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'm using the following code to add <span> tags behind <a> tags.

$html = preg_replace("~<a.*?href=\"$url\".*?>.*?</a>~i", "$0<span>test</span>", $html);

The code is working fine for regular links (ie. http://www.google.com/), but it will not perform a replace when the contents of $url are $link$/3/.

This is example code to show the (mis)behaviour:

<?php
    $urls = array();
    $urls[] = '$link$/3/';
    $urls[] = 'http://www.google.com/';

    $html = '<a href="$link/3/">Test Link</a>' . "\n" . '<a href="http://www.google.com/">Google</a>';

    foreach($urls as $url) {
        $html = preg_replace("~<a.*?href=\"$url\".*?>.*?</a>~i", "$0<span>test</span>", $html);
    }

    echo $html;
?>

And this is the output it produces:

<a href="$link$/3/">Test Link</a>
<a href="http://www.google.com/">Google</a><span>test</span>
share|improve this question
2  
regular expressions aren't for parsing HTML –  Ben James Jan 7 '10 at 17:23

4 Answers 4

up vote 3 down vote accepted

$url = preg_quote($url, '~'); the dollar signs are interpreted as usual: end-of-input.

share|improve this answer
    
D'oh. I totally that my dollar signs would match EOL/EOI. I will escape them to avoid this issue. Thank you for the quick reply! –  user215361 Jan 7 '10 at 17:30

just somebody is correct; you must escape your special regex characters if you mean for them to be interpreted as literal.

It also looks to me like it can't perform the replace because it never makes a match.

Try replacing this line:

$urls[] = '$link$/3/';

With this:

$urls[] = '$link/3/';
share|improve this answer
    
+1 this change is needed as well. –  gameover Jan 7 '10 at 17:32
    
That's impossible because that's the dynamic input my script is getting. I just made it static to show where it fails. –  user215361 Jan 7 '10 at 17:35
    
Do you mean to say that $link should refer to a variable? In that case, you must either concatenate the $link variable to '/3/' or enclose the whole thing in double quotes instead of single. $urls[] = "$link/3/"; –  Mikuso Jan 8 '10 at 8:55
    
I meant to say that that line is 100% correct. That is the data I'm getting from the database. I just used single quotes to demonstrate it. I got it working perfectly now using preg_quote(). –  user215361 Jan 8 '10 at 8:57

$ is considered a special regex character and needs to be escaped. Use preg_quote() to escape $url before passing it to preg_replace().

$url = preg_quote($url, '~');
share|improve this answer

$ has special meaning in regex. End of line. Your expression is being expanded like this:

$html = preg_replace("~<a.*?href=\"$link$/3/\".*?>.*?</a>~i", "$0<span>test</span>", $html);

Which fails because it can't find "link" between two end of lines. Try escaping the $ in the $urls array:

$urls[] = '\$link\$/3/';
share|improve this answer

Your Answer

 
discard

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