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Ok, I know there's a lot of topics about this, and I've read a lot trying to get this to work. The task is to split a paragraph into separate sentences. I guess I'm not quite sure how regex works, as I've tried numerous variations, but nothing gives me the result I desire.

paragraph = "Mr. Smith bought for 1.5 million dollars, i.e. he "\
        "paid a lot for it.  Did he mind?  Adams Jones Jr. thinks he "\
        "didn't.  In any case, this isn't true...  Well, with a "\
        "probability of .9 it isn't."

sentenceEnd = re.compile('[.!?][\s]{1,2}(?=[A-Z])')
sentenceList = sentenceEnd.split(paragraph)

for sentence in sentenceList:

This is the code I've been attempting, and everywhere I look, it seems the [.?!][/s],etc. is what's recommended in re.compile. However, when I print the paragraph with this code, I just get:

Smith bought for 1.5 million dollars, i.e. he paid a lot for it
Did he mind
Adams Jones Jr. thinks he didn't
In any case, this isn't true..
Well, with a probability of .9 it isn't.

What am I missing or not understanding?


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Please write the desired output. It will help us to understand exactly what you want. – Pedro Lobito Apr 23 '14 at 6:29

1 Answer 1

You've done very well for not knowing regular expressions beforehand!

Your problem doesn't have as much to do with your code as much as it has to do with simple typographic ambiguity. How should a non-intelligent computer know that Mr. is not a sentence, since it technically follows the rule you prescribed? That is, a period followed by one or two spaces followed by an uppercase letter?

The word you may find useful next is heuristics. That is, you need a clever heuristic for approximating our intelligent way of separating sentences, as humans. This isn't necessarily an easy feat—the first Google result for searching sentence-splitting heuristics is this presentation involving Markov chains and other fancy schmancy ideas.

If you want to implement your own heuristic, you can for example exclude the cases where the period is preceded by a salutation, e.g. (?<!Mr|Mrs|Ms|Dr). I would also recommend putting the period in a zero-width assertion (i.e. a lookahead or lookbehind assertion) so that the period's not "eaten up" during the splitting.

Summary of Comments Below

To filter out salutations as sentence-enders:


Here's an Ideone demo.

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That's one of the issues I'm having. Also, why is the '?' disappearing? I've tried removing the space requirements and the uppercase letter rules, but it just makes everything worse. – Blackwell Apr 23 '14 at 5:36
All your ending punctuations are disappearing—because you're "eating them up." Contrast to this: (?<=[.!?])[\s]{1,2}(?=[A-Z]). By putting the punctuation in a zero-width assertion, you prevent them from becoming part of the split. – Andrew Cheong Apr 23 '14 at 5:40
To get you started, here's how you'd add to that expression to exclude prefixes: (?<=(?<!Mr|Mrs|Ms|Dr)[.!?])\s{1,2}(?=[A-Z]). What that's saying is, "A space (or two) that is (1) preceded by an ending punctuation which in turn is not preceded by one of those salutations, and (2) followed by an uppercase letter." – Andrew Cheong Apr 23 '14 at 5:44
Ok, so ?< refers to look behind? (I tested and got an error regarding look behind requiring a fixed width pattern.) I used... nevermind, just saw your previous comment. Let me play with that. – Blackwell Apr 23 '14 at 5:48
Oh, that's a pickle. Yes, in most implementations of regular expressions, a lookbehind assertion must always be of a fixed length (for sake of regex efficiency). The problem here is, I think, the Mrs, so a hacky trick would be to do (?<!.Mr|Mrs|.Ms|.Dr) instead—that is, force everything to be 3 characters. (By the way, . there is a wildcard, not a literal period.) – Andrew Cheong Apr 23 '14 at 5:51

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