169

How can I check if one DOM element is a child of another DOM element? Are there any built in methods for this? For example, something like:

if (element1.hasDescendant(element2)) 

or

if (element2.hasParent(element1)) 

If not then any ideas how to do this? It also needs to be cross browser. I should also mention that the child could be nested many levels below the parent.

182

Using the parentNode property should work. It's also pretty safe from a cross-browser standpoint. If the relationship is known to be one level deep, you could check it simply:

if (element2.parentNode == element1) { ... }

If the the child can be nested arbitrarily deep inside the parent, you could use a function similar to the following to test for the relationship:

function isDescendant(parent, child) {
     var node = child.parentNode;
     while (node != null) {
         if (node == parent) {
             return true;
         }
         node = node.parentNode;
     }
     return false;
}
  • Thanks for your reply, the problem is that the child could be nested many levels below the parent. – AJ. Feb 10 '10 at 7:01
  • 204
    If anyone is coming to this now it may be possible for you to use Node.contains (developer.mozilla.org/en-US/docs/DOM/Node.contains) which is a native function in modern browsers. – Adam Heath Jan 7 '13 at 7:31
  • 1
    Thanks for the Node.contains idea @AdamHeath. Saved my day! – RynoRn Jun 25 '14 at 9:31
  • 1
    @JohnCarrell There is Node.contains (no caniuse page though) – gcampbell Sep 25 '16 at 9:10
  • 3
    @Asaph Could you please update your answer to include the new Node.contains? :) – user993683 Jan 2 '17 at 11:30
306

You should use Node.contains, since it's now standard and available in all browsers.

https://developer.mozilla.org/en-US/docs/Web/API/Node.contains

  • The Node.hasParent(parent) method is unnecessary but would be Node.prototype.hasParent=function(element){return element.contains(this);}; – llange Jul 9 '14 at 10:20
  • 5
    This is the better answer – Kevin Jantzer Aug 1 '14 at 17:14
  • 6
    Is it also supported in mobile browsers? The mdn docs have question marks for Android, Safari, IE, and Opera. – thetallweeks Sep 30 '14 at 16:39
  • @thetallweeks - Works on my Android 7 at least. – Sphinxxx Mar 24 '18 at 0:39
  • 2
    you could've at least added an example – Nino Škopac Apr 5 '18 at 6:25
40

I just had to share 'mine'.

Although conceptually the same as Asaph's answer (benefiting from the same cross-browser compatibility, even IE6), it is a lot smaller and comes in handy when size is at a premium and/or when it is not needed so often.

function childOf(/*child node*/c, /*parent node*/p){ //returns boolean
  while((c=c.parentNode)&&c!==p); 
  return !!c; 
}

..or as one-liner (just 64 chars!):

function childOf(c,p){while((c=c.parentNode)&&c!==p);return !!c}

and jsfiddle here.


Usage:
childOf(child, parent) returns boolean true|false.

Explanation:
while evaluates as long as the while-condition evaluates to true.
The && (AND) operator returns this boolean true/false after evaluating the left-hand side and the right-hand side, but only if the left-hand side was true (left-hand && right-hand).

The left-hand side (of &&) is: (c=c.parentNode).
This will first assign the parentNode of c to c and then the AND operator will evaluate the resulting c as a boolean.
Since parentNode returns null if there is no parent left and null is converted to false, the while-loop will correctly stop when there are no more parents.

The right-hand side (of &&) is: c!==p.
The !== comparison operator is 'not exactly equal to'. So if the child's parent isn't the parent (you specified) it evaluates to true, but if the child's parent is the parent then it evaluates to false.
So if c!==p evaluates to false, then the && operator returns false as the while-condition and the while-loop stops. (Note there is no need for a while-body and the closing ; semicolon is required.)

So when the while-loop ends, c is either a node (not null) when it found a parent OR it is null (when the loop ran through to the end without finding a match).

Thus we simply return that fact (converted as boolean value, instead of the node) with: return !!c;: the ! (NOT operator) inverts a boolean value (true becomes false and vice-versa).
!c converts c (node or null) to a boolean before it can invert that value. So adding a second ! (!!c) converts this false back to true (which is why a double !! is often used to 'convert anything to boolean').


