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So I have three stacked elements, i.e.

markup:

<div id="banner-1" class="banner-background"></div>
<div id="banner-2" class="banner-background"></div>
<div id="banner-3" class="banner-background"></div>

<a class="menu-link banner-1-link">1</a>
<a class="menu-link banner-2-link">2</a>
<a class="menu-link banner-3-link">3</a>

jquery:

for each link, i want to switch to the corresponding element and fade between. however this is causing weird problems, with the third element keep showing on fade. Is there also a better way to go about this so that is more dynamic, so say if I wanted to add 4 or 5 it would work too?

    $('.menu-link').on('mouseenter', function(){
        var menuLink = $(this);

        if (menuLink.hasClass('banner-1-link')){
            $('#banner-1').animate({'opacity': 0}, 100, function (){
                $('#banner-1').css('z-index', '3');
            }).animate({'opacity': 1}, 600);
                $('#banner-2').css('z-index', '0');
                $('#banner-3').css('z-index', '0');
        }

        else if (menuLink.hasClass('banner-2-link')){
            $('#banner-2').animate({'opacity': 0}, 100, function (){
                $('#banner-2').css('z-index', '3');
            }).animate({'opacity': 1}, 600);
                $('#banner-3').css('z-index', '0');
                $('#banner-1').css('z-index', '0');
        }

        else {
            $('#banner-3').animate({'opacity': 0}, 100, function (){
                $('#banner-3').css('z-index', '3');
            }).animate({'opacity': 1}, 600);
                $('#banner-2').css('z-index', '0');
                $('#banner-1').css('z-index', '0');
        }
});

Any help is appreciated, thanks!

Edit:

CSS:

.banner-background{
    width: 100%;
    height: 500px;
    position: absolute;
    top: 0;
    left: 0;
}

#banner-1{
    z-index: 3;
}

#banner-2{
    z-index: 0;
}

#banner-3{
    z-index: 0;
}
share|improve this question
    
Are the elements absolutely positioned to the same location? –  Blazemonger Dec 10 '12 at 18:24
    
Yep (: absoloutely positioned –  Amy Dec 10 '12 at 18:25
    
Can you create a fiddle that adheres to your issue.. –  Sushanth -- Dec 10 '12 at 18:29
    
i think your issues are with the z-indexes. –  Jai Dec 10 '12 at 18:31
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4 Answers

This might be what you need -- fade ALL the banners out, then change the z-index as needed before fading them all in again:

$('.menu-link').on('mouseenter', function() {
    var menuLink = $(this);
    $banners = $('#banner-1,#banner-2,#banner-3');

    $banners.stop().animate({'opacity':0},100, function() {
        $banners.css({'z-index':0});
        if (menuLink.hasClass('banner-1-link')) {
            $('#banner-1').css({'z-index':3});
        } else if (menuLink.hasClass('banner-2-link')) {
            $('#banner-2').css({'z-index':3});
        } else if (menuLink.hasClass('banner-3-link')) {
            $('#banner-3').css({'z-index':3});
        };
        $banners.animate({'opacity':1},600);
    });
});​

http://jsfiddle.net/mblase75/GbbVU/

share|improve this answer
    
Thats more of a fade in and out than a cross fade though? I need them cross fade one over the other. the solution works above apart from a small glitch, not sure why but the third image keeps appearing between the fade –  Amy Dec 11 '12 at 11:53
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Here is my jsfiddle: http://jsfiddle.net/Morlock0821/k4EkG/1/

html

<div class="banner" id="banner-1"></div>
<div class="banner" id="banner-2"></div>
<div class="banner" id="banner-3"></div>
<a data-banner="1" class="menu-link">1</a>
<a data-banner="2" class="menu-link">2</a>
<a data-banner="3" class="menu-link">3</a>​

js

$('.menu-link').on('mouseenter', function(){
    var menuLink = $(this),
        banner = menuLink.data('banner');

    $('.banner').not(this).animate({'opacity': 0}, 100);
    $('#banner-' + banner).animate({'opacity': 1}, 600);

});​

css

.banner {
    position:absolute;
    top:0;
    left:0;
    width:100%;
    height:40px;
}
#banner-1 {
    background-color:blue;
}
#banner-2 {
    background-color:red;
    opacity:0;
}
#banner-3 {
    background-color:green;
    opacity:0;
}

using data is the way to go here in order for it to be dynamic.

share|improve this answer
    
Why the following line ? $('.banner').not(this).animate({'opacity': 0}, 100); –  Ricardo Alvaro Lohmann Dec 10 '12 at 18:46
    
since im not using z-index, it will hide the other banners except the one that was mouseentered –  Pedro Estrada Dec 10 '12 at 18:50
    
It's hiding all. –  Ricardo Alvaro Lohmann Dec 10 '12 at 18:52
    
even in the jsfiddle? i changed your markup a little –  Pedro Estrada Dec 10 '12 at 18:54
add comment

You can use data attr.

HTML

<div id="banner-1" class="banner-background"></div>
<div id="banner-2" class="banner-background"></div>
<div id="banner-3" class="banner-background"></div>

<a class="menu-link banner-1-link" data-banner="banner-1">1</a>
<a class="menu-link banner-2-link" data-banner="banner-2">2</a>
<a class="menu-link banner-3-link" data-banner="banner-3">3</a>

JS

$('.menu-link').on('mouseenter', function(){
    var $menuLink = $(this),
        $banner = $('#' + $menuLink.data('banner'));

    $banner.animate({'opacity': 1}, 100, function (){
        $(this).css('z-index', '3');
    });
    $('.banner-background').not($banner).css('z-index', '0');

});

demo

share|improve this answer
    
I can see this works in the fiddle, but for some reason I'm still having an issue with the third image randomly flashing upbetween hovering over others... –  Amy Dec 10 '12 at 19:09
    
$banner.animate({'opacity': 0}, 100, function (){ $(this).css('z-index', '3'); }).animate({'opacity': 1}, 600); $('.banner-background').not($banner).css('z-index', '0'); Any idea why this would make the third banner appear between every fade? –  Amy Dec 11 '12 at 11:42
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 $('.menu-link').on('mouseenter', function(){


                      var $menuLink = $(this);
                      var $banner = $('#' + $menuLink.data('banner'));

                        $banner.css('opacity', 0);
                        $banner.parent().append($banner);

                        // fade in relevant banner
                        $banner.animate({'opacity': 0}, 100, function (){
                        }).animate({'opacity': 1}, 600);
    });

I needed to append the image instead. So we take each image, and append it to a parent container.

<div class="banner-back-container">
     <div class="banner-background" id="banner-1"></div>
      <div class="banner-background" id="banner-2"></div>
      <div class="banner-background" id="banner-3"></div>
 </div>

<li><a href="#" class="active menu-link" data-banner="banner-1">Latest collection</a></li>
<li><a href="#" class="menu-link" data-banner="banner-2">Must have collection</a></li>
<li><a href="#" class="menu-link" data-banner="banner-3">Coming soon</a></li>
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