23

Using Python I need to insert a newline character into a string every 64 characters. In Perl it's easy:

s/(.{64})/$1\n/

How could this be done using regular expressions in Python? Is there a more pythonic way to do it?

30

Same as in Perl, but with a backslash instead of the dollar for accessing groups:

s = "0123456789"*100 # test string
import re
print re.sub("(.{64})", "\\1\n", s, 0, re.DOTALL)

re.DOTALL is the equivalent to Perl's s/ option.

  • QUERY: If the source string is s2="0123456789"*200 , your solution seems to be broken, who only inserts exactly 16 '\n' (on Python 2.7.1). Any fix? – Jimm Chen Apr 22 '13 at 7:43
  • Nice find. The problem was that there is another parameter "count" between the search string and the flags (re.DOTALL). Since I forgot that parameter, re.DOTALL (value 16) was used as maximum number of replacements. – AndiDog Apr 22 '13 at 8:47
  • @AndiDog: is there a way to use a variable instead of 64? – Forethinker Jul 5 '13 at 22:57
  • Well, just insert your number instead of 64 ?! – AndiDog Jul 6 '13 at 12:51
  • 1
    I think @Forethinker meant "use a variable", not "use a different constant". "(.{%d})"%varname seems a bit hackish; there must be a better way. – wizzwizz4 Mar 30 '17 at 16:05
23

without regexp:

def insert_newlines(string, every=64):
    lines = []
    for i in xrange(0, len(string), every):
        lines.append(string[i:i+every])
    return '\n'.join(lines)

shorter but less readable (imo):

def insert_newlines(string, every=64):
    return '\n'.join(string[i:i+every] for i in xrange(0, len(string), every))

The code above is for Python 2.x. For Python 3.x, you want to use range and not xrange:

def insert_newlines(string, every=64):
    lines = []
    for i in range(0, len(string), every):
        lines.append(string[i:i+every])
    return '\n'.join(lines)

def insert_newlines(string, every=64):
    return '\n'.join(string[i:i+every] for i in range(0, len(string), every))
  • 5
    This solution is an order of magnitude faster. timeit.timeit says 100000 executions of the regexp solution take 27.8 seconds, while 100000 executions of your shorter solution take 4.45 seconds). – badp Apr 17 '10 at 10:28
  • 4
    I'd also say that the shorter version is the "most pythonic" one: a one-liner, quite elegant, using generators and the join method. – Philipp Apr 17 '10 at 11:20
14

I'd go with:

import textwrap
s = "0123456789"*100
print '\n'.join(textwrap.wrap(s, 64))
  • 5
    textwrap is space aware, so this won't handle "12345 "*100 correctly. – badp Apr 17 '10 at 10:11
9

taking @J.F. Sebastian's solution one step further, and this is nearly criminal :-)

import textwrap
s = "0123456789"*100
print textwrap.fill(s, 64)

look ma... no regexes! because as you know... http://regex.info/blog/2006-09-15/247

thanks for introducing us to textwrap module... although it's been in Python since 2.3, i've never been aware of it until now (yes, i'll admit that publically)!!

  • textwrap is space aware, so this won't handle "12345 "*100 correctly. – badp Apr 17 '10 at 10:14
  • transform (safely) and back? thx tho! – wescpy Apr 17 '10 at 10:26
4

Tiny, not nice:

"".join(s[i:i+64] + "\n" for i in xrange(0,len(s),64))
3

I suggest the following method:

"\n".join(re.findall("(?s).{,64}", s))[:-1]

This is, more-or-less, the non-RE method taking advantage of the RE engine for the loop.

On a very slow computer I have as a home server, this gives:

$ python -m timeit -s 's="0123456789"*100; import re' '"\n".join(re.findall("(?s).{,64}", s))[:-1]'
10000 loops, best of 3: 130 usec per loop

AndiDog's method:

$ python -m timeit -s "s='0123456789'*100; import re" 're.sub("(?s)(.{64})", r"\1\n", s)'
1000 loops, best of 3: 800 usec per loop

gurney alex's 2nd/Michael's method:

$ python -m timeit -s "s='0123456789'*100" '"\n".join(s[i:i+64] for i in xrange(0, len(s), 64))'
10000 loops, best of 3: 148 usec per loop

I don't consider the textwrap method to be correct for the specification of the question, so I won't time it.

EDIT

Changed answer because it was incorrect (shame on me!)

EDIT 2

Just for the fun of it, the RE-free method using itertools. It rates third in speed, and it's not Pythonic (too lispy):

"\n".join(
   it.imap(
     s.__getitem__,
     it.imap(
       slice,
       xrange(0, len(s), 64),
       xrange(64, len(s)+1, 64)
     )
   )
 )

$ python -m timeit -s 's="0123456789"*100; import itertools as it' '"\n".join(it.imap(s.__getitem__, it.imap(slice, xrange(0, len(s), 64), xrange(64, len(s)+1, 64))))'
10000 loops, best of 3: 182 usec per loop
  • This doesn't seem to work correctly. If you put more than 64 characters in it outputs a newline after every character rather than after every 64 characters. – bignum Apr 17 '10 at 15:40
  • Spot on, biffabacon. Fixed it. – tzot Apr 17 '10 at 21:01
  • Your answer is very helpful TZΩΤΖΙΟΥ. Many thanks. – bignum Apr 18 '10 at 5:46
1

itertools has a nice recipe for a function grouper that is good for this, particularly if your final slice is less than 64 chars and you don't want a slice error:

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)

Use like this:

big_string = <YOUR BIG STRING>
output = '\n'.join(''.join(chunk) for chunk in grouper(big_string, 64))

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