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I am building a simple image gallery based on the following markup:

<div id="image-list">
<li id="image-1">
<img src="myimage1.jpg" width="500" height="500" alt="My Image" />
<li id="image-2">
<img src="myimage2.jpg" width="500" height="500" alt="My Image" />
<li id="image-3">
<img src="myimage3.jpg" width="500" height="500" alt="My Image" />
<ul id="thumb-list">
<li id="thumb-1"><img src="myimage1-thumb.jpg" width="50" height="50" alt="My Image" /></li>
<li id="thumb-2"><img src="myimage2-thumb.jpg" width="50" height="50" alt="My Image" /></li>
<li id="thumb-3"><img src="myimage3-thumb.jpg" width="50" height="50" alt="My Image" /></li>

I have styled this using CSS so that only one of the larger images is visible at one time (using overflow: hidden with a fixed container height).

I am then using jquery to absolutely position the UL within the container to show each image, using the following markup:

$('#thumb-list li img').click(function() {
    var image = $(this).parent().attr('id').substring(6);
    var position = $('#image-' + image).position();
    $("#image-list ul").css({'top' : '-' + +'px'});

Basically I want to fade out the entire "#image-list ul" while it's position is changed and then fade it back in to show the new image.

Could someone suggest the most efficient way to do this? - any help is much appreciated!

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jQuery's fadeOut() and fadeIn() don't work for you? – Jimmy Cuadra Jan 10 '10 at 12:25
Yeah, I'm more unsure of how to place them to get the desired effect. I'm guessing I need the bulk of my code in the fadeOut callback function? – Fred Jan 10 '10 at 12:41
Would this code be the best solution?: $('#thumb-list li img').click(function() { var image = $(this).parent().attr('id').substring(6); var position = $('#image-' + image).position(); $('#image-list ul').fadeOut('fast',function() { $(this).css({'top' : '-' + +'px'}).fadeIn('fast'); }); }); – Fred Jan 10 '10 at 12:50

2 Answers 2

up vote 1 down vote accepted

Remove the height and width from you img tags, css can take care of that.





#image-list img{



#image-list li{




$('#thumb-list li img').click(function() {

      var image = $(this).parent().attr('id').substring(6);
      $('#image-' + image).fadeIn("slow").siblings().fadeOut("slow");


are you using prototype or jquery?

if your using jquery, instead of relying on the .css() function try the .hide() function as it does exactly the same thing as css({'display' : 'none'}). and .fadeIn() will animate the return of your div. on first load they'll all be visible so instead of hiding them with css tell jquery to hide all of them with this command.

$('#thumb-list il').hide();

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I'd advice against removing the width and height in your html: By setting these your html is correctly rendered even before the images are loaded. – Jimmy Shelter Jan 10 '10 at 13:17
Well I was always told to keep my style markup out of HTML tags but... – Robert Hurst Jan 10 '10 at 13:57
Thanks Robert, Overlapping the list items definitely seems like a better solution... Presumably with this approach I would need to add "display: none;" to the list items then show the first item using something like: $('#image-list ul li:first-child').css({'display' : 'block'}); (Using javascript for browsers which don't support "first-child"). – Fred Jan 10 '10 at 18:04

Another solution might be to use a plug-in and then modify your styles so that your page doesn't look broken if someone has Javascript disabled.

Check out:

It's quite easy to use and hard to mess up. Good luck! :)

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