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I have a page similar to the structure below:

<div id="row_2">
  <div class="item"></div>
  <div class="item"></div>
  <div class="item"></div>
  <div class="item"></div>
  <div class="item"></div>
</div>

How do I get the nth child of row_2, assuming that I cannot use that id (e.g. I'm on row_1 and I'm moving to the next one)

I have tried the following:

current.parent().next().children().filter(":nth-child("+i+")");

where "current" is an item on the previous "row div" and "i" is an index for an item, but this doesn't work. I also tried using 0 in place of "i" to test it, but that doesn't work either - where's the error?

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thanks to all for the answers - changing from nth-child to eq made it work! –  wannabeartist Apr 25 '12 at 11:37

3 Answers 3

up vote 3 down vote accepted

Assuming I've understood your question correctly, you are looking for eq, not nth-child:

current.parent().next().children().eq(i);

As the docs state for eq:

Reduce the set of matched elements to the one at the specified index.

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I'm not entirely sure what you're doing, but I'd suggest:

current.parent().next().find(":nth-child("+i+")");

Or:

current.parent().next().children().eq(i);

If you have a need to use filter(), I'd suggest (though without knowing exactly what's going on) maybe trying:

current.parent().next().children().filter(
    function(){
        return $(this).is(":nth-child("+i+")");
    });

But I can't see the advantage, unless you wanted to filter for other criteria as well.

References:

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If your starting point is row_1, then:

var row2child3 = row1.next().children().eq(2); // zero-based index, 2 = third child

Live example | source

That assumes that row_1 and row_2 are immediately adjacent, e.g.:

<div id="row_1">
  <div class="item"></div>
  <div class="item"></div>
  <div class="item"></div>
</div>
<div id="row_2">
  <div class="item"></div>
  <div class="item"></div>
  <div class="item"></div>
</div>

If not, you might want .nextAll("some selector here").first() rather than .next().

If your starting point is one of the items in row_1, then:

..insert a parent() in there:

var row2child3 = item.parent().next().children().eq(2); // zero-based index, 2 = third child

Live example | source

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