545

Is it possible to split a string every nth character?

For example, suppose I have a string containing the following:

'1234567890'

How can I get it to look like this:

['12','34','56','78','90']
1

18 Answers 18

738
>>> line = '1234567890'
>>> n = 2
>>> [line[i:i+n] for i in range(0, len(line), n)]
['12', '34', '56', '78', '90']
4
  • 1
    @TrevorRudolph It only does exactly what you tell it. The above answer is really only just a for loop but expressed pythonically. Also, if you need to remember a "simplistic" answer, there are at least hundreds of thousands of ways to remember them: starring the page on stackoverflow; copying and then pasting into an email; keeping a "helpful" file with stuff you want to remember; simply using a modern search engine whenever you need something; using bookmarks in (probably) every web browser; etc.
    – dylnmc
    Nov 2, 2014 at 4:03
  • It is easier to understand but it has the downside that you must reference 'line' twice.
    – Damien
    Jan 5, 2016 at 14:33
  • 2
    Great for breaking up long lines for printing, e.g. for i in range(0, len(string), n): print(string[i:i+n])
    – PatrickT
    Aug 6, 2021 at 6:12
  • follows the philosophy, keeping it simple; that's pythonic elegance!
    – Minhaj
    Dec 16, 2021 at 10:24
305

Just to be complete, you can do this with a regex:

>>> import re
>>> re.findall('..','1234567890')
['12', '34', '56', '78', '90']

For odd number of chars you can do this:

>>> import re
>>> re.findall('..?', '123456789')
['12', '34', '56', '78', '9']

You can also do the following, to simplify the regex for longer chunks:

>>> import re
>>> re.findall('.{1,2}', '123456789')
['12', '34', '56', '78', '9']

And you can use re.finditer if the string is long to generate chunk by chunk.

5
  • 11
    This is by far the best answer here and deserves to be on top. One could even write '.'*n to make it more clear. No joining, no zipping, no loops, no list comprehension; just find the next two characters next to each other, which is exactly how a human brain thinks about it. If Monty Python were still alive, he'd love this method! Dec 12, 2018 at 1:27
  • 2
    This is the fastest method for reasonably long strings too: gitlab.com/snippets/1908857 Oct 30, 2019 at 16:03
  • 10
    This won't work if the string contains newlines. This needs flags=re.S.
    – Aran-Fey
    Nov 14, 2019 at 17:17
  • 1
    Yeah this is not a good answer. Regexes have so many gotchas (as Aran-Fey found!) that you should use them very sparingly. You definitely don't need them here. They're only faster because they're implemented in C and Python is crazy slow.
    – Timmmm
    Mar 22 at 15:17
  • This is fast but more_itertools.sliced seems more efficient.
    – FifthAxiom
    Jun 1 at 4:42
246

There is already an inbuilt function in python for this.

>>> from textwrap import wrap
>>> s = '1234567890'
>>> wrap(s, 2)
['12', '34', '56', '78', '90']

This is what the docstring for wrap says:

>>> help(wrap)
'''
Help on function wrap in module textwrap:

wrap(text, width=70, **kwargs)
    Wrap a single paragraph of text, returning a list of wrapped lines.

    Reformat the single paragraph in 'text' so it fits in lines of no
    more than 'width' columns, and return a list of wrapped lines.  By
    default, tabs in 'text' are expanded with string.expandtabs(), and
    all other whitespace characters (including newline) are converted to
    space.  See TextWrapper class for available keyword args to customize
    wrapping behaviour.
'''
10
  • 3
    print(wrap('12345678', 3)) splits the string into groups of 3 digits, but starts in front and not behind. Result: ['123', '456', '78'] May 20, 2019 at 19:20
  • 4
    It is interesting to learn about 'wrap' yet it is not doing exactly what was asked above. It is more oriented towards displaying text, rather than splitting a string to a fixed number of characters.
    – Oren
    Jun 5, 2019 at 15:21
  • 6
    wrap may not return what is asked for if the string contains space. e.g. wrap('0 1 2 3 4 5', 2) returns ['0', '1', '2', '3', '4', '5'] (the elements are stripped)
    – satomacoto
    Jun 20, 2019 at 9:22
  • 3
    This indeed answers the question, but what happens if there's spaces and you want them maintained in the split characters? wrap() removes spaces if they fall straight after a split group of characters Jul 5, 2019 at 18:56
  • 2
    This works poorly if you want to split text with hyphens (the number you give as argument is actually the MAXIMUM number of characters, not exact one, and it breaks i.e. on hyphens and white spaces). Aug 6, 2019 at 14:11
94

