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i have these html code:

  <body>
    <div id="top">
      <div id="panels">
         <div id="yes">yes</div>
         <div id="no">no</div>
      </div>
    </div>
  </body>

I using jQuery (i`m not a specialist) to fadeout old elements and by ajax adding new (ajax code is not ready now)..so the code:

$(document).ready(function(){
jQuery('#yes').click(function(){
    $('#panels').fadeOut(1000);
    var fun = $('<div>ITS OVER</div>');
    $(fun).hide().appendTo('#panels').fadeIn(1500);
});
});

but it works like: i click on the button (#yes) it start to fadeout old elements during this process it fadein new, and when fadeout finish both elements is not displaied, what is the problem? P.S. Sorry for my English

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1 Answer 1

up vote 1 down vote accepted

You are appending it to a hidden container $('#panels').fadeOut(1000);.

You could just hide the children $('#panels').children().fadeOut(1000) instead of the whole container.

Since your new content would ideally load into the container. I am emptying out panels, and adding the dynamic content.

$('#panels').fadeOut(1000, function(){
    $(this)
        .html('<div>ITS OVER</div>')
        .fadeIn(1500);
})
share|improve this answer
    
+1 This is cleaner with the callback, except that you're appending the new element to the children instead of the #panels. –  user113716 Feb 25 '11 at 22:08
    
@patrick dw - ooh dang good call. –  Josiah Ruddell Feb 25 '11 at 22:10
    
Actually one more thing to consider. Because there are 2 children, the callback will fire twice creating 2 new elements. EDIT: It may just be simpler to fade #panels, hide the children, append the new one, then fade #panels back in. –  user113716 Feb 25 '11 at 22:12
    
@patrick dw - right you are. I should have fiddled this one. –  Josiah Ruddell Feb 25 '11 at 22:17

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