushq(map);
    cmpp(map, FieldOperand(object, HeapObject::kMapOffset));
    if (map.is(kScratchRegister)) popq(map);
    j(equal, &ok, Label::kNear);
    int3();
    bind(&ok);
  }

  // Compute the address.
  leap(dst, FieldOperand(object, HeapObject::kMapOffset));

  // First, check if a write barrier is even needed. The tests below
  // catch stores of smis and stores into the young generation.
  Label done;

  // A single check of the map's pages interesting flag suffices, since it is
  // only set during incremental collection, and then it's also guaranteed that
  // the from object's page's interesting flag is also set.  This optimization
  // relies on the fact that maps can never be in new space.
  CheckPageFlag(map,
                map,  // Used as scratch.
                MemoryChunk::kPointersToHereAreInterestingMask,
                zero,
                &done,
                Label::kNear);

  RecordWriteStub stub(isolate(), object, map, dst, OMIT_REMEMBERED_SET,
                       fp_mode);
  CallStub(&stub);

  bind(&done);

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  // Count number of write barriers in generated code.
  isolate()->counters()->write_barriers_static()->Increment();
  IncrementCounter(isolate()->counters()->write_barriers_dynamic(), 1);

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  // Clobber clobbered registers when running with the debug-code flag
  // turned on to provoke errors.
  if (emit_debug_code()) {
    Move(dst, kZapValue, Assembler::RelocInfoNone());
    Move(map, kZapValue, Assembler::RelocInfoNone());
  }
}


void MacroAssembler::RecordWrite(
    Register object,
    Register address,
    Register value,
    SaveFPRegsMode fp_mode,
    RememberedSetAction remembered_set_action,
    SmiCheck smi_check,
    PointersToHereCheck pointers_to_here_check_for_value) {
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  DCHECK(!object.is(value));
  DCHECK(!object.is(address));
  DCHECK(!value.is(address));
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  AssertNotSmi(object);
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  if (remembered_set_action == OMIT_REMEMBERED_SET &&
      !FLAG_incremental_marking) {
    return;
  }

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  if (emit_debug_code()) {
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    Label ok;
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    cmpp(value, Operand(address, 0));
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    j(equal, &ok, Label::kNear);
    int3();
    bind(&ok);
  }
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  // First, check if a write barrier is even needed. The tests below
  // catch stores of smis and stores into the young generation.
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  Label done;
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  if (smi_check == INLINE_SMI_CHECK) {
    // Skip barrier if writing a smi.
    JumpIfSmi(value, &done);
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  }

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  if (pointers_to_here_check_for_value != kPointersToHereAreAlwaysInteresting) {
    CheckPageFlag(value,
                  value,  // Used as scratch.
                  MemoryChunk::kPointersToHereAreInterestingMask,
                  zero,
                  &done,
                  Label::kNear);
  }
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  CheckPageFlag(object,
                value,  // Used as scratch.
                MemoryChunk::kPointersFromHereAreInterestingMask,
                zero,
                &done,
                Label::kNear);
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  RecordWriteStub stub(isolate(), object, value, address, remembered_set_action,
                       fp_mode);
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  CallStub(&stub);
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  bind(&done);
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  // Count number of write barriers in generated code.
  isolate()->counters()->write_barriers_static()->Increment();
  IncrementCounter(isolate()->counters()->write_barriers_dynamic(), 1);

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  // Clobber clobbered registers when running with the debug-code flag
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  // turned on to provoke errors.
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  if (emit_debug_code()) {
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    Move(address, kZapValue, Assembler::RelocInfoNone());
    Move(value, kZapValue, Assembler::RelocInfoNone());
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  }
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}

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void MacroAssembler::RecordWriteCodeEntryField(Register js_function,
                                               Register code_entry,
                                               Register scratch) {
  const int offset = JSFunction::kCodeEntryOffset;

  // The input registers are fixed to make calling the C write barrier function
  // easier.
  DCHECK(js_function.is(rdi));
  DCHECK(code_entry.is(rcx));
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  DCHECK(scratch.is(r15));
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  // Since a code entry (value) is always in old space, we don't need to update
  // remembered set. If incremental marking is off, there is nothing for us to
  // do.
  if (!FLAG_incremental_marking) return;

  AssertNotSmi(js_function);

  if (emit_debug_code()) {
    Label ok;
    leap(scratch, FieldOperand(js_function, offset));
    cmpp(code_entry, Operand(scratch, 0));
    j(equal, &ok, Label::kNear);
    int3();
    bind(&ok);
  }

  // First, check if a write barrier is even needed. The tests below
  // catch stores of Smis and stores into young gen.
  Label done;

  CheckPageFlag(code_entry, scratch,
                MemoryChunk::kPointersToHereAreInterestingMask, zero, &done,
                Label::kNear);
  CheckPageFlag(js_function, scratch,
                MemoryChunk::kPointersFromHereAreInterestingMask, zero, &done,
                Label::kNear);

  // Save input registers.
  Push(js_function);
  Push(code_entry);

  const Register dst = scratch;
  leap(dst, FieldOperand(js_function, offset));

  // Save caller-saved registers.
  PushCallerSaved(kDontSaveFPRegs, js_function, code_entry);

  int argument_count = 3;
  PrepareCallCFunction(argument_count);

  // Load the argument registers.
  if (arg_reg_1.is(rcx)) {
    // Windows calling convention.
    DCHECK(arg_reg_2.is(rdx) && arg_reg_3.is(r8));

    movp(arg_reg_1, js_function);  // rcx gets rdi.
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    movp(arg_reg_2, dst);          // rdx gets r15.
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  } else {
    // AMD64 calling convention.
    DCHECK(arg_reg_1.is(rdi) && arg_reg_2.is(rsi) && arg_reg_3.is(rdx));

    // rdi is already loaded with js_function.
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    movp(arg_reg_2, dst);  // rsi gets r15.
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  }
  Move(arg_reg_3, ExternalReference::isolate_address(isolate()));

  {
    AllowExternalCallThatCantCauseGC scope(this);
    CallCFunction(
        ExternalReference::incremental_marking_record_write_code_entry_function(
            isolate()),
        argument_count);
  }

  // Restore caller-saved registers.
  PopCallerSaved(kDontSaveFPRegs, js_function, code_entry);

  // Restore input registers.
  Pop(code_entry);
  Pop(js_function);

  bind(&done);
}
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void MacroAssembler::Assert(Condition cc, BailoutReason reason) {
  if (emit_debug_code()) Check(cc, reason);
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}


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void MacroAssembler::AssertFastElements(Register elements) {
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  if (emit_debug_code()) {
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    Label ok;
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    CompareRoot(FieldOperand(elements, HeapObject::kMapOffset),
                Heap::kFixedArrayMapRootIndex);
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    j(equal, &ok, Label::kNear);
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    CompareRoot(FieldOperand(elements, HeapObject::kMapOffset),
                Heap::kFixedDoubleArrayMapRootIndex);
    j(equal, &ok, Label::kNear);
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    CompareRoot(FieldOperand(elements, HeapObject::kMapOffset),
                Heap::kFixedCOWArrayMapRootIndex);
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    j(equal, &ok, Label::kNear);
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    Abort(kJSObjectWithFastElementsMapHasSlowElements);
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    bind(&ok);
  }
}


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void MacroAssembler::Check(Condition cc, BailoutReason reason) {
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  Label L;
  j(cc, &L, Label::kNear);
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  Abort(reason);
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  // Control will not return here.
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  bind(&L);
}


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void MacroAssembler::CheckStackAlignment() {
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  int frame_alignment = base::OS::ActivationFrameAlignment();
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  int frame_alignment_mask = frame_alignment - 1;
  if (frame_alignment > kPointerSize) {
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    DCHECK(base::bits::IsPowerOfTwo32(frame_alignment));
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    Label alignment_as_expected;
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    testp(rsp, Immediate(frame_alignment_mask));
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    j(zero, &alignment_as_expected, Label::kNear);
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    // Abort if stack is not aligned.
    int3();
    bind(&alignment_as_expected);
  }
}


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void MacroAssembler::NegativeZeroTest(Register result,
                                      Register op,
                                      Label* then_label) {
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  Label ok;
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  testl(result, result);
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  j(not_zero, &ok, Label::kNear);
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  testl(op, op);
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  j(sign, then_label);
  bind(&ok);
}


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void MacroAssembler::Abort(BailoutReason reason) {
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#ifdef DEBUG
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  const char* msg = GetBailoutReason(reason);
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  if (msg != NULL) {
    RecordComment("Abort message: ");
    RecordComment(msg);
  }
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  if (FLAG_trap_on_abort) {
    int3();
    return;
  }
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#endif
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  // Check if Abort() has already been initialized.
  DCHECK(isolate()->builtins()->Abort()->IsHeapObject());

  Move(rdx, Smi::FromInt(static_cast<int>(reason)));
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  if (!has_frame_) {
    // We don't actually want to generate a pile of code for this, so just
    // claim there is a stack frame, without generating one.
    FrameScope scope(this, StackFrame::NONE);
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    Call(isolate()->builtins()->Abort(), RelocInfo::CODE_TARGET);
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  } else {
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    Call(isolate()->builtins()->Abort(), RelocInfo::CODE_TARGET);
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  }
  // Control will not return here.
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  int3();
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}


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void MacroAssembler::CallStub(CodeStub* stub, TypeFeedbackId ast_id) {
659
  DCHECK(AllowThisStubCall(stub));  // Calls are not allowed in some stubs
660
  Call(stub->GetCode(), RelocInfo::CODE_TARGET, ast_id);
661 662 663
}


664
void MacroAssembler::TailCallStub(CodeStub* stub) {
665
  Jump(stub->GetCode(), RelocInfo::CODE_TARGET);
666 667 668
}


669
void MacroAssembler::StubReturn(int argc) {
670
  DCHECK(argc >= 1 && generating_stub());
671 672 673 674
  ret((argc - 1) * kPointerSize);
}


675
bool MacroAssembler::AllowThisStubCall(CodeStub* stub) {
676
  return has_frame_ || !stub->SometimesSetsUpAFrame();
677 678
}

679
void MacroAssembler::CallRuntime(const Runtime::Function* f,
680 681
                                 int num_arguments,
                                 SaveFPRegsMode save_doubles) {
682 683 684
  // If the expected number of arguments of the runtime function is
  // constant, we check that the actual number of arguments match the
  // expectation.
685
  CHECK(f->nargs < 0 || f->nargs == num_arguments);
686

687 688 689 690
  // TODO(1236192): Most runtime routines don't need the number of
  // arguments passed in because it is constant. At some point we
  // should remove this need and make the runtime routine entry code
  // smarter.
691
  Set(rax, num_arguments);
692
  LoadAddress(rbx, ExternalReference(f, isolate()));
693
  CEntryStub ces(isolate(), f->result_size, save_doubles);
694
  CallStub(&ces);
695 696 697
}


698 699
void MacroAssembler::CallExternalReference(const ExternalReference& ext,
                                           int num_arguments) {
700
  Set(rax, num_arguments);
701
  LoadAddress(rbx, ext);
702

703
  CEntryStub stub(isolate(), 1);
704 705 706 707
  CallStub(&stub);
}


708
void MacroAssembler::TailCallRuntime(Runtime::FunctionId fid) {
709
  // ----------- S t a t e -------------
710 711
  //  -- rsp[0]                 : return address
  //  -- rsp[8]                 : argument num_arguments - 1
712 713
  //  ...
  //  -- rsp[8 * num_arguments] : argument 0 (receiver)
714 715 716
  //
  //  For runtime functions with variable arguments:
  //  -- rax                    : number of  arguments
717 718
  // -----------------------------------

719 720 721 722 723 724
  const Runtime::Function* function = Runtime::FunctionForId(fid);
  DCHECK_EQ(1, function->result_size);
  if (function->nargs >= 0) {
    Set(rax, function->nargs);
  }
  JumpToExternalReference(ExternalReference(fid, isolate()));
725 726
}

727 728
void MacroAssembler::JumpToExternalReference(const ExternalReference& ext,
                                             bool builtin_exit_frame) {
729
  // Set the entry point and jump to the C entry runtime stub.
730
  LoadAddress(rbx, ext);
731 732
  CEntryStub ces(isolate(), 1, kDontSaveFPRegs, kArgvOnStack,
                 builtin_exit_frame);
733
  jmp(ces.GetCode(), RelocInfo::CODE_TARGET);
734 735
}

736 737
#define REG(Name) \
  { Register::kCode_##Name }
738 739 740 741 742 743 744 745

static const Register saved_regs[] = {
  REG(rax), REG(rcx), REG(rdx), REG(rbx), REG(rbp), REG(rsi), REG(rdi), REG(r8),
  REG(r9), REG(r10), REG(r11)
};

#undef REG

746 747 748 749 750 751 752 753 754 755 756 757 758
static const int kNumberOfSavedRegs = sizeof(saved_regs) / sizeof(Register);


void MacroAssembler::PushCallerSaved(SaveFPRegsMode fp_mode,
                                     Register exclusion1,
                                     Register exclusion2,
                                     Register exclusion3) {
  // We don't allow a GC during a store buffer overflow so there is no need to
  // store the registers in any particular way, but we do have to store and
  // restore them.
  for (int i = 0; i < kNumberOfSavedRegs; i++) {
    Register reg = saved_regs[i];
    if (!reg.is(exclusion1) && !reg.is(exclusion2) && !reg.is(exclusion3)) {
759
      pushq(reg);
760 761 762 763
    }
  }
  // R12 to r15 are callee save on all platforms.
  if (fp_mode == kSaveFPRegs) {
764
    subp(rsp, Immediate(kDoubleSize * XMMRegister::kMaxNumRegisters));
765
    for (int i = 0; i < XMMRegister::kMaxNumRegisters; i++) {
766
      XMMRegister reg = XMMRegister::from_code(i);
767
      Movsd(Operand(rsp, i * kDoubleSize), reg);
768 769 770 771 772 773 774 775 776 777
    }
  }
}


void MacroAssembler::PopCallerSaved(SaveFPRegsMode fp_mode,
                                    Register exclusion1,
                                    Register exclusion2,
                                    Register exclusion3) {
  if (fp_mode == kSaveFPRegs) {
778
    for (int i = 0; i < XMMRegister::kMaxNumRegisters; i++) {
779
      XMMRegister reg = XMMRegister::from_code(i);
780
      Movsd(reg, Operand(rsp, i * kDoubleSize));
781
    }
782
    addp(rsp, Immediate(kDoubleSize * XMMRegister::kMaxNumRegisters));
783 784 785 786
  }
  for (int i = kNumberOfSavedRegs - 1; i >= 0; i--) {
    Register reg = saved_regs[i];
    if (!reg.is(exclusion1) && !reg.is(exclusion2) && !reg.is(exclusion3)) {
787
      popq(reg);
788 789 790 791 792
    }
  }
}


793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832
void MacroAssembler::Cvtss2sd(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvtss2sd(dst, src, src);
  } else {
    cvtss2sd(dst, src);
  }
}


void MacroAssembler::Cvtss2sd(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvtss2sd(dst, dst, src);
  } else {
    cvtss2sd(dst, src);
  }
}


void MacroAssembler::Cvtsd2ss(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvtsd2ss(dst, src, src);
  } else {
    cvtsd2ss(dst, src);
  }
}


void MacroAssembler::Cvtsd2ss(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvtsd2ss(dst, dst, src);
  } else {
    cvtsd2ss(dst, src);
  }
}


833
void MacroAssembler::Cvtlsi2sd(XMMRegister dst, Register src) {
834 835 836 837 838
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vxorpd(dst, dst, dst);
    vcvtlsi2sd(dst, dst, src);
  } else {
839
    xorpd(dst, dst);
840 841
    cvtlsi2sd(dst, src);
  }
842 843 844 845
}


void MacroAssembler::Cvtlsi2sd(XMMRegister dst, const Operand& src) {
846 847 848 849 850
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vxorpd(dst, dst, dst);
    vcvtlsi2sd(dst, dst, src);
  } else {
851
    xorpd(dst, dst);
852 853
    cvtlsi2sd(dst, src);
  }
854 855 856
}


857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880
void MacroAssembler::Cvtlsi2ss(XMMRegister dst, Register src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vxorps(dst, dst, dst);
    vcvtlsi2ss(dst, dst, src);
  } else {
    xorps(dst, dst);
    cvtlsi2ss(dst, src);
  }
}


void MacroAssembler::Cvtlsi2ss(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vxorps(dst, dst, dst);
    vcvtlsi2ss(dst, dst, src);
  } else {
    xorps(dst, dst);
    cvtlsi2ss(dst, src);
  }
}


881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904
void MacroAssembler::Cvtqsi2ss(XMMRegister dst, Register src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vxorps(dst, dst, dst);
    vcvtqsi2ss(dst, dst, src);
  } else {
    xorps(dst, dst);
    cvtqsi2ss(dst, src);
  }
}


void MacroAssembler::Cvtqsi2ss(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vxorps(dst, dst, dst);
    vcvtqsi2ss(dst, dst, src);
  } else {
    xorps(dst, dst);
    cvtqsi2ss(dst, src);
  }
}


905 906 907 908 909 910 911 912 913 914 915 916
void MacroAssembler::Cvtqsi2sd(XMMRegister dst, Register src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vxorpd(dst, dst, dst);
    vcvtqsi2sd(dst, dst, src);
  } else {
    xorpd(dst, dst);
    cvtqsi2sd(dst, src);
  }
}


917 918 919 920 921 922 923 924 925 926 927 928
void MacroAssembler::Cvtqsi2sd(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vxorpd(dst, dst, dst);
    vcvtqsi2sd(dst, dst, src);
  } else {
    xorpd(dst, dst);
    cvtqsi2sd(dst, src);
  }
}


929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947
void MacroAssembler::Cvtqui2ss(XMMRegister dst, Register src, Register tmp) {
  Label msb_set_src;
  Label jmp_return;
  testq(src, src);
  j(sign, &msb_set_src, Label::kNear);
  Cvtqsi2ss(dst, src);
  jmp(&jmp_return, Label::kNear);
  bind(&msb_set_src);
  movq(tmp, src);
  shrq(src, Immediate(1));
  // Recover the least significant bit to avoid rounding errors.
  andq(tmp, Immediate(1));
  orq(src, tmp);
  Cvtqsi2ss(dst, src);
  addss(dst, dst);
  bind(&jmp_return);
}


948
void MacroAssembler::Cvtqui2sd(XMMRegister dst, Register src, Register tmp) {
949 950 951 952 953 954 955
  Label msb_set_src;
  Label jmp_return;
  testq(src, src);
  j(sign, &msb_set_src, Label::kNear);
  Cvtqsi2sd(dst, src);
  jmp(&jmp_return, Label::kNear);
  bind(&msb_set_src);
956
  movq(tmp, src);
957
  shrq(src, Immediate(1));
958 959
  andq(tmp, Immediate(1));
  orq(src, tmp);
960 961 962 963 964 965
  Cvtqsi2sd(dst, src);
  addsd(dst, dst);
  bind(&jmp_return);
}


966 967 968 969 970 971 972 973 974 975
void MacroAssembler::Cvtsd2si(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvtsd2si(dst, src);
  } else {
    cvtsd2si(dst, src);
  }
}


976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995
void MacroAssembler::Cvttss2si(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvttss2si(dst, src);
  } else {
    cvttss2si(dst, src);
  }
}


void MacroAssembler::Cvttss2si(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvttss2si(dst, src);
  } else {
    cvttss2si(dst, src);
  }
}


996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015
void MacroAssembler::Cvttsd2si(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvttsd2si(dst, src);
  } else {
    cvttsd2si(dst, src);
  }
}


void MacroAssembler::Cvttsd2si(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvttsd2si(dst, src);
  } else {
    cvttsd2si(dst, src);
  }
}


1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035
void MacroAssembler::Cvttss2siq(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvttss2siq(dst, src);
  } else {
    cvttss2siq(dst, src);
  }
}


void MacroAssembler::Cvttss2siq(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvttss2siq(dst, src);
  } else {
    cvttss2siq(dst, src);
  }
}


1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055
void MacroAssembler::Cvttsd2siq(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvttsd2siq(dst, src);
  } else {
    cvttsd2siq(dst, src);
  }
}


void MacroAssembler::Cvttsd2siq(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vcvttsd2siq(dst, src);
  } else {
    cvttsd2siq(dst, src);
  }
}


1056
void MacroAssembler::Load(Register dst, const Operand& src, Representation r) {
1057
  DCHECK(!r.IsDouble());
1058 1059 1060
  if (r.IsInteger8()) {
    movsxbq(dst, src);
  } else if (r.IsUInteger8()) {
1061
    movzxbl(dst, src);
1062 1063 1064 1065
  } else if (r.IsInteger16()) {
    movsxwq(dst, src);
  } else if (r.IsUInteger16()) {
    movzxwl(dst, src);
1066 1067 1068
  } else if (r.IsInteger32()) {
    movl(dst, src);
  } else {
1069
    movp(dst, src);
1070 1071 1072 1073 1074
  }
}


void MacroAssembler::Store(const Operand& dst, Register src, Representation r) {
1075
  DCHECK(!r.IsDouble());
1076
  if (r.IsInteger8() || r.IsUInteger8()) {
1077
    movb(dst, src);
1078 1079
  } else if (r.IsInteger16() || r.IsUInteger16()) {
    movw(dst, src);
1080 1081 1082
  } else if (r.IsInteger32()) {
    movl(dst, src);
  } else {
1083 1084 1085 1086 1087
    if (r.IsHeapObject()) {
      AssertNotSmi(src);
    } else if (r.IsSmi()) {
      AssertSmi(src);
    }
1088
    movp(dst, src);
1089 1090 1091 1092
  }
}


1093 1094
void MacroAssembler::Set(Register dst, int64_t x) {
  if (x == 0) {
1095
    xorl(dst, dst);
1096
  } else if (is_uint32(x)) {
1097
    movl(dst, Immediate(static_cast<uint32_t>(x)));
1098 1099
  } else if (is_int32(x)) {
    movq(dst, Immediate(static_cast<int32_t>(x)));
1100
  } else {
1101
    movq(dst, x);
1102 1103 1104
  }
}

1105 1106 1107 1108 1109 1110 1111 1112
void MacroAssembler::Set(const Operand& dst, intptr_t x) {
  if (kPointerSize == kInt64Size) {
    if (is_int32(x)) {
      movp(dst, Immediate(static_cast<int32_t>(x)));
    } else {
      Set(kScratchRegister, x);
      movp(dst, kScratchRegister);
    }
1113
  } else {
1114
    movp(dst, Immediate(static_cast<int32_t>(x)));
1115 1116 1117
  }
}

1118

1119 1120 1121 1122
// ----------------------------------------------------------------------------
// Smi tagging, untagging and tag detection.

