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I am trying to fade out all my images within a table with Jquery.

The following seems not to work.Maybe a syntax error?

$(function() {
     $('#myTable img').each(function(index) {
        $(this).fadeOut('slow', function() {
    // Animation complete.
       });
    });
});
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Works fine for me. Maybe your ID is wrong : jsfiddle.net/jomanlk/y9zCK –  JohnP Jul 4 '11 at 6:16
    
I had a mistake above it. Thanks it does work –  james Jul 4 '11 at 6:31

1 Answer 1

up vote 1 down vote accepted

You only have to do this:

$(function() {
     $('#myTable img').fadeOut('slow', function() {
        // Animation complete.
       });
});

You don't have to use the each method.

And if you want to use the each method, do the following

$(function() {
     $('#myTable img').each(function(index,e) {
        $(e).fadeOut('slow', function() {
       // Animation complete.
       });
    });
});

The e will reference current image.

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I need to use each cause I have to have a reference to each of the images? Thanks –  james Jul 4 '11 at 6:18
    
Okay, I have edited my answered. Please let me know if it works for you. –  Marc Uberstein Jul 4 '11 at 6:19
    
@marc This doesn't explain why his current code works. Also $(this) will refer to the image as well won't it? –  JohnP Jul 4 '11 at 6:21
1  
Giving you credit cause this works as well. –  james Jul 4 '11 at 6:32

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