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Still can't quite get this to work. My question is about how to make the decryption line work. Here is what I have written:

class IVCounter(object):
    @staticmethod
    def incrIV(self):
        temp = hex(int(self, 16)+1)[2:34]
        return array.array('B', temp.decode("hex")).tostring()


def decryptCTR(key, ciphertext):

    iv = ciphertext[:32] #extracts the first 32 characters of the ciphertext

    #convert the key into a 16 byte string
    key = array.array('B', key.decode("hex")).tostring()

    print AES.new(key, AES.MODE_CTR, counter=IVCounter.incrIV(iv)).decrypt(ciphertext)
    return

My error message is:

ValueError: 'counter' parameter must be a callable object

I just can't figure out how pycrypto wants me to organize that third argument to new.

Can anyone help? Thanks!

EDIT New code after implementing the suggestions below. Still stuck!

class IVCounter(object):
    def __init__(self, start=1L):
        print start #outputs the number 1 (not my IV as hoped)
        self.value = long(start)

   def __call__(self):
        print self.value  #outputs 1 - need this to be my iv in long int form
        print self.value + 1L  #outputs 2
        self.value += 1L
        return somehow_convert_this_to_a_bitstring(self.value) #to be written

def decryptCTR(key, ciphertext):

    iv = ciphertext[:32] #extracts the first 32 characters of the ciphertext
    iv = int(iv, 16)

    #convert the key into a 16 byte string
    key = array.array('B', key.decode("hex")).tostring()

    ctr = IVCounter()
    Crypto.Util.Counter.new(128, initial_value = iv)

    print AES.new(key, AES.MODE_CTR, counter=ctr).decrypt(ciphertext)
    return

EDIT STILL can't get this to work. very frustrated and completely out of ideas. Here is the latest code: (please note that my input strings are 32-bit hex strings that must be interpreted in two-digit pairs to convert to long integers.)

class IVCounter(object):
    def __init__(self, start=1L):
        self.value = long(start)

    def __call__(self):
        self.value += 1L
        return hex(self.value)[2:34]

def decryptCTR(key, ciphertext):
    iv = ciphertext[:32] #extracts the first 32 characters of the ciphertext
    iv = array.array('B', iv.decode("hex")).tostring()

    ciphertext = ciphertext[32:]

    #convert the key into a 16 byte string
    key = array.array('B', key.decode("hex")).tostring()

    #ctr = IVCounter(long(iv))
    ctr = Crypto.Util.Counter.new(16, iv)

    print AES.new(key, AES.MODE_CTR, counter=ctr).decrypt(ciphertext)
    return

TypeError: CTR counter function returned string not of length 16

share|improve this question

1 Answer 1

up vote 9 down vote accepted

In Python, it is perfectly valid to treat functions as objects. It is also perfectly valid to treat any object that defines __call__(self, ...) as a function.

So what you want might something like this:

class IVCounter(object):
    def __init__(self, start=1L):
        self.value = long(start)
    def __call__(self):
        self.value += 1L
        return somehow_convert_this_to_a_bitstring(self.value)

ctr = IVCounter()
... make some keys and ciphertext ...
print AES.new(key, AES.MODE_CTR, counter=ctr).decrypt(ciphertext)

However, PyCrypto provides a counter method for you that should be much faster than pure Python:

import Crypto.Util.Counter
ctr = Crypto.Util.Counter.new(NUM_COUNTER_BITS)

ctr is now a stateful function (and, simultaneously, a callable object) that increments and returns its internal state every time you call it. You can then do

print AES.new(key, AES.MODE_CTR, counter=ctr).decrypt(ciphertext)

just as before.

Here's a working example using Crypto.Cipher.AES in CTR mode with a user-specified initialization vector:

import Crypto.Cipher.AES
import Crypto.Util.Counter

key = "0123456789ABCDEF" # replace this with a sensible value, preferably the output of a hash
iv = "0000000000009001" # replace this with a RANDOMLY GENERATED VALUE, and send this with the ciphertext!

plaintext = "Attack at dawn" # replace with your actual plaintext

ctr = Crypto.Util.Counter.new(128, initial_value=long(iv.encode("hex"), 16))

cipher = Crypto.Cipher.AES.new(key, Crypto.Cipher.AES.MODE_CTR, counter=ctr)
print cipher.encrypt(plaintext)
share|improve this answer
1  
Sure thing. With CTR mode, the initialization vector is simply the initial value of the counter. If you want to pass a specific IV to the counter you're creating, you need only do ctr = Crypto.Util.Counter.new(NUM_COUNTER_BITS, initial_value = 90000001L), where initial_value is your IV in long-integer form. The reason why we consider 'ctr' to be a stateful function is because it stores its own counter internally. Every time ctr() is called, its internal counter increments by one. So by initializing this function with the IV you need, you are then incrementing 'your' IV. –  atomicinf Jul 26 '12 at 1:23
1  
In case you're looking at my example and not quite understanding it, the callable object (think of it as a C++ functor) can take an argument 'start' when initialized; then, its own internal counter gets set to whatever you want. Every time you call that particular instance of IVCounter, its own internal counter (which you initialized) gets incremented. You could in principle have multiple instances of IVCounter defined, all mutually independent. –  atomicinf Jul 26 '12 at 1:29
1  
Sure thing @usr55410. Two problems with your current code: you don't use the variable iv after you've initialized it; if you're using my IVCounter, you want to say ctr = IVCounter(long(iv)), or similar, to set the counter's initial state. If you're using Crypto.Util.Counter (preferred for speed), you want to say ctr = Crypto.Util.Counter.new(256, long(iv)). The second problem (which the preceding also solves) is that Crypto.Util.Counter.new returns a function, which you don't assign anywhere. –  atomicinf Jul 26 '12 at 4:03
1  
Additionally, be careful of another thing: PyCrypto's encryption routines expect (and return) bytestrings, which are most certainly not remotely legible while in encrypted form. You'll need to figure out how to convert strings to and from their hexadecimal representation; it's not a hard problem, solved e.g. at stackoverflow.com/questions/2340319. And one last thing: since you typically want IVs to be long (much longer than int can usually provide), you'll want to declare iv with long() instead of int(). –  atomicinf Jul 26 '12 at 4:07
1  
1: My key string is binary data; my IV string is a hexstring (e.g. baadf00d). 2: You need to reset the counter before decrypting, i.e. create a new counter with the same IV, then create a new cipher context using the new counter, and use that to decrypt. –  atomicinf Jul 26 '12 at 20:16

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