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This is my regular expression:

/^\[y\](.*?)\[\/y\]/

This is my subject:

youtube is here [y]2GJSVlIGmQI[/y]

but preg_match() doesn't match anything from my subject.

And also is there a better solution to capture the code inside the [y] [/y]'s?

Thanks!

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2  
You have to remove ^ char from your regex. –  Buddy Aug 28 '11 at 15:27
1  
You should use a different delimiter than / so that you don’t have to escape it, and use the /x modifier so that you have a chance at reading the damn thing: preg_match('@ \[ y \] ( .*? ) \[ /y \] @x', ....... –  tchrist Aug 28 '11 at 15:48

3 Answers 3

up vote 1 down vote accepted

You have to remove ^ char from your regex. ^ char matches the start of a string.

$str = 'youtube is here [y]2GJSVlIGmQI[/y]';

preg_match('/\[y\](.*?)\[\/y\]/', $str, $arr);

// 2GJSVlIGmQI
echo $arr[1];
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Thank you so much for answering both my questions :) Very helpful! –  fenerlitk Aug 28 '11 at 15:54

You need to remove the ^ at the beginning, like this:

/\[y\](.*?)\[\/y\]/

What the ^ does is match that expression only if it is at the start of the string. Removing it means the expression will match the pattern anywhere in the string.

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Thank you very much! :) it worked! –  fenerlitk Aug 28 '11 at 15:51
    
@fenerlitk No problem. Don't forget to mark this as the correct answer if you see it as such :-) –  Bojangles Aug 28 '11 at 15:55
    
I really appreciate your answer and believe it is the correct answer as well as Buddy's answer but I chose Buddy's answer as the correct answer because 1. He answered both of my questions, and 2. He had less reputation than yours, so I wanted to be fare. I wish I could mark both answers as correct. Thanks again. :) –  fenerlitk Aug 28 '11 at 17:25
1  
No worries! The most important thing here is that you get a correct one. It's my fault I didn't see your other question there. –  Bojangles Aug 28 '11 at 20:56

Use this: /\[y\](.*?)\[\/y\]/

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