ebca3aba60
Code size impact on flutter_gallery after enabled: ARM32 Instructions(CodeSize): 5892064 -> 6110592 (+3.71%) ARM64 Instructions(CodeSize): 6307104 -> 6514528 (+3.28%) Bug: https://github.com/dart-lang/sdk/issues/34002 Change-Id: If093f24e4dc6bf29f407cc45e95bb2274fc53dce Reviewed-on: https://dart-review.googlesource.com/68481 Commit-Queue: Ryan Macnak <rmacnak@google.com> Reviewed-by: Vyacheslav Egorov <vegorov@google.com>
1145 lines
40 KiB
C++
1145 lines
40 KiB
C++
// Copyright (c) 2013, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#ifndef RUNTIME_VM_COMPILER_ASSEMBLER_ASSEMBLER_X64_H_
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#define RUNTIME_VM_COMPILER_ASSEMBLER_ASSEMBLER_X64_H_
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#ifndef RUNTIME_VM_COMPILER_ASSEMBLER_ASSEMBLER_H_
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#error Do not include assembler_x64.h directly; use assembler.h instead.
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#endif
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#include "platform/assert.h"
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#include "platform/utils.h"
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#include "vm/constants_x64.h"
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#include "vm/constants_x86.h"
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#include "vm/hash_map.h"
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#include "vm/object.h"
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namespace dart {
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// Forward declarations.
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class RuntimeEntry;
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class StubEntry;
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class Immediate : public ValueObject {
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public:
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explicit Immediate(int64_t value) : value_(value) {}
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Immediate(const Immediate& other) : ValueObject(), value_(other.value_) {}
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int64_t value() const { return value_; }
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bool is_int8() const { return Utils::IsInt(8, value_); }
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bool is_uint8() const { return Utils::IsUint(8, value_); }
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bool is_int16() const { return Utils::IsInt(16, value_); }
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bool is_uint16() const { return Utils::IsUint(16, value_); }
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bool is_int32() const { return Utils::IsInt(32, value_); }
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bool is_uint32() const { return Utils::IsUint(32, value_); }
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private:
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const int64_t value_;
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// TODO(5411081): Add DISALLOW_COPY_AND_ASSIGN(Immediate) once the mac
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// build issue is resolved.
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// And remove the unnecessary copy constructor.
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};
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class Operand : public ValueObject {
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public:
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uint8_t rex() const { return rex_; }
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uint8_t mod() const { return (encoding_at(0) >> 6) & 3; }
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Register rm() const {
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int rm_rex = (rex_ & REX_B) << 3;
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return static_cast<Register>(rm_rex + (encoding_at(0) & 7));
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}
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ScaleFactor scale() const {
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return static_cast<ScaleFactor>((encoding_at(1) >> 6) & 3);
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}
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Register index() const {
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int index_rex = (rex_ & REX_X) << 2;
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return static_cast<Register>(index_rex + ((encoding_at(1) >> 3) & 7));
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}
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Register base() const {
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int base_rex = (rex_ & REX_B) << 3;
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return static_cast<Register>(base_rex + (encoding_at(1) & 7));
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}
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int8_t disp8() const {
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ASSERT(length_ >= 2);
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return static_cast<int8_t>(encoding_[length_ - 1]);
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}
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int32_t disp32() const {
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ASSERT(length_ >= 5);
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return bit_copy<int32_t>(encoding_[length_ - 4]);
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}
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Operand(const Operand& other)
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: ValueObject(), length_(other.length_), rex_(other.rex_) {
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memmove(&encoding_[0], &other.encoding_[0], other.length_);
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}
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Operand& operator=(const Operand& other) {
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length_ = other.length_;
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rex_ = other.rex_;
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memmove(&encoding_[0], &other.encoding_[0], other.length_);
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return *this;
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}
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bool Equals(const Operand& other) const {
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if (length_ != other.length_) return false;
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if (rex_ != other.rex_) return false;
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for (uint8_t i = 0; i < length_; i++) {
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if (encoding_[i] != other.encoding_[i]) return false;
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}
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return true;
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}
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protected:
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Operand() : length_(0), rex_(REX_NONE) {} // Needed by subclass Address.
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void SetModRM(int mod, Register rm) {
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ASSERT((mod & ~3) == 0);
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if ((rm > 7) && !((rm == R12) && (mod != 3))) {
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rex_ |= REX_B;
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}
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encoding_[0] = (mod << 6) | (rm & 7);
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length_ = 1;
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}
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void SetSIB(ScaleFactor scale, Register index, Register base) {
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ASSERT(length_ == 1);
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ASSERT((scale & ~3) == 0);
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if (base > 7) {
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ASSERT((rex_ & REX_B) == 0); // Must not have REX.B already set.
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rex_ |= REX_B;
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}
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if (index > 7) rex_ |= REX_X;
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encoding_[1] = (scale << 6) | ((index & 7) << 3) | (base & 7);
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length_ = 2;
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}
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void SetDisp8(int8_t disp) {
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ASSERT(length_ == 1 || length_ == 2);
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encoding_[length_++] = static_cast<uint8_t>(disp);
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}
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void SetDisp32(int32_t disp) {
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ASSERT(length_ == 1 || length_ == 2);
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memmove(&encoding_[length_], &disp, sizeof(disp));
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length_ += sizeof(disp);
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}
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private:
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uint8_t length_;
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uint8_t rex_;
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uint8_t encoding_[6];
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explicit Operand(Register reg) : rex_(REX_NONE) { SetModRM(3, reg); }
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// Get the operand encoding byte at the given index.
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uint8_t encoding_at(intptr_t index) const {
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ASSERT(index >= 0 && index < length_);
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return encoding_[index];
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}
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// Returns whether or not this operand is really the given register in
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// disguise. Used from the assembler to generate better encodings.
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bool IsRegister(Register reg) const {
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return ((reg > 7 ? 1 : 0) == (rex_ & REX_B)) // REX.B match.
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&& ((encoding_at(0) & 0xF8) == 0xC0) // Addressing mode is register.
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&& ((encoding_at(0) & 0x07) == reg); // Register codes match.
