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.

I'm wondering what route I should take to make this code work "as intended." The API call is asynchronous -- so the constructor returns before data is loaded.

addSongById: function (songId) {
    var song = new Song(songId);
    console.log(song);
    this.addSong(song);

    if (this.songCount() == 1)
        this.play();

    UserInterface.refresh();
    SongGrid.reload();
},

function Song(songId) {
    $.getJSON('http://gdata.youtube.com/feeds/api/videos/' + songId + '?v=2&alt=json-in-script&callback=?', function (data) {
        this.id = 'xxxxxxxx-xxxx-4xxx-yxxx-xxxxxxxxxxxx'.replace(/[xy]/g, function (c) { var r = Math.random() * 16 | 0, v = c == 'x' ? r : (r & 0x3 | 0x8); return v.toString(16); });
        this.songId = songId;
        this.url = "http://youtu.be/" + songId;
        this.name = data.entry.title.$t;
    });
}

Is it possible to force the constructor to not return prematurely? Ideally I wouldn't have to pass an arbitrary amount of parameters into the Song constructor and bring information only relevant to Song outside the scope of it..

share|improve this question
add comment

3 Answers 3

up vote 2 down vote accepted

You may want to use $.ajax instead of $.get with option async: false. However this will lock execution of every other javascript. And this may be a problem if for example the server won't respond for any reason.

Therefore this is a bad practice. Use callbacks, for example

function Song(songId, callback) {
    var self = this;
    $.getJSON('http://gdata.youtube.com/feeds/api/videos/' + songId + '?v=2&alt=json-in-script&callback=?', function (data) {
        self.id = 'xxxxxxxx-xxxx-4xxx-yxxx-xxxxxxxxxxxx'.replace(/[xy]/g, function (c) { var r = Math.random() * 16 | 0, v = c == 'x' ? r : (r & 0x3 | 0x8); return v.toString(16); });
        self.songId = songId;
        self.url = "http://youtu.be/" + songId;
        self.name = data.entry.title.$t;
        callback();
    });
}

var song = new Song(songId, function() {
    // The other code goes here.
});
share|improve this answer
    
I think this is what I want.. let me try it out, one sec. –  Sean Anderson Jun 6 '12 at 6:55
1  
this in the getJSON callback will not refer to the Song instance. –  lanzz Jun 6 '12 at 7:03
    
@lanzz Oh, yeah. I just copied the code. Let me edit it. –  freakish Jun 6 '12 at 7:08
add comment

As with most asynchronous operations, I'd use a Deferred in this situation; constructors in JS are not obliged to return an instance of themselves:

function Song(songId) {
    var song = this;
    var def = new $.Deferred();
    $.getJSON('http://gdata.youtube.com/feeds/api/videos/' + songId + '?v=2&alt=json-in-script&callback=?', function (data) {
        song.id = 'xxxxxxxx-xxxx-4xxx-yxxx-xxxxxxxxxxxx'.replace(/[xy]/g, function (c) { var r = Math.random() * 16 | 0, v = c == 'x' ? r : (r & 0x3 | 0x8); return v.toString(16); });
        song.songId = songId;
        song.url = "http://youtu.be/" + songId;
        song.name = data.entry.title.$t;
        def.resolve(song);
    });
    return def.promise();
}

var promise = new Song(songId);
promise.done(function(instance) {
    // you've got a Song instance
});
share|improve this answer
add comment

sync call may cause browser to stop responding and some browser may kill you script forcefully.

Jquery has an option while making a request to a URI

asyncBoolean Default: true

By default, all requests are sent asynchronously (i.e. this is set to true by default). If you need synchronous requests, set this option to false. Cross-domain requests and dataType: "jsonp" requests do not support synchronous operation. Note that synchronous requests may temporarily lock the browser, disabling any actions while the request is active. As of jQuery 1.8, the use of async: false is deprecated.

http://api.jquery.com/jQuery.ajax/

Hope this will be helpful

Regards.

share|improve this answer
    
Mmm, should I be worried about the use of a deprecated parameter? –  Sean Anderson Jun 6 '12 at 6:53
    
i hope you are not using jquery 1.8 as it is not stable yet. but you can use it on 1.7.x safely. –  Shoaib Shaikh Jun 6 '12 at 7:59
add comment

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.