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I am trying to display a div when someone mouseover the image.

Here is my jQuery code:

var $i = jQuery.noConflict(); 
$i("#overlay-<?php echo $j;?>").hover(function () {
    $i("#overlay-show-<?php echo $j;?>").fadeIn("fast");
    $i("#overlay-show-<?php echo $j;?>").fadeOut("fast");   
});

Here is My HTML Code

<div id="overlay-show-1" class="overlay-show" style="display: block;">
 <div class="product-price">
 <h2 class="product-name"><a title="Marotte Top"href="http://sabbathshop.com/index.php/apparel/marotte-top.html">Marotte Top</a></h2>   
 <div class="price-box">
 <span id="product-price-180" class="regular-price">
  <span class="price">$80.00</span></span>
  </div>
  </div>
   <div class="price-bottombg"></div>
 </div>
share|improve this question
    
I have edited the above code. Now, the div that I want to show keeps blinking repeatedly without any pause. How can I control it so that it fades out only when my customer removes the mouse over the "#overlay-<?php echo $j;?>" –  Muhammad Sep 27 '12 at 12:49

1 Answer 1

$i("#overlay-show-<?php echo $j;?>").is(":hidden") will return an object whether or not there are matching selectors.

You should check the length to see if there are matches:

if ($i("#overlay-show-<?php echo $j;?>").is(":hidden").length>0) {

In response to your update:

As you only have one function parameter for the .hover() event, this will be actioned when you hover over and when you hover out.

Also in your function you are calling fadeIn followed directly by fadeOut. Therefore this is going to cause the element to fade in, and then immediately fade out again (causing the flicker which you mentioned).

You should change your code to only fadeIn on hover over, and only fadeOut on hover out.

$i("#overlay-<?php echo $j;?>").hover(function () {
    $i("#overlay-show-<?php echo $j;?>").fadeIn("fast"); 
}, function(){
    $i("#overlay-show-<?php echo $j;?>").fadeOut("fast");  
});
share|improve this answer
    
I tried this but still it doesn't work. Now the hover doesn;t work anymore. –  Muhammad Sep 27 '12 at 11:22
    
@Muhammad Post your HTML code –  Curt Sep 27 '12 at 12:32
    
It's a Php code. I am not sure how to give the html to you. –  Muhammad Sep 27 '12 at 14:09
    
@Muhammad Source code in the browser will be rendered HTML. Therefore no PHP –  Curt Sep 27 '12 at 14:22
    
I have edited my post. The HTML is there –  Muhammad Sep 27 '12 at 17:29

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