805

I wanted to check whether the variable is defined or not. For example, the following throws a not-defined error

alert( x );

How can I catch this error?

14 Answers 14

1559

In JavaScript, null is an object. There's another value for things that don't exist, undefined. The DOM returns null for almost all cases where it fails to find some structure in the document, but in JavaScript itself undefined is the value used.

Second, no, there is not a direct equivalent. If you really want to check for specifically for null, do:

if (yourvar === null) // Does not execute if yourvar is `undefined`

If you want to check if a variable exists, that can only be done with try/catch, since typeof will treat an undeclared variable and a variable declared with the value of undefined as equivalent.

But, to check if a variable is declared and is not undefined:

if (typeof yourvar !== 'undefined') // Any scope

If you know the variable exists, and want to check whether there's any value stored in it:

if (yourvar !== undefined)

If you want to know if a member exists independent but don't care what its value is:

if ('membername' in object) // With inheritance
if (object.hasOwnProperty('membername')) // Without inheritance

If you want to to know whether a variable is truthy:

if (yourvar)

Source

  • 69
    undefined is not a reserved word; you (or someone else's code) can do "undefined = 3" and that will break two of your tests. – Jason S May 13 '09 at 14:14
  • 5
    "If you know the variable exists but don't know if there's any value stored in it" -- huh?! – Jason S May 13 '09 at 14:20
  • 35
    I think he is referring to a variable declared that has not been assigned to. eg: var foo; // foo exists but does not have a value – Wally Lawless May 13 '09 at 14:29
  • 3
    Hmmm... I just noticed the "source" link: this entire post is a direct quote from a mailing list, & should probably be edited to make that more clear, as the original author is not available to clarify. – Jason S May 13 '09 at 15:46
  • 11
    "In JavaScript null is an object.", that's not actually true, and probably, the culprit of this misconception is the typeof operator (typeof null == 'object'). The null value is a primitive value, which is the only value of the Null type. – CMS Oct 13 '11 at 7:29
313

The only way to truly test if a variable is undefined is to do the following. Remember, undefined is an object in JavaScript.

if (typeof someVar === 'undefined') {
  // Your variable is undefined
}

Some of the other solutions in this thread will lead you to believe a variable is undefined even though it has been defined (with a value of NULL or 0, for instance).

  • 16
    Because the question was IS NOT UNDEFINED here should be typeof someVar !== 'undefined', right? – eomeroff Aug 6 '12 at 9:14
  • 1
    Really, I don't think so that undefinded is an object, check documentation first developer.mozilla.org/en-US/docs/Web/JavaScript/Data_structures – Nicramus Sep 14 '14 at 15:42
  • 2
    The only test that does not produce a ReferenceError. – Nostalg.io Nov 17 '15 at 19:31
  • 2
    This code is correct, but I think saying undefined is an object in javascript is misinformation. Does this statement relate to your answer anyway? It is a value undefined of type undefined, assigned to the global identifier named undefined. – SimplGy Aug 15 '16 at 4:34
  • This seems to be a safer answer than the one given by w3schools.com: (x === undefined). As pointed out in another comment, the value of undefined could be redefined and that test would fail. However, using the example given in this answer, that would not be a problem. – L S Jun 12 '17 at 19:58
61

Technically, the proper solution is (I believe):

typeof x === "undefined"

You can sometimes get lazy and use

x == null

but that allows both an undefined variable x, and a variable x containing null, to return true.

  • if you type var x; and then typeof x; you will get "undefined" just like if you did typeof lakjdflkdsjflsj; – Muhammad Umer Aug 26 '16 at 15:16
  • yes and the variable is still undefined. – Jason S Aug 26 '16 at 16:18
  • So there is no way to check for undefined but declared variable? – Muhammad Umer Aug 26 '16 at 16:22
  • 1
    I don't think so; I am not sure why you would want to. – Jason S Aug 26 '16 at 16:28
  • ujndefined shouldn't be between apices – LowFieldTheory Apr 3 '18 at 8:21
14

I've often done:

function doSomething(variable)
{
    var undef;

    if(variable === undef)
    {
         alert('Hey moron, define this bad boy.');
    }
}
  • 9
    Consider changing "==" to "===". If you call doSomething(null) you will also get the alert. Unless that's what you want. – Jason S May 13 '09 at 15:51
  • Yep. You have to decide if you want equivalent or exactly equal. Either case could have a use. – Joe Jul 7 '11 at 15:41
  • 1
    simplye check like this-> if(typeof variableName !== 'undefined'){ alert(variableName);} – Muhammad Sadiq Aug 19 '15 at 7:56
  • this is useless since you won't be able to pass an undefined var to a function anyway – avalanche1 Feb 12 '17 at 11:42
  • 1
    Sure you can. Try calling a function with no argument. – Joe Feb 12 '17 at 19:09
14

