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.

i have an array like this:

$array =  array('domain1.com','domain2.net','domain3.org');

any way to replace only these domains into links with preg_replace?

currently have this little function, but parses all the domains:

                function insert_referer($text){
                    $text = preg_replace('#(script|about|applet|activex|chrome):#is', "\\1:", $text);
                    $ret = ' ' . $text;
                    $ret = preg_replace("#(^|[\n ])([\w]+?://[\w\#$%&~/.\-;:=,?@\[\]+]*)#is", "\\1<a href=\"\\2\" target=\"_blank\">\\2</a>", $ret);
                    $ret = preg_replace("#(^|[\n ])((www|ftp)\.[\w\#$%&~/.\-;:=,?@\[\]+]*)#is", "\\1<a href=\"http://\\2\" target=\"_blank\">\\2</a>", $ret);
                    $ret = substr($ret, 1);
                    return $ret;
                }         
share|improve this question

1 Answer 1

This code does what you wanted:

$array = array('domain1.com','domain2.net','domain3.org');
$text = 'Some text including domain1.com/something and http://domain3.org';
echo preg_replace('/((?:https?:\/\/)?(?:' . implode('|', $array) . ')[-a-zA-Z0-9\._~:\/?#\[\]@\!\$&\'\(\)\*\+,;=]*)/', '\1', $text);
// Outputs:
// "Some text including <a href="domain1.com/something">domain1.com/something</a> and <a href="http://domain3.org">http://domain3.org</a>"

I didn't test the code itself so it may (I don't think it would but it's possible) contain typos, but I tested the regexp itself and it works perfectly.

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.