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My code:

        url: '<my key..>',
        dataType: 'jsonp',
        success: function(response) {

Firebug says "invalid label". But when i visit the url in my browser, i see:

{"Url":"http:\/\/\/7Wm7","SongID":8815585,"SongName":"Moonlight Sonata","ArtistID":1833,"ArtistName":"Beethoven","AlbumID":258724,"AlbumName":"Beethoven: Piano Sonatas"}

Looks like a corret json-string to me. Am i missing something? Thanks!

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Could you share more of the surrounding code? Perhaps there is something the matter there. – Pelshoff Aug 10 '11 at 10:35

3 Answers 3

up vote 1 down vote accepted

That's JSON. You're asking for a JSONp string in the dataType, which would require your output to be wrapped in a function.

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Ok, well since its on another domain i suppose its need to be jsonp? – Johan Aug 10 '11 at 10:46
Yes, which means the other domain has to support building the JSONp. – John Green Aug 10 '11 at 10:49
Ok, but when i specify json as the format, this is what i get. Is there any other way to solve this from my side, or do they have to supply me with a jsonp-object instead? – Johan Aug 10 '11 at 11:21
Either they have to supply you with a JSONp object, or you have to create a bridge on the same server as your primary. The server then gets the JSON, and simply wraps it in a JSONp function. This requires some level of access to executable server code, whether it be PHP, JSP, C# or whatever else you might be using. It is pretty drop-dead simple in PHP: <?php echo $_REQUEST['jsoncallback'].'('.file_get_contents('http://server/data.json').')'; ?> This is simplistic, I like to use serial #s and other goo for this sort of thing, but this is illustrative. – John Green Aug 10 '11 at 11:28
Thanks John, guess ill have to do it on the serverside – Johan Aug 10 '11 at 12:10


$.getJSON('<my key..>&callback=?', function(data){
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Thanks, but didnt work... – Johan Aug 10 '11 at 10:47
Did it spit back the same error? – rickyduck Aug 10 '11 at 10:57

One possible solution is here. Hovewer, if you are performing request from the same domain, you dont have to use jsonp, so you could replace dataType: 'jsonp', with dataType: 'json',

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Its cross-domain. – Johan Aug 10 '11 at 10:46

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