kvs/kvs_encoder_fixsize.py

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#!/usr/bin/env python3
# -*- coding: utf-8 -*-
"""
Кодировщик инструкций фиксированного размера для КВС
Инструкции, не зависящие от сложной адресации памяти.
Вынесены из kvs_pass2_encoder.py для упрощения поддержки.
"""
import struct
from kvs_data import INSTRUCTIONS, REGISTERS, get_reg_info
# ========== MOV регистр-регистр ==========
def encode_mov_reg_reg(operands):
"""
MOV reg, reg - переместить данные между регистрами
Формат: переместить <регистразначения>, <регистрсточник>
"""
code = bytearray()
instr = INSTRUCTIONS["переместить"]
dst_info = get_reg_info(operands[0])
src_info = get_reg_info(operands[1])
dst = dst_info["index"]
src = src_info["index"]
size = dst_info["size"]
use_66 = (size == 16)
use_rex_w = (size == 64)
rex = 0x40
if use_rex_w:
rex |= 0x08
if src >= 8:
rex |= 0x04
if dst >= 8:
rex |= 0x01
if dst_info.get("high8") or src_info.get("high8"):
rex = 0
if use_66:
code.append(0x66)
if rex != 0x40 or use_rex_w:
code.append(rex)
code.extend(instr["opcode"][-1:])
modrm = 0xC0 | ((src & 7) << 3) | (dst & 7)
code.append(modrm)
return code
# ========== MOV reg8, imm8 ==========
def encode_mov_reg8_imm8(operands):
"""
MOV reg8, imm8 - загрузить непосредственный байт в 8-битный регистр
Формат: загрузить_байт <регистр8>, <байт>
"""
code = bytearray()
reg_info = get_reg_info(operands[0])
reg = reg_info["index"]
imm = int(operands[1]) if operands[1].isdigit() else int(operands[1], 16)
if reg_info.get("high8"):
code.append(0xB0 + reg + 4)
else:
if reg < 4:
code.append(0xB0 + reg)
else:
rex = 0x40
if reg >= 8:
rex |= 0x01
code.append(rex)
code.append(0xB0 + (reg & 7))
code.append(imm & 0xFF)
return code
# ========== CMP/TEST регистр-регистр ==========
def encode_cmp_reg_reg(mnemonic, operands):
"""
CMP reg, reg - сравнить регистры
Формат: сравнить <регистр1>, <регистр2>
Также TEST через проверить.
"""
code = bytearray()
instr = INSTRUCTIONS[mnemonic]
dst_info = get_reg_info(operands[0])
src_info = get_reg_info(operands[1])
dst = dst_info["index"]
src = src_info["index"]
size = dst_info["size"]
use_66 = (size == 16)
use_rex_w = (size == 64)
rex = 0x40
if use_rex_w:
rex |= 0x08
if src >= 8:
rex |= 0x04
if dst >= 8:
rex |= 0x01
if dst_info.get("high8") or src_info.get("high8"):
rex = 0
if use_66:
code.append(0x66)
if rex != 0x40 or use_rex_w:
code.append(rex)
code.extend(instr["opcode"][-1:])
modrm = 0xC0 | ((src & 7) << 3) | (dst & 7)
code.append(modrm)
return code
# ========== ADD/SUB регистр-регистр ==========
def encode_add_sub_reg_reg(mnemonic, operands):
"""
ADD/SUB reg, reg - сложить/вычесть регистры
Формат: прибавить / вычесть <регистразначения>, <регистрсточник>
"""
code = bytearray()
instr = INSTRUCTIONS[mnemonic]
dst_info = get_reg_info(operands[0])
src_info = get_reg_info(operands[1])
dst = dst_info["index"]
src = src_info["index"]
size = dst_info["size"]
use_66 = (size == 16)
use_rex_w = (size == 64)
rex = 0x40
if use_rex_w:
rex |= 0x08
if src >= 8:
rex |= 0x04
if dst >= 8:
rex |= 0x01
if dst_info.get("high8") or src_info.get("high8"):
rex = 0
if use_66:
code.append(0x66)
if rex != 0x40 or use_rex_w:
code.append(rex)
code.extend(instr["opcode"][-1:])
