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I want a background images to fade in an out.

I have two divs on top of each other with the background set to an image.

In my jQuery I target one div then bring the opacity to zero showing the other one. Then i do the reverse. However, this was working but now for some reason this infinite loop crashes firefox.

What can i do to make it not crash?

             $(document).ready(function() {
                function change (){
                  $('#back1').animate({opacity:0}, {duration:3000});
                  $('#back1').delay(1000);
                  $('#back1').animate({opacity:1},  {duration:3000});
                  $('#back1').delay(1000);
                  change();

                }

                change();

            });
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2 Answers 2

up vote 1 down vote accepted

You'll have to use the callback of the function

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The problem is you are calling change() before the animations have completed, so you are creating a race condition. Animations are asynchronous. Animations have a complete callback you can use.

Try this:

function change (){
     $('#back1').animate({opacity:0}, {duration:3000}) 
                .delay(1000)
                .animate({opacity:1},  {duration:3000}, function(){
                      /* use complete callback of final animation to start sequeunce again*/
                      change();
                 });                  

}
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1  
Hmnn it does not crash but it only loops one time –  Alain Goldman Dec 29 '12 at 2:24
    
works here jsfiddle.net/gy6CZ I added setTimeout to compensate for last delay missing –  charlietfl Dec 29 '12 at 2:40
1  
don't call $('#back1') so many times. You are searching the DOM each time to find it..Chain the animatons and/or cache the selector –  charlietfl Dec 29 '12 at 2:55
1  
I figured it out on your recommendation. what you wrote but change this " .animate({opacity:1}, 3000, function(){ $('#back1').delay(1000) change(); –  Alain Goldman Dec 29 '12 at 2:56

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