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}
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friend class Assembler;
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};
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class Address : public Operand {
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public:
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Address(Register base, int32_t disp) {
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if ((disp == 0) && ((base & 7) != RBP)) {
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SetModRM(0, base);
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if ((base & 7) == RSP) {
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SetSIB(TIMES_1, RSP, base);
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}
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} else if (Utils::IsInt(8, disp)) {
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SetModRM(1, base);
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if ((base & 7) == RSP) {
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SetSIB(TIMES_1, RSP, base);
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}
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SetDisp8(disp);
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} else {
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SetModRM(2, base);
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if ((base & 7) == RSP) {
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SetSIB(TIMES_1, RSP, base);
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}
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SetDisp32(disp);
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}
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}
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// This addressing mode does not exist.
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Address(Register base, Register r);
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Address(Register index, ScaleFactor scale, int32_t disp) {
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ASSERT(index != RSP); // Illegal addressing mode.
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SetModRM(0, RSP);
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SetSIB(scale, index, RBP);
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SetDisp32(disp);
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}
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// This addressing mode does not exist.
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Address(Register index, ScaleFactor scale, Register r);
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Address(Register base, Register index, ScaleFactor scale, int32_t disp) {
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ASSERT(index != RSP); // Illegal addressing mode.
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if ((disp == 0) && ((base & 7) != RBP)) {
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SetModRM(0, RSP);
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SetSIB(scale, index, base);
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} else if (Utils::IsInt(8, disp)) {
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SetModRM(1, RSP);
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SetSIB(scale, index, base);
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SetDisp8(disp);
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} else {
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SetModRM(2, RSP);
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SetSIB(scale, index, base);
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SetDisp32(disp);
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}
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}
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// This addressing mode does not exist.
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Address(Register base, Register index, ScaleFactor scale, Register r);
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Address(const Address& other) : Operand(other) {}
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Address& operator=(const Address& other) {
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Operand::operator=(other);
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return *this;
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}
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static Address AddressRIPRelative(int32_t disp) {
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return Address(RIPRelativeDisp(disp));
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}
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static Address AddressBaseImm32(Register base, int32_t disp) {
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return Address(base, disp, true);
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}
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// This addressing mode does not exist.
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static Address AddressBaseImm32(Register base, Register r);
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private:
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Address(Register base, int32_t disp, bool fixed) {
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ASSERT(fixed);
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SetModRM(2, base);
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if ((base & 7) == RSP) {
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SetSIB(TIMES_1, RSP, base);
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}
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SetDisp32(disp);
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}
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struct RIPRelativeDisp {
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explicit RIPRelativeDisp(int32_t disp) : disp_(disp) {}
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const int32_t disp_;
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};
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explicit Address(const RIPRelativeDisp& disp) {
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SetModRM(0, static_cast<Register>(0x5));
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SetDisp32(disp.disp_);
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}
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};
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class FieldAddress : public Address {
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public:
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FieldAddress(Register base, int32_t disp)
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: Address(base, disp - kHeapObjectTag) {}
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// This addressing mode does not exist.
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FieldAddress(Register base, Register r);
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FieldAddress(Register base, Register index, ScaleFactor scale, int32_t disp)
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: Address(base, index, scale, disp - kHeapObjectTag) {}
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// This addressing mode does not exist.
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FieldAddress(Register base, Register index, ScaleFactor scale, Register r);
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FieldAddress(const FieldAddress& other) : Address(other) {}
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FieldAddress& operator=(const FieldAddress& other) {
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Address::operator=(other);
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return *this;
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}
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};
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class Assembler : public ValueObject {
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public:
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explicit Assembler(ObjectPoolWrapper* object_pool_wrapper,
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bool use_far_branches = false);
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~Assembler() {}
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static const bool kNearJump = true;
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static const bool kFarJump = false;
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/*
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* Emit Machine Instructions.
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*/
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void call(Register reg) { EmitUnaryL(reg, 0xFF, 2); }
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void call(const Address& address) { EmitUnaryL(address, 0xFF, 2); }
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void call(Label* label);
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void call(const ExternalLabel* label);
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static const intptr_t kCallExternalLabelSize = 15;
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void pushq(Register reg);
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void pushq(const Address& address) { EmitUnaryL(address, 0xFF, 6); }
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void pushq(const Immediate& imm);
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void PushImmediate(const Immediate& imm);
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void popq(Register reg);
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void popq(const Address& address) { EmitUnaryL(address, 0x8F, 0); }
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void setcc(Condition condition, ByteRegister dst);
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// Register-register, register-address and address-register instructions.
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#define RR(width, name, ...) \
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void name(Register dst, Register src) { Emit##width(dst, src, __VA_ARGS__); }
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#define RA(width, name, ...) \
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void name(Register dst, const Address& src) { \
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Emit##width(dst, src, __VA_ARGS__); \
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}
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#define AR(width, name, ...) \
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void name(const Address& dst, Register src) { \
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Emit##width(src, dst, __VA_ARGS__); \
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}
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#define REGULAR_INSTRUCTION(name, ...) \
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RA(W, name##w, __VA_ARGS__) \
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RA(L, name##l, __VA_ARGS__) \
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RA(Q, name##q, __VA_ARGS__) \
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RR(W, name##w, __VA_ARGS__) \
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RR(L, name##l, __VA_ARGS__) \
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RR(Q, name##q, __VA_ARGS__)
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REGULAR_INSTRUCTION(test, 0x85)
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REGULAR_INSTRUCTION(xchg, 0x87)
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REGULAR_INSTRUCTION(imul, 0xAF, 0x0F)
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REGULAR_INSTRUCTION(bsr, 0xBD, 0x0F)
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#undef REGULAR_INSTRUCTION
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RA(Q, movsxd, 0x63)
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RR(Q, movsxd, 0x63)
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AR(L, movb, 0x88)
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AR(L, movl, 0x89)
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AR(Q, movq, 0x89)
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AR(W, movw, 0x89)
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RA(L, movb, 0x8A)
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RA(L, movl, 0x8B)
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RA(Q, movq, 0x8B)
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RR(L, movl, 0x8B)
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RA(Q, leaq, 0x8D)
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RA(L, leal, 0x8D)
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AR(L, cmpxchgl, 0xB1, 0x0F)
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AR(Q, cmpxchgq, 0xB1, 0x0F)
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RA(L, cmpxchgl, 0xB1, 0x0F)
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RA(Q, cmpxchgq, 0xB1, 0x0F)
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RR(L, cmpxchgl, 0xB1, 0x0F)
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RR(Q, cmpxchgq, 0xB1, 0x0F)
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RA(Q, movzxb, 0xB6, 0x0F)
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RR(Q, movzxb, 0xB6, 0x0F)
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RA(Q, movzxw, 0xB7, 0x0F)
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RR(Q, movzxw, 0xB7, 0x0F)
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RA(Q, movsxb, 0xBE, 0x0F)
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RR(Q, movsxb, 0xBE, 0x0F)
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RA(Q, movsxw, 0xBF, 0x0F)
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RR(Q, movsxw, 0xBF, 0x0F)
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#define DECLARE_CMOV(name, code) \
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RR(Q, cmov##name##q, 0x40 + code, 0x0F) \
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RR(L, cmov##name##l, 0x40 + code, 0x0F) \
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RA(Q, cmov##name##q, 0x40 + code, 0x0F) \
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RA(L, cmov##name##l, 0x40 + code, 0x0F)
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X86_CONDITIONAL_SUFFIXES(DECLARE_CMOV)
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#undef DECLARE_CMOV
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#undef AA
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#undef RA
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#undef AR
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#define SIMPLE(name, ...) \
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void name() { EmitSimple(__VA_ARGS__); }
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SIMPLE(cpuid, 0x0F, 0xA2)
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SIMPLE(fcos, 0xD9, 0xFF)
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SIMPLE(fincstp, 0xD9, 0xF7)
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SIMPLE(fsin, 0xD9, 0xFE)
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SIMPLE(lock, 0xF0)
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SIMPLE(rep_movsb, 0xF3, 0xA4)
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#undef SIMPLE
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// XmmRegister operations with another register or an address.
