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Users selects two or more elements in a HTML page. What i want to accomplish is to find those elements' common ancestors (so body node would be the common ancestor if none found before) ?

P.S: It can be achieved with XPath but it is not a preferable option for me. Also it may be found with css selector parsing but i think it is a dirty method (?)

Thank you.

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Do you want the 'closest' common ancestor, or an array containing ALL common ancestors? –  Bobby Jack Oct 18 '10 at 16:06
    
only 'closest' common ancestor –  Ozgur Oct 18 '10 at 16:10

8 Answers 8

up vote 5 down vote accepted

Try this:

function get_common_ancestor(a, b)
{
    $parentsa = $(a).parents();
    $parentsb = $(b).parents();

    var found = null;

    $parentsa.each(function() {
        var thisa = this;

        $parentsb.each(function() {
            if (thisa == this)
            {
                found = this;
                return false;
            }
        });

        if (found) return false;
    });

    return found;
}

Use it like this:

var el = get_common_ancestor("#id_of_one_element", "#id_of_another_element");

That's just rattled out pretty quickly, but it should work. Should be easy to amend if you want something slightly different (e.g. jQuery object returned instead of DOM element, DOM elements as arguments rather than IDs, etc.)

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i prepared a test case and your solution works. Thanks. –  Ozgur Oct 18 '10 at 16:25

Here's a pure JavaScript version that is a little more efficient.

function parents(node) {
  var nodes = [node]
  for (; node; node = node.parentNode) {
    nodes.unshift(node)
  }
  return nodes
}

function commonAncestor(node1, node2) {
  var parents1 = parents(node1)
  var parents2 = parents(node2)

  if (parents1[0] != parents2[0]) throw "No common ancestor!"

  for (var i = 0; i < parents1.length; i++) {
    if (parents1[i] != parents2[i]) return parents1[i - 1]
  }
}
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2  
+1 for not assuming jQuery + a very elegant solution. –  djanowski Dec 30 '11 at 22:11
    
excellent excellent solution –  gweg Mar 19 '12 at 9:33
1  
This will fail if the DOM nodes are siblings. You should edit your code to fix that. –  Himanshu P Nov 9 '12 at 9:05
    
(I tried fixing it, but my change is pending approval since this is not a community wiki I think) –  Himanshu P Nov 9 '12 at 9:26
    
Thanks Himanshu, fixed. Here are my tests gist.github.com/4059636 –  benpickles Nov 13 '12 at 14:34

The solutions involving manually going through the ancestor elements are far more complicated than necessary. You don't need to do the loops manually. Get all the ancestor elements of one element with parents(), reduce it to the ones that contain the second element with has(), then get the first ancestor with first().

var a = $('#a'),
    b = $('#b'),
    closestCommonAncestor = a.parents().has(b).first();

jsFiddle example

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+1, and I stole your test case (hope you don't mind) ;-) –  Andy E Oct 4 '11 at 13:21
1  
+1 far better than my solution, although you had a year to think about it ;-) –  Bobby Jack Oct 4 '11 at 17:58

Here's another pure method that uses element.compareDocumentPosition() and element.contains(), the former being a standards method and the latter being a method supported by most major browsers excluding Firefox:

Comparing two nodes

function getCommonAncestor(node1, node2) {
    var method = "contains" in node1 ? "contains" : "compareDocumentPosition",
        test   = method === "contains" ? 1 : 0x10;

    while (node1 = node1.parentNode) {
        if ((node1[method](node2) & test) === test)
            return node1;
    }

    return null;
}

Working demo: http://jsfiddle.net/3FaRr/ (using lonesomeday's test case)

This should be, more or less, as efficient as possible since it is pure DOM and has only one loop.


Comparing two or more nodes

Taking another look at the question, I noticed the "or more" part of the "two or more" requirement had gone ignored by the answers. So I decided to tweak mine slightly to allow any number of nodes to be specified:

function getCommonAncestor(node1 /*, node2, node3, ... nodeN */) {
    if (arguments.length < 2)
        throw new Error("getCommonAncestor: not enough parameters");

    var i,
        method = "contains" in node1 ? "contains" : "compareDocumentPosition",
        test   = method === "contains" ? 1 : 0x0010,
        nodes  = [].slice.call(arguments, 1);

    rocking:
    while (node1 = node1.parentNode) {
        i = nodes.length;    
        while (i--) {
            if ((node1[method](nodes[i]) & test) !== test)
                continue rocking;
        }
        return node1;
    }

    return null;
}

Working demo: http://jsfiddle.net/AndyE/3FaRr/1

share|improve this answer
    
+1 I've corrected the example because the compareDocumentPosition test never succeeded, due to its quirky behaviour. –  lonesomeday Oct 4 '11 at 13:34
    
@lonesomeday: cheers, I forgot compareDocumentPosition returned a bitmask. I've updated the answer again after testing in Firefox. –  Andy E Oct 4 '11 at 14:35
    
@AndyE a) can it be on npm. b) do you have to use labels? >_< –  Raynos Jan 30 '13 at 21:47
    
I got this ( gist.github.com/f1eeacdaf1adb4107840 ) –  Raynos Jan 31 '13 at 1:24
1  
Tidy! A version on the same performant code, also wrapping it into a jQuery.fn.commonAncestor plugin: jsfiddle.net/ecmanaut/Dv5Wj –  ecmanaut Aug 25 '13 at 20:35

You should be able to use the jQuery .parents() function and then walk through the results looking for the first match. (Or I guess you could start from the end and go backwards until you see the first difference; that's probably better.)

