Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I am using the following to automatically add tags to any detected URL in a comment, before insertion into the database.

$pattern = "@\b(https?://)?(([0-9a-zA-Z_!~*'().&=+$%-]+:)?[0-9a-zA-Z_!~*'().&=+$%-]+\@)?(([0-9]{1,3}\.){3}[0-9]{1,3}|([0-9a-zA-Z_!~*'()-]+\.)*([0-9a-zA-Z][0-9a-zA-Z-]{0,61})?[0-9a-zA-Z]\.[a-zA-Z]{2,6})(:[0-9]{1,4})?((/[0-9a-zA-Z_!~*'().;?:\@&=+$,%#-]+)*/?)@";

$text_with_hyperlink = stripslashes(preg_replace($pattern, '<a href="\0" class="oembed">\0</a>', $body));

Everything works great apart from the fact that I wish any URL's that are typed without 'http://' to have it added to the beginning of the url.


With the above code a comment containing 'come visit our site'

returns come visit our site <a href=""></a>

However if a user types 'come visit our site'

I wish it to return the url complete with an http:// prefix.

How would I go about modifying my code to produce this kind of detection?

EDIT: My apologies for failing to mention originally the the solution should also be capabale of detecting non www. domains such as m.facebook or ideally.

share|improve this question
and this:… – Zulkhaery Basrul Jan 23 '12 at 13:09
Wrong, wrong and wrong. Have you even read the question? – Madara Uchiha Jan 23 '12 at 13:19
Zulkhaery, thanks for the suggestions but none of these solutions seem to detect the presence of the http:// prefix and add it if it is omitted which is what I need. They do however offer other (and potentially better) methods of detecting the URL. So thank you for that. – gordyr Jan 23 '12 at 13:20

2 Answers 2

up vote 1 down vote accepted

One quick and dirty solution would be to replace www.? with http://www.? As follows:

$text_with_hyperlink = preg_replace("|(?<!http://)(www\.\S+)|", "http://$1", $text_with_hyperlink);

Place it before the <a> adding code, it will transform all to

share|improve this answer
The only problem with that is if the user doesn't include the www (e.g. or has another subdomain (e.g. or Ultimately, what should be done is a preg match to see if the string is a URL and then check to see if the first part matches http or https, and if not, add it. – imkingdavid Jan 23 '12 at 13:31
Yes well, this is endless. You need to set a standard and follow it, otherwise I'll always be able to find another tweak to break the regex. – Madara Uchiha Jan 23 '12 at 13:36
Thanks Truth... Your solution does indeed work exactly as requested in the question. Howevever, I will wait an hour or two before marking it as answered (Stefans answer performs the same as your own) in the hope that someone can offer a solution which does take in to account non www. domains. My apologies for not being more clear in the question, it was an oversight. – gordyr Jan 23 '12 at 14:01
The thing is, it's impossible to determine whether a URL is valid or not without visiting it, and that might open the door to a world of hurt. You can't know whether is real just as much as you can't know if is real. – Madara Uchiha Jan 23 '12 at 14:05
Indeed... And this is a point I am taking seriously. Encapsulating all variations of url's will not be possible. However I certainly would like to include the more common forms such as and etc. if at all possible. – gordyr Jan 23 '12 at 14:06

Maybe this here is what you are looking for:

//Edit: What about this one:

$body = $_GET['body'];
$pattern = "/(\\s+)((?:[a-z][a-z\\.\\d\\-]+)\\.(?:[a-z][a-z\\-]+))(?![\\w\\.])/is";
$text_with_hyperlink = preg_replace($pattern, '<a href="http://\\0" class="oembed">\0</a>', $body);
$text_with_hyperlink = preg_replace("/(http)(:)(\\/)(\\/)(\\s+)/is", "http://", $text_with_hyperlink);
echo $text_with_hyperlink;

(Very dirty, i know...)

share|improve this answer
Thanks stefan... Please see my coment on Truth's answer as it applies to your own also. Thanks for the good suggestion however. – gordyr Jan 23 '12 at 14:02
Think i got it... – Stefan Jan 23 '12 at 14:51
use this as regex: $regex='((?:[a-z][a-z\\.\\d\\-]+)\\.(?:[a-z][a-z\\-]+))(?![\\w\\.])'; – Stefan Jan 23 '12 at 14:51
sorry the last one causes delimiter problems, this one works for me: "((?:[a-z][a-z\\.\\d\\-]+)\\.(?:[a-z][a-z\\-]+))(?![\\w\\.])/is" – Stefan Jan 23 '12 at 15:09
This actually works perfectly in all cases apart from when the user types the http://. in such a case I get the http:// twice... once as text in the text string and a second time within the url. Very close however! – gordyr Jan 23 '12 at 15:10

Your Answer


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.