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I've got a dictionary full of lists called "possible" with keys 'a' - 'z'. Each key has the value of a list with 'a' through 'z' in it. Essentially, 26 alphabets.

I clean a string into lowercase and strip the punctuation and save each word into a list named "cleanedWords".

I want to go through the list and if the word in the list has only two letters, remove the value 'c' from the key for both of the letters in the two letter word. Then move on the the next 2 letter word and repeat.

This is the snippet with the error:

for y in cleanedWords:
    if len(y) == 2:
        for i in y:
            possible[i].remove('c')

Here is the error:

Traceback (most recent call last):
  File "F:\python\crypto\cipher.py", line 83, in <module>
    possible[i].remove('c')
ValueError: list.remove(x): x not in list

Clearly I am doing something wrong. Can someone point me in the right direction? Can I not call on "y" how I did?

Tyler

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1  
print repr(possible[i]) in the loop before the .remove(). Make sure possible[i] has a 'c' in it. –  Tim Nov 6 '12 at 3:29
2  
You are calling possible[i].remove('c') multiple times, possibly with duplicate values of i (depending on what cleanedWords contains). As Tim said, you should check if possible[i] contains c before removing it. –  del Nov 6 '12 at 3:31
    
Thanks guys, I see it now. repr made it clear. –  Tyler Seymour Nov 6 '12 at 3:34
    
I'll post my fix for good measure when I'm done –  Tyler Seymour Nov 6 '12 at 3:34
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2 Answers

for y in cleanedWords:
    if len(y) == 2:
        print y
        for i in y:
            try:
                possible[i].remove('c')
            except ValueError:
                pass
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Thanks for the tips guys –  Tyler Seymour Nov 6 '12 at 6:29
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Ok, i am not familiar with your(share it if you want the detailed answer) data structure, but it looks for me that you need to replace your code with:

for word in (x for x in cleanedWords if len(x) == 2):
    for ch in word:
        if 'c' in possible[i]:
            possible[ch].remove('c')
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possible[i] is a list, as confirmed by the traceback. –  Tim Nov 6 '12 at 3:41
    
@Tim thank you, modified my answer –  Artsiom Rudzenka Nov 6 '12 at 3:45
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