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I would like to loop through a collection of divs and randomly fade them out when a click event is triggered but at the moment I have to continually click to fade the other divs all out. I would rather click a div and have all its divs randomly fade out. I have added some console.logs into the while loop and everything seems to work fine, problem is when I try to fadeout the actual elements. If anyone could help that would be great?

Fiddle here: http://jsfiddle.net/kyllle/sdpzJ/7/

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2  
Please post some relevant code here and please don't sign your posts –  PeeHaa Jan 31 '12 at 14:59
    
Hi, link to fiddle in post and signature removed :) –  styler Jan 31 '12 at 15:02
1  
Great. Now if you can post the relevant code here on SO we may be able to help you with your issue. –  PeeHaa Jan 31 '12 at 15:05

4 Answers 4

up vote 1 down vote accepted

Decided to throw this out there, too. Simplified.

$(function() {
    var $ctn = $('#container .ctn');

    function randomFadeOut() {
        var $r = $ctn.not($(this));
        var e = 0;
        while (e < $ctn.length) {
            $r.eq(e).delay(Math.random() * 500).animate({ opacity: 0 });
            e++;
        }
    }

    $ctn.hide().click(randomFadeOut).each(function(v) {
        $(this).delay(50 * v).fadeIn();
    });
});

http://jsfiddle.net/sdpzJ/15/

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I'm not sure if I understand your question, but here's a possible solution:

function randomFadeOut(i){  
    var random;
    var e = 0;
    while (e < ctnLength) { 
        random = Math.random() * 1000;
        $(ctn[e]).not(i).delay(random).animate({ opacity : 0 });
        e++;
    }        
}

This will fade out all the divs at random times when you click on one.

I updated your fiddle here.

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Your random number generator is outside of your loop - so you only get one random number over and over.

Try this:

 function randomFadeOut(i){  
        var random      
        for (var e=0;e<ctnLength;e++) {
            random = Math.floor(Math.random() * ctnLength);
            $(ctn[random]).not(i).animate({ opacity : 0 });
        }        
    }

Of course, since this is random, the same cells can be selected more than once, which will leave a number of cells behind.

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Here is a better and more efficient randomFade function:

function randomFadeOut(i){          
    var tmp = ctn.toArray();
    tmp.sort( function(){ return Math.floor( Math.random()*3 ) -1; } );
    for( var i=0; i<tmp.length; ++i ){
        $(tmp[i]).delay(100 * i).fadeOut();
    }
}

This way, you only go once through the array I updated your fiddle with it as well to see it in action :)

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