bool MacroAssembler::IsUnsafeInt(const int32_t x) {
1123 1124 1125 1126 1127 1128
  static const int kMaxBits = 17;
  return !is_intn(x, kMaxBits);
}


void MacroAssembler::SafeMove(Register dst, Smi* src) {
1129
  DCHECK(!dst.is(kScratchRegister));
1130
  if (IsUnsafeInt(src->value()) && jit_cookie() != 0) {
1131 1132 1133 1134 1135 1136
    if (SmiValuesAre32Bits()) {
      // JIT cookie can be converted to Smi.
      Move(dst, Smi::FromInt(src->value() ^ jit_cookie()));
      Move(kScratchRegister, Smi::FromInt(jit_cookie()));
      xorp(dst, kScratchRegister);
    } else {
1137
      DCHECK(SmiValuesAre31Bits());
1138 1139 1140 1141
      int32_t value = static_cast<int32_t>(reinterpret_cast<intptr_t>(src));
      movp(dst, Immediate(value ^ jit_cookie()));
      xorp(dst, Immediate(jit_cookie()));
    }
1142 1143 1144 1145 1146 1147 1148 1149
  } else {
    Move(dst, src);
  }
}


void MacroAssembler::SafePush(Smi* src) {
  if (IsUnsafeInt(src->value()) && jit_cookie() != 0) {
1150 1151 1152 1153 1154 1155
    if (SmiValuesAre32Bits()) {
      // JIT cookie can be converted to Smi.
      Push(Smi::FromInt(src->value() ^ jit_cookie()));
      Move(kScratchRegister, Smi::FromInt(jit_cookie()));
      xorp(Operand(rsp, 0), kScratchRegister);
    } else {
1156
      DCHECK(SmiValuesAre31Bits());
1157 1158 1159 1160
      int32_t value = static_cast<int32_t>(reinterpret_cast<intptr_t>(src));
      Push(Immediate(value ^ jit_cookie()));
      xorp(Operand(rsp, 0), Immediate(jit_cookie()));
    }
1161 1162 1163 1164 1165 1166
  } else {
    Push(src);
  }
}


1167
Register MacroAssembler::GetSmiConstant(Smi* source) {
1168
  STATIC_ASSERT(kSmiTag == 0);
1169 1170 1171 1172 1173 1174 1175 1176 1177
  int value = source->value();
  if (value == 0) {
    xorl(kScratchRegister, kScratchRegister);
    return kScratchRegister;
  }
  LoadSmiConstant(kScratchRegister, source);
  return kScratchRegister;
}

1178

1179
void MacroAssembler::LoadSmiConstant(Register dst, Smi* source) {
1180 1181 1182 1183 1184 1185 1186
  STATIC_ASSERT(kSmiTag == 0);
  int value = source->value();
  if (value == 0) {
    xorl(dst, dst);
  } else {
    Move(dst, source, Assembler::RelocInfoNone());
  }
1187 1188
}

1189

1190
void MacroAssembler::Integer32ToSmi(Register dst, Register src) {
1191
  STATIC_ASSERT(kSmiTag == 0);
1192 1193 1194
  if (!dst.is(src)) {
    movl(dst, src);
  }
1195
  shlp(dst, Immediate(kSmiShift));
1196 1197 1198
}


1199
void MacroAssembler::Integer32ToSmiField(const Operand& dst, Register src) {
1200
  if (emit_debug_code()) {
1201
    testb(dst, Immediate(0x01));
1202 1203
    Label ok;
    j(zero, &ok, Label::kNear);
1204
    Abort(kInteger32ToSmiFieldWritingToNonSmiLocation);
1205 1206
    bind(&ok);
  }
1207 1208

  if (SmiValuesAre32Bits()) {
1209
    DCHECK(kSmiShift % kBitsPerByte == 0);
1210 1211
    movl(Operand(dst, kSmiShift / kBitsPerByte), src);
  } else {
1212
    DCHECK(SmiValuesAre31Bits());
1213 1214 1215
    Integer32ToSmi(kScratchRegister, src);
    movp(dst, kScratchRegister);
  }
1216 1217 1218
}


1219 1220 1221 1222
void MacroAssembler::Integer64PlusConstantToSmi(Register dst,
                                                Register src,
                                                int constant) {
  if (dst.is(src)) {
1223
    addl(dst, Immediate(constant));
1224
  } else {
1225
    leal(dst, Operand(src, constant));
1226
  }
1227
  shlp(dst, Immediate(kSmiShift));
1228 1229 1230 1231
}


void MacroAssembler::SmiToInteger32(Register dst, Register src) {
1232
  STATIC_ASSERT(kSmiTag == 0);
1233
  if (!dst.is(src)) {
1234
    movp(dst, src);
1235
  }
1236 1237 1238 1239

  if (SmiValuesAre32Bits()) {
    shrp(dst, Immediate(kSmiShift));
  } else {
1240
    DCHECK(SmiValuesAre31Bits());
1241 1242
    sarl(dst, Immediate(kSmiShift));
  }
1243 1244 1245
}


1246
void MacroAssembler::SmiToInteger32(Register dst, const Operand& src) {
1247 1248 1249
  if (SmiValuesAre32Bits()) {
    movl(dst, Operand(src, kSmiShift / kBitsPerByte));
  } else {
1250
    DCHECK(SmiValuesAre31Bits());
1251 1252 1253
    movl(dst, src);
    sarl(dst, Immediate(kSmiShift));
  }
1254 1255 1256
}


1257
void MacroAssembler::SmiToInteger64(Register dst, Register src) {
1258
  STATIC_ASSERT(kSmiTag == 0);
1259
  if (!dst.is(src)) {
1260
    movp(dst, src);
1261
  }
1262 1263 1264 1265 1266
  sarp(dst, Immediate(kSmiShift));
  if (kPointerSize == kInt32Size) {
    // Sign extend to 64-bit.
    movsxlq(dst, dst);
  }
1267 1268 1269
}


1270
void MacroAssembler::SmiToInteger64(Register dst, const Operand& src) {
1271 1272 1273
  if (SmiValuesAre32Bits()) {
    movsxlq(dst, Operand(src, kSmiShift / kBitsPerByte));
  } else {
1274
    DCHECK(SmiValuesAre31Bits());
1275 1276 1277
    movp(dst, src);
    SmiToInteger64(dst, dst);
  }
1278 1279 1280
}


1281
void MacroAssembler::SmiTest(Register src) {
1282
  AssertSmi(src);
1283
  testp(src, src);
1284 1285 1286
}


1287
void MacroAssembler::SmiCompare(Register smi1, Register smi2) {
1288 1289
  AssertSmi(smi1);
  AssertSmi(smi2);
1290
  cmpp(smi1, smi2);
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}


void MacroAssembler::SmiCompare(Register dst, Smi* src) {
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  AssertSmi(dst);
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  Cmp(dst, src);
}


void MacroAssembler::Cmp(Register dst, Smi* src) {
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  DCHECK(!dst.is(kScratchRegister));
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  if (src->value() == 0) {
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    testp(dst, dst);
1304
  } else {
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    Register constant_reg = GetSmiConstant(src);
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    cmpp(dst, constant_reg);
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  }
}


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void MacroAssembler::SmiCompare(Register dst, const Operand& src) {
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  AssertSmi(dst);
  AssertSmi(src);
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  cmpp(dst, src);
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}


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void MacroAssembler::SmiCompare(const Operand& dst, Register src) {
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  AssertSmi(dst);
  AssertSmi(src);
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  cmpp(dst, src);
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}


void MacroAssembler::SmiCompare(const Operand& dst, Smi* src) {
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  AssertSmi(dst);
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  if (SmiValuesAre32Bits()) {
    cmpl(Operand(dst, kSmiShift / kBitsPerByte), Immediate(src->value()));
  } else {
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    DCHECK(SmiValuesAre31Bits());
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    cmpl(dst, Immediate(src));
  }
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}


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void MacroAssembler::Cmp(const Operand& dst, Smi* src) {
  // The Operand cannot use the smi register.
  Register smi_reg = GetSmiConstant(src);
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  DCHECK(!dst.AddressUsesRegister(smi_reg));
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  cmpp(dst, smi_reg);
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}


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void MacroAssembler::SmiCompareInteger32(const Operand& dst, Register src) {
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  if (SmiValuesAre32Bits()) {
    cmpl(Operand(dst, kSmiShift / kBitsPerByte), src);
  } else {
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    DCHECK(SmiValuesAre31Bits());
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    SmiToInteger32(kScratchRegister, dst);
    cmpl(kScratchRegister, src);
  }
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}


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void MacroAssembler::PositiveSmiTimesPowerOfTwoToInteger64(Register dst,
                                                           Register src,
                                                           int power) {
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  DCHECK(power >= 0);
  DCHECK(power < 64);
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  if (power == 0) {
    SmiToInteger64(dst, src);
    return;
  }
  if (!dst.is(src)) {
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    movp(dst, src);
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  }
  if (power < kSmiShift) {
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    sarp(dst, Immediate(kSmiShift - power));
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  } else if (power > kSmiShift) {
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    shlp(dst, Immediate(power - kSmiShift));
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  }
}


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void MacroAssembler::PositiveSmiDivPowerOfTwoToInteger32(Register dst,
                                                         Register src,
                                                         int power) {
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  DCHECK((0 <= power) && (power < 32));
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  if (dst.is(src)) {
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    shrp(dst, Immediate(power + kSmiShift));
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  } else {
    UNIMPLEMENTED();  // Not used.
  }
}


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void MacroAssembler::SmiOrIfSmis(Register dst, Register src1, Register src2,
                                 Label* on_not_smis,
                                 Label::Distance near_jump) {
  if (dst.is(src1) || dst.is(src2)) {
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    DCHECK(!src1.is(kScratchRegister));
    DCHECK(!src2.is(kScratchRegister));
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    movp(kScratchRegister, src1);
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    orp(kScratchRegister, src2);
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    JumpIfNotSmi(kScratchRegister, on_not_smis, near_jump);
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    movp(dst, kScratchRegister);
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  } else {
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    movp(dst, src1);
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    orp(dst, src2);
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    JumpIfNotSmi(dst, on_not_smis, near_jump);
  }
}


1405
Condition MacroAssembler::CheckSmi(Register src) {
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  STATIC_ASSERT(kSmiTag == 0);
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  testb(src, Immediate(kSmiTagMask));
  return zero;
}


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Condition MacroAssembler::CheckSmi(const Operand& src) {
1413
  STATIC_ASSERT(kSmiTag == 0);
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  testb(src, Immediate(kSmiTagMask));
  return zero;
}


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Condition MacroAssembler::CheckNonNegativeSmi(Register src) {
1420
  STATIC_ASSERT(kSmiTag == 0);
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  // Test that both bits of the mask 0x8000000000000001 are zero.
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  movp(kScratchRegister, src);
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  rolp(kScratchRegister, Immediate(1));
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  testb(kScratchRegister, Immediate(3));
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  return zero;
}


Condition MacroAssembler::CheckBothSmi(Register first, Register second) {
  if (first.is(second)) {
    return CheckSmi(first);
  }
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  STATIC_ASSERT(kSmiTag == 0 && kHeapObjectTag == 1 && kHeapObjectTagMask == 3);
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  if (SmiValuesAre32Bits()) {
    leal(kScratchRegister, Operand(first, second, times_1, 0));
    testb(kScratchRegister, Immediate(0x03));
  } else {
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    DCHECK(SmiValuesAre31Bits());
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    movl(kScratchRegister, first);
    orl(kScratchRegister, second);
    testb(kScratchRegister, Immediate(kSmiTagMask));
  }
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  return zero;
}


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Condition MacroAssembler::CheckBothNonNegativeSmi(Register first,
                                                  Register second) {
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  if (first.is(second)) {
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    return CheckNonNegativeSmi(first);
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  }
1452
  movp(kScratchRegister, first);
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  orp(kScratchRegister, second);
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  rolp(kScratchRegister, Immediate(1));
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  testl(kScratchRegister, Immediate(3));
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  return zero;
}


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Condition MacroAssembler::CheckEitherSmi(Register first,
                                         Register second,
                                         Register scratch) {
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  if (first.is(second)) {
    return CheckSmi(first);
  }
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  if (scratch.is(second)) {
    andl(scratch, first);
  } else {
    if (!scratch.is(first)) {
      movl(scratch, first);
    }
    andl(scratch, second);
  }
  testb(scratch, Immediate(kSmiTagMask));
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  return zero;
}


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Condition MacroAssembler::CheckInteger32ValidSmiValue(Register src) {
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  if (SmiValuesAre32Bits()) {
    // A 32-bit integer value can always be converted to a smi.
    return always;
  } else {
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    DCHECK(SmiValuesAre31Bits());
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    cmpl(src, Immediate(0xc0000000));
    return positive;
  }
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}


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Condition MacroAssembler::CheckUInteger32ValidSmiValue(Register src) {
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  if (SmiValuesAre32Bits()) {
    // An unsigned 32-bit integer value is valid as long as the high bit
    // is not set.
    testl(src, src);
    return positive;
  } else {
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    DCHECK(SmiValuesAre31Bits());
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    testl(src, Immediate(0xc0000000));
    return zero;
  }
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}


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void MacroAssembler::CheckSmiToIndicator(Register dst, Register src) {
  if (dst.is(src)) {
    andl(dst, Immediate(kSmiTagMask));
  } else {
    movl(dst, Immediate(kSmiTagMask));
    andl(dst, src);
  }
}


void MacroAssembler::CheckSmiToIndicator(Register dst, const Operand& src) {
  if (!(src.AddressUsesRegister(dst))) {
    movl(dst, Immediate(kSmiTagMask));
    andl(dst, src);
  } else {
    movl(dst, src);
    andl(dst, Immediate(kSmiTagMask));
  }
}


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void MacroAssembler::JumpIfValidSmiValue(Register src,
                                         Label* on_valid,
                                         Label::Distance near_jump) {
  Condition is_valid = CheckInteger32ValidSmiValue(src);
  j(is_valid, on_valid, near_jump);
}


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void MacroAssembler::JumpIfNotValidSmiValue(Register src,
                                            Label* on_invalid,
                                            Label::Distance near_jump) {
  Condition is_valid = CheckInteger32ValidSmiValue(src);
  j(NegateCondition(is_valid), on_invalid, near_jump);
}


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void MacroAssembler::JumpIfUIntValidSmiValue(Register src,
                                             Label* on_valid,
                                             Label::Distance near_jump) {
  Condition is_valid = CheckUInteger32ValidSmiValue(src);
  j(is_valid, on_valid, near_jump);
}


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void MacroAssembler::JumpIfUIntNotValidSmiValue(Register src,
                                                Label* on_invalid,
                                                Label::Distance near_jump) {
  Condition is_valid = CheckUInteger32ValidSmiValue(src);
  j(NegateCondition(is_valid), on_invalid, near_jump);
}


void MacroAssembler::JumpIfSmi(Register src,
                               Label* on_smi,
                               Label::Distance near_jump) {
  Condition smi = CheckSmi(src);
  j(smi, on_smi, near_jump);
}


void MacroAssembler::JumpIfNotSmi(Register src,
                                  Label* on_not_smi,
                                  Label::Distance near_jump) {
  Condition smi = CheckSmi(src);
  j(NegateCondition(smi), on_not_smi, near_jump);
}


void MacroAssembler::JumpUnlessNonNegativeSmi(
    Register src, Label* on_not_smi_or_negative,
    Label::Distance near_jump) {
  Condition non_negative_smi = CheckNonNegativeSmi(src);
  j(NegateCondition(non_negative_smi), on_not_smi_or_negative, near_jump);
}


void MacroAssembler::JumpIfSmiEqualsConstant(Register src,
                                             Smi* constant,
                                             Label* on_equals,
                                             Label::Distance near_jump) {
  SmiCompare(src, constant);
  j(equal, on_equals, near_jump);
}


void MacroAssembler::JumpIfNotBothSmi(Register src1,
                                      Register src2,
                                      Label* on_not_both_smi,
                                      Label::Distance near_jump) {
  Condition both_smi = CheckBothSmi(src1, src2);
  j(NegateCondition(both_smi), on_not_both_smi, near_jump);
}


void MacroAssembler::JumpUnlessBothNonNegativeSmi(Register src1,
                                                  Register src2,
                                                  Label* on_not_both_smi,
                                                  Label::Distance near_jump) {
  Condition both_smi = CheckBothNonNegativeSmi(src1, src2);
  j(NegateCondition(both_smi), on_not_both_smi, near_jump);
}


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void MacroAssembler::SmiAddConstant(Register dst, Register src, Smi* constant) {
  if (constant->value() == 0) {
    if (!dst.is(src)) {
1612
      movp(dst, src);
1613
    }
1614
    return;
1615
  } else if (dst.is(src)) {
1616
    DCHECK(!dst.is(kScratchRegister));
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    Register constant_reg = GetSmiConstant(constant);
    addp(dst, constant_reg);
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  } else {
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    LoadSmiConstant(dst, constant);
    addp(dst, src);
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  }
}


1626 1627
void MacroAssembler::SmiAddConstant(const Operand& dst, Smi* constant) {
  if (constant->value() != 0) {
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    if (SmiValuesAre32Bits()) {
      addl(Operand(dst, kSmiShift / kBitsPerByte),
           Immediate(constant->value()));
    } else {
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      DCHECK(SmiValuesAre31Bits());
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      addp(dst, Immediate(constant));
    }
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  }
}


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void MacroAssembler::SmiAddConstant(Register dst, Register src, Smi* constant,
                                    SmiOperationConstraints constraints,
1641
                                    Label* bailout_label,
1642 1643 1644
                                    Label::Distance near_jump) {
  if (constant->value() == 0) {
    if (!dst.is(src)) {
1645
      movp(dst, src);
1646 1647
    }
  } else if (dst.is(src)) {
1648
    DCHECK(!dst.is(kScratchRegister));
1649
    LoadSmiConstant(kScratchRegister, constant);
1650
    addp(dst, kScratchRegister);
1651
    if (constraints & SmiOperationConstraint::kBailoutOnNoOverflow) {
1652
      j(no_overflow, bailout_label, near_jump);
1653
      DCHECK(constraints & SmiOperationConstraint::kPreserveSourceRegister);
1654
      subp(dst, kScratchRegister);
1655 1656
    } else if (constraints & SmiOperationConstraint::kBailoutOnOverflow) {
      if (constraints & SmiOperationConstraint::kPreserveSourceRegister) {
1657 1658
        Label done;
        j(no_overflow, &done, Label::kNear);
1659
        subp(dst, kScratchRegister);
1660 1661 1662 1663 1664 1665 1666
        jmp(bailout_label, near_jump);
        bind(&done);
      } else {
        // Bailout if overflow without reserving src.
        j(overflow, bailout_label, near_jump);
      }
    } else {
1667
      UNREACHABLE();
1668
    }
1669
  } else {
1670 1671
    DCHECK(constraints & SmiOperationConstraint::kPreserveSourceRegister);
    DCHECK(constraints & SmiOperationConstraint::kBailoutOnOverflow);
1672
    LoadSmiConstant(dst, constant);
1673
    addp(dst, src);
1674
    j(overflow, bailout_label, near_jump);
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  }
}


1679 1680 1681
void MacroAssembler::SmiSubConstant(Register dst, Register src, Smi* constant) {
  if (constant->value() == 0) {
    if (!dst.is(src)) {
1682
      movp(dst, src);
1683 1684
    }
  } else if (dst.is(src)) {
1685
    DCHECK(!dst.is(kScratchRegister));
1686
    Register constant_reg = GetSmiConstant(constant);
1687
    subp(dst, constant_reg);
1688 1689
  } else {
    if (constant->value() == Smi::kMinValue) {
1690
      LoadSmiConstant(dst, constant);
1691 1692
      // Adding and subtracting the min-value gives the same result, it only
      // differs on the overflow bit, which we don't check here.
1693
      addp(dst, src);
1694
    } else {
1695
      // Subtract by adding the negation.
1696
      LoadSmiConstant(dst, Smi::FromInt(-constant->value()));
1697
      addp(dst, src);
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    }
  }
}


1703 1704
void MacroAssembler::SmiSubConstant(Register dst, Register src, Smi* constant,
                                    SmiOperationConstraints constraints,
1705
                                    Label* bailout_label,
1706 1707 1708
                                    Label::Distance near_jump) {
  if (constant->value() == 0) {
    if (!dst.is(src)) {
1709
      movp(dst, src);
1710 1711
    }
  } else if (dst.is(src)) {
1712
    DCHECK(!dst.is(kScratchRegister));
1713
    LoadSmiConstant(kScratchRegister, constant);
1714
    subp(dst, kScratchRegister);
1715
    if (constraints & SmiOperationConstraint::kBailoutOnNoOverflow) {
1716
      j(no_overflow, bailout_label, near_jump);
1717
      DCHECK(constraints & SmiOperationConstraint::kPreserveSourceRegister);
1718
      addp(dst, kScratchRegister);
1719 1720
    } else if (constraints & SmiOperationConstraint::kBailoutOnOverflow) {
      if (constraints & SmiOperationConstraint::kPreserveSourceRegister) {
1721 1722
        Label done;
        j(no_overflow, &done, Label::kNear);
1723
        addp(dst, kScratchRegister);
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        jmp(bailout_label, near_jump);
        bind(&done);
      } else {
        // Bailout if overflow without reserving src.
        j(overflow, bailout_label, near_jump);
      }
1730
    } else {
1731
      UNREACHABLE();
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    }
  } else {
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    DCHECK(constraints & SmiOperationConstraint::kPreserveSourceRegister);
    DCHECK(constraints & SmiOperationConstraint::kBailoutOnOverflow);
1736
    if (constant->value() == Smi::kMinValue) {
1737
      DCHECK(!dst.is(kScratchRegister));
1738
      movp(dst, src);
1739
      LoadSmiConstant(kScratchRegister, constant);
1740
      subp(dst, kScratchRegister);
1741
      j(overflow, bailout_label, near_jump);
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    } else {
      // Subtract by adding the negation.
      LoadSmiConstant(dst, Smi::FromInt(-(constant->value())));
1745
      addp(dst, src);
1746
      j(overflow, bailout_label, near_jump);
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    }
  }
}


void MacroAssembler::SmiNeg(Register dst,
                            Register src,
                            Label* on_smi_result,
                            Label::Distance near_jump) {
  if (dst.is(src)) {
1757
    DCHECK(!dst.is(kScratchRegister));
1758
    movp(kScratchRegister, src);
1759
    negp(dst);  // Low 32 bits are retained as zero by negation.
1760
    // Test if result is zero or Smi::kMinValue.
1761
    cmpp(dst, kScratchRegister);
1762
    j(not_equal, on_smi_result, near_jump);
1763
    movp(src, kScratchRegister);
1764
  } else {
1765
    movp(dst, src);
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    negp(dst);
    cmpp(dst, src);
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    // If the result is zero or Smi::kMinValue, negation failed to create a smi.
    j(not_equal, on_smi_result, near_jump);
  }
}


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template<class T>
static void SmiAddHelper(MacroAssembler* masm,
                         Register dst,
                         Register src1,
                         T src2,
                         Label* on_not_smi_result,
                         Label::Distance near_jump) {
  if (dst.is(src1)) {
    Label done;
1783
    masm->addp(dst, src2);
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    masm->j(no_overflow, &done, Label::kNear);
    // Restore src1.
1786
    masm->subp(dst, src2);
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    masm->jmp(on_not_smi_result, near_jump);
    masm->bind(&done);
  } else {
1790
    masm->movp(dst, src1);
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    masm->addp(dst, src2);
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    masm->j(overflow, on_not_smi_result, near_jump);
  }
}