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#define XX(width, name, ...) \
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void name(XmmRegister dst, XmmRegister src) { \
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Emit##width(dst, src, __VA_ARGS__); \
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}
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#define XA(width, name, ...) \
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void name(XmmRegister dst, const Address& src) { \
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Emit##width(dst, src, __VA_ARGS__); \
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}
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#define AX(width, name, ...) \
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void name(const Address& dst, XmmRegister src) { \
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Emit##width(src, dst, __VA_ARGS__); \
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}
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// We could add movupd here, but movups does the same and is shorter.
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XA(L, movups, 0x10, 0x0F);
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XA(L, movsd, 0x10, 0x0F, 0xF2)
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XA(L, movss, 0x10, 0x0F, 0xF3)
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AX(L, movups, 0x11, 0x0F);
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AX(L, movsd, 0x11, 0x0F, 0xF2)
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AX(L, movss, 0x11, 0x0F, 0xF3)
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XX(L, movhlps, 0x12, 0x0F)
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XX(L, unpcklps, 0x14, 0x0F)
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XX(L, unpcklpd, 0x14, 0x0F, 0x66)
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XX(L, unpckhps, 0x15, 0x0F)
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XX(L, unpckhpd, 0x15, 0x0F, 0x66)
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XX(L, movlhps, 0x16, 0x0F)
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XX(L, movaps, 0x28, 0x0F)
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XX(L, comisd, 0x2F, 0x0F, 0x66)
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#define DECLARE_XMM(name, code) \
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XX(L, name##ps, 0x50 + code, 0x0F) \
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XA(L, name##ps, 0x50 + code, 0x0F) \
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AX(L, name##ps, 0x50 + code, 0x0F) \
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XX(L, name##pd, 0x50 + code, 0x0F, 0x66) \
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XA(L, name##pd, 0x50 + code, 0x0F, 0x66) \
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AX(L, name##pd, 0x50 + code, 0x0F, 0x66) \
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XX(L, name##sd, 0x50 + code, 0x0F, 0xF2) \
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XA(L, name##sd, 0x50 + code, 0x0F, 0xF2) \
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AX(L, name##sd, 0x50 + code, 0x0F, 0xF2) \
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XX(L, name##ss, 0x50 + code, 0x0F, 0xF3) \
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XA(L, name##ss, 0x50 + code, 0x0F, 0xF3) \
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AX(L, name##ss, 0x50 + code, 0x0F, 0xF3)
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XMM_ALU_CODES(DECLARE_XMM)
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#undef DECLARE_XMM
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XX(L, cvtps2pd, 0x5A, 0x0F)
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XX(L, cvtpd2ps, 0x5A, 0x0F, 0x66)
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XX(L, cvtsd2ss, 0x5A, 0x0F, 0xF2)
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XX(L, cvtss2sd, 0x5A, 0x0F, 0xF3)
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XX(L, pxor, 0xEF, 0x0F, 0x66)
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XX(L, subpl, 0xFA, 0x0F, 0x66)
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XX(L, addpl, 0xFE, 0x0F, 0x66)
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#undef XX
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#undef AX
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#undef XA
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#define DECLARE_CMPPS(name, code) \
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void cmpps##name(XmmRegister dst, XmmRegister src) { \
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EmitL(dst, src, 0xC2, 0x0F); \
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AssemblerBuffer::EnsureCapacity ensured(&buffer_); \
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EmitUint8(code); \
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}
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XMM_CONDITIONAL_CODES(DECLARE_CMPPS)
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#undef DECLARE_CMPPS
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#define DECLARE_SIMPLE(name, opcode) \
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void name() { EmitSimple(opcode); }
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X86_ZERO_OPERAND_1_BYTE_INSTRUCTIONS(DECLARE_SIMPLE)
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#undef DECLARE_SIMPLE
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void movl(Register dst, const Immediate& imm);
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void movl(const Address& dst, const Immediate& imm);
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void movb(const Address& dst, const Immediate& imm);
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|
|
void movw(Register dst, const Address& src);
|
|
void movw(const Address& dst, const Immediate& imm);
|
|
|
|
void movq(Register dst, const Immediate& imm);
|
|
void movq(const Address& dst, const Immediate& imm);
|
|
|
|
// Destination and source are reversed for some reason.
|
|
void movq(Register dst, XmmRegister src) {
|
|
EmitQ(src, dst, 0x7E, 0x0F, 0x66);
|
|
}
|
|
void movl(Register dst, XmmRegister src) {
|
|
EmitL(src, dst, 0x7E, 0x0F, 0x66);
|
|
}
|
|
void movss(XmmRegister dst, XmmRegister src) {
|
|
EmitL(src, dst, 0x11, 0x0F, 0xF3);
|
|
}
|
|
void movsd(XmmRegister dst, XmmRegister src) {
|
|
EmitL(src, dst, 0x11, 0x0F, 0xF2);
|
|
}
|
|
|
|
// Use the reversed operand order and the 0x89 bytecode instead of the
|
|
// obvious 0x88 encoding for this some, because it is expected by gdb64 older
|
|
// than 7.3.1-gg5 when disassembling a function's prologue (movq rbp, rsp)
|
|
// for proper unwinding of Dart frames (use --generate_gdb_symbols and -O0).
