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I'm relatively new to Javascript and was wondering if there's a quick way to shuffle content that is contained in multiple <div> tags. For example

<div id='d1'>
  <span>alpha</span>
  <img src='alpha.jpg'>
</div>
<div id='d2'>
  <span>beta</span>
  <img src='beta.jpg'>
</div>
<div id='d3'>
  <span>gamma</span>
  <img src='gamma.jpg'>
</div>

<button onclick='shuffle_content();'>Shuffle</button>

After clicking on the button, I'd like the content in d1, d2, d3 to change places (for example maybe d3 would be first, then d1, then d2).

A quick way to kind of move things around is to copy the first div element (d1), then put it at the very end (after d3), and then delete the original d1. But that doesn't really randomize things. It just makes things go in the cycle (which might be ok).

Any suggestions would be appreciated. Thanks.

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7 Answers 7

up vote 14 down vote accepted

are you ok with using a javascript library like jQuery? here's a quick jQuery example to accomplish what you're after. the only modification to your HTML is the addition of a container element as suggested:

<div id="shuffle">
    <div id='d1'>...</div>
    <div id='d2'>...</div>
    <div id='d3'>...</div>
</div>

and javascript:

function shuffle(e) {               // pass the divs to the function
    var replace = $('<div>');
    var size = e.size();

    while (size >= 1) {
       var rand = Math.floor(Math.random() * size);
       var temp = e.get(rand);      // grab a random div from our set
       replace.append(temp);        // add the selected div to our new set
       e = e.not(temp); // remove our selected div from the main set
       size--;
    }
    $('#shuffle').html(replace.html() );     // update our container div with the
                                             // new, randomized divs
}

shuffle( $('#shuffle div') );
share|improve this answer
    
Thanks Owen, I think this is best answer I've seen so far. –  Chris Nov 24 '08 at 20:37
4  
Unfortunately, since my reputation is below 15, I can't vote this up. But if I could, I would. –  Chris Nov 24 '08 at 20:38

A recent question was just closed as duplicate of this, but I feel I've got a better answer than any here. This method is very direct. There's no mucking with copying HTML, thus preserving changes to the DOM, styles, event handlers, etc.

To shuffle all the children of some parent element, select a random child and append it back to the parent one at a time until all the children have been re-appended.

Using jQuery:

var parent = $("#shuffle");
var divs = parent.children();
while (divs.length) {
    parent.append(divs.splice(Math.floor(Math.random() * divs.length), 1)[0]);
}

Demo: http://jsfiddle.net/C6LPY/2

Without jQuery it's similar and just as simple:

var parent = document.getElementById("shuffle");
var divs = parent.children;
var frag = document.createDocumentFragment();
while (divs.length) {
    frag.appendChild(divs[Math.floor(Math.random() * divs.length)]);
}
parent.appendChild(frag);

Demo: http://jsfiddle.net/C6LPY/5/



Edit: Here's a break down of the code:

// Create a document fragment to hold the shuffled elements
var frag = document.createDocumentFragment();

// Loop until every element is moved out of the parent and into the document fragment
while (divs.length) {

    // select one random child element and move it into the document fragment
    frag.appendChild(divs[Math.floor(Math.random() * divs.length)]);
}

// appending the document fragment appends all the elements, in the shuffled order
parent.appendChild(frag);
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1  
Good answer. If Stackoverflow allowed questions to have multiple "accepted" answers, I would also label this as "accepted". –  Chris Mar 15 '12 at 19:20
    
is this also applicable for shuffling list? –  user962206 Apr 8 '12 at 2:33
    
@gilly3 A question on "divs.splice(Math.floor(Math.random() * divs.length), 1)[0]" what is the use of [0] ? –  user962206 Apr 8 '12 at 4:55
    
@user962206 - .splice() returns an array containing, in this case, a single element. [0] gets you the first element in that array. –  gilly3 Apr 8 '12 at 23:34
1  
@user962206 - I've updated my answer with a breakdown of the exactly what's happening inside the while loop. I hope that helps to clarify it for you. –  gilly3 Apr 10 '12 at 0:19

You can grab the content of each div

c1 = document.getElementById('div1').innerHTML
c2 = document.getElementById('div2').innerHTML
c3 = document.getElementById('div3').innerHTML

Then determine a new order for them randomly .. and then put each content in the new destination

say for instance, the randomness gave:

c1_div = 'div2'
c2_div = 'div1'
c3_div = 'div3'

then you just:

document.getElementById(c1_div).innerHTML = c1
document.getElementById(c2_div).innerHTML = c2
document.getElementById(c3_div).innerHTML = c3
share|improve this answer
    
This is also a good answer. Thanks Hasen. –  Chris Nov 24 '08 at 20:41

I'd use server side code to accomplish this. I know this isn't really an answer to your question, but it is an alternative implementation.

