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I'm trying to write a regex word count, but most of the examples I've found only cover a portion of the following situations:

  1. hello,there = should be 2 words (note there is no space after the comma)
  2. hello , there = should be 2 words (note the space before and after the comma)
  3. $10,000 = should be 1 word
  4. hello there ? = should be 2 words (note the space before the question mark)
  5. hello-there = should be 2 words
  6. http://www.google.com = should be 1 word
  7. http://www.google.com/analytics = should be 1 word

I'm currently using the following code in jquery

var total_words = $.trim($("#mytextbox").value).split(/[\s\-\.\\\/\?\!]+/).length

but it only covers situations #3 and #5.

Covering URLs is less of a priority to me.

Any help would be appreciated!

share|improve this question
2  
You need a natural language parser (NLP), not a regex. See devdirective.com/post/131/… – JDB Feb 1 '13 at 19:01
    
@Cyborgx37 I agree that that would be the fastest (computing wise) method however coding a NLP for word count when RegEx can do it is just...well too much work unless this is a heavy consumed page or service. – abc123 Apr 30 '13 at 18:17
    
@abc123 - I didn't mean that an NLP would be faster (it probably would not be). I mean that counting "words" in a natural language is beyond the capabilities of even the most powerful regex engines. It is safe to assume that the OP's "following situations" are not exhaustive. For example, "google.com" should probably be counted as one word, but "I have a cat.I also have a dog." should be counted as 9 words (rather than 8). "hello-there" should, apparently, be counted as 2 words, but "pre-emptive" is clearly 1 word. Regex is simply not designed to handle these kinds of problems. – JDB Apr 30 '13 at 19:16
    
I'd add that even defining a "word" can be tricky. Some might argue that "office-mate" is one word while others would argue for two. How "many" words there are depends on what you are trying to accomplish. And if you don't care that much about accuracy, then why bother with complicated word-counting rules in the first place? (Don't even get started with contractions.) – JDB Apr 30 '13 at 19:24
up vote 0 down vote accepted

The following RegEx will work for all your examples:

var total_words = /(\b(https?|ftp):\/\/([\-A-Z0-9.]+)(\/[\-A-Z0-9+&@#\/%=~_|!:,.;]*)?(\?[A-Z0-9+&@‌​#\/%=~_|!:,.;]*)?)|[+-]?[0-9]{1,3}(?:,?[0-9]{3})*(?:\.[0-9]{2})?|(&)|('\w+)|(\w+'‌​\w+)|(\w+')|(\w+)/gi

This RegEx was converted from JSoft to JavaScript:

(\b((?#protocol)https?|ftp)://((?#domain)[-A-Z0-9.]+)((?#file)/[-A-Z0-9+&@#/%=~_|!:,.;]*)?((?#parameters)\?[A-Z0-9+&@#/%=~_|!:,.;]*)?)|[+-]?[0-9]{1,3}(?:,?[0-9]{3})*(?:\.[0-9]{2})?|\w+

This first section defines any url type item:

(\b((?#protocol)https?|ftp)://((?#domain)[-A-Z0-9.]+)((?#file)/[-A-Z0-9+&@#/%=~_|!:,.;]*)?((?#parameters)\?[A-Z0-9+&@#/%=~_|!:,.;]*)?)

The section section is for currency with or without decimals:

[+-]?[0-9]{1,3}(?:,?[0-9]{3})*(?:\.[0-9]{2})?

Finally the third section matches words:

\w+
share|improve this answer
1  
Using it as var total_words = $.trim($("#mytextbox").value).match(/(\b(https?|ftp):\/\/([\-A-Z0-9.]+)(\/[\-A-Z‌​0-9+&@#\/%=~_|!:,.;]*)?(\?[A-Z0-9+&@#\/%=~_|!:,.;]*)?)|[+-]?[0-9]{1,3}(?:,?[0-9]{‌​3})*(?:\.[0-9]{2})?|\w+/i).length; seems to always return a null value, no matter what I type. – user2033573 Feb 1 '13 at 20:42
1  
Thanks, I think I figured it out. I changed the regex to /(\b(https?|ftp):\/\/([\-A-Z0-9.]+)(\/[\-A-Z0-9+&@#\/%=~_|!:,.;]*)?(\?[A-Z0-9+&‌​@#\/%=~_|!:,.;]*)?)|[+-]?[0-9]{1,3}(?:,?[0-9]{3})*(?:\.[0-9]{2})?|\w+/gi and that seems to have done the trick! – user2033573 Feb 1 '13 at 21:19
1  
not a problem, updated answer to your regex mentioned. I just did a conversion to JavaScript RegEx, unfortunately i didn't test it. – abc123 Feb 1 '13 at 21:21
1  
updated the regex to var total_words = /(\b(https?|ftp):\/\/([\-A-Z0-9.]+)(\/[\-A-Z0-9+&@#\/%=~_|!:,.;]*)?(\?[A-Z0-9+&@‌​#\/%=~_|!:,.;]*)?)|[+-]?[0-9]{1,3}(?:,?[0-9]{3})*(?:\.[0-9]{2})?|(&)|('\w+)|(\w+'‌​\w+)|(\w+')|(\w+)/gi that will count words with apostrophes (e.g. it's, they're, 'quote') as a single word and will count ampersands as a word (e.g. you & me = 3 words). – user2033573 Apr 18 '13 at 17:50
    
updated answer again to make sure people don't get confused, good updates. – abc123 Apr 30 '13 at 18:14

Since javascripts regex engine evaluate's from left-to-right you can specify more specific regex and then more general regex at the end

\b(https?://\S+|\d+(,\d+)+|\w+)\b 
   ------------  --------- ---
         |           |      |->general
         |           |->less specific
         |->more specific regex
share|improve this answer
    
Counts 1,000,000 as two words, http://fail.com/?major=fail would be tree words. – Qtax Feb 1 '13 at 19:17
    
Thanks. However, using a split on this expression seems to only cover situations 3, 6, and 7. – user2033573 Feb 1 '13 at 20:28

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