|
|
void movq(Register dst, Register src) { EmitQ(src, dst, 0x89); }
|
|
|
|
void movd(XmmRegister dst, Register src) {
|
|
EmitL(dst, src, 0x6E, 0x0F, 0x66);
|
|
}
|
|
void cvtsi2sdq(XmmRegister dst, Register src) {
|
|
EmitQ(dst, src, 0x2A, 0x0F, 0xF2);
|
|
}
|
|
void cvtsi2sdl(XmmRegister dst, Register src) {
|
|
EmitL(dst, src, 0x2A, 0x0F, 0xF2);
|
|
}
|
|
void cvttsd2siq(Register dst, XmmRegister src) {
|
|
EmitQ(dst, src, 0x2C, 0x0F, 0xF2);
|
|
}
|
|
void cvttsd2sil(Register dst, XmmRegister src) {
|
|
EmitL(dst, src, 0x2C, 0x0F, 0xF2);
|
|
}
|
|
void movmskpd(Register dst, XmmRegister src) {
|
|
EmitL(dst, src, 0x50, 0x0F, 0x66);
|
|
}
|
|
void movmskps(Register dst, XmmRegister src) { EmitL(dst, src, 0x50, 0x0F); }
|
|
|
|
void btl(Register dst, Register src) { EmitL(src, dst, 0xA3, 0x0F); }
|
|
void btq(Register dst, Register src) { EmitQ(src, dst, 0xA3, 0x0F); }
|
|
|
|
void notps(XmmRegister dst, XmmRegister src);
|
|
void negateps(XmmRegister dst, XmmRegister src);
|
|
void absps(XmmRegister dst, XmmRegister src);
|
|
void zerowps(XmmRegister dst, XmmRegister src);
|
|
|
|
void set1ps(XmmRegister dst, Register tmp, const Immediate& imm);
|
|
void shufps(XmmRegister dst, XmmRegister src, const Immediate& mask);
|
|
|
|
void negatepd(XmmRegister dst, XmmRegister src);
|
|
void abspd(XmmRegister dst, XmmRegister src);
|
|
void shufpd(XmmRegister dst, XmmRegister src, const Immediate& mask);
|
|
|
|
enum RoundingMode {
|
|
kRoundToNearest = 0x0,
|
|
kRoundDown = 0x1,
|
|
kRoundUp = 0x2,
|
|
kRoundToZero = 0x3
|
|
};
|
|
void roundsd(XmmRegister dst, XmmRegister src, RoundingMode mode);
|
|
|
|
void CompareImmediate(Register reg, const Immediate& imm);
|
|
void CompareImmediate(const Address& address, const Immediate& imm);
|
|
void CompareImmediate(Register reg, int32_t immediate) {
|
|
return CompareImmediate(reg, Immediate(immediate));
|
|
}
|
|
|
|
void testl(Register reg, const Immediate& imm) { testq(reg, imm); }
|
|
void testb(const Address& address, const Immediate& imm);
|
|
void testb(const Address& address, Register reg);
|
|
|
|
void testq(Register reg, const Immediate& imm);
|
|
void TestImmediate(Register dst, const Immediate& imm);
|
|
|
|
void AndImmediate(Register dst, const Immediate& imm);
|
|
void OrImmediate(Register dst, const Immediate& imm);
|
|
void XorImmediate(Register dst, const Immediate& imm);
|
|
|
|
void shldq(Register dst, Register src, Register shifter) {
|
|
ASSERT(shifter == RCX);
|
|
EmitQ(src, dst, 0xA5, 0x0F);
|
|
}
|
|
void shrdq(Register dst, Register src, Register shifter) {
|
|
ASSERT(shifter == RCX);
|
|
EmitQ(src, dst, 0xAD, 0x0F);
|
|
}
|
|
|
|
#define DECLARE_ALU(op, c) \
|
|
void op##w(Register dst, Register src) { EmitW(dst, src, c * 8 + 3); } \
|
|
void op##l(Register dst, Register src) { EmitL(dst, src, c * 8 + 3); } \
|
|
void op##q(Register dst, Register src) { EmitQ(dst, src, c * 8 + 3); } \
|
|
void op##w(Register dst, const Address& src) { EmitW(dst, src, c * 8 + 3); } \
|
|
void op##l(Register dst, const Address& src) { EmitL(dst, src, c * 8 + 3); } \
|
|
void op##q(Register dst, const Address& src) { EmitQ(dst, src, c * 8 + 3); } \
|
|
void op##w(const Address& dst, Register src) { EmitW(src, dst, c * 8 + 1); } \
|
|
void op##l(const Address& dst, Register src) { EmitL(src, dst, c * 8 + 1); } \
|
|
void op##q(const Address& dst, Register src) { EmitQ(src, dst, c * 8 + 1); } \
|
|
void op##l(Register dst, const Immediate& imm) { AluL(c, dst, imm); } \
|
|
void op##q(Register dst, const Immediate& imm) { \
|
|
AluQ(c, c * 8 + 3, dst, imm); \
|
|
} \
|
|
void op##b(const Address& dst, const Immediate& imm) { AluB(c, dst, imm); } \
|
|
void op##w(const Address& dst, const Immediate& imm) { AluW(c, dst, imm); } \
|
|
void op##l(const Address& dst, const Immediate& imm) { AluL(c, dst, imm); } \
|
|
void op##q(const Address& dst, const Immediate& imm) { \
|
|
AluQ(c, c * 8 + 3, dst, imm); \
|
|
}
|
|
|
|
X86_ALU_CODES(DECLARE_ALU)
|
|
|
|
#undef DECLARE_ALU
|
|
#undef ALU_OPS
|
|
|
|
void cqo();
|
|
|
|
#define REGULAR_UNARY(name, opcode, modrm) \
|
|
void name##q(Register reg) { EmitUnaryQ(reg, opcode, modrm); } \
|
|
void name##l(Register reg) { EmitUnaryL(reg, opcode, modrm); } \
|
|
void name##q(const Address& address) { EmitUnaryQ(address, opcode, modrm); } \
|
|
void name##l(const Address& address) { EmitUnaryL(address, opcode, modrm); }
|
|
REGULAR_UNARY(not, 0xF7, 2)
|
|
REGULAR_UNARY(neg, 0xF7, 3)
|
|
REGULAR_UNARY(mul, 0xF7, 4)
|
|
REGULAR_UNARY(div, 0xF7, 6)
|
|
REGULAR_UNARY(idiv, 0xF7, 7)
|
|
REGULAR_UNARY(inc, 0xFF, 0)
|
|
REGULAR_UNARY(dec, 0xFF, 1)
|
|
#undef REGULAR_UNARY
|
|
|
|
// We could use kWord, kDoubleWord, and kQuadWord here, but it is rather
|
|
// confusing since the same sizes mean something different on ARM.