modrm = 0xC0 | ((src & 7) << 3) | (dst & 7)
code.append(modrm)
return code
# ========== MUL/IMUL/DIV/IDIV ==========
def encode_muldiv(mnemonic):
"""
MUL/IMUL/DIV/IDIV - умножение и деление (работают с RAX/RDX)
Формат: умножить / умножить_знаковое / разделить / разделить_знаковое
"""
code = bytearray()
instr = INSTRUCTIONS[mnemonic]
subop = instr["subop"]
code.append(0x48)
code.extend(instr["opcode"])
modrm = 0xC0 | (subop << 3) | 0
code.append(modrm)
return code
# ========== AND/OR/XOR регистр-регистр ==========
def encode_and_or_xor_reg_reg(mnemonic, operands):
"""
AND/OR/XOR reg, reg - логические операции над регистрами
"""
code = bytearray()
instr = INSTRUCTIONS[mnemonic]
dst_info = get_reg_info(operands[0])
src_info = get_reg_info(operands[1])
dst = dst_info["index"]
src = src_info["index"]
size = dst_info["size"]
use_66 = (size == 16)
use_rex_w = (size == 64)
rex = 0x40
if use_rex_w:
rex |= 0x08
if src >= 8:
rex |= 0x04
if dst >= 8:
rex |= 0x01
if dst_info.get("high8") or src_info.get("high8"):
rex = 0
if use_66:
code.append(0x66)
if rex != 0x40 or use_rex_w:
code.append(rex)
code.extend(instr["opcode"][-1:])
modrm = 0xC0 | ((src & 7) << 3) | (dst & 7)
code.append(modrm)
return code
# ========== NOT/NEG ==========
def encode_not_neg(mnemonic, operands):
"""
NOT/NEG - инвертировать/отрицать регистр
"""
code = bytearray()
instr = INSTRUCTIONS[mnemonic]
reg_info = get_reg_info(operands[0])
reg = reg_info["index"]
size = reg_info["size"]
subop = instr["subop"]
if size == 64:
code.append(0x48)
elif size == 16:
code.append(0x66)
if reg >= 8:
code.append(0x41)
code.extend(instr["opcode"])
modrm = 0xC0 | (subop << 3) | (reg & 7)
code.append(modrm)
return code
# ========== INC/DEC ==========
def encode_incdec(mnemonic, operands):
"""
INC / DEC - инкремент и декремент регистра
"""
code = bytearray()
instr = INSTRUCTIONS[mnemonic]
reg_info = get_reg_info(operands[0])
reg = reg_info["index"]
size = reg_info["size"]
subop = instr["subop"]
if size == 64:
rex = 0x48
if reg >= 8:
rex |= 0x01
code.append(rex)
code.append(0xFF)
elif size == 32:
rex = 0x40
if reg >= 8:
rex |= 0x01
if rex != 0x40:
code.append(rex)
code.append(0xFF)
elif size == 16:
code.append(0x66)
rex = 0x40
if reg >= 8:
rex |= 0x01
if rex != 0x40:
code.append(rex)
code.append(0xFF)
elif size == 8:
if reg_info.get("high8"):
code.append(0xFE)
else:
if reg < 4:
code.append(0xFE)
else:
rex = 0x40
if reg >= 8:
rex |= 0x01
code.append(rex)
code.append(0xFE)
modrm = 0xC0 | (subop << 3) | (reg & 7)
code.append(modrm)
return bytes(code)
modrm = 0xC0 | (subop << 3) | (reg & 7)
code.append(modrm)
return bytes(code)
# ========== Стек (PUSH/POP) ==========
def encode_push_reg(operands):
"""PUSH reg"""
code = bytearray()
reg_info = get_reg_info(operands[0])
reg = reg_info["index"]
size = reg_info["size"]
if size == 64:
if reg < 8:
code.append(0x50 + reg)
else:
code.append(0x41)
code.append(0x50 + (reg - 8))
elif size == 16:
code.append(0x66)
if reg < 8:
code.append(0x50 + reg)
else:
code.append(0x41)
code.append(0x50 + (reg - 8))
else:
raise ValueError(f"PUSH не поддерживает {size}-битные регистры")
return code
def encode_pop_reg(operands):
"""POP reg"""
code = bytearray()
reg_info = get_reg_info(operands[0])
reg = reg_info["index"]