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To compare each element I recomend you to make a separated function. It is not so easy. The simple way (not so nice) is to compare the innerhtml of each element. The hardest (but pretty nice) is to start comparing the ids. If they are both undefined, compare the clases, if both elements have same classes (be carefull with classe's order) then you can compare the elements indexes in the body. –  Diego Oct 18 '10 at 15:59
1  
@Diego: a straight comparison between two DOM elements should be all you need, I believe –  Bobby Jack Oct 18 '10 at 16:05
    
@Diego because any DOM element actually in the DOM (which will be true for all the parents of an element in the DOM) only exists once, even two separate jQuery arrays will have references to the exact same objects. Thus, a simple === comparison should work fine. –  Pointy Oct 18 '10 at 16:28

This is a generalized take on lonesomeday's answer. Instead of only two elements it will take a full JQuery object.

function CommonAncestor(jq) {
    var prnt = $(jq[0]);
    jq.each(function () { 
        prnt = prnt.parents().add(prnt).has(this).last(); 
    });
    return prnt;
}
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You can also use a DOM Range (when supported by the browser, of course). If you create a Range with the startContainer set to the earlier node in the document and the endContainer set to the later node in the document, then the commonAncestorContainer attribute of such a Range is the deepest common ancestor node.

Here is some code implementing this idea:

function getCommonAncestor(node1, node2) {
    var dp = node1.compareDocumentPosition(node2);
    // If the bitmask includes the DOCUMENT_POSITION_DISCONNECTED bit, 0x1, or the
    // DOCUMENT_POSITION_IMPLEMENTATION_SPECIFIC bit, 0x20, then the order is implementation
    // specific.
    if (dp & (0x1 | 0x20)) {
        if (node1 === node2) return node1;

        var node1AndAncestors = [node1];
        while ((node1 = node1.parentNode) != null) {
            node1AndAncestors.push(node1);
        }
        var node2AndAncestors = [node2];
        while ((node2 = node2.parentNode) != null) {
            node2AndAncestors.push(node2);
        }

        var len1 = node1AndAncestors.length;
        var len2 = node2AndAncestors.length;

        // If the last element of the two arrays is not the same, then `node1' and `node2' do
        // not share a common ancestor.
        if (node1AndAncestors[len1 - 1] !== node2AndAncestors[len2 - 1]) {
            return null;
        }

        var i = 1;
        for (;;) {
            if (node1AndAncestors[len1 - 1 - i] !== node2AndAncestors[len2 - 1 - i]) {
                // assert node1AndAncestors[len1 - 1 - i - 1] === node2AndAncestors[len2 - 1 - i - 1];
                return node1AndAncestors[len1 - 1 - i - 1];
            }
            ++i;
        }
        // assert false;
        throw "Shouldn't reach here!";
    }

    // "If the two nodes being compared are the same node, then no flags are set on the return."
    // http://www.w3.org/TR/DOM-Level-3-Core/core.html#DocumentPosition
    if (dp == 0) {
        // assert node1 === node2;
        return node1;

    } else if (dp & 0x8) {
        // assert node2.contains(node1);
        return node2;

    } else if (dp & 0x10) {
        // assert node1.contains(node2);
        return node1;
    }

    // In this case, `node2' precedes `node1'. Swap `node1' and `node2' so that `node1' precedes
    // `node2'.
    if (dp & 0x2) {
        var tmp = node1;
        node1 = node2;
        node2 = tmp;
    } else {
        // assert dp & 0x4;
    }

    var range = node1.ownerDocument.createRange();
    range.setStart(node1, 0);
    range.setEnd(node2, 0);
    return range.commonAncestorContainer;
}
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Somewhat late to the party, but here's an elegant jQuery solution (since the question is tagged jQuery) -

/**
 * Find the common ancestors in or against a selector
 * @param selector {?(String|jQuerySelector|Element)}
 * @returns {jQuerySelector}
 */
$.fn.common = function(selector) {
    var i,
            $parents = (selector ? this : this.eq(0)).parents(),
            $targets = selector ? $(selector) : this.slice(1);
    for (i = 0; i < $targets.length; i++) {
        $parents = $parents.has($targets.eq(i).parents());
    }
    return $parents;
};

/**
 * Find the first common ancestor in or against a selector
 * @param selector {?(String|jQuerySelector|Element)}
 * @returns {jQuerySelector}
 */
$.fn.commonFirst = function(selector) {
    return this.common(selector).first();
};
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