61

If I have several divs:

<div data-sort='1'>div1</div>
<div data-sort='4'>div4</div>
<div data-sort='8'>div8</div>
<div data-sort='12'>div12</div>
<div data-sort='19'>div19</div>

And I dynamically create the divs:

<div data-sort='14'>div1</div>
<div data-sort='6'>div1</div>
<div data-sort='9'>div1</div>

How can I get them to just sort into the divs already loaded in order, without having to reload all of the divs?

I think that I would need to build an array of the data-sort values of all of the divs on the screen, and then see where the new divs fit in, but I am not sure if this is the best way.

93

use this function

   $('div').sort(function (a, b) {

      var contentA =parseInt( $(a).attr('data-sort'));
      var contentB =parseInt( $(b).attr('data-sort'));
      return (contentA < contentB) ? -1 : (contentA > contentB) ? 1 : 0;
   });

you can call this function just after adding new divs

  • 15
    This seems to have a subtle bug because it uses .attr('data-sort') instead of .data('sort'). If the data-sort values are updated dynamically on the page, attr('data-sort') still uses the original values. – apb Sep 15 '13 at 21:35
  • 1
    @AndyB. Are you sure? Can you provide an example/version where this occurs? I tested here and it works fine: jsfiddle.net/fMe7R/1 – danronmoon Oct 1 '13 at 12:30
  • 2
    @danronmoon ah yeah you're right - turns out I was setting with .attr and then trying to access with .data which are two different things. – apb Oct 3 '13 at 4:06
  • 3
    Works perfect. I used it to sort a bunch of UL elements containing terms. $("#allTerms>ul").sort(function(a, b) { var contentA = parseInt($(a).attr('data-sort')); var contentB = parseInt($(b).attr('data-sort')); return (contentA < contentB) ? -1 : (contentA > contentB) ? 1 : 0; }).appendTo($("#allTerms")); – Magali Jun 24 '15 at 8:24
  • 11
    Just a gotcha for the example here. The sort method just returns the sorted list, it doesnt sort the elements in place. You need to manually add the new list by e.g. using $('#mylist').html(result); – Johncl Jul 3 '17 at 9:15
20

I made this into a jQuery function:

jQuery.fn.sortDivs = function sortDivs() {
    $("> div", this[0]).sort(dec_sort).appendTo(this[0]);
    function dec_sort(a, b){ return ($(b).data("sort")) < ($(a).data("sort")) ? 1 : -1; }
}

So you have a big div like "#boo" and all your little divs inside of there:

$("#boo").sortDivs();

You need the "? 1 : -1" because of a bug in Chrome, without this it won't sort more than 10 divs! http://blog.rodneyrehm.de/archives/14-Sorting-Were-Doing-It-Wrong.html

  • 1
    I have a question to @PJBrunets solution. What happens to the divs previously located within the parent div? As far as I understand the solution, aren't we just adding more and more (sorted) divs to the parent? Don't we have to remove the 'old' divs? – Michaela.Merz Mar 9 '14 at 20:18
  • @Michaela.Merz I think they are sorted in place, no need to delete anything. But it has been a while since I created the function, I don't remember the details. I was using this with a hacked jquery.vgrid like this $("#grid-content").sortDivs(); window.vg = $("#grid-content").vgrid(); – PJ Brunet Mar 10 '14 at 18:27
  • 1
    Replace data("sort") with attr("data-sort") if you have dynamic data-sort attributes. Works well! – hacklover Jul 1 '15 at 22:56
7

Answered the same question here:

To repost:

After searching through many solutions I decided to blog about how to sort in jquery. In summary, steps to sort jquery "array-like" objects by data attribute...

  1. select all object via jquery selector
  2. convert to actual array (not array-like jquery object)
  3. sort the array of objects
  4. convert back to jquery object with the array of dom objects

Html

<div class="item" data-order="2">2</div>
<div class="item" data-order="1">1</div>
<div class="item" data-order="4">4</div>
<div class="item" data-order="3">3</div>

Plain jquery selector

$('.item');
[<div class="item" data-order="2">2</div>,
 <div class="item" data-order="1">1</div>,
 <div class="item" data-order="4">4</div>,
 <div class="item" data-order="3">3</div>
]

Lets sort this by data-order

function getSorted(selector, attrName) {
    return $($(selector).toArray().sort(function(a, b){
        var aVal = parseInt(a.getAttribute(attrName)),
            bVal = parseInt(b.getAttribute(attrName));
        return aVal - bVal;
    }));
}
> getSorted('.item', 'data-order')
[<div class="item" data-order="1">1</div>,
 <div class="item" data-order="2">2</div>,
 <div class="item" data-order="3">3</div>,
 <div class="item" data-order="4">4</div>
]

See how getSorted() works.

Hope this helps!

-1

I used this to sort a gallery of images where the sort array would be altered by an ajax call. Hopefully it can be useful to someone.

var myArray = ['2', '3', '1'];
var elArray = [];

$('.imgs').each(function() {
    elArray[$(this).data('image-id')] = $(this);
});

$.each(myArray,function(index,value){
   $('#container').append(elArray[value]); 
});
<script src="https://ajax.googleapis.com/ajax/libs/jquery/1.8.3/jquery.min.js"></script>
<div id='container'>
   <div class="imgs" data-image-id='1'>1</div>
   <div class="imgs" data-image-id='2'>2</div>
   <div class="imgs" data-image-id='3'>3</div>
</div>

Fiddle: http://jsfiddle.net/ruys9ksg/

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