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void MacroAssembler::SmiAdd(Register dst,
                            Register src1,
                            Register src2,
                            Label* on_not_smi_result,
                            Label::Distance near_jump) {
1802 1803
  DCHECK_NOT_NULL(on_not_smi_result);
  DCHECK(!dst.is(src2));
1804
  SmiAddHelper<Register>(this, dst, src1, src2, on_not_smi_result, near_jump);
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}


void MacroAssembler::SmiAdd(Register dst,
                            Register src1,
                            const Operand& src2,
                            Label* on_not_smi_result,
                            Label::Distance near_jump) {
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  DCHECK_NOT_NULL(on_not_smi_result);
  DCHECK(!src2.AddressUsesRegister(dst));
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  SmiAddHelper<Operand>(this, dst, src1, src2, on_not_smi_result, near_jump);
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}


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void MacroAssembler::SmiAdd(Register dst,
                            Register src1,
                            Register src2) {
  // No overflow checking. Use only when it's known that
  // overflowing is impossible.
1824
  if (!dst.is(src1)) {
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    if (emit_debug_code()) {
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      movp(kScratchRegister, src1);
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      addp(kScratchRegister, src2);
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      Check(no_overflow, kSmiAdditionOverflow);
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    }
1830
    leap(dst, Operand(src1, src2, times_1, 0));
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  } else {
1832
    addp(dst, src2);
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    Assert(no_overflow, kSmiAdditionOverflow);
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  }
}


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template<class T>
static void SmiSubHelper(MacroAssembler* masm,
                         Register dst,
                         Register src1,
                         T src2,
                         Label* on_not_smi_result,
                         Label::Distance near_jump) {
1845
  if (dst.is(src1)) {
1846
    Label done;
1847
    masm->subp(dst, src2);
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    masm->j(no_overflow, &done, Label::kNear);
    // Restore src1.
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    masm->addp(dst, src2);
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    masm->jmp(on_not_smi_result, near_jump);
    masm->bind(&done);
1853
  } else {
1854
    masm->movp(dst, src1);
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    masm->subp(dst, src2);
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    masm->j(overflow, on_not_smi_result, near_jump);
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  }
}


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void MacroAssembler::SmiSub(Register dst,
                            Register src1,
                            Register src2,
                            Label* on_not_smi_result,
                            Label::Distance near_jump) {
1866 1867
  DCHECK_NOT_NULL(on_not_smi_result);
  DCHECK(!dst.is(src2));
1868
  SmiSubHelper<Register>(this, dst, src1, src2, on_not_smi_result, near_jump);
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}


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void MacroAssembler::SmiSub(Register dst,
                            Register src1,
                            const Operand& src2,
                            Label* on_not_smi_result,
                            Label::Distance near_jump) {
1877 1878
  DCHECK_NOT_NULL(on_not_smi_result);
  DCHECK(!src2.AddressUsesRegister(dst));
1879
  SmiSubHelper<Operand>(this, dst, src1, src2, on_not_smi_result, near_jump);
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}


1883 1884 1885 1886 1887
template<class T>
static void SmiSubNoOverflowHelper(MacroAssembler* masm,
                                   Register dst,
                                   Register src1,
                                   T src2) {
1888 1889
  // No overflow checking. Use only when it's known that
  // overflowing is impossible (e.g., subtracting two positive smis).
1890
  if (!dst.is(src1)) {
1891
    masm->movp(dst, src1);
1892
  }
1893
  masm->subp(dst, src2);
1894 1895 1896 1897 1898
  masm->Assert(no_overflow, kSmiSubtractionOverflow);
}


void MacroAssembler::SmiSub(Register dst, Register src1, Register src2) {
1899
  DCHECK(!dst.is(src2));
1900 1901 1902 1903 1904 1905 1906 1907
  SmiSubNoOverflowHelper<Register>(this, dst, src1, src2);
}


void MacroAssembler::SmiSub(Register dst,
                            Register src1,
                            const Operand& src2) {
  SmiSubNoOverflowHelper<Operand>(this, dst, src1, src2);
1908 1909 1910
}


1911 1912 1913 1914 1915
void MacroAssembler::SmiMul(Register dst,
                            Register src1,
                            Register src2,
                            Label* on_not_smi_result,
                            Label::Distance near_jump) {
1916 1917 1918 1919
  DCHECK(!dst.is(src2));
  DCHECK(!dst.is(kScratchRegister));
  DCHECK(!src1.is(kScratchRegister));
  DCHECK(!src2.is(kScratchRegister));
1920 1921 1922

  if (dst.is(src1)) {
    Label failure, zero_correct_result;
1923
    movp(kScratchRegister, src1);  // Create backup for later testing.
1924
    SmiToInteger64(dst, src1);
1925
    imulp(dst, src2);
1926 1927 1928 1929 1930
    j(overflow, &failure, Label::kNear);

    // Check for negative zero result.  If product is zero, and one
    // argument is negative, go to slow case.
    Label correct_result;
1931
    testp(dst, dst);
1932 1933
    j(not_zero, &correct_result, Label::kNear);

1934
    movp(dst, kScratchRegister);
1935
    xorp(dst, src2);
1936 1937 1938 1939
    // Result was positive zero.
    j(positive, &zero_correct_result, Label::kNear);

    bind(&failure);  // Reused failure exit, restores src1.
1940
    movp(src1, kScratchRegister);
1941 1942 1943 1944 1945 1946 1947 1948
    jmp(on_not_smi_result, near_jump);

    bind(&zero_correct_result);
    Set(dst, 0);

    bind(&correct_result);
  } else {
    SmiToInteger64(dst, src1);
1949
    imulp(dst, src2);
1950 1951 1952 1953
    j(overflow, on_not_smi_result, near_jump);
    // Check for negative zero result.  If product is zero, and one
    // argument is negative, go to slow case.
    Label correct_result;
1954
    testp(dst, dst);
1955 1956 1957
    j(not_zero, &correct_result, Label::kNear);
    // One of src1 and src2 is zero, the check whether the other is
    // negative.
1958
    movp(kScratchRegister, src1);
1959
    xorp(kScratchRegister, src2);
1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970
    j(negative, on_not_smi_result, near_jump);
    bind(&correct_result);
  }
}


void MacroAssembler::SmiDiv(Register dst,
                            Register src1,
                            Register src2,
                            Label* on_not_smi_result,
                            Label::Distance near_jump) {
1971 1972 1973 1974 1975 1976
  DCHECK(!src1.is(kScratchRegister));
  DCHECK(!src2.is(kScratchRegister));
  DCHECK(!dst.is(kScratchRegister));
  DCHECK(!src2.is(rax));
  DCHECK(!src2.is(rdx));
  DCHECK(!src1.is(rdx));
1977 1978

  // Check for 0 divisor (result is +/-Infinity).
1979
  testp(src2, src2);
1980 1981 1982
  j(zero, on_not_smi_result, near_jump);

  if (src1.is(rax)) {
1983
    movp(kScratchRegister, src1);
1984 1985 1986 1987 1988 1989 1990 1991 1992 1993
  }
  SmiToInteger32(rax, src1);
  // We need to rule out dividing Smi::kMinValue by -1, since that would
  // overflow in idiv and raise an exception.
  // We combine this with negative zero test (negative zero only happens
  // when dividing zero by a negative number).

  // We overshoot a little and go to slow case if we divide min-value
  // by any negative value, not just -1.
  Label safe_div;
1994
  testl(rax, Immediate(~Smi::kMinValue));
1995
  j(not_zero, &safe_div, Label::kNear);
1996
  testp(src2, src2);
1997 1998
  if (src1.is(rax)) {
    j(positive, &safe_div, Label::kNear);
1999
    movp(src1, kScratchRegister);
2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015
    jmp(on_not_smi_result, near_jump);
  } else {
    j(negative, on_not_smi_result, near_jump);
  }
  bind(&safe_div);

  SmiToInteger32(src2, src2);
  // Sign extend src1 into edx:eax.
  cdq();
  idivl(src2);
  Integer32ToSmi(src2, src2);
  // Check that the remainder is zero.
  testl(rdx, rdx);
  if (src1.is(rax)) {
    Label smi_result;
    j(zero, &smi_result, Label::kNear);
2016
    movp(src1, kScratchRegister);
2017 2018 2019 2020 2021 2022
    jmp(on_not_smi_result, near_jump);
    bind(&smi_result);
  } else {
    j(not_zero, on_not_smi_result, near_jump);
  }
  if (!dst.is(src1) && src1.is(rax)) {
2023
    movp(src1, kScratchRegister);
2024 2025 2026 2027 2028 2029 2030 2031 2032 2033
  }
  Integer32ToSmi(dst, rax);
}


void MacroAssembler::SmiMod(Register dst,
                            Register src1,
                            Register src2,
                            Label* on_not_smi_result,
                            Label::Distance near_jump) {
2034 2035 2036 2037 2038 2039 2040
  DCHECK(!dst.is(kScratchRegister));
  DCHECK(!src1.is(kScratchRegister));
  DCHECK(!src2.is(kScratchRegister));
  DCHECK(!src2.is(rax));
  DCHECK(!src2.is(rdx));
  DCHECK(!src1.is(rdx));
  DCHECK(!src1.is(src2));
2041

2042
  testp(src2, src2);
2043 2044 2045
  j(zero, on_not_smi_result, near_jump);

  if (src1.is(rax)) {
2046
    movp(kScratchRegister, src1);
2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059
  }
  SmiToInteger32(rax, src1);
  SmiToInteger32(src2, src2);

  // Test for the edge case of dividing Smi::kMinValue by -1 (will overflow).
  Label safe_div;
  cmpl(rax, Immediate(Smi::kMinValue));
  j(not_equal, &safe_div, Label::kNear);
  cmpl(src2, Immediate(-1));
  j(not_equal, &safe_div, Label::kNear);
  // Retag inputs and go slow case.
  Integer32ToSmi(src2, src2);
  if (src1.is(rax)) {
2060
    movp(src1, kScratchRegister);
2061 2062 2063 2064 2065 2066 2067 2068 2069 2070
  }
  jmp(on_not_smi_result, near_jump);
  bind(&safe_div);

  // Sign extend eax into edx:eax.
  cdq();
  idivl(src2);
  // Restore smi tags on inputs.
  Integer32ToSmi(src2, src2);
  if (src1.is(rax)) {
2071
    movp(src1, kScratchRegister);
2072 2073 2074 2075 2076 2077
  }
  // Check for a negative zero result.  If the result is zero, and the
  // dividend is negative, go slow to return a floating point negative zero.
  Label smi_result;
  testl(rdx, rdx);
  j(not_zero, &smi_result, Label::kNear);
2078
  testp(src1, src1);
2079 2080 2081 2082 2083 2084
  j(negative, on_not_smi_result, near_jump);
  bind(&smi_result);
  Integer32ToSmi(dst, rdx);
}


2085
void MacroAssembler::SmiNot(Register dst, Register src) {
2086 2087
  DCHECK(!dst.is(kScratchRegister));
  DCHECK(!src.is(kScratchRegister));
2088 2089 2090 2091 2092
  if (SmiValuesAre32Bits()) {
    // Set tag and padding bits before negating, so that they are zero
    // afterwards.
    movl(kScratchRegister, Immediate(~0));
  } else {
2093
    DCHECK(SmiValuesAre31Bits());
2094 2095
    movl(kScratchRegister, Immediate(1));
  }
2096
  if (dst.is(src)) {
2097
    xorp(dst, kScratchRegister);
2098
  } else {
2099
    leap(dst, Operand(src, kScratchRegister, times_1, 0));
2100
  }
2101
  notp(dst);
2102 2103 2104 2105
}


void MacroAssembler::SmiAnd(Register dst, Register src1, Register src2) {
2106
  DCHECK(!dst.is(src2));
2107
  if (!dst.is(src1)) {
2108
    movp(dst, src1);
2109
  }
2110
  andp(dst, src2);
2111 2112 2113 2114 2115
}


void MacroAssembler::SmiAndConstant(Register dst, Register src, Smi* constant) {
  if (constant->value() == 0) {
2116
    Set(dst, 0);
2117
  } else if (dst.is(src)) {
2118
    DCHECK(!dst.is(kScratchRegister));
2119
    Register constant_reg = GetSmiConstant(constant);
2120
    andp(dst, constant_reg);
2121
  } else {
2122
    LoadSmiConstant(dst, constant);
2123
    andp(dst, src);
2124 2125 2126 2127 2128 2129
  }
}


void MacroAssembler::SmiOr(Register dst, Register src1, Register src2) {
  if (!dst.is(src1)) {
2130
    DCHECK(!src1.is(src2));
2131
    movp(dst, src1);
2132
  }
2133
  orp(dst, src2);
2134 2135 2136 2137 2138
}


void MacroAssembler::SmiOrConstant(Register dst, Register src, Smi* constant) {
  if (dst.is(src)) {
2139
    DCHECK(!dst.is(kScratchRegister));
2140
    Register constant_reg = GetSmiConstant(constant);
2141
    orp(dst, constant_reg);
2142
  } else {
2143
    LoadSmiConstant(dst, constant);
2144
    orp(dst, src);
2145 2146 2147 2148 2149 2150
  }
}


void MacroAssembler::SmiXor(Register dst, Register src1, Register src2) {
  if (!dst.is(src1)) {
2151
    DCHECK(!src1.is(src2));
2152
    movp(dst, src1);
2153
  }
2154
  xorp(dst, src2);
2155 2156 2157 2158 2159
}


void MacroAssembler::SmiXorConstant(Register dst, Register src, Smi* constant) {
  if (dst.is(src)) {
2160
    DCHECK(!dst.is(kScratchRegister));
2161
    Register constant_reg = GetSmiConstant(constant);
2162
    xorp(dst, constant_reg);
2163
  } else {
2164
    LoadSmiConstant(dst, constant);
2165
    xorp(dst, src);
2166 2167 2168 2169 2170 2171 2172
  }
}


void MacroAssembler::SmiShiftArithmeticRightConstant(Register dst,
                                                     Register src,
                                                     int shift_value) {
2173
  DCHECK(is_uint5(shift_value));
2174 2175
  if (shift_value > 0) {
    if (dst.is(src)) {
2176 2177
      sarp(dst, Immediate(shift_value + kSmiShift));
      shlp(dst, Immediate(kSmiShift));
2178 2179 2180 2181 2182 2183 2184 2185 2186
    } else {
      UNIMPLEMENTED();  // Not used.
    }
  }
}


void MacroAssembler::SmiShiftLeftConstant(Register dst,
                                          Register src,
2187 2188 2189 2190 2191 2192 2193 2194 2195 2196 2197 2198
                                          int shift_value,
                                          Label* on_not_smi_result,
                                          Label::Distance near_jump) {
  if (SmiValuesAre32Bits()) {
    if (!dst.is(src)) {
      movp(dst, src);
    }
    if (shift_value > 0) {
      // Shift amount specified by lower 5 bits, not six as the shl opcode.
      shlq(dst, Immediate(shift_value & 0x1f));
    }
  } else {
2199
    DCHECK(SmiValuesAre31Bits());
2200 2201 2202 2203 2204 2205 2206 2207
    if (dst.is(src)) {
      UNIMPLEMENTED();  // Not used.
    } else {
      SmiToInteger32(dst, src);
      shll(dst, Immediate(shift_value));
      JumpIfNotValidSmiValue(dst, on_not_smi_result, near_jump);
      Integer32ToSmi(dst, dst);
    }
2208 2209 2210 2211
  }
}


2212 2213 2214 2215 2216 2217 2218 2219
void MacroAssembler::SmiShiftLogicalRightConstant(
    Register dst, Register src, int shift_value,
    Label* on_not_smi_result, Label::Distance near_jump) {
  // Logic right shift interprets its result as an *unsigned* number.
  if (dst.is(src)) {
    UNIMPLEMENTED();  // Not used.
  } else {
    if (shift_value == 0) {
2220
      testp(src, src);
2221 2222
      j(negative, on_not_smi_result, near_jump);
    }
2223 2224 2225 2226 2227
    if (SmiValuesAre32Bits()) {
      movp(dst, src);
      shrp(dst, Immediate(shift_value + kSmiShift));
      shlp(dst, Immediate(kSmiShift));
    } else {
2228
      DCHECK(SmiValuesAre31Bits());
2229 2230 2231 2232 2233
      SmiToInteger32(dst, src);
      shrp(dst, Immediate(shift_value));
      JumpIfUIntNotValidSmiValue(dst, on_not_smi_result, near_jump);
      Integer32ToSmi(dst, dst);
    }
2234 2235 2236 2237
  }
}


2238 2239
void MacroAssembler::SmiShiftLeft(Register dst,
                                  Register src1,
2240 2241 2242 2243
                                  Register src2,
                                  Label* on_not_smi_result,
                                  Label::Distance near_jump) {
  if (SmiValuesAre32Bits()) {
2244
    DCHECK(!dst.is(rcx));
2245 2246 2247 2248 2249 2250 2251 2252 2253
    if (!dst.is(src1)) {
      movp(dst, src1);
    }
    // Untag shift amount.
    SmiToInteger32(rcx, src2);
    // Shift amount specified by lower 5 bits, not six as the shl opcode.
    andp(rcx, Immediate(0x1f));
    shlq_cl(dst);
  } else {
2254 2255 2256 2257 2258 2259
    DCHECK(SmiValuesAre31Bits());
    DCHECK(!dst.is(kScratchRegister));
    DCHECK(!src1.is(kScratchRegister));
    DCHECK(!src2.is(kScratchRegister));
    DCHECK(!dst.is(src2));
    DCHECK(!dst.is(rcx));
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

    if (src1.is(rcx) || src2.is(rcx)) {
      movq(kScratchRegister, rcx);
    }
    if (dst.is(src1)) {
      UNIMPLEMENTED();  // Not used.
    } else {
      Label valid_result;
      SmiToInteger32(dst, src1);
      SmiToInteger32(rcx, src2);
      shll_cl(dst);
      JumpIfValidSmiValue(dst, &valid_result, Label::kNear);
      // As src1 or src2 could not be dst, we do not need to restore them for
      // clobbering dst.
      if (src1.is(rcx) || src2.is(rcx)) {
        if (src1.is(rcx)) {
          movq(src1, kScratchRegister);
        } else {
          movq(src2, kScratchRegister);
        }
      }
      jmp(on_not_smi_result, near_jump);
      bind(&valid_result);
      Integer32ToSmi(dst, dst);
    }
2285 2286 2287 2288
  }
}


2289 2290 2291 2292 2293
void MacroAssembler::SmiShiftLogicalRight(Register dst,
                                          Register src1,
                                          Register src2,
                                          Label* on_not_smi_result,
                                          Label::Distance near_jump) {
2294 2295 2296 2297 2298
  DCHECK(!dst.is(kScratchRegister));
  DCHECK(!src1.is(kScratchRegister));
  DCHECK(!src2.is(kScratchRegister));
  DCHECK(!dst.is(src2));
  DCHECK(!dst.is(rcx));
2299 2300 2301
  if (src1.is(rcx) || src2.is(rcx)) {
    movq(kScratchRegister, rcx);
  }
2302 2303
  if (dst.is(src1)) {
    UNIMPLEMENTED();  // Not used.
2304
  } else {
2305 2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321
    Label valid_result;
    SmiToInteger32(dst, src1);
    SmiToInteger32(rcx, src2);
    shrl_cl(dst);
    JumpIfUIntValidSmiValue(dst, &valid_result, Label::kNear);
    // As src1 or src2 could not be dst, we do not need to restore them for
    // clobbering dst.
    if (src1.is(rcx) || src2.is(rcx)) {
      if (src1.is(rcx)) {
        movq(src1, kScratchRegister);
      } else {
        movq(src2, kScratchRegister);
      }
     }
    jmp(on_not_smi_result, near_jump);
    bind(&valid_result);
    Integer32ToSmi(dst, dst);
2322 2323 2324 2325
  }
}


2326 2327 2328
void MacroAssembler::SmiShiftArithmeticRight(Register dst,
                                             Register src1,
                                             Register src2) {
2329 2330 2331 2332
  DCHECK(!dst.is(kScratchRegister));
  DCHECK(!src1.is(kScratchRegister));
  DCHECK(!src2.is(kScratchRegister));
  DCHECK(!dst.is(rcx));
2333 2334

  SmiToInteger32(rcx, src2);
2335
  if (!dst.is(src1)) {
2336
    movp(dst, src1);
2337
  }
2338 2339 2340
  SmiToInteger32(dst, dst);
  sarl_cl(dst);
  Integer32ToSmi(dst, dst);
2341 2342 2343
}


2344 2345 2346 2347 2348
void MacroAssembler::SelectNonSmi(Register dst,
                                  Register src1,
                                  Register src2,
                                  Label* on_not_smis,
                                  Label::Distance near_jump) {
2349 2350 2351 2352 2353
  DCHECK(!dst.is(kScratchRegister));
  DCHECK(!src1.is(kScratchRegister));
  DCHECK(!src2.is(kScratchRegister));
  DCHECK(!dst.is(src1));
  DCHECK(!dst.is(src2));
2354 2355
  // Both operands must not be smis.
#ifdef DEBUG
2356 2357
  Condition not_both_smis = NegateCondition(CheckBothSmi(src1, src2));
  Check(not_both_smis, kBothRegistersWereSmisInSelectNonSmi);
2358
#endif
2359
  STATIC_ASSERT(kSmiTag == 0);
2360
  DCHECK_EQ(static_cast<Smi*>(0), Smi::kZero);
2361
  movl(kScratchRegister, Immediate(kSmiTagMask));
2362
  andp(kScratchRegister, src1);
2363 2364 2365 2366 2367
  testl(kScratchRegister, src2);
  // If non-zero then both are smis.
  j(not_zero, on_not_smis, near_jump);

  // Exactly one operand is a smi.
2368
  DCHECK_EQ(1, static_cast<int>(kSmiTagMask));
2369
  // kScratchRegister still holds src1 & kSmiTag, which is either zero or one.
2370
  subp(kScratchRegister, Immediate(1));
2371
  // If src1 is a smi, then scratch register all 1s, else it is all 0s.
2372
  movp(dst, src1);
2373 2374
  xorp(dst, src2);
  andp(dst, kScratchRegister);
2375
  // If src1 is a smi, dst holds src1 ^ src2, else it is zero.
2376
  xorp(dst, src1);
2377 2378 2379 2380
  // If src1 is a smi, dst is src2, else it is src1, i.e., the non-smi.
}


2381 2382 2383
SmiIndex MacroAssembler::SmiToIndex(Register dst,
                                    Register src,
                                    int shift) {
2384
  if (SmiValuesAre32Bits()) {
2385
    DCHECK(is_uint6(shift));
2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396
    // There is a possible optimization if shift is in the range 60-63, but that
    // will (and must) never happen.
    if (!dst.is(src)) {
      movp(dst, src);
    }
    if (shift < kSmiShift) {
      sarp(dst, Immediate(kSmiShift - shift));
    } else {
      shlp(dst, Immediate(shift - kSmiShift));
    }
    return SmiIndex(dst, times_1);
2397
  } else {
2398 2399
    DCHECK(SmiValuesAre31Bits());
    DCHECK(shift >= times_1 && shift <= (static_cast<int>(times_8) + 1));
2400 2401 2402 2403 2404 2405 2406 2407 2408 2409 2410
    if (!dst.is(src)) {
      movp(dst, src);
    }
    // We have to sign extend the index register to 64-bit as the SMI might
    // be negative.
    movsxlq(dst, dst);
    if (shift == times_1) {
      sarq(dst, Immediate(kSmiShift));
      return SmiIndex(dst, times_1);
    }
    return SmiIndex(dst, static_cast<ScaleFactor>(shift - 1));
2411 2412 2413
  }
}

