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I'm very curious (that's all) to see how you would select all children of an element except the first two and last two.

I've a method, but it's nasty and unreadable. There must be a much clearer method that doesn't need 8 pseudo-selectors.

:not(:nth-child(1)):not(:nth-child(2)):not(:nth-last-child(1)):not(:nth-last-child(2)) {
    background: purple;

Yeah, that's pretty horrible. It literally selects all elements that are :not the first or second first or last. There must be a method that uses 2 as a semi-variable, instead of piling on pseudo-selectors.

I thought of another one (still messy):

:not(:nth-child(-1n+2)):not(:nth-last-child(-1n+2)) {
    background: purple;
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3 Answers 3

up vote 1 down vote accepted

You don't even need :not(). :nth-child(n+3):nth-last-child(n+3) works fine.

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I don't see any other option than using :nth-child and :not(:nth-last-child).

My version: hr:nth-child(n+3):not(:nth-last-child(-n+2))


According to :nth-child reference:

The :nth-child CSS pseudo-class matches an element that has an+b-1 siblings before it in the document tree, for a given positive or zero value for n, and has a parent element.

In other words, this class matches all children whose index fall in the set { an + b; ∀n ∈ N }.

So nth-child(n+3) matches all elements, starting from the third one.

:nth-last-child works similar, but from the end of element collection, so :nth-last-child(-n+3) matches only 2 elements starting from the end of collection. Because of :not these 2 elements are excluded from selector.

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In my case (n+2) selects only first element. But (n+3) fix that. – Miljan Puzović Mar 24 '13 at 21:09
Yeah, n+2 will include the 2nd one. Just one :not and then a 2 and a 3, that looks weird =) – Rudie Mar 24 '13 at 21:11
OK, I misunderstood the first and last two part of the question. Updated my answer and fiddle. – MarcinJuraszek Mar 24 '13 at 21:24
Yeah, yours is probably more readable than my double :not double -n. – Rudie Mar 24 '13 at 22:04
You can invert the logic of either the first two or last two, or even both, so the following are all the same: hr:nth-child(n+3):nth-last-child(n+3), hr:not(:nth-child(-n+2)):nth-last-child(n+3), hr:nth-child(n+3):not(:nth-last-child(-n+2)), hr:not(:nth-child(-n+2)):not(:nth-last-child(-n+2)). The shortest and simplest is of course the first one. – BoltClock Mar 25 '13 at 6:27

You could simply set your purple to all elements, and then remove it from the 3 unwanted ones:

element { background: purple }
element:first-child, element:nth-child(2), element:last-child, element:nth-last-child(2) {
   background: none; /* or whatever you want as background for those */

Thats imho much easier to read

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That's definitely not an option. What if I want to set 6 properties? What if some of those properties already have values from another selector? That's unmanageable. – Rudie Mar 24 '13 at 21:14
Also, your CSS undoes only 3 elements, not 4. – Rudie Mar 24 '13 at 21:15
Im sorry about that 3 elements instead of 4, read your question as " (first) and (last two)" instead of "(first and last) (two)". And you didn't say anything about having 6 properties. If your situation is too complicated for this, go ahead and use another answer. It's just another possibility and might work for some. – darthmaim Mar 24 '13 at 21:21
True dat. I don't like setting and then unsetting/undoing things in CSS though. – Rudie Mar 24 '13 at 22:01

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