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When mouse is over the image, span content slides down after two seconds, also when I move cursor out of image, after two seconds span slides up, that's work fine.

I want to span be displayed if someone move mouse over that span too, and there my problem begins...

I do not know if I was clear enough but I think the code will tell you more than words :)

Link: http://jsfiddle.net/zDd5T/3/

HTML:

<img id="image" src="button_green.png" />
<span id="content">
    <a href="http://www.google.com">Link</a>
    Some content here
</span>

CSS:

#image{
   left:0px;
   position:absolute;
   z-index: 10;
}
#content{
   top:48px;
   left:0px;
   position:absolute;
   height: 100px;
   border: 1px solid #f00;
   display: block;
   z-index: 0;
   width: 100px;
}

JavaScript:

$(document).ready(function() {
    $('#content').hide();
    var over_img = false;
    var over_span = false;
    $('#image').live('mouseover', function() {
        over_img = true;
        setTimeout(function() {
            $('#content').show('slide', {
                direction: 'up'
            }, 1000);
        }, 2000);
    });
    $('#content').live('mouseover', function() {
        over_span = true;
        setTimeout(function() {
            $('#content').show('slide', {
                direction: 'up'
            }, 1000);
        }, 2000);
    });
    $('#image').live('mouseout', function() {
        over_img = false;
        if (!over_img && !over_span) {
            setTimeout(function() {
                $('#content').hide("slide", {
                    direction: "up"
                }, 1000);
            }, 2000);
        }
    });
    $('#content').live('mouseout', function() {
        over_span = false;
        if (!over_img && !over_span) {
            setTimeout(function() {
                $('#content').hide("slide", {
                    direction: "up"
                }, 1000);
            }, 2000);
        }
    });
});

Thanks in advance!

share|improve this question

2 Answers 2

up vote 0 down vote accepted

For jQuery 1.7+ use on() instead of .live() wich is deprecated.

I believe this should solve your problem:

$(document).ready(function() {
    var T1, T2;
    $('#content').hide();
    $('body').on({
        mouseenter: function() {
            clearTimeout(T2);
            T1 = setTimeout(function() {
                 $('#content').slideDown(1000);
            }, 2000);
        },
        mouseleave: function() {
            clearTimeout(T1);
            T2 = setTimeout(function() {
                 $('#content').slideUp(1000);
            }, 2000);    
        }
    }, '#image, #content');
});​

Here's a FIDDLE

share|improve this answer
    
This code tells me more than words :) Thank you very much! –  luka Mar 2 '12 at 1:19
    
@luka - if the answer does in fact solve your problem, you should accept it. –  adeneo Mar 2 '12 at 1:21
    
If you also clearTimeout(T1) in the mouseout handler, then this is beneficial to eliminate a latent slideDown, particularly if the user does a quick mouseover/mouseout. jsfiddle.net/zDd5T/10 –  Beetroot-Beetroot Mar 2 '12 at 1:30
    
@Beetroot-Beetroot - I did actually think about that, but it was'nt really part of the question. Anyway, added it now. Also adding stop(true, true) before the sliding would make sure there was'nt any issues with the animations aswell, but the OP will probably figure out what he needs. –  adeneo Mar 2 '12 at 1:50
    
@adeneo - Accepted! Your answer really helped me! –  luka Mar 2 '12 at 2:06

If I'm understanding your issue correctly, I would restructure your markup as follows:

<div class="container">
   <img ... >
   <div class="content">
     .....
   </div>
</div>

Then, instead of binding your hover event to the image, bind it to the parent container instead. This way, once the content div is displayed, it is still inside the container parent element which has the hover event bound to it, so it will stay visible while the mouse is over either the image, or the content div (or any other element inside the container)

share|improve this answer
    
Thanks for answer but it can't be done like that because in my real project I have image 40px with, and about 200px width content, so if someone mouse over the other 160px appears content and doesn't look right... –  luka Mar 2 '12 at 1:10

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