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I'm struggling with what I imagine is quite a simple regex for a preg_match_all() call. I'm looking to mimic the Wikimedia style internal links system which will turn something like this [[link]] into a link.

I'm looking for a regex that will search a string for any example of [[foobar]] and return "foobar" to me. foobar should really be wild.

I've tried the following:

<?php
 $content = "Lorem ipsum dolor [[sit]] amet, consectetur adipiscing [[elit]].";
 $links = preg_match_all("[[*]]",$content,$matches);
 print_r($matches);
?>

I'm not getting much of anything. Any help would be appreciated.

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4 Answers 4

up vote 1 down vote accepted

You need to escape [ as \[ and then match the overall expression with the un-greedy flag U.

$content = "Lorem ipsum dolor [[sit]] amet, consectetur adipiscing [[elit]].";
$links = preg_match_all("/\[\[(.*)]]/U",$content,$matches);
print_r($matches);

Array(
    [0] => Array (
        [0] => [[sit]]
        [1] => [[elit]]
    )
    [1] => Array (
        [0] => sit
        [1] => elit
    )
)

EDIT: user ridgerunner pointed out that it's considered bad practice to use the /U modifier because it turns all matching quantifiers greedy, including ungreedy ones. The suggested matching code is (.*?) instead of what's posted above, and it produces the same equivalent answer.

$links = preg_match_all("/\[\[(.*?)]]/",$content,$matches);
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+1 for good explanation, valid code –  ChrisForrence Apr 23 '13 at 13:55
    
Thanks for this, I can't accept for another 10 minutes, just counting down the time –  Allerion Apr 23 '13 at 13:56
    
Appreciate the courtesy. Cheers! –  pp19dd Apr 23 '13 at 15:21
    
NEVER USE THE U FLAG! Best practice is to always use the ? ungreedy modifier on the quantifier itself right in the regex. There is never a case where the 'U' modifier is required and the only purpose it serves is to confuse. I rarely downvote an answer but until this is fixed, I am giving this answer my downvote. (Fix it and I'll remove my downvote) –  ridgerunner Apr 23 '13 at 15:56
    
Purpose of my answer was to show where the guy took the latest wrong turn, not to point out when he made a strategic blunder. Appreciate your explanation and respect your downvote, but I won't be threatened into changing an answer. –  pp19dd Apr 23 '13 at 16:01
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* alone doesn't mean anything. It's a quantifier, it needs to be with something else. In this case, a dot . would do (means "anything"). Also, you can use lazy quantifiers instead of greedy ones to stop as soon as you encounter ]].
So...

$links = preg_match_all("/\[\[(.*?)]]/",$content,$matches);

Edit:
You have to escape the [ as they mark the beginning of character classes.

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1  
A possessive quantifier with a negative character set would be more appropriate than lazy quantifiers. –  Jack Apr 23 '13 at 13:56
    
Thanks for the extra info on ways to go about it. –  Allerion Apr 23 '13 at 13:57
    
+1 for good explanation, alternate solution, valid code –  ChrisForrence Apr 23 '13 at 13:58
    
Works well. +1 for the ?. But note @Jacks comment –  hek2mgl Apr 23 '13 at 14:02
    
@Jack fair enough. Though I think lazy quantifiers will make the regex more efficient than using a negative character class. –  Loamhoof Apr 23 '13 at 14:15
show 6 more comments
preg_match_all("/\[\[([^\]]*?)\]\]/i",$content,$matches);
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+1 for valid code –  ChrisForrence Apr 23 '13 at 13:57
    
The ? and i are unnecessary. –  MikeM Apr 23 '13 at 14:01
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Use the following pattern /\[\[(.*)\]\]/U :

$content = "Lorem ipsum dolor [[sit]] amet, consectetur adipiscing [[elit]].";
$links = preg_match_all("/\[\[(.*)\]\]/U",$content,$matches);
print_r($matches);

Explanation. The regex needs to start and end with a delimiter its the /. Square brackets [ have to be escaped in a regex like \[. The content between the brackets must be inside a capture group (.*). At last the ungreedy modifier is been used U to make sure that only the content between the nearest brackets will get captured. (remove to see its functionality)

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+1 for valid code, good explanation –  ChrisForrence Apr 23 '13 at 13:57
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