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I'm having trouble with preg_replace and I'm not sure that I use correct function.

I'm usign function below in order to change youtube links into youtube embed videos. But I couldn't findout how I only get matched part and remove the rest?

I mean for instance :

when I use this function it's change to matched part an embed code. But I couldnt achieve to remove "&feature=1" part.

Should I use preg_replace for that or any other function can do what I'm trying?


function convert_videos($string) {
    $rules = array(
'#http://(www\.)?vimeo\.com/(\w+)?#i' => '<object width="450" height="320" data="$2&amp;;show_title=1&amp;show_byline=1&amp;show_portrait=0&amp;color=&amp;fullscreen=1"></object>'

    foreach ($rules as $link => $player)
        $string = preg_replace($link, $player, $string);

    return $string;
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3 Answers 3

up vote 0 down vote accepted

Your pattern doesn't match the entire string, and preg_replace will only replace what your pattern matches. You can use this pattern instead:

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Just working great! Thank you – Mertafor Jan 14 '12 at 19:56

& isn't part of \w that's it. I'd go with \S (not a space) instead.

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edit: typo + backslash

You can use backreference for your (.*) values in your case


you can use \\1 for getting www. and \\2 for getting the values which you catch by (\w+)

or was this not what you want?

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in fact I'm not good at regular expressions. I have long list for different video websites. for instance youtube : '#http://(www\.)?youtube\.com/watch\?v=([^ &\n]+)(&.*?(\n|\s))?#i' I can't findout how can I ignore the rest of youtube link – Mertafor Jan 14 '12 at 19:47
I mean it could be something like : 'some words some other words' I just want to ignore unmatched part – Mertafor Jan 14 '12 at 19:51

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