39

I have an unordered list, which can contain either an even or odd number of items. I'm looking for a CSS-only way to remove the border from the last 2 li tags if the number of lis is even. The :last-child pseudo-selector removes the last one regardless.

li {
float: left;
border-bottom: 1px solid #000;
}

li:last-child{
border-bottom: none;
}

Works for Odd Numbers of lis

+============================================+
+          1          |          2           +
+--------------------------------------------+
+          3          |                      +
+============================================+

But for even numbers, I need to remove the bottom of cell #3

+============================================+
+          1          |          2           +
+--------------------------------------------+
+          3          |          4           +
+---------------------                       +
+============================================+

So I figured I could use li:nth-last-child() but I can't figure out what should be the equation to grab the last odd child.

It's not 2n+1, 2n-1, n-1, or anything I can think of. Please help.

  • @thirtydot: LOL @ your edit – BoltClock Dec 27 '11 at 4:19
77

nth-last-child counts backwards from the last child, so to grab the second to last, the expression is:

li:nth-last-child(2)

You can combine pseudo-selectors, so to select the 2nd to last child, but only when it's odd, use:

li:nth-last-child(2):nth-child(odd) {border-bottom: none;}

And so, the whole thing should be:

li:last-child,
li:nth-last-child(2):nth-child(odd) {border-bottom: none;}

In answer to @ithil's question, here's how I'd write it in SASS:

li
  &:last-child,
  &:nth-last-child(2):nth-child(odd)
    border-bottom: none

It's not that much simpler, since the selection of the 'second-to-last odd child' is always going to require the 'two step' selector.

In answer to @Caspert's question, you can do this for arbitrarily many last elements by grouping more selectors (there feels like there should be some xn+y pattern to do this without grouping, but AFAIU these patterns just work by counting backwards from the last element).

For three last elements:

li:last-child,
li:nth-last-child(2):nth-child(odd),
li:nth-last-child(3):nth-child(odd) {border-bottom: none;}

This is a place where something like SASS can help, to generate the selectors for you. I would structure this as a placeholder class, and extend the element with it, and set the number of columns in a variable like this:

$number-of-columns: 3

%no-border-on-last-row
 @for $i from 1 through $number-of-columns
   &:nth-last-child($i):nth-child(odd)
     border-bottom: none

//Then, to use it in your layout, just extend:

.column-grid-list li
  @extend %no-border-on-last-row
  • further reference here: w3.org/Style/Examples/007/evenodd.en.html – Joseph Dec 27 '11 at 4:12
  • 1
    @fskreuz: That's probably a few years out of date. Consider finding a more up-to-date reference. – BoltClock Dec 27 '11 at 4:17
  • it has 'LAST UPDATED THU 15 DEC 2011 06:20:47 AM CET' at the bottom of the article. And based on w3schools.com/cssref/sel_nth-child.asp: The :nth-child() selector is supported in all major browsers, except IE8 and earlier. – Joseph Dec 27 '11 at 5:01
  • 1
    TIL pseudo-selectors can be combined like regular selectors... I knew there was something I was conceptually missing, but wasn't sure what it was. Thanks! – KyleWpppd Dec 27 '11 at 12:59
  • any idea if this solution could it be "simplified" by using a preprocessor such as sass/less? – ithil Oct 15 '14 at 15:43
10

Another alternative:

li:last-child:not(:nth-child(odd))

Here is a fiddle: http://jsfiddle.net/W72nR/

2

possibly:

li:nth-child(2n){border:1px dashed hotpink}
li:nth-child(2n-2), li:last-child{border:none;}
-3

you can use the nth child selector:

li:nth-child(3) { border-bottom: none;}

li:nth-child(4) {border-bottom: none;}

However since this is not supported in IE 8... you should just set a class to those two li elements and use specificity to set the border-bottom to none.

  • This will only ever grab the 3rd or 4th child - it won't work with an arbitrary number of items. – Ben Hull Dec 27 '11 at 4:10
  • This does not do what the OP is asking for. – Andrew Barber Dec 27 '11 at 4:13

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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