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I want to create a RE object that matches if the string contains at least one of the elements of a list.

For example, if bad_words["censored","stupid","idiot"] is the list, the RE would match if at least one of them exist.

This is my RE: re.compile("(%s)+" % ("|".join(bad_words)), re.IGNORECASE)

Problem is that 'youareanidiot' doesn't match. What do I have to change in order to make it matched?

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1  
Do you mean contain instead of consists? – Björn Pollex May 30 '11 at 13:57
up vote 4 down vote accepted

Are you using re.match? Try re.search. See Matching vs. Searching from the Python regex docs.

import re
bad_words = ["stupid", "idiot"]
regex = re.compile("|".join(re.escape(word) for word in bad_words), re.IGNORECASE)
print regex.search('youareanidiot').group()

# prints "idiot"
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While it's possible to do this with a regular expression, I think you are better off without a regex here. To test a string s against bad_words, try something like

s = s.lower()
any(bad in s for bad in bad_words)

Your bad_words should all be lower case.

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+1 for any(), I always forget that one (and all()) :) – Simon Whitaker May 30 '11 at 14:02
    
I just did some tests - looks like CPython's compiled regex will beat the "in" lookup by a noticeable difference if the string being searched is over a certain threshold (equalized at about 500 chars for me). also looks like CPython's "in" increases in complexity for longer strings even if the match is at the start :) – lunixbochs May 30 '11 at 14:07
1  
@lunixbochs: Interesting -- especially the last statement! By "better off" I didn't really mean performance, but rather code readability and avoiding pitfalls. E.g. your code does not quote the items of bad_words for the use in the regular expression using re.escape(), which might introduce hard-to-find errors at a later time. – Sven Marnach May 30 '11 at 14:35
    
good point on escape - I didn't really think to modify his regex line aside from the bad match vs search... I also realized he's spending extra time on the + match. the new code without group or + ran slightly faster even on that short 'youareanidiot' string! – lunixbochs May 30 '11 at 14:39
    
more tests - compiled regex looks faster if the match is near the beginning, 'in' looks faster if it's near the end. at this point I'd go for your implementation for simplicity any(bad.lower() in s for bad in bad_words) :) – lunixbochs May 30 '11 at 14:44

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