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Is there any PHP function that defines whether a given link is a video, picture or neither.

For example:

$link = www.example.com/342kddd23
$a = phpfunction($link);

If $link is a video link; $a = 1, if $link is a picture link $a = 2, if $link is not defined (it could be a normal link) $a = 0.

Is that possible? If so, are there any existing functions like that?

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your link: $link = www.xxx.com/342kddd23 is it to youtube videos and pictures or actual files of videos and pictures because if its files you can just do a detect on the file extension. –  SubstanceD Aug 9 '13 at 13:59

2 Answers 2

It doesn't exist but you can make your own function. It can be based on domain or extension or both...

For example you can list most common video and pics hosting and check if domain correspond.

Very basic:

$videos_services =  array('www.youtube.com', 'www.vimeo.com');
$pics_services    =  array('www.flickr.com', 'www.imageshack.us');

function urlType($myUrl)
{
   $url  = parse_url($myUrl);
   $host = $url['host'];

   if(in_array($host, $videos_services))
   {
       return 1;
   }
   elseif(in_array($host, $pics_services))
   {
       return 2;
   }
   else
   {
       return 0;
   }
}

becareful, it's a very simple example but you have to deal with url like http://youtube.com or http://www.youtu.be etc.

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The problem with this approach is that it would think that youtube.com/yt/about (for example) was a video. –  middaparka Aug 9 '13 at 14:11
    
You're right but he can combine differents check. –  Dragu Aug 9 '13 at 14:16
    
Yes, but with this solution you'll just end up endlessly tweaking the rules, but I guess this is the only viable solution if you're talking about a URL to a page that might contain a video as opposed to a direct link to a image/video. –  middaparka Aug 9 '13 at 14:49

I don't believe such a library exists (there's no built-in function I'm aware of).

You could of course attempt to develop your own, but you'll endlessly be chasing your tail if you plan to go beyond simply checking to see if there's a known file extension such as ".mp4", ".png", etc. due to the fact that you'll need to construct an increasingly large list of matching URL schemas. (This would also imply that a given link may only return a single type of content, which is often not the case.)

Assuming that you're looking for video and image files themselves (and not simply URLs that contain a video, etc.) an alternative (more accurate) approach would be request each link (perhaps using cURL with CURLOPT_HEADER enabled), see what content headers are returned (specifically "Content-Type") and take things from there.

Update

As a follow-up based on @smassey's excellent comment, setting the CURLOPT_NOBODY option (once again via curl_setopt) will send a HEAD request, hence ensuring you don't actually download any of the content beyond the response headers themselves.

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1  
Adding to this, don't make a normal GET/POST request but instead send an HTTP HEAD request as to not explode your bandwidth/max_execution_time while trying to download mp4s ;) The HTTP HEAD request is answered with only the headers and not the actual content. Cheers - –  smassey Aug 9 '13 at 14:11
    
@smassey Speaks wise words. I've updated my answer to incorporate this. –  middaparka Aug 9 '13 at 14:14

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