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As you can see at this Fiddle, I animate more than one element at once, which is happening as I wish. But in the next step, I would like to do things ONCE the animation for all elements is over. Which does not seem to be possible by using the complete-function, because it is it fired for EACH completed animation (3 elemets, 3 times complete callback). the jquery .animate() API also says:

If multiple elements are animated, the callback is executed once per matched element, not once for the animation as a whole.

So, do you have any idea what I can do to have an event fired when every single animation has finished?

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5 Answers 5

up vote 2 down vote accepted
...animate(...).promise().done(function(){console.log("animate complete!")})
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1  
oh cool, thanks for this! very useful .. –  ho.s May 4 '12 at 9:11
    
Simple, elegant, utterly jQuery. Very nice. –  heathenJesus Oct 2 '12 at 18:22
    
Nice solution, good spot! –  Bigood Mar 28 '13 at 16:31

There you go, just added a simple counter :)

http://jsfiddle.net/Pz5YB/24/

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You can create a variable and count each time the animation is finished. If it equals 3 (or whatever number you want), call another function. See this jsfiddle

function animateAll(){
if(flag) return;
flag = true;
 //$('.list-wrapper').scrollLeft(w); // not sure why you need this
 //$('.table-wrapper').scrollLeft(w); // or this
 $('.list-wrapper, .table-wrapper').animate({
     scrollLeft: 2*w,
   }, function(){
       countAni++;
       console.log('finish');
       if(countAni == 3) finishAni()
   }     
 );
 function finishAni(){
     alert('whoohoo ready');   
     flag = false;
 }
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I need to initially position the elements, thats why I scrollLeft first of all... –  ho.s Apr 12 '12 at 13:34

In your case, you can view currently animated with:

$(':animated').length

and on complete callback:

if($(':animated').length==1)
     console.log('whoohoo ready');

http://jsfiddle.net/Pz5YB/25/

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1  
wow. i would not have come to this. I did not know about the :animated selector before. should be linked in .animate() article I think? definitely helped me around. –  ho.s Apr 12 '12 at 7:02

The accepted answer was a little unclear to me at first how to handle unrelated elements. Eventually I arrived at this answer:

 $.when(
     $someElement.animate(...).promise(),
     $someOtherElement.animate(...).promise()
).done(function() {
    console.log("whoohoo ready");
});
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