|
|
enum OperandWidth { k32Bit, k64Bit };
|
|
|
|
void imull(Register reg, const Immediate& imm);
|
|
|
|
void imulq(Register dst, const Immediate& imm);
|
|
void MulImmediate(Register reg,
|
|
const Immediate& imm,
|
|
OperandWidth width = k64Bit);
|
|
|
|
void shll(Register reg, const Immediate& imm);
|
|
void shll(Register operand, Register shifter);
|
|
void shrl(Register reg, const Immediate& imm);
|
|
void shrl(Register operand, Register shifter);
|
|
void sarl(Register reg, const Immediate& imm);
|
|
void sarl(Register operand, Register shifter);
|
|
void shldl(Register dst, Register src, const Immediate& imm);
|
|
|
|
void shlq(Register reg, const Immediate& imm);
|
|
void shlq(Register operand, Register shifter);
|
|
void shrq(Register reg, const Immediate& imm);
|
|
void shrq(Register operand, Register shifter);
|
|
void sarq(Register reg, const Immediate& imm);
|
|
void sarq(Register operand, Register shifter);
|
|
void shldq(Register dst, Register src, const Immediate& imm);
|
|
|
|
void btq(Register base, int bit);
|
|
|
|
void enter(const Immediate& imm);
|
|
|
|
void fldl(const Address& src);
|
|
void fstpl(const Address& dst);
|
|
|
|
void ffree(intptr_t value);
|
|
|
|
// 'size' indicates size in bytes and must be in the range 1..8.
|
|
void nop(int size = 1);
|
|
|
|
static uword GetBreakInstructionFiller() { return 0xCCCCCCCCCCCCCCCC; }
|
|
|
|
void j(Condition condition, Label* label, bool near = kFarJump);
|
|
void jmp(Register reg) { EmitUnaryL(reg, 0xFF, 4); }
|
|
void jmp(const Address& address) { EmitUnaryL(address, 0xFF, 4); }
|
|
void jmp(Label* label, bool near = kFarJump);
|
|
void jmp(const ExternalLabel* label);
|
|
void jmp(const StubEntry& stub_entry);
|
|
|
|
// Issue memory to memory move through a TMP register.
|
|
// TODO(koda): Assert that these are not used for heap objects.
|
|
void MoveMemoryToMemory(const Address& dst, const Address& src) {
|
|
movq(TMP, src);
|
|
movq(dst, TMP);
|
|
}
|
|
|
|
void Exchange(Register reg, const Address& mem) {
|
|
movq(TMP, mem);
|
|
movq(mem, reg);
|
|
movq(reg, TMP);
|
|
}
|
|
|
|
void Exchange(const Address& mem1, const Address& mem2) {
|
|
movq(TMP, mem1);
|
|
xorq(TMP, mem2);
|
|
xorq(mem1, TMP);
|
|
xorq(mem2, TMP);
|
|
}
|
|
|
|
// Methods for High-level operations and implemented on all architectures.
|
|
void Ret() { ret(); }
|
|
void CompareRegisters(Register a, Register b);
|
|
void BranchIf(Condition condition, Label* label) { j(condition, label); }
|
|
|
|
// Issues a move instruction if 'to' is not the same as 'from'.
|
|
void MoveRegister(Register to, Register from);
|
|
void PushRegister(Register r);
|
|
void PopRegister(Register r);
|
|
|
|
// Methods for adding/subtracting an immediate value that may be loaded from
|
|
// the constant pool.
|
|
// TODO(koda): Assert that these are not used for heap objects.
|
|
void AddImmediate(Register reg,
|
|
const Immediate& imm,
|
|
OperandWidth width = k64Bit);
|
|
void AddImmediate(const Address& address, const Immediate& imm);
|
|
void SubImmediate(Register reg,
|
|
const Immediate& imm,
|
|
OperandWidth width = k64Bit);
|
|
void SubImmediate(const Address& address, const Immediate& imm);
|
|
|
|
void Drop(intptr_t stack_elements, Register tmp = TMP);
|
|
|
|
bool constant_pool_allowed() const { return constant_pool_allowed_; }
|
|
void set_constant_pool_allowed(bool b) { constant_pool_allowed_ = b; }
|
|
|
|
// Unlike movq this can affect the flags or use the constant pool.
|
|
void LoadImmediate(Register reg, const Immediate& imm);
|
|
|
|
void LoadIsolate(Register dst);
|
|
void LoadObject(Register dst, const Object& obj);
|
|
void LoadUniqueObject(Register dst, const Object& obj);
|
|
void LoadNativeEntry(Register dst,
|
|
const ExternalLabel* label,
|
|
ObjectPool::Patchability patchable);
|
|
void LoadFunctionFromCalleePool(Register dst,
|
|
const Function& function,
|
|
Register new_pp);
|
|
void JmpPatchable(const StubEntry& stub_entry, Register pp);
|
|
void Jmp(const StubEntry& stub_entry, Register pp = PP);
|
|
void J(Condition condition, const StubEntry& stub_entry, Register pp);
|
|
void CallPatchable(const StubEntry& stub_entry,
|
|
Code::EntryKind entry_kind = Code::EntryKind::kNormal);
|
|
void Call(const StubEntry& stub_entry);
|
|
void CallToRuntime();
|
|
|
|
void CallNullErrorShared(bool save_fpu_registers);
|
|
|
|
// Emit a call that shares its object pool entries with other calls
|
|
// that have the same equivalence marker.
|
|
void CallWithEquivalence(
|
|
const StubEntry& stub_entry,
|
|
const Object& equivalence,
|
|
Code::EntryKind entry_kind = Code::EntryKind::kNormal);
|
|
|
|
// Unaware of write barrier (use StoreInto* methods for storing to objects).
