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In Python, is there a way to check for duplicate items in a list, and if there is, then remove them? I'm looking for something like this:

>>> def check():
>>>    # put code here
>>> list = ["foo", "foo", "bar"]
>>> check(list)
>>> list
["foo", "bar"]
>>> list2 = ["foo", "bar", "example"]
>>> check(list2)
>>> list2
["foo", "bar", "example"]

Thanks in advance!

Update:

Guys, I'm really new at programming, and the order doesn't really matter. So a for loop should be fine. But thanks anyways!

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5 Answers 5

up vote 2 down vote accepted
>>>lis = ["foo", "foo", "bar"]
>>>lis=list(set(lis))
>>>print(lis)
['foo','bar']
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TYSM! You're a lifesaver! –  bladezzz Mar 31 '12 at 17:53

A set might be a better data structure here, as it can't have duplicates in the first place. You can also use it as a tool to uniquify your list:

>>> lst = ["bar", "foo", "foo"]
>>> set(lst)
set(['foo', 'bar'])
>>> list(set(lst))
['foo', 'bar']

Or if you need to preserve the order, you can keep your data in an OrderedDict:

>>> from collections import OrderedDict
>>> d = OrderedDict.fromkeys(lst)
>>> d
OrderedDict([('bar', None), ('foo', None)])
>>> list(d)
['bar', 'foo']

Note that for performance reasons it would be more ideal to use the right data structure in the first place, rather than using a raw list and removing duplicates from it after every operation using one of these transformations.

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Much better. On Python 2 it's just d.keys() and if a dictview works (which it usually will where a tuple would) you can use the same on Python 3. –  agf Mar 31 '12 at 18:08
    
@agf: I don't see what you mean by "usually will where a tuple would". KeysView doesn't even support indexing. –  Niklas B. Mar 31 '12 at 18:20
    
I was trying to imply you can't mutate it yourself, but you can iterate over it, and it has a len -- that it's an immutable sized iterable container. A tuple wasn't a good example :) –  agf Mar 31 '12 at 18:26
    
@agf: Yeah, depends on the use case of course. –  Niklas B. Mar 31 '12 at 18:27

If you need to retain the order in the list:

s = set()
new_list = [v for v in old_list if not (v in s or s.add(v))]

If v is not yet in s, then s.add(v) is evaluated and returns None, so the value is taken. Otherwise, v in s is True, and the value is skipped.

If you don't care of the order, just use set() as already recommended.

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This IDLE session will show a convenient Python way to remove duplicate items by converting to a set, where duplicates are removed by converting.

>>>lis = ["foo", "foo", "bar"]
>>>list(set(lis))
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If using python > 2.4

mylist = ["foo", "foo", "bar"]

myList = sorted(set(myList))

Output

['bar', 'foo']

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