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I am working with a div that has any number of img elements inside it. Right now, each img has the following CSS:

#content > img {
display: none;
position: absolute;
top: 0px;
left: 0px;
}

And the images can be cycled-through with a function that shows and hides them in turn. While each image is loading, however, I'd like to display a "loading..." image. I'd like to use JavaScript/jQuery to swap the source of each incomplete image for the "loading..." image while still permitting it to load. What's a lean and mean way to do this?

share|improve this question
up vote 5 down vote accepted
$(function(){
   $('<img>').attr('src','loading.gif'); // preload the "loading" image.

   $('#content > img').each(function(){
       var original = this.src;
       var $this = $(this);
       $this.attr('src','loading.gif'); // swap to loading image.
       $('<img>').attr('src',original)// pre-load original.
              .load(function(){
                 $this.attr('src',original); // swap it back when pre-load is done. 
              });
   })
});

crazy example

share|improve this answer
    
Now there's an idea. What is the purpose of the < and > in the $('<img>') selector? Does this do something other than select the img elements? – Isaac Lubow Sep 23 '10 at 3:55
    
I like this one! – Matt Williamson Sep 23 '10 at 4:13
1  
that's awesome! – Isaac Lubow Sep 23 '10 at 9:24

There's an imagesLoaded plugin that can be found here: http://gist.github.com/268257

Just show the loading image, bind to the imagesLoaded event and when it's triggered, hide the loading image.

UPDATE:

Actually, jQuery has built in methods to detect loading now: http://api.jquery.com/load-event/

share|improve this answer
    
Yes, I know this plugin. I guess I could execute a function every time one of the images is shown. If it's not complete, then the "loading" image gets shown (in front of the div). Otherwise, it isn't shown. I was thinking of switching the source of each image, but I guess there's no need. – Isaac Lubow Sep 23 '10 at 3:41
    
Don't forget we have the hide and show methods. I don't think the src way would work because you'd need to have it set to the large image in order to start the download. – Matt Williamson Sep 23 '10 at 3:55
    
@Matt - I don't quite get this - you'd need to have it set to the large image in order to start the download – Reigel Sep 23 '10 at 4:02
    
Let's say you have an image "/test.jpg" that you want to show. The browser won't start downloading it until you set the src of an img tag to "/test.jpg". So, if you wanted to do the swapping via the src attribute, you'd need to set the src attribute to some other img tag first, so you may as well just do it once. – Matt Williamson Sep 23 '10 at 4:12
    
hehe I'll introduce you to $('<img>'). and let's put /test.jpg as a source of it. $('<img>').attr('src','/test.jpg'). this is like <img src="/test.jpg" />. The only difference is that $('<img>') is not attached to DOM. cool ;) – Reigel Sep 23 '10 at 4:20

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