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I have a gallery page with many images that I would like to load one by one, or at least give the illusion that each one is fading in one by one.

I've come up with this:

 $(".fadeInImage").hide();

var counter = 0;
$(".fadeInImage").each(function() {
    counter = counter + 50;
    fade_in(this,counter);

});
function fade_in(obj,counter)
{
    $(obj).bind("load", function () { $(this).delay(counter).fadeIn(); });  
}

This works lovely, and also just loads the images normally if there is no js. But, my question is, as I'm not that expert with jQuery, is there any problems you can foresee? Is there a better way to do this?

Thanks in advance!

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Looks fine to me. –  Thomas Shields May 5 '11 at 13:15

3 Answers 3

up vote 6 down vote accepted

Looks good to me. Although you could simplify it to something like this -- remember to use load event on window due to unpredictable nature of how long it'll take to load images:

$(document).ready(function() {
    $('.fadeInImage').hide();
});

$(window).load(function() {
    $(".fadeInImage").each(function(i) {
       $(this).delay((i + 1) * 50).fadeIn();
    });
});
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1  
Ah, there's always a better way isn't there? Thanks Gary, looks great. –  Michael Watson May 5 '11 at 14:00

You can't guarantee that the images will load in the order they appear in the HTML (especially if their sizes differ) so you may not get a smooth fade-...-fade transition. You can use the window's load event to get them to fade in when everything is ready:

$(".fadeInImage").hide();

$(window).load(function () {
    var counter = 0;
    $(".fadeInImage").each(function() {
        counter = counter + 50;

        $(this).delay(counter).fadeIn();
    });
});
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Great drop in solution Tom. Thanks for the tip! –  Jamie Jan 11 '12 at 13:28

I think this way would be more accurate:

var $imgs = $(".fadeInImage").hide();

function fadeOneByOne(i){
   if(i >= $imgs.size()) return;
   $imgs.eq(i).fadeIn(function(){ fadeOneByOne(i+1); })
}

fadeOneByOne(0);
share|improve this answer
    
As Tom says, putting this inside a $(window).load function will ensure images are already loaded –  Edgar Villegas Alvarado May 5 '11 at 13:30

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