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I am using jQuery $ var in my codes but I have some external js file those are using $jx as jQuery Var. Now My codes are not working , I am getting $ not is a function. I removed all external js files then it is working. I searched for solution. Many people says " You can use your own var as jQuery/$ instead by using like var $jx = jQuery.noConflict();. But when I call this line in me page , my $ var is being removed and showing "$ is not a function " error. I made a simple code to explain this problem

Please Read and test my following codes.

<html>
<head>
<script src="http://ajax.googleapis.com/ajax/libs/jquery/1.8.1/jquery.min.js"></script>
<script type="text/javascript">
//var $=jQuery.noConflict();
var $jx = jQuery.noConflict(); // this $jx var will be used in another plugins or codes

function test()
{
$("#test").hide();
}
</script>

</head>

<body>
<input type="button" value="Click Me to hide box" onclick="test()" />
<div id="test" style="border:1px solid #0033FF; background:#999900; height:100px; width:200px; color:#FFFFFF; font-size:20px;">I will be hidden</div>
</body>

Run above codes, Click on the button, nothing will be happen. An error will be occurred. Now just remove this line var $jx = jQuery.noConflict(); then it will work. I did not use $jx here, but made it for others external scripts. so how can I use both $ and $jx in my same page? What is my mistake ?.

My work has been stopped on the middle of the project.

Please help me

share|improve this question

Rewrite it like this

<script type="text/javascript">

$.noConflict();


function test()
{
  jQuery("#test").hide();
}
</script>

It means that instead of $ you will have to use jquery in your code whereever $, you needed to use.

OR

<script type="text/javascript">
var jx = $.noConflict();    


function test()
{
  jx("#test").hide();
}
</script>

Now it means that instead of $ you will have to use j in your code whereever $, you needed to use.

share|improve this answer
    
But I need to use both <code>$</code> and <code>jx</code> on my page, <code>$("#test").hide();</code> and <code>jx("#test").hide();</code> because some others plugins are using jx and I am using $ – oneTarek Sep 20 '12 at 7:22
    
why not use jx("#test").hide();? what error r you getting now – Rab Nawaz Sep 20 '12 at 7:26
    
But I need to use both $ and jx on my page, $("#test").hide(); and jx("#test").hide(); because some others plugins are using jx and I am using $, If in future I will add another plugin that use another var $jq then what will be. – oneTarek Sep 20 '12 at 7:30
    
this is how. it is... you will have to take care of it yourself... – Rab Nawaz Sep 20 '12 at 7:36

You could use:

var $jx = jQuery.noConflict();
$jx(document).ready(function($){

function test()
{
    $("#test").hide();
 }
});

As you have redefined $ as handle for jQuery

share|improve this answer

Try var jx = jQuery.noConflict(); instead of var $jx = jQuery.noConflict();

And later jx("#test").hide(); instead of $("#test").hide();.

See also documentation: http://api.jquery.com/jQuery.noConflict/

share|improve this answer

I use

var jquery = $;
jquery("#test").hide();
share|improve this answer
    
if $ isn't a function, passing it through an intermediary var isn't going to fix anything. – Sam Dufel Dec 29 '14 at 21:03

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