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This has probably been answered before and I already know how this should work, but for some reason it is not. I think it may be how I am looping through the elements.

$(document).ready(function() {
     var element = '#gallery ul#gallery-container';
 var idx=0;
 var timeout = 3000;
 var number =  $(element + ' li').length;

function changeSlide() {

    $(element + ' li:eq(' + idx + ')').fadeOut();

    idx = idx + 1;

    if (idx == number) {
        idx=0;
    }

    $(element + ' li:eq(' + idx + ')').fadeIn().delay(timeout).delay(0,   function() {
        changeSlide();
    });;

}

 $(element + ' li').hide();

 $(element + ' li:first').fadeIn().delay(timeout).delay(0, function() {
    changeSlide();
 });
});

Then the list is like this:

<div id="gallery">
    <ul id="gallery-container">
        <li><img src="media/images/screen-shot-02.jpg" width="173" height="258" alt=" "></li>
        <li><img src="media/images/screen-shot-01.jpg" width="173" height="258" alt=" "></li>
    </ul>   
</div>

I was trying to get it to loop through the elements one by one, after a delay so the list item calls the function and hides itself, then the counter is incremented and then the current index is shown. I suspect the culprit to be this as if I put an alert in the function it is called:

 $(element + ' li:eq(' + idx + ')').fadeOut();
share|improve this question
1  
According to this api.jquery.com/delay the delay() function does not have a callback function, so changeSlide() never gets executed I'm thinking. –  Anriëtte Myburgh Feb 14 '11 at 10:12
    
For some reason, changeSlide() is called the first time, but when it gets to the function the $(element + ' li:eq(' + idx + ')').fadeOut(); isn't called. I may have to resort to setTimeout and work with that! –  Designer023 Feb 14 '11 at 10:31
    
Yeah, and note the double ;; in changeSlide()'s last line, that's stopping your script. –  Anriëtte Myburgh Feb 14 '11 at 10:40
    
Completely missed that! and Also didn't realise that was the case. I just assumed that things like that would be skipped over as it was just an empty line. I assumed wrong! –  Designer023 Feb 14 '11 at 10:46

2 Answers 2

up vote 3 down vote accepted

The main problem is, as the comment states, delay does not do what you think it does - you should be looking at the native setTimeout function instead. In addition to that, there are multiple places where this could be made more efficient. Have a look at this:

var element = $('#gallery-container li'),
    length = element.length,
    current = 0,
    timeout = 3000;

function changeSlide() {
    element.eq(current++).fadeOut(300, function(){
        if(current === length){
            current = 0;
        }

        element.eq(current).fadeIn(300);
    });

    setTimeout(changeSlide, timeout);
}

element.slice(1).hide();
setTimeout(changeSlide, timeout);

We try not to evoke the jQuery function with a dynamically generated selector, but instead manipulate a single instance of a jQuery object containing all the slides cached at the start. We also use the callback function provided by the fade functions to fade in the next slide after the current one has faded out.

See http://www.jsfiddle.net/b3Lf5/1/ for a simple demo

share|improve this answer
    
Bingo! That has worked a treat, and yeah that is way more efficient. You are a legend. Thanks –  Designer023 Feb 14 '11 at 10:34

I would do it something like this:

$(document).ready(function() {
    var element = '#gallery ul#gallery-container';
    var idx = 0;
    var timeout = 3000;
    var number = $(element + ' li').length;

    setInterval(function () {
        idx = (idx + 1) % number;
        $(element + ' li:visible').fadeOut();
        $(element + ' li:eq(' + idx + ')').fadeIn();
    },timeout);
    $(element + ' li:not(:first)').hide();
});

Or better still, wrap it in a plugin:

(function ($) {
    $.fn.customGallery = function (options) {
        defaults = {
            timeout : 3000
        };
        options = $.extend(defaults, options);
        return this.each(function () {
            var idx = 0, number = $(this).children('li').size(), element = this;
            setInterval(function () {
                idx = (idx + 1) % number;
                $(element).children('li:visible').fadeOut();
                $(element).children('li:eq(' + idx + ')').fadeIn();
            },options.timeout);
            $(element).children('li:not(:first)').hide();
        });
    };
}(jQuery));

jQuery(document).ready(function($) {
    $('#gallery-container').customGallery()
});

edit: Edited the plugin code to bring it into line with good practice.

share|improve this answer
    
The plugin idea is excellent. I will implement that as soon as I rewrite the code later. –  Designer023 Feb 14 '11 at 10:49
    
I tend to wrap any jQuery code which I might want to reuse in future in a plugin. It just makes it so easy to extend and use for something else. I have a huge wealth of plugins which I've built up over time. –  Nathan MacInnes Feb 14 '11 at 10:58
    
Oh and BTW JavaScript's setInterval will repeat an action every x milliseconds, which eliminates the need for your function recursively calling itself. –  Nathan MacInnes Feb 14 '11 at 14:54

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