Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

It is my understanding that IE8 has access to the Array.prototype.slice method. Yet when I try to call it to turn a NodeList into an array, it gives me the error Array.prototype.slice: 'this' is not a JavaScript object. You can check it out here, or look at my code here:


<div id="test">Test</div>


var divs = document.getElementsByTagName('div');
divs =;

What's going on here?

share|improve this question

4 Answers 4

up vote 7 down vote accepted

Update: A NodeList can be treated as an array in some ways - you don't actually have to do anything special with it before you can loop over it, for example:

var aDivs = [];
for (var = i = 0; i < divs.length; i++) {

This will create an array with all of the nodes that matched when you ran document.getElementsByTagName()

See this question for a full explanation of why slice works with a NodeList in some browsers but not others, but it boils down this this sentence from the specification:

Whether the slice function can be applied successfully to a host object is implementation-dependent.

share|improve this answer
That doesn't work because divs is not an instance of Array. It is an instance of NodeList. It returns the error Object doesn't support property or method 'slice' when trying to do it that way. Using .call() makes it so this refers to the correct object. – Aust Nov 10 '12 at 0:03
You're absolutely right - apologies; I've updated my answer. I suspect the reason you're getting that error is simply that because NodeList isn't a regular Javascript object, slice can't work with it. – Kelvin Nov 10 '12 at 0:09
Your updated answer helped me, thank YOU!! – thednp Mar 13 at 10:48

The error message is accurate - your nodelist is not a JavaScript object, it is a "Host Object", which you can't necessarily pass around like regular JavaScript objects. Run this code in IE8's JavaScript console:

document.querySelectorAll("div") instanceof Object

It returns false.

share|improve this answer

I assume that you want to keep the same content even if the NodeList set changes.

If it's that case, bad news : IE8 is broken. And it can't handle using slice on NodeList.

So you will need to use a fallback and make the "slice" yourself when slice fails (by using a try/catch).

Note that If you don't expect the DOM to change, and if an array-like object is enough, then you can just use the NodeList like any other array (except that it is not, and that perhaps it will be modified if the DOM changes).

[edit] Actually it's not a broken design, it's allowed by the standard (as stated by the link in Kelvin Mackay's comment)

share|improve this answer
For once, IE gets away with doing a half-baked job on a technicality lol – Kelvin Nov 10 '12 at 0:18

Using Array.prototype.slice to convert a NodeList to array won't work because of these two reasons:

  • slice method returns the existing array element(s).

  • Array.prototype is not an instance of Array object. It's merely an object container of properties that will be inherited by all Array object instances. So it doesn't have the actual array value.

Converting a NodeList or HTMLCollection to an array is usually done using for... loop. But it can also be done using dynamically created disposable array:

var divs = ([]).concat(document.getElementsByTagName('div'));

It can also be done using bound call to a method from Array.prototype, although this is uncommon and isn't a recommended way. Below example is basically same as above.

var divs = Array.prototype.concat.apply([], document.getElementsByTagName('div'));
share|improve this answer
No, he used call means the first parameter you give it is the this value of the function. – Camilo Martin Jun 12 '13 at 8:03
Also, your ([]).concat(document.getElementsByTagName('div')) will create an array with one item (the NodeList). Sorry, but this answer is completely clueless. – Camilo Martin Jun 12 '13 at 8:05

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.