87

In straight up javascript (i.e., no extensions such as jQuery, etc.), is there a way to determine a child node's index inside of its parent node without iterating over and comparing all children nodes?

E.g.,

var child = document.getElementById('my_element');
var parent = child.parentNode;
var childNodes = parent.childNodes;
var count = childNodes.length;
var child_index;
for (var i = 0; i < count; ++i) {
  if (child === childNodes[i]) {
    child_index = i;
    break;
  }
}

Is there a better way to determine the child's index?

  • 1
    Sorry, am I a complete dolt? There are lots of seemingly learned answers here, but to get all the children nodes don't you need to do parent.childNodes, rather than parent.children?. The latter only lists the Elements, excluding in particular Text nodes... Some of the answers here, e.g. using previousSibling, are based on using all child nodes, whereas others are only bothered with children which are Elements... (!) – mike rodent Oct 12 '17 at 11:17
  • @mikerodent I don't remember what my purpose was when I initially asked this question, but that's a key detail that I wasn't aware of. Unless you're careful, .childNodes should definitely be used instead of .children. The top 2 posted answers will give different results as you pointed out. – cpburnz Oct 12 '17 at 13:49
103

you can use the previousSibling property to iterate back through the siblings until you get back null and count how many siblings you've encountered:

var i = 0;
while( (child = child.previousSibling) != null ) 
  i++;
//at the end i will contain the index.

Please note that in languages like Java, there is a getPreviousSibling() function, however in JS this has become a property -- previousSibling.

  • 2
    Yep. You've left a getPreviousSibling() in the text though. – Tim Down May 6 '11 at 16:06
  • 7
    this approach requires the same number of iterations to determine the child index, so i can't see how it would be much faster. – Michael May 10 '13 at 21:04
  • 26
    One line version: for (var i=0; (node=node.previousSibling); i++); – Scott Miles Aug 29 '14 at 0:53
  • 1
    @sfarbota Javascript doesn't know block scoping, so i will be accesible. – A1rPun Sep 22 '14 at 15:12
  • 3
    @nepdev That would be because of the differences between .previousSibling and .previousElementSibling. The former hits text nodes, the latter doesn't. – abluejelly May 23 '16 at 17:39
99

I've become fond of using indexOf for this. Because indexOf is on Array.prototype and parent.children is a NodeList, you have to use call(); It's kind of ugly but it's a one liner and uses functions that any javascript dev should be familiar with anyhow.

var child = document.getElementById('my_element');
var parent = child.parentNode;
// The equivalent of parent.children.indexOf(child)
var index = Array.prototype.indexOf.call(parent.children, child);
  • 7
    var index = [].indexOf.call(child.parentNode.children, child); – cuixiping Aug 15 '14 at 17:04
  • 19
    Fwiw, using [] creates an Array instance every time you run that code, which is less efficient for memory and GC vs using Array.prototype. – Scott Miles Aug 29 '14 at 0:50
  • @ScottMiles May i ask to explain what you've said a little more? Doesn't [] get clean on memory as a garbage value? – mrReiha Jun 24 '15 at 7:43
  • 10
    To evaluate [].indexOf the engine has to create an array instance just to access the indexOf implementation on the prototype. The instance itself goes unused (it does GC, it's not a leak, it's just wasting cycles). Array.prototype.indexOf accesses that implementation directly without allocating an anonymous instance. The difference is going to be negligible in almost all circumstances, so frankly it may not be worth caring about. – Scott Miles Jun 24 '15 at 17:03
  • 1
    Beware of error in IE! Internet Explorer 6, 7 and 8 supported it, but erroneously includes Comment nodes. Source" developer.mozilla.org/en-US/docs/Web/API/ParentNode/… – Luckylooke May 4 '17 at 6:53
59

ES6:

Array.from(element.parentNode.children).indexOf(element)

Explanation :

  • element.parentNode.children → Returns the brothers of element, including that element.

  • Array.from → Casts the constructor of children to an Array object

  • indexOf → You can apply indexOf because you now have an Array object.