2414

2415 2416 2417
SmiIndex MacroAssembler::SmiToNegativeIndex(Register dst,
                                            Register src,
                                            int shift) {
2418 2419
  if (SmiValuesAre32Bits()) {
    // Register src holds a positive smi.
2420
    DCHECK(is_uint6(shift));
2421 2422 2423 2424 2425 2426 2427 2428 2429 2430
    if (!dst.is(src)) {
      movp(dst, src);
    }
    negp(dst);
    if (shift < kSmiShift) {
      sarp(dst, Immediate(kSmiShift - shift));
    } else {
      shlp(dst, Immediate(shift - kSmiShift));
    }
    return SmiIndex(dst, times_1);
2431
  } else {
2432 2433
    DCHECK(SmiValuesAre31Bits());
    DCHECK(shift >= times_1 && shift <= (static_cast<int>(times_8) + 1));
2434 2435 2436 2437 2438 2439 2440 2441 2442
    if (!dst.is(src)) {
      movp(dst, src);
    }
    negq(dst);
    if (shift == times_1) {
      sarq(dst, Immediate(kSmiShift));
      return SmiIndex(dst, times_1);
    }
    return SmiIndex(dst, static_cast<ScaleFactor>(shift - 1));
2443 2444 2445
  }
}

2446

2447
void MacroAssembler::AddSmiField(Register dst, const Operand& src) {
2448
  if (SmiValuesAre32Bits()) {
2449
    DCHECK_EQ(0, kSmiShift % kBitsPerByte);
2450 2451
    addl(dst, Operand(src, kSmiShift / kBitsPerByte));
  } else {
2452
    DCHECK(SmiValuesAre31Bits());
2453 2454 2455
    SmiToInteger32(kScratchRegister, src);
    addl(dst, kScratchRegister);
  }
2456 2457 2458
}


2459 2460 2461
void MacroAssembler::Push(Smi* source) {
  intptr_t smi = reinterpret_cast<intptr_t>(source);
  if (is_int32(smi)) {
2462
    Push(Immediate(static_cast<int32_t>(smi)));
2463 2464
  } else {
    Register constant = GetSmiConstant(source);
2465
    Push(constant);
2466 2467 2468 2469
  }
}


2470
void MacroAssembler::PushRegisterAsTwoSmis(Register src, Register scratch) {
2471
  DCHECK(!src.is(scratch));
2472
  movp(scratch, src);
2473
  // High bits.
2474
  shrp(src, Immediate(kPointerSize * kBitsPerByte - kSmiShift));
2475
  shlp(src, Immediate(kSmiShift));
2476
  Push(src);
2477
  // Low bits.
2478
  shlp(scratch, Immediate(kSmiShift));
2479
  Push(scratch);
2480 2481 2482
}


2483
void MacroAssembler::PopRegisterAsTwoSmis(Register dst, Register scratch) {
2484
  DCHECK(!dst.is(scratch));
2485
  Pop(scratch);
2486
  // Low bits.
2487
  shrp(scratch, Immediate(kSmiShift));
2488
  Pop(dst);
2489
  shrp(dst, Immediate(kSmiShift));
2490
  // High bits.
2491
  shlp(dst, Immediate(kPointerSize * kBitsPerByte - kSmiShift));
2492
  orp(dst, scratch);
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}


2496
void MacroAssembler::Test(const Operand& src, Smi* source) {
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  if (SmiValuesAre32Bits()) {
    testl(Operand(src, kIntSize), Immediate(source->value()));
  } else {
2500
    DCHECK(SmiValuesAre31Bits());
2501 2502
    testl(src, Immediate(source));
  }
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}


// ----------------------------------------------------------------------------


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void MacroAssembler::JumpIfNotString(Register object,
                                     Register object_map,
                                     Label* not_string,
                                     Label::Distance near_jump) {
  Condition is_smi = CheckSmi(object);
  j(is_smi, not_string, near_jump);
  CmpObjectType(object, FIRST_NONSTRING_TYPE, object_map);
  j(above_equal, not_string, near_jump);
}


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void MacroAssembler::JumpIfNotBothSequentialOneByteStrings(
    Register first_object, Register second_object, Register scratch1,
    Register scratch2, Label* on_fail, Label::Distance near_jump) {
2523 2524 2525 2526 2527
  // Check that both objects are not smis.
  Condition either_smi = CheckEitherSmi(first_object, second_object);
  j(either_smi, on_fail, near_jump);

  // Load instance type for both strings.
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  movp(scratch1, FieldOperand(first_object, HeapObject::kMapOffset));
  movp(scratch2, FieldOperand(second_object, HeapObject::kMapOffset));
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  movzxbl(scratch1, FieldOperand(scratch1, Map::kInstanceTypeOffset));
  movzxbl(scratch2, FieldOperand(scratch2, Map::kInstanceTypeOffset));

2533
  // Check that both are flat one-byte strings.
2534
  DCHECK(kNotStringTag != 0);
2535
  const int kFlatOneByteStringMask =
2536
      kIsNotStringMask | kStringRepresentationMask | kStringEncodingMask;
2537
  const int kFlatOneByteStringTag =
2538
      kStringTag | kOneByteStringTag | kSeqStringTag;
2539

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  andl(scratch1, Immediate(kFlatOneByteStringMask));
  andl(scratch2, Immediate(kFlatOneByteStringMask));
2542
  // Interleave the bits to check both scratch1 and scratch2 in one test.
2543
  DCHECK_EQ(0, kFlatOneByteStringMask & (kFlatOneByteStringMask << 3));
2544
  leap(scratch1, Operand(scratch1, scratch2, times_8, 0));
2545
  cmpl(scratch1,
2546
       Immediate(kFlatOneByteStringTag + (kFlatOneByteStringTag << 3)));
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  j(not_equal, on_fail, near_jump);
}


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void MacroAssembler::JumpIfInstanceTypeIsNotSequentialOneByte(
    Register instance_type, Register scratch, Label* failure,
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    Label::Distance near_jump) {
  if (!scratch.is(instance_type)) {
    movl(scratch, instance_type);
  }

2558
  const int kFlatOneByteStringMask =
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      kIsNotStringMask | kStringRepresentationMask | kStringEncodingMask;

2561
  andl(scratch, Immediate(kFlatOneByteStringMask));
2562
  cmpl(scratch, Immediate(kStringTag | kSeqStringTag | kOneByteStringTag));
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  j(not_equal, failure, near_jump);
}


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void MacroAssembler::JumpIfBothInstanceTypesAreNotSequentialOneByte(
    Register first_object_instance_type, Register second_object_instance_type,
    Register scratch1, Register scratch2, Label* on_fail,
2570 2571
    Label::Distance near_jump) {
  // Load instance type for both strings.
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  movp(scratch1, first_object_instance_type);
  movp(scratch2, second_object_instance_type);
2574

2575
  // Check that both are flat one-byte strings.
2576
  DCHECK(kNotStringTag != 0);
2577
  const int kFlatOneByteStringMask =
2578
      kIsNotStringMask | kStringRepresentationMask | kStringEncodingMask;
2579
  const int kFlatOneByteStringTag =
2580
      kStringTag | kOneByteStringTag | kSeqStringTag;
2581

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  andl(scratch1, Immediate(kFlatOneByteStringMask));
  andl(scratch2, Immediate(kFlatOneByteStringMask));
2584
  // Interleave the bits to check both scratch1 and scratch2 in one test.
2585
  DCHECK_EQ(0, kFlatOneByteStringMask & (kFlatOneByteStringMask << 3));
2586
  leap(scratch1, Operand(scratch1, scratch2, times_8, 0));
2587
  cmpl(scratch1,
2588
       Immediate(kFlatOneByteStringTag + (kFlatOneByteStringTag << 3)));
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  j(not_equal, on_fail, near_jump);
}


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template<class T>
static void JumpIfNotUniqueNameHelper(MacroAssembler* masm,
                                      T operand_or_register,
                                      Label* not_unique_name,
                                      Label::Distance distance) {
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  STATIC_ASSERT(kInternalizedTag == 0 && kStringTag == 0);
  Label succeed;
  masm->testb(operand_or_register,
              Immediate(kIsNotStringMask | kIsNotInternalizedMask));
  masm->j(zero, &succeed, Label::kNear);
  masm->cmpb(operand_or_register, Immediate(static_cast<uint8_t>(SYMBOL_TYPE)));
  masm->j(not_equal, not_unique_name, distance);

  masm->bind(&succeed);
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}


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void MacroAssembler::JumpIfNotUniqueNameInstanceType(Operand operand,
                                                     Label* not_unique_name,
                                                     Label::Distance distance) {
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  JumpIfNotUniqueNameHelper<Operand>(this, operand, not_unique_name, distance);
}


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void MacroAssembler::JumpIfNotUniqueNameInstanceType(Register reg,
                                                     Label* not_unique_name,
                                                     Label::Distance distance) {
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  JumpIfNotUniqueNameHelper<Register>(this, reg, not_unique_name, distance);
}

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void MacroAssembler::Move(Register dst, Register src) {
  if (!dst.is(src)) {
2626
    movp(dst, src);
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  }
}


2631
void MacroAssembler::Move(Register dst, Handle<Object> source) {
2632
  AllowDeferredHandleDereference smi_check;
2633
  if (source->IsSmi()) {
2634
    Move(dst, Smi::cast(*source));
2635
  } else {
2636
    MoveHeapObject(dst, source);
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  }
}


void MacroAssembler::Move(const Operand& dst, Handle<Object> source) {
2642
  AllowDeferredHandleDereference smi_check;
2643
  if (source->IsSmi()) {
2644
    Move(dst, Smi::cast(*source));
2645
  } else {
2646
    MoveHeapObject(kScratchRegister, source);
2647
    movp(dst, kScratchRegister);
2648
  }
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}


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void MacroAssembler::Move(XMMRegister dst, uint32_t src) {
  if (src == 0) {
2654
    Xorpd(dst, dst);
2655
  } else {
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    unsigned pop = base::bits::CountPopulation32(src);
    DCHECK_NE(0u, pop);
    if (pop == 32) {
2659
      Pcmpeqd(dst, dst);
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    } else {
      movl(kScratchRegister, Immediate(src));
2662
      Movq(dst, kScratchRegister);
2663
    }
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  }
}


void MacroAssembler::Move(XMMRegister dst, uint64_t src) {
2669
  if (src == 0) {
2670
    Xorpd(dst, dst);
2671
  } else {
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    unsigned nlz = base::bits::CountLeadingZeros64(src);
    unsigned ntz = base::bits::CountTrailingZeros64(src);
    unsigned pop = base::bits::CountPopulation64(src);
    DCHECK_NE(0u, pop);
    if (pop == 64) {
2677
      Pcmpeqd(dst, dst);
2678
    } else if (pop + ntz == 64) {
2679 2680
      Pcmpeqd(dst, dst);
      Psllq(dst, ntz);
2681
    } else if (pop + nlz == 64) {
2682 2683
      Pcmpeqd(dst, dst);
      Psrlq(dst, nlz);
2684
    } else {
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      uint32_t lower = static_cast<uint32_t>(src);
      uint32_t upper = static_cast<uint32_t>(src >> 32);
      if (upper == 0) {
        Move(dst, lower);
      } else {
        movq(kScratchRegister, src);
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        Movq(dst, kScratchRegister);
2692
      }
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    }
  }
}


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void MacroAssembler::Movaps(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovaps(dst, src);
  } else {
    movaps(dst, src);
  }
}

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void MacroAssembler::Movups(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovups(dst, src);
  } else {
    movups(dst, src);
  }
}

void MacroAssembler::Movups(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovups(dst, src);
  } else {
    movups(dst, src);
  }
}

void MacroAssembler::Movups(const Operand& dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovups(dst, src);
  } else {
    movups(dst, src);
  }
}
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void MacroAssembler::Movapd(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovapd(dst, src);
  } else {
    movapd(dst, src);
  }
}

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void MacroAssembler::Movupd(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovupd(dst, src);
  } else {
    movupd(dst, src);
  }
}

void MacroAssembler::Movupd(const Operand& dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovupd(dst, src);
  } else {
    movupd(dst, src);
  }
}
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void MacroAssembler::Movsd(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
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    vmovsd(dst, dst, src);
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  } else {
    movsd(dst, src);
  }
}


void MacroAssembler::Movsd(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovsd(dst, src);
  } else {
    movsd(dst, src);
  }
}


void MacroAssembler::Movsd(const Operand& dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovsd(dst, src);
  } else {
    movsd(dst, src);
  }
}


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void MacroAssembler::Movss(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovss(dst, dst, src);
  } else {
    movss(dst, src);
  }
}


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void MacroAssembler::Movss(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovss(dst, src);
  } else {
    movss(dst, src);
  }
}


void MacroAssembler::Movss(const Operand& dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovss(dst, src);
  } else {
    movss(dst, src);
  }
}


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void MacroAssembler::Movd(XMMRegister dst, Register src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovd(dst, src);
  } else {
    movd(dst, src);
  }
}


void MacroAssembler::Movd(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovd(dst, src);
  } else {
    movd(dst, src);
  }
}


void MacroAssembler::Movd(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovd(dst, src);
  } else {
    movd(dst, src);
  }
}


void MacroAssembler::Movq(XMMRegister dst, Register src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovq(dst, src);
  } else {
    movq(dst, src);
  }
}


void MacroAssembler::Movq(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovq(dst, src);
  } else {
    movq(dst, src);
  }
}

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void MacroAssembler::Movmskps(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovmskps(dst, src);
  } else {
    movmskps(dst, src);
  }
}
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void MacroAssembler::Movmskpd(Register dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vmovmskpd(dst, src);
  } else {
    movmskpd(dst, src);
  }
}

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void MacroAssembler::Xorps(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
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2891
    vxorps(dst, dst, src);
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  } else {
    xorps(dst, src);
  }
}

void MacroAssembler::Xorps(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
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2900
    vxorps(dst, dst, src);
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  } else {
    xorps(dst, src);
  }
}
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void MacroAssembler::Roundss(XMMRegister dst, XMMRegister src,
                             RoundingMode mode) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vroundss(dst, dst, src, mode);
  } else {
    roundss(dst, src, mode);
  }
}


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void MacroAssembler::Roundsd(XMMRegister dst, XMMRegister src,
                             RoundingMode mode) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vroundsd(dst, dst, src, mode);
  } else {
    roundsd(dst, src, mode);
  }
}


2928 2929 2930 2931 2932 2933 2934 2935 2936 2937 2938 2939 2940 2941 2942 2943 2944 2945 2946 2947
void MacroAssembler::Sqrtsd(XMMRegister dst, XMMRegister src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vsqrtsd(dst, dst, src);
  } else {
    sqrtsd(dst, src);
  }
}


void MacroAssembler::Sqrtsd(XMMRegister dst, const Operand& src) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vsqrtsd(dst, dst, src);
  } else {
    sqrtsd(dst, src);
  }
}


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void MacroAssembler::Ucomiss(XMMRegister src1, XMMRegister src2) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vucomiss(src1, src2);
  } else {
    ucomiss(src1, src2);
  }
}


void MacroAssembler::Ucomiss(XMMRegister src1, const Operand& src2) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vucomiss(src1, src2);
  } else {
    ucomiss(src1, src2);
  }
}


void MacroAssembler::Ucomisd(XMMRegister src1, XMMRegister src2) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vucomisd(src1, src2);
  } else {
    ucomisd(src1, src2);
  }
}


void MacroAssembler::Ucomisd(XMMRegister src1, const Operand& src2) {
  if (CpuFeatures::IsSupported(AVX)) {
    CpuFeatureScope scope(this, AVX);
    vucomisd(src1, src2);
  } else {
    ucomisd(src1, src2);
  }
}

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// ----------------------------------------------------------------------------

void MacroAssembler::Absps(XMMRegister dst) {
  Andps(dst,
        ExternalOperand(ExternalReference::address_of_float_abs_constant()));
}

void MacroAssembler::Negps(XMMRegister dst) {
  Xorps(dst,
        ExternalOperand(ExternalReference::address_of_float_neg_constant()));
}

void MacroAssembler::Abspd(XMMRegister dst) {
  Andps(dst,
        ExternalOperand(ExternalReference::address_of_double_abs_constant()));
}

void MacroAssembler::Negpd(XMMRegister dst) {
  Xorps(dst,
        ExternalOperand(ExternalReference::address_of_double_neg_constant()));
}
3008

3009
void MacroAssembler::Cmp(Register dst, Handle<Object> source) {
3010
  AllowDeferredHandleDereference smi_check;
3011
  if (source->IsSmi()) {
3012
    Cmp(dst, Smi::cast(*source));
3013
  } else {
3014
    MoveHeapObject(kScratchRegister, source);
3015
    cmpp(dst, kScratchRegister);
3016
  }
3017 3018 3019
}


3020
void MacroAssembler::Cmp(const Operand& dst, Handle<Object> source) {
3021
  AllowDeferredHandleDereference smi_check;
3022
  if (source->IsSmi()) {
3023
    Cmp(dst, Smi::cast(*source));
3024
  } else {
3025
    MoveHeapObject(kScratchRegister, source);
3026
    cmpp(dst, kScratchRegister);
3027
  }
3028 3029 3030
}


3031
void MacroAssembler::Push(Handle<Object> source) {
3032
  AllowDeferredHandleDereference smi_check;
3033
  if (source->IsSmi()) {
3034
    Push(Smi::cast(*source));
3035
  } else {
3036
    MoveHeapObject(kScratchRegister, source);
3037
    Push(kScratchRegister);
3038
  }
3039 3040 3041
}


3042 3043
void MacroAssembler::MoveHeapObject(Register result,
                                    Handle<Object> object) {
3044
  DCHECK(object->IsHeapObject());
3045
  Move(result, object, RelocInfo::EMBEDDED_OBJECT);
3046 3047 3048
}


3049
void MacroAssembler::LoadGlobalCell(Register dst, Handle<Cell> cell) {
3050
  if (dst.is(rax)) {
3051
    AllowDeferredHandleDereference embedding_raw_address;
3052
    load_rax(cell.location(), RelocInfo::CELL);
3053
  } else {
3054
    Move(dst, cell, RelocInfo::CELL);
3055
    movp(dst, Operand(dst, 0));
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  }
}


3060 3061 3062 3063 3064 3065 3066
void MacroAssembler::CmpWeakValue(Register value, Handle<WeakCell> cell,
                                  Register scratch) {
  Move(scratch, cell, RelocInfo::EMBEDDED_OBJECT);
  cmpp(value, FieldOperand(scratch, WeakCell::kValueOffset));
}


3067
void MacroAssembler::GetWeakValue(Register value, Handle<WeakCell> cell) {
3068 3069
  Move(value, cell, RelocInfo::EMBEDDED_OBJECT);
  movp(value, FieldOperand(value, WeakCell::kValueOffset));
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}


void MacroAssembler::LoadWeakValue(Register value, Handle<WeakCell> cell,
                                   Label* miss) {
  GetWeakValue(value, cell);
3076 3077 3078 3079
  JumpIfSmi(value, miss);
}


3080 3081
void MacroAssembler::Drop(int stack_elements) {
  if (stack_elements > 0) {
3082
    addp(rsp, Immediate(stack_elements * kPointerSize));
3083 3084 3085 3086
  }
}


3087 3088
void MacroAssembler::DropUnderReturnAddress(int stack_elements,
                                            Register scratch) {
3089
  DCHECK(stack_elements > 0);
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  if (kPointerSize == kInt64Size && stack_elements == 1) {
    popq(MemOperand(rsp, 0));
    return;
  }

  PopReturnAddressTo(scratch);
  Drop(stack_elements);
  PushReturnAddressFrom(scratch);
}


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void MacroAssembler::Push(Register src) {
  if (kPointerSize == kInt64Size) {
    pushq(src);
  } else {
    // x32 uses 64-bit push for rbp in the prologue.
3106
    DCHECK(src.code() != rbp.code());
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    leal(rsp, Operand(rsp, -4));
    movp(Operand(rsp, 0), src);
  }
}


void MacroAssembler::Push(const Operand& src) {
  if (kPointerSize == kInt64Size) {
    pushq(src);
  } else {
    movp(kScratchRegister, src);
    leal(rsp, Operand(rsp, -4));
    movp(Operand(rsp, 0), kScratchRegister);
  }
}


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void MacroAssembler::PushQuad(const Operand& src) {
  if (kPointerSize == kInt64Size) {
    pushq(src);
  } else {
    movp(kScratchRegister, src);
    pushq(kScratchRegister);
  }
}


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void MacroAssembler::Push(Immediate value) {
  if (kPointerSize == kInt64Size) {
    pushq(value);
  } else {
    leal(rsp, Operand(rsp, -4));
    movp(Operand(rsp, 0), value);
  }
}


void MacroAssembler::PushImm32(int32_t imm32) {
  if (kPointerSize == kInt64Size) {
    pushq_imm32(imm32);
  } else {
    leal(rsp, Operand(rsp, -4));
    movp(Operand(rsp, 0), Immediate(imm32));
  }
}


void MacroAssembler::Pop(Register dst) {
  if (kPointerSize == kInt64Size) {
    popq(dst);
  } else {
    // x32 uses 64-bit pop for rbp in the epilogue.
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    DCHECK(dst.code() != rbp.code());
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    movp(dst, Operand(rsp, 0));
    leal(rsp, Operand(rsp, 4));
  }
}


void MacroAssembler::Pop(const Operand& dst) {
  if (kPointerSize == kInt64Size) {
    popq(dst);
  } else {
    Register scratch = dst.AddressUsesRegister(kScratchRegister)
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        ? kRootRegister : kScratchRegister;
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    movp(scratch, Operand(rsp, 0));
    movp(dst, scratch);
    leal(rsp, Operand(rsp, 4));
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    if (scratch.is(kRootRegister)) {
      // Restore kRootRegister.
      InitializeRootRegister();
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    }
  }
}


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void MacroAssembler::PopQuad(const Operand& dst) {
  if (kPointerSize == kInt64Size) {
    popq(dst);
  } else {
    popq(kScratchRegister);
    movp(dst, kScratchRegister);
  }
}


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void MacroAssembler::LoadSharedFunctionInfoSpecialField(Register dst,
                                                        Register base,
                                                        int offset) {
3196
  DCHECK(offset > SharedFunctionInfo::kLengthOffset &&
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         offset <= SharedFunctionInfo::kSize &&
         (((offset - SharedFunctionInfo::kLengthOffset) / kIntSize) % 2 == 1));
  if (kPointerSize == kInt64Size) {
    movsxlq(dst, FieldOperand(base, offset));
  } else {
    movp(dst, FieldOperand(base, offset));
    SmiToInteger32(dst, dst);
  }
}


void MacroAssembler::TestBitSharedFunctionInfoSpecialField(Register base,
                                                           int offset,
                                                           int bits) {
3211
  DCHECK(offset > SharedFunctionInfo::kLengthOffset &&
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         offset <= SharedFunctionInfo::kSize &&
         (((offset - SharedFunctionInfo::kLengthOffset) / kIntSize) % 2 == 1));
  if (kPointerSize == kInt32Size) {
    // On x32, this field is represented by SMI.
    bits += kSmiShift;
  }
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  int byte_offset = bits / kBitsPerByte;
  int bit_in_byte = bits & (kBitsPerByte - 1);
3220
  testb(FieldOperand(base, offset + byte_offset), Immediate(1 << bit_in_byte));
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}


