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I'm following the RSA algorithm from the Wiki: http://en.wikipedia.org/wiki/RSA_(algorithm)

I am using Python 3.3.0 and I'm trying to do RSA Encryption and I ran into two problems that I don't know how to do.

In the Encryptions class, my methods all need to be indented one level in to indicate that they are methods of the class and are not global functions.

When the main script asks for input at the end, if I just hit return, an exception is thrown that Python reached an unexpected EOF.

How can I do that ?

My code so far:

Modular.py

def _base_b_convert(n, b):
   if b < 1 or n < 0:
      raise ValueError("Invalid Argument")

   q = n
   a = []
   while q != 0:
      value = int(q % b)
      a.append(value)
      q =int(q / b)
   return a


def mod_exp(base, n, mod):
    if base < 0 or n < 0 or mod < 0:
    raise ValueError("Invalid Argument")
    a = (_base_b_convert(n, 2))
    x = 1
    pow = base % mod
    for i in range(0, len(a)):
    if a[i] == 1:
        x = (x * pow) % mod
    pow = pow**2 % mod
    return x

main.py

from encryptions import Encryptions

def main():
    enc = Encryptions()
    message = enc.encrypt(message)
    print(message)
    print()
    print("Decrypting message:")
    message = enc.decrypt(message)
    print(message)

    input("--Press any key to end--")

if __name__ == '__main__':
    main()
share|improve this question
    
Are you using Python 2? If yes, the input function does not what you think it does. It executes the given string as Python code. You want to use raw_input instead. Note that in Python 3, input does what raw_input does in Python 2. –  Niklas B. Feb 17 '13 at 15:05
    
im using 3.3.0 ? –  Ris Feb 17 '13 at 15:07
    
@Agape: are you sure? Can you run python -v please. –  Linuxios Feb 17 '13 at 15:08
    
What editor are you using to write this code? You need to use one that understands python, like Eclipse with PyDev installed. –  GregS Feb 17 '13 at 15:11
    
if I put raw_input it gives me syntax error –  Ris Feb 17 '13 at 15:13

2 Answers 2

up vote 2 down vote accepted

input() in Python 2 is not what you think it is -- rather, it evaluates the string inputted as Python code, which is not what you want. Instead, use raw_input.

As for your indentation problem, that's just Python syntax. Nothing you can do.

share|improve this answer

Your indentation is off. Sometimes you have 3 spaces, sometimes 4 and sometimes 5.

Another example is here

def mod_exp(base, n, mod):
    if base < 0 or n < 0 or mod < 0:
    raise ValueError("Invalid Argument")
    a = (_base_b_convert(n, 2))
    x = 1
    pow = base % mod
    for i in range(0, len(a)):
    if a[i] == 1:
        x = (x * pow) % mod
    pow = pow**2 % mod
    return x

it should look more like

def mod_exp(base, n, mod):
    if base < 0 or n < 0 or mod < 0:
        raise ValueError("Invalid Argument")
    a = (_base_b_convert(n, 2))
    x = 1
    pow = base % mod
    for i in range(0, len(a)):
        if a[i] == 1:
            x = (x * pow) % mod
        pow = pow**2 % mod
    return x

Whenever you use if, while, for etc etc you need to indent one level.

(These problems maybe just because it badly copied into stackoverflow?)

share|improve this answer
    
sorry, yeah its badly copied into stackoverflow... –  Ris Feb 17 '13 at 15:16

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