Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

code.google.com's API for PHP

I have used this function : function printVideoEntry($videoEntry) and got

Video ID: XXXXXXXXXXXXXXXXXXXXXXXXXX
Watch page: http://www.youtube.com/watch?v=YYYYYYYYYYYYYY&feature=youtube_gdata_player
Flash Player Url: http://www.youtube.com/v/YYYYYYYYYYYYY?version=3&f=playlists&app=youtube_gdata

If I pass given video id it gives me error:

Uncaught exception 'Zend_Gdata_App_HttpException' with message 'Expected response code 200, got 400 Invalid id'

And if I pass YYYYYYYYYYYYYYYYY from Watch page and Flash Player Url [both are same] I'm getting it what I need.

Help is much appreciated, Thanks in advance.

Using this function for getting video entries

function printVideoEntry($videoEntry) {
  echo "<div onclick=\"ytvbp.presentVideo('".$videoEntry->getVideoId()."')\" >";
  echo 'Video: '.$videoEntry->getVideoTitle() . "<br>";
  echo "</div>";
  echo 'Video ID: ' . $videoEntry->getVideoId() . "<br>";
  echo 'Watch page: ' . $videoEntry->getVideoWatchPageUrl() . "<br>";
  echo 'Flash Player Url: ' . $videoEntry->getFlashPlayerUrl() . "<br>";
} 

I'm calling print video function from

 function getAndPrintPlaylistVideoFeed($playlistListEntry) {
    $yt = new Zend_Gdata_YouTube();
    $playlistVideoFeed =  $yt->getPlaylistVideoFeed($playlistListEntry->getPlaylistVideoFeedUrl());
    foreach ($playlistVideoFeed as $playlistVideoEntry) {
    $getandprintplaylistvideofeed_array[] = printVideoEntry($playlistVideoEntry);
    }
share|improve this question
    
Apologies but this is first question form me on stackoverflow.. –  Milap Gajjar Feb 1 '12 at 14:51

1 Answer 1

$videoEntry should be a VideoEntry-object, which you can get based on an ID:

$videoEntry = $yt->getVideoEntry('the0KZLEacs');

Then you could call the function and set that as a parameter:

printVideoEntry($videoEntry);

Or you could edit the first lines of printVideoEntry:

function printVideoEntry($videoId) {
  $videoEntry = $yt->getVideoEntry('the0KZLEacs');
  //...
}

Check out the docs to see what information you can squeeze out of a VideoEntry =)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.