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I want to pass the value of 'undefined' on a multiple parameter function but without omitting the parameter.

What do I mean with "without omitting the parameter". I mean that we should not just omit the parm2 like this example:

function myFunction (parm1, parm2) {}

This will indeed make parm2 undefined, but however I am not allowed to do it this way because I will need to specify other parameters AFTER the omitted parameter.

So in the case I want to make parm1 undefined BUT also want to have other parameters after this one to hold a value won't work with the previous method.

I have tried with:

myFunction( ,"abc"); //don't seem to work


myFunction(undefined,"abc"); //neither work
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9 Answers 9

up vote 5 down vote accepted

A better approach might be passing Object with named attributes and then look for those specific attribute values. This way you don't have to be dependent on number of arguments.

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+1 for suggesting that the function in question could be rewritten. – davidchambers Jan 25 '12 at 7:19
It's not a bad suggestion, but it's a bit arrogant to suggest this is always a better approach, and it doesn't actually answer the question. – Flimzy Jun 5 '14 at 22:39
Noone said its always better. I don't see what you find arrogant about the answer, it's simply another way to pass in parameters that avoids the issue of positional parameters. – dbrin Jun 5 '14 at 23:04
Traditional function arguments are better to get used to. – Tomáš Zato Oct 23 '14 at 6:08

myFunction(undefined,"abc"); this way should work, what is the problem?

see here

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I found a reference… JavaScript 1.8.5 note Starting in JavaScript 1.8.5 (Firefox 4), undefined is non-writable, as per the ECMAScript 5 specification. – ajax333221 Jan 25 '12 at 16:56
Why would undefined being non-writable make a difference? That doesn't affect passing it into a function. – Ted Bigham Sep 4 at 21:00

I just had an idea and it seems to work:

var undf;

myFunction(undf, "abc");

I am sure there are better ways, however I post this

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The void operator seems to be the most common way to explicitly get undefined.

You would use it like this in your example:

myFunction(void 0, "abc");

It's also a reliable method for comparing against undefined that is guarded against undefined being accidentally overridden in older JavaScript environments:

var x;
if (x === void 0) {
    // this will execute
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I think the closest you'll get to this is passing null as a parameter. It's not undefined, but for most cases it's close enough.

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typeof null == "object" which is quite misleding. – Tomáš Zato Oct 23 '14 at 6:08

Try to use this method if you plan on adding an indefinite amount of parameters:

function myFunc(params) {
    // Define default values
    var name = 'John';
    var age = '40';
    // You can loop through them
    for (var p in params) {
        alert(p + ':' + params[p]);
    // And read them in like this
    if (typeof != 'undefined') {
        name =;
    if (typeof params.age != 'undefined') {
        age = params.age;
    alert(name + ' ' + age);

myFunc({name:'Bob', age:'30'});
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myFunction(undefined,"abc") should absolutely work, unless someone cruel has redefined undefined! If you want to be safe, there are dozens of ways to get the undefined value which avoid the assumption that the thing called "undefined" does in fact have the special undefined value:

void 0
var undef; undef
// `undef` is guaranteed to have the undefined value within this closure
(function(undef){ undef }())
// this expression evaluates as undefined

void 0 is the most widely used (compiled CoffeeScript includes this wherever the undefined value is required).

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since JavaScript 1.8.5+, undefined is non-writable because the ECMAScript 5 specification says so. Read the yellow warning in here… – ajax333221 Jan 25 '12 at 17:00
That's good to know, although we'll be supporting older JavaScript engines for quite some time. – davidchambers Feb 4 '12 at 3:33

If its possible , could you rearrange the function as myFunction (parm2, parm1)

ie. try to ensure possible undefined parameters are last in the function , this might not work if more parameters are introduced.

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You can use apply and an array of parameters to pass "undefined" as one of the parameters. For example, you wanted to pass parm1 as "undefined":

function myFunction (parm1, parm2) {

    if(typeof (parm1) === "undefined"){
        alert("parm1 is undefined")

    if(typeof (parm2) === "undefined"){
        alert("parm2 is undefined")


var myParameters = [undefined, "abc"];

myFunction.apply(valueForThis, myParameters );
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