I'm using the following code to order table rows and it works pretty much as I need.

var $table=$('#Frm1');
var rows = $table.find('tr.grp').get();
rows.sort(function(a, b) {
    var keyA = $(a).attr('data-site');
    var keyB = $(b).attr('data-site');
    if (keyA > keyB) return 1;
    if (keyA < keyB) return -1;
    return 0;
});
$.each(rows, function(index, row) {
    $table.children('tbody').append(row);
})

However some of the entries don't have a value associated with data-site. The attribute is there, but not set.

These rows get added to the top of the table, I'd like them to be at the bottom of the table before table row with id ID=LastGroup

Can anyone advise how I can do this ?

Thanks

  • I tried to allow for them using: if (!keyA || keyA > keyB) return 1; if (!keyB || keyA < keyB) return -1; but that placed them at the top of the table still – Tom Oct 1 '16 at 14:36
  • 1
    That was my first thought too, but it doesn't work correctly. Doing them beforehand does, though. – T.J. Crowder Oct 1 '16 at 14:39
  • Adding this to just above the if statements seems to work.. ` if (keyA === '' || keyB === '') return -9999;` where 9999 is larger than the number of rows in the table ! no idea why ! – Tom Oct 1 '16 at 14:49
  • @Tom, the sort function expect -1, 0, 1, not -9999 – Dekel Oct 1 '16 at 14:57
  • 1
    You have an answer by @T.J.Crowder here... did you check it? – Dekel Oct 1 '16 at 14:59
up vote 1 down vote accepted

If the attribute is there but has no value, the value you'll get from attr will be "". So just allow for that:

if (!keyA) return 1;
if (!keyB) return -1;
if (keyA > keyB) return 1;
if (keyA < keyB) return -1;

Example:

$("#sort").on("click", function() {
  var $table = $('#Frm1');
  var rows = $table.find('tr.grp').get();
  rows.sort(function(a, b) {
    var keyA = $(a).attr('data-site');
    var keyB = $(b).attr('data-site');
    if (!keyA) return 1;
    if (!keyB) return -1;
    if (keyA > keyB) return 1;
    if (keyA < keyB) return -1;
    return 0;
  });
  $.each(rows, function(index, row) {
    $table.children('tbody').append(row);
  });
});
<table id="Frm1">
  <tbody>
    <tr class="grp" data-site="c"><td>c</td></tr>
    <tr class="grp" data-site="a"><td>a</td></tr>
    <tr class="grp" data-site="b"><td>b</td></tr>
    <tr class="grp" data-site><td>(none)</td></tr>
    <tr class="grp" data-site="q"><td>q</td></tr>
  </tbody>
</table>
<input type="button" id="sort" value="Sort">
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

  • Thanks that sorted it – Tom Oct 1 '16 at 15:15

This answer is based on @T.J.Crowder's answer.
If you want to check speifically for the tr with id="LastGroup" you should check it before any other checks you do:

if ($(a).attr('id') == 'LastGroup') {
    return 1;
}
if ($(b).attr('id') == 'LastGroup') {
    return -1;
}

$("#sort").on("click", function() {
  var $table = $('#Frm1');
  var rows = $table.find('tr.grp').get();
  rows.sort(function(a, b) {
    var keyA = $(a).attr('data-site');
    var keyB = $(b).attr('data-site');
    if ($(a).attr('id') == 'LastGroup') {
      return 1;
    }
    if ($(b).attr('id') == 'LastGroup') {
      return -1;
    }
    if (!keyA) return 1;
    if (!keyB) return -1;
    if (keyA > keyB) return 1;
    if (keyA < keyB) return -1;
    return 0;
  });
  $.each(rows, function(index, row) {
    $table.children('tbody').append(row);
  });
});
<table id="Frm1">
  <tbody>
    <tr class="grp" data-site="a" id="LastGroup"><td>this should be last</td></tr>
    <tr class="grp" data-site="c"><td>c</td></tr>
    <tr class="grp" data-site="a"><td>a</td></tr>
    <tr class="grp" data-site="b"><td>b</td></tr>
    <tr class="grp" data-site><td>(none)</td></tr>
    <tr class="grp" data-site="q"><td>q</td></tr>
  </tbody>
</table>
<input type="button" id="sort" value="Sort">
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

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