  • Most elegant solution, by far :) – Amit Saxena Dec 12 '16 at 14:31
  • 1
    But only available from Chrome 45 and Firefox 32, and not available on Internet Explorer at all. – Peter Mar 30 '17 at 11:56
  • Internet Explorer still alive ? Just Jock .. Ok so you need a polyfill to make Array.from works on Internet explorer – Abdennour TOUMI Mar 30 '17 at 18:00
  • 7
    According to MDN, calling Array.from() creates a new Array instance from an array-like or iterable object. Creating a new array instance just to find an index might not be memory or GC efficient, depending on how frequent the operation, in which case iteration, as explained in the accepted answer, would be more ideal. – TheDarkIn1978 Jun 28 '17 at 7:30
  • 1
    @TheDarkIn1978 I am aware there is a trades-off between code elegance & app performance 👍🏻 – Abdennour TOUMI Aug 26 '17 at 20:04
33

ES—Shorter

[...element.parentNode.children].indexOf(element);

The spread Operator is a shortcut for that

  • That's an interesting operator. – cpburnz Mar 9 '17 at 15:09
  • What's the difference between e.parentElement.childNodes and e.parentNode.children ? – mesqueeb Mar 8 '18 at 13:44
  • 4
    childNodes includes text nodes as well – philipp Mar 8 '18 at 13:57
  • With Typescript you get Type 'NodeListOf<ChildNode>' must have a '[Symbol.iterator]()' method that returns an iterator.ts(2488) – ZenVentzi Mar 18 at 6:16
8

Adding a (prefixed for safety) element.getParentIndex():

Element.prototype.PREFIXgetParentIndex = function() {
  return Array.prototype.indexOf.call(this.parentNode.children, this);
}
  • Theres a reason for web development's painfulness: prefix-jumpy dev's. Why not just do if (!Element.prototype.getParentIndex) Element.prototype.getParentIndex = function(){ /* code here */ }? Anyway, if this is ever implemented into the standard in the future then it will likely be implemented as a getter like element.parentIndex. So, I would say the best approach would be if(!Element.prototype.getParentIndex) Element.prototype.getParentIndex=Element.prototype.parentIndex?function() {return this.parentIndex}:function() {return Array.prototype.indexOf.call(this.parentNode.children, this)} – Jack Giffin Jul 2 '17 at 20:27
  • Because the future getParentIndex() may have a different signature than your implementation. – mikemaccana Jul 4 '17 at 11:05
5

The fastest way is to do a binary search, comparing the document positions of the elements. The more elements you have, the greater the potential for performance. For example, if you had 256 elements, then (optimally) you would only need to check just 16 of them! For 65536, only 256! The performance grows to the power of 2! See more numbers/statistics. Visit Wikipedia.

(function(constructor){
   'use strict';
    Object.defineProperty(constructor.prototype, 'parentIndex', {
      get: function() {
        var searchParent = this.parentElement;
        if (!searchParent) return -1;
        var searchArray = searchParent.children,
            thisOffset = this.offsetTop,
            stop = searchArray.length,
            p = 0,
            delta = 0;

        while (searchArray[p] !== this) {
            if (searchArray[p] > this)
                stop = p + 1, p -= delta;
            delta = (stop - p) >>> 1;
            p += delta;
        }

        return p;
      }
    });
})(window.Element || Node);

Then, the way that you use it is by getting the 'parentIndex' property of any element. For example, check out the following demo.

(function(constructor){
   'use strict';
    Object.defineProperty(constructor.prototype, 'parentIndex', {
      get: function() {debugger;
        var searchParent = this.parentNode;
        if (searchParent === null) return -1;
        var childElements = searchParent.children,
            lo = -1, mi, hi = childElements.length;
        while (1 + lo !== hi) {
            mi = (hi + lo) >> 1;
            if (!(this.compareDocumentPosition(childElements[mi]) & 0x2)) {
                hi = mi;
                continue;
            }
            lo = mi;
        }
        return childElements[hi] === this ? hi : -1;
      }
    });
})(window.Element || Node);

output.textContent = document.body.parentIndex;
output2.textContent = document.documentElement.parentIndex;
Body parentIndex is <b id="output"></b><br />
documentElements parentIndex is <b id="output2"></b>

Limitations

  • This implementation of the solution will not work in IE8 and below.

