1

I recently solved a jquery problem I had by switching all the '$'s in my code to 'jQuery'

I'm trying to use this code:

var $items = $('#vtab>ul>li');
$items.mouseover(function() {
    $items.removeClass('selected');
    $(this).addClass('selected');

    var index = $items.index($(this));
    $('#vtab>div').hide().eq(index).show();
}).eq(1).mouseover();

but am not sure how to change the $ signs out for $items. Is it as simple as jQuery.items? Is this even jQuery code? I'm confused.

Thanks, Zeem

4

$items does not need to be changed. jQuery's variable is (typically) just a $, whereas $items is it's own variable name.

So your code would become:

var $items = jQuery('#vtab>ul>li');
$items.mouseover(function() {
    $items.removeClass('selected');
    jQuery(this).addClass('selected');

    var index = $items.index(jQuery(this));
    jQuery('#vtab>div').hide().eq(index).show();
}).eq(1).mouseover();

Edit You could also use a self-invoking function like so:

(function($){
    var $items = $('#vtab>ul>li');
    $items.mouseover(function() {
        $items.removeClass('selected');
        $(this).addClass('selected');

        var index = $items.index($(this));
        $('#vtab>div').hide().eq(index).show();
    }).eq(1).mouseover();
})(jQuery);

This will allow you to use the $ variable in your code BUT you will not be able to use the variables within, outside of the function so be careful.

1

You don't need to replace $items at all.

$items = jQuery('#vtab>ul>li'); 

will work.

$items is a variable name and is not part of the $ namespace.

1

var $items is just a variable. Prefixing variables with $ lets the developer know that it's a jQuery object.

  • thanks all! too bad I can't check more than one. – zeemy23 May 6 '11 at 18:41
  • you checked the right one, Drackir put the time in – hunter May 6 '11 at 18:48

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.