1827

Which method of checking if a variable has been initialized is better/correct? (Assuming the variable could hold anything (string, int, object, function, etc.))

if (elem) { // or !elem

or

if (typeof(elem) !== 'undefined') {

or

if (elem != null) {
  • 5
    if you want to know whether foo is declared, either typeof foo === 'undefined' or typeof foo === typeof undefined – user719662 Nov 22 '17 at 21:00
  • 1
    The highly upvoted answers don't work for variables that are declared but have the value undefined. The correct answer is this one: stackoverflow.com/a/36432729/772035 – Paul Jul 23 '19 at 22:50
  • @Paulpro, the version using hasOwnProperty('bar') doesn't have the same deficiencies as the others, but would require some adjustment for Node (replace window with global). – oligofren Sep 24 '19 at 6:17
  • @Paulpro Indeed, but as I was pondering that before you replied, I came to the conclusion that it's not really a practical problem. When you are dealing with block or function scoped variables, it's usually code you own or have write access to, so you'll have a runtime error in any case which is fixable. Whereas the usual problem with variables that has not beed defined (doesn't exist) usually lies in code outside of your control, so you need a way of detecting it. So it's the 80/20 solution. – oligofren Sep 24 '19 at 9:28

26 Answers 26

3123

You want the typeof operator. Specifically:

if (typeof variable !== 'undefined') {
    // the variable is defined
}
| improve this answer | |
  • 35
    This looks a good solution, but can you explain why this works? – Morgan Cheng Feb 6 '09 at 5:15
  • 46
    Actually, you should check that the object is what you need it to be. So that would be if( typeof console == 'object' ) { // variable is what I need it to be } – staticsan Feb 6 '09 at 6:14
  • 59
    @George IV: "just do `if( variable ) " -- um, no, that fails for false and 0. – Jason S May 13 '09 at 15:53
  • 17
    'if( variable )' also fails for testing for the existence of object properties. – scotts May 4 '10 at 22:40
  • 55
    @geowa4 Actually, that will throw an error if the variable is undefined. – kevinji Apr 19 '11 at 4:59
875

The typeof operator will check if the variable is really undefined.

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

The typeof operator, unlike the other operators, doesn't throw a ReferenceError exception when used with an undeclared variable.

However, do note that typeof null will return "object". We have to be careful to avoid the mistake of initializing a variable to null. To be safe, this is what we could use instead:

if (typeof variable === 'undefined' || variable === null) {
    // variable is undefined or null
}

For more info on using strict comparison === instead of simple equality ==, see:
Which equals operator (== vs ===) should be used in JavaScript comparisons?

| improve this answer | |
  • 2
    if(! variable_here){ // your code here. }; can't tell if the variable is false or undefined – boh Mar 17 '13 at 23:25
  • 5
    if(! variable_here) will break in many cases. If the variable is 0 or false it will fail. That's not what you want. – Cory Danielson Apr 16 '13 at 6:38
  • 2
    can't decide whether to up vote this. Strictly speaking the typeof foo === "undefined" is correct, and better than the top voted answer, but the additional notes just make this answer confusing. – Alnitak Apr 16 '13 at 7:02
  • 1
    @StevenPenny Check the timeline. The top answer was merged from another question after this answer was posted – Rob Dec 19 '16 at 23:25
  • 1
    This answer doesn't work. This is the only answer here that works: stackoverflow.com/a/36432729/772035 – Paul Jul 23 '19 at 22:49
237

In many cases, using:

if (elem) { // or !elem

will do the job for you!... this will check these below cases:

  1. undefined: if the value is not defined and it's undefined
  2. null: if it's null, for example, if a DOM element not exists...
  3. empty string: ''
  4. 0: number zero
  5. NaN: not a number
  6. false

So it will cover off kind of all cases, but there are always weird cases which we'd like to cover as well, for example, a string with spaces, like this ' ' one, this will be defined in javascript as it has spaces inside string... for example in this case you add one more check using trim(), like:

if(elem) {

if(typeof elem === 'string' && elem.trim()) {
///

Also, these checks are for values only, as objects and arrays work differently in Javascript, empty array [] and empty object {} are always true.

