3

I am trying to parse strings in such a way as to separate out all word components, even those that have been contracted. For example the tokenization of "shouldn't" would be ["should", "n't"].

The nltk module does not seem to be up to the task however as:

"I wouldn't've done that."

tokenizes as:

['I', "wouldn't", "'ve", 'done', 'that', '.']

where the desired tokenization of "wouldn't've" was: ['would', "n't", "'ve"]

After examining common English contractions, I am trying to write a regex to do the job but I am having a hard time figuring out how to match "'ve" only once. For example, the following tokens can all terminate a contraction:

n't, 've, 'd, 'll, 's, 'm, 're

But the token "'ve" can also follow other contractions such as:

'd've, n't've, and (conceivably) 'll've

At the moment, I am trying to wrangle this regex:

\b[a-zA-Z]+(?:('d|'ll|n't)('ve)?)|('s|'m|'re|'ve)\b

However, this pattern also matches the badly formed:

"wouldn't've've"

It seems the problem is that the third apostrophe qualifies as a word boundary so that the final "'ve" token matches the whole regex.

I have been unable to think of a way to differentiate a word boundary from an apostrophe and, failing that, I am open to advice for alternative strategies.

Also, I am curious if there is any way to include the word boundary special character in a character class. According to the Python documentation, \b in a character class matches a backspace and there doesn't seem to be a way around this.

EDIT:

Here's the output:

>>>pattern = re.compile(r"\b[a-zA-Z]+(?:('d|'ll|n't)('ve)?)|('s|'m|'re|'ve)\b")
>>>matches = pattern.findall("She'll wish she hadn't've done that.")
>>>print matches
[("'ll", '', ''), ("n't", "'ve", ''), ('', '', "'ve")]

I can't figure out the third match. In particular, I just realized that if the third apostrophe were matching the leading \b, then I don't know what would be matching the character class [a-zA-Z]+.

2

You can use the following complete regexes :

import re
patterns_list = [r'\s',r'(n\'t)',r'\'m',r'(\'ll)',r'(\'ve)',r'(\'s)',r'(\'re)',r'(\'d)']
pattern=re.compile('|'.join(patterns_list))
s="I wouldn't've done that."

print [i for i in pattern.split(s) if i]

result :

['I', 'would', "n't", "'ve", 'done', 'that.']
1
  • 1
    Thanks. But this also matches the poorly formed "wouldn't've've" which I would like to ignore.
    – Schemer
    Jan 20 '15 at 21:07
2
(?<!['"\w])(['"])?([a-zA-Z]+(?:('d|'ll|n't)('ve)?|('s|'m|'re|'ve)))(?(1)\1|(?!\1))(?!['"\w])

EDIT: \2 is the match, \3 is the first group, \4 the second and \5 the third.

3
  • Thanks. But, this gets confused on "She'll wish she hadn't've've done that." and returns a lot of extraneous groups other times.
    – Schemer
    Jan 20 '15 at 21:10
  • Can you provide some examples so we know what to test for? I edited my code so it works with some of my examples and yours. Demo: regex101.com/r/iV4cX6/1
    – AMDcze
    Jan 20 '15 at 21:41
  • Your look ahead/behind assertions pointed me to this: \b(?<!')[a-zA-Z]+('s|'m|'re|'ve)|(?:('ll|'d|n't)('ve)?)(?!')\b which solves the task as it is at the moment. The apostrophes were being matched as word boundaries but at the beginning of 've as well as at the end. Also, I might have died and gone to hell before I noticed that mismatched bracket. Thanks!
    – Schemer
    Jan 20 '15 at 21:49
1

You can use this regex to tokenize the text:

(?:(?!.')\w)+|\w?'\w+|[^\s\w]

Usage:

>>> re.findall(r"(?:(?!.')\w)+|\w?'\w+|[^\s\w]", "I wouldn't've done that.")
['I', 'would', "n't", "'ve", 'done', 'that', '.']
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  • 1
    Thanks. But this pattern doesn't exclude the poorly formed "wouldn't've've".
    – Schemer
    Jan 20 '15 at 20:51
1
>>> import nltk
>>> nltk.word_tokenize("I wouldn't've done that.")
['I', "wouldn't", "'ve", 'done', 'that', '.']

so:

>>> from itertools import chain
>>> [nltk.word_tokenize(i) for i in nltk.word_tokenize("I wouldn't've done that.")]
[['I'], ['would', "n't"], ["'ve"], ['done'], ['that'], ['.']]
>>> list(chain(*[nltk.word_tokenize(i) for i in nltk.word_tokenize("I wouldn't've done that.")]))
['I', 'would', "n't", "'ve", 'done', 'that', '.']
0

Here a simple one

text = ' ' + text.lower() + ' '
text = text.replace(" won't ", ' will not ').replace("n't ", ' not ') \
    .replace("'s ", ' is ').replace("'m ", ' am ') \
    .replace("'ll ", ' will ').replace("'d ", ' would ') \
    .replace("'re ", ' are ').replace("'ve ", ' have ')

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