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I have created a jQuery plugin that grabs a JSON feed (in this case YouTube). It then displays the results in a DIV - everything is fine until: I want to show the results (with different settings: i.e. more videos, other channel) in two or more containers - how can I achieve this?

btw... Is this the right title for my question? I'm by far not a jQuery/JS expert :)

Here is my code so far - I shortened it to the fundamental actions and a rudimentary output:

(function($){
    // Default settings
    var settings = {
        author:     'ARD',
        results:    3
    };

    // Append to Container
    var append_to_container;

    // The Methods
    var methods = {
        // Initate
        init: function(options){
            append_to_container = $(this);

            $.extend(settings, options);
            methods.grabFeed();
        },

        // Grab feed
        grabFeed: function(){
            $.ajax({
                url: 'http://gdata.youtube.com/feeds/api/videos',
                data: {
                    author: settings.author,
                    v: '2',
                    alt: 'jsonc',
                    'max-results': settings.results
                },
                dataType: 'jsonp',
                success: function(data){
                    methods.gotResults(data);
                }
            });
        },

        // Placeholder for results
        gotResults: function(data){
            console.log(data);
            $("<h1>Success!</h1>").appendTo(append_to_container);
        }
    };


    $.fn.youtubeVideos = function(method){
        // Method calling logic
        if ( methods[method] ) {
            return methods[ method ].apply( this, Array.prototype.slice.call( arguments, 1 ));
        } else if ( typeof method === 'object' || ! method ) {
            return methods.init.apply( this, arguments );
        } else {
            $.error( 'Method ' +  method + ' does not exist on jQuery.youtubeVideos' );
        }
    }

})(jQuery);

Now when I call $('#main').youtubeVideos(); it works as expected.

But now I want to show the results in more than one DOM element. So when I call for example:

$('#main').youtubeVideos();
$('#same_videos').youtubeVideos();

it show the Success! message two times in the container used in the second call.

I tried with several answers from stackoveflow and the web - but I can't find a way to use my function more than one time. How can I use my plugin more than only one time on several containers?


EDIT / Solution

Here is my solution after the tip from Codemonkey:

(function($){

    $.fn.youtubeVideos = function(method){

        // Default settings
        var settings = {
            author:     'ARD',
            results:    3
        };

        // Append to Container
        var append_to_container;

        // The Methods
        var methods = {
            // Initate
            init: function(options){
                append_to_container = $(this);

                $.extend(settings, options);
                methods.grabFeed();
            },

            // Grab feed
            grabFeed: function(){
                $.ajax({
                    url: 'http://gdata.youtube.com/feeds/api/videos',
                    data: {
                        author: settings.author,
                        v: '2',
                        alt: 'jsonc',
                        'max-results': settings.results
                    },
                    dataType: 'jsonp',
                    success: function(data){
                        methods.gotResults(data);
                    }
                });
            },

            // Placeholder for results
            gotResults: function(data){
                console.log(data);
                $("<h1>Success!</h1>").appendTo(append_to_container);
            }
        };


        // Method calling logic
        if ( methods[method] ) {
            return methods[ method ].apply( this, Array.prototype.slice.call( arguments, 1 ));
        } else if ( typeof method === 'object' || ! method ) {
            return methods.init.apply( this, arguments );
        } else {
            $.error( 'Method ' +  method + ' does not exist on jQuery.youtubeVideos' );
        }
    }

})(jQuery);

$('#main').youtubeVideos();
$('#same_videos').youtubeVideos();
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1 Answer 1

up vote 2 down vote accepted

By putting all your functionality into:

$.fn.youtubeVideos = function(method){ ...

That's it. The context of that function will be unique for every time you run the plugin function. If you need data to persist in a jQuery object over multiple calls of the plugin function then use jQuery.data. Other than that you're good to go.

You should check out some jQuery plugin examples (Pick and choose) to see how they work.

share|improve this answer
    
So there is no way to keep the encapsulated methods out of the main function? This would be no good for the structure :/ –  lorem monkey Jan 31 '12 at 16:03
    
It's not impossible, but it sure is the simplest way. And I don't see why it's a problem. It'd be a simple rewrite of grabFeed: function() {... to function grabFeed() {... or even var grabFeed = function() {... and moving them into your plugin function. You could even just move the entire methods object in there if you wanted. All this means is that you'll have to work with one additional indent –  Hubro Jan 31 '12 at 16:18
    
arghs - got'ya :) Just needed a second try! Thanks! –  lorem monkey Jan 31 '12 at 16:36
    
Monkeys always get it eventually! –  Hubro Jan 31 '12 at 16:48
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