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first of all, do not know much about encryption.

I need to decrypt some files, change some values ​​then re-encrypt. how to do this deed?

Can some program can do that?

or someone could create a script to do this?

AESKey = geh3iurpamv;kj20984;asdkfjat1af\0
AESIV = 0xDB, 0x0F, 0x49, 0x40
AESMode = ECB
XOR
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closed as not a real question by Duncan, Maarten Bodewes - owlstead, talonmies, Julius, hjpotter92 Jan 30 '13 at 23:35

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
Need a public key and private key: aescrypt.com –  Dan Andrews Jan 30 '13 at 19:57
    
Your encrypted text is meaningless without specifying a specific encoding (e.g., ISO 8859-1). Much better to just give the numerical values of the bytes of the values that are non-printable in ASCII; e.g., in python that 128th char will be \x80 (80 in hex = 128). –  dr jimbob Jan 30 '13 at 20:06
1  
Why are you using ECB mode? shudder –  Nik Bougalis Jan 30 '13 at 20:53
    
You should first learn about encoding and character-encoding. There are a lot of cryptographic questions/answer about that on stackoverflow. Without hexadecimal encoding it could be that your ciphertext will even decrypt. Furthermore, your IV is too short (it should be 16 bytes) and an IV should only be used for CBC mode anyway. –  Maarten Bodewes - owlstead Jan 30 '13 at 22:07
    
That ciphertext is 19 characters, and in UTF-8 character-encoding it will be 26 bytes. This is not a multiple of 16, so it cannot be a valid ciphertext. Again, display all values using hexadecimals. –  Maarten Bodewes - owlstead Jan 30 '13 at 22:16

1 Answer 1

In python, you can use the PyCrypto library. Defining some helper functions:

from Crypto.Cipher import Blowfish, AES 
from Crypto import Random

def encrypt(plaintext, key, crypto_class, mode, iv=None):
    block_size = crypto_class.block_size
    if iv is None:
        iv = Random.new().read(block_size)
    cipher = crypto_class.new(key, getattr(crypto_class, mode), iv)
    pad_len = block_size - (len(plaintext) % block_size)
    padding = ''.join([chr(pad_len)]*pad_len)
    encrypted_msg = iv + cipher.encrypt(plaintext + padding)
    return encrypted_msg

def decrypt(encrypted_msg, key, crypto_class, mode):
    block_size = crypto_class.block_size
    iv = encrypted_msg[:block_size]
    cipher = crypto_class.new(key, getattr(crypto_class,mode), iv)
    padded_msg = cipher.decrypt(encrypted_msg[block_size:])
    pad_len = ord(padded_msg[-1])
    msg = padded_msg[:len(padded_msg)-pad_len]
    return msg

def aes_ecb_encrypt(plaintext, key, iv=None):
    return encrypt(plaintext, key, AES, 'MODE_ECB', iv)

def aes_ecb_decrypt(encrypted_msg, key):
    return encrypt(plaintext, key, AES, 'MODE_ECB')

then you can implement like:

>>> key = "gkw3iurpamv;kj20984;asdkfjat1af\x00"
>>> iv = '\x00\x00\x00\x00\x00\x00\x00\x00\x00\xDB\x0F\x49\0x40'
>>> plaintext = "nID|fPriority|nMin|nMax\n1|0,6|4|6\n2|0,4|6|8\n"
>>> encrypted_msg = aes_ecb_encrypt(plaintext, key, iv)
>>> print repr(encrypted_msg)
'\x00xDB\x00x0F\x00x49\x00x40U\xd5\x18\x9aQu{\xd0\x89\x98\xd7\xe0S\x81\x8dI>\x96\x9d\x86\xf3\x16\xeb\x85\xe4tKRG\x16\x0cr\xde\xd8\xa4X{\xb4\xdb"W\xf4\xa0\xc2z\x08*\x1e'

>>> decrypted_msg = aes_ecb_decrypt(encrypted_msg, key)
>>> print decrypted_msg
nID|fPriority|nMin|nMax
1|0,6|4|6
2|0,4|6|8

Note the way I implemented the AES encryption was to preface the first block (which for AES is 16 bytes) of the encrypted message with the initialization vector. Note without knowing the encoding you can't decrypt your message. Also there's some issues with your initialization vector given -- it should be 16 bytes; you gave only 4 bytes in hex (a byte in is two hexadecimal characters). Similarly your encrypted message should be a multiple of the block size (16) but you gave a message that appears to be 26 chars long.

PS: I largely took this answer from one of my previous answers.

As owlstead pointed out; ECB has no need for an initialization vector as it encrypts each block independently of the result of the previous block; unlike say MODE_CBC which uses the result of the previous block. The only reason I wrote the code using ECB and an initialization vector is that is how Hamilton Jr framed the question.

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2  
ECB does not use an IV, no matter how many times you put it in front of the ciphertext. –  Maarten Bodewes - owlstead Jan 30 '13 at 21:00
    
@owlstead - Hamilton Junior's problem specified an initialization vector and ECB. Yes this makes no sense; however many cryptography API libraries (e.g., pycrypto's) will allow for one for a unified interface. Anyhow, leaving the IV in makes the most sense in this code as it allows you to gracefully change to CBC/CFB/OFB, etc. –  dr jimbob Jan 30 '13 at 21:33
    
OK, I'll vote up, it seems to do what the question intended it to do, and since the provided ciphertext cannot be decrypted, it's probably the closest you can get. –  Maarten Bodewes - owlstead Jan 30 '13 at 22:35
    
@owlstead - Yes, the IV needs to be random (again the code I modified to fit to this question) or you are susceptible to various attacks. But for debugging you may want to reuse a fixed iv to understand how the cryptography was done. Or you may generate a random iv external to your encryption code; e.g., hardware random number generator. –  dr jimbob Jan 30 '13 at 22:37

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