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The JQuery "has" method effectively selects all elements where they have particular descendants.

I want to select elements based on the fact they have particular ancestors. I know about parent([selector]) and parents([selector]) but these select the parents and not the children with the parents.

So is there an ancestor equivalent of "has"?

Note: I already have the context of an element further down the hierarchy and I will be selecting based on this so I can't do a "top down" query.

Update

I've obviously explained myself really badly here, so I'll try and clarify:

<ul class="x">
  <li>1</li>
  <li>2</li>
  <li>3</li>
</ul>
<ul class="y">
  <li>4</li>
  <li>5</li>
  <li>6</li>
</ul>

I have a jQuery object that already consists of elements 2,3,4 and 5. I want to select those elements who have a parent with the class = x.

Hope that makes more sense.

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7 Answers 7

up vote 45 down vote accepted

For a clean re-usable solution, consider extending the jQuery.fn object with a custom method used for determining the presence of a particular ancestor for any given element:

// Extend jQuery.fn with our new method
jQuery.extend( jQuery.fn, {
    // Name of our method & one argument (the parent selector)
    within: function( pSelector ) {
        // Returns a subset of items using jQuery.filter
        return this.filter(function(){
            // Return truthy/falsey based on presence in parent
            return $(this).closest( pSelector ).length;
        });
    }
});

This results in a new method, $.fn.within, that we can use to filter our results:

$("li").within(".x").css("background", "red");

This selects all list items on the document, and then filters to only those that have .x as an ancestor. Because this uses jQuery internally, you could pass in a more complicated selector:

$("li").within(".x, .y").css("background", "red");

This will filter the collection to items that descend from either .x or .y, or both.

Fiddle: http://jsfiddle.net/jonathansampson/6GMN5/

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1  
this is the "top down" approach I'm trying to avoid as I already have the element I want to start with. That's what I was trying to explain in my last note. Let's say you already have the second and third spans on that list in a jquery variable, how do you further filter that list? –  Chris Simpson Mar 5 '10 at 20:04
    
If I understand you correctly, Chris, my perpended update addresses that. –  Jonathan Sampson Mar 5 '10 at 20:06
    
I'm not too familiar with the filter method. based on my edit, do you still think this would do it? –  Chris Simpson Mar 5 '10 at 20:17
    
@Chris Simpson: Judging from your edits (and Jonathan's), I'd have to say yes. Assuming you replace .parent with .x that is. –  Powerlord Mar 5 '10 at 20:23
2  
works a charm thanks –  Chris Simpson Mar 5 '10 at 20:35

If I understand your question correctly, this would do:

$.fn.hasAncestor = function(a) {
    return this.filter(function() {
        return !!$(this).closest(a).length;
    });
};

$('.element').hasAncestor('.container').myAction();

<div class="container">
  <span>
    <strong class="element">strong</strong>
  </span>
</div>
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+1 That's a good one –  Mottie Mar 5 '10 at 20:26
    
yeah that's good –  Chris Simpson Mar 5 '10 at 20:36
3  
since this value filters parents, rather than returning true/false I'd suggest renaming it withAncestor or filterAncestor. If I were reading code I would expect hasAncestor to return a boolean –  Simon_Weaver Jan 7 '13 at 5:21
1  
...although maybe I take that back since jQuery core has a 'has()' which behaves the same but for descendants. api.jquery.com/has –  Simon_Weaver Feb 20 '13 at 3:16
3  
On the other hand, hasClass() returns a boolean... Reminds me of one of the two hard things in computer science... –  David Feb 20 '13 at 8:34

if ( $('.foo').parents('.parentSelector').length ) { // has parent }

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this would only really work for a single element. I want to select all the children with parents that match a certain criteria. But I've already got a jquery object to select from which is lower down the hierarchy (if this makes sense) –  Chris Simpson Mar 5 '10 at 19:57
    
why will this only for a single element? If your selectors are correct, you should be fine. My code above reads "for all elements with class 'foo', find their parents with class 'parentSelector' and return that jQuery collection". Maybe I'm missing something ... provide an example? –  psychotik Mar 5 '10 at 20:02
1  
you are saying "if my element has got a matching parent, do something". I want to say "based on this list of elements, give me a list of elements that have parents matching a particular criteria" –  Chris Simpson Mar 5 '10 at 20:19
    
+1 I like this solution best of all. jQuery really should add hasParent() to their API, though. –  mmmshuddup Dec 2 '12 at 11:12
    
or hasAncestor() –  Simon_Weaver Oct 3 at 20:05

Try this

ul.myList > li > a

This selector selects only links that are direct children of list elements, which are in turn direct children of elements that have the class myList.

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The easy way is this:

// all children of a specific parent match
$('parentSelector').children();

// All children matching a specific pattern, one level deep
$('parentSelector > childSelector');
// or
// $('parentSelector').children('childSelector');

// All children matching a specific pattern, multiple levels deep
$('parentSelector childSelector');
// or
// $('parentSelector').find('childSelector');

or did you really need something more complicated than that?

Edit: If you already have an element, you can combine this with the parent() command, like so:

myElement.parents('parentSelector').find('childSelector'); // Will include self
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added example html to the question that may explain things a little better –  Chris Simpson Mar 5 '10 at 20:14
object.each(function(){
    element = $(this);
    if(element.parent().hasClass("x")){
        //do stuff
    }
});

this will affect every item in your object that has parent .x

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$('body').hasParent('html') //true

$('div#myDiv').hasParent($('body')) //true

API:

$.fn.hasParent=function(e){
   return !$(this).parents(e).length
}
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