I'm a bit out of my depth here and I'm hoping this is actually possible.

I'd like to be able to call a function that would sort all the items in my list alphabetically.

I've been looking through the jQuery UI for sorting but that doesn't seem to be it. Any thoughts?

up vote 102 down vote accepted

You do not need jQuery to do this...

function sortUnorderedList(ul, sortDescending) {
  if(typeof ul == "string")
    ul = document.getElementById(ul);

  // Idiot-proof, remove if you want
  if(!ul) {
    alert("The UL object is null!");
    return;
  }

  // Get the list items and setup an array for sorting
  var lis = ul.getElementsByTagName("LI");
  var vals = [];

  // Populate the array
  for(var i = 0, l = lis.length; i < l; i++)
    vals.push(lis[i].innerHTML);

  // Sort it
  vals.sort();

  // Sometimes you gotta DESC
  if(sortDescending)
    vals.reverse();

  // Change the list on the page
  for(var i = 0, l = lis.length; i < l; i++)
    lis[i].innerHTML = vals[i];
}

Easy to use...

sortUnorderedList("ID_OF_LIST");

Live Demo →

  • 27
    One problem that I found with this approach is that, since it's only the text that's being moved around, if you associate data to the DOM nodes using jQuery.data prior to sorting, those associations are now pointing to the wrong nodes after the sort. – Rudism Oct 28 '11 at 13:57
  • 11
    Moving elements with innerHTML is a bad solution because they are not the same elements after sorting. All existing references to the elements are lost. All event listeners bound from JavaScript are lost. It would be better to store the elements instead of innerHTML, use a sort function (vals.sort(function(a, b) {return b.innerHTML < a.innerHTML;})) and appendChild to move elements. – gregers Sep 25 '12 at 8:35
  • 3
    Buhuuu innerHTML ! Don't use that. It's Microsoft Proprietary stuff and was never acknowledged by the W3C. – nottinhill Oct 24 '12 at 12:28
  • 9
    IMHO this is a horrible answer. It's perfectly possible to rearrange DOM nodes without serialising them and deserialising them again, and without destroying any attached properties and/or events. – Alnitak Jan 25 '13 at 22:45
  • 3
    ... but if you were to use jQuery, how would you do it? – Matthew Oct 26 '15 at 18:24

Something like this:

var mylist = $('#myUL');
var listitems = mylist.children('li').get();
listitems.sort(function(a, b) {
   return $(a).text().toUpperCase().localeCompare($(b).text().toUpperCase());
})
$.each(listitems, function(idx, itm) { mylist.append(itm); });

From this page: http://www.onemoretake.com/2009/02/25/sorting-elements-with-jquery/

Above code will sort your unordered list with id 'myUL'.

OR you can use a plugin like TinySort. https://github.com/Sjeiti/TinySort

  • 5
    Can the last line be replaced with $(listitems).appendTo(mylist); ? – Amir Jun 30 '10 at 6:00
  • 25
    H. L. Menken has a quote that describes this solution: "For every problem, there is a solution that is simple, elegant, and wrong." This process runs in O(n^2) time. It's not noticable with relatively short lists, but on a list containing over 100 elements it takes 3-4 seconds to finish sorting. – Nathan Strong Dec 29 '10 at 19:19
  • 5
    @Nathan: About "For every problem, there is a solution that is simple, elegant, and wrong." - well, a wrong solution is not elegant. – Johann Philipp Strathausen Jan 4 '11 at 11:01
  • 16
    Something can be elegant and intriguing to watch, but still fail. Elegance doesn't imply success. – Jane Panda Sep 29 '11 at 14:55
  • 9
    This solution is not wrong. It answers the question. The OP did not specify that he needed to sort a list of more than 100 items. If his list will never be longer than 100 items this solution is perfectly acceptable. +1 for pointing out that the solution is slow, -1 for declaring a solution that meets the requirements as 'wrong'. – Samurai Soul Nov 11 '14 at 15:27
$(".list li").sort(asc_sort).appendTo('.list');
//$("#debug").text("Output:");
// accending sort
function asc_sort(a, b){
    return ($(b).text()) < ($(a).text()) ? 1 : -1;    
}

// decending sort
function dec_sort(a, b){
    return ($(b).text()) > ($(a).text()) ? 1 : -1;    
}

live demo : http://jsbin.com/eculis/876/edit

  • 11
    This is the best answer. I even like it in one single line like this: $(".list li").sort(function(a, b){return ($(b).text()) < ($(a).text());}).appendTo('.list');. One remark though: .text() should be .text().toUpperCase() – Jules Colle Mar 15 '12 at 4:46
  • 2
    definitely the best answer – Mild Fuzz Mar 10 '13 at 10:52
  • 3
    This has a very high tendency to break. Check out this example. It seems that anything over 10 elements breaks for some reason. – Hanna May 3 '13 at 17:57
  • 7
    OK I found a solution to the 10+ problem in Chrome blog.rodneyrehm.de/archives/14-Sorting-Were-Doing-It-Wrong.html basically you need to add "? 1 : -1" – PJ Brunet Jun 15 '13 at 22:37
  • 7
    Beware of the selector! ".list li" will select all descendent LI tags, not just the immediate children. – Doug Domeny Nov 1 '13 at 21:14

To make this work work with all browsers including Chrome you need to make the callback function of sort() return -1,0 or 1.

