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I have recently written my first simple jQuery plugin. Proud I am.

http://jsfiddle.net/johnhoffman/wSeLY/1/

(function($) {
    $.fn.makeRed = function() {
        return this.each(function() {
            $(this).css("color", "#f00");
        });
    }
})(jQuery);

I am wondering why it works though. I pass the jQuery object into this enclosed function that runs immediately.

Subsequently, isn't the |$| object a local variable within that anonymous function? How does it change the global singleton jQuery object?

In other words, aren't I just adding a function via $.fn.myFunctionName to the object |$| local to the enclosed function? How does it change the global jQuery object and make my function (makeRed) available to selectors all over the global scope of my script?

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Read up on how closures work. –  Interrobang Apr 19 '12 at 6:42
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2 Answers 2

up vote 2 down vote accepted

isn't the |$| object a local variable within that anonymous function?

Yes, $ is a local variable in the function but, and this is a big but, it is a reference to the jQuery object that is globally accessible. Things look like this:

window.jQuery (global) ----->-----> { ... }
                                    ^
                                    |
$ (local) ------------------>-------+

So, you have two variables that point at the same object and that object still exists after your anonymous function is called.

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Objects in Javascript are passed by reference, therefore any updates within your function are maintained on the jQuery object. You are just referring to it by the name $.

I highly recommend you read: Javascript: The Good Parts it explains all this.

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