687

How do I split a string into a list of characters? str.split does not work.

"foobar"    →    ['f', 'o', 'o', 'b', 'a', 'r']
3

17 Answers 17

1210

Use the list constructor:

>>> list("foobar")
['f', 'o', 'o', 'b', 'a', 'r']

list builds a new list using items obtained by iterating over the input iterable. A string is an iterable -- iterating over it yields a single character at each iteration step.

4
  • 2
    In my opinion much better than the ruby method, you can convert between sequence types freely, even better, in C level.
    – arthurprs
    Feb 23, 2011 at 0:37
  • I want flag here to not do this ... but anyway if you want callable you could escape this behavior using cast_method = lambda x: [x]
    – madzohan
    Dec 18, 2017 at 20:01
  • @Doogle: Capabilities-wise while String is an object and split() can be called on it, list() is a function so it cannot be called on it.
    – karatedog
    Mar 12, 2021 at 22:18
  • This does not not work in the latest versions of R anymore, I think.
    – Delta._.43
    Mar 22, 2023 at 9:32
93

You take the string and pass it to list()

s = "mystring"
l = list(s)
print l
85

You can also do it in this very simple way without list():

>>> [c for c in "foobar"]
['f', 'o', 'o', 'b', 'a', 'r']
3
  • 4
    Welcome to stackoverflow. Would you mind extending the answer a little bit to explain how it solves the problem. Mar 24, 2015 at 6:07
  • 32
    This is a mere for, there's not much to explain. I think you should read the python tutorial on data structures, especially list comprehension.
    – WhyNotHugo
    Apr 3, 2015 at 0:52
  • 4
    This just means list(map(lambda c: c, iter("foobar"))), but more readable and meaningful.
    – InQβ
    Dec 12, 2017 at 1:26
55

If you want to process your String one character at a time. you have various options.

uhello = u'Hello\u0020World'

Using List comprehension:

print([x for x in uhello])

Output:

['H', 'e', 'l', 'l', 'o', ' ', 'W', 'o', 'r', 'l', 'd']

Using map:

print(list(map(lambda c2: c2, uhello)))

Output:

['H', 'e', 'l', 'l', 'o', ' ', 'W', 'o', 'r', 'l', 'd']

Calling Built in list function:

print(list(uhello))

Output:

['H', 'e', 'l', 'l', 'o', ' ', 'W', 'o', 'r', 'l', 'd']

Using for loop:

for c in uhello:
    print(c)

Output:

H
e
l
l
o

W
o
r
l
d
1
  • 2
    Are there differences in the performance characteristics of each of these methods?
    – qxzsilver
    Feb 17, 2020 at 17:14
41

If you just need an array of chars:

arr = list(str)

If you want to split the str by a particular delimiter:

# str = "temp//temps" will will be ['temp', 'temps']
arr = str.split("//")
0
25

I explored another two ways to accomplish this task. It may be helpful for someone.

The first one is easy:

In [25]: a = []
In [26]: s = 'foobar'
In [27]: a += s
In [28]: a
Out[28]: ['f', 'o', 'o', 'b', 'a', 'r']

And the second one use map and lambda function. It may be appropriate for more complex tasks:

In [36]: s = 'foobar12'
In [37]: a = map(lambda c: c, s)
In [38]: a
Out[38]: ['f', 'o', 'o', 'b', 'a', 'r', '1', '2']

For example

# isdigit, isspace or another facilities such as regexp may be used
In [40]: a = map(lambda c: c if c.isalpha() else '', s)
In [41]: a
Out[41]: ['f', 'o', 'o', 'b', 'a', 'r', '', '']

See python docs for more methods

2
  • The first way is very simple. Are there reasons people would want something more complex? Jun 28, 2018 at 3:45
  • Hello! First option is simple indeed. The second one, though, has better potential for handling more complex processing.
    – Oleksii M
    Jun 28, 2018 at 5:37
25

The task boils down to iterating over characters of the string and collecting them into a list. The most naïve solution would look like

result = []
for character in string:
    result.append(character)

Of course, it can be shortened to just

result = [character for character in string]

but there still are shorter solutions that do the same thing.

list constructor can be used to convert any iterable (iterators, lists, tuples, string etc.) to list.

>>> list('abc')
['a', 'b', 'c']

The big plus is that it works the same in both Python 2 and Python 3.

Also, starting from Python 3.5 (thanks to the awesome PEP 448) it's now possible to build a list from any iterable by unpacking it to an empty list literal:

>>> [*'abc']
['a', 'b', 'c']

This is neater, and in some cases more efficient than calling list constructor directly.

I'd advise against using map-based approaches, because map does not return a list in Python 3. See How to use filter, map, and reduce in Python 3.

1
  • 1
    I think the last proposal is very nice. But I don't see why you revisited some of the other approaches, (most of them) have been posted here already and distract from the amazing python 3.5 solution!
    – MSeifert
    Apr 5, 2016 at 17:38
19

split() inbuilt function will only separate the value on the basis of certain condition but in the single word, it cannot fulfill the condition. So, it can be solved with the help of list(). It internally calls the Array and it will store the value on the basis of an array.

