mirror of
https://github.com/hakril/PythonForWindows
synced 2026-06-08 14:31:45 +00:00
eab219610d
* add register mnemonics and alias to Jz * remove push/popal use expected_result to overwrite result * add x64 instructions * fix an issue with pushfd popfd Instructions not matching the intel specification
322 lines
13 KiB
Python
322 lines
13 KiB
Python
try:
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import capstone
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except ImportError as e:
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capstone = None
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import pytest
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import windows.native_exec.simple_x64 as x64
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from windows.native_exec.simple_x64 import *
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del Test # Prevent pytest warning
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from windows.pycompat import int_types
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if capstone:
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disassembleur = capstone.Cs(capstone.CS_ARCH_X86, capstone.CS_MODE_64)
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disassembleur.detail = True
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@pytest.fixture
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def need_capstone():
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if capstone is None:
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raise pytest.skip("Capstone is not installed")
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return True
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pytestmark = pytest.mark.usefixtures("need_capstone")
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def disas(x):
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return list(disassembleur.disasm(x, 0))
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mnemonic_name_exception = {'movabs': 'mov'}
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class CheckInstr(object):
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def __init__(self, instr_to_test, expected_result=None, immediat_accepted=None, must_fail=None, debug=False):
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self.instr_to_test = instr_to_test
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self.immediat_accepted = immediat_accepted
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self.expected_result = expected_result
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self.must_fail = must_fail
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self.debug = debug
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def __call__(self, *args):
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try:
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if self.debug:
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import pdb;pdb.set_trace()
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pdb.DONE = True
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x64.DEBUG = self.debug
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res = bytes(self.instr_to_test(*args).get_code())
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if self.debug:
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print(repr(res))
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except ValueError as e:
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if self.must_fail == True:
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return True
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else:
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raise
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else:
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if self.must_fail:
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raise ValueError("Instruction did not failed as expected")
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capres_list = disas(res)
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if len(capres_list) != 1:
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raise AssertionError("Trying to disas an instruction resulted in multiple disassembled instrs")
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capres = capres_list[0]
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print("{0} {1}".format(capres.mnemonic, capres.op_str))
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if self.expected_result is not None:
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if "{0} {1}".format(capres.mnemonic, capres.op_str) == self.expected_result:
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return True
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else:
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raise AssertionError("Expected result <{0}> got <{1}>".format(self.expected_result, "{0} {1}".format(capres.mnemonic, capres.op_str)))
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if len(res) != len(capres.bytes):
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print("<{0}> vs <{1}>".format(repr(res), repr(capres.bytes)))
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raise AssertionError("Not all bytes have been used by the disassembler")
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self.compare_mnemo(capres)
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self.compare_args(args, capres)
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def compare_mnemo(self, capres):
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expected = self.instr_to_test.__name__.lower()
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cap_mnemo = mnemonic_name_exception.get(str(capres.mnemonic), str(capres.mnemonic))
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if expected != cap_mnemo:
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raise AssertionError("Expected menmo {0} got {1}".format(expected, str(capres.mnemonic)))
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return True
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def compare_args(self, args, capres):
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capres_op = list(capres.operands)
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if len(args) != len(capres_op):
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raise AssertionError("Expected {0} operands got {1}".format(len(args), len(capres_op)))
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for op_args, cap_op in zip(args, capres_op):
