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Asked: 2026-05-14T21:34:05+00:00

Suppose I have a given Object (a string a, a number – let’s say

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Suppose I have a given Object (a string “a”, a number – let’s say 0, or a list ['x','y'] )

I’d like to create list containing many copies of this object, but without using a for loop:

L = ["a", "a", ... , "a", "a"]

or

L = [0, 0, ... , 0, 0]

or

L = [['x','y'],['x','y'], ... ,['x','y'],['x','y']]

I’m especially interested in the third case.
Thanks!

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1 Answer

  1. Editorial Team

    itertools.repeat() is your friend.

    L = list(itertools.repeat("a", 20)) # 20 copies of "a"

L = list(itertools.repeat(10, 20))  # 20 copies of 10

L = list(itertools.repeat(['x','y'], 20)) # 20 copies of ['x','y']

    Note that in the third case, since lists are referred to by reference, changing one instance of [‘x’,’y’] in the list will change all of them, since they all refer to the same list.

    To avoid referencing the same item, you can use a comprehension instead to create new objects for each list element:

    L = [['x','y'] for i in range(20)]

    (For Python 2.x, use xrange() instead of range() for performance.)

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