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Is there a faster way to do this in python?

[f for f in list_1 if not f in list_2]

list_1 and list_2 both consist of about 120.000 strings. It takes about 4 minutes to generate the new list.

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2 Answers 2

up vote 9 down vote accepted

If you put list_2 into a set, it should make the containment checking a lot quicker:

s = set(list_2)
[f for f in list_1 if not f in s]

This is because x in list is an O(n) check, while x in set is constant-time.

Another way is to use set-difference:

list(set(list_1).difference(set(list_2)))

However, this probably won't be faster than the first way - also, it'll eliminate duplicates from list_1 which you may not want.

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1  
You should transform list_2 to a set beforehand, not in the list comprehension. Otherwise you convert it into a set everytime, and this is not really speeding up things ;) –  Felix Kling Jun 9 '10 at 6:18
    
@Felix - oh, of course! thanks, updated. –  tzaman Jun 9 '10 at 6:28
    
putting list_2 in a set improved list generation time from 233.66 seconds to 0.07 seconds! But as Felix Kling said: I had to transform to a set beforehand. list(set(list_1).difference(set(list_2))) took 0.12 seconds and would also fit my use. –  Hobhouse Jun 9 '10 at 6:35

Depending on what you want to do with the new list, it might be sufficient if you do some kind of lazy evaluation with itertools.ifilter() (so you don't spent time, building the new list beforehand, but you should transform list_2 to a set before in any case, so lookup is O(1)):

import itertools:
set_2 = set(list_2)

for f in itertools.ifilter(lambda x: x not in set_2, list_1):
    # do something with f
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This worked great, and shaved list generation from from 233.66 seconds to 0.09 seconds! –  Hobhouse Jun 9 '10 at 6:37

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