5

I have a div wherein I would like to fade all of the child elements out at once, but fade in a new element but only after all children have completed fading out. Using my current code below, the #Message div starts fading in after the first child element and is actually placed after the last child. Once the last child fades out completely, the #Message div then "jumps" up into position. I want to avoid this "jump".

$('#DIV').children().fadeOut("slow", function() {
    $('#Message').fadeIn("slow");
});

How can I make certain the fadeIn() animation doesn't begin until fadeOut() is complete on ALL child elements of #DIV?

Edit: I should note that my #Message div is located inside of #DIV.

4
10

You'll want to use deferred objects specifically for scenarios like this. The easy part is that animations already create deferred objects by default: http://jsfiddle.net/rkw79/zTxrt/

$.when(
    $('#DIV').children().each(function(i,o) {
        $(o).fadeOut((i+1)*1000);
    })
)
.done(function() {
    $('#Message').fadeIn("slow");
});
1
  • 3
    actually, animations do not automatically create promises. The promise is created by calling the .promise function, and it happens that $.when does that for each passed parameter. You could have written $(...).each(...).promise().done(...) instead of using $.when.
    – Alnitak
    Jun 29 '13 at 16:28
0
$('#DIV').children().fadeOut("slow", function() {
    if($('#DIV').children().filter(':animated').length == 1) $('#Message').fadeIn("slow");
});

Basically count how many are still animating, and when there is only one left, run the callback.

This also makes your callback run just once, not once per element.

2
  • Sorry, I had a typo. (I was missing the .length)
    – Ariel
    Sep 18 '11 at 0:51
  • I still get the "jump" up as if #Message starts fading in before everything has finished fading out. I should note that #Message div is located inside of #DIV; I've updated the original question to note this.
    – jrrdnx
    Sep 19 '11 at 11:34

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.