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Ok so basically, I have an ajax call that makes changes to the database and gets new pictures to display. I am now trying not to show the pictures until their loading is done.


varData = [...];
   type: "POST",
    url: "ajax/save.php",
    data: varData,
    dataType: 'json',
    cache: false,
    success: function(result) {
        $('.leftPicture').attr('id', result[0]);
        $('.leftPicture img').attr('src', "[...]");
        $('.rightPicture').attr('id', result[1]);
        $('.rightPicture img').attr('src', "[...]");


Unfortunately, sometimes (depending on the browser), the old picture is shown again right before the new one is. How can I fix this and still make it look "snappy" ? I don't believe using a delay() or a setTimeout() would be the best choice since the picture might take less time to load.

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It's simple, just use .load() – Ohgodwhy Jun 20 '13 at 12:53

1 Answer 1

Try using .load() like this-

success: function(result) {
        $('.leftPicture img').attr('src', "[...]").load(function(){
           $('.leftPicture').show(0); // wait until image is loaded
share|improve this answer
This seems to work but it sometimes gets stuck in the display: none; style (that is induced by the hide()). What could be the cause ? – halpsb Jun 20 '13 at 15:51

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