13

I would like to return values from both lists that not in the other one:

bar = [ 1,2,3,4,5 ]
foo = [ 1,2,3,6 ]

returnNotMatches( a,b )

would return

[[ 4,5 ],[ 6 ]]
3
  • 3
    Great. What have you tried so far
    – idjaw
    Mar 1 '16 at 1:31
  • What should the result for bar = [1,2,3,4,5,6]; foo = [1,2,3,5,6] be?
    – mgilson
    Mar 1 '16 at 1:34
  • 2
    Are you tied to using lists? Would a set be possible? Mar 1 '16 at 1:34
45

One of the simplest and quickest is:

new_list = list(set(list1).difference(list2))

BONUS! If you want an intersection (return the matches):

new_list = list(set(list1).intersection(list2))
3
  • 6
    hey @user3885769 I believe your two lines of code are identical
    – BeeGee
    Sep 11 '19 at 15:11
  • 2
    This is significantly faster than iterating through both lists as per the chosen answer. Comparing two lists with ~200,000 uuids went from 5+ mins to subsecond for me.
    – minus34
    May 18 '20 at 6:53
  • 1
    If you use list() constructor, you don't need to use [].
    – hui chen
    Jan 13 at 14:24
30

Just use a list comprehension:

def returnNotMatches(a, b):
    return [[x for x in a if x not in b], [x for x in b if x not in a]]
5

This should do

def returnNotMatches(a, b):
    a = set(a)
    b = set(b)
    return [list(b - a), list(a - b)]

And if you don't care that the result should be a list you could just skip the final casting.

6
  • This will discard duplicates in a or b that are not matched by the other. Mar 1 '16 at 1:36
  • It will, but comparing matches with duplicates makes little sense.
    – Łukasz
    Mar 1 '16 at 1:36
  • Unless it has sense... I don't think you can assert that it doesn't have a purpose without knowing the application. Mar 1 '16 at 1:37
  • 1
    "I would like to return values from both lists that not in the other one" clearly means to treat the list as a set.
    – Łukasz
    Mar 1 '16 at 1:40
  • With the literal wording, [4, 5, 6] would be the desired output. I added the comment to the question about sets because it might be that they askee should be using a set as their data structure to begin with. Mar 1 '16 at 1:42
1

I might rely on the stdlib here...

from itertools import tee, izip
def pairwise(iterable):
    "s -> (s0,s1), (s1,s2), (s2, s3), ..."
    a, b = tee(iterable)
    next(b, None)
    return izip(a, b)

import difflib

def returnNotMatches(a, b):
    blocks = difflib.SequenceMatcher(a=a, b=b).get_matching_blocks()
    differences = []
    for b1, b2 in pairwise(blocks):
        d1 = a[b1.a + b1.size: b2.a]
        d2 = b[b1.b + b1.size: b2.b]
        differences.append((d1, d2))
    return differences

print returnNotMatches([ 1,2,3,4,5 ], [ 1,2,3,6 ])

which prints: [([4, 5], [6])]

This compares the sequences as streams and finds the differences in the streams. It takes order into account, etc. If order and duplicates don't matter, then sets are by far the way to go (so long as the elements can be hashed).

9
  • o.o While difflib is a cool library, is this a bot post? at first glance this code looked real, and pairwise is an interesting function, but it isn't used, differences isn't used, and the code throws a ValueError... Mar 1 '16 at 1:46
  • @JaredGoguen -- I disagree... Finding the matching blocks of in the sequence when the sequences are different lengths and the length of the different blocks of unmatching values are different is quite non-trivial (especially considering that the answer isn't even necessarily unique). Hence the existence of difflib :-)
    – mgilson
    Mar 1 '16 at 1:50
  • @JaredGoguen --Thanks, obviously hacking code together and not keeping things updated...
    – mgilson
    Mar 1 '16 at 1:51
  • NameError: name 'size' is not defined still Mar 1 '16 at 1:51
  • I'm personally curious about that code (which is why the successive comments), not trying to nitpick. I think you might be answering the wrong question though, the answer by zondo is Pythonic and correct (albeit, possibly inefficient, but readability should not often be sacrificed for efficiency in Python). Mar 1 '16 at 1:54
0

You could use a list comprehension and zip

''.join([i[0] for i in zip(a, a.lower()) if i[0] == i[1]])

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