Another common way of grouping elements into n-length groups:

>>> s = '1234567890'
>>> map(''.join, zip(*[iter(s)]*2))
['12', '34', '56', '78', '90']

This method comes straight from the docs for zip().

5
  • 2
    In [19]: a = "hello world"; list( map( "".join, zip(*[iter(a)]*4) ) ) get the result ['hell', 'o wo']. Apr 18, 2013 at 15:54
  • 20
    If someone finds zip(*[iter(s)]*2) tricky to understand, read How does zip(*[iter(s)]*n) work in Python?. Jan 11, 2014 at 14:49
  • 17
    This does not account for an odd number of chars, it'll simply drop those chars: >>> map(''.join, zip(*[iter('01234567')]*5)) -> ['01234']
    – Bjorn
    Sep 15, 2014 at 19:39
  • 4
    To also handle odd number of chars just replace zip() with itertools.zip_longest(): map(''.join, zip_longest(*[iter(s)]*2, fillvalue=''))
    – user222758
    Jun 8, 2017 at 7:44
  • Also useful: docs for maps()
    – winklerrr
    Apr 23, 2019 at 11:17
74

I think this is shorter and more readable than the itertools version:

def split_by_n(seq, n):
    '''A generator to divide a sequence into chunks of n units.'''
    while seq:
        yield seq[:n]
        seq = seq[n:]

print(list(split_by_n('1234567890', 2)))
2
  • 8
    but not really efficient: when applied to strings: too many copies
    – Eric
    Aug 27, 2015 at 21:17
  • 1
    It also doesn't work if seq is a generator, which is what the itertools version is for. Not that OP asked for that, but it's not fair to criticize itertool's version not being as simple.
    – mikenerone
    Jun 28, 2017 at 20:47
35

Using more-itertools from PyPI:

>>> from more_itertools import sliced
>>> list(sliced('1234567890', 2))
['12', '34', '56', '78', '90']
33

I like this solution:

s = '1234567890'
o = []
while s:
    o.append(s[:2])
    s = s[2:]
17

You could use the grouper() recipe from itertools:

Python 2.x:

from itertools import izip_longest    

def grouper(iterable, n, fillvalue=None):
    "Collect data into fixed-length chunks or blocks"
    # grouper('ABCDEFG', 3, 'x') --> ABC DEF Gxx
    args = [iter(iterable)] * n
    return izip_longest(fillvalue=fillvalue, *args)

Python 3.x:

from itertools import zip_longest

def grouper(iterable, n, fillvalue=None):
    "Collect data into fixed-length chunks or blocks"
    # grouper('ABCDEFG', 3, 'x') --> ABC DEF Gxx"
    args = [iter(iterable)] * n
    return zip_longest(*args, fillvalue=fillvalue)

These functions are memory-efficient and work with any iterables.

1
  • Throwing an overflow when using very large strings (len=2**22*40)
    – FifthAxiom
    Jun 1 at 4:36
15

This can be achieved by a simple for loop.

a = '1234567890a'
result = []

for i in range(0, len(a), 2):
    result.append(a[i : i + 2])
print(result)

The output looks like ['12', '34', '56', '78', '90', 'a']

3
  • 3
    While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. May 22, 2020 at 18:41
  • 4
    This is the same solution as here: stackoverflow.com/a/59091507/7851470
    – Georgy
    May 22, 2020 at 20:23
  • 1
    This is the same solution as the top voted answer - except for the fact that the top answer is using list comprehension. Dec 7, 2020 at 4:54
9

I was stucked in the same scenrio.

