Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

This question already has an answer here:

I have list1 and list2. list2 is a group of words that have to be removed from list1, for example:

list1=['paste', 'text', 'text', 'here', 'here', 'here', 'my', 'i', 'i', 'me', 'me']


Desired output:

list3=['paste', 'text', 'text', 'here', 'here', 'here', 'my']

I have tried different versions using 'for' but no results so far.

Any ideas would be appreciated!

share|improve this question

marked as duplicate by Bhargav Rao python Oct 14 at 15:48

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

Nice, clear, contained and short question, keep up the good questions. – hetepeperfan Jul 29 '13 at 21:53

2 Answers 2

up vote 9 down vote accepted

Use list comprehension:

>>> list1 = ['paste', 'text', 'text', 'here', 'here', 'here', 'my', 'i', 'i', 'me', 'me']
>>> list2 = ["i","me"]
>>> list3 = [item for item in list1 if item not in list2]
>>> list3
['paste', 'text', 'text', 'here', 'here', 'here', 'my']

NOTE: Lookups in lists are O(n), consider making a set from list2 instead - lookups in sets are O(1).

share|improve this answer
Always use a list comprehension. Though for someone new to Python I feel like list comprehensions should be explained. – Slater Tyranus Jul 29 '13 at 21:47
Note that for just 2 items, making list2 a tuple will out-perform a set in most cases... – Jon Clements Jul 29 '13 at 21:49
@JonClements as always, great comment, thank you! – alecxe Jul 29 '13 at 21:50
as you can tell i'm still learning, i had no clue this could be done, it works like a charm, thanks!!!!! – rodrigocf Jul 30 '13 at 20:51

What about leveraging set arithmetics?

diff = set(list1) - set(list2)
result = [o for o in list1 if o in diff]

Or even better (more efficient):

set2 = set(list2)
result = [o for o in list1 if o not in set2]
share|improve this answer
It's much less expensive to just check that an element of list1 (without making it a set) is not in a set of list2... – Jon Clements Jul 29 '13 at 21:55
Would the removal of duplicates in list1 pay for the set overhead? In the example data there are repeated items - where's the breakeven likely to show up? – theodox Jul 30 '13 at 5:08

Not the answer you're looking for? Browse other questions tagged or ask your own question.