3224
void MacroAssembler::Jump(ExternalReference ext) {
3225
  LoadAddress(kScratchRegister, ext);
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  jmp(kScratchRegister);
}


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void MacroAssembler::Jump(const Operand& op) {
  if (kPointerSize == kInt64Size) {
    jmp(op);
  } else {
    movp(kScratchRegister, op);
    jmp(kScratchRegister);
  }
}


3240
void MacroAssembler::Jump(Address destination, RelocInfo::Mode rmode) {
3241
  Move(kScratchRegister, destination, rmode);
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  jmp(kScratchRegister);
}


3246
void MacroAssembler::Jump(Handle<Code> code_object, RelocInfo::Mode rmode) {
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  // TODO(X64): Inline this
  jmp(code_object, rmode);
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}


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int MacroAssembler::CallSize(ExternalReference ext) {
  // Opcode for call kScratchRegister is: Rex.B FF D4 (three bytes).
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  return LoadAddressSize(ext) +
         Assembler::kCallScratchRegisterInstructionLength;
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}


3259
void MacroAssembler::Call(ExternalReference ext) {
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#ifdef DEBUG
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  int end_position = pc_offset() + CallSize(ext);
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#endif
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  LoadAddress(kScratchRegister, ext);
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  call(kScratchRegister);
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#ifdef DEBUG
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  CHECK_EQ(end_position, pc_offset());
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#endif
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}


3271
void MacroAssembler::Call(const Operand& op) {
3272
  if (kPointerSize == kInt64Size && !CpuFeatures::IsSupported(ATOM)) {
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    call(op);
  } else {
    movp(kScratchRegister, op);
    call(kScratchRegister);
  }
}


3281
void MacroAssembler::Call(Address destination, RelocInfo::Mode rmode) {
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#ifdef DEBUG
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  int end_position = pc_offset() + CallSize(destination);
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#endif
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  Move(kScratchRegister, destination, rmode);
3286
  call(kScratchRegister);
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#ifdef DEBUG
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  CHECK_EQ(pc_offset(), end_position);
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#endif
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}


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void MacroAssembler::Call(Handle<Code> code_object,
                          RelocInfo::Mode rmode,
3295
                          TypeFeedbackId ast_id) {
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#ifdef DEBUG
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  int end_position = pc_offset() + CallSize(code_object);
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#endif
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  DCHECK(RelocInfo::IsCodeTarget(rmode) ||
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      rmode == RelocInfo::CODE_AGE_SEQUENCE);
3301
  call(code_object, rmode, ast_id);
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#ifdef DEBUG
3303
  CHECK_EQ(end_position, pc_offset());
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#endif
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}


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void MacroAssembler::Pextrd(Register dst, XMMRegister src, int8_t imm8) {
  if (imm8 == 0) {
3310
    Movd(dst, src);
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    return;
  }
  if (CpuFeatures::IsSupported(SSE4_1)) {
    CpuFeatureScope sse_scope(this, SSE4_1);
    pextrd(dst, src, imm8);
    return;
  }
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  DCHECK_EQ(1, imm8);
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  movq(dst, src);
  shrq(dst, Immediate(32));
}


void MacroAssembler::Pinsrd(XMMRegister dst, Register src, int8_t imm8) {
  if (CpuFeatures::IsSupported(SSE4_1)) {
    CpuFeatureScope sse_scope(this, SSE4_1);
    pinsrd(dst, src, imm8);
    return;
  }
3330
  Movd(kScratchDoubleReg, src);
3331
  if (imm8 == 1) {
3332
    punpckldq(dst, kScratchDoubleReg);
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  } else {
    DCHECK_EQ(0, imm8);
3335
    Movss(dst, kScratchDoubleReg);
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  }
}


void MacroAssembler::Pinsrd(XMMRegister dst, const Operand& src, int8_t imm8) {
  DCHECK(imm8 == 0 || imm8 == 1);
  if (CpuFeatures::IsSupported(SSE4_1)) {
    CpuFeatureScope sse_scope(this, SSE4_1);
    pinsrd(dst, src, imm8);
    return;
  }
3347
  Movd(kScratchDoubleReg, src);
3348
  if (imm8 == 1) {
3349
    punpckldq(dst, kScratchDoubleReg);
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  } else {
    DCHECK_EQ(0, imm8);
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    Movss(dst, kScratchDoubleReg);
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  }
}


3357
void MacroAssembler::Lzcntl(Register dst, Register src) {
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  if (CpuFeatures::IsSupported(LZCNT)) {
    CpuFeatureScope scope(this, LZCNT);
    lzcntl(dst, src);
    return;
  }
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  Label not_zero_src;
  bsrl(dst, src);
  j(not_zero, &not_zero_src, Label::kNear);
  Set(dst, 63);  // 63^31 == 32
  bind(&not_zero_src);
  xorl(dst, Immediate(31));  // for x in [0..31], 31^x == 31 - x
}


void MacroAssembler::Lzcntl(Register dst, const Operand& src) {
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  if (CpuFeatures::IsSupported(LZCNT)) {
    CpuFeatureScope scope(this, LZCNT);
    lzcntl(dst, src);
    return;
  }
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  Label not_zero_src;
  bsrl(dst, src);
  j(not_zero, &not_zero_src, Label::kNear);
  Set(dst, 63);  // 63^31 == 32
  bind(&not_zero_src);
  xorl(dst, Immediate(31));  // for x in [0..31], 31^x == 31 - x
}


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void MacroAssembler::Lzcntq(Register dst, Register src) {
  if (CpuFeatures::IsSupported(LZCNT)) {
    CpuFeatureScope scope(this, LZCNT);
    lzcntq(dst, src);
    return;
  }
  Label not_zero_src;
  bsrq(dst, src);
  j(not_zero, &not_zero_src, Label::kNear);
  Set(dst, 127);  // 127^63 == 64
  bind(&not_zero_src);
  xorl(dst, Immediate(63));  // for x in [0..63], 63^x == 63 - x
}


void MacroAssembler::Lzcntq(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(LZCNT)) {
    CpuFeatureScope scope(this, LZCNT);
    lzcntq(dst, src);
    return;
  }
  Label not_zero_src;
  bsrq(dst, src);
  j(not_zero, &not_zero_src, Label::kNear);
  Set(dst, 127);  // 127^63 == 64
  bind(&not_zero_src);
  xorl(dst, Immediate(63));  // for x in [0..63], 63^x == 63 - x
}


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void MacroAssembler::Tzcntq(Register dst, Register src) {
  if (CpuFeatures::IsSupported(BMI1)) {
    CpuFeatureScope scope(this, BMI1);
    tzcntq(dst, src);
    return;
  }
  Label not_zero_src;
  bsfq(dst, src);
  j(not_zero, &not_zero_src, Label::kNear);
  // Define the result of tzcnt(0) separately, because bsf(0) is undefined.
  Set(dst, 64);
  bind(&not_zero_src);
}


void MacroAssembler::Tzcntq(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(BMI1)) {
    CpuFeatureScope scope(this, BMI1);
    tzcntq(dst, src);
    return;
  }
  Label not_zero_src;
  bsfq(dst, src);
  j(not_zero, &not_zero_src, Label::kNear);
  // Define the result of tzcnt(0) separately, because bsf(0) is undefined.
  Set(dst, 64);
  bind(&not_zero_src);
}


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void MacroAssembler::Tzcntl(Register dst, Register src) {
  if (CpuFeatures::IsSupported(BMI1)) {
    CpuFeatureScope scope(this, BMI1);
    tzcntl(dst, src);
    return;
  }
  Label not_zero_src;
  bsfl(dst, src);
  j(not_zero, &not_zero_src, Label::kNear);
  Set(dst, 32);  // The result of tzcnt is 32 if src = 0.
  bind(&not_zero_src);
}


void MacroAssembler::Tzcntl(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(BMI1)) {
    CpuFeatureScope scope(this, BMI1);
    tzcntl(dst, src);
    return;
  }
  Label not_zero_src;
  bsfl(dst, src);
  j(not_zero, &not_zero_src, Label::kNear);
  Set(dst, 32);  // The result of tzcnt is 32 if src = 0.
  bind(&not_zero_src);
}


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void MacroAssembler::Popcntl(Register dst, Register src) {
  if (CpuFeatures::IsSupported(POPCNT)) {
    CpuFeatureScope scope(this, POPCNT);
    popcntl(dst, src);
    return;
  }
  UNREACHABLE();
}


void MacroAssembler::Popcntl(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(POPCNT)) {
    CpuFeatureScope scope(this, POPCNT);
    popcntl(dst, src);
    return;
  }
  UNREACHABLE();
}


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void MacroAssembler::Popcntq(Register dst, Register src) {
  if (CpuFeatures::IsSupported(POPCNT)) {
    CpuFeatureScope scope(this, POPCNT);
    popcntq(dst, src);
    return;
  }
  UNREACHABLE();
}


void MacroAssembler::Popcntq(Register dst, const Operand& src) {
  if (CpuFeatures::IsSupported(POPCNT)) {
    CpuFeatureScope scope(this, POPCNT);
    popcntq(dst, src);
    return;
  }
  UNREACHABLE();
}


3515
void MacroAssembler::Pushad() {
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  Push(rax);
  Push(rcx);
  Push(rdx);
  Push(rbx);
3520
  // Not pushing rsp or rbp.
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  Push(rsi);
  Push(rdi);
  Push(r8);
  Push(r9);
3525
  // r10 is kScratchRegister.
3526
  Push(r11);
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  Push(r12);
3528
  // r13 is kRootRegister.
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  Push(r14);
  Push(r15);
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  STATIC_ASSERT(12 == kNumSafepointSavedRegisters);
3532
  // Use lea for symmetry with Popad.
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  int sp_delta =
      (kNumSafepointRegisters - kNumSafepointSavedRegisters) * kPointerSize;
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  leap(rsp, Operand(rsp, -sp_delta));
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}


void MacroAssembler::Popad() {
3540
  // Popad must not change the flags, so use lea instead of addq.
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  int sp_delta =
      (kNumSafepointRegisters - kNumSafepointSavedRegisters) * kPointerSize;
3543
  leap(rsp, Operand(rsp, sp_delta));
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  Pop(r15);
  Pop(r14);
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  Pop(r12);
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  Pop(r11);
  Pop(r9);
  Pop(r8);
  Pop(rdi);
  Pop(rsi);
  Pop(rbx);
  Pop(rdx);
  Pop(rcx);
  Pop(rax);
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}


3559
void MacroAssembler::Dropad() {
3560
  addp(rsp, Immediate(kNumSafepointRegisters * kPointerSize));
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}


// Order general registers are pushed by Pushad:
3565
// rax, rcx, rdx, rbx, rsi, rdi, r8, r9, r11, r14, r15.
3566 3567
const int
MacroAssembler::kSafepointPushRegisterIndices[Register::kNumRegisters] = {
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    0,
    1,
    2,
    3,
    -1,
    -1,
    4,
    5,
    6,
    7,
    -1,
    8,
3580
    9,
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3581 3582 3583
    -1,
    10,
    11
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};


3587 3588
void MacroAssembler::StoreToSafepointRegisterSlot(Register dst,
                                                  const Immediate& imm) {
3589
  movp(SafepointRegisterSlot(dst), imm);
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}


3593
void MacroAssembler::StoreToSafepointRegisterSlot(Register dst, Register src) {
3594
  movp(SafepointRegisterSlot(dst), src);
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}


3598
void MacroAssembler::LoadFromSafepointRegisterSlot(Register dst, Register src) {
3599
  movp(dst, SafepointRegisterSlot(src));
3600 3601 3602
}


3603 3604 3605 3606 3607
Operand MacroAssembler::SafepointRegisterSlot(Register reg) {
  return Operand(rsp, SafepointRegisterStackIndex(reg.code()) * kPointerSize);
}


3608
void MacroAssembler::PushStackHandler() {
3609
  // Adjust this code if not the case.
3610
  STATIC_ASSERT(StackHandlerConstants::kSize == 1 * kPointerSize);
3611 3612 3613 3614
  STATIC_ASSERT(StackHandlerConstants::kNextOffset == 0);

  // Link the current handler as the next handler.
  ExternalReference handler_address(Isolate::kHandlerAddress, isolate());
3615
  Push(ExternalOperand(handler_address));
3616

3617
  // Set this new handler as the current one.
3618
  movp(ExternalOperand(handler_address), rsp);
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}


3622
void MacroAssembler::PopStackHandler() {
3623 3624
  STATIC_ASSERT(StackHandlerConstants::kNextOffset == 0);
  ExternalReference handler_address(Isolate::kHandlerAddress, isolate());
3625
  Pop(ExternalOperand(handler_address));
3626
  addp(rsp, Immediate(StackHandlerConstants::kSize - kPointerSize));
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}


3630 3631 3632 3633 3634
void MacroAssembler::Ret() {
  ret(0);
}


3635 3636 3637 3638
void MacroAssembler::Ret(int bytes_dropped, Register scratch) {
  if (is_uint16(bytes_dropped)) {
    ret(bytes_dropped);
  } else {
3639
    PopReturnAddressTo(scratch);
3640
    addp(rsp, Immediate(bytes_dropped));
3641
    PushReturnAddressFrom(scratch);
3642 3643 3644 3645 3646
    ret(0);
  }
}


3647
void MacroAssembler::FCmp() {
3648
  fucomip();
3649
  fstp(0);
3650 3651 3652
}


3653 3654 3655
void MacroAssembler::CmpObjectType(Register heap_object,
                                   InstanceType type,
                                   Register map) {
3656
  movp(map, FieldOperand(heap_object, HeapObject::kMapOffset));
3657 3658 3659 3660 3661 3662 3663 3664 3665
  CmpInstanceType(map, type);
}


void MacroAssembler::CmpInstanceType(Register map, InstanceType type) {
  cmpb(FieldOperand(map, Map::kInstanceTypeOffset),
       Immediate(static_cast<int8_t>(type)));
}

3666
void MacroAssembler::CompareMap(Register obj, Handle<Map> map) {
3667 3668 3669 3670
  Cmp(FieldOperand(obj, HeapObject::kMapOffset), map);
}


3671 3672 3673
void MacroAssembler::CheckMap(Register obj,
                              Handle<Map> map,
                              Label* fail,
3674
                              SmiCheckType smi_check_type) {
3675
  if (smi_check_type == DO_SMI_CHECK) {
3676 3677
    JumpIfSmi(obj, fail);
  }
3678

3679
  CompareMap(obj, map);
3680 3681 3682 3683
  j(not_equal, fail);
}


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void MacroAssembler::ClampUint8(Register reg) {
  Label done;
  testl(reg, Immediate(0xFFFFFF00));
  j(zero, &done, Label::kNear);
  setcc(negative, reg);  // 1 if negative, 0 if positive.
  decb(reg);  // 0 if negative, 255 if positive.
  bind(&done);
}


void MacroAssembler::ClampDoubleToUint8(XMMRegister input_reg,
                                        XMMRegister temp_xmm_reg,
3696
                                        Register result_reg) {
3697
  Label done;
3698
  Label conv_failure;
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  Xorpd(temp_xmm_reg, temp_xmm_reg);
3700
  Cvtsd2si(result_reg, input_reg);
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  testl(result_reg, Immediate(0xFFFFFF00));
  j(zero, &done, Label::kNear);
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  cmpl(result_reg, Immediate(1));
  j(overflow, &conv_failure, Label::kNear);
3705
  movl(result_reg, Immediate(0));
3706
  setcc(sign, result_reg);
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  subl(result_reg, Immediate(1));
  andl(result_reg, Immediate(255));
  jmp(&done, Label::kNear);
  bind(&conv_failure);
  Set(result_reg, 0);
3712
  Ucomisd(input_reg, temp_xmm_reg);
3713
  j(below, &done, Label::kNear);
3714 3715 3716 3717 3718
  Set(result_reg, 255);
  bind(&done);
}


3719
void MacroAssembler::LoadUint32(XMMRegister dst,
3720
                                Register src) {
3721 3722
  if (FLAG_debug_code) {
    cmpq(src, Immediate(0xffffffff));
3723
    Assert(below_equal, kInputGPRIsExpectedToHaveUpper32Cleared);
3724
  }
3725
  Cvtqsi2sd(dst, src);
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}


3729 3730 3731
void MacroAssembler::SlowTruncateToI(Register result_reg,
                                     Register input_reg,
                                     int offset) {
3732
  DoubleToIStub stub(isolate(), input_reg, result_reg, offset, true);
3733
  call(stub.GetCode(), RelocInfo::CODE_TARGET);
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}


void MacroAssembler::TruncateHeapNumberToI(Register result_reg,
                                           Register input_reg) {
  Label done;
3740 3741
  Movsd(kScratchDoubleReg, FieldOperand(input_reg, HeapNumber::kValueOffset));
  Cvttsd2siq(result_reg, kScratchDoubleReg);
3742
  cmpq(result_reg, Immediate(1));
3743
  j(no_overflow, &done, Label::kNear);
3744 3745 3746

  // Slow case.
  if (input_reg.is(result_reg)) {
3747
    subp(rsp, Immediate(kDoubleSize));
3748
    Movsd(MemOperand(rsp, 0), kScratchDoubleReg);
3749
    SlowTruncateToI(result_reg, rsp, 0);
3750
    addp(rsp, Immediate(kDoubleSize));
3751 3752 3753 3754 3755
  } else {
    SlowTruncateToI(result_reg, input_reg);
  }

  bind(&done);
3756 3757
  // Keep our invariant that the upper 32 bits are zero.
  movl(result_reg, result_reg);
3758 3759 3760 3761 3762 3763
}


void MacroAssembler::TruncateDoubleToI(Register result_reg,
                                       XMMRegister input_reg) {
  Label done;
3764 3765
  Cvttsd2siq(result_reg, input_reg);
  cmpq(result_reg, Immediate(1));
3766
  j(no_overflow, &done, Label::kNear);
3767

3768
  subp(rsp, Immediate(kDoubleSize));
3769
  Movsd(MemOperand(rsp, 0), input_reg);
3770
  SlowTruncateToI(result_reg, rsp, 0);
3771
  addp(rsp, Immediate(kDoubleSize));
3772 3773

  bind(&done);
3774 3775
  // Keep our invariant that the upper 32 bits are zero.
  movl(result_reg, result_reg);
3776 3777 3778
}


3779
void MacroAssembler::DoubleToI(Register result_reg, XMMRegister input_reg,
3780 3781
                               XMMRegister scratch,
                               MinusZeroMode minus_zero_mode,
3782 3783
                               Label* lost_precision, Label* is_nan,
                               Label* minus_zero, Label::Distance dst) {
3784
  Cvttsd2si(result_reg, input_reg);
3785 3786
  Cvtlsi2sd(kScratchDoubleReg, result_reg);
  Ucomisd(kScratchDoubleReg, input_reg);
3787 3788
  j(not_equal, lost_precision, dst);
  j(parity_even, is_nan, dst);  // NaN.
3789 3790 3791 3792 3793 3794
  if (minus_zero_mode == FAIL_ON_MINUS_ZERO) {
    Label done;
    // The integer converted back is equal to the original. We
    // only have to test if we got -0 as an input.
    testl(result_reg, result_reg);
    j(not_zero, &done, Label::kNear);
3795
    Movmskpd(result_reg, input_reg);
3796 3797
    // Bit 0 contains the sign of the double in input_reg.
    // If input was positive, we are ok and return 0, otherwise
3798
    // jump to minus_zero.
3799
    andl(result_reg, Immediate(1));
3800
    j(not_zero, minus_zero, dst);
3801 3802 3803 3804 3805
    bind(&done);
  }
}


3806 3807
void MacroAssembler::LoadInstanceDescriptors(Register map,
                                             Register descriptors) {
3808
  movp(descriptors, FieldOperand(map, Map::kDescriptorsOffset));
3809 3810 3811
}


3812
void MacroAssembler::NumberOfOwnDescriptors(Register dst, Register map) {
3813
  movl(dst, FieldOperand(map, Map::kBitField3Offset));
3814 3815 3816 3817
  DecodeField<Map::NumberOfOwnDescriptorsBits>(dst);
}


3818 3819
void MacroAssembler::EnumLength(Register dst, Register map) {
  STATIC_ASSERT(Map::EnumLengthBits::kShift == 0);
3820 3821 3822
  movl(dst, FieldOperand(map, Map::kBitField3Offset));
  andl(dst, Immediate(Map::EnumLengthBits::kMask));
  Integer32ToSmi(dst, dst);
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}


3826 3827 3828 3829 3830 3831 3832 3833 3834 3835 3836 3837
void MacroAssembler::LoadAccessor(Register dst, Register holder,
                                  int accessor_index,
                                  AccessorComponent accessor) {
  movp(dst, FieldOperand(holder, HeapObject::kMapOffset));
  LoadInstanceDescriptors(dst, dst);
  movp(dst, FieldOperand(dst, DescriptorArray::GetValueOffset(accessor_index)));
  int offset = accessor == ACCESSOR_GETTER ? AccessorPair::kGetterOffset
                                           : AccessorPair::kSetterOffset;
  movp(dst, FieldOperand(dst, offset));
}


3838 3839 3840 3841
void MacroAssembler::DispatchWeakMap(Register obj, Register scratch1,
                                     Register scratch2, Handle<WeakCell> cell,
                                     Handle<Code> success,
                                     SmiCheckType smi_check_type) {
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3842 3843 3844 3845
  Label fail;
  if (smi_check_type == DO_SMI_CHECK) {
    JumpIfSmi(obj, &fail);
  }
3846 3847
  movq(scratch1, FieldOperand(obj, HeapObject::kMapOffset));
  CmpWeakValue(scratch1, cell, scratch2);
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  j(equal, success, RelocInfo::CODE_TARGET);
  bind(&fail);
}


3853 3854 3855 3856 3857 3858 3859
void MacroAssembler::AssertNumber(Register object) {
  if (emit_debug_code()) {
    Label ok;
    Condition is_smi = CheckSmi(object);
    j(is_smi, &ok, Label::kNear);
    Cmp(FieldOperand(object, HeapObject::kMapOffset),
        isolate()->factory()->heap_number_map());
3860
    Check(equal, kOperandIsNotANumber);
3861 3862
    bind(&ok);
  }
3863 3864
}

3865 3866 3867 3868 3869 3870
void MacroAssembler::AssertNotNumber(Register object) {
  if (emit_debug_code()) {
    Condition is_smi = CheckSmi(object);
    Check(NegateCondition(is_smi), kOperandIsANumber);
    Cmp(FieldOperand(object, HeapObject::kMapOffset),
        isolate()->factory()->heap_number_map());
3871
    Check(not_equal, kOperandIsANumber);
3872 3873
  }
}
3874

