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I have a set of divs like this:

example

I need to shuffle them when one of red divs is clicked but a clicked div should always be swapped with a yellow div.

fiddle here

$('.box-red').click(function() {
    var container = $('#container');
    var nodes = container.children();
    for (var i = 1; i < nodes.length; i++) {
        container.append(nodes.eq(Math.floor(Math.random() * nodes.length)));
    }
});

thanks

share|improve this question
    
What is the specific issue you're having? –  Daniel Lisik May 8 at 0:56

2 Answers 2

I took a slightly different approach with this FIDDLE

  1. put in random colors
  2. click on a box
  3. remember the box name and class
  4. randomize ALL boxes again
  5. change the "clicked" box to the different class

I tried using rgb codes, but was not getting consistent results, then here on SO, someone updated an old answer and said this type of thing might best be handled by changing class - a Eureka! moment. Seems to work. I'd like to play some more with rgb...not trivial.

JS

$('.box').on('click', function(){
    getboxcolor = $(this).hasClass('blue');
    getboxnum = $(this).attr('id');
    newcolors();
    if( getboxcolor )
    {
     $( '#' + getboxnum ).removeClass( 'blue' );
     $( '#' + getboxnum ).addClass( 'green' );
     }
     else
    {
     $( '#' + getboxnum ).removeClass( 'green' );
     $( '#' + getboxnum ).addClass( 'blue' );
     }
     getboxcolor = '';
     getboxnum = 0;
});
share|improve this answer

I have made certain changes to the fiddle.

First of all, the shuffling you are doing may not be a good shuffle as you've chances of duplicating the nodes that you are trying to shuffle. Which makes your shuffle not that effective.

I've used a variant of the Knuth-Fisher-Yates Shuffle.

function shuffle(nodes) {
    var length = nodes.length;
    var randomPick, randomSwap;
    for (var index = length; index > 0; index--) {
        randomPick = Math.floor(Math.random() * index);
        randomSwap = nodes[index - 1];
        nodes[index - 1] = nodes[randomPick];
        nodes[randomPick] = randomSwap;

    }
    return nodes;
}

The important part about ensuring the red-box (if it existed at position 'x') is replaced by a yellow-box, is to make sure that you store that index first.

If the element at that index post the shuffle is not a yellow-box, then you find the first yellow-box and then swap it.

Here's a fiddle where you can see it being used. Note that this is forked from yours, but I have changed the HTML.

$('.box-red').click(function () {

    //Important to store the index at which this red-node was present.
    var currentNodeIndex = $(this).index();

    var container = $('#container');

    var nodes = container.children();

    //Shuffles the node array.
    nodes = shuffle(nodes);

    console.log("Shuffled nodes", nodes);

    //If the current node index does not have a yellow-box, then go ahead and replace it.    
    if (!$(nodes[currentNodeIndex]).hasClass('yellow')) {
        for (var index = 0; index < nodes.length; index++) {
            if (index != currentNodeIndex && $(nodes[index]).hasClass("box-yellow")) {
                var redNode = nodes[currentNodeIndex];
                nodes[currentNodeIndex] = nodes[index];
                nodes[index] = redNode;
                break;
            }
        }
    }

    //Finally, build the complete node tree again.
    container.append(nodes);

});

Update Updated code based on King King's Suggestion

share|improve this answer
    
There are 2 points (which are not good in your code). Firstly we don't need a separate loop to find the yellow-box after shuffling. We can check for the yellow-box right in the loop in the shuffle function, remember that instance. Then after shuffling, we can just swap that instance and the clicked red box (the current node). The second is you don't need to loop through the shuffled nodes to append each one to the container, you just need to call container.append(nodes). –  King King May 8 at 3:59
    
Just calling container.append(nodes) would not be the right thing to do. You've to recall that the container already contains the required nodes. Appending it with the same "set" will be different than appending it one by one (for a good shuffle). You can fork the fiddle and see the behavior yourself. As for figuring out the yellow-box in the shuffle...yeah, that's something that can be done. I'll leave it to the OP ;) –  Serendipity May 8 at 4:21
    
have you read the documentation of append? You've to recall that the container already contains the required nodes when you add each node to it, isn't this the case you said? –  King King May 8 at 5:01
    
from documentation .append( content [, content ] ) in which content: DOM element, array of elements, HTML string, or jQuery object to insert at the end of each element in the set of matched elements –  King King May 8 at 5:02
    
BTW, I've also written a demo myself and using append(nodes), it works great, don't dare me to try it myself. –  King King May 8 at 5:04

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