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I have a table that looks like:

<table>
   <tr>
      <td>one</td><td>two</td><td>three</td><td>last</td>
   </tr>
   <tr>
      <td>blue</td><td>red</td><td>green</td><td>last</td>
   </tr>
   <tr>
      <td>Monday</td><td>Tuesday</td><td>Wednesday</td><td>last</td>
   </tr>
</table>

What I want is a jquery selector that will choose all but the last td of each table row. I tried:

$("tr td:not(:last)").css("background-color","red");
  //changing color just as a test...

But instead of all cells but the last on each row being changed, all cells but the very last one in the table are selected. Similarly, if I change it to:

$("tr td:last").css("background-color","red");

the only one that changes is the very last cell. How do I choose the last (or not last) of each row?

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up vote 41 down vote accepted

Use this:

$('tr td:not(:last-child)').css('background-color', 'red');

It's saying each <td> that's not the last in that particular <tr>

share|improve this answer
    
I'm not sure this will work in my case, but maybe you can tell me for sure. I simplified my html for the sake of the question, but each td has other elements inside, such as inputs and labels. Will the last-child look for descendants as well, or just the first-level children? – Anthony Mar 8 '10 at 12:31
1  
Just the td, since there's no space in the selector means the : operators apply to that same element, in this case the <td>. So just first-level chidren, if you have a table with nested td's, change the selector to be tr>td:not(:last-child), this ensures only the first child of whatever table/tr you're on. – Nick Craver Mar 8 '10 at 12:41
    
Thanks @Nick! This cleared up a major piece of jQuery functionality I am writing!! – dennismonsewicz Jun 17 '11 at 21:38
$('tr').find('td:not(:last)').css('background-color', 'red');

Translates to: for each element in $('tr') selector, do a find() for all tds that are not last.
New result is about tds now, so you can apply .css() as wanted.

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