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I am making a plug-in, but i am not getting any result, if i put console inside the function, in case if i place it out it works.

what is the issue? any one can help me to find out?

my code :

(function ($){
    $.fn.slideIt = function () {
        this.fadeOut('normal', function(){
            console.log(this);
        });

}
})(jQuery);

Here is the fiddle

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3 Answers 3

Your jsFiddle was made incorrectly. The HTML box should only contain HTML, put your JavaScript in the JavaScript box.

The problem was, you were calling slideIt before it was declared.

Here's an updated example: http://jsfiddle.net/RW8R3/1/

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Use document ready event, your div not exist when your call plugin:

$(function(){
    $('#slideContainer').slideIt();
});

Demo: http://jsfiddle.net/RW8R3/2/

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You're breaking "the magic of jQuery". The plugin should look like this:

(function($) 
{
    $.fn.slideIt = function()
    {
        return this.each(function()
        {
            $(this).fadeOut('normal', function()
            {
                console.log($(this));
            });
        });
    }
})(jQuery);

$('#slideContainer').slideIt();​

Otherwise you wouldn't be able to do things like $('#slideContainer').slideIt().fadeIn("slow").

Working demo here.

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