I create the image below to show a quick brief of the answer:

undefined, null, etc

| improve this answer | |
  • 2
    @Alireza, nice! Your answer will help a lot of people out there. I already memorized these falsy values, the only thing that I wasn't sure was about []. – Thiago Yoithi Dec 1 '17 at 20:01
  • 14
    I get a "ReferenceError: elem is not defined" – ropo Nov 19 '18 at 10:05
  • 3
    @ropo, it's because you even didn't define the elem to check what it's , if it's your case, you need to check it with typeof(elem)==="string" which is mentioned already... – Alireza Nov 19 '18 at 12:09
  • 22
    Then the answer is misleading when it says if(elem) checks for undefined (while it returns not defined error), isn't it? – Fanky May 14 '19 at 14:34
  • 1
    Give me a use case for checking if a variable is undefined and if is defined with an undefined value? Some of you are grasping at straws and attempting to look brilliant but if you are setting a value as undefined and checking for that value obviously it will return false or you need to change your code, smh.... this answer is correct!!!!! – almcaffee Nov 7 '19 at 17:25
210

In JavaScript, a variable can be defined, but hold the value undefined, so the most common answer is not technically correct, and instead performs the following:

if (typeof v === "undefined") {
   // no variable "v" is defined in the current scope
   // *or* some variable v exists and has been assigned the value undefined
} else {
   // some variable (global or local) "v" is defined in the current scope
   // *and* it contains a value other than undefined
}

That may suffice for your purposes. The following test has simpler semantics, which makes it easier to precisely describe your code's behavior and understand it yourself (if you care about such things):

if ("v" in window) {
   // global variable v is defined
} else {
   // global variable v is not defined
}

This, of course, assumes you are running in a browser (where window is a name for the global object). But if you're mucking around with globals like this you're probably in a browser. Subjectively, using 'name' in window is stylistically consistent with using window.name to refer to globals. Accessing globals as properties of window rather than as variables allows you to minimize the number of undeclared variables you reference in your code (for the benefit of linting), and avoids the possibility of your global being shadowed by a local variable. Also, if globals make your skin crawl you might feel more comfortable touching them only with this relatively long stick.

| improve this answer | |
  • 7
    This only checks if the variable was declared globally. If you are coding properly, then you are limiting your global vars. It will report false for local vars: (function() { var sdfsfs = 10; console.log( "sdfsfs" in window); })() ` – Eddie Monge Jr Jun 5 '13 at 23:00
  • 2
    This is the best f$#^%ing answer. I was at wit's end on this trying to figure out how to account for exactly this corner case. Brilliant. Had no idea you could do this. – temporary_user_name Jan 22 '14 at 3:05
  • 1
    Heads-up: your answer has been migrated here from stackoverflow.com/questions/519145/… – Shog9 Jul 25 '14 at 16:33
  • For Angular users: Unfortunately, it doesn't seem to be allowed in an ng-if statement. – qwertzguy Feb 10 '16 at 10:37
  • ...perfect blueprint for checks along scope. have you any performance indication, if "in window" or "(typeof variable === 'undefined' || variable === null)". Actually I am interested in a hard fact test and not in argumented potential rationale (which I could do myself: second clause has more operations -> worse performance) – Quicker Mar 11 '16 at 11:39
120

In the majority of cases you would use:

elem != null

Unlike a simple if (elem), it allows 0, false, NaN and '', but rejects null or undefined, making it a good, general test for the presence of an argument, or property of an object.


The other checks are not incorrect either, they just have different uses:

  • if (elem): can be used if elem is guaranteed to be an object, or if false, 0, etc. are considered "default" values (hence equivalent to undefined or null).

  • typeof elem == 'undefined' can be used in cases where a specified null has a distinct meaning to an uninitialised variable or property.

    • This is the only check that won't throw an error if elem is not declared (i.e. no var statement, not a property of window, or not a function argument). This is, in my opinion, rather dangerous as it allows typos to slip by unnoticed. To avoid this, see the below method.

Also useful is a strict comparison against undefined:

if (elem === undefined) ...

However, because the global undefined can be overridden with another value, it is best to declare the variable undefined in the current scope before using it:

var undefined; // really undefined
if (elem === undefined) ...