Binary VS Linear Search On 200 thousand elements (might crash some mobile browsers, BEWARE!):

  • In this test, we will see how long it takes for a linear search to find the middle element VS a binary search. Why the middle element? Because it is at the average location of all the other locations, so it best represents all of the possible locations.

Binary Search

(function(constructor){
   'use strict';
    Object.defineProperty(constructor.prototype, 'parentIndex', {
      get: function() {debugger;
        var searchParent = this.parentNode;
        if (searchParent === null) return -1;
        var childElements = searchParent.children,
            lo = -1, mi, hi = childElements.length;
        while (1 + lo !== hi) {
            mi = (hi + lo) >> 1;
            if (!(this.compareDocumentPosition(childElements[mi]) & 0x2)) {
                hi = mi;
                continue;
            }
            lo = mi;
        }
        return childElements[hi] === this ? hi : -1;
      }
    });
})(window.Element || Node);
test.innerHTML = '<div> </div> '.repeat(200e+3);
// give it some time to think:
setTimeout(function(){
  var child=test.children.item(99e+3);
  var start=performance.now();
  for (var i=200; i--; )
    console.assert( (child=child.nextElementSibling).parentIndexBinarySearch );
  var end=performance.now();
  setTimeout(function(){
    output.textContent = 'It took the binary search ' + ((end-start)*10).toFixed(2) + 'ms to find the 999 thousandth to 101 thousandth children in an element with 200 thousand children.';
    test.innerHTML = '';
  }, 125);
}, 125);
<output id=output> </output><br />
<div id=test style=visibility:hidden></div>
<style>body{overflow:hidden}</style>

Backwards (`lastIndexOf`) Linear Search

(function(t){"use strict";var e=Array.prototype.lastIndexOf;Object.defineProperty(t.prototype,"parentIndexLinearSearch",{get:function(){return e.call(t,this)}})})(window.Element||Node);
test.innerHTML = '<div> </div> '.repeat(200e+3);
// give it some time to think:
setTimeout(function(){
  var child=test.children.item(99e+3);
  var start=performance.now();
  for (var i=2000; i--; )
    console.assert( (child=child.nextElementSibling).parentIndexLinearSearch );
  var end=performance.now();
  setTimeout(function(){
    output.textContent = 'It took the linear search ' + (end-start).toFixed(2) + 'ms to find the 999 thousandth to 101 thousandth children in an element with 200 thousand children.';
    test.innerHTML = '';
  }, 125);
}, 125);
<output id=output> </output><br />
<div id=test style=visibility:hidden></div>
<style>body{overflow:hidden}</style>

Forwards (`indexOf`) Linear Search

Linear Search, excepting going forwards to backwards instead of backwards to forwards.

(function(t){"use strict";var e=Array.prototype.indexOf;Object.defineProperty(t.prototype,"parentIndexLinearSearch",{get:function(){return e.call(t,this)}})})(window.Element||Node);
test.innerHTML = '<div> </div> '.repeat(200e+3);
// give it some time to think:
setTimeout(function(){
  var child = test.children.item(99e+3);
  var start=performance.now();
  for (var i=2000; i--; )
  console.assert( (child=child.nextElementSibling).parentIndexLinearSearch );
  var end=performance.now();
  setTimeout(function(){
    output.textContent = 'It took the linear search ' + (end-start).toFixed(2) + 'ms to find the 999 thousandth to 101 thousandth children in an element with 200 thousand children.';
    test.innerHTML = '';
  }, 125);
}, 125);
<output id=output> </output><br />
<div id=test style=visibility:hidden></div>
<style>body{overflow:hidden}</style>

However, after viewing the results in Chrome, the results are the opposite of what was expected. The dumber forwards linear search was a suprising 187ms, 3850%, faster than the binary search. Evidently, Chrome somehow magicly outsmarted the console.assert and optimized it away, or (more optimistically) Chrome internally uses numerical indexing system for the DOM, and this internal indexing system is exposed through the optimizations applied to Array.prototype.indexOf when used on a HTMLCollection object.

