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I am trying to encrypt all possible strings in a defined character set then compare them to a hash given by user input.

This is what I currently have

import string
from itertools import product
import crypt

def decrypt():
    hash1 = input("Please enter the hash: ")
    salt = input("Please enter the salt: ")
    charSet = string.ascii_letters + string.digits
    for wordchars in product(charSet, repeat=2):
        hash2 = crypt.METHOD_CRYPT((wordchars), (salt))
        print (hash2)

Obviously its not finished yet but I am having trouble encrypting "wordchars"

Any help is appreciated

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What's your "trouble"? Otherwise this isn't a real question. –  martineau Nov 15 '12 at 16:49
    
the trouble is that it isnt working. –  user1816467 Nov 15 '12 at 18:01
    
I meant in what sense is it not working? –  martineau Nov 15 '12 at 18:04
    
i get this error message Traceback (most recent call last): File "<stdin>", line 1, in <module> File "<stdin>", line 4, in decrypt TypeError: must be string, not tuple –  user1816467 Nov 15 '12 at 18:18
1  
you could edit your question and put properly formatted traceback there –  J.F. Sebastian Nov 16 '12 at 2:14

4 Answers 4

up vote 0 down vote accepted

crypt.METHOD_CRYPT is not callable so the traceback that you provided doesn't correspond to the code in your question. crypt.METHOD_CRYPT could be used as the second parameter for crypt.crypt() function.

Also as @martineau pointed out wordchars is a tuple but you need a string to pass to the crypt.crypt() function.

From the docs:

Since a few crypt(3) extensions allow different values, with different sizes in the salt, it is recommended to use the full crypted password as salt when checking for a password.

To find a plain text from a defined character set given its crypted form: salt plus hash, you could:

from crypt import crypt
from itertools import product
from string import ascii_letters, digits

def decrypt(crypted, charset=ascii_letters + digits):
    # find hash for all 4-char strings from the charset
    # and compare with the given hash
    for candidate in map(''.join, product(charset, repeat=4)):
        if crypted == crypt(candidate, crypted):
            return candidate

Example

salt, hashed = 'qb', '1Y.qWr.DHs6'
print(decrypt(salt + hashed))
# -> e2e4
assert crypt('e2e4', 'qb') == (salt + hashed)

The assert line makes sure that calling crypt with the word e2e4 and the salt qb produces qb1Y.qWr.DHs6 where qb is the salt.

share|improve this answer
    
Brilliant, it works thank you very much. Just one other little thing is there a way i can set the "repeat" bit to search a range so it finds hash for character strings between 1-10 for example –  user1816467 Nov 16 '12 at 12:56
    
@LWH91: note: for repeat=10 it would take around a century if repeat=4 executes in a second. Otherwise it is itertools.chain.from_iterable(product(charset, repeat=r) for r in range(8)) for 0-7 case. –  J.F. Sebastian Nov 16 '12 at 13:13
    
Hi again, your solution works fine for the hash you gave but when I try any hash I have it fails to crack it. My hashs are all in this format: aaacT.VSMxhms. Am I right in assuming the salt is "aa" and the hashed string is "acT.VSMxhms". I know that this hash is the word "moth". What hash format was the hash you used in your example and what does the assert line do? –  user1816467 Nov 20 '12 at 21:42
    
@LWH91: run crypt("moth", "aa") and see what it returns. I've updated the answer to describe the assert. –  J.F. Sebastian Nov 20 '12 at 22:06
    
what just run it in the terminal? thanks for clearing up the assert line –  user1816467 Nov 20 '12 at 22:10

Hmm may be better use bcrypt? https://github.com/fwenzel/python-bcrypt

share|improve this answer

Below is a simple program that does what you asked:

def gen_word(charset, L):
    if L == 1: 
        for char in charset:
            yield char
        raise StopIteration
    for char in charset:
        for word in gen_word(charset, L - 1):
            yield char + word


def encrypt(word):
    '''Your encrypt function, replace with what you wish'''
    return word[::-1]


charset = ['1', '2', '3']


user_word = '12'
user_hash = encrypt(user_word)
max_length = 3


for length in range(1, max_length):
    for word in gen_word(charset, length):
        if encrypt(word) == user_hash:
            print 'Word found: %s' % word

Basically, it uses a python generator for generating words from the charset of fixed length. You can replace the encrypt function with whatever you want (in the example is string reversal used as hash).

Note that with actual modern hashing methods, it'll take forever to decrypt an ordinary password, so I don't think you could actually use this.

share|improve this answer
    
can you explain more how this works please? –  user1816467 Nov 15 '12 at 18:02

Here's my completely different answer based on J.F. Sebastian's answer and comment about my previous answer. The most important point being that crypt.METHOD_CRYPT is not a callable even though the documentation somewhat confusingly calls a hashing method as if it were a method function of a module or an instance. It's not -- just think of it as an id or name of one of the various kinds of encryption supported by the crypt module.

So the problem with you code is two-fold: One is that you were trying to use wordchars as a string, when it actually a tuple produced by product() and second, that you're trying to call the id crypt.METHOD_CRYPT.

I'm at a bit of a disadvantage answering this because I'm not running Unix, don't have Python v3.3 installed, and don't completely understand what you're trying to accomplish with your code. Given all those caveats, I think something like the following which is derived from you code ought to at least run:

import string
from itertools import product
import crypt

def decrypt():
    hash1 = input("Please enter the hash: ")
    salt = input("Please enter the salt: ")
    charSet = string.ascii_letters + string.digits
    for wordchars in product(charSet, repeat=2):
        hash2 = crypt.crypt(''.join(wordchars), salt=salt)  # or salt=crypt.METHOD_CRYPT
        print(hash2)
share|improve this answer
    
METHOD_CRYPT is not callable. See my answer –  J.F. Sebastian Nov 16 '12 at 2:18

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