If I have a list of chars:

a = ['a','b','c','d']

How do I convert it into a single string?

a = 'abcd'
  • 9
    Searching Google for "python convert list of chars to string" gives one hit on ubuntuforums for doing the inverse operation (string to char list), four hits on python.org of which only the last touches on the topic with the code string.joinfields(map(chr, list), ""), which isn't as good an answer as Daniel's, and the next entry is this very question on SO. It seems SO has become the FAQ. – Mike DeSimone Dec 19 '10 at 6:42
  • 6
    Link to other direction – Tobias Kienzler Jan 16 '14 at 10:56

12 Answers 12

up vote 496 down vote accepted

Use the join method of the empty string to join all of the strings together with the empty string in between, like so:

>>> a = ['a', 'b', 'c', 'd']
>>> ''.join(a)
'abcd'
  • 1
    but what is there is space as character? – vaichidrewar Jan 13 '12 at 4:17
  • 2
    @vaichidrewar: Then there will be a space in the final string as well. – Daniel Stutzbach Jan 15 '12 at 20:41
  • 1
    how can I add spaces between the characters? anyway to do it without iterating through the whole thing? – clifgray Feb 8 '13 at 7:47
  • 14
    just do ' '.join(list) with a space between the quotes – clifgray Feb 8 '13 at 7:49
  • 23
    To clarify: "".join(['a','b','c']) means Join all elements of the array, separated by the string "". In the same way, " hi ".join(["jim", "bob", "joe"]) will create "jim hi bob hi joe". – Jack Dec 22 '14 at 19:44

This works in JavaScript or Ruby, why not in Python?

>>> ['a', 'b', 'c'].join('')
Traceback (most recent call last):
   File "<stdin>", line 1, in <module>
AttributeError: 'list' object has no attribute 'join'

But in Python the join method is on the str class:

# this is the Python way
"".join(['a','b','c','d'])

It is a little weird, isn't it? Why join is not a method in the list object like in JavaScript or other popular script languages? It is one example of how the Python community thinks. Since join is returning a string, it should be placed in the string class, not on the list class, so the str.join(list) method means: join the list into a new string using str as a separator (in this case str is an empty string).

Somehow I got to love this way of thinking after a while. I can complain about a lot of things in Python design, but not about its coherence.

  • The main reason for join being a string method rather than a list method is that it accepts any iterable, not just a list. You can use generator expressions, dictionaries, sets, views of various kinds, and so on. So it's a lot more flexible than the array join operation in most languages. – rosuav Aug 16 '16 at 4:08
  • I was comparing Python's string.join() with most collections having a join() method in many dynamic languages. About iterables, I guess it is not a problem for such languages because it is as easy (and legible) to enclose the iterable in a collection constructor and chain in the join() method. – Paulo Scardine Aug 17 '16 at 12:38
  • Yeah, assuming they either have lazy lists (Haskell style) or you're comfortable with coalescing the list into memory before starting. My point is that Python's way of doing isn't arbitrary, it has very good justification. – rosuav Aug 17 '16 at 22:09
  • 1
    It is not arbitrary, it is a design decision to avoid namespace pollution in every class. :-) – Paulo Scardine Aug 17 '16 at 22:22
  • Exactly. Plus, not all of those are even classes - "iterable" is a protocol, not a class. You can filter, map, join, etc, using any iterable. – rosuav Aug 18 '16 at 1:45

If your Python interpreter is old (1.5.2, for example, which is common on some older Linux distributions), you may not have join() available as a method on any old string object, and you will instead need to use the string module. Example:

a = ['a', 'b', 'c', 'd']

try:
    b = ''.join(a)

except AttributeError:
    import string
    b = string.join(a, '')

The string b will be 'abcd'.

  • 1
    +1 for making sure the answer works on older systems, although I don't like the whitespace before the round brackets! – PhilMacKay Nov 8 '13 at 20:06

This may be the fastest way:

