53

I want to zip two list with different length

for example

A = [1,2,3,4,5,6,7,8,9]
B = ["A","B","C"]

and I expect this

[(1, 'A'), (2, 'B'), (3, 'C'), (4, 'A'), (5, 'B'), (6, 'C'), (7, 'A'), (8, 'B'), (9, 'C')]

But the build-in zip won't repeat to pair with the list with larger size . Does there exist any build-in way can achieve this? thanks

here is my code

idx = 0
zip_list = []
for value in larger:
    zip_list.append((value,smaller[idx]))
    idx += 1
    if idx == len(smaller):
        idx = 0
1

15 Answers 15

90

You can use itertools.cycle:

Make an iterator returning elements from the iterable and saving a copy of each. When the iterable is exhausted, return elements from the saved copy. Repeats indefinitely.

Example:

A = [1,2,3,4,5,6,7,8,9]
B = ["A","B","C"]

from itertools import cycle
zip_list = zip(A, cycle(B)) if len(A) > len(B) else zip(cycle(A), B)
0
9

Try this.

A = [1,2,3,4,5,6,7,8,9]
B = ["A","B","C"]
Z = []
for i, a in enumerate(A):
    Z.append((a, B[i % len(B)]))

Just make sure that the larger list is in A.

6

You can use itertools.cycle:

from itertools import cycle

my_list = [1, 2, 3, 5, 5, 9]
another_list = ['Yes', 'No']

cyc = cycle(another_list)

print([[i, next(cyc)] for i in my_list])
# [[1, 'Yes'], [2, 'No'], [3, 'Yes'], [5, 'No'], [5, 'Yes'], [9, 'No']]
5

Do you know that the second list is shorter?

import itertools
list(zip(my_list, itertools.cycle(another_list)))

This will actually give you a list of tuples rather than a list of lists. I hope that's okay.

1
  • Best answer since no intermediate state needs to be created. If OP really needs lists, then [list(x) for x in zip(a, itertools.cycle(b))] works. – ggorlen Oct 16 '20 at 3:18
3

Solution for an arbitrary number of iterables, and you don't know which one is longest (also allowing a default for any empty iterables):

from itertools import cycle, zip_longest

def zip_cycle(*iterables, empty_default=None):
    cycles = [cycle(i) for i in iterables]
    for _ in zip_longest(*iterables):
        yield tuple(next(i, empty_default) for i in cycles)

for i in zip_cycle(range(2), range(5), ['a', 'b', 'c'], []):
    print(i)

Outputs:

(0, 0, 'a', None)
(1, 1, 'b', None)
(0, 2, 'c', None)
(1, 3, 'a', None)
(0, 4, 'b', None)
2

You can use the modulo % operator in a loop that counts up

my_list=[1, 2, 3, 5, 5, 9]
another_list=['Yes','No']

new_list = []
for cur in range(len(my_list)):
    new_list.append([my_list[cur], another_list[cur % 2]])
# [[1, 'Yes'], [2, 'No'], [3, 'Yes'], [5, 'No'], [5, 'Yes'], [9, 'No']]

2 can be replaced with len(another_list)

2

A very simple approach is to multiply the short list so it's longer:

my_list = [1, 2, 3, 5, 5, 9]
another_list = ['Yes', 'No']

zip(my_list, another_list*3))
#[(1, 'Yes'), (2, 'No'), (3, 'Yes'), (5, 'No'), (5, 'Yes'), (9, 'No')]

Note here that the multiplier doesn't need to be carefully calculated since zip only goes out to the length of the shortest list (and the point of the multiplier is to make sure the shortest list is my_list). That is, the result would be the same if 100 were used instead of 3.

0
1

symmetric, no conditionals one liner

[*zip(A*(len(B)//len(A) + 1), B*(len(A)//len(B) + 1))]

which strictly answers 'How to zip two differently sized lists?'

needs a patch for equal sized lists to be general:

[*(zip(A, B) if len(A) == len(B)
         else zip(A*(len(B)//len(A) + 1),
                  B*(len(A)//len(B) + 1)))]
1

Try like this:

my_list=[  1,   2,   3, 5,  5,  9]
another_list=['Yes','No']
if type(len(my_list)/2) == float:
  ml=int(len(my_list)/2)+1
else:
  ml=int(len(my_list)/2)

print([[x,y] for x,y in zip(my_list,another_list*ml)])

Native way:

  • Try to calculate and round the half of the length of first list, if it is float then add 1 too
  • Iterate using zip() before that multiply second YesNo list with the calculated number before
1

I like Henry Yik's answer and it's a bit faster to execute, but here is an answer without using itertools.

my_list = [1, 2, 3, 5, 5, 9]
another_list = ['Yes', 'No']

new_list = []
for i in range(len(my_list)):
    new_list.append([my_list[i], another_list[i % len(another_list)]])

new_list

[[1, 'Yes'], [2, 'No'], [3, 'Yes'], [5, 'No'], [5, 'Yes'], [9, 'No']]
1

Let's use np.tile and zip:

my_list = [1, 2, 3, 5, 5, 9]
another_list = ['Yes', 'No']
list(zip(my_list,np.tile(another_list, len(my_list)//len(another_list) + 1)) )

Output:

[(1, 'Yes'), (2, 'No'), (3, 'Yes'), (5, 'No'), (5, 'Yes'), (9, 'No')]
0

There is probably a better way, but you could make a function that repeats your list to whatever length you want.

def repeatlist(l,i):
    '''give a list and a total length'''
    while len(l) < i:
        l += l
    while len(l) > i:
        l.pop()

Then do

repeatlist(B,len(A))
zip_list = zip(A,B)
0
0

For a version that works with any finite number of potentially infinite iterables in any order:

from itertools import cycle, tee, zip_longest

def cyclical_zip(*iterables):
    iterables_1, iterables_2 = zip(*map(tee, iterables))  # Allow proper iteration of iterators

    for _, x in zip(
            zip_longest(*iterables_1),      # Limit             by the length of the longest iterable
            zip(*map(cycle, iterables_2))): #       the cycling
        yield x

assert list(cyclical_zip([1, 2, 3], 'abcd', 'xy')) == [(1, 'a', 'x'), (2, 'b', 'y'), (3, 'c', 'x'), (1, 'd', 'y')]  # An example and test case
-1

And nowadays with list comprehentions

[(i, B[i % 3 - 1]) for i in A]

Or if the elements of A are not sequential and not worrying about list lengths

[(j, B[i % len(B)]) for i, j in enumerate(A)] if len(A) >= len(B) else \
[(A[i % len(A)], j) for i, j in enumerate(B)]
0
-5
d1=['one','two','three']
d2=[1,2,3,4,5]

Zip

zip(d1,d2)
<zip object at 0x05E494B8>

list of zip

list(zip(d1,d2))

dictionary of list of zip

{'one': 1, 'two': 2, 'three': 3}

Note: Python 3.7+

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