519

What would be your preferred way to concatenate strings from a sequence such that between every two consecutive pairs a comma is added. That is, how do you map, for instance, ['a', 'b', 'c'] to 'a,b,c'? (The cases ['s'] and [] should be mapped to 's' and '', respectively.)

I usually end up using something like ''.join(map(lambda x: x+',',l))[:-1], but also feeling somewhat unsatisfied.

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13 Answers 13

956
my_list = ['a', 'b', 'c', 'd']
my_string = ','.join(my_list)

This won't work if the list contains numbers.


And if the list contains non-string types (such as integers, floats, bools, None) then do:

my_string = ','.join(map(str, my_list)) 
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74

Why the map/lambda magic? Doesn't this work?

>>> foo = ['a', 'b', 'c']
>>> print(','.join(foo))
a,b,c
>>> print(','.join([]))

>>> print(','.join(['a']))
a

In case if there are numbers in the list, you could use list comprehension:

>>> ','.join([str(x) for x in foo])

or a generator expression:

>>> ','.join(str(x) for x in foo)
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  • 3
    What if I want a, b and c? – Hussain May 26 '14 at 10:00
  • @Hussain: ", ".join(foo[:-2] + [" and ".join(foo[-2:])]) or if you may get numbers: ", ".join(itertools.chain((str(i) for i in a[:-2]), [" and ".join(str(i) for i in a[-2:])])) – Hubert Kario Jul 24 '17 at 16:00
17

",".join(l) will not work for all cases. I'd suggest using the csv module with StringIO

import StringIO
import csv

l = ['list','of','["""crazy"quotes"and\'',123,'other things']

line = StringIO.StringIO()
writer = csv.writer(line)
writer.writerow(l)
csvcontent = line.getvalue()
# 'list,of,"[""""""crazy""quotes""and\'",123,other things\r\n'
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  • There is no StringIO in Python 3 – Ron Kalian Jun 18 '18 at 15:02
  • 4
    @RonKalian Use from io import StringIO in Python 3 – Kevin Ashcraft Jun 19 '18 at 0:37
13

Here is a alternative solution in Python 3.0 which allows non-string list items:

>>> alist = ['a', 1, (2, 'b')]
  • a standard way

    >>> ", ".join(map(str, alist))
    "a, 1, (2, 'b')"
    
  • the alternative solution

    >>> import io
    >>> s = io.StringIO()
    >>> print(*alist, file=s, sep=', ', end='')
    >>> s.getvalue()
    "a, 1, (2, 'b')"
    

NOTE: The space after comma is intentional.

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11

Don't you just want:

",".join(l)

Obviously it gets more complicated if you need to quote/escape commas etc in the values. In that case I would suggest looking at the csv module in the standard library:

https://docs.python.org/library/csv.html

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10

@Peter Hoffmann

Using generator expressions has the benefit of also producing an iterator but saves importing itertools. Furthermore, list comprehensions are generally preferred to map, thus, I'd expect generator expressions to be preferred to imap.

>>> l = [1, "foo", 4 ,"bar"]
>>> ",".join(str(bit) for bit in l)
'1,foo,4,bar' 
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7
>>> my_list = ['A', '', '', 'D', 'E',]
>>> ",".join([str(i) for i in my_list if i])
'A,D,E'

my_list may contain any type of variables. This avoid the result 'A,,,D,E'.

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4
l=['a', 1, 'b', 2]

print str(l)[1:-1]

Output: "'a', 1, 'b', 2"
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  • 1
    I think you should point out that unlike the other solutions on this page, you quote strings as well. – mrdevlar Feb 23 '18 at 14:05
3

@jmanning2k using a list comprehension has the downside of creating a new temporary list. The better solution would be using itertools.imap which returns an iterator

from itertools import imap
l = [1, "foo", 4 ,"bar"]
",".join(imap(str, l))
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  • This solution doesn't fulfill the requirements of not adding extra comma for empty string and adding a 'None' with NoneType. – Roberto Jan 7 '18 at 13:27
  • check str.join work faster with list in comparison to generator – Grijesh Chauhan Aug 7 '18 at 9:19
3

Here is an example with list

>>> myList = [['Apple'],['Orange']]
>>> myList = ','.join(map(str, [i[0] for i in myList])) 
>>> print "Output:", myList
Output: Apple,Orange

More Accurate:-

>>> myList = [['Apple'],['Orange']]
>>> myList = ','.join(map(str, [type(i) == list and i[0] for i in myList])) 
>>> print "Output:", myList
Output: Apple,Orange

Example 2:-

myList = ['Apple','Orange']
myList = ','.join(map(str, myList)) 
print "Output:", myList
Output: Apple,Orange
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  • 1
    This question was about lists, not lists of lists. – Eero Aaltonen May 15 '17 at 11:29
  • @EeroAaltonen I updated My answer, Thanks for pointing me to right. – user7561216 May 17 '17 at 3:19
1

I would say the csv library is the only sensible option here, as it was built to cope with all csv use cases such as commas in a string, etc.

To output a list l to a .csv file:

import csv
with open('some.csv', 'w', newline='') as f:
    writer = csv.writer(f)
    writer.writerow(l)  # this will output l as a single row.  

It is also possible to use writer.writerows(iterable) to output multiple rows to csv.

This example is compatible with Python 3, as the other answer here used StringIO which is Python 2.

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  • But isn't that too much/complicated compared to other answers? – Sreenikethan I Nov 7 '19 at 16:17
0

Unless I'm missing something, ','.join(foo) should do what you're asking for.

>>> ','.join([''])
''
>>> ','.join(['s'])
's'
>>> ','.join(['a','b','c'])
'a,b,c'

(edit: and as jmanning2k points out,

','.join([str(x) for x in foo])

is safer and quite Pythonic, though the resulting string will be difficult to parse if the elements can contain commas -- at that point, you need the full power of the csv module, as Douglas points out in his answer.)

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-2

My two cents. I like simpler an one-line code in python:

>>> from itertools import imap, ifilter
>>> l = ['a', '', 'b', 1, None]
>>> ','.join(imap(str, ifilter(lambda x: x, l)))
a,b,1
>>> m = ['a', '', None]
>>> ','.join(imap(str, ifilter(lambda x: x, m)))
'a'

It's pythonic, works for strings, numbers, None and empty string. It's short and satisfies the requirements. If the list is not going to contain numbers, we can use this simpler variation:

>>> ','.join(ifilter(lambda x: x, l))

Also this solution doesn't create a new list, but uses an iterator, like @Peter Hoffmann pointed (thanks).

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  • This is superfluous. The accepted answer is simple, direct and clearly the best solution. To provide overly complex alternatives is a pointless waste of time. If you're merely trying to educate about other features of the language when there is already a viable answers, you're doing the same thing you downvoted me for. – clearlight Feb 25 '18 at 15:24

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