3875 3876 3877
void MacroAssembler::AssertNotSmi(Register object) {
  if (emit_debug_code()) {
    Condition is_smi = CheckSmi(object);
3878
    Check(NegateCondition(is_smi), kOperandIsASmi);
3879
  }
3880 3881 3882
}


3883 3884 3885
void MacroAssembler::AssertSmi(Register object) {
  if (emit_debug_code()) {
    Condition is_smi = CheckSmi(object);
3886
    Check(is_smi, kOperandIsNotASmi);
3887
  }
3888 3889 3890
}


3891 3892 3893
void MacroAssembler::AssertSmi(const Operand& object) {
  if (emit_debug_code()) {
    Condition is_smi = CheckSmi(object);
3894
    Check(is_smi, kOperandIsNotASmi);
3895
  }
3896 3897 3898
}


3899 3900
void MacroAssembler::AssertZeroExtended(Register int32_register) {
  if (emit_debug_code()) {
3901
    DCHECK(!int32_register.is(kScratchRegister));
3902
    movq(kScratchRegister, V8_INT64_C(0x0000000100000000));
3903
    cmpq(kScratchRegister, int32_register);
3904
    Check(above_equal, k32BitValueInRegisterIsNotZeroExtended);
3905
  }
3906 3907 3908
}


3909 3910 3911
void MacroAssembler::AssertString(Register object) {
  if (emit_debug_code()) {
    testb(object, Immediate(kSmiTagMask));
3912
    Check(not_equal, kOperandIsASmiAndNotAString);
3913
    Push(object);
3914
    movp(object, FieldOperand(object, HeapObject::kMapOffset));
3915
    CmpInstanceType(object, FIRST_NONSTRING_TYPE);
3916
    Pop(object);
3917
    Check(below, kOperandIsNotAString);
3918
  }
3919 3920 3921
}


3922 3923 3924
void MacroAssembler::AssertName(Register object) {
  if (emit_debug_code()) {
    testb(object, Immediate(kSmiTagMask));
3925
    Check(not_equal, kOperandIsASmiAndNotAName);
3926
    Push(object);
3927
    movp(object, FieldOperand(object, HeapObject::kMapOffset));
3928
    CmpInstanceType(object, LAST_NAME_TYPE);
3929
    Pop(object);
3930
    Check(below_equal, kOperandIsNotAName);
3931 3932 3933 3934
  }
}


3935 3936 3937 3938 3939 3940 3941 3942 3943 3944 3945 3946
void MacroAssembler::AssertFunction(Register object) {
  if (emit_debug_code()) {
    testb(object, Immediate(kSmiTagMask));
    Check(not_equal, kOperandIsASmiAndNotAFunction);
    Push(object);
    CmpObjectType(object, JS_FUNCTION_TYPE, object);
    Pop(object);
    Check(equal, kOperandIsNotAFunction);
  }
}


3947 3948 3949 3950 3951 3952 3953 3954 3955 3956 3957
void MacroAssembler::AssertBoundFunction(Register object) {
  if (emit_debug_code()) {
    testb(object, Immediate(kSmiTagMask));
    Check(not_equal, kOperandIsASmiAndNotABoundFunction);
    Push(object);
    CmpObjectType(object, JS_BOUND_FUNCTION_TYPE, object);
    Pop(object);
    Check(equal, kOperandIsNotABoundFunction);
  }
}

3958 3959 3960 3961 3962 3963 3964 3965 3966 3967
void MacroAssembler::AssertGeneratorObject(Register object) {
  if (emit_debug_code()) {
    testb(object, Immediate(kSmiTagMask));
    Check(not_equal, kOperandIsASmiAndNotAGeneratorObject);
    Push(object);
    CmpObjectType(object, JS_GENERATOR_OBJECT_TYPE, object);
    Pop(object);
    Check(equal, kOperandIsNotAGeneratorObject);
  }
}
3968

3969 3970 3971 3972 3973 3974 3975 3976 3977 3978 3979 3980 3981
void MacroAssembler::AssertReceiver(Register object) {
  if (emit_debug_code()) {
    testb(object, Immediate(kSmiTagMask));
    Check(not_equal, kOperandIsASmiAndNotAReceiver);
    Push(object);
    STATIC_ASSERT(LAST_TYPE == LAST_JS_RECEIVER_TYPE);
    CmpObjectType(object, FIRST_JS_RECEIVER_TYPE, object);
    Pop(object);
    Check(above_equal, kOperandIsNotAReceiver);
  }
}


3982 3983 3984 3985 3986 3987 3988 3989 3990 3991 3992 3993 3994
void MacroAssembler::AssertUndefinedOrAllocationSite(Register object) {
  if (emit_debug_code()) {
    Label done_checking;
    AssertNotSmi(object);
    Cmp(object, isolate()->factory()->undefined_value());
    j(equal, &done_checking);
    Cmp(FieldOperand(object, 0), isolate()->factory()->allocation_site_map());
    Assert(equal, kExpectedUndefinedOrCell);
    bind(&done_checking);
  }
}


3995 3996
void MacroAssembler::AssertRootValue(Register src,
                                     Heap::RootListIndex root_value_index,
3997
                                     BailoutReason reason) {
3998
  if (emit_debug_code()) {
3999
    DCHECK(!src.is(kScratchRegister));
4000
    LoadRoot(kScratchRegister, root_value_index);
4001
    cmpp(src, kScratchRegister);
4002
    Check(equal, reason);
4003
  }
4004 4005 4006 4007
}



4008 4009 4010
Condition MacroAssembler::IsObjectStringType(Register heap_object,
                                             Register map,
                                             Register instance_type) {
4011
  movp(map, FieldOperand(heap_object, HeapObject::kMapOffset));
4012
  movzxbl(instance_type, FieldOperand(map, Map::kInstanceTypeOffset));
4013
  STATIC_ASSERT(kNotStringTag != 0);
4014 4015 4016 4017 4018
  testb(instance_type, Immediate(kIsNotStringMask));
  return zero;
}


4019 4020 4021
Condition MacroAssembler::IsObjectNameType(Register heap_object,
                                           Register map,
                                           Register instance_type) {
4022
  movp(map, FieldOperand(heap_object, HeapObject::kMapOffset));
4023
  movzxbl(instance_type, FieldOperand(map, Map::kInstanceTypeOffset));
4024
  cmpb(instance_type, Immediate(static_cast<uint8_t>(LAST_NAME_TYPE)));
4025 4026 4027 4028
  return below_equal;
}


4029 4030 4031 4032 4033
void MacroAssembler::GetMapConstructor(Register result, Register map,
                                       Register temp) {
  Label done, loop;
  movp(result, FieldOperand(map, Map::kConstructorOrBackPointerOffset));
  bind(&loop);
4034
  JumpIfSmi(result, &done, Label::kNear);
4035
  CmpObjectType(result, MAP_TYPE, temp);
4036
  j(not_equal, &done, Label::kNear);
4037 4038 4039 4040 4041 4042
  movp(result, FieldOperand(result, Map::kConstructorOrBackPointerOffset));
  jmp(&loop);
  bind(&done);
}


4043 4044
void MacroAssembler::TryGetFunctionPrototype(Register function, Register result,
                                             Label* miss) {
4045
  // Get the prototype or initial map from the function.
4046
  movp(result,
4047 4048 4049 4050 4051
       FieldOperand(function, JSFunction::kPrototypeOrInitialMapOffset));

  // If the prototype or initial map is the hole, don't return it and
  // simply miss the cache instead. This will allow us to allocate a
  // prototype object on-demand in the runtime system.
4052
  CompareRoot(result, Heap::kTheHoleValueRootIndex);
4053 4054 4055
  j(equal, miss);

  // If the function does not have an initial map, we're done.
4056
  Label done;
4057
  CmpObjectType(result, MAP_TYPE, kScratchRegister);
4058
  j(not_equal, &done, Label::kNear);
4059 4060

  // Get the prototype from the initial map.
4061
  movp(result, FieldOperand(result, Map::kPrototypeOffset));
4062 4063 4064 4065 4066

  // All done.
  bind(&done);
}

4067

4068 4069
void MacroAssembler::SetCounter(StatsCounter* counter, int value) {
  if (FLAG_native_code_counters && counter->Enabled()) {
4070
    Operand counter_operand = ExternalOperand(ExternalReference(counter));
4071
    movl(counter_operand, Immediate(value));
4072 4073 4074 4075 4076
  }
}


void MacroAssembler::IncrementCounter(StatsCounter* counter, int value) {
4077
  DCHECK(value > 0);
4078
  if (FLAG_native_code_counters && counter->Enabled()) {
4079
    Operand counter_operand = ExternalOperand(ExternalReference(counter));
4080
    if (value == 1) {
4081
      incl(counter_operand);
4082
    } else {
4083
      addl(counter_operand, Immediate(value));
4084 4085 4086 4087 4088 4089
    }
  }
}


void MacroAssembler::DecrementCounter(StatsCounter* counter, int value) {
4090
  DCHECK(value > 0);
4091
  if (FLAG_native_code_counters && counter->Enabled()) {
4092
    Operand counter_operand = ExternalOperand(ExternalReference(counter));
4093
    if (value == 1) {
4094
      decl(counter_operand);
4095
    } else {
4096
      subl(counter_operand, Immediate(value));
4097 4098 4099 4100
    }
  }
}

4101

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4102
void MacroAssembler::DebugBreak() {
4103
  Set(rax, 0);  // No arguments.
4104 4105
  LoadAddress(rbx,
              ExternalReference(Runtime::kHandleDebuggerStatement, isolate()));
4106
  CEntryStub ces(isolate(), 1);
4107
  DCHECK(AllowThisStubCall(&ces));
4108
  Call(ces.GetCode(), RelocInfo::DEBUGGER_STATEMENT);
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4109
}
4110

4111 4112 4113 4114 4115 4116 4117 4118 4119 4120 4121 4122 4123 4124 4125 4126 4127 4128 4129 4130 4131 4132 4133 4134 4135 4136 4137 4138 4139 4140 4141 4142 4143 4144 4145 4146 4147 4148 4149 4150 4151 4152 4153 4154 4155 4156 4157 4158 4159 4160 4161 4162 4163 4164 4165 4166 4167 4168 4169 4170 4171 4172 4173 4174 4175 4176 4177 4178 4179 4180 4181
void MacroAssembler::PrepareForTailCall(const ParameterCount& callee_args_count,
                                        Register caller_args_count_reg,
                                        Register scratch0, Register scratch1,
                                        ReturnAddressState ra_state) {
#if DEBUG
  if (callee_args_count.is_reg()) {
    DCHECK(!AreAliased(callee_args_count.reg(), caller_args_count_reg, scratch0,
                       scratch1));
  } else {
    DCHECK(!AreAliased(caller_args_count_reg, scratch0, scratch1));
  }
#endif

  // Calculate the destination address where we will put the return address
  // after we drop current frame.
  Register new_sp_reg = scratch0;
  if (callee_args_count.is_reg()) {
    subp(caller_args_count_reg, callee_args_count.reg());
    leap(new_sp_reg, Operand(rbp, caller_args_count_reg, times_pointer_size,
                             StandardFrameConstants::kCallerPCOffset));
  } else {
    leap(new_sp_reg, Operand(rbp, caller_args_count_reg, times_pointer_size,
                             StandardFrameConstants::kCallerPCOffset -
                                 callee_args_count.immediate() * kPointerSize));
  }

  if (FLAG_debug_code) {
    cmpp(rsp, new_sp_reg);
    Check(below, kStackAccessBelowStackPointer);
  }

  // Copy return address from caller's frame to current frame's return address
  // to avoid its trashing and let the following loop copy it to the right
  // place.
  Register tmp_reg = scratch1;
  if (ra_state == ReturnAddressState::kOnStack) {
    movp(tmp_reg, Operand(rbp, StandardFrameConstants::kCallerPCOffset));
    movp(Operand(rsp, 0), tmp_reg);
  } else {
    DCHECK(ReturnAddressState::kNotOnStack == ra_state);
    Push(Operand(rbp, StandardFrameConstants::kCallerPCOffset));
  }

  // Restore caller's frame pointer now as it could be overwritten by
  // the copying loop.
  movp(rbp, Operand(rbp, StandardFrameConstants::kCallerFPOffset));

  // +2 here is to copy both receiver and return address.
  Register count_reg = caller_args_count_reg;
  if (callee_args_count.is_reg()) {
    leap(count_reg, Operand(callee_args_count.reg(), 2));
  } else {
    movp(count_reg, Immediate(callee_args_count.immediate() + 2));
    // TODO(ishell): Unroll copying loop for small immediate values.
  }

  // Now copy callee arguments to the caller frame going backwards to avoid
  // callee arguments corruption (source and destination areas could overlap).
  Label loop, entry;
  jmp(&entry, Label::kNear);
  bind(&loop);
  decp(count_reg);
  movp(tmp_reg, Operand(rsp, count_reg, times_pointer_size, 0));
  movp(Operand(new_sp_reg, count_reg, times_pointer_size, 0), tmp_reg);
  bind(&entry);
  cmpp(count_reg, Immediate(0));
  j(not_equal, &loop, Label::kNear);

  // Leave current frame.
  movp(rsp, new_sp_reg);
}
4182

4183
void MacroAssembler::InvokeFunction(Register function,
4184
                                    Register new_target,
4185 4186 4187
                                    const ParameterCount& actual,
                                    InvokeFlag flag,
                                    const CallWrapper& call_wrapper) {
4188
  movp(rbx, FieldOperand(function, JSFunction::kSharedFunctionInfoOffset));
4189
  LoadSharedFunctionInfoSpecialField(
4190
      rbx, rbx, SharedFunctionInfo::kFormalParameterCountOffset);
4191 4192

  ParameterCount expected(rbx);
4193
  InvokeFunction(function, new_target, expected, actual, flag, call_wrapper);
4194 4195 4196 4197 4198 4199 4200 4201 4202
}


void MacroAssembler::InvokeFunction(Handle<JSFunction> function,
                                    const ParameterCount& expected,
                                    const ParameterCount& actual,
                                    InvokeFlag flag,
                                    const CallWrapper& call_wrapper) {
  Move(rdi, function);
4203
  InvokeFunction(rdi, no_reg, expected, actual, flag, call_wrapper);
4204 4205 4206 4207
}


void MacroAssembler::InvokeFunction(Register function,
4208
                                    Register new_target,
4209 4210 4211 4212 4213 4214
                                    const ParameterCount& expected,
                                    const ParameterCount& actual,
                                    InvokeFlag flag,
                                    const CallWrapper& call_wrapper) {
  DCHECK(function.is(rdi));
  movp(rsi, FieldOperand(function, JSFunction::kContextOffset));
4215
  InvokeFunctionCode(rdi, new_target, expected, actual, flag, call_wrapper);
4216 4217 4218
}


4219 4220 4221 4222 4223
void MacroAssembler::InvokeFunctionCode(Register function, Register new_target,
                                        const ParameterCount& expected,
                                        const ParameterCount& actual,
                                        InvokeFlag flag,
                                        const CallWrapper& call_wrapper) {
4224
  // You can't call a function without a valid frame.
4225
  DCHECK(flag == JUMP_FUNCTION || has_frame());
4226
  DCHECK(function.is(rdi));
4227
  DCHECK_IMPLIES(new_target.is_valid(), new_target.is(rdx));
4228 4229 4230 4231 4232 4233

  if (call_wrapper.NeedsDebugStepCheck()) {
    FloodFunctionIfStepping(function, new_target, expected, actual);
  }

  // Clear the new.target register if not given.
4234 4235 4236 4237
  if (!new_target.is_valid()) {
    LoadRoot(rdx, Heap::kUndefinedValueRootIndex);
  }

4238
  Label done;
4239
  bool definitely_mismatches = false;
4240 4241 4242
  InvokePrologue(expected,
                 actual,
                 &done,
4243
                 &definitely_mismatches,
4244
                 flag,
4245
                 Label::kNear,
4246
                 call_wrapper);
4247
  if (!definitely_mismatches) {
4248 4249 4250 4251
    // We call indirectly through the code field in the function to
    // allow recompilation to take effect without changing any of the
    // call sites.
    Operand code = FieldOperand(function, JSFunction::kCodeEntryOffset);
4252 4253 4254 4255 4256
    if (flag == CALL_FUNCTION) {
      call_wrapper.BeforeCall(CallSize(code));
      call(code);
      call_wrapper.AfterCall();
    } else {
4257
      DCHECK(flag == JUMP_FUNCTION);
4258 4259 4260
      jmp(code);
    }
    bind(&done);
4261 4262 4263 4264
  }
}


4265 4266 4267
void MacroAssembler::InvokePrologue(const ParameterCount& expected,
                                    const ParameterCount& actual,
                                    Label* done,
4268
                                    bool* definitely_mismatches,
4269
                                    InvokeFlag flag,
4270
                                    Label::Distance near_jump,
4271
                                    const CallWrapper& call_wrapper) {
4272
  bool definitely_matches = false;
4273
  *definitely_mismatches = false;
4274 4275
  Label invoke;
  if (expected.is_immediate()) {
4276
    DCHECK(actual.is_immediate());
4277
    Set(rax, actual.immediate());
4278 4279 4280 4281 4282 4283 4284 4285 4286 4287 4288
    if (expected.immediate() == actual.immediate()) {
      definitely_matches = true;
    } else {
      if (expected.immediate() ==
              SharedFunctionInfo::kDontAdaptArgumentsSentinel) {
        // Don't worry about adapting arguments for built-ins that
        // don't want that done. Skip adaption code by making it look
        // like we have a match between expected and actual number of
        // arguments.
        definitely_matches = true;
      } else {
4289
        *definitely_mismatches = true;
4290 4291 4292 4293 4294 4295 4296 4297
        Set(rbx, expected.immediate());
      }
    }
  } else {
    if (actual.is_immediate()) {
      // Expected is in register, actual is immediate. This is the
      // case when we invoke function values without going through the
      // IC mechanism.
4298
      Set(rax, actual.immediate());
4299
      cmpp(expected.reg(), Immediate(actual.immediate()));
4300
      j(equal, &invoke, Label::kNear);
4301
      DCHECK(expected.reg().is(rbx));
4302 4303 4304
    } else if (!expected.reg().is(actual.reg())) {
      // Both expected and actual are in (different) registers. This
      // is the case when we invoke functions using call and apply.
4305
      cmpp(expected.reg(), actual.reg());
4306
      j(equal, &invoke, Label::kNear);
4307 4308
      DCHECK(actual.reg().is(rax));
      DCHECK(expected.reg().is(rbx));
4309 4310
    } else {
      Move(rax, actual.reg());
4311 4312 4313 4314 4315 4316 4317 4318 4319
    }
  }

  if (!definitely_matches) {
    Handle<Code> adaptor = isolate()->builtins()->ArgumentsAdaptorTrampoline();
    if (flag == CALL_FUNCTION) {
      call_wrapper.BeforeCall(CallSize(adaptor));
      Call(adaptor, RelocInfo::CODE_TARGET);
      call_wrapper.AfterCall();
4320 4321 4322
      if (!*definitely_mismatches) {
        jmp(done, near_jump);
      }
4323 4324 4325 4326 4327 4328 4329 4330
    } else {
      Jump(adaptor, RelocInfo::CODE_TARGET);
    }
    bind(&invoke);
  }
}


4331 4332 4333 4334
void MacroAssembler::FloodFunctionIfStepping(Register fun, Register new_target,
                                             const ParameterCount& expected,
                                             const ParameterCount& actual) {
  Label skip_flooding;
4335 4336 4337 4338 4339 4340
  ExternalReference last_step_action =
      ExternalReference::debug_last_step_action_address(isolate());
  Operand last_step_action_operand = ExternalOperand(last_step_action);
  STATIC_ASSERT(StepFrame > StepIn);
  cmpb(last_step_action_operand, Immediate(StepIn));
  j(less, &skip_flooding);
4341 4342 4343 4344 4345 4346 4347 4348 4349 4350 4351 4352 4353 4354 4355 4356
  {
    FrameScope frame(this,
                     has_frame() ? StackFrame::NONE : StackFrame::INTERNAL);
    if (expected.is_reg()) {
      Integer32ToSmi(expected.reg(), expected.reg());
      Push(expected.reg());
    }
    if (actual.is_reg()) {
      Integer32ToSmi(actual.reg(), actual.reg());
      Push(actual.reg());
    }
    if (new_target.is_valid()) {
      Push(new_target);
    }
    Push(fun);
    Push(fun);
4357
    CallRuntime(Runtime::kDebugPrepareStepInIfStepping);
4358 4359 4360 4361 4362 4363 4364 4365 4366 4367 4368 4369 4370 4371 4372 4373
    Pop(fun);
    if (new_target.is_valid()) {
      Pop(new_target);
    }
    if (actual.is_reg()) {
      Pop(actual.reg());
      SmiToInteger64(actual.reg(), actual.reg());
    }
    if (expected.is_reg()) {
      Pop(expected.reg());
      SmiToInteger64(expected.reg(), expected.reg());
    }
  }
  bind(&skip_flooding);
}

4374 4375 4376 4377
void MacroAssembler::StubPrologue(StackFrame::Type type) {
  pushq(rbp);  // Caller's frame pointer.
  movp(rbp, rsp);
  Push(Smi::FromInt(type));
4378 4379 4380 4381 4382 4383 4384 4385 4386 4387
}

void MacroAssembler::Prologue(bool code_pre_aging) {
  PredictableCodeSizeScope predictible_code_size_scope(this,
      kNoCodeAgeSequenceLength);
  if (code_pre_aging) {
      // Pre-age the code.
    Call(isolate()->builtins()->MarkCodeAsExecutedOnce(),
         RelocInfo::CODE_AGE_SEQUENCE);
    Nop(kNoCodeAgeSequenceLength - Assembler::kShortCallInstructionLength);
4388
  } else {
4389 4390 4391 4392
    pushq(rbp);  // Caller's frame pointer.
    movp(rbp, rsp);
    Push(rsi);  // Callee's context.
    Push(rdi);  // Callee's JS function.
4393 4394 4395 4396
  }
}


4397 4398
void MacroAssembler::EmitLoadTypeFeedbackVector(Register vector) {
  movp(vector, Operand(rbp, JavaScriptFrameConstants::kFunctionOffset));
4399 4400
  movp(vector, FieldOperand(vector, JSFunction::kLiteralsOffset));
  movp(vector, FieldOperand(vector, LiteralsArray::kFeedbackVectorOffset));
4401 4402 4403
}


4404 4405 4406 4407 4408 4409 4410
void MacroAssembler::EnterFrame(StackFrame::Type type,
                                bool load_constant_pool_pointer_reg) {
  // Out-of-line constant pool not implemented on x64.
  UNREACHABLE();
}


