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If I have a list like this:

<ul id="mylist">
    <li id="list-item1">text 1</li>
    <li id="list-item2">text 2</li>
    <li id="list-item3">text 3</li>
    <li id="list-item4">text 4</li>
</ul>

What's the easiest way to re-arrange the DOM nodes to my preference? (This needs to happen automatically when the page loads, the list-order preference is gained from a cookie)

E.g.

<ul id="mylist">
    <li id="list-item3">text 3</li>
    <li id="list-item4">text 4</li>
    <li id="list-item2">text 2</li>
    <li id="list-item1">text 1</li>
</ul>
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I'm not sure if this will help you, but if you're using a server side technology (like PHP) on this page, then it should also have access to the cookies. in PHP, it's in the global $_COOKIE array. –  nickf Nov 12 '08 at 1:05

5 Answers 5

up vote 31 down vote accepted

Though there's probably an easier way to do this using a JS Library, here's a working solution using vanilla js.

var list = document.getElementById('mylist');

var items = list.childNodes;
var itemsArr = [];
for (var i in items) {
    if (items[i].nodeType == 1) { // get rid of the whitespace text nodes
        itemsArr.push(items[i]);
    }
}

itemsArr.sort(function(a, b) {
  return a.innerHTML == b.innerHTML
          ? 0
          : (a.innerHTML > b.innerHTML ? 1 : -1);
});

for (i = 0; i < itemsArr.length; ++i) {
  list.appendChild(itemsArr[i]);
}
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Thanks for your solution NickF, I'm gonna adapt it a bit since I'm using jQuery but I think I have an idea of how to do it now, thanks! :) –  James Nov 12 '08 at 1:56
12  
By using list.children instead of list.childNodes, you can avoid the check for text nodes. –  Livingston Samuel Apr 27 '10 at 15:26

You might find that sorting the DOM nodes doesn't perform well. A different approach would be to have in your javascript an array that represents the data that would go into the DOM nodes, sort that data, and then regenerate the div that holds the DOM nodes.

Maybe you dont' have that many nodes to sort, so it wouldn't matter. My experience is based on trying to sort HTML tables by manipulating the DOM, including tables with hundreds of rows and a couple dozen columns.

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See it in action: http://jsfiddle.net/stefek99/y7JyT/

    jQuery.fn.sortDomElements = (function() {
        return function(comparator) {
            return Array.prototype.sort.call(this, comparator).each(function(i) {
                  this.parentNode.appendChild(this);
            });
        };
    })();

Terse

share|improve this answer
    
Nice! I also like things terse, so based on that, I came up with a very simple jQuery function that lets you provide a callback-function that computes the value to sort by. (I included two examples: sorting a list alphabetically, and sorting a table by a numeric value in the first column - both essentially one-liners.) –  mindplay.dk Oct 3 '13 at 21:30

If you're already using jQuery, I'd recommend tinysort : http://tinysort.sjeiti.com/

$("li").tsort({order:"asc"});
$("li").tsort({order:"desc"});
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2  
Tinysort is multiple times slower than 13 lines of code, based on sorting jquery selection result and appending it back - jsperf.com/attr-vs-getattribute/12 –  mas.morozov Oct 4 '14 at 22:26

without analyzing too much if this brings anything new to the table, i usually use this:

function forEach(ar, func){ if(ar){for(var i=ar.length; i--; ){ func(ar[i], i); }} }
function removeElement(node){ return node.parentNode.removeChild(node); }
function insertBefore(ref){ return function(node){ return ref.parentNode.insertBefore(node, ref); }; }

function sort(items, greater){ 
    var marker = insertBefore(items[0])(document.createElement("div")); //in case there is stuff before/after the sortees
    forEach(items, removeElement);
    items.sort(greater); 
    items.reverse(); //because the last will be first when reappending
    forEach(items, insertBefore(marker));
    removeElement(marker);
} 

where item is an array of children of the same parent. we remove starting with the last and append starting with the first to avoid flickering in the top part which is probably on screen. i usually get my items array like this:

forEachSnapshot(document.evaluate(..., 6, null), function(n, i){ items[i] = n; });
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