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I mean an array of them. That is a chain from top HTML to destination element including the element itself.

for example for element <A> it would be:

[HTML, BODY, DIV, DIV, P, SPAN, A]
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3 Answers 3

up vote 13 down vote accepted

A little shorter (and safer, since target may not be found):

var a = document.getElementById("target");
var els = [];
while (a) {
    els.unshift(a);
    a = a.parentNode;
}
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2  
I changed accepted answer. This is the most elegant. (btw, The tests show that push and then reverse is more efficient.) [I wish there was an option to accept more than one answer, even at cost of my points.] –  rsk82 Jan 4 '12 at 16:11

You can try something like:

var nodes = [];
var element = document.getElementById('yourelement');
nodes.push(element);
while(element.parentNode) {
    nodes.unshift(element.parentNode);
    element = element.parentNode;
}
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1  
Ah, beat me to it. +1 –  anstosa Jan 4 '12 at 15:22
4  
+1. beat me to it as well, but instead of using reverse() at the end, i would just use unshift() instead of push() –  32bitkid Jan 4 '12 at 15:23
3  
see jsperf.com/unshift-vs-push-reverse/3 for performance results –  32bitkid Jan 4 '12 at 15:46
1  
+1 for that info. Still unshift makes the code look cleaner than push and reverse I'd say. If we're not dealing with 100s or 1000s of items in the array, the performance i guess wouldn't be noticeable. –  techfoobar Jan 4 '12 at 15:53
1  
+1. All this time I never knew .push() had a brother called .unshift()! –  Robin Maben Aug 31 '12 at 5:51

Something like this:

var nodeList = [document.getElementById('element')];
while (nodeList[nodeList.length - 1].parentNode !== document) {
    nodeList.unshift(nodeList[nodeList.length - 1].parentNode);
}
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