208

How does one truncate a string to 75 characters in Python?

This is how it is done in JavaScript:

var data="saddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddsaddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddsadddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddd"
var info = (data.length > 75) ? data.substring[0,75] + '..' : data;

17 Answers 17

373
info = (data[:75] + '..') if len(data) > 75 else data
  • 49
    I would change the condition perhaps to len(data) > 77 to account for the double dots (it's pointless to a truncate only the last character only to replace it with a dot). – hasen May 13 '13 at 3:49
  • 4
    @hasenj: That wouldn't conform to the original code, but it's a good suggestion that I should have pointed out in the first place. – Marcelo Cantos May 14 '13 at 0:23
  • 2
    Note that the included parens are of course optional. – Taylor Edmiston Nov 24 '16 at 2:20
  • 7
    @TaylorEdmiston True, but they're quite helpful for those who don't remember all the precedence rules across the 5–10 languages they use daily. – Marcelo Cantos Nov 24 '16 at 2:26
  • 2
    @Anthony a slice – Marcelo Cantos Sep 29 '18 at 22:23
119

Even shorter :

info = data[:75] + (data[75:] and '..')
  • 2
    Funny approach to do it. Though it's still a composite one-liner. ^^ – Cheery May 20 '10 at 15:44
  • 2
    doesn't this solution have 77 characters if you include the '..' ? – Mark Chackerian Oct 18 '11 at 16:21
  • 1
    @MarkChackerian: Yes, as per the original code. – Marcelo Cantos Aug 20 '12 at 23:52
  • What a sneaky way ^^ Should be the accepted one. – Nam G VU Jul 2 '18 at 10:21
  • isn't this performing two slice operations? I wonder how this performs compared to say stackoverflow.com/a/52279347/1834057, when performance is crucial – Nicholas Hamilton Sep 9 at 22:54
95

Even more concise:

data = data[:75]

If it is less than 75 characters there will be no change.

  • 8
    Presumably he wants an ellipsis appended if the string is truncated. – FogleBird May 20 '10 at 13:41
  • 3
    You're right - I never noticed that. I can't think of a better way to do that than other answers. – neil May 20 '10 at 14:00
70

If you are using Python 3.4+, you can use textwrap.shorten from the standard library:

Collapse and truncate the given text to fit in the given width.

First the whitespace in text is collapsed (all whitespace is replaced by single spaces). If the result fits in the width, it is returned. Otherwise, enough words are dropped from the end so that the remaining words plus the placeholder fit within width:

>>> textwrap.shorten("Hello  world!", width=12)
'Hello world!'
>>> textwrap.shorten("Hello  world!", width=11)
'Hello [...]'
>>> textwrap.shorten("Hello world", width=10, placeholder="...")
'Hello...'
  • 7
    It seems to crap its pants on really long strings (no spaces) and outputs only the ellipsis. – elBradford Jul 26 '17 at 19:46
  • 3
    @elBradford (and interested others): that's because shorten() truncates words, not single characters. I searched but there doesn't seem a way to configure shorten() or a TextWrapper instance to clip single characters and not words. – Acsor Sep 10 '17 at 14:51
  • And it has the annoying side effect of removing line breaks – havlock Dec 7 '17 at 17:05
  • This does not solve OP’s question. It truncates by word and even removes whitespace. – Dodekeract Apr 24 at 15:32
27

For a Django solution (which has not been mentioned in the question):

from django.utils.text import Truncator
value = Truncator(value).chars(75)

Have a look at Truncator's source code to appreciate the problem: https://github.com/django/django/blob/master/django/utils/text.py#L66

Concerning truncation with Django: Django HTML truncation

9

You could use this one-liner:

data = (data[:75] + '..') if len(data) > 75 else data
8

With regex:

re.sub(r'^(.{75}).*$', '\g<1>...', data)

Long strings are truncated:

>>> data="11111111112222222222333333333344444444445555555555666666666677777777778888888888"
>>> re.sub(r'^(.{75}).*$', '\g<1>...', data)
'111111111122222222223333333333444444444455555555556666666666777777777788888...'

Shorter strings never get truncated:

>>> data="11111111112222222222333333"
>>> re.sub(r'^(.{75}).*$', '\g<1>...', data)
'11111111112222222222333333'

This way, you can also "cut" the middle part of the string, which is nicer in some cases:

re.sub(r'^(.{5}).*(.{5})$', '\g<1>...\g<2>', data)

>>> data="11111111112222222222333333333344444444445555555555666666666677777777778888888888"
>>> re.sub(r'^(.{5}).*(.{5})$', '\g<1>...\g<2>', data)
'11111...88888'
  • well that didn't worked when you have spaces in your string – holms Oct 19 '15 at 1:01
  • @holms it works for me! :) pastebin.com/28DR9xzL – Davide Guerri Jul 25 '16 at 8:36
  • Why would you use regex for such a simple case? – Bora M. Alper Aug 18 '16 at 12:14
5

This method doesn't use any if:

data[:75] + bool(data[75:]) * '..'

