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I made a substitution cipher which generates random dictionary with which the plain text characters are replaced.

Here is the code:

import random

alphabets=' ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789~!@#$%^&*()_+|:"<>-=[];,.?'
class HCPyEncoder:    
    def encode(self,plaintext):       
        length=len(alphabets)
        arr=range(0,length)
        random.shuffle(arr)
        pad,cipher="",""
        dictionary={}        
        for i in range(0,length):
            pad=pad+alphabets[arr[i]]
            dictionary[alphabets[i]]=alphabets[arr[i]]
        for i in plaintext:
            if i in dictionary:
                i=dictionary[i]
            cipher=cipher+i
        return cipher,pad

    def decode(self,ciphertext,pad):
        dictionary={}
        plaintext=""
        for i in range(len(pad)):
            dictionary[pad[i]]=alphabets[i]

        for i in ciphertext:
            if i in dictionary:
                i=dictionary[i]
            plaintext=plaintext+i
        return plaintext

encoder=HCPyEncoder()
ciphertext,pad=encoder.encode("Psycho Coder")
plaintext=encoder.decode(ciphertext,pad)
print "Ciphertext : ",ciphertext
print "Plaintext : ",plaintext

But the problem is that every time it generates a new key or pad, so if the secret message is sent to someone it cannot be recovered.

So I want to give it a fixed substitution dictionary, and not a random one, which will be used for generating every cipher text.

I am a beginner at python so please help me with the code.

share|improve this question
    
Put the code here. –  Marcin Jul 5 '13 at 20:21
    
use a seed to initialize the "random" , that seed will be the key you and your friend need to have in common to communicate. –  Markus Mikkolainen Jul 5 '13 at 20:23
    
The reason Marcin asked that you put the code in your question is that stackoverflow questions should be self-contained. They are not useful to new users in the future is the link to your code breaks. The answer I think is going to be easy but hopefully no one will give you an answer until you add the code. –  PyNEwbie Jul 5 '13 at 20:26
    
For cryptographic purposes i use the more random python function os.urandom(n) –  kyle k Jul 6 '13 at 1:09

1 Answer 1

up vote 1 down vote accepted

It seems to me that you would simply eliminate the following line:

random.shuffle(arr)

As this is what generates a new pad at each run of the code. Replace that line with an array of a given value for each index, 0-25; I suppose you can choose, i.e. arr= [5,2,20...]

share|improve this answer
    
can you please explain it with some code. I am an absolute beginner in python. My main languages are Java and .NET aqnd I am good in them But at present I have to learn python. –  Ritz Jul 6 '13 at 5:55
    
I solved the problem so no worries now –  Ritz Jul 6 '13 at 7:03

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