-2

So I'm trying to encrypt my own message but its coming out in symbols instead of letters.

Here is my code below

    while b != 0:
        a, b = b, a % b
    return a

    s0, s1 = 1, 0
    t0, t1 = 0, 1

    while b != 0:
        q = a // b
        a, b = b, a % b
        s0, s1 = s1, s0 - q * s1
        t0, t1 = t1, t0 - q * t1

    return a, (s0, t0)

2
  • 2
    Why don't you use the fixed code from your old question, but delete it instead? This code works, i.e. it encrypts and decrypts the data correctly: jdoodle.com/ia/16XZ! And to find the bug in the new code, you only need to compare the new code with the old code: This way you can easily find the cause of your issue, it is the missing if a < b: a, b = b, a block in EEA(): jdoodle.com/ia/16Yv.
    – Topaco
    Commented Jul 11 at 5:35
  • 2
    You can of course also apply the solution from the answer (which performs the determination of the modular mult. inverse directly), but I assume that the purpose of this exercise is to implement the Extended Euclidean Algorithm, whose implementation is the actual cause of your problem.
    – Topaco
    Commented Jul 11 at 5:41

1 Answer 1

1

You're not computing the private key correctly. The private key has to be the inverse of the public key, modulo the totient.

Replace this:

    d = t % phi_n
    return d

with this:

    return pow(e,-1,phi_n)

Output:

Public Key (n, e): (3233, 7)
Private Key (n, d): (3233, 1783)
Encoded message: [1298, 3052, 1818, 1762, 2774, 567, 1297, 96, 3071, 1797, 96, 3183, 863, 3071, 1797, 2774, 863, 3183, 1297, 1877, 2872, 2774, 731, 3183, 1297, 2774, 3052, 1818, 1794, 3071, 2774, 3020, 576, 2774, 731, 3183, 1297, 2774, 3052, 1818, 2872, 2774, 1762, 3052, 3071, 2774, 24, 3052, 3183, 3020, 24, 3071, 2774, 3183, 576, 2774, 3183, 1544, 3071, 2080]
Decoded message: What superpower would you have if you had the choice of one?
1
  • Thanks for the update, i figured it out after a couple of hours.
    – Lonkin_p
    Commented Jul 13 at 4:02

Not the answer you're looking for? Browse other questions tagged or ask your own question.