Best Regards,
Frank

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I'd wrap the divs in an outer div, then pass its id to shuffle_content().

In there, you could create a new div, cloning the wrapper div's nodes in a random order to fill it, then replace the wrapper div with the new div.

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For your HTML, the short answer to your question is:

function shuffle_content() {
 var divA = new Array(3);
 for(var i=0; i < 3; i++) {
  divA[i] = document.getElementById('d'+(i+1));
  document.body.removeChild(divA[i]);
 }
 while (divA.length > 0)
  document.body.appendChild(divA.splice(Math.floor(Math.random() * divA.length),1)[0]);
}

To get there I wrote the following, which I think works better:

<html>
<div id="cards">
<div id="card0">Card0</div><div id="card1">Card1</div>
<div id="card2">Card2</div><div id="card3">Card3</div>
<div id="card4">Card4</div><div id="card5">Card5</div>
<div id="card6">Card6</div><div id="card7">Card7</div>
<div id="card8">Card8</div><div id="card9">Card9</div>
</div>
<button id="shuffle">Shuffle</button>
<script language="javascript">
<!--
document.getElementById('shuffle').onclick = function () {
var divCards = document.getElementById('cards');
var divCardsArray = new Array(
    document.getElementById('card0'),
    document.getElementById('card1'),
    document.getElementById('card2'),
    document.getElementById('card3'),
    document.getElementById('card4'),
    document.getElementById('card5'),
    document.getElementById('card6'),
    document.getElementById('card7'),
    document.getElementById('card8'),
    document.getElementById('card9')
    );
return function() {
    var mDivCardsArray=divCardsArray.slice();
    while (divCards.childNodes.length > 0) {
    	divCards.removeChild(divCards.firstChild);
    }
    while (mDivCardsArray.length > 0) {
    	var i = Math.floor(Math.random() * mDivCardsArray.length);
    	divCards.appendChild(mDivCardsArray[i]);
    	mDivCardsArray.splice(i,1);
    }
    return false;
}
}()
//-->
</script>
</html>

I was trying to pack down that last while statement to:

    while (mDivCardsArray.length > 0) {
    	divCards.appendChild(
    		mDivCardsArray.splice(
    			Math.floor(Math.random() * mDivCardsArray.length)
    			,1)[0]
    	);
    }

but this is pretty hard to read and prone to error.

Going with jQuery or Prototype you could follow the same basic structure and get the result you're looking for.

Personally, I think it looks even better if you add 2 more divs to the cards stack, expand the divCardsArray, insert the following style block, and add this code right after the divCardsArray definition.

<html>
...
<style>
html,body{height:100%;width:100%;text-align:center;font-family:sans-serif;}
#cards,#cards div{padding:5px;margin:5px auto 5px auto;width:100px;}
</style>
...
<div id="cardA">CardA</div><div id="cardB">CardB</div>
...
var colorCardsArray = new Array(
    '#f00',	'#f80', '#ff0', '#8f0', '#0f0', '#0f8',
    '#0ff', '#08f', '#00f', '#80f', '#f0f', '#f08' );
for(var i=0;i<divCardsArray.length;i++)
    divCardsArray[i].style.backgroundColor=colorCardsArray[i];
...
</html>
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I would suggest you randomize the content, not the actual Divs themselves. You could accomplish this by putting the content in separate html pages - no header info or body, just the content.

Then use a function on page load to randomly assign which div gets what content and use this to change the DIV's content:

<script type="text/javascript">
    function ajaxManager(){
        var args = ajaxManager.arguments;

        if (document.getElementById) {
            var x = (window.ActiveXObject) ? new ActiveXObject("Microsoft.XMLHTTP") : new XMLHttpRequest();
        }
        if (x){         
            switch (args[0]){
                case "load_page":
                    if (x)
                    {
                        x.onreadystatechange = function()
                        {
                            if (x.readyState == 4 && x.status == 200){
                                el = document.getElementById(args[2]);
                                el.innerHTML = x.responseText;
                            }
                        }
                        x.open("GET", args[1], true);
                        x.send(null);
                    }
                    break;

                case "random_content":
                    ajaxManager('load_page', args[1], args[2]); /* args[1] is the content page, args[2] is the id of the div you want to populate with it. */       
                    break;
            } //END SWITCH
        } //END if(x)
    } //END AjaxManager

</script>
share|improve this answer
    
This doesn't answer the question, just explains a different way to move the content. –  Joel Anair Nov 24 '08 at 20:20
    
I offered a quick way to move the content around which is the OP's original intent. What did you read the question to ask? –  Rob Allen Nov 24 '08 at 20:24

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