|
|
// TODO(koda): Add StackAddress/HeapAddress types to prevent misuse.
|
|
void StoreObject(const Address& dst, const Object& obj);
|
|
void PushObject(const Object& object);
|
|
void CompareObject(Register reg, const Object& object);
|
|
|
|
enum CanBeSmi {
|
|
kValueIsNotSmi,
|
|
kValueCanBeSmi,
|
|
};
|
|
|
|
// Store into a heap object and apply the generational and incremental write
|
|
// barriers. All stores into heap objects must pass through this function or,
|
|
// if the value can be proven either Smi or old-and-premarked, its NoBarrier
|
|
// variants.
|
|
// Preserves object and value registers.
|
|
void StoreIntoObject(Register object, // Object we are storing into.
|
|
const Address& dest, // Where we are storing into.
|
|
Register value, // Value we are storing.
|
|
CanBeSmi can_be_smi = kValueCanBeSmi);
|
|
|
|
void StoreIntoObjectNoBarrier(Register object,
|
|
const Address& dest,
|
|
Register value);
|
|
void StoreIntoObjectNoBarrier(Register object,
|
|
const Address& dest,
|
|
const Object& value);
|
|
|
|
// Stores a Smi value into a heap object field that always contains a Smi.
|
|
void StoreIntoSmiField(const Address& dest, Register value);
|
|
void ZeroInitSmiField(const Address& dest);
|
|
// Increments a Smi field. Leaves flags in same state as an 'addq'.
|
|
void IncrementSmiField(const Address& dest, int64_t increment);
|
|
|
|
void DoubleNegate(XmmRegister dst, XmmRegister src);
|
|
void DoubleAbs(XmmRegister dst, XmmRegister src);
|
|
|
|
void LockCmpxchgq(const Address& address, Register reg) {
|
|
lock();
|
|
cmpxchgq(address, reg);
|
|
}
|
|
|
|
void LockCmpxchgl(const Address& address, Register reg) {
|
|
lock();
|
|
cmpxchgl(address, reg);
|
|
}
|
|
|
|
void PushRegisters(intptr_t cpu_register_set, intptr_t xmm_register_set);
|
|
void PopRegisters(intptr_t cpu_register_set, intptr_t xmm_register_set);
|
|
|
|
void CheckCodePointer();
|
|
|
|
void EnterFrame(intptr_t frame_space);
|
|
void LeaveFrame();
|
|
void ReserveAlignedFrameSpace(intptr_t frame_space);
|
|
|
|
// Create a frame for calling into runtime that preserves all volatile
|
|
// registers. Frame's RSP is guaranteed to be correctly aligned and
|
|
// frame_space bytes are reserved under it.
|
|
void EnterCallRuntimeFrame(intptr_t frame_space);
|
|
void LeaveCallRuntimeFrame();
|
|
|
|
void CallRuntime(const RuntimeEntry& entry, intptr_t argument_count);
|
|
void CallRuntimeSavingRegisters(const RuntimeEntry& entry,
|
|
intptr_t argument_count);
|
|
|
|
// Call runtime function. Reserves shadow space on the stack before calling
|
|
// if platform ABI requires that. Does not restore RSP after the call itself.
|
|
void CallCFunction(Register reg);
|
|
|
|
// Loading and comparing classes of objects.
|
|
void LoadClassId(Register result, Register object);
|
|
|
|
// Overwrites class_id register (it will be tagged afterwards).
|
|
void LoadClassById(Register result, Register class_id);
|
|
|
|
void LoadClass(Register result, Register object);
|
|
|
|
void CompareClassId(Register object,
|
|
intptr_t class_id,
|
|
Register scratch = kNoRegister);
|
|
|
|
void LoadClassIdMayBeSmi(Register result, Register object);
|
|
void LoadTaggedClassIdMayBeSmi(Register result, Register object);
|
|
|
|
// CheckClassIs fused with optimistic SmiUntag.
|
|
// Value in the register object is untagged optimistically.
|
|
void SmiUntagOrCheckClass(Register object, intptr_t class_id, Label* smi);
|
|
|
|
// Misc. functionality.
|
|
void SmiTag(Register reg) { addq(reg, reg); }
|
|
|
|
void SmiUntag(Register reg) { sarq(reg, Immediate(kSmiTagSize)); }
|
|
|
|
void BranchIfNotSmi(Register reg, Label* label) {
|
|
testq(reg, Immediate(kSmiTagMask));
|
|
j(NOT_ZERO, label);
|
|
}
|
|
|
|
void BranchIfSmi(Register reg, Label* label) {
|
|
testq(reg, Immediate(kSmiTagMask));
|
|
j(ZERO, label);
|
|
}
|
|
|
|
void Align(int alignment, intptr_t offset);
|
|
void Bind(Label* label);
|
|
void Jump(Label* label) { jmp(label); }
|
|
|
|
void LoadField(Register dst, FieldAddress address) { movq(dst, address); }
|
|
|
|
void CompareWithFieldValue(Register value, FieldAddress address) {
|
|
cmpq(value, address);
|
|
}
|
|
|
|
void Comment(const char* format, ...) PRINTF_ATTRIBUTE(2, 3);
|
|
static bool EmittingComments();
|
|
|
|
const Code::Comments& GetCodeComments() const;
|
|
|
|
// Address of code at offset.
|
|
uword CodeAddress(intptr_t offset) { return buffer_.Address(offset); }
|
|
|
|
intptr_t CodeSize() const { return buffer_.Size(); }
|
|
intptr_t prologue_offset() const { return prologue_offset_; }
|
|
bool has_single_entry_point() const { return has_single_entry_point_; }
|
|
|
|
// Count the fixups that produce a pointer offset, without processing
|
|
// the fixups.
|
|
intptr_t CountPointerOffsets() const { return buffer_.CountPointerOffsets(); }
|
|
|
|
const ZoneGrowableArray<intptr_t>& GetPointerOffsets() const {
|
|
return buffer_.pointer_offsets();
|
|
}
|
|
|
|
ObjectPoolWrapper& object_pool_wrapper() { return *object_pool_wrapper_; }
|
|
|
|
RawObjectPool* MakeObjectPool() {
|
|
return object_pool_wrapper_->MakeObjectPool();
|
|
}
|
|
|
|
void FinalizeInstructions(const MemoryRegion& region) {
|
|
buffer_.FinalizeInstructions(region);
|
|
}
|
|
|
|
void RestoreCodePointer();
|
|
void LoadPoolPointer(Register pp = PP);
|
|
|
|
// Set up a Dart frame on entry with a frame pointer and PC information to
|
|
// enable easy access to the RawInstruction object of code corresponding
|
|
// to this frame.
