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I saw a few posts on this but they were for PHP (I need JavaScript (actually ActionScript (...because ActionScript extends JavaScript))) so my question is how to only capture up to a comma, period, question mark or exclamation point.

This is what I have so far,

instructionText.replace(/(https?:\/\/\w.*[\w])/gi, "<a href='$1' target='_blank'>$1</a>");

But when I use the text, "Visit http://www.google.com. Hello world" it captures the hello world part.

The result of the capture group above is "http://google.com. Hello world ". Obviously I don't want anything after the URL. They should be simple URL's.

Mainly, I just want to add a check for any of these ".,!?" or a space character and end the capture group. It doesn't have to be perfect.

BTW Not sure if you have something to test your RegEx first but if not you can use RegExr.

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Sounds like you need a non-capturing group. Have you ever looked at www.regular-expressions.info ? –  BlackVegetable Jan 15 '13 at 17:04
    
He also should look at the Lookahead Assertions section. –  Barmar Jan 15 '13 at 17:21

4 Answers 4

up vote 1 down vote accepted

Assuming no space in the urls and a space or end of string after them:

instructionText.replace( /(https?:\/\/\S+?)(?=[.,!?]?(\s|$))/g, "<a href='$1' target='_blank'>$1</a>" );

It captures 'http[s]://' and non-space characters as few times as possible until looking ahead there is optionally one of .,!?, and then a space or the end of string.

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Problem is that you are capturing .* followed by a \w which means any amount of anything followed by a word...

/(https?:\/\/\w.*[\w])/

You need to make your wildcard capture ungreedy...

/(https?:\/\/\w.*?[\w])/

So it will capture as few characters as possible before capturing a \w


EDIT: More info

Additionally, your regex is very simple, and unfortunately, capturing url's is quite complex, because there are so many variations of what is valid and what is not. You will need to set yourself a clear line where you define what you consider to be a good match for a url in your context.

If you wanted to ensure valid top level domains for example, you would have to include something like this...

/https?:\/\/\w.*?\.(com|org|co\.uk| ... etc ... )/

Which becomes obsolete as soon as a new top level domain is registered.

If you want to match anything starting with a protocol, and up to the next space, something like this should do...

/[a-zA-Z]+:\/\/\S+/

Good luck!

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This will only capture http://ww –  Max Jan 15 '13 at 17:12

In your regex you're looking for as many characters as possible (.* is greedy), where the last character is a \w character. Try this (a quick edit to your regex). It should work on domains with or without the presence of the www., and domains with a two or three letter tld.

https?\:\/\/(www\.)?\w*?\.\w{2,3}(?=[\W])
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Almost. This captures the period at the end URL. –  1.21 gigawatts Jan 15 '13 at 17:15
    
\w\w\w? is more clearly (IMHO) written as \w{2,3}. [^\w] is the same as \W. –  Barmar Jan 15 '13 at 17:18
    
updated to reflect comments, and not capture the last character (the period). I figured \w\w\w? or \w{2,3} were the same number of characters, so may as well write it long. I agree though, for the sake of clarity 2,3 is easier to read. –  Max Jan 15 '13 at 17:23
    
That works if you put parenthesis around part of it. So this, (https?\:\/\/(www\.)?\w*?\.\w{2,3})(?=[\W]) –  1.21 gigawatts Jan 15 '13 at 21:20
https?\:\/\/((www\\.)?\w*?(\\.\w{2,7})+)(?=\\.|\\,|\\?|\\!|\s)

i guess (?=\\.|\\,|\\?|\\!|\s) this is the part you were looking for?

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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. –  ChrisF Jan 15 '13 at 20:12

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