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jQuery has the handy :even and :odd selectors for selecting the even- or odd-indexed items in a set, which I'm using to clear every other item in a series of floated boxes, as follows:

<div class='2up'>
   <div> ... </div>
   <div> ... </div>
   ...
   <div> ... </div>
</div>

and

// Clear every 2nd block for 2-up blocks
$('.2up>div:even').css("clear", "both");

This works like a charm.

My question: Is there a straightforward way in jQuery to select every third or fourth item, so I could do the same thing with 3-up or 4-up items?

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up vote 25 down vote accepted

Try:

$("div:nth-child(3n+1)").css("clear", "both");
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1  
:nth-child is also standard CSS3, whereas :odd is a jQuery/Sizzle-only extension that won't work in your stylesheets. – bobince Nov 24 '09 at 18:43
    
You could also use only CSS is you just wish to apply styles: .twoup div:nth-child(4n+1) {clear: both;} – Bradley Flood Feb 27 '14 at 1:21

You could use the :nth-child(index/even/odd/equation) selector. http://docs.jquery.com/Selectors/nthChild#index

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you can use the :nth-child(index/even/odd/equation) selector.

Example:

<div class='5up'>
   <div> ... </div>
   <div> ... </div>
   ...
   <div> ... </div>
</div>
and
// Clear every 5th block for 5-up blocks
$('.5up>div:nth-child(5n)').css("clear", "both");
or
// Clear after every 5th block for 5-up blocks
// note: This will also clear first block.
$('.5up>div:nth-child(5n+1)').css("clear", "both");

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FWIW: Since it's zero-based, (5n) clears before the 5th block and every 5th following, so you end up with 4 blocks in the first row and 5 in following rows. (5n+1) works perfectly. – Herb Caudill Nov 29 '09 at 20:20

No, not as such. The filter function will let you do that though.


EDIT:

I stand corrected. Use the n-th child function for simplicity.

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