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I have two functions wich work together. One to fadeOut() a visible article, and one to fadeIn() a new one AFTER the previous one is done fading. Somehow, the second function won´t wait for the first to finish. My code is as follows:

itemFadeTo: function( item ) {

    $( '#item_container article:visible' )
    .stop(true, true)
    .fadeOut( 750, $().itemFadeIn( item ) );


itemFadeIn: function( item) {

    $( item )
    .css({ opacity: 0 })
    .stop(true, true)
    .animate({ opacity: 1}, 750);


Called as follows:

var new_item= $( 'article#new_item' );

$().itemFadeTo( new_item);

Any help will be greatly appreciated!

Thanks, Knal

share|improve this question
Is there any reason why you're not using the built-in fadeIn method? – Nobita Mar 7 '13 at 10:31
There is a possibility the article won't always departure from opacity:0. I figured this would give me more 'control'. – knalpiap Mar 7 '13 at 10:51

1 Answer 1

The problem is that .fadeOut() expects a function as its second parameter but you are not passing a function, you are calling a function and passing its result as the second parameter:

.fadeOut( 750, $().itemFadeIn( item ) );

So that means the $().itemFadeIn( item) part happens before the call to .fadeOut().

Try this instead:

.fadeOut( 750, function() { $().itemFadeIn( item ); });
share|improve this answer
Thanks for your reply. I've been trying this before, but somehow it won't call anything then. Even replacing function() { $().itemFadeIn( item ); } with function() { alert('yeehaw!') } doesn't give a result. – knalpiap Mar 7 '13 at 10:49
That's weird. Can you supply a demo at Why does your fade out work on a hardcoded selector with $('#item_container article:visible') but your call to $().itemFadeIn() uses the item parameter? – nnnnnn Mar 7 '13 at 10:54
Because i always want to fadeOut() the visible article, the item to fadeIn() differs. – knalpiap Mar 7 '13 at 10:57
Somehow it won't run: – knalpiap Mar 7 '13 at 11:46

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