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All, I have this code:

var speed= 1000,
num = 1,
timer;

(function rotate() {
    var container_footer = jQuery("#rotate_container");
    var divs_footer = container_footer.children();
    var divs_footer_length = divs_footer.length;
    $("#item"+num).stop(true, true).fadeIn(speed).delay(speed).fadeOut(speed);;
    num>divs_footer_length  ? num=0 : num++;
    timer = setTimeout(rotate, speed*3);
})();

This works good and rotates the images. However, it fades a div out as soon as soon as it's displayed and fades another div in. What I would like to happen is have a div faded in based on the speed variable and then be displayed for 15 seconds and then fadeout at the speed variable and then fade another div in at the speed variable and be displayed for 15 seconds etc. Any ideas on how to do that would be greatly appreciated? Thanks!

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2 Answers 2

up vote 0 down vote accepted

Instead of fading in, waiting, and fading out, you could make the rotate function simply fade an image out, and then fade in the next one. So start with the first image displaying already, then call setTimeout on rotate(). Example:

var speed= 1000,
num = 1,
timer = setTimeout(rotate, 15000); //15 seconds as requested

function rotate() {
    var container_footer = jQuery("#rotate_container");
    var divs_footer = container_footer.children();
    var divs_footer_length = divs_footer.length;
    $("#item"+num).fadeOut(speed);
    num>divs_footer_length  ? num=0 : num++;
    $("#item"+num).fadeIn(speed);
    timer = setTimeout(rotate, 15000);
};
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I want it to wait the specified period of time. So I'd like it to be displayed for the 15 seconds before it tries to rotate in another one. –  user1048676 Nov 17 '11 at 19:04
    
Yes, so change to setTimeout(rotate, 15000); and that will do it for you. It will wait 15 seconds before calling rotate again. –  Clint Nov 17 '11 at 19:53
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You could use the callback that happens on fadeOut and use a little recursion to loop through your divs. This will work well if you have a set limit of divs. Below works for me, even the delay.

        var rotate, speed= 1000;

        rotate = function (itemNum) {
            $("#item" + itemNum).stop(true, true).fadeIn(speed).delay(speed).fadeOut(speed, function () {
                //callback when fadeOut completes
                rotate(itemNum + 1);
            });
        }
         rotate(1);
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