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Nowadays I have been learning a lot about jQuery plugin development and about jQuery generally . I have made a simple jQuery plugin where I moved outside the initialize() function from the $.fn.testplugin but now the initialize() function is in the global scope. My question is how to move outside the initialize() function from the $.fn.testplugin but same time make it local scope.

Plugin:

(function($){
    function initialize($obj, color){
        $obj.css("color",color);
    };      

    $.fn.testplugin = function(options){
       var defaults = { 
        color: "red"
       };
       var option = $.extend(defaults, options);

       return this.each(function(){
        var $this = $(this);  
        initialize($this, option.color);
       });      
    };
})(jQuery);
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4  
But it is not in global scope. –  xdazz Jun 5 '12 at 9:13

2 Answers 2

Your initialize() function is not in the global scope; you are explicitly creating a closure where it is defined. You cannot access the initialize() function from outside your outermost function in the posted code.

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and if I would delete these lines from the code : (function( $ ){ })(jQuery); than the initialize() function would be in global scope ? –  nmsdvid Jun 5 '12 at 9:21
    
Assuming you have no other closure wrapping this code that you haven't posted, then initialize() will be global –  lanzz Jun 5 '12 at 9:23
    
now I understand, thank you –  nmsdvid Jun 5 '12 at 9:24

use var :

var initialize = function() {};

it will be in the local scope of your anonymous function.

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This is not necessary. Functions are scoped the same as variables, even when declared directly. –  lanzz Jun 5 '12 at 9:13

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