Or:

(function (undefined) {
    if (elem === undefined) ...
})();

A secondary advantage of this method is that JS minifiers can reduce the undefined variable to a single character, saving you a few bytes every time.

| improve this answer | |
  • 20
    I'm shocked that you can override undefined. I don't even think that's worth mentioning in the answer. Probably the single worst acceptable variable name in all of Javascript. – Cory Danielson Apr 16 '13 at 6:53
  • 2
    This causes an exception and requires you to use window. before the variable if used in the global context...this is not the best way. – Alex W Sep 9 '13 at 14:42
  • 4
    Because of this overriding issue you should ALWAYS use void(0) instead of undefined. – Bartłomiej Zalewski Oct 23 '14 at 10:29
  • +1 since this answer points out that sometimes you may actually want to identify false, 0, etc. as invalid values. – rinogo Jun 26 '18 at 23:41
80

Check if window.hasOwnProperty("varname")

An alternative to the plethora of typeof answers;

Global variables declared with a var varname = value; statement in the global scope

can be accessed as properties of the window object.

As such, the hasOwnProperty() method, which

returns a boolean indicating whether the object has the specified property as its own property (as opposed to inheriting it)

can be used to determine whether

a var of "varname" has been declared globally i.e. is a property of the window.

// Globally established, therefore, properties of window
var foo = "whatever", // string
    bar = false,      // bool
    baz;              // undefined
//  window.qux does not exist

console.log( [
    window.hasOwnProperty( "foo" ), // true
    window.hasOwnProperty( "bar" ), // true
    window.hasOwnProperty( "baz" ), // true
    window.hasOwnProperty( "qux" )  // false
] );

What's great about hasOwnProperty() is that in calling it, we don't use a variable that might as yet be undeclared - which of course is half the problem in the first place.

Although not always the perfect or ideal solution, in certain circumstances, it's just the job!

Notes

The above is true when using var to define a variable, as opposed to let which:

declares a block scope local variable, optionally initializing it to a value.

is unlike the var keyword, which defines a variable globally, or locally to an entire function regardless of block scope.

At the top level of programs and functions, let, unlike var, does not create a property on the global object.

For completeness: const constants are, by definition, not actually variable (although their content can be); more relevantly:

Global constants do not become properties of the window object, unlike var variables. An initializer for a constant is required; that is, you must specify its value in the same statement in which it's declared.

The value of a constant cannot change through reassignment, and it can't be redeclared.

The const declaration creates a read-only reference to a value. It does not mean the value it holds is immutable, just that the variable identifier cannot be reassigned.

Since let variables or const constants are never properties of any object which has inherited the hasOwnProperty() method, it cannot be used to check for their existence.

Regarding the availability and use of hasOwnProperty():

Every object descended from Object inherits the hasOwnProperty() method. [...] unlike the in operator, this method does not check down the object's prototype chain.

| improve this answer | |
  • 1
    This an awesome alternative and should be on the top upvoted of this question. Please simplify the answer headline with a working example that returns true (e.g. window.hasOwnProperty('console') or var hop = "p";window.hasOwnProperty('hop')). – CPHPython Sep 14 '16 at 11:38
  • 2
    Finally something that does not throw an error because of accessing a member which does not exist … Something all the typeof answers simply overlook. – Zelphir Kaltstahl May 17 '17 at 8:17
  • 2
    This answer is outdated -- per standard ECMAScript you can define variables with let where these variables aren't available as properties of the window [or any other available] object. hasOwnProperty tests for presence of properties, not variables and thus cannot be used to detect variables defined by let. – amn Jun 15 '19 at 14:55
  • 1
    @amn The answer remains true regarding the use of var and is in that regard not outdated. I have however added a note outlining how the use of let and const differs from that of var. Thanks for your inspiration; together we rise :) – Fred Gandt Jun 15 '19 at 16:08
  • 2
    @amn I have rewritten the answer (hopefully for the last time) to make more clear that hasOwnProperty can only be used in the prescribed manner to check for the existence of var variables. It reads okay to me. – Fred Gandt Jun 17 '19 at 18:31
68

How to check if a variable exists

This is a pretty bulletproof solution for testing if a variable exists and has been initialized :

var setOrNot = typeof variable !== typeof undefined;

It is most commonly used in combination with a ternary operator to set a default in case a certain variable has not been initialized :

var dark = typeof darkColor !== typeof undefined ? darkColor : "black";

Problems with encapsulation

Unfortunately, you cannot simply encapsulate your check in a function.

