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Basically, is there a way to write

a.children('.outer').children('.inner')

without the intermediate selector? I can't write

$('.outer > .inner', a)

because I don't want to do full-depth search against a — I know that the .outer elements are immediate children of a.

It's partly a matter of "elegance", but partly because I'm trying to avoid "throwaway" element sets. Yes, jQuery may in effect do the same thing, but it has a better chance of optimizing (at least in theory), when it knows the full query's intent.

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2 Answers 2

up vote 3 down vote accepted

You can do this to start with the immediate children, not doing a full-depth search on .outer to start:

$('> .outer > .inner', a)

Or, slightly different, this:

a.find('> .outer > .inner')

You can see a demo of both working here.

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By God, you're right! I didn't know you could use that at the front of a query. –  harpo May 12 '10 at 18:06

The ">" selector is what you need. It will select direct child element, not descendants of all levels: http://api.jquery.com/child-selector/

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