Extra:
The function's body/payload is so small that, depending on case (like when it is not used often and appears just once in the code), one could even omit the function (wrapping) and just use the while-loop:

var a=document.getElementById('child'),
    b=document.getElementById('parent'),
    c;

c=a; while((c=c.parentNode)&&c!==b); //c=!!c;

if(!!c){ //`if(c)` if `c=!!c;` was used after while-loop above
    //do stuff
}

instead of:

var a=document.getElementById('child'),
    b=document.getElementById('parent'),
    c;

function childOf(c,p){while((c=c.parentNode)&&c!==p);return !!c}

c=childOf(a, b);    

if(c){ 
    //do stuff
}
  • 2
    Excellent answer and really helpful. – Marc Fowler Dec 4 '13 at 16:09
  • 1
    Wouldn't just != work? – Solomon Ucko May 8 '16 at 13:51
  • 3
    @SolomonUcko: The strict equality comparison (!==) can improve speed by making it clear to the compiler that it can skip type-checking and optional implicit conversion steps that would occur in a loose equality comparison, thus improving speed (by more accurately describing what we want to happen, which is also beneficial to the programmer). I also seem to recall from when I wrote this, that just the loose comparison (!=) was either very error-prone or didn't work at all in some older browser(s) (I suspect it was in IE6, but I have forgotten). – GitaarLAB May 12 '16 at 7:59
  • Ok, that makes sense, thanks. – Solomon Ucko May 12 '16 at 11:54
  • AMAZING!! Simply wonderful implementation! I gave you 1 up... Nevertheless I ended up using JS "conatins" method, I believe it should be the actually used standard. – DavidTaubmann Nov 6 '16 at 18:39
23

Another solution that wasn't mentioned:

Example Here

var parent = document.querySelector('.parent');

if (parent.querySelector('.child') !== null) {
    // .. it's a child
}

It doesn't matter whether the element is a direct child, it will work at any depth.


Alternatively, using the .contains() method:

Example Here

var parent = document.querySelector('.parent'),
    child = document.querySelector('.child');

if (parent.contains(child)) {
    // .. it's a child
}
  • 5
    I think this is the most elegant solution. – silvenon Jul 27 '15 at 13:40
  • 1
    I believe this should be the standard use, thanks for it, it's difficult to stay on the edge with "live standards"... – DavidTaubmann Nov 6 '16 at 18:25
18

Take a look at Node#compareDocumentPosition.

function isDescendant(ancestor,descendant){
    return ancestor.compareDocumentPosition(descendant) & 
        Node.DOCUMENT_POSITION_CONTAINS;
}

function isAncestor(descendant,ancestor){
    return descendant.compareDocumentPosition(ancestor) & 
        Node.DOCUMENT_POSITION_CONTAINED_BY;
}

Other relationships include DOCUMENT_POSITION_DISCONNECTED, DOCUMENT_POSITION_PRECEDING, and DOCUMENT_POSITION_FOLLOWING.

Not supported in IE<=8.

  • interesting! This reminds me of a JS function I developed on year 2003... Took me some days and got help of some JS developers... Incredible (and sad) that nowadays there's still no full drag-drop nor object-fit full browser implementation. – DavidTaubmann Nov 6 '16 at 18:18
13

You can use the contains method

var result = parent.contains(child);

or you can try to use compareDocumentPosition()

var result = nodeA.compareDocumentPosition(nodeB);

The last one is more powerful: it return a bitmask as result.

2

I came across a wonderful piece of code to check whether or not an element is a child of another element. I have to use this because IE doesn't support the .contains element method. Hope this will help others as well.

Below is the function:

function isChildOf(childObject, containerObject) {
  var returnValue = false;
  var currentObject;

  if (typeof containerObject === 'string') {
    containerObject = document.getElementById(containerObject);
  }
  if (typeof childObject === 'string') {
    childObject = document.getElementById(childObject);
  }

  currentObject = childObject.parentNode;

  while (currentObject !== undefined) {
    if (currentObject === document.body) {
      break;
    }

    if (currentObject.id == containerObject.id) {
      returnValue = true;
      break;
    }

    // Move up the hierarchy
    currentObject = currentObject.parentNode;
  }

  return returnValue;
}
  • I literally tried every other polyfill on this page including .contains, and this is the only one that worked. Thanks! – protoEvangelion Aug 2 at 3:28
1

try this one:

x = document.getElementById("td35");
if (x.childElementCount > 0) {
    x = document.getElementById("LastRow");
    x.style.display = "block";
}
else {
    x = document.getElementById("LastRow");
    x.style.display = "none";
}
-2

I recently came across this function which might do:

Node.compareDocumentPosition()

  • Downvoted because the same answer existed already multiple times with more information than just an external link. – Stefan Fabian Nov 30 '18 at 17:04

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