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
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