|
|
// The dart frame layout is as follows:
|
|
// ....
|
|
// locals space <=== RSP
|
|
// saved PP
|
|
// pc (used to derive the RawInstruction Object of the dart code)
|
|
// saved RBP <=== RBP
|
|
// ret PC
|
|
// .....
|
|
// This code sets this up with the sequence:
|
|
// pushq rbp
|
|
// movq rbp, rsp
|
|
// call L
|
|
// L: <code to adjust saved pc if there is any intrinsification code>
|
|
// ...
|
|
// pushq r15
|
|
// .....
|
|
void EnterDartFrame(intptr_t frame_size, Register new_pp);
|
|
void LeaveDartFrame(RestorePP restore_pp = kRestoreCallerPP);
|
|
|
|
// Set up a Dart frame for a function compiled for on-stack replacement.
|
|
// The frame layout is a normal Dart frame, but the frame is partially set
|
|
// up on entry (it is the frame of the unoptimized code).
|
|
void EnterOsrFrame(intptr_t extra_size);
|
|
|
|
// Set up a stub frame so that the stack traversal code can easily identify
|
|
// a stub frame.
|
|
// The stub frame layout is as follows:
|
|
// .... <=== RSP
|
|
// pc (used to derive the RawInstruction Object of the stub)
|
|
// saved RBP <=== RBP
|
|
// ret PC
|
|
// .....
|
|
// This code sets this up with the sequence:
|
|
// pushq rbp
|
|
// movq rbp, rsp
|
|
// pushq immediate(0)
|
|
// .....
|
|
void EnterStubFrame();
|
|
void LeaveStubFrame();
|
|
|
|
void MonomorphicCheckedEntry();
|
|
|
|
void UpdateAllocationStats(intptr_t cid, Heap::Space space);
|
|
|
|
void UpdateAllocationStatsWithSize(intptr_t cid,
|
|
Register size_reg,
|
|
Heap::Space space);
|
|
void UpdateAllocationStatsWithSize(intptr_t cid,
|
|
intptr_t instance_size,
|
|
Heap::Space space);
|
|
|
|
// If allocation tracing for |cid| is enabled, will jump to |trace| label,
|
|
// which will allocate in the runtime where tracing occurs.
|
|
void MaybeTraceAllocation(intptr_t cid, Label* trace, bool near_jump);
|
|
|
|
// Inlined allocation of an instance of class 'cls', code has no runtime
|
|
// calls. Jump to 'failure' if the instance cannot be allocated here.
|
|
// Allocated instance is returned in 'instance_reg'.
|
|
// Only the tags field of the object is initialized.
|
|
void TryAllocate(const Class& cls,
|
|
Label* failure,
|
|
bool near_jump,
|
|
Register instance_reg,
|
|
Register temp);
|
|
|
|
void TryAllocateArray(intptr_t cid,
|
|
intptr_t instance_size,
|
|
Label* failure,
|
|
bool near_jump,
|
|
Register instance,
|
|
Register end_address,
|
|
Register temp);
|
|
|
|
// Debugging and bringup support.
|
|
void Breakpoint() { int3(); }
|
|
void Stop(const char* message, bool fixed_length_encoding = false);
|
|
void Unimplemented(const char* message);
|
|
void Untested(const char* message);
|
|
void Unreachable(const char* message);
|
|
|
|
static void InitializeMemoryWithBreakpoints(uword data, intptr_t length);
|
|
|
|
static const char* RegisterName(Register reg);
|
|
|
|
static const char* FpuRegisterName(FpuRegister reg);
|
|
|
|
static Address ElementAddressForIntIndex(bool is_external,
|
|
intptr_t cid,
|
|
intptr_t index_scale,
|
|
Register array,
|
|
intptr_t index);
|
|
static Address ElementAddressForRegIndex(bool is_external,
|
|
intptr_t cid,
|
|
intptr_t index_scale,
|
|
Register array,
|
|
Register index);
|
|
|
|
static Address VMTagAddress() {
|
|
return Address(THR, Thread::vm_tag_offset());
|
|
}
|
|
|
|
// On some other platforms, we draw a distinction between safe and unsafe
|
|
// smis.
|
|
static bool IsSafe(const Object& object) { return true; }
|
|
static bool IsSafeSmi(const Object& object) { return object.IsSmi(); }
|
|
|
|
private:
|
|
AssemblerBuffer buffer_;
|
|
|
|
ObjectPoolWrapper* object_pool_wrapper_;
|
|
|
|
intptr_t prologue_offset_;
|
|
bool has_single_entry_point_;
|
|
|
|
class CodeComment : public ZoneAllocated {
|
|
public:
|
|
CodeComment(intptr_t pc_offset, const String& comment)
|
|
: pc_offset_(pc_offset), comment_(comment) {}
|
|
|
|
intptr_t pc_offset() const { return pc_offset_; }
|
|
const String& comment() const { return comment_; }
|
|
|
|
private:
|
|
intptr_t pc_offset_;
|
|
const String& comment_;
|
|
|
|
DISALLOW_COPY_AND_ASSIGN(CodeComment);
|
|
};
|
|
|
|
GrowableArray<CodeComment*> comments_;
|
|
bool constant_pool_allowed_;
|
|
|
|
intptr_t FindImmediate(int64_t imm);
|
|
bool CanLoadFromObjectPool(const Object& object) const;
|
|
void LoadObjectHelper(Register dst, const Object& obj, bool is_unique);
|
|
void LoadWordFromPoolOffset(Register dst, int32_t offset);
|
|
|
|
void AluL(uint8_t modrm_opcode, Register dst, const Immediate& imm);
|
|
void AluB(uint8_t modrm_opcode, const Address& dst, const Immediate& imm);
|
|
void AluW(uint8_t modrm_opcode, const Address& dst, const Immediate& imm);
|
|
void AluL(uint8_t modrm_opcode, const Address& dst, const Immediate& imm);
|
|
void AluQ(uint8_t modrm_opcode,
|
|
uint8_t opcode,
|
|
Register dst,
|
|
const Immediate& imm);
|
|
void AluQ(uint8_t modrm_opcode,
|
|
uint8_t opcode,
|
|
const Address& dst,
|
|
const Immediate& imm);
|
|
|
|
void EmitSimple(int opcode, int opcode2 = -1);
|
|
void EmitUnaryQ(Register reg, int opcode, int modrm_code);
|
|
void EmitUnaryL(Register reg, int opcode, int modrm_code);
|
|
void EmitUnaryQ(const Address& address, int opcode, int modrm_code);
|
|
void EmitUnaryL(const Address& address, int opcode, int modrm_code);
|
|
// The prefixes are in reverse order due to the rules of default arguments in
|
|
// C++.