see http://inderpreetsingh.com/2010/12/01/chromes-javascript-sort-array-function-is-different-yet-proper/

function sortUL(selector) {
    $(selector).children("li").sort(function(a, b) {
        var upA = $(a).text().toUpperCase();
        var upB = $(b).text().toUpperCase();
        return (upA < upB) ? -1 : (upA > upB) ? 1 : 0;
    }).appendTo(selector);
}
sortUL("ul.mylist");
  • 2
    Shouldn't all the li elements be removed from ul.myList before appending the sorted li elements ? – Daud Aug 28 '12 at 19:54
  • 1
    how can I print reverse – Konga Raju Nov 21 '12 at 7:12
  • 1
    how does this not have more votes? easily the best answer. – captainclam Apr 18 '13 at 4:04
  • 2
    @Daud, the LI elements don't need to be explicitly removed. – Doug Domeny Nov 1 '13 at 21:58
  • 3
    @bowserm, the appendTo method moves the DOM elements rather than copying them. – Doug Domeny Jan 5 '15 at 22:32

If you are using jQuery you can do this:

$(function() {

  var $list = $("#list");

  $list.children().detach().sort(function(a, b) {
    return $(a).text().localeCompare($(b).text());
  }).appendTo($list);

});
<script src="https://ajax.googleapis.com/ajax/libs/jquery/1.9.1/jquery.min.js"></script>

<ul id="list">
  <li>delta</li>
  <li>cat</li>
  <li>alpha</li>
  <li>cat</li>
  <li>beta</li>
  <li>gamma</li>
  <li>gamma</li>
  <li>alpha</li>
  <li>cat</li>
  <li>delta</li>
  <li>bat</li>
  <li>cat</li>
</ul>

Note that returning 1 and -1 (or 0 and 1) from the compare function is absolutely wrong.

@SolutionYogi's answer works like a charm, but it seems that using $.each is less straightforward and efficient than directly appending listitems :

var mylist = $('#list');
var listitems = mylist.children('li').get();

listitems.sort(function(a, b) {
   return $(a).text().toUpperCase().localeCompare($(b).text().toUpperCase());
})

mylist.empty().append(listitems);

Fiddle

  • $('#list').empty() --> mylist.empty() would be better. No need to touch the DOM again. – Jacob van Lingen Aug 12 '14 at 9:35
  • Absolutely, I just fixed it! – Buzut Aug 12 '14 at 11:50
  • This does not work in Internet Explorer (tested with version 10). – Chad Johnson Dec 10 '14 at 23:12
  • I just tested with IE11 and in fact, it doesn't work. But SolutionYogi's code didn't work neither under IE11… Did that work for you? – Buzut Dec 11 '14 at 13:00

I was looking to do this myself, and I wasnt satisfied with any of the answers provided simply because, I believe, they are quadratic time, and I need to do this on lists hundreds of items long.

I ended up extending jquery, and my solution uses jquery, but could easily be modified to use straight javascript.

I only access each item twice, and perform one linearithmic sort, so this should, I think, work out to be a lot faster on large datasets, though I freely confess I could be mistaken there:

sortList: function() {
   if (!this.is("ul") || !this.length)
      return
   else {
      var getData = function(ul) {
         var lis     = ul.find('li'),
             liData  = {
               liTexts : []
            }; 

         for(var i = 0; i<lis.length; i++){
             var key              = $(lis[i]).text().trim().toLowerCase().replace(/\s/g, ""),
             attrs                = lis[i].attributes;
             liData[key]          = {},
             liData[key]['attrs'] = {},
             liData[key]['html']  = $(lis[i]).html();

             liData.liTexts.push(key);

             for (var j = 0; j < attrs.length; j++) {
                liData[key]['attrs'][attrs[j].nodeName] = attrs[j].nodeValue;
             }
          }

          return liData;
       },

       processData = function (obj){
          var sortedTexts = obj.liTexts.sort(),
              htmlStr     = '';

          for(var i = 0; i < sortedTexts.length; i++){
             var attrsStr   = '',
                 attributes = obj[sortedTexts[i]].attrs;

             for(attr in attributes){
                var str = attr + "=\'" + attributes[attr] + "\' ";
                attrsStr += str;
             }

             htmlStr += "<li "+ attrsStr + ">" + obj[sortedTexts[i]].html+"</li>";
          }

          return htmlStr;

       };

       this.html(processData(getData(this)));
    }
}

Put the list in an array, use JavaScript's .sort(), which is by default alphabetical, then convert the array back to a list.

http://www.w3schools.com/jsref/jsref_sort.asp

HTML

<ul id="list">
    <li>alpha</li>
    <li>gamma</li>
    <li>beta</li>
</ul>

JavaScript

function sort(ul) {
    var ul = document.getElementById(ul)
    var liArr = ul.children
    var arr = new Array()
    for (var i = 0; i < liArr.length; i++) {
        arr.push(liArr[i].textContent)
    }
    arr.sort()
    arr.forEach(function(content, index) {
        liArr[index].textContent = content
    })
}

sort("list")

JSFiddle Demo https://jsfiddle.net/97oo61nw/

Here we are push all values of li elements inside ul with specific id (which we provided as function argument) to array arr and sort it using sort() method which is sorted alphabetical by default. After array arr is sorted we are loop this array using forEach() method and just replace text content of all li elements with sorted content

protected by Community Jan 16 '12 at 13:02

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