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I found this code to achieve the desired effect and tried it on JSFiddle

http://jsfiddle.net/AndyMP/7F9tY/

It seems to work in that it fades the image in after it has loaded. Then I tried it in a webpage and it didn't work the same way, loading the image first rather than fading it in. Although sometimes it seemed like it was fading in at the same time as it loaded.

Is there a more reliable way of achieving this, preferably by amending this code if possible?

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4 Answers 4

up vote 18 down vote accepted

The only reliable way to fadeIn() an image that is in your actual HTML markup is to set an onload handler in the HTML markup like this:

<div id="image">
    <img id="preload" onload="fadeIn(this)" src="http://farm8.staticflickr.com/7227/7007769551_3b5b1640ea_b.jpg" style="display:none;" />
</div>

<script>
// this function must be defined in the global scope
window.fadeIn = function(obj) {
    $(obj).fadeIn(1000);
}​
</script>

Working demo here: http://jsfiddle.net/jfriend00/X82zY/

Doing is this way, you don't need to give each image an id or class. Just set the style and the event handler in the markup.

The reason you have to put the event handler in the markup is that if you wait until your page's javascript runs, it may be too late. The image may already be loaded (particularly if it's in the browser cache) and thus you may have missed the onload event. If you put the handler in the HTML markup, you will not miss the onload event because the handler is assigned before the image starts loading.

If you don't want to put event handlers in the javascript, then you can do something like this where you use a placeholder for the image in the actual HTML and you use javascript to create the actual image tags and insert them and pull the image URL from the placeholder:

<div>
    <span class="fadeIn" data-src="http://farm8.staticflickr.com/7227/7007769551_3b5b1640ea_b.jpg"></span>
</div>

<script>
$(document).ready(function() {
    $(".fadeIn").each(function() {
        var src = $(this).data("src");
        if (src) {
            var img = new Image();
            img.style.display = "none";
            img.onload = function() {
                $(this).fadeIn(1000);
            };
            $(this).append(img);            
            img.src = src;
        }
    });​
});
</script>

Working demo: http://jsfiddle.net/jfriend00/BNFqM/

The first option will get your images loaded a little quicker (because image loading starts immediately upon page parsing), but the second option gives you more programmatic control over the process.

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Thanks. I had a bit of trouble with option 1 in terms of other jquery not executing correctly. I'll go with option 2 :) –  Andy Mar 23 '12 at 21:22
    
@Andy - that's odd. Option 1 has nothing to do with other jQuery. Other jQuery would still go where it typically does in a $(document).ready() function. I'm glad option 2 works for you, but option 1 could too if you want to figure out why something else wasn't working. –  jfriend00 Mar 23 '12 at 21:24
    
Yea, I thought it was odd as well. I'll give it another try... –  Andy Mar 23 '12 at 21:33
    
Worked that time, no idea what I did first. –  Andy Mar 23 '12 at 22:52

html

<div id="image">
    <img id="preload" src="http://farm8.staticflickr.com/7227/7007769551_3b5b1640ea_b.jpg" style="display:none;" />
</div>

javascript

.ready() does not fire they way you think it does, see the 'load' jQuery event handler

$("#preload").load(function(evt){
      $(this).fadeIn(1000);
});
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pay close attention to the restrictions on .load() further down the documentation –  DefyGravity Mar 23 '12 at 20:23
    
This probably won't work in some browsers after the image is in the browser cache because the image will finish loading before you javascript runs, thus you will never see the load event. –  jfriend00 Mar 23 '12 at 20:38
    
@jfriend00 yeah, that's in the documentation on .load() –  DefyGravity Mar 23 '12 at 20:53

fadeIn should be called after the image has loaded. Here is an example: http://jsfiddle.net/mYYym/

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How could I make that work for multiple images on the same page? I don't want to repeat the same code and give each image a separate ID, otherwise it seems like only the first image loads. –  Andy Mar 23 '12 at 20:23
    
Here is an example: jsfiddle.net/8fwfV –  stewe Mar 23 '12 at 20:29
    
This probably won't work in some browsers after the image is in the browser cache because the image will finish loading before you javascript runs, thus you will never see the load event. –  jfriend00 Mar 23 '12 at 20:38

Pure java script and CSS solution:

Using the transitions effect with opactiy.

HTML:

<a class="images">
    <img src="http://lorempixel.com/400/200/" onload="fadeImg(this);">
</a>
...

JS:

var images = document.getElementsByClassName("images");

for (i = 0; i < images.length; i++) {
    var childImage = images[i].childNodes[1];

    if (!childImage.complete) {
        images[i].style.opacity = "0";
    }
}

function fadeImg(image) {
    var parentClass = image.parentNode;

    parentClass.style.transition = "opacity ease-out  1.75s";
    parentClass.style.opacity = "1";
}

Demo: http://jsfiddle.net/nUyyr/

share|improve this answer
    
Good approach. Only keep in mind that css transition doesn't work in IE9 or lower version. –  tweray Jun 25 at 14:15

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