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I don't really know how they're called, the matches between brackets but variables seems legit. Anyway I have set up a custom ( or not so much ) markup to save links into my databases so that they'll be easier to fetch and it goes like so [url]http://www.url.com[TextToDisplay]. I'm now trying to create a facebook-like algorithm that will detect youtube videos and embed them automatically instead of showing a link but I've come across this weird problem.

Say we have the custom url markup as:

[url]http://www.youtube.com/watch?v=WEGbZeaMvtg&list=RDproO6qMsR0Y[www.youtube.com]

Then I use this preg_replace

preg_replace('/\[url\].*?youtube\.com.*?(v=(.*?)&?)?.*?\[.*?\]/i','[yt]$1[/yt]',$s);

and the result is

[yt][/yt]

Supposed to be

[yt]WEGbZeaMvtg[/yt]

I also tried $2 and $0. $0 turned out to be the whole string and $2 is empty just like $1. My question si why are those "Regex variables" empty?

Sandbox: http://sandbox.onlinephpfunctions.com/code/e408254542d0bbea2f5635ba2d3c8d3a23f844eb

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I believe the 'matches between brackets' are called captures. –  shennan Nov 16 '13 at 12:58
    
@shennan got the note –  php_nub_qq Nov 16 '13 at 12:58
2  
do you really need to have the v= part optional? Its easy to do if you force the v= bit to be there. - as all of the answers do –  OGHaza Nov 16 '13 at 13:16
    
@OGHaza that's what I just noticed and thought to myself, am I retarded.. /facepalm –  php_nub_qq Nov 16 '13 at 13:26
    
@php_nub_qq, just fyi, your original code worked if you removed the question marks in (v=(.*?)&?)? and got the value from $2 –  OGHaza Nov 16 '13 at 13:29

4 Answers 4

up vote 2 down vote accepted
preg_replace('/\[url\].*?youtube\.com.*?v=(.*?)[\&|].*?\[.*?\]/is', '[yt]$1[/yt]', $s);
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you are welcome –  waza123 Nov 16 '13 at 13:27
    
Hey, can you explain what this does exactly [\&|]? Because I'm having trouble matching two links in one string, as well as an url that doesn't have & in it :/ –  php_nub_qq Nov 16 '13 at 14:29

Try with this one. It also extracts the second part (the name between brackets):

preg_replace('/\[url\].*?youtube\.com.*\?v=([^&]*)&[^[]*\[([^]]*)\]/i','[yt]$1 -> $2[/yt]',$str);

Observe how [^&]* indicates a block of text that does not contains the & char.

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This is the one that worked for me:

$str = '[url]http://www.youtube.com/watch?v=WEGbZeaMvtg&list=RDproO6qMsR0Y[www.youtube.com]';

$str = preg_replace('/\[url\].*?youtube\.com.*?v=.*?(.*)\&.*\[www\.youtube\.com\]/i','[yt]$1[/yt]',$str);

echo $str;
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You have multiple sequences of lazy matching and a few optional sections, so what your regex is doing is:

/\[url\].*?youtube\.com.*?(v=(.*?)&?)?.*?\[.*?\]/i
                       ^^^ match as few as possible, done: 0

                                     ^ optional, done, skipped

                                      ^^^ match as few as possible, done: '/watch?v=WEGbZeaMvtg&list=RDproO6qMsR0Y' will match here

You need to write your regex so that there is only one possible solution. In your case you could use for example negated charater classes to accomplish that.

To illustrate.

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