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Here's a page with some thumbnails:

http://thenozzle.net/games

What I want is when you hove over one thumbnail, the others fade to black (there's a black div behind each thumb). Hover off, and they come back.

The issue is when you go from one thumbnail to the next, all the other thumbnails on the page fade in and then out very quickly. How can I prevent this? Is there a better way to do what I'm trying to accomplish?

Here's what I have so far:

$('.child-thumb').hover(
    function () {
        $(this).addClass('active').removeClass('inactive');
        $('.inactive').children('img').stop(1,1).fadeTo('fast', .3);
            $('.inactive').children('p').stop(1,1).fadeTo('fast', .3);
    },
    function () {
        $('.inactive').children('img').stop(1,1).fadeTo('fast', 1);
            $('.inactive').children('p').stop(1,1).fadeTo('fast', 1);
        $(this).removeClass('active').addClass('inactive');
    }
);

NOTE 2: Also, if there's any way I can simplify or compress my code to make it more semantic/faster/lighter, please, let me know.

Thanks!

share|improve this question
    
Note: .stop() takes boolean parameters, not 1 or 0. While you may get away with it here because of automatic type conversion, the proper use of stop is to pass it true/false, not 1/0. –  jfriend00 Nov 12 '11 at 5:17

1 Answer 1

up vote 2 down vote accepted

You're using .stop() improperly. The only parameter you could need here is [clearqueue] = true (and that's only if you're worried about your users making two switches in under .3s)

just set all your stops to .stop(true)

eg:

$('.inactive').children('img').stop(true).fadeTo('fast', .3);

jsfiddle

share|improve this answer
    
Oh, thanks dude, easier then I thought. –  Jackson Gariety Nov 12 '11 at 4:04

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