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I have a list of curse words I want to match against other list to remove matches. I normally use list.remove('entry') on an individual basis, but looping through a list of entries against another list - then removing them has me stumped. Any ideas?

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3  
You're writing a profanity filter? Good luck with the Scunthorpe problem! – Johnsyweb May 11 '12 at 22:47
    
Does order matter? (if yes, take the filter, if no, take sets) – georg May 11 '12 at 22:51
up vote 8 down vote accepted

Using filter:

>>> words = ['there', 'was', 'a', 'ffff', 'time', 'ssss']
>>> curses = set(['ffff', 'ssss'])
>>> filter(lambda x: x not in curses, words)
['there', 'was', 'a', 'time']
>>> 

It could also be done with list comprehension:

>>> [x for x in words if x not in curses]
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2  
Making curses a list is a bad idea - in is O(1) for a set, O(n) for a list. – Hugh Bothwell May 11 '12 at 23:32
    
Thanks Hugh, correction made. – Facundo Casco May 14 '12 at 13:57

Use sets.

a=set(["cat","dog","budgie"])
b=set(["horse","budgie","donkey"])
a-b
->set(['dog', 'cat'])
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What if I already have the lists define? Could I do: a = ['bad_word1', 'bad_word2' ] b = ['a', 'b', 'bad_word1' ] set1 = set(a) set2 = set(b) set1 - set2 a = set1 b = set2 – ewhitt May 11 '12 at 22:50
    
notice that sets could mess the order of the words and also would remove duplicate words from your list. Also it should be faster I guess. – Facundo Casco May 11 '12 at 22:56

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