46

I have a list of some elements, e.g. [1, 2, 3, 4] and a single object, e.g. 'a'. I want to produce a list of tuples with the elements of the list in the first position and the single object in the second position: [(1, 'a'), (2, 'a'), (3, 'a'), (4, 'a')].

I could do it with zip like this:

def zip_with_scalar(l, o): # l - the list; o - the object
    return list(zip(l, [o] * len(l)))

However, this gives me a feeling of creating and unnecessary list of repeating element.

Another possibility is

def zip_with_scalar(l, o):
    return [(i, o) for i in l]

which is very clean and pythonic indeed, but here I do the whole thing "manually". In Haskell I would do something like

zipWithScalar l o = zip l $ repeat o

Is there any built-in function or trick, either for the zipping with scalar or for something that would enable me to use ordinary zip, i.e. sort-of infinite list?

8

8 Answers 8

62

This is the cloest to your Haskell solution:

import itertools

def zip_with_scalar(l, o):
    return zip(l, itertools.repeat(o))

You could also use generators, which avoid creating a list like comprehensions do:

def zip_with_scalar(l, o):
    return ((i, o) for i in l)
20

You can use the built-in map function:

>>> elements = [1, 2, 3, 4]
>>> key = 'a'
>>> map(lambda e: (e, key), elements)
[(1, 'a'), (2, 'a'), (3, 'a'), (4, 'a')]
7

This is a perfect job for the itertools.cycle class.

from itertools import cycle


def zip_with_scalar(l, o):
    return zip(i, cycle(o))

Demo:

>>> from itertools import cycle
>>> l = [1, 2, 3, 4]
>>> list(zip(l, cycle('a')))
[(1, 'a'), (2, 'a'), (3, 'a'), (4, 'a')]
4
  • 1
    The argument to cycle must be an iterable, doesn't it? It works with 'a' as it is string, but not with an arbitrary object.
    – zegkljan
    Apr 11, 2016 at 5:37
  • @zegkljan yes it must be an iterable.
    – styvane
    Apr 11, 2016 at 5:40
  • Only if the object to map to is an iterable of length one, cycle gives the result this question is asking for. If you do the same for the string 'ab' instead of 'a' you get the following: [(1, 'a'), (2, 'b'), (3, 'a'), (4, 'b')]
    – Swier
    Aug 6, 2018 at 12:13
  • 1
    string are iterable if you want to return the string indefinitely you should put this into a container. list will do fine. list(zip(range(20), cycle(["ab"]))) @Swier
    – styvane
    Aug 6, 2018 at 17:14
7
lst = [1,2,3,4]
tups = [(itm, 'a') for itm in lst]
tups

> [(1, 'a'), (2, 'a'), (3, 'a'), (4, 'a')]
7
>>> l = [1, 2, 3, 4]
>>> list(zip(l, "a"*len(l)))
[(1, 'a'), (2, 'a'), (3, 'a'), (4, 'a')]
6

You could also use zip_longest with a fillvalue of o:

from itertools import zip_longest

def zip_with_scalar(l, o): # l - the list; o - the object
    return zip_longest(l, [o], fillvalue=o)

print(list(zip_with_scalar([1, 2, 3, 4] ,"a")))

Just be aware that any mutable values used for o won't be copied whether using zip_longest or repeat.

1

The more-itertools library recently added a zip_broadcast() function that solves this problem well:

>>> from more_itertools import zip_broadcast
>>> list(zip_broadcast([1,2,3,4], 'a'))
[(1, 'a'), (2, 'a'), (3, 'a'), (4, 'a')]

This is a much more general solution than the other answers posted here:

  • Empty iterables are correctly handled.
  • There can be multiple iterable and/or scalar arguments.
  • The order of the scalar/iterable arguments doesn't need to be known.
  • If there are multiple iterable arguments, you can check that they are the same length with strict=True.
  • You can easily control whether or not strings should be treated as iterables (by default they are not).
0

Just define a class with infinite iterator which is initialized with the single element you want to injected in the lists:

class zipIterator:
    def __init__(self, val):
        self.__val = val

    def __iter__(self):
        return self

    def __next__(self):
        return self.__val

and then create your new list from this class and the lists you have:

elements = [1, 2, 3, 4]
key = 'a'
res = [it for it in zip(elements, zipIterator(key))]

the result would be:

>>res
[(1, 'a'), (2, 'a'), (3, 'a'), (4, 'a')]

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