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I've got a working html page with jquery, with one function that does not work:

I've made a div open ('containerprC') after hiding two divs on the main page ('containerSW' and 'containershort').

What I now want is, for ('containerprC') to fade out when I click only outside of the div, and for the hidden divs to fade in.

Here is the script:

$(document).on('mouseup', function(e) {
if (!$(e.target).is('#containerprC') && !$(e.target).parents().is('#containerprC')) {

    $('#containerprC').fadeOut("slow");
    $('#containerSW').fadeIn('slow');
    $('#containershort').fadeIn('slow');
}
});

The fade out and in's work fine, but they happen if I click anywhere on the page, including inside of containerprC.

So it means that the first line (if (!$(e.target).is) is not working properly. How could I make it work? Many thanks.

share|improve this question

Your second condition is wrong. But you can change your entire condition for this one :

if (!$(e.target).is('#containerprC, #containerprC *')) 

It will check if the target is the div or one of its children.

share|improve this answer
    
When I use the condition you suggest, none of the original jquery functions work for the html page. So I cannot fade out the other containers and fade in containerprC (the point at which the problem above occurs). – Laura Maasry Sep 20 '13 at 17:32
    
@LauraMaasry Do you think you can reproduce the problem in a jsFiddle? – Karl-André Gagnon Sep 20 '13 at 17:37
    
Thank you but when I use this, the other divs still appear behind. – Laura Maasry Sep 20 '13 at 17:40
    
I will try to reproduce it for you. – Laura Maasry Sep 20 '13 at 17:40
    
There was one bracket missing from your advice ')'. – Laura Maasry Sep 20 '13 at 17:40

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