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I have tried using .load() and .ready()

My image is pretty big and when it loads, it loads in sections from top to bottom. Is there any way to make the image show up all at once when it is fully loaded and ready to be FULLY seen?

$('img.touch').hide();
$('img.touch').ready(function() {
$('img.touch').show();
});

The last thing I tried was that code up above... Any help would be great

Thanks

share|improve this question

I first create an image object. Then I define it's onload function. Afterwards I set the actual image location. Please note this example sets the background image.

var img = document.createElement('img')
img.onload = function(){
    //image only loads when finished
    div.style.backgroundImage = 'url(' + imgLocation + ')'        
}
img.src = imgLocation
share|improve this answer

I could see a solution where you could do something like this:

$(document).ready(function () {
    $("img.touch").attr("hidden", true);

    $("img.touch").load(function () {
        $(this).attr("hidden", false);
    });
});
share|improve this answer

You may try this

Without using jquery:

<img src="some.jpg" style="visibility:hidden;" onload="this.style.visibility='visible';" />

with query:

$(document).ready(function(){
    $('img.touch').one('load',function(){
         $(this).css('visibility','visible');
    }).each(function(){
        if(this.complete)  $(this).trigger('load');
    });
});
share|improve this answer

You could look at using the imagesLoaded plugin to check if the image has loaded.

The plugin also has the benefit of allowing for cached images.

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