An even easier and more shorthand version would be:

if (!x) {
   //Undefined
}

OR

if (typeof x !== "undefined") {
    //Do something since x is defined.
}
  • 25
    the first code-piece can be incorrect if x is being set from a function call. like x = A(); if A doesnt return anything, it will return "undefined" by default. Doing a !x would be true which would be logically correct. However, if A() returns 0 then !x should be false as x=0. However in JS, !0 is also true. – Rajat Dec 30 '09 at 0:49
  • the second code can be shortened to: if(!typeof(XX)){ ... }else{ ... } – Alejandro Silva Jun 6 '14 at 21:53
  • 2
    @AlejandroSilva Sorry for late reply. That won't work since typeof returns a string, so it will return 'undefined' for an undefined variable, which in turn will evaluate as TRUE therefore leading to a false positive of a defined var. – Dmitri Farkov Mar 17 '15 at 20:29
  • 4
    Please get rid of the first snippet, it's just bad – Juan Mendes Feb 12 '16 at 12:06
  • 1
    Other comments have pointed out that the first example is bad, but not clearly why. So, for any new coders: !x doesn't test whether x is defined, but whether it's truthy. Strings, boolean true, and positive numbers are all truthy (and I might be forgetting some things), but other potentially valid values like 0, boolean false, and an empty string are not truthy. The first example can work for specific use cases (e.g., testing for a string if you can treat empty the same as undefined), but because of the many where it won't, it should not be considered the default way to check. – cfc Nov 14 '18 at 16:50
3

You can also use the ternary conditional-operator:

var a = "hallo world";
var a = !a ? document.write("i dont know 'a'") : document.write("a = " + a);

//var a = "hallo world";
var a = !a ? document.write("i dont know 'a'") : document.write("a = " + a);

  • What if var a = false;? You should check that if a===undefined instead – Iter Ator Jul 14 '16 at 15:57
  • If a = false, then it will show "i dont know 'a'". – John Jul 14 '16 at 19:37
  • 1
    Question: check a not-defined variable..... This is undefined variable: var x; doing above will throw an error – Muhammad Umer Aug 26 '16 at 15:21
  • "If a = false, then it will show "i dont know 'a'"" – That's the problem, the question is to test if it's defined, not whether it's true. If a is defined as false, then a is not undefined. This returns the wrong result in that case. See my comment on stackoverflow.com/a/858270/2055492 for more detail on why this approach doesn't work. – cfc Nov 14 '18 at 16:54
2

Another potential "solution" is to use the window object. It avoids the reference error problem when in a browser.

if (window.x) {
    alert('x exists and is truthy');
} else {
    alert('x does not exist, or exists and is falsy');
}
1

I often use the simplest way:

var variable;
if (variable === undefined){
    console.log('Variable is undefined');
} else {
    console.log('Variable is defined');
}

EDIT:

Without initializing the variable, exception will be thrown "Uncaught ReferenceError: variable is not defined..."

  • 2
    Uncaught ReferenceError: variable is not defined – Muhammad Umer Aug 26 '16 at 15:18
  • @MuhammadUmer, wrong! variable is defined by var variable;. And this snippet will override variable in local scope. It can break logic which expects to access a closure or global variable. I.e: var variable = 1; function test() { var variable; if (variable === undefined){ console.log('Variable is undefined'); } else { console.log('Variable is defined: ' + variable); } } test(); // Variable is undefined – Евгений Савичев Aug 11 '17 at 16:50
0

We can check undefined as follows

var x; 

if (x === undefined) {
    alert("x is undefined");
} else {
     alert("x is defined");
}
0

The accepted answer is correct. Just wanted to add one more option. You also can use try ... catch block to handle this situation. A freaky example:

var a;
try {
    a = b + 1;  // throws ReferenceError if b is not defined
} 
catch (e) {
    a = 1;      // apply some default behavior in case of error
}
finally {
    a = a || 0; // normalize the result in any case
}

Be aware of catch block, which is a bit messy, as it creates a block-level scope. And, of course, the example is extremely simplified to answer the asked question, it does not cover best practices in error handling ;).

0

The error is telling you that x doesn’t even exist! It hasn’t been declared, which is different than being assigned a value.

var x; // declaration
x = 2; // assignment

If you declared x, you wouldn’t get an error. You would get an alert that says undefined because x exists/has been declared but hasn’t been assigned a value.

To check if the variable has been declared, you can use typeof, any other method of checking if a variable exists will raise the same error you got initially.

if(typeof x  !==  "undefined") {
    alert(x);
}

This is checking the type of the value stored in x. It will only return undefined when x hasn’t been declared OR if it has been declared and was not yet assigned.

0

The void operator returns undefined for any argument/expression passed to it. so you can test against the result (actually some minifiers change your code from undefined to void 0 to save a couple of characters)

For example:

void 0
// undefined

if (variable === void 0) {
    // variable is undefined
}
0

I use a small function to verify a variable has been declared, which really cuts down on the amount of clutter in my javascript files. I add a check for the value to make sure that the variable not only exists, but has also been assigned a value. The second condition checks whether the variable has also been instantiated, because if the variable has been defined but not instantiated (see example below), it will still throw an error if you try to reference it's value in your code.

Not instantiated - var my_variable; Instantiated - var my_variable = "";

function varExists(el) { 
  if ( typeof el !== "undefined" && typeof el.val() !== "undefined" ) { 
    return true; 
  } else { 
    return false; 
  } 
}

You can then use a conditional statement to test that the variable has been both defined AND instantiated like this...

if ( varExists(variable_name) ) { // checks that it DOES exist } 

or to test that it hasn't been defined and instantiated use...

if( !varExists(variable_name) ) { // checks that it DOESN'T exist }
0

Just do something like below:

function isNotDefined(value) {
  return typeof value === "undefined";
}

and call it like:

isNotDefined(undefined); //return true
isNotDefined('Alireza'); //return false

protected by Starx Apr 25 '12 at 8:45

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

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