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I'm trying to RSA encrypt a word 2 characters at a time padding with a space using Python but not sure how I go about it.

For example if the encryption exponent was 8 and a modulus of 37329 and the word was 'Pound' how would I go about it? I know I need to start with pow(ord('P') and need to take into consideration that the word is 5 characters and I need to do it 2 characters at a time padding with a space. I'm not sure but do I also need to use <<8 somewhere?

Thank you

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Please, specify why you do it by hand instead of using existing libraries. –  J.F. Sebastian Nov 2 '11 at 17:59
    
@J.F.Sebastian Because I am not actually learning the Python language just using it purely for the encryption as that is my focus. Where are the existing libraries for what I want to achieve? –  Smush Nov 2 '11 at 19:03
    
In general If you are not writing yourself an encryption library i.e., you're just writing an app that does encryption then you should fight NIH syndrome and use existing libraries especially in such sensitive domain as cryptography. Here's a brief comparison of some Python modules related to crypto: python-crypto.pdf (2009) –  J.F. Sebastian Nov 2 '11 at 19:25

1 Answer 1

Here's a basic example:

>>> msg = 2495247524
>>> code = pow(msg, 65537, 5551201688147)               # encrypt
>>> code
4548920924688L

>>> plaintext = pow(code, 109182490673, 5551201688147)  # decrypt
>>> plaintext
2495247524

See the ASPN cookbook recipe for more tools for working with mathematical part of RSA style public key encryption.

The details of how characters get packed and unpacked into blocks and how the numbers get encoded is a bit arcane. Here is a complete, working RSA module in pure Python.

For your particular packing pattern (2 characters at a time, padded with spaces), this should work:

>>> plaintext = 'Pound'    
>>> plaintext += ' '      # this will get thrown away for even lengths    
>>> for i in range(0, len(plaintext), 2):
        group = plaintext[i: i+2]
        plain_number = ord(group[0]) * 256 + ord(group[1])
        encrypted = pow(plain_number, 8, 37329)
        print group, '-->', plain_number, '-->', encrypted

Po --> 20591 --> 12139
un --> 30062 --> 2899
d  --> 25632 --> 23784
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1  
Thank you but how would I do the above if I was to do it in a terminal rather than write the code out in an editor then run it? Out of interest what it the 256 in there for? –  Smush Nov 2 '11 at 19:08
1  
The multiply by 256 is the same as the << 8 that you originally considered. It is a way of combining two bytes into a single number less than 32536. The snippets above are done in a terminal and not in a script created by an editor. –  Raymond Hettinger Nov 2 '11 at 19:16
    
I would really use the square and multiply algorithm for exponentiation: en.wikipedia.org/wiki/Exponentiation_by_squaring –  Nishant Nov 2 '11 at 21:16
3  
Python's pow() function already does that. –  Raymond Hettinger Nov 2 '11 at 21:36
3  
Python's pow() function already does that! –  Raymond Hettinger Nov 2 '11 at 22:04

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