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if isinstance(op_args, str): # Register
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if cap_op.type != capstone.x86.X86_OP_REG:
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raise AssertionError("Expected args {0} operands got {1}".format(op_args, capres_op))
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if op_args.lower() != capres.reg_name(cap_op.reg).lower():
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raise AssertionError("Expected register <{0}> got {1}".format(op_args.lower(), capres.reg_name(cap_op.reg).lower()))
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elif isinstance(op_args, int_types):
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if (op_args != cap_op.imm) and not (self.immediat_accepted and self.immediat_accepted == cap_op.imm):
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raise AssertionError("Expected Immediat <{0}> got {1}".format(op_args, cap_op.imm))
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elif isinstance(op_args, mem_access):
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self.compare_mem_access(op_args, capres, cap_op)
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else:
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raise ValueError("Unknow argument {0} of type {1}".format(op_args, type(op_args)))
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def compare_mem_access(self, memaccess, capres, cap_op):
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if cap_op.type != capstone.x86.X86_OP_MEM:
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raise AssertionError("Expected Memaccess <{0}> got {1}".format(memaccess, cap_op))
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if memaccess.prefix is not None and capres.prefix[1] != x64_segment_selectors[memaccess.prefix].PREFIX_VALUE:
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try:
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get_prefix = [n for n, x in x64_segment_selectors.items() if x.PREFIX_VALUE == capres.prefix[1]][0]
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except IndexError:
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get_prefix = None
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raise AssertionError("Expected Segment overide <{0}> got {1}".format(memaccess.prefix, get_prefix))
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cap_mem = cap_op.mem
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if memaccess.base is None and cap_mem.base != capstone.x86.X86_REG_INVALID:
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raise AssertionError("Unexpected memaccess base <{0}>".format(capres.reg_name(cap_mem.base)))
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if memaccess.base is not None and capres.reg_name(cap_mem.base) != memaccess.base.lower():
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raise AssertionError("Expected mem.base {0} got {1}".format(memaccess.base.lower(), capres.reg_name(cap_mem.base)))
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if memaccess.index is None and cap_mem.index != capstone.x86.X86_REG_INVALID:
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raise AssertionError("Unexpected memaccess index <{0}>".format(capres.reg_name(cap_mem.base)))
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if memaccess.index is not None and capres.reg_name(cap_mem.index) != memaccess.index.lower():
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raise AssertionError("Expected mem.index {0} got {1}".format(memaccess.index.lower(), capres.reg_name(cap_mem.index)))
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if memaccess.scale != cap_mem.scale and not (memaccess.scale is None and cap_mem.scale == 1):
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raise AssertionError("Expected mem.scale {0} got {1}".format(memaccess.scale, cap_mem.scale))
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if memaccess.disp != cap_mem.disp:
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raise AssertionError("Expected mem.disp {0} got {1}".format(memaccess.disp, cap_mem.disp))
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def test_assembler():
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CheckInstr(Add)('RAX', 'RSP')
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CheckInstr(Add)('RAX', mem('[RCX]'))
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CheckInstr(Add)('RAX', mem('[RDI + 0x10]'))
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CheckInstr(Add)('RAX', mem('[RSI + 0x7fffffff]'))
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CheckInstr(Add)('RAX', mem('[RSI + -0x1]'))
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CheckInstr(Add)('RAX', mem('[0x10]'))
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CheckInstr(Add)('RAX', mem('fs:[0x10]'))
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CheckInstr(Add)('RAX', mem('[RSI + RDI * 2]'))
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CheckInstr(Add)('RAX', mem('[RSI + RDI * 2 + 0x10]'))
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CheckInstr(Add)('RAX', mem('gs:[RSI + RDI * 2 + 0x10]'))
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CheckInstr(Add)('RAX', mem('[R15 * 8 + 0x10]'))
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CheckInstr(Add)('RAX', mem('[R9 + R8 * 2 + 0x7fffffff]'))
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CheckInstr(Add)('RAX', mem('[R9 + R8 * 2 + -0x80000000]'))
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CheckInstr(Add)('RAX', mem('[-1]'))
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CheckInstr(Add)('RAX', mem('[0x7fffffff]'))
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CheckInstr(Add)('RAX', -1)
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# Registers
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CheckInstr(Pushfq)()
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CheckInstr(Popfq)()
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CheckInstr(Sub)('RCX', 'RSP')
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CheckInstr(Sub)('RCX', mem('[RSP]'))
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CheckInstr(Xor)('R15', mem('[RAX + R8 * 2 + 0x11223344]'))
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CheckInstr(Xor)('RAX', 'RAX')
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CheckInstr(Cmp)('RAX', -1)
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#CheckInstr(Cmp, immediat_accepted=-1)('RAX', 0xffffffff)