3

Use binary search algorithm to improve the performace when the node has large quantity siblings.

function getChildrenIndex(ele){
    //IE use Element.sourceIndex
    if(ele.sourceIndex){
        var eles = ele.parentNode.children;
        var low = 0, high = eles.length-1, mid = 0;
        var esi = ele.sourceIndex, nsi;
        //use binary search algorithm
        while (low <= high) {
            mid = (low + high) >> 1;
            nsi = eles[mid].sourceIndex;
            if (nsi > esi) {
                high = mid - 1;
            } else if (nsi < esi) {
                low = mid + 1;
            } else {
                return mid;
            }
        }
    }
    //other browsers
    var i=0;
    while(ele = ele.previousElementSibling){
        i++;
    }
    return i;
}
  • Doesn't work. I'm compelled to point out that the IE version and "other browser" version will calculate different results. The "other browsers" technique works as expected, getting the nth position under the parent node, however the IE technique "Retrieves the ordinal position of the object, in source order, as the object appears in the document's all collection" ( msdn.microsoft.com/en-gb/library/ie/ms534635(v=vs.85).aspx ). E.g. I got 126 using "IE" technique, and then 4 using the other. – Christopher Bull Aug 14 '14 at 15:04
  • 1
    I modified the code for IE. – cuixiping Aug 15 '14 at 16:09
0
Object.defineProperties(Element.prototype,{
group : {
    value: function (str, context) {
        // str is valid css selector like :not([attr_name]) or .class_name
        var t = "to_select_siblings___";
        var parent = context ? context : this.parentNode;
        parent.setAttribute(t, '');
        var rez = document.querySelectorAll("[" + t + "] " + (context ? '' : ">") + this.nodeName + (str || "")).toArray();
        parent.removeAttribute(t);            
        return rez;  
    }
},
siblings: {
    value: function (str, context) {
        var rez=this.group(str,context);
        rez.splice(rez.indexOf(this), 1);
        return rez; 
    }
},
nth: {  
    value: function(str,context){
       return this.group(str,context).indexOf(this);
    }
}
}

Ex

/* html */
<ul id="the_ul">   <li></li> ....<li><li>....<li></li>   </ul>

 /*js*/
 the_ul.addEventListener("click",
    function(ev){
       var foo=ev.target;
       foo.setAttribute("active",true);
       foo.siblings().map(function(elm){elm.removeAttribute("active")});
       alert("a click on li" + foo.nth());
     });
  • Can you explain why you extend from Element.prototype? The functions look useful but I don't know what these functions do (even if the namings are obvious). – A1rPun Dec 4 '15 at 19:04
  • @ extend Element.prototype the reason is similarity ... 4 ex elemen.children , element.parentNode etc ... so the same way you address element.siblings .... the group method is a little complicated cause I want to extend a little the sibling approach to elelemts alike by the same nodeType and having same attributes even not having same ancestor – bortunac Dec 4 '15 at 19:12
  • I know what prototype extending is but I like to know how is your code used. el.group.value() ??. My first comment is there to improve the quality of your answer. – A1rPun Dec 4 '15 at 19:36
  • the group and siblings methods return Array with founded dom elements .. .... thanks for your comment and for the reason of comment – bortunac Dec 4 '15 at 19:44
  • Very elegant, yet also very slow. – Jack Giffin Jul 2 '17 at 22:37
-3
<body>
    <section>
        <section onclick="childIndex(this)">child a</section>
        <section onclick="childIndex(this)">child b</section>
        <section onclick="childIndex(this)">child c</section>
    </section>

    <script src="//code.jquery.com/jquery-1.11.3.min.js"></script>
    <script>
        function childIndex(e){
            var i = 0;
            debugger
            while (e.parentNode.children[i] != e) i++;
            alert('child index '+i);
        }
    </script>
</body>

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