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I have a problem with identify the object that runs the function

<div id="test1">lorem</div>
<div id="test2">ipsum</div>

<script type="text/javascript">
    $(document).ready(function() {
        $('#test1').plugin(); //alert: I am test1
        $('#test2').plugin(); //alert: I am test2

        $('#test1').plugin.fun(); //alert: I am undefined and I am undefined
        $('#test2').plugin.fun(); //alert: I am undefined and I am undefined
    });
    (function($) {
        $.fn.plugin = function() {
            $this = $(this);
            alert('I am '+$(this).attr('id'));//<-- it works
        }
        $.fn.plugin.fun = function() {
            alert('I am '+$(this).attr('id')); //<-- doesn't work!
            alert('and I am '+$this.attr('id')); //<-- also doesn't work!
        }
    })(jQuery);
</script>
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2 Answers 2

up vote 1 down vote accepted

The fun function doesn't have any direct relation to the object that you are using in the call, so this will just be the window object.

When you are using $('#test1').plugin, you get a reference to that function, and from that you access the function fun, but what you get is simply a regular function. You could just as well use $.fn.plugin.fun to get to the function, the use of the jQuery object with the selector has no relevance at all once you have got the reference to the fun function.

The jQuery object will actually be discarded before the fun function is called, so it's impossible to reach it from the function.

share|improve this answer
    
It's more clear for me now, thnx Guffa. –  Erroid Jan 3 '11 at 0:10
    
"The fun function doesn't have any direct relation to the object that you are using in the call, so this will just be the window object." No, it'll be the plugin function object, because he's calling fun via a property on plugin. Not that that's more helpful, it still doesn't get him the jQuery instance. (Hadn't seen this answer before; someone just upvoted my answer, which made me wonder what the question was and come look again.) –  T.J. Crowder Apr 23 '11 at 14:57

To understand what $('#test1').plugin.fun(); is doing, we have to look at how this is set within JavaScript functions. We'll start with theory, then come back to your plug-in.

In JavaScript, this is defined entirely by how a function is called. The most common way is to set it as a by-product of calling the function from an object property:

var foo = {
    msg: "I'm foo!",
    bar: function() {
        alert(this.msg);
    }
};
foo.bar(); // alerts "I'm foo!"

That line foo.bar(); does three distinct things:

  1. It retrieves the bar property from the foo object.
  2. It calls the function that property references.
  3. It does #2 in such a way that this refers to foo.

(More here: Mythical Methods.)

So in the call

$('#test1').plugin.fun();

...this within fun will be plugin, because we're calling fun via a property on plugin.

You might consider using the mechanims used by jQuery UI, which is to have "methods" of the plug-in accessible via a main function, with the names as strings. For instance, on a jQuery UI Draggable instance, you can call methods like this:

$('#test1').draggable('disable');

See their Draggable documentation for more examples, but basically your calls would look like this:

$('#test1').plugin('fun');

More about function calls:

There's another way to set this when calling a function: Through the call and apply functions on the function instance:

var f = function() {
    alert(this.msg);
};
var foo = {
    msg: "I'm foo!"
};
f.call(foo);  // alerts "I'm foo!"
f.apply(foo); // alerts "I'm foo!" too

call and apply call a function, setting the this value to the first argument you pass into them. The difference between call and apply is how you pass arguments to the target function. With call, you just add further arguments to the call function; with apply, you give an array of arguments as the second argument to apply. Examples:

function f(arg1, arg2) {
    alert(this.msg + " (" + arg1 + ", " + arg2 + ")");
}
var foo = {
    msg: "I'm foo!";
};
f.call(foo, "one", "two");    // Alerts "I'm foo! (one, two)"
//          ^-- "one" and "two" are discrete arguments
f.apply(foo, ["one", "two"]); // Alerts the same thing
//           ^------------^-- "one" and "two" are in an array
share|improve this answer
    
thnk you T.J. It was useful - I have made my plugin in different way that I was thinking I will at the beginning. JavaScript is not so OO as I'd like it to be –  Erroid Jan 3 '11 at 0:05
    
@Errold: No worries, glad that helped. "JavaScript is not so OO as I'd like it to be" JavaScript is very OO -- just not the same OO as some of us got used to with class-based languages. :-) –  T.J. Crowder Jan 3 '11 at 6:55

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