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I want to display a background image (loading.gif) while the image is loading. The image loads thanx to the following code :

var item = $('<li><a class="black-links" href="' + data.url + '#comments" title="' + data.title + '"><img class="loading"></a></li>');
var img = item.find('img');
img
    .hide()
    .one('load', function() { $(this).removeClass('loading').attr('alt', data.title).attr('width', data.width).attr('height', data.height).fadeIn(); })
    .attr('src', data.src)
    .each(function() { if (this.complete) $(this).trigger('load'); });

So there's a "loading" class added to the image at the beginning, and then this class is removed once the image is entirely loaded (and displayed). So the CSS code is :

.loading { background: #FFF url(../img/loading.gif) center center no-repeat; }

The trouble is : the image is loaded, and then it's displayed, BUT the loader is never displayed while the image is loading (this can be seen here). I thought I should delete the ".hide()"... but then I think the image will be partly displayed BEFORE it's entirely loaded, won't it ???

Thanx for your help !

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Load the img first (with new image), then append it. That way, you can display a spinner while loading. –  mddw Apr 28 '12 at 11:49
    
Sorry, but I don't understand what I should change precisely... –  user1296220 Apr 28 '12 at 11:53
    
Well, if you create an image, load it then append it, you don't have to hide the <img>, so you can display the spinner. Other solution : add the spinner in another element with some CSS. –  mddw Apr 28 '12 at 11:56
    
So could I only change the last part, like this ? img.one('load', function() { $(this).attr({src: data.src, alt: data.title, width: data.width, height: data.height}).fadeIn(); }).attr('src', '../img/loading.gif').each(function() { if (this.complete) $(this).trigger('load'); }); Would this be fine ??? –  user1296220 Apr 28 '12 at 12:07
    
You calling each when you have only one element. –  jcubic Apr 28 '12 at 12:12

2 Answers 2

up vote 0 down vote accepted

It's because you hide it when it's loaded

var item = $('<li><a class="black-links" href="' + data.url + '#comments" title="' + data.title + '"><img class="loading"></a></li>');
var img = item.find('img');
$('<img/>').attr('src', data.src).load(function() {
      img.removeClass('loading').attr('src', data.src).hide().fadeIn();
});
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But this whole thing look like it belong to the loop over data for (var i in result) { var data = result[i]; ... –  jcubic Apr 28 '12 at 12:10
    
Isn't it the same as my code... just without the .hide() ? –  user1296220 Apr 28 '12 at 12:10
    
It's not the same, you have hiden (Outside the DOM) image, and you attached load event to it (so it's executed when it's loaded) and main (visible) image is changed when this hidden is loaded. And your code add src to hidden element. If you hide something it will be hidden ;) –  jcubic Apr 28 '12 at 12:15
    
Mmm... not sure to understand (sorry, I'm far to be a pro as you can see) : shouldn't it be img.attr etc. instead of $('<img/>').attr etc. ? –  user1296220 Apr 28 '12 at 12:19
    
It's different element, new one, which have load attached. It's not displaying on the page you set img.attr when this hidden image is loaded. 2 images. –  jcubic Apr 28 '12 at 12:22
window.onload = function()
{ document.getElementById("loading").style.display = "none"; }       
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