4411
void MacroAssembler::EnterFrame(StackFrame::Type type) {
4412
  pushq(rbp);
4413
  movp(rbp, rsp);
4414
  Push(Smi::FromInt(type));
4415 4416 4417 4418
  if (type == StackFrame::INTERNAL) {
    Move(kScratchRegister, CodeObject(), RelocInfo::EMBEDDED_OBJECT);
    Push(kScratchRegister);
  }
4419
  if (emit_debug_code()) {
4420
    Move(kScratchRegister,
4421
         isolate()->factory()->undefined_value(),
4422
         RelocInfo::EMBEDDED_OBJECT);
4423
    cmpp(Operand(rsp, 0), kScratchRegister);
4424
    Check(not_equal, kCodeObjectNotProperlyPatched);
4425 4426 4427 4428 4429
  }
}


void MacroAssembler::LeaveFrame(StackFrame::Type type) {
4430
  if (emit_debug_code()) {
4431
    Move(kScratchRegister, Smi::FromInt(type));
4432 4433
    cmpp(Operand(rbp, CommonFrameConstants::kContextOrFrameTypeOffset),
         kScratchRegister);
4434
    Check(equal, kStackFrameTypesMustMatch);
4435
  }
4436
  movp(rsp, rbp);
4437
  popq(rbp);
4438 4439
}

4440 4441 4442 4443 4444 4445 4446 4447 4448 4449 4450 4451 4452 4453 4454 4455 4456
void MacroAssembler::EnterBuiltinFrame(Register context, Register target,
                                       Register argc) {
  Push(rbp);
  Move(rbp, rsp);
  Push(context);
  Push(target);
  Push(argc);
}

void MacroAssembler::LeaveBuiltinFrame(Register context, Register target,
                                       Register argc) {
  Pop(argc);
  Pop(target);
  Pop(context);
  leave();
}

4457 4458 4459 4460
void MacroAssembler::EnterExitFramePrologue(bool save_rax,
                                            StackFrame::Type frame_type) {
  DCHECK(frame_type == StackFrame::EXIT ||
         frame_type == StackFrame::BUILTIN_EXIT);
4461

4462
  // Set up the frame structure on the stack.
4463
  // All constants are relative to the frame pointer of the exit frame.
4464 4465 4466 4467
  DCHECK_EQ(kFPOnStackSize + kPCOnStackSize,
            ExitFrameConstants::kCallerSPDisplacement);
  DCHECK_EQ(kFPOnStackSize, ExitFrameConstants::kCallerPCOffset);
  DCHECK_EQ(0 * kPointerSize, ExitFrameConstants::kCallerFPOffset);
4468
  pushq(rbp);
4469
  movp(rbp, rsp);
4470

4471
  // Reserve room for entry stack pointer and push the code object.
4472
  Push(Smi::FromInt(frame_type));
4473
  DCHECK_EQ(-2 * kPointerSize, ExitFrameConstants::kSPOffset);
4474
  Push(Immediate(0));  // Saved entry sp, patched before call.
4475
  Move(kScratchRegister, CodeObject(), RelocInfo::EMBEDDED_OBJECT);
ahaas's avatar
ahaas committed
4476
  Push(kScratchRegister);  // Accessed from ExitFrame::code_slot.
4477 4478

  // Save the frame pointer and the context in top.
4479
  if (save_rax) {
4480
    movp(r14, rax);  // Backup rax in callee-save register.
4481
  }
4482

4483 4484
  Store(ExternalReference(Isolate::kCEntryFPAddress, isolate()), rbp);
  Store(ExternalReference(Isolate::kContextAddress, isolate()), rsi);
4485
  Store(ExternalReference(Isolate::kCFunctionAddress, isolate()), rbx);
4486
}
4487

4488

4489 4490
void MacroAssembler::EnterExitFrameEpilogue(int arg_stack_space,
                                            bool save_doubles) {
4491
#ifdef _WIN64
4492 4493
  const int kShadowSpace = 4;
  arg_stack_space += kShadowSpace;
4494
#endif
4495 4496
  // Optionally save all XMM registers.
  if (save_doubles) {
4497 4498
    int space = XMMRegister::kMaxNumRegisters * kDoubleSize +
                arg_stack_space * kRegisterSize;
4499
    subp(rsp, Immediate(space));
4500
    int offset = -ExitFrameConstants::kFixedFrameSizeFromFp;
4501
    const RegisterConfiguration* config = RegisterConfiguration::Crankshaft();
4502 4503 4504
    for (int i = 0; i < config->num_allocatable_double_registers(); ++i) {
      DoubleRegister reg =
          DoubleRegister::from_code(config->GetAllocatableDoubleCode(i));
4505
      Movsd(Operand(rbp, offset - ((i + 1) * kDoubleSize)), reg);
4506 4507
    }
  } else if (arg_stack_space > 0) {
4508
    subp(rsp, Immediate(arg_stack_space * kRegisterSize));
4509
  }
4510

4511
  // Get the required frame alignment for the OS.
4512
  const int kFrameAlignment = base::OS::ActivationFrameAlignment();
4513
  if (kFrameAlignment > 0) {
4514
    DCHECK(base::bits::IsPowerOfTwo32(kFrameAlignment));
4515
    DCHECK(is_int8(kFrameAlignment));
4516
    andp(rsp, Immediate(-kFrameAlignment));
4517 4518 4519
  }

  // Patch the saved entry sp.
4520
  movp(Operand(rbp, ExitFrameConstants::kSPOffset), rsp);
4521 4522
}

4523 4524 4525
void MacroAssembler::EnterExitFrame(int arg_stack_space, bool save_doubles,
                                    StackFrame::Type frame_type) {
  EnterExitFramePrologue(true, frame_type);
4526

4527
  // Set up argv in callee-saved register r15. It is reused in LeaveExitFrame,
4528 4529
  // so it must be retained across the C-call.
  int offset = StandardFrameConstants::kCallerSPOffset - kPointerSize;
4530
  leap(r15, Operand(rbp, r14, times_pointer_size, offset));
4531

4532
  EnterExitFrameEpilogue(arg_stack_space, save_doubles);
4533 4534 4535
}


4536
void MacroAssembler::EnterApiExitFrame(int arg_stack_space) {
4537
  EnterExitFramePrologue(false, StackFrame::EXIT);
4538
  EnterExitFrameEpilogue(arg_stack_space, false);
4539 4540 4541
}


4542
void MacroAssembler::LeaveExitFrame(bool save_doubles, bool pop_arguments) {
4543
  // Registers:
4544
  // r15 : argv
4545
  if (save_doubles) {
4546
    int offset = -ExitFrameConstants::kFixedFrameSizeFromFp;
4547
    const RegisterConfiguration* config = RegisterConfiguration::Crankshaft();
4548 4549 4550
    for (int i = 0; i < config->num_allocatable_double_registers(); ++i) {
      DoubleRegister reg =
          DoubleRegister::from_code(config->GetAllocatableDoubleCode(i));
4551
      Movsd(reg, Operand(rbp, offset - ((i + 1) * kDoubleSize)));
4552 4553
    }
  }
4554

4555 4556 4557 4558
  if (pop_arguments) {
    // Get the return address from the stack and restore the frame pointer.
    movp(rcx, Operand(rbp, kFPOnStackSize));
    movp(rbp, Operand(rbp, 0 * kPointerSize));
4559

4560 4561 4562 4563 4564 4565 4566 4567 4568
    // Drop everything up to and including the arguments and the receiver
    // from the caller stack.
    leap(rsp, Operand(r15, 1 * kPointerSize));

    PushReturnAddressFrom(rcx);
  } else {
    // Otherwise just leave the exit frame.
    leave();
  }
4569

4570
  LeaveExitFrameEpilogue(true);
4571 4572 4573
}


4574
void MacroAssembler::LeaveApiExitFrame(bool restore_context) {
4575
  movp(rsp, rbp);
4576
  popq(rbp);
4577

4578
  LeaveExitFrameEpilogue(restore_context);
4579 4580 4581
}


4582
void MacroAssembler::LeaveExitFrameEpilogue(bool restore_context) {
4583
  // Restore current context from top and clear it in debug mode.
4584
  ExternalReference context_address(Isolate::kContextAddress, isolate());
4585
  Operand context_operand = ExternalOperand(context_address);
4586
  if (restore_context) {
4587
    movp(rsi, context_operand);
4588
  }
4589
#ifdef DEBUG
4590
  movp(context_operand, Immediate(0));
4591 4592 4593
#endif

  // Clear the top frame.
4594
  ExternalReference c_entry_fp_address(Isolate::kCEntryFPAddress,
4595
                                       isolate());
4596
  Operand c_entry_fp_operand = ExternalOperand(c_entry_fp_address);
4597
  movp(c_entry_fp_operand, Immediate(0));
4598 4599 4600
}


4601
// Compute the hash code from the untagged key.  This must be kept in sync with
4602
// ComputeIntegerHash in utils.h and KeyedLoadGenericStub in
4603
// code-stub-hydrogen.cc
4604 4605
void MacroAssembler::GetNumberHash(Register r0, Register scratch) {
  // First of all we assign the hash seed to scratch.
4606
  LoadRoot(scratch, Heap::kHashSeedRootIndex);
4607 4608 4609 4610 4611 4612 4613 4614 4615 4616 4617 4618 4619 4620 4621 4622 4623 4624 4625 4626 4627 4628 4629 4630 4631 4632 4633 4634 4635
  SmiToInteger32(scratch, scratch);

  // Xor original key with a seed.
  xorl(r0, scratch);

  // Compute the hash code from the untagged key.  This must be kept in sync
  // with ComputeIntegerHash in utils.h.
  //
  // hash = ~hash + (hash << 15);
  movl(scratch, r0);
  notl(r0);
  shll(scratch, Immediate(15));
  addl(r0, scratch);
  // hash = hash ^ (hash >> 12);
  movl(scratch, r0);
  shrl(scratch, Immediate(12));
  xorl(r0, scratch);
  // hash = hash + (hash << 2);
  leal(r0, Operand(r0, r0, times_4, 0));
  // hash = hash ^ (hash >> 4);
  movl(scratch, r0);
  shrl(scratch, Immediate(4));
  xorl(r0, scratch);
  // hash = hash * 2057;
  imull(r0, r0, Immediate(2057));
  // hash = hash ^ (hash >> 16);
  movl(scratch, r0);
  shrl(scratch, Immediate(16));
  xorl(r0, scratch);
4636
  andl(r0, Immediate(0x3fffffff));
4637 4638
}

4639 4640 4641
void MacroAssembler::LoadAllocationTopHelper(Register result,
                                             Register scratch,
                                             AllocationFlags flags) {
4642 4643
  ExternalReference allocation_top =
      AllocationUtils::GetAllocationTopReference(isolate(), flags);
4644 4645

  // Just return if allocation top is already known.
4646
  if ((flags & RESULT_CONTAINS_TOP) != 0) {
4647
    // No use of scratch if allocation top is provided.
4648
    DCHECK(!scratch.is_valid());
4649 4650
#ifdef DEBUG
    // Assert that result actually contains top on entry.
4651
    Operand top_operand = ExternalOperand(allocation_top);
4652
    cmpp(result, top_operand);
4653
    Check(equal, kUnexpectedAllocationTop);
4654
#endif
4655 4656 4657
    return;
  }

4658 4659 4660
  // Move address of new object to result. Use scratch register if available,
  // and keep address in scratch until call to UpdateAllocationTopHelper.
  if (scratch.is_valid()) {
4661
    LoadAddress(scratch, allocation_top);
4662
    movp(result, Operand(scratch, 0));
4663
  } else {
4664
    Load(result, allocation_top);
4665 4666 4667 4668
  }
}


4669 4670 4671 4672 4673 4674
void MacroAssembler::MakeSureDoubleAlignedHelper(Register result,
                                                 Register scratch,
                                                 Label* gc_required,
                                                 AllocationFlags flags) {
  if (kPointerSize == kDoubleSize) {
    if (FLAG_debug_code) {
4675
      testl(result, Immediate(kDoubleAlignmentMask));
4676 4677 4678 4679 4680
      Check(zero, kAllocationIsNotDoubleAligned);
    }
  } else {
    // Align the next allocation. Storing the filler map without checking top
    // is safe in new-space because the limit of the heap is aligned there.
4681 4682
    DCHECK(kPointerSize * 2 == kDoubleSize);
    DCHECK(kPointerAlignment * 2 == kDoubleAlignment);
4683 4684
    // Make sure scratch is not clobbered by this function as it might be
    // used in UpdateAllocationTopHelper later.
4685
    DCHECK(!scratch.is(kScratchRegister));
4686
    Label aligned;
4687
    testl(result, Immediate(kDoubleAlignmentMask));
4688
    j(zero, &aligned, Label::kNear);
4689
    if (((flags & ALLOCATION_FOLDED) == 0) && ((flags & PRETENURE) != 0)) {
4690 4691 4692 4693 4694 4695
      ExternalReference allocation_limit =
          AllocationUtils::GetAllocationLimitReference(isolate(), flags);
      cmpp(result, ExternalOperand(allocation_limit));
      j(above_equal, gc_required);
    }
    LoadRoot(kScratchRegister, Heap::kOnePointerFillerMapRootIndex);
4696
    movp(Operand(result, 0), kScratchRegister);
4697 4698 4699 4700 4701 4702
    addp(result, Immediate(kDoubleSize / 2));
    bind(&aligned);
  }
}


4703
void MacroAssembler::UpdateAllocationTopHelper(Register result_end,
4704 4705
                                               Register scratch,
                                               AllocationFlags flags) {
4706
  if (emit_debug_code()) {
4707
    testp(result_end, Immediate(kObjectAlignmentMask));
4708
    Check(zero, kUnalignedAllocationInNewSpace);
4709 4710
  }

4711 4712
  ExternalReference allocation_top =
      AllocationUtils::GetAllocationTopReference(isolate(), flags);
4713 4714

  // Update new top.
4715 4716
  if (scratch.is_valid()) {
    // Scratch already contains address of allocation top.
4717
    movp(Operand(scratch, 0), result_end);
4718
  } else {
4719
    Store(allocation_top, result_end);
4720 4721 4722 4723
  }
}


4724 4725 4726 4727 4728 4729
void MacroAssembler::Allocate(int object_size,
                              Register result,
                              Register result_end,
                              Register scratch,
                              Label* gc_required,
                              AllocationFlags flags) {
4730
  DCHECK((flags & (RESULT_CONTAINS_TOP | SIZE_IN_WORDS)) == 0);
4731
  DCHECK(object_size <= kMaxRegularHeapObjectSize);
4732
  DCHECK((flags & ALLOCATION_FOLDED) == 0);
4733
  if (!FLAG_inline_new) {
4734
    if (emit_debug_code()) {
4735 4736 4737 4738 4739 4740 4741 4742 4743 4744 4745 4746
      // Trash the registers to simulate an allocation failure.
      movl(result, Immediate(0x7091));
      if (result_end.is_valid()) {
        movl(result_end, Immediate(0x7191));
      }
      if (scratch.is_valid()) {
        movl(scratch, Immediate(0x7291));
      }
    }
    jmp(gc_required);
    return;
  }
4747
  DCHECK(!result.is(result_end));
4748 4749

  // Load address of new object into result.
4750
  LoadAllocationTopHelper(result, scratch, flags);
4751

4752 4753
  if ((flags & DOUBLE_ALIGNMENT) != 0) {
    MakeSureDoubleAlignedHelper(result, scratch, gc_required, flags);
4754 4755
  }

4756
  // Calculate new top and bail out if new space is exhausted.
4757 4758
  ExternalReference allocation_limit =
      AllocationUtils::GetAllocationLimitReference(isolate(), flags);
4759 4760 4761

  Register top_reg = result_end.is_valid() ? result_end : result;

4762
  if (!top_reg.is(result)) {
4763
    movp(top_reg, result);
4764
  }
4765
  addp(top_reg, Immediate(object_size));
4766
  Operand limit_operand = ExternalOperand(allocation_limit);
4767
  cmpp(top_reg, limit_operand);
4768 4769
  j(above, gc_required);

4770 4771 4772 4773
  if ((flags & ALLOCATION_FOLDING_DOMINATOR) == 0) {
    // The top pointer is not updated for allocation folding dominators.
    UpdateAllocationTopHelper(top_reg, scratch, flags);
  }
4774

4775
  if (top_reg.is(result)) {
4776 4777 4778 4779 4780
    subp(result, Immediate(object_size - kHeapObjectTag));
  } else {
    // Tag the result.
    DCHECK(kHeapObjectTag == 1);
    incp(result);
4781
  }
4782 4783 4784
}


4785 4786 4787 4788 4789 4790 4791 4792
void MacroAssembler::Allocate(int header_size,
                              ScaleFactor element_size,
                              Register element_count,
                              Register result,
                              Register result_end,
                              Register scratch,
                              Label* gc_required,
                              AllocationFlags flags) {
4793
  DCHECK((flags & SIZE_IN_WORDS) == 0);
4794 4795
  DCHECK((flags & ALLOCATION_FOLDING_DOMINATOR) == 0);
  DCHECK((flags & ALLOCATION_FOLDED) == 0);
4796
  leap(result_end, Operand(element_count, element_size, header_size));
4797
  Allocate(result_end, result, result_end, scratch, gc_required, flags);
4798 4799 4800
}


4801 4802 4803 4804 4805 4806
void MacroAssembler::Allocate(Register object_size,
                              Register result,
                              Register result_end,
                              Register scratch,
                              Label* gc_required,
                              AllocationFlags flags) {
4807
  DCHECK((flags & SIZE_IN_WORDS) == 0);
4808
  DCHECK((flags & ALLOCATION_FOLDED) == 0);
4809
  if (!FLAG_inline_new) {
4810
    if (emit_debug_code()) {
4811 4812 4813 4814 4815 4816 4817 4818 4819 4820 4821
      // Trash the registers to simulate an allocation failure.
      movl(result, Immediate(0x7091));
      movl(result_end, Immediate(0x7191));
      if (scratch.is_valid()) {
        movl(scratch, Immediate(0x7291));
      }
      // object_size is left unchanged by this function.
    }
    jmp(gc_required);
    return;
  }
4822
  DCHECK(!result.is(result_end));
4823

4824
  // Load address of new object into result.
4825
  LoadAllocationTopHelper(result, scratch, flags);
4826

4827 4828
  if ((flags & DOUBLE_ALIGNMENT) != 0) {
    MakeSureDoubleAlignedHelper(result, scratch, gc_required, flags);
4829 4830
  }

4831 4832
  ExternalReference allocation_limit =
      AllocationUtils::GetAllocationLimitReference(isolate(), flags);
4833
  if (!object_size.is(result_end)) {
4834
    movp(result_end, object_size);
4835
  }
4836
  addp(result_end, result);
4837
  Operand limit_operand = ExternalOperand(allocation_limit);
4838
  cmpp(result_end, limit_operand);
4839 4840
  j(above, gc_required);

4841 4842 4843 4844
  if ((flags & ALLOCATION_FOLDING_DOMINATOR) == 0) {
    // The top pointer is not updated for allocation folding dominators.
    UpdateAllocationTopHelper(result_end, scratch, flags);
  }
4845 4846 4847

  // Tag the result.
  addp(result, Immediate(kHeapObjectTag));
4848 4849
}

4850 4851 4852 4853 4854 4855 4856 4857 4858 4859 4860 4861 4862
void MacroAssembler::FastAllocate(int object_size, Register result,
                                  Register result_end, AllocationFlags flags) {
  DCHECK(!result.is(result_end));
  // Load address of new object into result.
  LoadAllocationTopHelper(result, no_reg, flags);

  if ((flags & DOUBLE_ALIGNMENT) != 0) {
    MakeSureDoubleAlignedHelper(result, no_reg, NULL, flags);
  }

  leap(result_end, Operand(result, object_size));

  UpdateAllocationTopHelper(result_end, no_reg, flags);
4863 4864

  addp(result, Immediate(kHeapObjectTag));
4865 4866 4867 4868 4869 4870 4871 4872 4873 4874 4875 4876 4877 4878 4879
}

void MacroAssembler::FastAllocate(Register object_size, Register result,
                                  Register result_end, AllocationFlags flags) {
  DCHECK(!result.is(result_end));
  // Load address of new object into result.
  LoadAllocationTopHelper(result, no_reg, flags);

  if ((flags & DOUBLE_ALIGNMENT) != 0) {
    MakeSureDoubleAlignedHelper(result, no_reg, NULL, flags);
  }

  leap(result_end, Operand(result, object_size, times_1, 0));

  UpdateAllocationTopHelper(result_end, no_reg, flags);
4880 4881

  addp(result, Immediate(kHeapObjectTag));
4882
}
4883

4884 4885
void MacroAssembler::AllocateHeapNumber(Register result,
                                        Register scratch,
4886 4887
                                        Label* gc_required,
                                        MutableMode mode) {
4888
  // Allocate heap number in new space.
4889 4890
  Allocate(HeapNumber::kSize, result, scratch, no_reg, gc_required,
           NO_ALLOCATION_FLAGS);
4891

4892 4893 4894 4895
  Heap::RootListIndex map_index = mode == MUTABLE
      ? Heap::kMutableHeapNumberMapRootIndex
      : Heap::kHeapNumberMapRootIndex;

4896
  // Set the map.
4897
  LoadRoot(kScratchRegister, map_index);
4898
  movp(FieldOperand(result, HeapObject::kMapOffset), kScratchRegister);
4899 4900 4901
}


4902 4903 4904 4905 4906 4907 4908 4909
void MacroAssembler::AllocateTwoByteString(Register result,
                                           Register length,
                                           Register scratch1,
                                           Register scratch2,
                                           Register scratch3,
                                           Label* gc_required) {
  // Calculate the number of bytes needed for the characters in the string while
  // observing object alignment.
4910 4911
  const int kHeaderAlignment = SeqTwoByteString::kHeaderSize &
                               kObjectAlignmentMask;
4912
  DCHECK(kShortSize == 2);
4913
  // scratch1 = length * 2 + kObjectAlignmentMask.
4914
  leap(scratch1, Operand(length, length, times_1, kObjectAlignmentMask +
4915
                kHeaderAlignment));
4916
  andp(scratch1, Immediate(~kObjectAlignmentMask));
4917
  if (kHeaderAlignment > 0) {
4918
    subp(scratch1, Immediate(kHeaderAlignment));
4919
  }
4920 4921

  // Allocate two byte string in new space.
4922 4923
  Allocate(SeqTwoByteString::kHeaderSize, times_1, scratch1, result, scratch2,
           scratch3, gc_required, NO_ALLOCATION_FLAGS);
4924 4925 4926

  // Set the map, length and hash field.
  LoadRoot(kScratchRegister, Heap::kStringMapRootIndex);
4927
  movp(FieldOperand(result, HeapObject::kMapOffset), kScratchRegister);
4928
  Integer32ToSmi(scratch1, length);
4929 4930
  movp(FieldOperand(result, String::kLengthOffset), scratch1);
  movp(FieldOperand(result, String::kHashFieldOffset),
4931 4932 4933 4934
       Immediate(String::kEmptyHashField));
}


4935 4936 4937 4938
void MacroAssembler::AllocateOneByteString(Register result, Register length,
                                           Register scratch1, Register scratch2,
                                           Register scratch3,
                                           Label* gc_required) {
4939 4940
  // Calculate the number of bytes needed for the characters in the string while
  // observing object alignment.
4941
  const int kHeaderAlignment = SeqOneByteString::kHeaderSize &
4942
                               kObjectAlignmentMask;
4943
  movl(scratch1, length);
4944
  DCHECK(kCharSize == 1);
4945
  addp(scratch1, Immediate(kObjectAlignmentMask + kHeaderAlignment));
4946
  andp(scratch1, Immediate(~kObjectAlignmentMask));
4947
  if (kHeaderAlignment > 0) {
4948
    subp(scratch1, Immediate(kHeaderAlignment));
4949
  }
4950

