28

I have two lists

a = [1,2,3]
b = [9,10]

I want to combine (zip) these two lists into one list c such that

c = [(1,9), (2,10), (3, )]

Is there any function in standard library in Python to do this?

38

What you seek is itertools.izip_longest

In Python3.x you seek for itertools.zip_longest

>>> a = [1,2,3]
>>> b = [9,10]
>>> for i in itertools.izip_longest(a,b): print i
... 
(1, 9)
(2, 10)
(3, None)

EDIT 1: If you really want to get rid of the Nones, then you could try:

>>> for i in (filter(None, pair) for pair in itertools.izip_longest(a,b)): print i
(1, 9)
(2, 10)
(3,)

EDIT 2: In response to steveha's comment:

filter(lambda p: p is not None, pair) for pair in itertools.izip_longest(a,b)
  • 10
    Use itertools.zip_longest for Python 3.5+. – Thane Plummer Aug 19 '16 at 15:51
  • @ThanePlummer itertools.zip_longest is already integrated before 3.5+ – user2853437 Jun 15 '18 at 21:33
9

Another way is map:

a = [1, 2, 3]
b = [9, 10]
c = map(None, a, b)

Although that will too contain (3, None) instead of (3,). To do that, here's a fun line:

c = (tuple(y for y in x if y is not None) for x in map(None, a, b))
  • x if None not in x else tuple(y for y in x if y is not None). The x if None not in x is redundant here, as the else takes care of it. In the worst case, the else would return an empty tuple. Also, if there's a None in any tuple, the if would kill that tuple and pass it on to the else – inspectorG4dget Jul 3 '12 at 21:07
  • @inspectorG4dget: Thanks. But now it's not quite as fun :D – Ry- Jul 3 '12 at 21:13
  • Works nicely in Python 2.7, but not in 3.5. For 3.5 use itertools.zip_longest. – Thane Plummer Aug 19 '16 at 15:53
2

It's not too hard to just write the explicit Python to do the desired operation:

def izip_short(a, b):
    ia = iter(a)
    ib = iter(b)
    for x in ia:
        try:
            y = next(ib)
            yield (x, y)
        except StopIteration:
            yield (x,)
            break
    for x in ia:
        yield (x,)
    for y in ib:
        yield (None, y)

a = [1, 2, 3]
b = [9, 10]
list(izip_short(a, b))
list(izip_short(b, a))

I wasn't sure how you would want to handle the b sequence being longer than the a sequence, so I just stuff in a None for the first value in the tuple in that case.

Get an explicit iterator for each sequence. Run the a iterator as a for loop, while manually using next(ib) to get the next value from the b sequence. If we get a StopIteration on the b sequence, we break the loop and then for x in ia: gets the rest of the a sequence; after that for y in ib: will do nothing because that iterator is already exhausted. Alternatively, if the first for x in ia: loop exhausts the a iterator, the second for x in ia: does nothing but there could be values left in the b sequence and the for y in ib: loop collects them.

1

Single line:

c = zip(a, b) + [(x,) for x in a[len(b):]] + [(x,) for x in b[len(a):]]

If you want to reuse this:

def mergeUsNicely(a, b):
    def tupleMe(val):
        return (val,)
    return zip(a, b) + map(tupleMe, a[len(b):]) + map(tupleMe, b[len(a):])

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