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There's a bunch on this topic, but I havn't found an instance that applies well to my situation.

Fade a picture out and then fade another picture in. Instead, I'm running into an issue where the first fades out and immediately (before the animation is finished) the next fades in.

I read about this once and can't remember exactly what the trick was..

http://jsfiddle.net/danielredwood/gBw9j/

thanks for your help!

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3 Answers 3

up vote 48 down vote accepted

fade the other in in the callback of fadeout, which runs when fadeout is done. Using your code:

$('#two, #three').hide();
$('.slide').click(function(){
    var $this = $(this);
    $this.fadeOut(function(){ $this.next().fadeIn(); });
});

alternatively, you can just "pause" the chain, but you need to specify for how long:

$(this).fadeOut().next().delay(500).fadeIn();
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Ah, that's right. Thanks for the reminder. now that fadeOut has a function attached, where can I adjust it's speed? fadeIn's easy :) –  technopeasant Jun 9 '11 at 2:16
6  
fadeOut('fast', function(){ ... }) or fadeOut(200, function(){ ... }) –  zyklus Jun 9 '11 at 2:17

This might help: http://jsfiddle.net/danielredwood/gBw9j/
Basically $(this).fadeOut().next().fadeIn(); is what you require

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Here is few more collection of fadein fadeout example webdevlopementhelp.blogspot.in/2009/09/… –  kiran Oct 21 '13 at 11:00

If button is clicked then we can trigger the action of fade out that div for once then again fade in the same div simultaneously

    $("#button").click(function()
    {
    $("#div1").fadeOut();
    $("#div1").fadeIn("slow");
    });
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pleaase elaborate on your answer with some explanation –  Our Man In Bananas Jul 30 '14 at 16:31
    
If button is clicked then we can trigger the action of fade out that div for once then again fade in the same div simultaneously –  Skynet Jul 30 '14 at 16:34

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