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I'm pretty new to jQuery. I'm trying to create a photo wall where the images will start to fade in one after another as the page loads. Here's the HTML:

<div id="photoWall">
   <a href=""><img src="a.jpg" /></a>
   <a href=""><img src="b.jpg" /></a>
   <a href=""><img src="c.jpg" /></a>
</div>

and the failed jQuery:

$('#photoWall a').hide();
$('#photoWall a:eq(0)').fadeIn();
if ($('#photoWall a:before:visible')) {
    $(this).fadeIn();
}

My logic is, hide all links containing the images at first. Then fadein the 1st link, next check to see if the previous link is visible, if so fade in the current link, and so on until all links are showing. How to get this to work?

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3 Answers 3

up vote 3 down vote accepted
  • There is no :before selector.
  • Any code that runs after an animation, such as the .fadeIn() after the .fadeOut(), needs to happen in a callback.
  • There's no loop here, so it's only going to fade in the first and second images.

This is fancier looking than what you've got, but it's not too bad:

$(function ()
{
    function show($links, i)
    {
        var $link = $links.eq(i);
        if ( !$link.length ) return;
        $link.fadeIn(function ()
        {
            show($links, ++i);
        });
    }

    show($('#photoWall a').hide(), 0);
});

Demo: http://jsfiddle.net/mattball/ECWxM/

share|improve this answer
    
$links.get(i).fadeIn(... That wouldn't seem to work. I imagine you meant to use .eq(). –  user113716 Jun 30 '11 at 22:43
1  
@patrick you're right, and I'm fried - already fixed. –  Matt Ball Jun 30 '11 at 22:44
    
@Matt Ball: Oops... Looks like you've got 2 other issues. First if (!$link) return; should be if (!$link.length) return;. Not a big deal since the callback won't happen anyway, because there's nothing to fade in. The more serious one is that you're getting a Uncaught RangeError: Maximum call stack size exceeded because you used the post-incrementing operator i++ instead of pre ++i. When the call stack limit is reached, the exception is thrown, and apparently allows the i to be incremented and passed to the recursive call, at which point you get the error again, and so on. ;o) –  user113716 Jun 30 '11 at 23:17
1  
...changed it for you. Was afraid the other guy would start whining about accepted answers again. –  user113716 Jun 30 '11 at 23:32
    
d'ahhhhh thanks again. –  Matt Ball Jun 30 '11 at 23:40
function fadethem(elem) {
    elem.fadeIn('slow', function() {
        if (elem.next().length > 0) fadethem(elem.next());
    });
}

fadethem($('#photoWall a:eq(0)'));

Check out the fiddle: http://jsfiddle.net/QFccn/1/

I've hidden the images on pageload using CSS in stead of javascript. Otherwise the images would be displayed until the DOM is ready.

On page load I call the fade function with the first image.

If animation is finished (callback of fadeIn()) I call the function again with next element (if there are more).

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(+1) this is a much more concise solution than mine. –  Matt Ball Jun 30 '11 at 22:38
    
@Matt Ball: Thanks. Too bad for others OP didn't mark it as answer :D –  PeeHaa Jun 30 '11 at 22:43
1  
I'm sure they'll survive without your answer being on top. –  user113716 Jun 30 '11 at 23:06

This becomes super easy when you use the delay()[docs] method.

$('#photoWall a').hide().each(function(i) {
    $(this).delay(i * 400).fadeIn();
});

Example: http://jsfiddle.net/eRgPt/ (Borrowing the fiddle from @Matt Ball.)


EDIT:

To explain (so the down-voter can understand), it's really simple.

Using the each()[docs] method , you can operate on each element that matched the selector individually.

You also get an index argument that is passed to the callback. So all this does is it multiplies the current index by the total length of the animation, making each consecutive element begin n milliseconds later than the previous.

   0 * 400 = 0
   1 * 400 = 400
   2 * 400 = 800
   3 * 400 = 1200

Additionally, you could easily assign the duration of the animation to a variable in order to change both the duration of the animation and the delay.

var duration = 1000;

$('#photoWall a').hide().each(function(i) {
    $(this).delay(i * duration).fadeIn(duration);
});

Example: http://jsfiddle.net/eRgPt/1/

share|improve this answer
    
@Down-voter: What's the issue? –  user113716 Jun 30 '11 at 22:51
    
@Down-voter: Hello? What, you can't come up with a reason? No surprise. –  user113716 Jun 30 '11 at 22:59
1  
I like this variation as well. These 3 answers more-or-less cover all the basic ways to do it. –  Matt Ball Jun 30 '11 at 23:41

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