You might think of doing something like this :

function isset(variable) {
    return typeof variable !== typeof undefined;
}

However, this will produce a reference error if you're calling eg. isset(foo) and variable foo has not been defined, because you cannot pass along a non-existing variable to a function :

Uncaught ReferenceError: foo is not defined


Testing whether function parameters are undefined

While our isset function cannot be used to test whether a variable exists or not (for reasons explained hereabove), it does allow us to test whether the parameters of a function are undefined :

var a = '5';

var test = function(x, y) {
    console.log(isset(x));
    console.log(isset(y));
};

test(a);

// OUTPUT :
// ------------
// TRUE
// FALSE

Even though no value for y is passed along to function test, our isset function works perfectly in this context, because y is known in function test as an undefined value.

| improve this answer | |
41

There is another short hand way to check this, when you perform simple assignments and related checks. Simply use Conditional (Ternary) Operator.

var values = typeof variable !== 'undefined' ? variable : '';

Also this will be helpful, when you try to declare the Global variable with instance assignment of the reference variable.

If you wanted to check variable shouldn't be undefined or null. Then perform below check.

When the variable is declared, and if you want to check the value, this is even Simple: and it would perform undefined and null checks together.

var values = variable ? variable : '';
| improve this answer | |
  • the answer as it is flat out wrong. typeof variable always returns a string, thus is never false. e.g. if typeof(booooo) is "undefined" then typeof(typeof boooooo) is "string" and typeof boooooo && true is always true. @John-Slegers' answer is about as abbreviated as you can get with typeof. – mpag May 5 '17 at 20:05
  • Its absolutely correct answer. Here is an working Fiddle. And i don't know which scenario you are talking about. The questions is about checking variable existence. – RajeshKdev May 6 '17 at 5:11
  • @mpag Don't Say Flat wrong. Prove It. Finding a mistake is real easy, instead you can provide Good answers here!!!. If the answer is flat wrong 28 programmers wouldn't have up-voted without checking my answer. Since there are many reputed answers here they could have up-voted that, not this. – RajeshKdev May 6 '17 at 5:20
  • Actually the second piece of code, is not to check same as above condition. I thought people would understand by this line If you wanted to check variable shouldn't be undefined or null., By this comment, its clearly stating, its not to perform the variable declaration check. that's to check variable value. – RajeshKdev May 9 '17 at 5:56
  • 1
    your 2nd check will fail with 0 value – Fareed Alnamrouti May 30 '17 at 8:30
37

Short way to test a variable is not declared (not undefined) is

if (typeof variable === "undefined") {
  ...
}

I found it useful for detecting script running outside a browser (not having declared window variable).

| improve this answer | |
  • is this the "canonical way" that is portable? – Jason Jul 18 '19 at 14:44
  • 3
    This is wrong. window.bar=undefined is defined and set to a value. Your answer fails to detect the difference between this and if the variable does not exist. If you did this.hasOwnProperty('bar') it might have worked. – oligofren Sep 24 '19 at 6:15
  • this code doesn't work and you can verify this by using any browser console – ha9u63ar Feb 13 at 8:59
  • 1
    Consider const x = 0; (() => console.log(x, this.hasOwnProperty('x')))();. Variable x is defined but false is returned... – user2878850 Mar 5 at 22:55
29

It depends if you just care that the variable has been defined or if you want it to have a meaningful value.

Checking if the type is undefined will check if the variable has been defined yet.

=== null or !== null will only check if the value of the variable is exactly null.

== null or != null will check if the value is undefined or null.

if(value) will check if the variable is undefined, null, 0, or an empty string.

| improve this answer | |
12

The highest answer is correct, use typeof.

However, what I wanted to point out was that in JavaScript undefined is mutable (for some ungodly reason). So simply doing a check for varName !== undefined has the potential to not always return as you expect it to, because other libs could have changed undefined. A few answers (@skalee's, for one), seem to prefer not using typeof, and that could get one into trouble.

