261

What is the Pythonic approach to achieve the following?

# Original lists:

list_a = [1, 2, 3, 4]
list_b = [5, 6, 7, 8]

# List of tuples from 'list_a' and 'list_b':

list_c = [(1,5), (2,6), (3,7), (4,8)]

Each member of list_c is a tuple, whose first member is from list_a and the second is from list_b.

373

In Python 2:

>>> list_a = [1, 2, 3, 4]
>>> list_b = [5, 6, 7, 8]
>>> zip(list_a, list_b)
[(1, 5), (2, 6), (3, 7), (4, 8)]

In Python 3:

>>> list_a = [1, 2, 3, 4]
>>> list_b = [5, 6, 7, 8]
>>> list(zip(list_a, list_b))
[(1, 5), (2, 6), (3, 7), (4, 8)]
  • 73
    you have to know that the zip function stops at the end of the shortest list, which may not be always what you want. the itertools module defines a zip_longest() method which stops at the end of the longest list, filling missing values with something you provide as a parameter. – Adrien Plisson Mar 9 '10 at 10:05
  • 5
    @Adrien: cheers for your applicable comment. For Python 2.x, s/zip_longest()/izip_longest(). Renamed in Python 3.x to zip_longest(). – bernie Jul 10 '11 at 19:13
  • could I create [(1,5), (1,6), (1,7), (1,8), (2,5), (2,6) ,so on] using zip command? – Mona Jalal May 30 '16 at 4:39
  • 3
    @MonaJalal: no, that's not pairing up, that's creating the product of the lists. itertools.product() does that. – Martijn Pieters Aug 9 '16 at 16:12
  • 2
    note, at least in python3.6 zip does not return a list. So you need list(zip(list_a,list_b)) instead – Supamee Oct 2 '18 at 15:45
138

In python 3.0 zip returns a zip object. You can get a list out of it by calling list(zip(a, b)).

  • 2
    This might be trivial, but be warned that using this directly in a for loop gives you a generator that will be exhausted after using it once. Save into a variable if you want to use it more often – Hakaishin Sep 25 '18 at 13:34
10

You can use map lambda

a = [2,3,4]
b = [5,6,7]
c = map(lambda x,y:(x,y),a,b)

This will also work if there lengths of original lists do not match

  • 1
    Why use a lambda? map(None, a,b) – Padraic Cunningham Jun 8 '16 at 0:19
  • None will throw an error as it is not callable. – Dark Knight Jul 10 '16 at 14:55
  • Did you try it? – Padraic Cunningham Jul 10 '16 at 15:54
  • I only have have access to python 3.5. – Dark Knight Jul 13 '16 at 0:40
  • 3
    If you were using python3 then c would not be a list it would be a map object, also using a lambda is going to be a lot less efficient than just zipping, if you have different length lists and want to handle that then you would use izip_longest/zip_longest – Padraic Cunningham Aug 10 '16 at 9:09
8

Youre looking for the builtin function zip.

6

I am not sure if this a pythonic way or not but this seems simple if both lists have the same number of elements :

list_a = [1, 2, 3, 4]

list_b = [5, 6, 7, 8]

list_c=[(list_a[i],list_b[i]) for i in range(0,len(list_a))]
5

I know this is an old question and was already answered, but for some reason, I still wanna post this alternative solution. I know it's easy to just find out which built-in function does the "magic" you need, but it doesn't hurt to know you can do it by yourself.

>>> list_1 = ['Ace', 'King']
>>> list_2 = ['Spades', 'Clubs', 'Diamonds']
>>> deck = []
>>> for i in range(max((len(list_1),len(list_2)))):
        while True:
            try:
                card = (list_1[i],list_2[i])
            except IndexError:
                if len(list_1)>len(list_2):
                    list_2.append('')
                    card = (list_1[i],list_2[i])
                elif len(list_1)<len(list_2):
                    list_1.append('')
                    card = (list_1[i], list_2[i])
                continue
            deck.append(card)
            break
>>>
>>> #and the result should be:
>>> print deck
>>> [('Ace', 'Spades'), ('King', 'Clubs'), ('', 'Diamonds')]
  • 2
    Changing one of the input lists (if they differ in length) is not a nice side-effect. Also, the two assignments to card in the if-elif are not needed, that’s why you have the continue. (In fact, without the continue you wouldn’t have to change the lists: both earlier mentioned assignments should then be kept and become card = (list_1[i], '') and card = ('', list_2[1]) respectively.) – ᴠɪɴᴄᴇɴᴛ Jan 7 '17 at 15:01
5

The output which you showed in problem statement is not the tuple but list

list_c = [(1,5), (2,6), (3,7), (4,8)]

check for

type(list_c)

considering you want the result as tuple out of list_a and list_b, do

tuple(zip(list_a,list_b)) 
  • From my point of view, it seem's what I'm looking for and to work fine for the both (list and tuple). Because when you use print, you will see the right value (as expected and mentionned by @cyborg and @Lodewijk) and nothing related to the object such as : <map object at 0x000001F266DCE5C0> or <zip object at 0x000002629D204C88>. At least, the solution about map and zip (alone) seem's to be incomplete (or too complicated) for me. – Wagner_SOFC May 28 '17 at 1:40
  • The question states they want a list of tuples not a tuple of tuples. – goryh Jun 13 at 22:41
1

One alternative without using zip:

list_c = [(p1, p2) for idx1, p1 in enumerate(list_a) for idx2, p2 in enumerate(list_b) if idx1==idx2]

In case one wants to get not only tuples 1st with 1st, 2nd with 2nd... but all possible combinations of the 2 lists, that would be done with

list_d = [(p1, p2) for p1 in list_a for p2 in list_b]

protected by codeforester Sep 24 '18 at 20:20

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