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I have two DIV , what I want to do is :

  • if I hover on div1 => div2 show
  • if mouse left from div1 and div2 => div2 hide
  • if mouse left from div1 but it's still on div2 => div2 show
  • By default div2 => hide

I tried :

 $("#div1,.div2").mouseleave(function(){
    setTimeout(function(){
        $(".popover").css("display", "none");
    }, 2000);
});

But when I left from div1 and keep mouse on div2, 2000s more, div2 is hided.

How to write the 3rd condition in jquery event please.

Thanks.

share|improve this question
    
provide you html code. Because your explanation is confusing –  Rakesh Kumar Feb 11 at 9:54
    
can you post your markup for this? –  Jai Feb 11 at 9:54
    
are you expecting the result like this jsfiddle.net/XjAde ? –  Beginner Feb 11 at 10:00
    
@Beginner, I want <div class="div2"> two </div> still show even the mouse leave from <div id="div1"> first </div> in your jsfiddle. –  Nothing Feb 11 at 10:08

5 Answers 5

You have to cancel the pending timeout when the cursor enters div2:

var timer;
$("#div1,.div2").mouseleave(function(){
    timer = setTimeout(function(){
        $(".div2").css("display", "none");
    }, 2000);
});

$(".div2").mouseenter(function(){
    clearTimeout(timer);
});

As soon as the cursor leaves div2, the corresponding mouseleave callback is called and the timer starts again.

share|improve this answer

Try this.

HTML code:

<div class='div1'>Div One
    <div class='div2'>Div Two</div>
</div>

jQuery Code:

$('.div1')
.mouseover(function(){
    $('.div2').fadeIn();
})
.mouseleave(function(){
    $('.div2').fadeOut();
})

Working Example: http://jsfiddle.net/Vmq8h/

share|improve this answer
    
div1 and div2 are not next to each other, so if I do that, I cannot go to div2 if the mouse left from div1. –  Nothing Feb 11 at 15:29
    
I think when you will goto div2 after leaving from div1, div2 is visible. But when you leave mouse from div2 it's get invisible. check example again. jsfiddle.net/Vmq8h –  Rakesh Kumar Feb 11 at 16:00
    
I meant, if div1 is far from div2 20px so I can not hover on div2, because it's already invisible while I left the mouse from div1. –  Nothing Feb 12 at 1:04
    
for that you have to play with css and more elements. –  Rakesh Kumar Feb 12 at 4:43
    
Any sample example about that? –  Nothing Feb 12 at 5:04

Here is a way to do it. Although I am not sure if it is proper:

$("#div1").mouseleave(function(e){
   if(!$(e.target).parents(".div2")){
      setTimeout(function(){
        $(".popover").css("display", "none");
      }, 2000);
  }

});

Here I check that on mouseleave if the event parent is not div2.(Means if the mouse is not in div2) as per the if condition, then only we closr the popover.

share|improve this answer
    
When the mouse left from div1 and div2, div2 still shows with this solution. –  Nothing Feb 11 at 10:15
    
ok. As per my understanding, you moved from div1 to div2 and then out.If this is the case, put a class on both the divs and then write the event using that class. replace #div1 with .someCommonClass. Please provide more details otherwise. –  Kop4Lyf Feb 11 at 11:42

You can add another event called mouseenter on div2 which would then be able to cancel any timeout created in div1 or div2; Note for sake of clarity I am referencing by ID in the selectors below as you seem to have an ID for div1 and a class for div2

$("#div1,#div2").mouseleave(function(){
    timer = setTimeout(function(){
        $("#div2").css("display", "none");
    }, 2000);
});

$("#div2").mouseenter(function(){
    clearTimeout(timer);
});
share|improve this answer
    
The second event (mouseenter) did not work. Still giving same error as mine. –  Nothing Feb 11 at 10:10
    
jsfiddle.net/Vmq8h/1 –  Rob Schmuecker Feb 11 at 10:14
    
I can not set $("#div2").css("display", "block"); and #div2{display:none;} in your css due to the condition of the css in my project. –  Nothing Feb 11 at 10:21
    
Then what are the constraints? Give us more of your code, i.e. is div2 inside of div1 or not? –  Rob Schmuecker Feb 11 at 10:22
1  
Sorry, that fiddle doesn't work. It has errors. I also don't understand your last comment? How does that fiddle relate at all to what the question is? –  Rob Schmuecker Feb 11 at 10:44

You can do it with css:

.div2{
 visibility: hidden;
}

.div1:hover .div2{
 visibility:visible;
}

.div2:hover{
 visibility:visible;
}
share|improve this answer
    
div1 and div2 are not next to each other, so if I do that, I cannot go to div2 if the mouse left from div1. –  Nothing Feb 11 at 10:23

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