>> from array import array
>> a = ['a','b','c','d']
>> array('B', map(ord,a)).tostring()
'abcd'
  • 3
    @WinstonEwert yes, yesterday i was writing a program which needs to do such thing, and i benchmarked a few ways for the performance of this line counts in my program, the result shows it's about 20% faster then ''.join(['a','b','c']) – bigeagle Apr 8 '12 at 7:05
  • 1
    My own benchmark shows join to be 7 times faster. pastebin.com/8nSc5Ek1. You mind sharing your benchmark? – Winston Ewert Apr 8 '12 at 14:10
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    Premature optimization. This is so much hard to read and understand what's going on. Unless the user NEEDS performance in the operation, a simple ''.join() is much more readable. – Luiz Damim Oct 26 '12 at 10:24
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    disagree -- programmers need to keep the fastest methods in mind for such things. a single simple operation that takes a little longer is no big deal. However, this is how just about every program written ends up bloating and taking up too much resources. When we don't put ourselves in the habit of making things as lean as possible, we end up with a world that is like.... well, like Windows Vista, or Upstart in Linux are good examples of many small shortcuts leading to 'bloat and float', as in dead in the water. they are both ugly too. why not use str().join(a) which is 100% expressive imfho.. – osirisgothra Jul 27 '15 at 13:43
  • 1
    ... but i would still use the simple one for stupid little experiments and the other one for hefty things that need speed. Im just saying, we should be in the habit of condoning such things appropriately. – osirisgothra Jul 27 '15 at 13:57

The reduce function also works

import operator
h=['a','b','c','d']
reduce(operator.add, h)
'abcd'
  • 1
    It always bugs me that the operators aren't first class citizens in their own right. In scheme, for instance, that would be (reduce + h) – Brian Minton Dec 24 '13 at 13:56
  • In scheme, (reduce + '' h) or (apply + h) would work. But then again, in Python, the add operator takes exactly 2 operands, hence the need for reduce. Otherwise, you could do operator.add(*h), since apply has been officially deprecated in Python in favor of the extended call syntax (aka en.wikipedia.org/wiki/Variadic_function) – Brian Minton Dec 24 '13 at 14:03
h = ['a','b','c','d','e','f']
g = ''
for f in h:
    g = g + f

>>> g
'abcdef'
  • 2
    @Bill Have a look at the formatting help – oers Oct 26 '12 at 10:38
  • 5
    This would be quite slow. Using ''.join(h) would far outpace your one-by-one append method. – Martijn Pieters Oct 26 '12 at 11:34
  • in 'the' python bible (that 1400+ page one), in many places it tells us that this is wrong to do and is to be avoided whenever possible. It also is a painfully obvious trademark of the uninformed python beginner (not to insult the functionality...well) it may work but you will hear "Dont do this" from about 5000 people for doing it. – osirisgothra Jul 27 '15 at 13:46

use join with empty separator

h = ['a','b','c','d','e','f']
print ''.join(h)

or use reduce with add operator

import operator
h=['a','b','c','d']
reduce(operator.add, h)

If the list contains numbers, you can use map() with join().

Eg:

    arr = [3, 30, 34, 5, 9]
    ''.join(map(str,arr))

>> 3303459
  • it is actually more pythonic to use ''.join([str(i) for i in arr]) – user1767754 Dec 20 '17 at 17:21
  • @user1767754 Well, Guido prefers that style but there's absolutely nothing wrong with using the map function. – itsbruce Sep 8 at 14:17
  • @itsbruce there is nothing wrong with it, it's probably nicer to read as well with map. – user1767754 Sep 8 at 20:42

You could also use operator.concat() like this:

>>> from operator import concat
>>> a = ['a', 'b', 'c', 'd']
>>> reduce(concat, a)
'abcd'

If you're using Python 3 you need to prepend:

>>> from functools import reduce

since the builtin reduce() has been removed from Python 3 and now lives in functools.reduce().

besides str.join which is the most natural way, a possibility is to use io.StringIO and abusing writelines to write all elements in one go:

import io

a = ['a','b','c','d']

out = io.StringIO()
out.writelines(a)
print(out.getvalue())

prints:

abcd

When using this approach with a generator function or an iterable which isn't a tuple or a list, it saves the temporary list creation that join does to allocate the right size in one go (and a list of 1-character strings is very expensive memory-wise).

If you're low in memory and you have a lazily-evaluated object as input, this approach is the best solution.

g = ['a', 'b', 'c', 'd']
f=''
for i in range(0,len(g)):
    f=f+g[i]
print f
  • 3
    -1, This is less clear and more verbose than the existing answers. – Michael Anderson Sep 25 '12 at 7:11
  • +1 useful for me because I need to skip some elements of the list. – Steve Jan 16 '13 at 12:21
  • steve: that's what comprehensions are for :) – osirisgothra Jul 27 '15 at 13:48
  • unpythonic as hell, and has quadratic complexity. Try on a 10000000 element list. – Jean-François Fabre Dec 4 at 20:49
    str = ''
    for letter in a:
        str += letter
    print str
  • 6
    @DanielExcinsky plus it's shadowing the str builtin... – Jon Clements Nov 30 '12 at 14:29

protected by Jon Clements Aug 21 '13 at 13:29

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