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I'm wondering if Python provides any handy function for finding common elements in different lists?

Say I have two lists,

[1,2,[3,4]] and [1,3,[3,4]]

The ideal output of the function should be [1,[3,4]], a list containing the common elements. What troubles me is the nested list [3,4]. Without it I can simply do set(list1)&set(list2) and this question will become a complete duplicate of know this question might look little duplicating from python - find common elements in lists . When I tried the same thing with the example above, I got an error saying:

TypeError: unhashable type: 'list'

Any idea how to deal with it? Thanks in advance!!

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@MartijnPieters I was starting to type that :) –  Jon Clements Jul 5 '12 at 22:41
    
sorry made a typo =p –  turtlesoup Jul 5 '12 at 22:45
    
If you really want to do a set intersection, you need to turn your inner lists into tuples –  inspectorG4dget Jul 5 '12 at 22:50
1  
In the case that the objects are not all hashable but are sortable, you can sort both lists and step through them, making for an O(n*log(n)) instead of the O(n*n). These lists are sortable in Python2, but no longer in Python3 –  gnibbler Jul 5 '12 at 23:17
    
@gnibbler Can you explain in a bit more detail how to step through the lists to make a O(n*log(n))? –  turtlesoup Jul 6 '12 at 2:25

4 Answers 4

In this particular case it is possible to make the members of the list hashable, by using repr:

>>> a = [1,2,[3,4]]
>>> b = [1,3,[3,4]]
>>> a_set = set(repr(x) for x in a)
>>> [x for x in b if repr(x) in a_set]
[1, [3, 4]]
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1  
This is a bad idea, repr() won't necessarily return the same thing for two objects that would compare equal. One example is sets and dictionaries, where the displayed order is arbitrary and often dependent on insertion order. –  Andrew Clark Jul 5 '12 at 23:59

The following commands and output from an IDLE session should help solve your problem:

>>> A = [1,2,[3,4]]
>>> B = [1,3,[3,4]]
>>> [a for a in A if a in B]
[1, [3, 4]]
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Thanks... but I've never used IDLE! –  Joe Jul 6 '12 at 18:31
>>> a = [1,2,[3,4]]
>>> b = [1,3,[3,4]]
>>> [x for x in a if x in b]
[1, [3, 4]]
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You could cheat a little and make a helper function (depending on your Python version):

import collections

a = [1,2,[3,4]]
b = [1,3,[3,4]]

def helper(item):
    for i in item:
        if not isinstance(i, collections.Hashable):
            yield tuple(i)
        else:
            yield i

print set(helper(a)) & set(helper(b))

But I like MRAB's answer...

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