Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I have the the following DOM structure which I want to sort according to the data-created attribute.

<a id="comment-34" href="#"/>
<li data-created="12342342" />

<a id="comment-35" href="#"/>
<li data-created="89342342" />

<a id="comment-36" href="#"/> 
<li data-created="45363342" />

I CANNOT (for various reasons) wrap the <a> and <li> in an outer <div>. I want to do javascript sorting. All the jQuery sorting plugins can do the sorting if I just had the <li>. E.g. using the tinysort jQuery plugin ( http://tinysort.sjeiti.com/ ) I can do

$('li').tsort({order:'desc', attr:'data-created'});

However what happens after the sort is that <a> are no longer associated with their original siblings. I also evaluated https://github.com/jamespadolsey/jQuery-Plugins/tree/master/sortElements/ but it may suffer from the same problem.

Any way to do this? Again, I cannot wrap the <a> and <li> in an outer <div>. I also don't want to dynamically wrap a <div> so that I can use tsort.

Any clean solutions :-) ?

share|improve this question
1  
FYI, that's not valid HTML. It's impossible to have li and a elements as siblings. – ikegami Mar 23 '11 at 20:07
    
To my knowledge this is valid HTML. The <a> before the <li> for instance can be used as an anchor. – Sid Kshatriya Mar 23 '11 at 20:10
2  
The only elements that can contain LI elements are OL and UL, and neither can contain A elements. – ikegami Mar 23 '11 at 23:13
    
@ikegami On investigation I find that you are correct. A HTML validator also complains. – Sid Kshatriya Mar 30 '11 at 19:43
up vote 1 down vote accepted

Something like this should work for you:

var elms = [];
$('a').each(function() { //create the array of a and li
    var pair = {
        aTag: $(this),
        liTag: $(this).next("li")
    };
    elms.push(pair);
});
$("a, li").detach(); //detach them from the dom
elms.sort(function(a, b) {
    return a.liTag.data("created") < b.liTag.data("created"); //sort based upon the created data
});

$.each(elms , function(){
    $("ul").append(this.aTag).append(this.liTag); //push them back to the dom.
});

Code example on jsfiddle.

share|improve this answer
    
I like this solution. Its clean. Kudos for also using detach() vs remove(). Thanks. – Sid Kshatriya Mar 23 '11 at 20:50
    
heh. did we have the exact same idea at the same minute? good thought on detach(). – Ricardo Tomasi Mar 23 '11 at 21:57

You can't really have <li> and <a> elements as siblings in the first place. A list item must be inside a list (<ol>,<ul>), where other elements are not allowed.

Ignoring that, you can simply grab each pair, remove from the DOM, reorder, then put them back. It's quite straight-forward. Example:

var items = [];
$('#sortme a').each(function(){

  // grab the element and its next sibling
  var self = $(this)
    , next = self.next('div');

  items.push([
    self.remove().get(0),
    next.remove().get(0)
  ]);
});

items.sort(function(a,b){
  return a[1].getAttribute('data-created') > b[1].getAttribute('data-created');
});

$.each(items, function(){
  $('#sortme').append(this[0], this[1]);
});

Test here: http://jsbin.com/okajo4/edit

Edit: a simpler version :)

var sorted = $('#sortme');

sorted.find('div')
  .sort(function(a,b){
    return $(a).data('created') > $(b).data('created');
  })
  .each(function(){
    $(this).prev('a').andSelf().appendTo(sorted);
  });
share|improve this answer
    
Yep I think we did! – Mark Coleman Mar 23 '11 at 22:11

Move the a elements inside their respective list items. Then you ought to be able to use the sort you mentioned.

Even if having the elements as siblings is valid, it still strikes me as bad form.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.