Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to implement a tagging system using jquery.

I have two div, .tagged and .taggeditem

When a user hovers on .tagged I would want taggeditem to fadeIn. However, taggeditem is about 50 pixels away from .tagged so when the user mouse leaves .tagged .taggeditem fades away. I decided to set a delay of 6 seconds after which taggeditem would fadeOut. Is there a way I can prevent taggeditem from fading out if the users mouse is over tagged item.

Here is the script I am using 

       $('.tagged').on({
mouseenter: function () {
    clearTimeout($(this).data('timeoutId'));
    var id_= $(this).attr('post-value');
    var id = $(this).attr('value');
    $('#taggeditem'+id).fadeIn(200);
    $('#taggeditemmask'+id_).fadeIn(200);
},
mouseleave: function () {
   var id_ = $(this).attr('post-value');
   var id = $(this).attr('value');
  if ($('#taggeditem'+id).is(':hover')) {

       }else{
       $('#taggeditem'+id).delay(600).fadeOut(200);
       $('#taggeditemmask'+id_).delay(600).fadeOut(200);
}
}
    });
share|improve this question
    
Can you setup a fiddle ? –  The Alpha Nov 3 '13 at 17:52

1 Answer 1

Found this post How do I check if the mouse is over an element in jQuery? that uses a settimout on mouseenter and mouseleave of the element you want to fadeout.

Here's a fiddle example based on your code.

Code below

$(function()
{
    var timeout;

    $('.tagged').on({
        mouseenter: function () {
            $('#taggeditem').fadeIn(200);
        },
        mouseleave: function () {
          timeout = setTimeout(function(){
              $('#taggeditem').fadeOut(200);
            }, 600);

        }
    });

      $('#taggeditem').on({
            mouseenter: function () {
                clearTimeout(timeout);
            },
            mouseleave: function () {
               timeout = setTimeout(function(){
                  $(this).fadeOut(200);
               }, 600);
            }
       });      
  });
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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