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CheckInstr(Lea)('RAX', mem('[RAX + 1]'))
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CheckInstr(Lea)('RAX', mem('fs:[RAX + 1]'))
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CheckInstr(Mov)('RAX', mem('[0x1122334455667788]'))
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CheckInstr(Mov)('RAX', mem('gs:[0x1122334455667788]'))
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CheckInstr(Mov)('RAX', mem('gs:[0x60]'))
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CheckInstr(Mov)('RCX', 0x1122334455667788)
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CheckInstr(Mov)('RCX', -1)
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CheckInstr(Mov)('RCX', -0x1000)
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CheckInstr(Mov)('RCX', 0xffffffff)
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CheckInstr(Mov)('RAX', 0xffffffff)
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CheckInstr(Mov)('R8', 0x1122334455667788)
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CheckInstr(Mov)('RCX', -1)
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CheckInstr(Mov, immediat_accepted=-1)('RCX', 0xffffffffffffffff)
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CheckInstr(Mov)(mem('gs:[0x1122334455667788]'), 'RAX')
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CheckInstr(Mov)(mem('[RAX]'), 0x11223344)
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CheckInstr(Mov)(mem('[EAX]'), 0x11223344)
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CheckInstr(Mov)(mem('[RBX]'), 0x11223344)
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CheckInstr(Mov)("R12", mem("[RAX]"))
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CheckInstr(Mov)("RAX", mem("[R12]"))
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CheckInstr(Mov)("RAX", mem("[RAX + R12]"))
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CheckInstr(Mov)("RAX", mem("[R12 + R12]"))
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CheckInstr(Mov)("RAX", mem("[R12 + R15]"))
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CheckInstr(Mov)("RAX", mem("[R10]"))
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CheckInstr(Mov)("RAX", mem("[R11]"))
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CheckInstr(Mov)("RAX", mem("[R12]"))
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CheckInstr(Mov)("RAX", mem("[R13]"))
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CheckInstr(Mov)("RAX", mem("[R14]"))
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CheckInstr(Mov)("RAX", mem("[R15]"))
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#CheckInstr(Mov)("RSI", mem("[R12]"))
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CheckInstr(And)('RCX', 'RBX')
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CheckInstr(And)('RAX', 0x11223344)
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CheckInstr(And)('EAX', 0x11223344)
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CheckInstr(And)('EAX', 0xffffffff)
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CheckInstr(And)('RAX', mem('[RAX + 1]'))
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CheckInstr(And)(mem('[RAX + 1]'), 'R8')
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CheckInstr(And)(mem('[EAX + 1]'), 'R8')
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CheckInstr(And)(mem('[RAX + 1]'), 'EAX')
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CheckInstr(Or)('RCX', 'RBX')
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CheckInstr(Or)('RAX', 0x11223344)
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CheckInstr(Or)('RAX', mem('[RAX + 1]'))
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CheckInstr(Or)(mem('[RAX + 1]'), 'R8')
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CheckInstr(Or)(mem('[EAX + 1]'), 'R8')
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CheckInstr(Or)(mem('[RAX + 1]'), 'EAX')
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CheckInstr(Shr)('RAX', 8)
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CheckInstr(Shr)('R15', 0x12)
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CheckInstr(Shl)('RAX', 8)
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CheckInstr(Shl)('R15', 0x12)
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CheckInstr(Int3)()
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CheckInstr(Int)(0)
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CheckInstr(Int)(3)
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CheckInstr(Int)(0xff)
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# I really don't know why it's the inverse
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# But I don't care, it's Test dude..
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CheckInstr(x64.Test, expected_result="test r11, rax")('RAX', 'R11')
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CheckInstr(x64.Test, expected_result="test edi, eax")('EAX', 'EDI')
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CheckInstr(x64.Test)('RCX', 'RCX')
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CheckInstr(x64.Test)(mem('[RDI + 0x100]'), 'RCX')
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CheckInstr(x64.Test)('EAX', 0x11223344)
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CheckInstr(x64.Test, immediat_accepted=-1)('RAX', 0xffffffff)
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CheckInstr(x64.Test)('ECX', 0x42)
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CheckInstr(x64.Test)('RCX', 0x42)
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assert x64.Test(mem('[RDI + 0x100]'), 'RCX').get_code() == x64.Test('RCX', mem('[RDI + 0x100]')).get_code()
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CheckInstr(Push)('RAX')
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assert len(Push("RAX").get_code()) == 1
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CheckInstr(Push)('R15')
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CheckInstr(Push)(0x42)
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CheckInstr(Push)(-1)
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CheckInstr(Push)(mem("[ECX]"))
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CheckInstr(Push)(mem("[RCX]"))
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CheckInstr(Pop)('RAX')
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assert len(Pop("RAX").get_code()) == 1