Suppose,

a = "bottle"
a.split() // will only return the word but not split the every single char.

a = "bottle"
list(a) // will separate ['b','o','t','t','l','e']
17

Unpack them:

word = "Paralelepipedo"
print([*word])
11

To split a string s, the easiest way is to pass it to list(). So,

s = 'abc'
s_l = list(s) #  s_l is now ['a', 'b', 'c']

You can also use a list comprehension, which works but is not as concise as the above:

s_l = [c for c in s]

There are other ways, as well, but these should suffice. Later, if you want to recombine them, a simple call to "".join(s_l) will return your list to all its former glory as a string...

6

You can use extend method in list operations as well.

>>> list1 = []
>>> list1.extend('somestring')
>>> list1
['s', 'o', 'm', 'e', 's', 't', 'r', 'i', 'n', 'g']
4

If you wish to read only access to the string you can use array notation directly.

Python 2.7.6 (default, Mar 22 2014, 22:59:38) 
[GCC 4.8.2] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> t = 'my string'
>>> t[1]
'y'

Could be useful for testing without using regexp. Does the string contain an ending newline?

>>> t[-1] == '\n'
False
>>> t = 'my string\n'
>>> t[-1] == '\n'
True
3

Well, much as I like the list(s) version, here's another more verbose way I found (but it's cool so I thought I'd add it to the fray):

>>> text = "My hovercraft is full of eels"
>>> [text[i] for i in range(len(text))]
['M', 'y', ' ', 'h', 'o', 'v', 'e', 'r', 'c', 'r', 'a', 'f', 't', ' ', 'i', 's', ' ', 'f', 'u', 'l', 'l', ' ', 'o', 'f', ' ', 'e', 'e', 'l', 's']
2
  • camelcase = ''.join([text[i].upper() if i % 2 else text[i].lower() for i in range(len(text))]) Apr 1, 2020 at 13:14
  • @whereisalext - that's actually aLtErNaTiNg case. CamelCase looks likeThis or LikeThis.
    – GaryMBloom
    Dec 21, 2020 at 5:22
3
from itertools import chain

string = 'your string'
chain(string)

similar to list(string) but returns a generator that is lazily evaluated at point of use, so memory efficient.

1
  • 1
    Not sure where this would be more useful than the string itself, which is iterable.
    – Ry-
    May 21, 2020 at 10:13
3

Since strings are iterables, you can also use iterable unpacking to assign to a list. Below, the characters in my_string are unpacked into the my_list list.

my_string = "foobar"
*my_list, = my_string

print(my_list)   # ['f', 'o', 'o', 'b', 'a', 'r']

This is especially useful, if you need to save the first or last character into a separate variable.

first, *rest = "foobar"

print(first)  # f
print(rest)   # ['o', 'o', 'b', 'a', 'r']
1

Here is a nice script that will help you find which method is most efficient for your case:

import timeit
from itertools import chain

string = "thisisthestringthatwewanttosplitintoalist"

def getCharList(str):
  return list(str)

def getCharListComp(str):
  return [char for char in str]

def getCharListMap(str):
  return list(map(lambda c: c, str))

def getCharListForLoop(str):
  list = []
  for c in str:
    list.append(c)

def getCharListUnpack(str):
  return [*str]

def getCharListExtend(str):
  list = []
  return list.extend(str)

def getCharListChain(str):
  return chain(str)
 
time_list = timeit.timeit(stmt='getCharList(string)', globals=globals(), number=1)
time_listcomp = timeit.timeit(stmt='getCharListComp(string)', globals=globals(), number=1)
time_listmap = timeit.timeit(stmt='getCharListMap(string)', globals=globals(), number=1)
time_listforloop = timeit.timeit(stmt='getCharListForLoop(string)', globals=globals(), number=1)
time_listunpack = timeit.timeit(stmt='getCharListUnpack(string)', globals=globals(), number=1)
time_listextend = timeit.timeit(stmt='getCharListExtend(string)', globals=globals(), number=1)
time_listchain = timeit.timeit(stmt='getCharListChain(string)', globals=globals(), number=1)

print(f"Execution time using list constructor is {time_list} seconds")
print(f"Execution time using list comprehension is {time_listcomp} seconds")
print(f"Execution time using map is {time_listmap} seconds")
print(f"Execution time using for loop is {time_listforloop} seconds")
print(f"Execution time using unpacking is {time_listunpack} seconds")
print(f"Execution time using extend is {time_listextend} seconds")
print(f"Execution time using chain is {time_listchain} seconds")
1
  • 1
    Passing number=1 to timeit.timeit is probably not a good idea as a large number of iterations is required to get a reliable result. The default number=1000000 is a better amount. Jul 14, 2023 at 13:44
0

you can use

*var, = othervar

to convert it to a list

The code would look like this:

foo = "foobar"

*foolist, = foo

print(foolist)
['f', 'o', 'o', 'b', 'a', 'r']

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