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As per the jQuery api, the complementary operation to .get(), which accepts an index and returns a DOM node, .index() can take a DOM node and returns an index. Suppose we have a simple unordered list on the page:

<ul>
  <li id="foo">foo</li>
  <li id="bar">bar</li>
  <li id="baz">baz</li>
</ul>

.index() will return the position of the first element within the set of matched elements in relation to its siblings:

alert('Index: ' + $('#bar').index();

We get back the zero-based position of the list item:

Index: 1

I just want to know, how can we do the same using JavaScript??

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I'm not suggesting you should always use jQuery, but out of curiosity, why do you want to do this in pure JS? –  Bojangles Dec 1 '12 at 9:17
1  
@JamWaffles: I use jQuery mostly, due to its "The Write Less, Do More" nature. So, I had asked this question just for my knowledge and let others know, what "The Write Less, Do More" really means from this example. Hope you got my point! –  palaѕн Dec 1 '12 at 10:45
    
possible duplicate of Finding DOM node index –  Andrew Whitaker Dec 1 '12 at 17:53
1  
@AndrewWhitaker It should be noted that the answers in the listed duplicate look for the index without testing the type of the node (which may be a text for example). That's why they don't return the same result than jquery's index (as is the question) which is what is generally useful. –  dystroy Dec 3 '12 at 7:58

2 Answers 2

up vote 4 down vote accepted

You can build your own function :

function indexInParent(node) {
    var children = node.parentNode.childNodes;
    var num = 0;
    for (var i=0; i<children.length; i++) {
         if (children[i]==node) return num;
         if (children[i].nodeType==1) num++;
    }
    return -1;
}

Demonstration (open the console)

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Thanks for the answer :) –  palaѕн Dec 3 '12 at 7:54
    
This was immensely helpful. Thanks! –  SwankyLegg Jun 8 at 22:59

Like this:

var el = document.getElementById("bar");
var index = (function(){ 
  for(var i = 0, max = el.parentNode.childNodes.length; i < max; i++)
   if( el.parentNode.childNodes[i] == el ) return i;
})();
share|improve this answer
    
Thanks for the answer.. :) –  palaѕн Dec 3 '12 at 7:55

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