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I'm sure this is a simple question, just can't seem to get it to work right.

I was having some conflicts with jQuery, so I used the aliasing feature mentioned in the official documentation.

jQuery(document).ready(function($){
  $('.loadmore').addClass('hidden'); // works fine!

  loadmore();

});

function loadmore(){
  $('.loadmore').addClass('hidden'); // doesn't work!
}

How do I get the aliasing to work for my code that I threw into functions for better organization and for the ability to reuse? I'm currently using jQuery instead of $ for everything due to the issue presented in the sample above. Thought I could save a few bits of data and use the alias that's shown in all the tutorials.

share|improve this question
    
how about if you use "jQuery" instead of "$" in the line inside function loadmore()? – cambraca Oct 25 '10 at 4:26
up vote 1 down vote accepted

jQuery no conflict mode essentially sets the $ function to a different name, like so:

$('select something').doSomethingElse(); // Works
var $j = jQuery.noConfilct();
$('select something').doSomethingElse(); // Doesn't work
$j('select something').doSomethingElse(); // Works

If you don't want to use a name other than $ for jQuery you can do this:

(function ($) {
    $('selector').doSomething();
    $('another selector').doSomethingElse();
}(jQuery));

This makes jQuery = $, but only inside of the parenthesis, allows you work as usual, and never causes conflicts.

share|improve this answer
    
Nice! I like the idea of the first option better. One question though. Do I just declare the var $j = jQuery.noConfilct(); before my document ready function and I'll be good to use $j anywhere in that JS file? – Sahas Katta Oct 25 '10 at 4:36
    
@Sahas Katta Yes. :) – alex Oct 25 '10 at 4:46

You can try this...

(function($) {

// Put all your jQuery here... and you can use $

})(jQuery);
share|improve this answer

In this case, you could pass $ to your function.

jQuery(document).ready(function($){
    $('.loadmore').addClass('hidden'); // works fine!

    loadmore($);

});

function loadmore($){
    $('.loadmore').addClass('hidden'); // should work fine too!
}
share|improve this answer
    
first off, thanks! But one question, will I still be able to pass additional variables through? For instance, loadmore($, num); and receive it like this function loadmore($, num) { } – Sahas Katta Oct 25 '10 at 4:33
    
@Sahas Katta Yes. – alex Oct 25 '10 at 4:45

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