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I have some random string, let's say :

s = "This string has some verylongwordsneededtosplit"

I'm trying to write a function trunc_string(string, len) that takes string as argument to operate on and 'len' as the number of chars after long words will be splitted.

The result should be something like that

str = trunc_string(s, 10)
str = "This string has some verylongwo rdsneededt osplit"

For now I have something like this :

def truncate_long_words(s, num):
"""Splits long words in string"""
words = s.split()
for word in words:
    if len(word) > num:
        split_words = list(words)

After this part I have this long word as a list of chars. Now I need to :

  • join 'num' chars together in some word_part temporary list
  • join all word_parts into one word
  • join this word with the rest of words, that weren't long enough to be splitted.

Should I make it in somehow similar way ? :

counter = 0
for char in split_words:
    word_part.append(char)
    counter = counter+1
    if counter == num

And here I should somehow join all the word_part together creating word and further on

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Why not use a regular expression to detect the long words. For example, this regular expression would match any words that are more that 10 consecutive non-white-space character and less than 1000 consecutive non-white-space characters: [^\s]{10,1000} –  Lonnie Best Mar 17 '10 at 19:59
    
Is this for word-wrap purposes? If so, you could use a hyphenation library that will be much more intelligent about where it chooses to split words. –  Daniel Stutzbach Mar 17 '10 at 20:45

4 Answers 4

up vote 3 down vote accepted

Why not:

  def truncate_long_words(s, num):
     """Splits long words in string"""
     words = s.split()
     for word in words:
        if len(word) > num:
                for i in xrange(0,len(word),num):
                       yield word[i:i+num]
        else:
            yield word

 for t in truncate_long_words(s):
    print t
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def split_word(word, length=10):
    return (word[n:n+length] for n in range(0, len(word), length))

string = "This string has some verylongwordsneededtosplit"

print [item for word in string.split() for item in split_word(word)]
# ['This', 'string', 'has', 'some', 'verylongwo', 'rdsneededt', 'osplit']

Note: it's a bad idea to name your string str. It shadows the built in type.

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very clean solution, i like it a lot. –  Adrien Plisson Mar 17 '10 at 20:24

Abusing regex:

import re
def trunc_string(s, num):
   re.sub("(\\w{%d}\\B)" % num, "\\1 ", s)

assert "This string has some verylongwo rdsneededt osplit" == trunc_string("This string has some verylongwordsneededtosplit", 10)

(Edit: adopted simplification by Brian. Thanks. But I kept the \B to avoid adding a space when the word is exactly 10 characters long.)

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1  
Simpler: return re.sub('([a-zA-Z]{%d})' % num,'\\1 ',s) –  Brian Mar 17 '10 at 20:00

an option is the textwrap module
http://docs.python.org/2/library/textwrap.html

example usage:

>>> import textwrap
>>> s = "This string has some verylongwordsneededtosplit"
>>> list = textwrap.wrap(s, width=10)
>>> for line in list: print line;
... 
This
string has
some veryl
ongwordsne
ededtospli
t
>>>
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