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I have a <div> containing a number of images. I want to fade this <div> in after all contained images have loaded, as they make up one unit that I'd rather have display cleanly instead of momentarily all over the place (while loading).

Is there something similar to window.onLoad that I can apply to a certain element?

e.g.

$("#id").onLoad(function()
{
    $(this).fadeIn(500);

});
share|improve this question
    
Not quite an exact duplicate, but check this out—the top answer is relevant, if correct: stackoverflow.com/questions/5424055/check-if-images-are-loaded –  Jordan Gray Feb 7 '12 at 23:45

4 Answers 4

up vote 2 down vote accepted
var images = $("#id img");
var imgCount = images.size();
var i = 0; 
images.load(function() {
    if(++i == imgCount){
         $("#id").fadeIn(500);
    }
});
share|improve this answer
    
Note, this answer indicates that it is sufficient to call the load event on the div; see stackoverflow.com/questions/5424055/check-if-images-are-loaded :) –  Jordan Gray Feb 7 '12 at 23:43

You probably already know how to assign a function to run on page load. In case you don't, try:

window.onload = function() {
    $('div').fadeIn(500);
}

jQuery only solution:

    $('div img.class').load(function() {
    // img.class is your largest (in bytes) image.
        $('div').fadeIn(500);
    });
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1  
The jQuery only solution needs to be $('div').load(...); otherwise it'll run when the individual images load and fade in too soon. –  nnnnnn Feb 8 '12 at 0:03
    
Great observation. I tested it using $('div').load(...);, but it didn't work for me. What ended up working is adding a class to the largest (in bytes) image. –  alpacalips Feb 8 '12 at 0:20

try this:

$("#id").load(function()
{
    $(this).fadeIn(500);

});

good luck

share|improve this answer
    
This won't work. As far as I'm aware you can only use .ready() with the document, but in any case the whole point of .ready() is that it is fired before everything finishes loading and OP wants to do something after the images load... –  nnnnnn Feb 7 '12 at 23:47
    
@nnnnnn you're right I wanted to put ".load()" –  MCSI Feb 7 '12 at 23:53
    
I've fixed, I was mistaken –  MCSI Feb 7 '12 at 23:54

one way of doing it is to add this in the head section of the HTML document:

$(function() {
    $("#id").fadeIn(500);
});

the idea behind $(function() { /* code */ } ) is that it will be ran when the DOM is loaded, you can have as many of this as you want in your head section, but it would be more readable IMHO if you only have one.

Another way of doing it is to have a main javascript file that will be ran for each page when it's ready, let's call the HTML file index.html and the javascript file index.js

index.html

<!doctype html>
<head>
<!- include the javascript/css/etc. files -->
  <script type="text/javascript" language="javascript">
    $(function() {
      // the following function exists in index.js file
      onPageLoadedIndex();
    });

    $(function() {
      // this code will also be executed when the DOM is ready
      // however I strongly recommend having only one of these
    });
  </script>
</head>
<body>
<!-- snip -->
</body>
</html>

index.js

function onPageLoadedIndex() {
  // some code
  $("#id").fadeIn(500);
  // more code
}

In this way you'll be avoiding having too much javascript in the HTML page

share|improve this answer
    
But you're describing document ready handlers, which are executed when the DOM is "ready" for access from script in that it has been fully parsed, but before all element content has loaded. The OP wants to do the fade in after all applicable images have loaded. By the way, regarding your technique of moving the function into an external file, you can move the $() part into the external file too so that the main file doesn't need to know the name of the function... –  nnnnnn Feb 7 '12 at 23:51

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