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I've created my own newsletter module and come across one (big) problem. The system formats all urls with additional parameters to keep track of the clicks in google analytics.

e.g. A url like this

http://www.domain.com

becomes like this

http://www.domain.com/&utm_source=newsletter&utm_medium=e-mail&utm_campaign=test

and a url like this

http://www.domain.com/?page=1

becomes like this

http://www.domain.com/?page=1&utm_source=newsletter&utm_medium=e-mail&utm_campaign=test

The first example is bogus. I know the first ampersand has to be replaced by an ampersand and that's where the problem occurs. I'm using this pattern to extract url's

$pattern = array('#[a-zA-Z]+://([-]*[.]?[a-zA-Z0-9_/-?&%\{\}])*#');
$replace = array('\\0&utm_source=newsletter&utm_medium=e-mail&utm_campaign=test');
$body = preg_replace($pattern,$replace,$body);

Can anybody help me with a correct and working regex, so the first url parameter always contains a questionmark in stead of an ampersand?

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4  
Why don't you want to use strpos + concatenation? –  zerkms Apr 15 '11 at 13:23
    
if an answer solves your problem, you should accept it as a good answer by marking the green V under it. –  fingerman Apr 18 '11 at 14:07

4 Answers 4

up vote 1 down vote accepted

just use

if(strpos($string,'?') !== false)
//add with ampersand
else
//add with question mark
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Thanx, i've used your idea. –  Morgen32 Apr 18 '11 at 11:35

Not regex, but it would work. All it does is check for a ? and if it isn't found, change the first & to a question mark.:

$url = (substr_count($url, '?')>0) ? $url : str_replace('&', '?', $url, 1);
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A very simple approach would be to look for a string like http://...& where the ... contains no ? question mark or other delimiters:

= preg_replace('#(http://[^\s"\'<>?&]+)&#', '$1?', $src);

But it's probably best if you use a restricted instead of a negated character class:

$src = preg_replace('#(http://[\w/.]+)&#', '$1?', $src);
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This solution fixes all urls which have a query beginning with a & (and are missing the ?):

$re = '%([a-zA-Z]+://[^?&\s]+)&(utm_source=newsletter)%';
$body = preg_replace($re, '$1?$2', $body);
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