Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My regex is poor and letting me down so some help would be great here.

All I want to do is return all the links which appear in a tweet (just a string) - Some examples are:

"Great summary http://mytest.com/blog/post.html (#test)

"http://mytest.com/blog/post.html (#test)

"post: http://mytest.com/blog/post.html"

It should also support multiple links like: "read http://mytest.com/blog/post.html and http://mytest.com/blog/post_two.html"

Any help would be great!

Thanks

Ben

share|improve this question
    
It depends how specific you want to get. Perhaps posting the regex you used, and the cases you are not catching might be useful. –  Andrei Vajna II Sep 13 '09 at 0:55

4 Answers 4

Try this one:

/\bhttps?:\/\/\S+\b/

Update:

To catch links beginning with "www." too (no "http://" prefix), you could try this:

/\b(?:https?:\/\/|www\.)\S+\b/

share|improve this answer
    
I think you can post links in tweets without the http(s). So this will fail something like "I really like www.this-site.com." –  Andrei Vajna II Sep 13 '09 at 1:02
    
Hmm. Interesting. Good comment. I updated my answer to detect links starting with "www." too. –  Asaph Sep 13 '09 at 1:12
1  
Ok, now how about "Wow, stackoverflow.com is great!"? :P –  Andrei Vajna II Sep 13 '09 at 1:31
    
Yea to Andrei's comment: If you're going to go so far as to worry about starting without http:// you should just check for the non-space characters before all TLDs –  Nerdling Sep 13 '09 at 1:41

Here's a code snippet from a site I wrote that parses a twitter feed. It parses links, hash tags, and twitter usernames. So far it's worked fine. I know it's not Ruby, but the regex should be helpful.

if(tweetStream[i] != null)
                    {
                        var str = tweetStream[i].Text;
                        var re = new Regex(@"http(s)?:\/\/\S+");
                        MatchCollection mc = re.Matches(tweetStream[i].Text);

                        foreach (Match m in mc)
                        {
                            str = str.Replace(m.Value, "<a href='" + m.Value + "' target='_blank'>" + m.Value + "</a>");
                        }
                        re = new Regex(@"(@)(\w+)");
                        mc = re.Matches(tweetStream[i].Text);
                        foreach (Match m in mc)
                        {
                            str = str.Replace(m.Value, "<a href='http://twitter.com/" + m.Value.Replace("@",string.Empty) + "' target='_blank'>" + m.Value + "</a>");
                        }
                        re = new Regex(@"(#)(\w+)");
                        mc = re.Matches(tweetStream[i].Text);
                        foreach (Match m in mc)
                        {
                            str = str.Replace(m.Value, "<a href='http://twitter.com/#search?q=" + m.Value.Replace("#", "%23") + "' target='_blank'>" + m.Value + "</a>");
                        }
                        tweets += string1 + "<div>" + str + "</div>" + string2;
                    }
share|improve this answer

Found this one here

^(?#Protocol)(?:(?:ht|f)tp(?:s?)\:\/\/|~/|/)?(?#Username:Password)(?:\w+:\w+@)?(?#Subdomains)(?:(?:[-\w]+\.)+(?#TopLevel Domains)(?:com|org|net|gov|mil|biz|info|mobi|name|aero|jobs|museum|travel|[a-z]{2}))(?#Port)(?::[\d]{1,5})?(?#Directories)(?:(?:(?:/(?:[-\w~!$+|.,=]|%[a-f\d]{2})+)+|/)+|\?|#)?(?#Query)(?:(?:\?(?:[-\w~!$+|.,*:]|%[a-f\d{2}])+=(?:[-\w~!$+|.,*:=]|%[a-f\d]{2})*)(?:&(?:[-\w~!$+|.,*:]|%[a-f\d{2}])+=(?:[-\w~!$+|.,*:=]|%[a-f\d]{2})*)*)*(?#Anchor)(?:#(?:[-\w~!$+|.,*:=]|%[a-f\d]{2})*)?$
share|improve this answer
    
+1 for making me smile. :D –  Andrei Vajna II Sep 13 '09 at 2:27

I realize this question is from 2009, but Twitter's API now returns URLs (and expands t.co links).

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.