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I want to block all images on a webpage. There will be grey boxes instead of images.

Like lazy load , but images will not load while scrolling.

How can i do this with jquery ? Are there any function for this?

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1  
Does it really depend on loading? Or do you want to "not display" them? The loading of new images is done with AJAX if you are on a certain position. So it is not "not loading", but "do load" at the right moment I think. –  Marnix Jan 29 '11 at 0:57
    
@Marnix, images must be blocked while page is loading. So, i can increase my webpages speed (for example) . –  Eray Jan 29 '11 at 1:28

2 Answers 2

up vote 1 down vote accepted
 $('img').attr('src', 'img_with_square_border.jpg');

This should work perfectly.

...Unless, of course, you wanted to load the images back when the user gets to them.

EDIT TO ACCOMMODATE CLICKING

$('img').each(function () { this.setAttribute('real-src', this.src); })
        .attr('src', 'whatever.jpg')
        .click(function () { this.src = this.getAttribute('real-src'); });
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but all images have different sizes . And later , how can i find these images real address for load images. –  Eray Jan 29 '11 at 0:52
    
@Eray If the img_with_square_border is just a solid color, then distorting it to all different sizes should be okay, right? Under what circumstances will you be loading the images back - when the user scrolls to them, when certain elements are clicked, etc.? –  sdleihssirhc Jan 29 '11 at 0:57
    
clicking, for example. –  Eray Jan 29 '11 at 1:04

Here's an example that replaces images with a gray box, and retains a reference to the original image using .data().

Example:: http://jsfiddle.net/GTQTC/2/ (will revert back after 3 seconds)

$('img').each(function() {
    var $th = $(this);
    var div = $('<div>', {
        className: 'replacement',
        width: $th.width(),
        height: $th.height(),
        display: $th.css('display'),
        css:{'backgroundColor':'#DDD'}
    })
        .data('originalImage',this);
    $th.replaceWith(div);
});

setTimeout(function() {
    $('.replacement').replaceWith(function() {
        return $(this).data('originalImage');
    });
}, 3000);
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