This worked for me

x="1234567890"
n=2
list=[]
for i in range(0,len(x),n):
    list.append(x[i:i+n])
print(list)

Output

['12', '34', '56', '78', '90']
1
  • 1
    list is a reserved keyword in Python, you should change the variable name to something else such as my_list. Dec 4, 2020 at 1:38
8

Try the following code:

from itertools import islice

def split_every(n, iterable):
    i = iter(iterable)
    piece = list(islice(i, n))
    while piece:
        yield piece
        piece = list(islice(i, n))

s = '1234567890'
print list(split_every(2, list(s)))
1
  • Your answer doesn't meet OP's requirement, you have to use yield ''.join(piece) to make it work as expected: eval.in/813878
    – user222758
    Jun 8, 2017 at 8:15
7

Try this:

s='1234567890'
print([s[idx:idx+2] for idx,val in enumerate(s) if idx%2 == 0])

Output:

['12', '34', '56', '78', '90']
0
6
>>> from functools import reduce
>>> from operator import add
>>> from itertools import izip
>>> x = iter('1234567890')
>>> [reduce(add, tup) for tup in izip(x, x)]
['12', '34', '56', '78', '90']
>>> x = iter('1234567890')
>>> [reduce(add, tup) for tup in izip(x, x, x)]
['123', '456', '789']
0
5

As always, for those who love one liners

n = 2  
line = "this is a line split into n characters"  
line = [line[i * n:i * n+n] for i,blah in enumerate(line[::n])]
4
  • When I run this in Python Fiddle with a print(line) I get this is a line split into n characters as the output. Might you be better putting: line = [line[i * n:i * n+n] for i,blah in enumerate(line[::n])]? Fix this and it's a good answer :). May 20, 2016 at 20:24
  • Can you explain the ,blah and why it's necessary? I notice I can replace blah with any alpha character/s, but not numbers, and can't remove the blah or/and the comma. My editor suggests adding whitespace after , :s Jul 17, 2017 at 20:11
  • enumerate returns two iterables, so you need two places to put them. But you don't actually need the second iterable for anything in this case.
    – Daniel F
    Jul 27, 2017 at 9:18
  • 1
    Rather than blah I prefer to use an underscore or double underscore, see: stackoverflow.com/questions/5893163/…
    – Andy Royal
    Aug 15, 2017 at 10:39
3

more_itertools.sliced has been mentioned before. Here are four more options from the more_itertools library:

s = "1234567890"

["".join(c) for c in mit.grouper(2, s)]

["".join(c) for c in mit.chunked(s, 2)]

["".join(c) for c in mit.windowed(s, 2, step=2)]

["".join(c) for c in  mit.split_after(s, lambda x: int(x) % 2 == 0)]

Each of the latter options produce the following output:

['12', '34', '56', '78', '90']

Documentation for discussed options: grouper, chunked, windowed, split_after

0
3

A simple recursive solution for short string:

def split(s, n):
    if len(s) < n:
        return []
    else:
        return [s[:n]] + split(s[n:], n)

print(split('1234567890', 2))

Or in such a form:

def split(s, n):
    if len(s) < n:
        return []
    elif len(s) == n:
        return [s]
    else:
        return split(s[:n], n) + split(s[n:], n)

, which illustrates the typical divide and conquer pattern in recursive approach more explicitly (though practically it is not necessary to do it this way)

2

A solution with groupby:

from itertools import groupby, chain, repeat, cycle

text = "wwworldggggreattecchemggpwwwzaz"
n = 3
c = cycle(chain(repeat(0, n), repeat(1, n)))
res = ["".join(g) for _, g in groupby(text, lambda x: next(c))]
print(res)

Output:

['www', 'orl', 'dgg', 'ggr', 'eat', 'tec', 'che', 'mgg', 'pww', 'wza', 'z']
0

These answers are all nice and working and all, but the syntax is so cryptic... Why not write a simple function?

def SplitEvery(string, length):
    if len(string) <= length: return [string]        
    sections = len(string) / length
    lines = []
    start = 0;
    for i in range(sections):
        line = string[start:start+length]
        lines.append(line)
        start += length
    return lines

And call it simply:

text = '1234567890'
lines = SplitEvery(text, 2)
print(lines)

# output: ['12', '34', '56', '78', '90']

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