8

Is

list(set(some_list))

a good way to remove duplicates from a list? (Python 3.3 if that matters)

(Edited to address some of the comments... it was perhaps too terse before).

Specifically,

  • is it at least comparable, in terms of efficiency (mainly speed but also memory), if not better than writing ones own algorithm; it's clearly the most concise code
  • is it reliable? any situations where it breaks? (one has been mentioned already ... list items need to be hashable)
  • is there a more Pythonesque way of doing it?
11
  • 1
    Yes, sure. So what is your question?
    – Remi Guan
    Commented Oct 1, 2015 at 4:33
  • 4
    What are your metrics for determination of good? What alternatives are being compared against? Is this in terms of time complexity and/or memory consumption? Commented Oct 1, 2015 at 4:38
  • 2
    Not if the list items aren't hashable.
    – chepner
    Commented Oct 1, 2015 at 5:01
  • 4
    Do you need to maintain the order of items in the list? Commented Oct 1, 2015 at 5:19
  • 2
    @EelkeSpaak that's worth an answer. Commented Oct 1, 2015 at 15:18

3 Answers 3

5

The method you show is probably shortest and easiest to understand; that would make it Pythonic by most definitions.

If you need to preserve the order of the list, you can use collections.OrderedDict instead of set:

list(collections.OrderedDict((k, None) for k in some_list).keys())

Edit: as of Python 3.7 (or 3.6 if you're trusting) it's not necessary to use OrderedDict; a regular dict shares the property of retaining insertion order. So you can rewrite the above:

list({k: None for k in some_list}.keys())

If the elements aren't hashable but can be sorted, you can use itertools.groupby to remove duplicates:

list(k for k,g in itertools.groupby(sorted(some_list)))

Edit: the above can be written as a list comprehension which some might consider more Pythonic.

[k for k,_ in itertools.groupby(sorted(some_list))]
4

(As suggested in the comments, adding this comment as an answer as well.)

Your own solution looks good and pretty Pythonic to me. If you're using Numpy, you can also do new_list = numpy.unique(some_list). This more or less 'reads like a sentence', which I believe is always a good benchmark for something being "Pythonic".

1

To preserve order the shortest (starting from Python 2.7):

>>> from collections import OrderedDict
>>> list(OrderedDict.fromkeys('abracadabra'))
['a', 'b', 'r', 'c', 'd']

If there is no need to preserve order list(set(...)) is just fine.

1
  • 1
    I didn't know about fromkeys, and I forgot that list will return just the keys. Your answer is much simpler than mine, +1. Commented Oct 2, 2015 at 13:29

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