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I'm looking for a way to select elements that contain a certain element and then filter the results to get only the highest level. Difficult to explain but made easier with an example:

<div id="one">
    <div id="two">
        <div id="three" class="find-me"></div>
    </div>
</div>
<div id="four">
    <div id="five" class="find-me"></div>
</div>

In this case, I would want my set to contain #one and #four. If I try to do something like this:

var elements = $('div').has('.find-me');

I get elements #one, #two and #four.

Note: By 'highest level' relates to the topmost element in the first selector, $('div') in this case.

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7 Answers 7

up vote 3 down vote accepted

Well the definition of what the highest level is, is a bit ambiguous because in practice if there is any .find-me in your page the highest level parent would be html tag! which is useless.

By defining your problem more specifically you can come up with a clearer definition for this highest-definition and for example say the farthest div parent et. and in order to traverse parents of an element you can use .parents() and .closest() methods.

var farthestDiv = $(".find-me").parents("div").last();

obviously if you have more than one occurances of find-me you need to run this in a .each() loop.

see an example here: http://jsfiddle.net/GsQDb/3/

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Good point - I guess it's the highest level of the first set; $('div') in this case. I like the thought of doing it 'backwards' like this. Speed is a big issue on this page (2mb of html to traverse) so would be interested in the speed difference between this answer and the answer by @karnyj –  ajbeaven Nov 10 '11 at 23:34
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Assuming by "top level", you mean a direct descendant of the body tag, you can use this one liner. It finds all objects with a .find-me class, then searches the parents for a tag that is a descendant of the body tag (which will be the top level).

$(".find-me").parents("body > *")

You can see it work here: http://jsfiddle.net/jfriend00/9LF6u/

This has these advantages:

  1. Any type of tag can be the top level tag (not just a div)
  2. It should be one of the faster ways to do it since it finds the .find-me objects (which will be a fast operation internally in most browsers via getElementsByClassName) and just walks up their parent hierarchy.
  3. It automatically handles duplicates so a given top level item will never be listed more than once.
  4. If ever you want to change the definition of top level (to a container object, for example), you can just change the selector passed to the .parents(selector) method to reflect that change.
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My unawareness of jQuery automatic duplicate handling is why I went with the regular js route in my answer :P I bow to the master –  Esailija Nov 10 '11 at 23:56
    
jQuery objects created via selectors of filters never have duplicates as most jQuery methods end with an internal call to .unique() which filters out dups and puts the selectors in document order. –  jfriend00 Nov 11 '11 at 0:03
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use filter to filter out elements that don't match what you want after your first selector. example:

var elements = $('div.find-me').filter(function(idx){ 
    return !$(this).parents('div.find-me').length;
});
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This will do what you want, it will find the elements first and then find the highest elements of those and create a jQuery object of the found highest elements.

var elements = $('div.find-me'), highest = [];

elements.each( function(){
var parent = this, body = document.body;

    while( parent && parent.parentNode !== body ) {
    parent = parent.parentNode;
    }

    if( $.inArray( parent, highest ) < 0 ) {
    highest.push( parent );
    }
});

highest = jQuery( highest );

jsfiddle:

http://jsfiddle.net/D3jC8/2/

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If you put them all in one big container div, you can use:

$('.container div.find-me').parents($('.container').children());

That SHOULD work, although I don't have the chance to test it right now.

Let me know if not since there are more complex solutions too.

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Can you assign a class to the top most divs? If so you can do something like this:

var elements = $("div.topMost").has(".find-me");
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No, not in this case sorry. –  ajbeaven Nov 10 '11 at 23:41
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$(".find-me").map(function() {
  return $(this).parents("div").last().get();
});
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