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I have a problem with jQuery. I am trying to make an image appear(or fade in) upon onmouseover event and disappear(or fade out) upon onmouseout event. The HTML that I have is:

<div class="wrapper">
<img id="mainImg" src="..." />
</div>

The CSS:

#mainImg
{
visibility:hidden;
}

And the JavaScript is as follows:

$("#mainImg").mouseover(function () {
    $(this).attr("visibility", "visible");
  }).mouseout( function () {
    $(this).attr("visibility", "hidden");
  });

But this code does not work. I am struggling to understand what is wrong but I cannot sort it out. I tested the code also in JsFiddle with no result. I also tried with the hover() function without success.

May you please tell me what I am doing wrong and propose a solution? Thanks

Francesco

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You could also use hover(function() { //onmouseover }, function() { //onmouseout }); –  Sylvain Apr 27 '11 at 9:25
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3 Answers

up vote 8 down vote accepted

Visibility is not an HTML attribute; it's a CSS feature. Try using css() instead of attr().

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Yep and I would instead use : $(this).css("display","block") and $(this).css("display","none") –  dwarfy Apr 27 '11 at 9:25
    
thanks but it still does not work. Have a look: jsfiddle.net/GaNAb/4 –  CiccioMiami Apr 27 '11 at 9:26
2  
You can change the opacity to 0 instead of changing the visibiliy. This is not exactly the same behavior but it's a workaround. updated example –  Sylvain Apr 27 '11 at 9:30
    
Apparently mouseover doesn't work on invisible objects... Didn't know that. If you change your CSS so that div.left is initially visible, it works once when you mouseout and then stops working. So I guess Sylvain's workaround is a good option here. –  Cyril Apr 27 '11 at 9:32
    
@Sylvain Thrd: thanks, your example works perfectly. Apparently setting the opacity is a less consuming operation for the script because the response time on the events (onmouseover and onmouseout) is faster than setting the visibility! Do you know if there is any specific reason? –  CiccioMiami Apr 27 '11 at 9:53
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Actually the correct way to do that is using .toggle() function. Something like this:

$("#mainImg").mouseover(function () {
    $(this).toggle();
  }).mouseout( function () {
    $(this).toggle();
  });

Or using .hide() / .show(), like this:

$("#mainImg").mouseover(function () {
    $(this).hide();
  }).mouseout( function () {
    $(this).show();
  });

The cool thing about doing it this way is that you can specify animations for the visible / invisible transitions.

Cheers!

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You can also accomplish that with pure CSS (no Javascript at all) using the :hover selector. –  Chepech May 4 '11 at 16:52
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Find working sample here: http://jsfiddle.net/ezmilhouse/MegL9/1/

you will run into problems if triggering events on invisible elements, better attach event to .wrapper:

your js:

$(".wrapper").mouseover(function () {
    $('img', this).css("visibility", "visible");
});

$(".wrapper").mouseout(function () {
    $('img', this).css("visibility", "hidden");
});

your html:

<div class="wrapper">
    <img id="mainImg" src="http://www.google.com/images/logos/ps_logo2.png" />
</div>
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thanks. Your solution works but sometimes the image gets stuck in "visibility:hidden" evne if I am mouseover. Does it depend on the size of the wrapper? –  CiccioMiami Apr 27 '11 at 9:50
1  
yes, basically you don't need it to have fixed width, height - updated fiddle: jsfiddle.net/ezmilhouse/MegL9/4, plz accept if it helped solve your prob, thx –  ezmilhouse Apr 27 '11 at 10:03
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