  • 3
    I wrote it only to show that it's possible. It's against python's readability philosophy. It doesn't have any performance advantage comparing with other "if" based methods. I never use it and I don't suggest you use it too. – Sassan Aug 23 '16 at 9:19
3

Yet another solution. With True and False you get a little feedback about the test at the end.

data = {True: data[:75] + '..', False: data}[len(data) > 75]
3
limit = 75
info = data[:limit] + '..' * (len(data) > limit)
  • 1
    This is the most elegant solution. Additionally I would extract the chars limit (in this case 75) into a variable to avoid inconsistencies. limit = 75; info = data[:limit] + '..' * (len(data) > limit) – ekauffmann Oct 25 '18 at 13:41
  • @ekauffmann I agree about the variable! – HelloGoodbye Oct 29 '18 at 19:20
1
       >>> info = lambda data: len(data)>10 and data[:10]+'...' or data
       >>> info('sdfsdfsdfsdfsdfsdfsdfsdfsdfsdfsdf')
           'sdfsdfsdfs...'
       >>> info('sdfsdf')
           'sdfsdf'
       >>> 
  • 1
    Please explain your answer? – Gwenc37 May 7 '14 at 14:28
  • similar example of this function def info2(data): if len(data)>10: return data[:10]+'...' else: return data lambda instruction of the nameless design in a functional style ex = lambda x:x+1 def ex(x): return x+1 – Spouk May 7 '14 at 19:48
1

You can't actually "truncate" a Python string like you can do a dynamically allocated C string. Strings in Python are immutable. What you can do is slice a string as described in other answers, yielding a new string containing only the characters defined by the slice offsets and step. In some (non-practical) cases this can be a little annoying, such as when you choose Python as your interview language and the interviewer asks you to remove duplicate characters from a string in-place. Doh.

1

This just in:

n = 8
s = '123'
print  s[:n-3] + (s[n-3:], '...')[len(s) > n]
s = '12345678'
print  s[:n-3] + (s[n-3:], '...')[len(s) > n]
s = '123456789'     
print  s[:n-3] + (s[n-3:], '...')[len(s) > n]
s = '123456789012345'
print  s[:n-3] + (s[n-3:], '...')[len(s) > n]

123
12345678
12345...
12345...
0

There's no need for a regular expression but you do want to use string formatting rather than the string concatenation in the accepted answer.

This is probably the most canonical, Pythonic way to truncate the string data at 75 characters.

>>> data = "saddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddsaddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddsadddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddddd"
>>> info = "{}..".format(data[:75]) if len(data) > 75 else data
>>> info
'111111111122222222223333333333444444444455555555556666666666777777777788888...'
  • I found it funny how your saddddddd... string turns into 111111...:) I know it's a copy-paste typo though, and I agree with you about regular expressions. – akarilimano Jan 29 '18 at 8:46
0

Here's a function I made as part of a new String class... It allows adding a suffix ( if the string is size after trimming and adding it is long enough - although you don't need to force the absolute size )

I was in the process of changing a few things around so there are some useless logic costs ( if _truncate ... for instance ) where it is no longer necessary and there is a return at the top...

But, it is still a good function for truncating data...

##
## Truncate characters of a string after _len'nth char, if necessary... If _len is less than 0, don't truncate anything... Note: If you attach a suffix, and you enable absolute max length then the suffix length is subtracted from max length... Note: If the suffix length is longer than the output then no suffix is used...
##
## Usage: Where _text = 'Testing', _width = 4
##      _data = String.Truncate( _text, _width )                        == Test
##      _data = String.Truncate( _text, _width, '..', True )            == Te..
##
## Equivalent Alternates: Where _text = 'Testing', _width = 4
##      _data = String.SubStr( _text, 0, _width )                       == Test
##      _data = _text[  : _width ]                                      == Test
##      _data = ( _text )[  : _width ]                                  == Test
##
def Truncate( _text, _max_len = -1, _suffix = False, _absolute_max_len = True ):
    ## Length of the string we are considering for truncation
    _len            = len( _text )

    ## Whether or not we have to truncate
    _truncate       = ( False, True )[ _len > _max_len ]

    ## Note: If we don't need to truncate, there's no point in proceeding...
    if ( not _truncate ):
        return _text

    ## The suffix in string form
    _suffix_str     = ( '',  str( _suffix ) )[ _truncate and _suffix != False ]

    ## The suffix length
    _len_suffix     = len( _suffix_str )

    ## Whether or not we add the suffix
    _add_suffix     = ( False, True )[ _truncate and _suffix != False and _max_len > _len_suffix ]

    ## Suffix Offset
    _suffix_offset = _max_len - _len_suffix
    _suffix_offset  = ( _max_len, _suffix_offset )[ _add_suffix and _absolute_max_len != False and _suffix_offset > 0 ]

    ## The truncate point.... If not necessary, then length of string.. If necessary then the max length with or without subtracting the suffix length... Note: It may be easier ( less logic cost ) to simply add the suffix to the calculated point, then truncate - if point is negative then the suffix will be destroyed anyway.
    ## If we don't need to truncate, then the length is the length of the string.. If we do need to truncate, then the length depends on whether we add the suffix and offset the length of the suffix or not...
    _len_truncate   = ( _len, _max_len )[ _truncate ]
    _len_truncate   = ( _len_truncate, _max_len )[ _len_truncate <= _max_len ]

    ## If we add the suffix, add it... Suffix won't be added if the suffix is the same length as the text being output...
    if ( _add_suffix ):
        _text = _text[ 0 : _suffix_offset ] + _suffix_str + _text[ _suffix_offset: ]

    ## Return the text after truncating...
    return _text[ : _len_truncate ]
  • whats with all the underscores in every single argument and variable? – Nicholas Hamilton Sep 9 at 22:50
0
info = data[:75] + ('..' if len(data) > 75 else '')
0
info = data[:min(len(data), 75)
  • Code only answers are generally considered low quality. Could you add an explanation to your answer. – Lemon Kazi Nov 5 at 4:30

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