0

When I run this program (It is supposed to encode and decode things in and out of the Caesar cipher) and opt for the decode option, I get the error saying that the string index is out of range. Can anyone tell me how to fix this and tell me why it is happening? The text I entered for it to decode was ibmmp and the key was 1.Thanks.

alphabet = "abcdefghijklmnopqrstuvwxyz"
encdec = input("Would you like to encode or decode a message? ")
if encdec == "decode":
    keyyn = input("Do you know the key to your encoded text? (Y/N) ")
    if keyyn == "Y":
        plaintext = input("Please type in your text ")
        text = plaintext
        key = int(input("What is the key? "))
        for i in range(len(plaintext)):
            letter = plaintext[i]
            alphletter = alphabet.find(letter)
            alphletter = alphletter - key
            if alphletter < 0 or alphletter == 0:
                alphletter = alphletter + 26
                letter = alphabet[alphletter]
                plaintext = plaintext + letter
    else:
        letter = alphabet[alphletter]
        plaintext = plaintext + letter
    print(plaintext.strip(text))
else:
    print("This program is unable to decode a message without the key")
  • 1
    Would it be at all possible to give an example that causes this problem? – The Pineapple Nov 27 '18 at 18:00
  • 2
    You need to show the full traceback. There's lots of places it could be happening, the traceback will tell us which. – Daniel Roseman Nov 27 '18 at 18:01
  • Welcome to StackOverflow. Please read and follow the posting guidelines in the help documentation, as suggested when you created this account. Minimal, complete, verifiable example applies here. We cannot effectively help you until you post your MCVE code and accurately describe the problem. We should be able to paste your posted code into a text file and reproduce the problem you described. It's not acceptable to dump the entire program on us with required input and no debugging attempt. – Prune Nov 27 '18 at 18:02
  • 1
    plaintext = input("Please type in your text ") and keyyn = input("Do aren't indented under your if statements – G. Anderson Nov 27 '18 at 18:03
  • 1
    Looks like there are some indentation issues, especially with if statements. Fixing those and any others would help us. – Jordan Nov 27 '18 at 18:04
1

Problem: ibmmp and key of 1

i works, b gives you an error. Here is why:

alphletter = alphabet.find(letter)              #  ==> 1
alphletter = alphletter - key                   #  ==> 0
if alphletter < 0 or alphletter == 0:           #  ==> True
    alphletter = alphletter + 26                    #   ==> 26 
letter = alphabet[alphletter]                   #  only has indexes from 0 to 25
plaintext = plaintext + letter                  #   ~~~~ crash ~~~~
# (also: indentation error for the last 2 lines)

You can use the modulo-operator % to fix over/underflow:

alphletter = (alphletter - key) % 26   # for -1 : 25

You could also use if alphletter < 0: - this will not handle keys thats wrap around multiple times (f.e. 210) or negative keys -22


Some optimizations

# create a mapping dictionary so we do not need index()
alph = "abcdefghijklmnopqrstuvwxyz"
len_alph = len(alph)

d = {c:i for i,c in enumerate(alph)}                  # mapping char to index
d.update( {v:k for k,v in d.items()} )                # mapping index to char
d.update( {c:i for i,c in enumerate(alph.upper())} )  # mapping CHAR to index

def encode(text,key):
    indexes = [d.get(c,"?") for c in text]      # only mapped things, others get ?
    # if ? use ? else lookup the correct replacement using % to make the index
    # wrap around if above/below the index into alph 
    return ''.join(d.get((i+key)%len_alph if i != "?" else "?","?") for i in indexes)

def decode(text,key):
    return encode(text,-key)


print(encode("tataaaa",5))

Output:

yfyffff
  • Thanks for the help! The program now works. I would use the optimizations however, this was part of the topic we are currently studying which is string manipulation and so I have to do it this way as we have not learnt everything mentioned in that optimized script. – W Murphy Nov 27 '18 at 20:43
  • @WMurphy You'll come there eventually :) glad it helped. – Patrick Artner Nov 27 '18 at 20:46

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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