4951
  // Allocate one-byte string in new space.
4952 4953
  Allocate(SeqOneByteString::kHeaderSize, times_1, scratch1, result, scratch2,
           scratch3, gc_required, NO_ALLOCATION_FLAGS);
4954 4955

  // Set the map, length and hash field.
4956
  LoadRoot(kScratchRegister, Heap::kOneByteStringMapRootIndex);
4957
  movp(FieldOperand(result, HeapObject::kMapOffset), kScratchRegister);
4958
  Integer32ToSmi(scratch1, length);
4959 4960
  movp(FieldOperand(result, String::kLengthOffset), scratch1);
  movp(FieldOperand(result, String::kHashFieldOffset),
4961 4962 4963 4964
       Immediate(String::kEmptyHashField));
}


4965
void MacroAssembler::AllocateTwoByteConsString(Register result,
4966 4967 4968 4969
                                        Register scratch1,
                                        Register scratch2,
                                        Label* gc_required) {
  // Allocate heap number in new space.
4970
  Allocate(ConsString::kSize, result, scratch1, scratch2, gc_required,
4971
           NO_ALLOCATION_FLAGS);
4972 4973 4974

  // Set the map. The other fields are left uninitialized.
  LoadRoot(kScratchRegister, Heap::kConsStringMapRootIndex);
4975
  movp(FieldOperand(result, HeapObject::kMapOffset), kScratchRegister);
4976 4977 4978
}


4979 4980 4981 4982
void MacroAssembler::AllocateOneByteConsString(Register result,
                                               Register scratch1,
                                               Register scratch2,
                                               Label* gc_required) {
4983 4984
  Allocate(ConsString::kSize, result, scratch1, scratch2, gc_required,
           NO_ALLOCATION_FLAGS);
4985 4986

  // Set the map. The other fields are left uninitialized.
4987
  LoadRoot(kScratchRegister, Heap::kConsOneByteStringMapRootIndex);
4988
  movp(FieldOperand(result, HeapObject::kMapOffset), kScratchRegister);
4989 4990 4991
}


4992 4993 4994 4995 4996
void MacroAssembler::AllocateTwoByteSlicedString(Register result,
                                          Register scratch1,
                                          Register scratch2,
                                          Label* gc_required) {
  // Allocate heap number in new space.
4997
  Allocate(SlicedString::kSize, result, scratch1, scratch2, gc_required,
4998
           NO_ALLOCATION_FLAGS);
4999 5000 5001

  // Set the map. The other fields are left uninitialized.
  LoadRoot(kScratchRegister, Heap::kSlicedStringMapRootIndex);
5002
  movp(FieldOperand(result, HeapObject::kMapOffset), kScratchRegister);
5003 5004 5005
}


5006 5007 5008 5009
void MacroAssembler::AllocateOneByteSlicedString(Register result,
                                                 Register scratch1,
                                                 Register scratch2,
                                                 Label* gc_required) {
5010
  // Allocate heap number in new space.
5011
  Allocate(SlicedString::kSize, result, scratch1, scratch2, gc_required,
5012
           NO_ALLOCATION_FLAGS);
5013 5014

  // Set the map. The other fields are left uninitialized.
5015
  LoadRoot(kScratchRegister, Heap::kSlicedOneByteStringMapRootIndex);
5016
  movp(FieldOperand(result, HeapObject::kMapOffset), kScratchRegister);
5017 5018 5019
}


5020 5021 5022 5023 5024 5025 5026 5027
void MacroAssembler::AllocateJSValue(Register result, Register constructor,
                                     Register value, Register scratch,
                                     Label* gc_required) {
  DCHECK(!result.is(constructor));
  DCHECK(!result.is(scratch));
  DCHECK(!result.is(value));

  // Allocate JSValue in new space.
5028 5029
  Allocate(JSValue::kSize, result, scratch, no_reg, gc_required,
           NO_ALLOCATION_FLAGS);
5030 5031 5032 5033 5034 5035 5036 5037 5038 5039 5040

  // Initialize the JSValue.
  LoadGlobalFunctionInitialMap(constructor, scratch);
  movp(FieldOperand(result, HeapObject::kMapOffset), scratch);
  LoadRoot(scratch, Heap::kEmptyFixedArrayRootIndex);
  movp(FieldOperand(result, JSObject::kPropertiesOffset), scratch);
  movp(FieldOperand(result, JSObject::kElementsOffset), scratch);
  movp(FieldOperand(result, JSValue::kValueOffset), value);
  STATIC_ASSERT(JSValue::kSize == 4 * kPointerSize);
}

5041 5042
void MacroAssembler::InitializeFieldsWithFiller(Register current_address,
                                                Register end_address,
5043 5044
                                                Register filler) {
  Label loop, entry;
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ishell committed
5045
  jmp(&entry, Label::kNear);
5046
  bind(&loop);
5047 5048
  movp(Operand(current_address, 0), filler);
  addp(current_address, Immediate(kPointerSize));
5049
  bind(&entry);
5050
  cmpp(current_address, end_address);
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5051
  j(below, &loop, Label::kNear);
5052 5053 5054
}


5055 5056 5057
void MacroAssembler::LoadContext(Register dst, int context_chain_length) {
  if (context_chain_length > 0) {
    // Move up the chain of contexts to the context containing the slot.
5058
    movp(dst, Operand(rsi, Context::SlotOffset(Context::PREVIOUS_INDEX)));
5059
    for (int i = 1; i < context_chain_length; i++) {
5060
      movp(dst, Operand(dst, Context::SlotOffset(Context::PREVIOUS_INDEX)));
5061
    }
5062 5063 5064 5065
  } else {
    // Slot is in the current function context.  Move it into the
    // destination register in case we store into it (the write barrier
    // cannot be allowed to destroy the context in rsi).
5066
    movp(dst, rsi);
5067 5068
  }

5069 5070 5071 5072
  // We should not have found a with context by walking the context
  // chain (i.e., the static scope chain and runtime context chain do
  // not agree).  A variable occurring in such a scope should have
  // slot type LOOKUP and not CONTEXT.
5073
  if (emit_debug_code()) {
5074 5075
    CompareRoot(FieldOperand(dst, HeapObject::kMapOffset),
                Heap::kWithContextMapRootIndex);
5076
    Check(not_equal, kVariableResolvedToWithContext);
5077 5078 5079
  }
}

5080 5081 5082 5083 5084
#ifdef _WIN64
static const int kRegisterPassedArguments = 4;
#else
static const int kRegisterPassedArguments = 6;
#endif
5085

5086 5087 5088 5089

void MacroAssembler::LoadNativeContextSlot(int index, Register dst) {
  movp(dst, NativeContextOperand());
  movp(dst, ContextOperand(dst, index));
5090 5091 5092 5093 5094 5095
}


void MacroAssembler::LoadGlobalFunctionInitialMap(Register function,
                                                  Register map) {
  // Load the initial map.  The global functions all have initial maps.
5096
  movp(map, FieldOperand(function, JSFunction::kPrototypeOrInitialMapOffset));
5097
  if (emit_debug_code()) {
5098
    Label ok, fail;
5099
    CheckMap(map, isolate()->factory()->meta_map(), &fail, DO_SMI_CHECK);
5100 5101
    jmp(&ok);
    bind(&fail);
5102
    Abort(kGlobalFunctionsMustHaveInitialMap);
5103 5104 5105 5106 5107
    bind(&ok);
  }
}


5108
int MacroAssembler::ArgumentStackSlotsForCFunctionCall(int num_arguments) {
5109 5110 5111 5112 5113 5114
  // On Windows 64 stack slots are reserved by the caller for all arguments
  // including the ones passed in registers, and space is always allocated for
  // the four register arguments even if the function takes fewer than four
  // arguments.
  // On AMD64 ABI (Linux/Mac) the first six arguments are passed in registers
  // and the caller does not reserve stack slots for them.
5115
  DCHECK(num_arguments >= 0);
5116
#ifdef _WIN64
5117
  const int kMinimumStackSlots = kRegisterPassedArguments;
5118 5119
  if (num_arguments < kMinimumStackSlots) return kMinimumStackSlots;
  return num_arguments;
5120
#else
5121 5122
  if (num_arguments < kRegisterPassedArguments) return 0;
  return num_arguments - kRegisterPassedArguments;
5123 5124 5125
#endif
}

5126

5127 5128 5129 5130 5131 5132
void MacroAssembler::EmitSeqStringSetCharCheck(Register string,
                                               Register index,
                                               Register value,
                                               uint32_t encoding_mask) {
  Label is_object;
  JumpIfNotSmi(string, &is_object);
5133
  Abort(kNonObject);
5134 5135
  bind(&is_object);

5136
  Push(value);
5137
  movp(value, FieldOperand(string, HeapObject::kMapOffset));
5138
  movzxbp(value, FieldOperand(value, Map::kInstanceTypeOffset));
5139 5140

  andb(value, Immediate(kStringRepresentationMask | kStringEncodingMask));
5141
  cmpp(value, Immediate(encoding_mask));
5142
  Pop(value);
5143
  Check(equal, kUnexpectedStringType);
5144 5145 5146 5147 5148 5149

  // The index is assumed to be untagged coming in, tag it to compare with the
  // string length without using a temp register, it is restored at the end of
  // this function.
  Integer32ToSmi(index, index);
  SmiCompare(index, FieldOperand(string, String::kLengthOffset));
5150
  Check(less, kIndexIsTooLarge);
5151

5152
  SmiCompare(index, Smi::kZero);
5153
  Check(greater_equal, kIndexIsNegative);
5154 5155 5156 5157 5158 5159

  // Restore the index
  SmiToInteger32(index, index);
}


5160
void MacroAssembler::PrepareCallCFunction(int num_arguments) {
5161
  int frame_alignment = base::OS::ActivationFrameAlignment();
5162 5163
  DCHECK(frame_alignment != 0);
  DCHECK(num_arguments >= 0);
5164

5165
  // Make stack end at alignment and allocate space for arguments and old rsp.
5166
  movp(kScratchRegister, rsp);
5167
  DCHECK(base::bits::IsPowerOfTwo32(frame_alignment));
5168 5169
  int argument_slots_on_stack =
      ArgumentStackSlotsForCFunctionCall(num_arguments);
5170
  subp(rsp, Immediate((argument_slots_on_stack + 1) * kRegisterSize));
5171
  andp(rsp, Immediate(-frame_alignment));
5172
  movp(Operand(rsp, argument_slots_on_stack * kRegisterSize), kScratchRegister);
5173 5174 5175 5176 5177
}


void MacroAssembler::CallCFunction(ExternalReference function,
                                   int num_arguments) {
5178
  LoadAddress(rax, function);
5179 5180 5181 5182 5183
  CallCFunction(rax, num_arguments);
}


void MacroAssembler::CallCFunction(Register function, int num_arguments) {
5184
  DCHECK(has_frame());
5185
  // Check stack alignment.
5186
  if (emit_debug_code()) {
5187 5188 5189
    CheckStackAlignment();
  }

5190
  call(function);
5191 5192
  DCHECK(base::OS::ActivationFrameAlignment() != 0);
  DCHECK(num_arguments >= 0);
5193 5194
  int argument_slots_on_stack =
      ArgumentStackSlotsForCFunctionCall(num_arguments);
5195
  movp(rsp, Operand(rsp, argument_slots_on_stack * kRegisterSize));
5196 5197
}

5198

5199 5200 5201 5202 5203 5204 5205 5206 5207 5208 5209 5210 5211 5212 5213 5214 5215 5216 5217 5218 5219 5220 5221 5222 5223
#ifdef DEBUG
bool AreAliased(Register reg1,
                Register reg2,
                Register reg3,
                Register reg4,
                Register reg5,
                Register reg6,
                Register reg7,
                Register reg8) {
  int n_of_valid_regs = reg1.is_valid() + reg2.is_valid() +
      reg3.is_valid() + reg4.is_valid() + reg5.is_valid() + reg6.is_valid() +
      reg7.is_valid() + reg8.is_valid();

  RegList regs = 0;
  if (reg1.is_valid()) regs |= reg1.bit();
  if (reg2.is_valid()) regs |= reg2.bit();
  if (reg3.is_valid()) regs |= reg3.bit();
  if (reg4.is_valid()) regs |= reg4.bit();
  if (reg5.is_valid()) regs |= reg5.bit();
  if (reg6.is_valid()) regs |= reg6.bit();
  if (reg7.is_valid()) regs |= reg7.bit();
  if (reg8.is_valid()) regs |= reg8.bit();
  int n_of_non_aliasing_regs = NumRegs(regs);

  return n_of_valid_regs != n_of_non_aliasing_regs;
5224
}
5225
#endif
5226 5227


5228
CodePatcher::CodePatcher(Isolate* isolate, byte* address, int size)
5229 5230
    : address_(address),
      size_(size),
5231
      masm_(isolate, address, size + Assembler::kGap, CodeObjectRequired::kNo) {
5232 5233 5234
  // Create a new macro assembler pointing to the address of the code to patch.
  // The size is adjusted with kGap on order for the assembler to generate size
  // bytes of instructions without failing with buffer size constraints.
5235
  DCHECK(masm_.reloc_info_writer.pos() == address_ + size_ + Assembler::kGap);
5236 5237 5238 5239 5240
}


CodePatcher::~CodePatcher() {
  // Indicate that code has changed.
5241
  Assembler::FlushICache(masm_.isolate(), address_, size_);
5242 5243

  // Check that the code was patched as expected.
5244 5245
  DCHECK(masm_.pc_ == address_ + size_);
  DCHECK(masm_.reloc_info_writer.pos() == address_ + size_ + Assembler::kGap);
5246 5247
}

5248 5249 5250 5251 5252 5253 5254 5255

void MacroAssembler::CheckPageFlag(
    Register object,
    Register scratch,
    int mask,
    Condition cc,
    Label* condition_met,
    Label::Distance condition_met_distance) {
5256
  DCHECK(cc == zero || cc == not_zero);
5257
  if (scratch.is(object)) {
5258
    andp(scratch, Immediate(~Page::kPageAlignmentMask));
5259
  } else {
5260
    movp(scratch, Immediate(~Page::kPageAlignmentMask));
5261
    andp(scratch, object);
5262 5263 5264 5265 5266 5267 5268 5269 5270 5271 5272 5273 5274 5275 5276 5277
  }
  if (mask < (1 << kBitsPerByte)) {
    testb(Operand(scratch, MemoryChunk::kFlagsOffset),
          Immediate(static_cast<uint8_t>(mask)));
  } else {
    testl(Operand(scratch, MemoryChunk::kFlagsOffset), Immediate(mask));
  }
  j(cc, condition_met, condition_met_distance);
}


void MacroAssembler::JumpIfBlack(Register object,
                                 Register bitmap_scratch,
                                 Register mask_scratch,
                                 Label* on_black,
                                 Label::Distance on_black_distance) {
5278
  DCHECK(!AreAliased(object, bitmap_scratch, mask_scratch, rcx));
5279

5280 5281
  GetMarkBits(object, bitmap_scratch, mask_scratch);

5282
  DCHECK(strcmp(Marking::kBlackBitPattern, "11") == 0);
5283
  // The mask_scratch register contains a 1 at the position of the first bit
5284
  // and a 1 at a position of the second bit. All other positions are zero.
5285
  movp(rcx, mask_scratch);
5286
  andp(rcx, Operand(bitmap_scratch, MemoryChunk::kHeaderSize));
5287
  cmpp(mask_scratch, rcx);
5288 5289 5290 5291 5292 5293 5294
  j(equal, on_black, on_black_distance);
}


void MacroAssembler::GetMarkBits(Register addr_reg,
                                 Register bitmap_reg,
                                 Register mask_reg) {
5295
  DCHECK(!AreAliased(addr_reg, bitmap_reg, mask_reg, rcx));
5296
  movp(bitmap_reg, addr_reg);
5297
  // Sign extended 32 bit immediate.
5298
  andp(bitmap_reg, Immediate(~Page::kPageAlignmentMask));
5299
  movp(rcx, addr_reg);
5300 5301 5302
  int shift =
      Bitmap::kBitsPerCellLog2 + kPointerSizeLog2 - Bitmap::kBytesPerCellLog2;
  shrl(rcx, Immediate(shift));
5303
  andp(rcx,
5304 5305 5306
       Immediate((Page::kPageAlignmentMask >> shift) &
                 ~(Bitmap::kBytesPerCell - 1)));

5307
  addp(bitmap_reg, rcx);
5308
  movp(rcx, addr_reg);
5309
  shrl(rcx, Immediate(kPointerSizeLog2));
5310
  andp(rcx, Immediate((1 << Bitmap::kBitsPerCellLog2) - 1));
5311
  movl(mask_reg, Immediate(3));
5312
  shlp_cl(mask_reg);
5313 5314 5315
}


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hpayer committed
5316 5317 5318
void MacroAssembler::JumpIfWhite(Register value, Register bitmap_scratch,
                                 Register mask_scratch, Label* value_is_white,
                                 Label::Distance distance) {
5319
  DCHECK(!AreAliased(value, bitmap_scratch, mask_scratch, rcx));
5320 5321 5322
  GetMarkBits(value, bitmap_scratch, mask_scratch);

  // If the value is black or grey we don't need to do anything.
5323
  DCHECK(strcmp(Marking::kWhiteBitPattern, "00") == 0);
5324 5325
  DCHECK(strcmp(Marking::kBlackBitPattern, "11") == 0);
  DCHECK(strcmp(Marking::kGreyBitPattern, "10") == 0);
5326
  DCHECK(strcmp(Marking::kImpossibleBitPattern, "01") == 0);
5327 5328 5329

  // Since both black and grey have a 1 in the first position and white does
  // not have a 1 there we only need to check one bit.
5330
  testp(Operand(bitmap_scratch, MemoryChunk::kHeaderSize), mask_scratch);
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hpayer committed
5331
  j(zero, value_is_white, distance);
5332 5333
}

5334

5335
void MacroAssembler::CheckEnumCache(Label* call_runtime) {
5336
  Label next, start;
5337 5338
  Register empty_fixed_array_value = r8;
  LoadRoot(empty_fixed_array_value, Heap::kEmptyFixedArrayRootIndex);
5339
  movp(rcx, rax);
5340

5341 5342
  // Check if the enum length field is properly initialized, indicating that
  // there is an enum cache.
5343
  movp(rbx, FieldOperand(rcx, HeapObject::kMapOffset));
5344

5345
  EnumLength(rdx, rbx);
5346
  Cmp(rdx, Smi::FromInt(kInvalidEnumCacheSentinel));
5347 5348
  j(equal, call_runtime);

5349 5350 5351 5352
  jmp(&start);

  bind(&next);

5353
  movp(rbx, FieldOperand(rcx, HeapObject::kMapOffset));
5354 5355

  // For all objects but the receiver, check that the cache is empty.
5356
  EnumLength(rdx, rbx);
5357
  Cmp(rdx, Smi::kZero);
5358 5359 5360 5361 5362 5363
  j(not_equal, call_runtime);

  bind(&start);

  // Check that there are no elements. Register rcx contains the current JS
  // object we've reached through the prototype chain.
5364
  Label no_elements;
5365
  cmpp(empty_fixed_array_value,
5366
       FieldOperand(rcx, JSObject::kElementsOffset));
5367 5368 5369 5370
  j(equal, &no_elements);

  // Second chance, the object may be using the empty slow element dictionary.
  LoadRoot(kScratchRegister, Heap::kEmptySlowElementDictionaryRootIndex);
5371
  cmpp(kScratchRegister, FieldOperand(rcx, JSObject::kElementsOffset));
5372 5373
  j(not_equal, call_runtime);

5374
  bind(&no_elements);
5375
  movp(rcx, FieldOperand(rbx, Map::kPrototypeOffset));
5376
  CompareRoot(rcx, Heap::kNullValueRootIndex);
5377 5378 5379
  j(not_equal, &next);
}

5380

5381
void MacroAssembler::TestJSArrayForAllocationMemento(
5382
    Register receiver_reg,
5383 5384
    Register scratch_reg,
    Label* no_memento_found) {
5385 5386
  Label map_check;
  Label top_check;
5387 5388
  ExternalReference new_space_allocation_top =
      ExternalReference::new_space_allocation_top_address(isolate());
5389
  const int kMementoMapOffset = JSArray::kSize - kHeapObjectTag;
5390 5391
  const int kMementoLastWordOffset =
      kMementoMapOffset + AllocationMemento::kSize - kPointerSize;
5392 5393 5394 5395 5396

  // Bail out if the object is not in new space.
  JumpIfNotInNewSpace(receiver_reg, scratch_reg, no_memento_found);
  // If the object is in new space, we need to check whether it is on the same
  // page as the current top.
5397
  leap(scratch_reg, Operand(receiver_reg, kMementoLastWordOffset));
5398 5399 5400 5401 5402 5403
  xorp(scratch_reg, ExternalOperand(new_space_allocation_top));
  testp(scratch_reg, Immediate(~Page::kPageAlignmentMask));
  j(zero, &top_check);
  // The object is on a different page than allocation top. Bail out if the
  // object sits on the page boundary as no memento can follow and we cannot
  // touch the memory following it.
5404
  leap(scratch_reg, Operand(receiver_reg, kMementoLastWordOffset));
5405 5406 5407 5408 5409 5410 5411 5412
  xorp(scratch_reg, receiver_reg);
  testp(scratch_reg, Immediate(~Page::kPageAlignmentMask));
  j(not_zero, no_memento_found);
  // Continue with the actual map check.
  jmp(&map_check);
  // If top is on the same page as the current object, we need to check whether
  // we are below top.
  bind(&top_check);
5413
  leap(scratch_reg, Operand(receiver_reg, kMementoLastWordOffset));
5414
  cmpp(scratch_reg, ExternalOperand(new_space_allocation_top));
5415
  j(greater_equal, no_memento_found);
5416 5417 5418
  // Memento map check.
  bind(&map_check);
  CompareRoot(MemOperand(receiver_reg, kMementoMapOffset),
5419
              Heap::kAllocationMementoMapRootIndex);
5420 5421
}

5422
void MacroAssembler::TruncatingDiv(Register dividend, int32_t divisor) {
5423 5424
  DCHECK(!dividend.is(rax));
  DCHECK(!dividend.is(rdx));
5425 5426 5427
  base::MagicNumbersForDivision<uint32_t> mag =
      base::SignedDivisionByConstant(static_cast<uint32_t>(divisor));
  movl(rax, Immediate(mag.multiplier));
5428
  imull(dividend);
5429 5430 5431 5432
  bool neg = (mag.multiplier & (static_cast<uint32_t>(1) << 31)) != 0;
  if (divisor > 0 && neg) addl(rdx, dividend);
  if (divisor < 0 && !neg && mag.multiplier > 0) subl(rdx, dividend);
  if (mag.shift > 0) sarl(rdx, Immediate(mag.shift));
5433 5434 5435
  movl(rax, dividend);
  shrl(rax, Immediate(31));
  addl(rdx, rax);
5436 5437 5438
}


5439 5440
}  // namespace internal
}  // namespace v8
5441 5442

#endif  // V8_TARGET_ARCH_X64