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CheckInstr(Call)('RAX')
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CheckInstr(Call)(mem('[RAX + RCX * 8]'))
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CheckInstr(Cpuid)()
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CheckInstr(Xchg)('RAX', 'RSP')
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assert Xchg('RAX', 'RCX').get_code() == Xchg('RCX', 'RAX').get_code()
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# 32 / 64 bits register mixing
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CheckInstr(Mov)('ECX', 'EBX')
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CheckInstr(Mov)('RCX', mem('[EBX]'))
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CheckInstr(Mov)('ECX', mem('[RBX]'))
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CheckInstr(Mov)('ECX', mem('[EBX]'))
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CheckInstr(Mov)('RCX', mem('[EBX + EBX]'))
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CheckInstr(Mov)('RCX', mem('[ESP + EBX + 0x10]'))
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CheckInstr(Mov)('ECX', mem('[ESP + EBX + 0x10]'))
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CheckInstr(Mov)('ECX', mem('[RBX + RCX + 0x10]'))
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CheckInstr(Mov)(mem('[RBX + RCX + 0x10]'), 'ECX')
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CheckInstr(Mov)(mem('[EBX + ECX + 0x10]'), 'ECX')
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CheckInstr(Mov)(mem('[EBX + ECX + 0x10]'), 'R8')
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CheckInstr(Not)('RAX')
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CheckInstr(Not)(mem('[RAX]'))
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CheckInstr(ScasB, expected_result="scasb al, byte ptr [rdi]")()
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CheckInstr(ScasW, expected_result="scasw ax, word ptr [rdi]")()
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CheckInstr(ScasD, expected_result="scasd eax, dword ptr [rdi]")()
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CheckInstr(ScasQ, expected_result="scasq rax, qword ptr [rdi]")()
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CheckInstr(CmpsB, expected_result="cmpsb byte ptr [rsi], byte ptr [rdi]")()
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CheckInstr(CmpsW, expected_result="cmpsw word ptr [rsi], word ptr [rdi]")()
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CheckInstr(CmpsD, expected_result="cmpsd dword ptr [rsi], dword ptr [rdi]")()
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CheckInstr(CmpsQ, expected_result="cmpsq qword ptr [rsi], qword ptr [rdi]")()
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CheckInstr(Mov, must_fail=True)('RCX', 'ECX')
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CheckInstr(Mov, must_fail=True)('RCX', mem('[ECX + RCX]'))
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CheckInstr(Mov, must_fail=True)('RCX', mem('[RBX + ECX]'))
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CheckInstr(Mov, must_fail=True)('ECX', mem('[ECX + RCX]'))
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CheckInstr(Mov, must_fail=True)('ECX', mem('[RBX + ECX]'))
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CheckInstr(Add, must_fail=True)('RAX', 0xffffffff)
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# Test some prefix / REP
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assert (x64.Rep + x64.Nop()).get_code() == b"\xf3\x90"
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assert (x64.GSPrefix + x64.Nop()).get_code() == b"\x65\x90"
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assert (x64.OperandSizeOverride + x64.Nop()).get_code() == b"\x66\x90"
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assert (x64.Repne + x64.Nop()).get_code() == b"\xf2\x90"
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code = MultipleInstr()
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code += Nop()
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code += Rep + Nop()
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code += Ret()
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print(repr(code.get_code()))
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assert code.get_code() == b"\x90\xf3\x90\xc3"
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def test_simple_x64_raw_instruction():
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# Test the fake instruction "raw"
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# By emetting a multi-char nop manually
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CheckInstr(Raw, expected_result="nop word ptr [rax + rax]")("66 0F 1F 84 00 00 00 00 00")
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def test_x64_32b_register_lower_upper():
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assert x64.assemble("mov eax, 42") == x64.assemble("mov EAX, 42")
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assert x64.Mov("eax", 42).get_code() == x64.Mov("EAX", 42).get_code()
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assert x64.assemble("mov Eax, [eAx + eaX * 4 + 12]")
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def test_x64_multiple_instr_add_instr_and_str():
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res = x64.MultipleInstr()
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res += x64.Nop()
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res += "ret; ret; label :offset_3; ret"
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res += x64.Nop()
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res += x64.Label(":offset_5")
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assert res.get_code() == b"\x90\xc3\xc3\xc3\x90"
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assert res.labels == {":offset_3": 3, ":offset_5": 5}
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def test_x64_instr_multiply():
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res = x64.MultipleInstr()
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res += (x64.Nop() * 5)
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res += x64.Ret()
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assert res.get_code() == b"\x90\x90\x90\x90\x90\xc3"
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if __name__ == "__main__":
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test_assembler()
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