The "old" way to handle this was declaring undefined as a var to offset any potential muting/over-riding of undefined. However, the best way is still to use typeof because it will ignore any overriding of undefined from other code. Especially if you are writing code for use in the wild where who knows what else could be running on the page...

| improve this answer | |
  • 1
    The point is moot, because if varName is undefined then varName !== undefined will just cause a ReferenceError. The mutability of undefined won't matter. – Wutaz Mar 27 '14 at 23:53
  • Heads-up: your answer has been migrated here from stackoverflow.com/questions/519145/… – Shog9 Jul 25 '14 at 16:33
  • 1
    In newer Javascript versions undefined is an read only property. However to be bulletproof you can use typeof mvVar === typeof void 0. void 0 returns undefined always. – kwarnke Sep 20 '17 at 10:32
11
if (typeof console != "undefined") {    
   ...
}

Or better

if ((typeof console == "object") && (typeof console.profile == "function")) {    
   console.profile(f.constructor);    
}

Works in all browsers

| improve this answer | |
  • 3
    Why the latter is better in your opinion? – skalee Feb 17 '13 at 3:32
  • 3
    @skalee I agree the latter is better. This for the simple reason that you check if the types are the ones you want before using them. – Broxzier Jul 10 '13 at 14:31
  • Heads-up: your answer has been migrated here from stackoverflow.com/questions/519145/… – Shog9 Jul 25 '14 at 16:33
10

To contribute to the debate, if I know the variable should be a string or an object I always prefer if (!variable), so checking if its falsy. This can bring to more clean code so that, for example:

if (typeof data !== "undefined" && typeof data.url === "undefined") {
    var message = 'Error receiving response';
    if (typeof data.error !== "undefined") {
        message = data.error;
    } else if (typeof data.message !== "undefined") {
        message = data.message;
    }
    alert(message); 
}

..could be reduced to:

if (data && !data.url) {
  var message = data.error || data.message || 'Error receiving response';
  alert(message)
} 

| improve this answer | |
  • This is not what the OP asked. If data.url is equal to '' your solution would consider it undefined, when it is in fact defined as containing an empty string. – Demonblack Jan 14 '18 at 23:01
  • 1
    I agree is not what has been asked, and you are right: the empty string '' would be considered undefined. But I posted this because I thought it could be useful on the debate that has been created among different answers. And in the example, as well as in many other cases, you just want to print a string if there is actually content, so it's ok to take advantage of the fact the javascript considers falsy both empty string and undefined – de3 Jan 19 '18 at 16:18
8

It is difficult to distinguish between undefined and null. Null is a value you can assign to a variable when you want to indicate that the variable has no particular value. Undefined is a special value which will be the default value of unassigned variables.


var _undefined;
var _null = null;

alert(_undefined); 
alert(_null); 
alert(_undefined == _null);
alert(_undefined === _null);

| improve this answer | |
  • 1
    Would be helpful to show inline the output of each alert. – demisx Jan 2 '15 at 6:17
  • @demisx Agreed, but instead of suggesting the edit, why not just make it? The option is there for a reason. Some may consider it rude; I consider it efficient - so edited the answer myself (pending review). – Fred Gandt Jun 12 '15 at 12:32
  • 1
    @Fred - I looked at the edit history and can guess why your edits were rejected... rather than just adding lines to show what the output would be, as demisx suggested, you significantly changed what Jith had posted. – Stephen P Jul 2 '15 at 21:15
8

Null is a value in JavaScript and typeof null returns "object"

Therefore, accepted answer will not work if you pass null values. If you pass null values, you need to add an extra check for null values:

if ((typeof variable !== "undefined") && (variable !== null))  
{
   // the variable is defined and not null
}
| improve this answer | |
7

The most robust 'is it defined' check is with typeof

if (typeof elem === 'undefined')

If you are just checking for a defined variable to assign a default, for an easy to read one liner you can often do this:

elem = elem || defaultElem;

It's often fine to use, see: Idiomatic way to set default value in javascript

There is also this one liner using the typeof keyword:

elem = (typeof elem === 'undefined') ? defaultElem : elem;
| improve this answer | |
7

you can use the typeof operator.

For example,

var dataSet;

alert("Variable dataSet is : " + typeof dataSet);

Above code snippet will return the output like

variable dataSet is : undefined.

| improve this answer | |
7

To check if a variable has been declared/set I did this dirty trick.

I haven't found a way to extract the code to a function, even with eval.

"use strict";

// var someVar;

var declared;
try {
  someVar;
  declared = true;
} catch(e) {
  declared = false;
}

if (declared) {
  console.log("someVar is declared; now has the value: " + someVar);
} else {
  console.log("someVar is not declared");
}
| improve this answer | |
  • What do you mean by "extract the code to a function"? – Melab Jan 26 at 0:31
7

These answers (aside from the Fred Gandt solution ) are all either incorrect or incomplete.

