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Ok I am definitely learning a lot when it comes to JavaScript scope functions and module patterns, awesome stuff! Right now I'm teaching myself to pass jQuery into a scope function this way it loads sooner, and if for some reason I had another framework that used $, there will be no confusion.

But what I don't fully understand is when to create a "new" instance "in context to scope functions" when I want to pass in jQuery. Here is what I mean...If I was going to use the following as a base, it will return pubs, which can be associated to a function or properties, etc, I get it.

var DemoA = (function($) {
var pubs = {};
pubs.dosomething = //some function that calculates cool stuff with help of jquery
return pubs;
})(jQuery);

Now when I try to create a new instance....

var stuff = new DemoA();

...I get an error through Google Chrome Developer Tools. It says "object is not a function" or something to that effect. But if I call DemoA directly like this...

DemoA.dosomething();

...then everything works fine. What is going on here? and why can't I create a new instance variable?

Thanks in advance for helping me get smarter!

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2 Answers 2

up vote 5 down vote accepted

Look at your return statement. You're returning an object that looks like this:

{"dosomething": function () { }}

You can't create a new instance of an object. You can call dosomething directly because it's an immediate property (method) of the returned object.

I think you want something like this:

http://jsfiddle.net/veJqg/

var DemoA = (function($) {
    var pubs = function () {
        this.dosomething = function () {
            console.log("just executed `dosomething`");
        };
    };
    return pubs;
})(jQuery);

var a = new DemoA();
a.dosomething();

This way, you are still aliasing the jQuery object as $, and you are returning a function that can be used in the way you want.

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Thank you ianpgall! Very good to know! –  blackhawk Oct 18 '12 at 22:43
    
Using a closure just to store a variable that could be passed to the instance or just referenced or "aliased" as $=jQuery seems inappropriate. –  RobG Oct 18 '12 at 23:16
    
@RobG How is that inappropriate? It's fairly common when creating a jQuery plugin, mainly to make sure it works even if there's another library like Prototype that uses $ as its identifier –  Ian Oct 18 '12 at 23:22
    
Because it's creating a closure where there's no need for one. Simply assigning var $ = jQuery in the function does the same thing without the closure. Just because something is common doesn't make it suitable in a particular case. –  RobG Oct 19 '12 at 2:03
    
@RobG Then why do jQuery plugins do it? Why wouldn't they just do what you're saying? –  Ian Oct 19 '12 at 2:04

Just a bit more complex jQuery example which is commonly used:

<script src="http://ajax.googleapis.com/ajax/libs/jquery/1.8.2/jquery.min.js" type="text/javascript"></script>
<script type="text/javascript">
(function($) {

  $.DemoA = function(element, options) {
    var pubs = {};
    return pubs;
  }

  $.fn.DemoA = function(options) {
     return this.each(function() {
       (new $.DemoA($(this), options));
     });
   };

})(jQuery);

var i = new $.DemoA(item, {});
var j = $('<div>').DemoA();
</script>
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