|
|
void EmitQ(int reg,
|
|
const Address& address,
|
|
int opcode,
|
|
int prefix2 = -1,
|
|
int prefix1 = -1);
|
|
void EmitL(int reg,
|
|
const Address& address,
|
|
int opcode,
|
|
int prefix2 = -1,
|
|
int prefix1 = -1);
|
|
void EmitW(Register reg,
|
|
const Address& address,
|
|
int opcode,
|
|
int prefix2 = -1,
|
|
int prefix1 = -1);
|
|
void EmitQ(int dst, int src, int opcode, int prefix2 = -1, int prefix1 = -1);
|
|
void EmitL(int dst, int src, int opcode, int prefix2 = -1, int prefix1 = -1);
|
|
void EmitW(Register dst,
|
|
Register src,
|
|
int opcode,
|
|
int prefix2 = -1,
|
|
int prefix1 = -1);
|
|
void CmpPS(XmmRegister dst, XmmRegister src, int condition);
|
|
|
|
inline void EmitUint8(uint8_t value);
|
|
inline void EmitInt32(int32_t value);
|
|
inline void EmitUInt32(uint32_t value);
|
|
inline void EmitInt64(int64_t value);
|
|
|
|
inline void EmitRegisterREX(Register reg,
|
|
uint8_t rex,
|
|
bool force_emit = false);
|
|
inline void EmitOperandREX(int rm, const Operand& operand, uint8_t rex);
|
|
inline void EmitRegisterOperand(int rm, int reg);
|
|
inline void EmitFixup(AssemblerFixup* fixup);
|
|
inline void EmitOperandSizeOverride();
|
|
inline void EmitRegRegRex(int reg, int base, uint8_t rex = REX_NONE);
|
|
void EmitOperand(int rm, const Operand& operand);
|
|
void EmitImmediate(const Immediate& imm);
|
|
void EmitComplex(int rm, const Operand& operand, const Immediate& immediate);
|
|
void EmitSignExtendedInt8(int rm,
|
|
const Operand& operand,
|
|
const Immediate& immediate);
|
|
void EmitLabel(Label* label, intptr_t instruction_size);
|
|
void EmitLabelLink(Label* label);
|
|
void EmitNearLabelLink(Label* label);
|
|
|
|
void EmitGenericShift(bool wide, int rm, Register reg, const Immediate& imm);
|
|
void EmitGenericShift(bool wide, int rm, Register operand, Register shifter);
|
|
|
|
enum BarrierFilterMode {
|
|
// Filter falls through into the barrier update code. Target label
|
|
// is a "after-store" label.
|
|
kJumpToNoUpdate,
|
|
|
|
// Filter falls through to the "after-store" code. Target label
|
|
// is barrier update code label.
|
|
kJumpToBarrier,
|
|
};
|
|
|
|
void StoreIntoObjectFilter(Register object,
|
|
Register value,
|
|
Label* label,
|
|
CanBeSmi can_be_smi,
|
|
BarrierFilterMode barrier_filter_mode);
|
|
|
|
// Unaware of write barrier (use StoreInto* methods for storing to objects).
|
|
void MoveImmediate(const Address& dst, const Immediate& imm);
|
|
|
|
void ComputeCounterAddressesForCid(intptr_t cid,
|
|
Heap::Space space,
|
|
Address* count_address,
|
|
Address* size_address);
|
|
DISALLOW_ALLOCATION();
|
|
DISALLOW_COPY_AND_ASSIGN(Assembler);
|
|
};
|
|
|
|
inline void Assembler::EmitUint8(uint8_t value) {
|
|
buffer_.Emit<uint8_t>(value);
|
|
}
|
|
|
|
inline void Assembler::EmitInt32(int32_t value) {
|
|
buffer_.Emit<int32_t>(value);
|
|
}
|
|
|
|
inline void Assembler::EmitUInt32(uint32_t value) {
|
|
buffer_.Emit<uint32_t>(value);
|
|
}
|
|
|
|
inline void Assembler::EmitInt64(int64_t value) {
|
|
buffer_.Emit<int64_t>(value);
|
|
}
|
|
|
|
inline void Assembler::EmitRegisterREX(Register reg, uint8_t rex, bool force) {
|
|
ASSERT(reg != kNoRegister && reg <= R15);
|
|
ASSERT(rex == REX_NONE || rex == REX_W);
|
|
rex |= (reg > 7 ? REX_B : REX_NONE);
|
|
if (rex != REX_NONE || force) EmitUint8(REX_PREFIX | rex);
|
|
}
|
|
|
|
inline void Assembler::EmitOperandREX(int rm,
|
|
const Operand& operand,
|
|
uint8_t rex) {
|
|
rex |= (rm > 7 ? REX_R : REX_NONE) | operand.rex();
|
|
if (rex != REX_NONE) EmitUint8(REX_PREFIX | rex);
|
|
}
|
|
|
|
inline void Assembler::EmitRegRegRex(int reg, int base, uint8_t rex) {
|
|
ASSERT(reg != kNoRegister && reg <= R15);
|
|
ASSERT(base != kNoRegister && base <= R15);
|
|
ASSERT(rex == REX_NONE || rex == REX_W);
|
|
if (reg > 7) rex |= REX_R;
|
|
if (base > 7) rex |= REX_B;
|
|
if (rex != REX_NONE) EmitUint8(REX_PREFIX | rex);
|
|
}
|
|
|
|
inline void Assembler::EmitFixup(AssemblerFixup* fixup) {
|
|
buffer_.EmitFixup(fixup);
|
|
}
|
|
|
|
inline void Assembler::EmitOperandSizeOverride() {
|
|
EmitUint8(0x66);
|
|
}
|
|
|
|
} // namespace dart
|
|
|
|
#endif // RUNTIME_VM_COMPILER_ASSEMBLER_ASSEMBLER_X64_H_
|