lau*_*kok 12 php youtube url vimeo
如何编写函数来检查提供的URL是youtube还是vimeo?
例如,我将这两个URL存储在数据库中作为字符串,
http://vimeo.com/24456787
http://www.youtube.com/watch?v=rj18UQjPpGA&feature=player_embedded
如果URL是youtube,那么我将重写URL,
http://www.youtube.com/embed/rj18UQjPpGA?rel=0&wmode=transparent
如果URL是vimeo,那么我将重写此URL,
http://vimeo.com/moogaloop.swf?clip_id=24456787
谢谢.
Sto*_*osh 27
使用该parse_url功能将URL拆分,然后进行正常检查
$url = 'http://www.youtube.com/watch?v=rj18UQjPpGA&feature=player_embedded';
$parsed = parse_url($url);
会给你这个数组
array
'scheme' => string 'http' (length=4)
'host' => string 'www.youtube.com' (length=15)
'path' => string '/watch' (length=6)
'query' => string 'v=rj18UQjPpGA&feature=player_embedded' (length=37)
Ico*_*ood 13
正如其他人在评论中指出的那样,这是一个快速而肮脏的解决方案,不能很好地处理边缘情况.如果网址包含"youtube"(example.com/youtube),则会返回误报.下面提到的parse_url()解决方案是一个更强大的解决方案.
正则表达式适用于此类事物,但通常strpos或substr性能更快.查看PHP文档preg_match().在这些例子下面有一个关于这件事的说明.
这是原型代码:
function videoType($url) {
if (strpos($url, 'youtube') > 0) {
return 'youtube';
} elseif (strpos($url, 'vimeo') > 0) {
return 'vimeo';
} else {
return 'unknown';
}
}
显然返回一个字符串不是最好的主意,但你明白了.替换自己的业务逻辑.
Amp*_*ign 10
我最近编写了此函数来实现此目的,希望它对某人有用:
/**
* [determineVideoUrlType used to determine what kind of url is being submitted here]
* @param string $url either a YouTube or Vimeo URL string
* @return array will return either "youtube","vimeo" or "none" and also the video id from the url
*/
public function determineVideoUrlType($url) {
$yt_rx = '/^((?:https?:)?\/\/)?((?:www|m)\.)?((?:youtube\.com|youtu.be))(\/(?:[\w\-]+\?v=|embed\/|v\/)?)([\w\-]+)(\S+)?$/';
$has_match_youtube = preg_match($yt_rx, $url, $yt_matches);
$vm_rx = '/(https?:\/\/)?(www\.)?(player\.)?vimeo\.com\/([a-z]*\/)*([??0-9]{6,11})[?]?.*/';
$has_match_vimeo = preg_match($vm_rx, $url, $vm_matches);
//Then we want the video id which is:
if($has_match_youtube) {
$video_id = $yt_matches[5];
$type = 'youtube';
}
elseif($has_match_vimeo) {
$video_id = $vm_matches[5];
$type = 'vimeo';
}
else {
$video_id = 0;
$type = 'none';
}
$data['video_id'] = $video_id;
$data['video_type'] = $type;
return $data;
}