750

I have two iterables in Python, and I want to go over them in pairs:

foo = (1, 2, 3)
bar = (4, 5, 6)

for (f, b) in some_iterator(foo, bar):
    print "f: ", f, "; b: ", b

It should result in:

f: 1; b: 4
f: 2; b: 5
f: 3; b: 6

One way to do it is to iterate over the indices:

for i in xrange(len(foo)):
    print "f: ", foo[i], "; b: ", b[i]

But that seems somewhat unpythonic to me. Is there a better way to do it?

1174

Python 3

for f, b in zip(foo, bar):
    print(f, b)

zip stops when the shorter of foo or bar stops.

In Python 3, zip returns an iterator of tuples, like itertools.izip in Python2. To get a list of tuples, use list(zip(foo, bar)). And to zip until both iterators are exhausted, you would use itertools.zip_longest.

Python 2

In Python 2, zip returns a list of tuples. This is fine when foo and bar are not massive. If they are both massive then forming zip(foo,bar) is an unnecessarily massive temporary variable, and should be replaced by itertools.izip or itertools.izip_longest, which returns an iterator instead of a list.

import itertools
for f,b in itertools.izip(foo,bar):
    print(f,b)
for f,b in itertools.izip_longest(foo,bar):
    print(f,b)

izip stops when either foo or bar is exhausted. izip_longest stops when both foo and bar are exhausted. When the shorter iterator(s) are exhausted, izip_longest yields a tuple with None in the position corresponding to that iterator. You can also set a different fillvalue besides None if you wish. See here for the full story.


Note also that zip and its zip-like brethen can accept an arbitrary number of iterables as arguments. For example,

for num, cheese, color in zip([1,2,3], ['manchego', 'stilton', 'brie'], 
                              ['red', 'blue', 'green']):
    print('{} {} {}'.format(num, color, cheese))

prints

1 red manchego
2 blue stilton
3 green brie
  • @unutbu Why would I prefer OP's method over the izip one (even though the izip/ zip looks much cleaner)? – armundle Mar 14 '16 at 19:23
  • 3
    You might want to mention Python 3 first, as it's probably more future-proof. Moreover, it*s worth pointing out that in Python 3, zip() has exactly that advantage that only itertools.izip() had in Python 2 and thus it is usually the way to go. – Daniel S. Jun 14 '16 at 17:40
  • 2
    May I ask you to update your answer to explicitly state that zip and zip-like functions from itertools accept any number of iterables and not just 2? This question is canonical now and your answer is the only one worth updating. – vaultah Jul 11 '16 at 15:01
  • what if additionally I want the index i? Can I wrap that zip in enumerate? – Charlie Parker Mar 6 '18 at 18:05
  • 1
    @CharlieParker: Yes you can, but then you would use for i, (f, b) in enumerate(zip(foo, bar)). – unutbu Mar 6 '18 at 19:20
51

You want the zip function.

for (f,b) in zip(foo, bar):
    print "f: ", f ,"; b: ", b
  • 10
    Before Python 3.0 you'd want to use itertools.izip if you have large numbers of elements. – Georg Schölly Nov 2 '09 at 21:35
11

You should use 'zip' function. Here is an example how your own zip function can look like

def custom_zip(seq1, seq2):
    it1 = iter(seq1)
    it2 = iter(seq2)
    while True:
        yield next(it1), next(it2)
  • Doesn't this have exactly the same result as zip(seq1, seq2)? – Niklas Mertsch Jun 6 '18 at 9:35
  • @NiklasMertsch yes it has exactly the same result. I just provided example how zip function looks like – Vlad Bezden Jun 6 '18 at 15:40
0

with any python version.

while a and b: # condition may change when length not equal
   ae, be = a.pop(0), b.pop(0) 
   print(f"{ae} {be}") # check if None
-2

Here's how to do it with list comprehension:

a = (1, 2, 3)
b = (4, 5, 6)
[print('f:', i, '; b', j) for i, j in zip(a, b)]

prints:

f: 1 ; b 4
f: 2 ; b 5
f: 3 ; b 6

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