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Why does this not work?

re.sub('\\b[a@](\\W|[a@])*[s5$](\\W|[s5$])*[s5$](\\W|[s5$])*($|\\W)', '*', '@ss')

I do not see why @ss is not replaced by *. Similarly, @55 is not replaced.

These are replaced: a55, a5s, as5, ass

Thank you!

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just clarifying that s looks like 5 and $ and 'a' looks like @ –  Squall Leohart Aug 16 '12 at 23:27
    
Wouldn't re.sub(r'[a@][s5$]{2}', '*', '@ass') be much simpler and give the same result, or am I missing something? –  BrtH Aug 16 '12 at 23:36
    
yes, that would work. but iam writing a general regex that would work for everything :) –  Squall Leohart Aug 16 '12 at 23:40

3 Answers 3

up vote 2 down vote accepted

It's because @ is not a word character, and thus the first \b is not matched.

This is my suggestion:

re.sub('(\\ba|@)(\\W|[a@])*[s5$](\\W|[s5$])*[s5$](\\W|[s5$])*($|\\W)', '*', '@ss')

(Replacing \b[a@] with (\ba|@))

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I see. Thank you –  Squall Leohart Aug 16 '12 at 23:34

You don't have a pair of parentheses around the first section. Try this:

re.sub('(\\b[a@])*(\\W|[a@])*[s5$](\\W|[s5$])*[s5$](\\W|[s5$])*($|\\W)', '*', '@ss')
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If you're trying a sort of "profanity" check - I would take the logic out the regex.

look_alike = {'@': 'A', '$': 'S'}
test_string = ''.join(look_alike.get(c, c) for c in your_string.upper()) # also look at `string.translate`

Then if 'ASS' in test_string - or similar with word boundaries using an re.

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