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I have built a jQuery Plugin, but now I need to use one function from the Plugin outside of the Plugin.

The Plugin

(function ($) {
    jQuery.fn.vierGewinnt = function () {
 var VierGewinnt = function (config) {
            this.view = config.view;    
            this.dx;
            this.turn = 1;
        }
VierGewinnt.prototype.setToken = function (column) {
            for (var i = this.rows; i > 0; i--) {
                if (this.gamearray[column][i] == 0) {
                    this.gamearray[column][i] = "red";    
                    this.turn++;
                    this.findWinner(column, i);
                    break;
                }
            }

        }})(jQuery);

main.js I have tried:

$.setToken()
$.fn.vierGewinnt.setToken()
$.fn.vierGewinnt.VierGewinnt.setToken()

Maybe someone has a clue! Thx in advance!

share|improve this question
    
How can that be working? I see no executable code. And there's a missing brace (}) – Alexander Jan 2 '13 at 21:56
    
well...i left out a lot of code. because that was not really important ....and it does work! if I try $.fn.vierGewinnt it will show me the whole code of the plugin so I know that it is in the jquery prototype – user1354743 Jan 2 '13 at 22:00
    
Since it is defined inside a scope and then never exposed to something on the global scope, no there is no way for you to get access to it as-is. – Kevin B Jan 2 '13 at 22:01
    
That's good to know. Still you may want to fix the small mistakes even if it is an "example" – Alexander Jan 2 '13 at 22:02
up vote 3 down vote accepted

The way you have done it, you can't call it from outside.

There are a few patterns how you can make js/jquery widgets.

You are trying to combine the "normal" prototype with jQuery.

As I see you have two options.

  1. Wrap you jQuery method to return the instance of the constructor. You can call prototype methods on it. Something like:

    $.fn.vierGewinnt = function(config){ 
        return new VierGewinnt (config); 
    };
    

    Then you can instance the plugin and call the method

    var plugin = $('#someSelector').vierGewinnt();
    plugin.setToken(column);
    

    In this case almost all your code can go outside the (function ($) block. You are just using jQuery as a wrapper, everything else is just ordinary javascript. As far as I can see your plugin is not called on any DOM element. It that case I don't see a lot sense in a jQuery plugin... it is pure javascript. If that is the case, just loose all the jQuery stuff from your example, and it will work.

  2. Use a different plugin pattern. Personally I like the jQueryUI widget factory approach, but you will have to include jQueryUI for it. Docs

share|improve this answer

All you need to do is return the function/plugin closure and create any methods you want to control outside the plugin as a property of the closure ($this).


    $.fn.vierGewinnt = function(options) {

        var $this = this;

        $this.setToken = function() {
            // setting token
        };

        return $this;
    };

And then save the reference to the plugin to call the method later.


    var vierPlugin = $('.some-element').vierGewinnt();
    vierPlugin.setToken(); // setting token outside plugin

share|improve this answer

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