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I'm working on a blog theme, currently I have a post which has multiple images however the client wants them to be in a grid format so I did:

.photoset img{
    display: block;
    width:50%
    float: left;
}

This works fine however when there are an odd number of images this doesn't work obviously.

How would I do a selector for the last child where odd? So I can then

[lastchildwhereodd]{
   width: 100%;
   display: block;
}
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1 Answer 1

up vote 2 down vote accepted

You can combine both :nth-child(odd) and :last-child together:

.photoset img:nth-child(odd):last-child

Note that while :nth-last-child() is also available, it's not the right selector to use here because it counts backwards, which means :nth-last-child(odd) will always match :last-child regardless of whether there is an odd or even number of children.

Note also that the display: block declaration isn't necessary in either case because floating elements are always display: block.

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Thank you Bolt. I appreciate you taking the time to explain things to me instead of just placing some code there. It really helps. Also, the code you provided didn't work but it put me on the right track. The :last-child selector wouldn't work on an img cannot have children (I'm presuming). However I found the :last-of-type selector work perfectly. Modified code; .photoset img:nth-child(odd):last-of-type{ width: 100%; } Worked beautifully, thanks for you help and time. –  Jezzabeanz Apr 21 at 10:22
    
@Jezzabeanz: In that case, it simply means that there are other children after your last img preventing that last img from qualifying as the "last child". That an img cannot have children is unrelated - :last-child and :last-of-type work similarly except the latter considers the element type (img, div, span, etc). –  BoltClock Apr 21 at 10:24

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