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What is the fastest way to remove all multiple occurrence items from a list of arbitrary items (in my example a list of lists)? In the result, only items that occur a single time in the list should show up, thus removing all duplicates.

input: [[1, 2], [1, 3], [1, 4], [1, 2], [1, 4], [1, 2]]

output: [[1, 3], ]

This solution was slow:

output = [item for item in input if input.count(item)==1]

This solution was faster:

duplicates = []
output = []
for item in input:
    if not item in duplicates:
        if item in output:
            output.remove(item)
            duplicates.append(item)
        else:
           output.append(item)

Is there any better solution, probably by first sorting the list? Any ideas are appreciated.

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2 Answers 2

up vote 8 down vote accepted

If you don't care about preserving ordering:

from collections import Counter

def only_uniques(seq):
    return [k for k,n in Counter(seq).iteritems() if n == 1]

If you do care about preserving ordering:

from collections import Counter

def only_uniques_ordered(seq):
    counts = Counter(seq)
    return [k for k in seq if counts[k] == 1]

Both algorithms run in O(n) time.


Edit: Forgot you had a list of lists. In order to be able to hash a sequence, it needs to be immutable, so you could do something like this:

list_of_tuples = [tuple(k) for k in list_of_lists]

And then run list_of_tuples through one of the above functions instead. Note that you'll get a list of tuples back out of it - but unless you specifically are modifying the sequences again after this, tuples should work just as well for your purposes.

If you do need to convert back, it's pretty much the same:

list_of_lists = [list(k) for k in list_of_tuples]
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This solutions gives this error: TypeError: unhashable type: 'list'. Any idea how to solve that? –  Meilo Mar 17 '13 at 23:25
    
Ah, yeah, I initially missed that you had a list of lists. The main issue here is that lists aren't hashable because they're mutable - if you had instead, say, a list of tuples, that would work fine. I've edited in an example way to convert to tuples before running through. –  Amber Mar 17 '13 at 23:26
    
Thanks, that works fine and is in the magnitude of 100 faster than my initial solution. Before I accept your answer, however, let's see if someone can beat that solution in speed? –  Meilo Mar 17 '13 at 23:37
    
Sure, though also keep in mind that there's value in keeping the code straightforward, which I hope you'll agree this code is. :) –  Amber Mar 18 '13 at 3:31
a = [[1, 2], [1, 3], [1, 4], [1, 2], [1, 4], [1, 2]]
print list(set(tuple(i) for i in a))

Above one liner does the job.

user$ time python foo.py
[(1, 2), (1, 3), (1, 4)]

real 0m0.037s
user 0m0.024s
sys 0m0.010s

For printing only unique items as asked by Questioner. Solution is a variant of Amber's solution except that I am not using collections module.

a = [[1, 2], [3, 4], [1, 3], [1, 4], [1, 2], [1, 4], [1, 2]]
d = {tuple(i): a.count(i) for i in a}
print [k for k, v in d.iteritems() if v == 1]

Output:

[(1, 3), (3, 4)]
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That is not what the OP was asking for... compare your output to the sample output provided by the OP. –  Amber Mar 18 '13 at 3:23
    
Amber is right, this solution does not match the desired output. –  Meilo Mar 18 '13 at 9:11
    
(1) After you've called set, you can't claim you're preserving order. (2) Calling a.count(i) for each i in a will be very, very slow for large a. –  DSM Mar 18 '13 at 15:05
    
Thanks DSM. I was wrong in that part. Have corrected the sentence. –  Shankar Mar 18 '13 at 15:08
    
Also, your second approach will only give one element which has no duplicates, even if there are several; fixing that will recover a variant of Amber's solution. –  DSM Mar 18 '13 at 15:11

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