Security and Cryptography in Python - Block Cipher(2)
Security and Cryptography in Python - Block Cipher(2)
Double DES
from pyDes import *
import random
message = "01234567"
key_11 = random.randrange(0, 256)
key_1 = bytes([key_11, 0, 0, 0, 0, 0, 0, 0])
key_21 = random.randrange(0, 256)
key_2 = bytes([key_21, 0, 0, 0, 0, 0, 0, 0])
iv = bytes([0]*8)
k1 = des(key_1, ECB, iv, pad=None, padmode=PAD_PKCS5)
k2 = des(key_2, ECB, iv, pad=None, padmode=PAD_PKCS5)
# Alice sending the encrypted message
cipher = k1.encrypt(k2.encrypt(message))
print("Key 11:", key_11)
print("Key 21:", key_21)
print("Encrypted:", cipher)
# This is Bob
message = k2.decrypt(k1.decrypt(cipher))
print("Decrypted:", message)
# Eve's attack on Double DES
lookup = {}
for i in range(256):
key = bytes([i, 0, 0, 0, 0, 0, 0, 0])
k = des(key, ECB, iv, pad=None, padmode=PAD_PKCS5)
lookup[k.encrypt(message)] = i
for i in range(256):
key = bytes([i, 0, 0, 0, 0, 0, 0, 0])
k = des(key, ECB, iv, pad=None, padmode=PAD_PKCS5)
if k.decrypt(cipher) in lookup:
print("Key 11:", i)
print("Key 21:", lookup[k.decrypt(cipher)])
key_1 = bytes([i, 0, 0, 0, 0, 0, 0, 0])
key_2 = bytes([lookup[k.decrypt(cipher)], 0, 0, 0, 0, 0, 0, 0])
k1 = des(key_1, ECB, iv, pad=None, padmode=PAD_PKCS5)
k2 = des(key_2, ECB, iv, pad=None, padmode=PAD_PKCS5)
print("Eve break double DES", k2.decrypt(k1.decrypt(cipher)))
break
Running result:
相信未来 - 该面对的绝不逃避,该执著的永不怨悔,该舍弃的不再留念,该珍惜的好好把握。