size = reg_info["size"]
if size == 64:
if reg < 8:
code.append(0x58 + reg)
else:
code.append(0x41)
code.append(0x58 + (reg - 8))
elif size == 16:
code.append(0x66)
if reg < 8:
code.append(0x58 + reg)
else:
code.append(0x41)
code.append(0x58 + (reg - 8))
else:
raise ValueError(f"POP не поддерживает {size}-битные регистры")
return code
def encode_push_imm(operands):
"""PUSH imm"""
code = bytearray()
imm = int(operands[0]) if operands[0].isdigit() else int(operands[0], 16)
if -128 <= imm <= 127:
code.append(0x6A)
code.append(imm & 0xFF)
else:
code.append(0x68)
code.extend(struct.pack('<i', imm))
return code
# ========== Сдвиги и вращения ==========
def encode_shift_rotate(mnemonic, operands):
"""
SHL/SHR/SAR/ROL/ROR - сдвиги и вращения
"""
code = bytearray()
reg_info = get_reg_info(operands[0])
reg = reg_info["index"]
size = reg_info["size"]
shift = int(operands[1]) if operands[1].isdigit() else int(operands[1], 16)
if size == 64:
code.append(0x48)
code.append(0xC1)
subop_map = {
"сдвиг_влево": 4,
"сдвиг_вправо": 5,
"сдвиг_арифметический_вправо": 7,
"вращать_влево": 0,
"вращать_вправо": 1,
}
subop = subop_map.get(mnemonic, 0)
modrm = 0xC0 | (subop << 3) | (reg & 7)
code.append(modrm)
code.append(shift & 0xFF)
return bytes(code)
# ========== Системные и отладочные ==========
def encode_syscall():
return INSTRUCTIONS["вызов_системы"]["opcode"]
def encode_int(operands):
code = bytearray()
instr = INSTRUCTIONS["прервать"]
code.extend(instr["opcode"])
imm = int(operands[0]) if operands[0].isdigit() else int(operands[0], 16)
code.append(imm & 0xFF)
return code
def encode_hlt():
return INSTRUCTIONS["остановить"]["opcode"]
def encode_int3():
return INSTRUCTIONS["отладка"]["opcode"]
def encode_nop():
return INSTRUCTIONS["нет_операции"]["opcode"]
# ========== Инструкции работы с флагами ==========
def encode_flag_instruction(mnemonic):
return INSTRUCTIONS[mnemonic]["opcode"]
# ========== Ввод-вывод ==========
def encode_in(operands):
code = bytearray()
instr = INSTRUCTIONS["ввод_байта"]
code.extend(instr["opcode"])
port = int(operands[0]) if operands[0].isdigit() else int(operands[0], 16)
code.append(port & 0xFF)
return code
def encode_out(operands):
code = bytearray()
instr = INSTRUCTIONS["вывод_байта"]
code.extend(instr["opcode"])
port = int(operands[0]) if operands[0].isdigit() else int(operands[0], 16)
code.append(port & 0xFF)
return code
# ========== Строковые инструкции ==========
def encode_string_instruction(mnemonic):
return INSTRUCTIONS[mnemonic]["opcode"]
# ========== Идентификация процессора ==========
def encode_cpuid():
return INSTRUCTIONS["идентифицировать_процессор"]["opcode"]
def encode_rdtsc():
return INSTRUCTIONS["прочитать_счётчик"]["opcode"]
# ========== XCHG ==========
def encode_xchg(operands):
"""XCHG reg, reg - обменять регистры"""
code = bytearray()
instr = INSTRUCTIONS["обменять"]
reg1_info = get_reg_info(operands[0])
reg2_info = get_reg_info(operands[1])
reg1 = reg1_info["index"]
reg2 = reg2_info["index"]
rex = 0x48 if reg1_info["size"] == 64 else 0x40
if reg1 >= 8 or reg2 >= 8:
rex |= 0x01
if reg2 >= 8:
rex |= 0x04
code.append(rex)
code.extend(instr["opcode"])
modrm = 0xC0 | ((reg2 & 7) << 3) | (reg1 & 7)
code.append(modrm)
return code