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I am playing with python and am able to get the intersection of two lists:

result = set(a).intersection(b)

Now if d is a list containing a and b and a third element c, is there an built-in function for finding the intersection of all the three lists inside d? So for instance,

d = [[1,2,3,4], [2,3,4], [3,4,5,6,7]]

then the result should be

[3,4]
62

for 2.4, you can just define an intersection function.

def intersect(*d):
    sets = iter(map(set, d))
    result = sets.next()
    for s in sets:
        result = result.intersection(s)
    return result

for newer versions of python:

the intersection method takes an arbitrary amount of arguments

result = set(d[0]).intersection(*d[:1])

alternatively, you can intersect the first set with itself to avoid slicing the list and making a copy:

result = set(d[0]).intersection(*d)

I'm not really sure which would be more efficient and have a feeling that it would depend on the size of the d[0] and the size of the list unless python has an inbuilt check for it like

if s1 is s2:
    return s1

in the intersection method.

>>> d = [[1,2,3,4], [2,3,4], [3,4,5,6,7]]
>>> set(d[0]).intersection(*d)
set([3, 4])
>>> set(d[0]).intersection(*d[1:])
set([3, 4])
>>> 
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  • @AaronMcSmooth: It gives me AttributeError: 'list' object has no attribute 'intersection' if I do that. Am I missing something? – Legend Oct 4 '10 at 4:19
  • @Legend. you have to map it to a set first. I somehow missed the fact that they were lists. After that, you can just pass lists (or any other iterable) to the intersection method – aaronasterling Oct 4 '10 at 4:20
  • @AaronMcSmooth: Actually, not sure why but I'm getting this error no matter what solution I try: TypeError: intersection() takes exactly one argument (3 given) – Legend Oct 4 '10 at 4:24
  • @Legend. both my answer and TokenMacGuy's work for me on python 2.6 and 3.1 – aaronasterling Oct 4 '10 at 4:26
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    @Legend. Thanks for cleaning up my post. but remember: 'Thus spoke the Lord: "Thou shalt indent with four spaces. No more, no less. Four shall be the number of spaces thou shalt indent, and the number of thy indenting shall be four. Eight shalt thou not indent, nor either indent thou two, excepting that thou then proceed to four. Tabs are the devil's apples!"' – aaronasterling Oct 4 '10 at 4:51
79
set.intersection(*map(set,d))
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  • 1
    Not sure what's wrong here. Now it gives me: TypeError: intersection() takes exactly one argument (2 given) – Legend Oct 4 '10 at 4:20
  • 1
    Thanks a lot. +1 for that. I just couldn't use it because of my Python version :( – Legend Oct 4 '10 at 4:47
  • 2
    If the d variable may have a length of zero the set.intersection function will raise a TypeError exception. I would recommend catching that exception and return set() (an empty set) instead in that degenerate case. This is better than checking the len of d beforehand as it may be a generator. – Aaron Robson Sep 26 '12 at 23:51
  • @AaronR: Good point, but the degenerate solution for set intersection is the universal set, not the empty set. since there's no compact way to represent that in python, raising an exception (probably catching the type error and raising something more sensible) is still probably the right way to handle it. Returning an empty set is the right thing to do for set union, however. – SingleNegationElimination Sep 27 '12 at 5:36
  • @TokenMacGuy: Yes, you're quite right; by analogy with en.wikipedia.org/wiki/Empty_product it would be the only set which would be guaranteed to not change the result of an intersection. – Aaron Robson Sep 28 '12 at 19:59
8

@user3917838

Nice and simple but needs some casting to make it work and give a list as a result. It should look like:

list(reduce(set.intersection, [set(item) for item in d ]))

where:

d = [[1,2,3,4], [2,3,4], [3,4,5,6,7]]

And result is:

[3, 4]

At least in Python 3.4

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5

You can get the intersection of an arbitrary number sets using set.intersection(set1, set2, set3...). So you just need to convert your lists into sets and then pass them to this method as follows:

d = [[1,2,3,4], [2,3,4], [3,4,5,6,7]]  
set.intersection(*[set(x) for x in d])  

result:

{3, 4}
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4

Lambda reduce.

from functools import reduce #you won't need this in Python 2
l=[[1, 2, 3, 4], [2, 3, 4], [3, 4, 5, 6, 7]]
reduce(set.intersection, [set(l_) for l_ in l])
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  • 3
    you require a list of set , this would fail saying that 'descriptor intersection requires set' – tj89 Sep 20 '17 at 6:08

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