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Consider a Python list my_list containing ['foo', 'foo', 'bar'].

What is the most Pythonic way to uniqify:ing and sorting and the list (think cat my_list | sort | uniq)?

This is how I currently do it and while it works I'm sure there are better ways to do it.

my_list = []
...
my_list.append("foo")
my_list.append("foo")
my_list.append("bar")
...
my_list = set(my_list)
my_list = list(my_list)
my_list.sort()
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5 Answers 5

up vote 29 down vote accepted
my_list = sorted(set(my_list))
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3  
Note that this only works for hashable types, so for example this won't work on lists. –  taleinat May 28 '10 at 20:11

The straightforward solution is provided by Ignacio—sorted(set(foo)).

If you have unique data, there's a reasonable chance you don't just want to do sorted(set(...)) but rather to store a set all the time and occasionally pull out a sorted version of the values. (At that point, it starts sounding like the sort of thing people often use a database for, too.)

If you have a sorted list and you want to check membership on logarithmic and add an item in worst case linear time, you can use the bisect module.

If you want to keep this condition all the time and you want to simplify things or make some operations perform better, you might consider blist.sortedset.

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Others have mentioned sorted(set(my_list)), which works for hashable values such as strings, numbers and tuples, but not for unhashable types such as lists.

To get a sorted list of values of any sortable type, without duplicates:

from itertools import izip, islice
def unique_sorted(values):
    "Return a sorted list of the given values, without duplicates."
    values = sorted(values)
    if not values:
        return []
    consecutive_pairs = izip(values, islice(values, 1, len(values)))
    result = [a for (a, b) in consecutive_pairs if a != b]
    result.append(values[-1])
    return result

This can be further simplified using the "pairwise" or "unique_justseen" recipes from the itertools documentation.

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import itertools

def sort_uniq(sequence):
    return (x[0] for x in itertools.groupby(sorted(sequence)))

Faster:

import itertools, operator

def sort_uniq(sequence):
    return itertools.imap(
        operator.itemgetter(0),
        itertools.groupby(sorted(sequence)))

Both versions return an generator, so you might want to supply the result to the list type:

sequence= list(sort_uniq(sequence))

Note that this will work with non-hashable items too:

>>> list(sort_uniq([[0],[1],[0]]))
[[0], [1]]
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If you are using python3: Py3 map and in Py2 itertools.imap do exactly the same thing. ( In Py3 iter(map(...)) is redundant. ) –  The Demz Oct 28 '13 at 10:59

Can't say it is clean way to do that, but just for fun:

my_list = [x for x in sorted(my_list) if not x in locals()["_[1]"]]
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4  
This is ugly, magical, and unnecessarily quadratic. –  Mike Graham May 28 '10 at 19:30
    
Sure, it is just for fun, as I noted. –  andreypopp Jun 3 '10 at 16:53

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