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Using Python and regex I am trying to find words in a piece of text that start with a capital letter but are not at the start of a sentence.

The best way I can think of is to check that the word is not preceded by a full stop then a space. I am pretty sure that I need to use negative lookbehind. This is what I have so far, it will run but always returns nothing:

(?<!\.\s)\b[A-Z][a-z]*\b

I think the problem might be with the use of [A-Z][a-z]* inside the word boundary \b but I am really not sure.

Thanks for the help.

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3 Answers 3

up vote 1 down vote accepted

Your regex appears to work:

In [6]: import re

In [7]: re.findall(r'(?<!\.\s)\b[A-Z][a-z]*\b', 'lookbehind. This is what I have')
Out[7]: ['I']

Make sure you're using a raw string (r'...') when specifying the regex.

If you have some specific inputs on which the regex doesn't work, please add them to your question.

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Thanks for that, it was that I wasn't using the raw string prefix. Works perfectly now. –  egd Jan 5 '12 at 16:30

Try and loop over your input with:

(?!^)\b([A-Z]\w+)

and capture the first group. As you can see, a negative lookahead can be used as well, since the position you want to match is everything but a beginning of line. A negative lookbehind would have the same effect.

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Although you asked specifically for a regex, it may be interesting to also consider a list comprehension. They're sometimes a bit more readable (although in this case, probably at the cost of efficiency). Here's one way to achieve this:

import string

S = "T'was brillig, and the slithy Toves were gyring and gimbling in the " + \
    "Wabe. All mimsy were the Borogoves, and the Mome Raths outgrabe."

LS = S.split(' ')

words = [x for (pre,x) in zip(['.']+LS, LS+[' '])
    if (x[0] in string.uppercase) and (pre[-1] != '.')]
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