Suppose I need my variableName; to carry an undefined value, and therefore it has been declared in a manner such as var variableName; which means it's already initialized; - How do I check if it's already declared?

Or even better - how do I immediately check if "Book1.chapter22.paragraph37" exists with a single call, but not rise a reference error?

We do it by using the most powerful JasvaScript operator, the in operator.:

"[variable||property]" in [context||root] 
>> true||false

In times of AJAX peaking popularity I've written a method (later named) isNS() which is capable of determining if the namespace exists including deep tests for property names such as "Book1.chapter22.paragraph37" and a lot more.

But since it has been previously published and because of its great importance it deserves to be published in a separate thread I will not post it here but will provide keywords (javascript + isNS ) which will help you locate the source code, backed with all the necessary explanations.

| improve this answer | |
  • 1
    The in operator only tests for property existence, and not all variables are properties -- const and let declarations are not (and const aren't even, well, variables). – amn Dec 3 '18 at 15:35
  • 1
    const and let were standardized with ECMAScript 2015, which was published more than 3 years ago and has since seen good adoption by the usual suspects and is used rather pervasively today, dare I say -- there is more than 2 million occurrences of "const" on Github in JS files. – amn Dec 5 '18 at 15:12
  • Yes, "variable" -- exactly. Which is why I commented on your answer, pointing out that you cannot use the in operator to generally test whether a variable exists, because "const and let are not [properties]" -- while const indeed can be said to introduce a constant reference, as opposed to a variable reference, let, on the other hand, does actually introduce a variable reference -- it is, in other words, by any measure, a variable and your answer is incorrect in implying that you can test whether a variable defined with let exists by using the in operator -- you can't. – amn Jun 15 '19 at 14:49
  • ECMAScript 6 specification defines the JavaScript language, not you nor a Web browser. That's why it's called a specification -- it unambiguously specifies the language. Your answer is at best outdated, at worst it intentionally omits what you consider irrelevant, while it is very much relevant. Quoting the linked spec, "let and const declarations define variables". These constructs are not accessible as properties of the window object, I don't know how to make this more clear to you. – amn Jun 16 '19 at 11:28
  • The answer does not cover all cases of variables. Specifically, it does not cover variables defined with the let keyword. That's all I was pointing out. – amn Jun 17 '19 at 7:33
7

I use two different ways depending on the object.

if( !variable ){
  // variable is either
  // 1. '';
  // 2. 0;
  // 3. undefined;
  // 4. null;
  // 5. false;
}

Sometimes I do not want to evaluate an empty string as falsey, so then I use this case

function invalid( item ){
  return (item === undefined || item === null);
}

if( invalid( variable )){
  // only here if null or undefined;
}

If you need the opposite, then in the first instance !variable becomes !!variable, and in the invalid function === become != and the function names changes to notInvalid.

| improve this answer | |
6

In the particular situation outlined in the question,

typeof window.console === "undefined"

is identical to

window.console === undefined

I prefer the latter since it's shorter.

Please note that we look up for console only in global scope (which is a window object in all browsers). In this particular situation it's desirable. We don't want console defined elsewhere.

@BrianKelley in his great answer explains technical details. I've only added lacking conclusion and digested it into something easier to read.

| improve this answer | |
5

My preference is typeof(elem) != 'undefined' && elem != null.

However you choose, consider putting the check in a function like so

function existy (x) {
    return typeof (x) != 'undefined' && x != null;
}

If you don't know the variable is declared then continue with typeof (x) != 'undefined' && x != null;

Where you know the variable is declared but may not be existy, you could use

existy(elem) && doSomething(elem);

The variable you are checking may be a nested property sometimes. You can use prop || {} to go down the line checking existance to the property in question:

var exists = ((((existy(myObj).prop1||{}).prop2||{}).prop3||{})[1]||{}).prop4;

After each property use (...' || {}').nextProp so that a missing property won't throw an error.

Or you could use existy like existy(o) && existy(o.p) && existy(o.p.q) && doSomething(o.p.q)

| improve this answer | |
  • If you put it in a function, it’s redundant. typeof (x) != 'undefined' && x != null is equivalent to x != null when x is declared. – Ry- Jun 1 '19 at 4:12
5

Try-catch

If variable was not defined at all, you can check this without break code execution using try-catch block as follows (you don't need to use strict mode)

try{
  notDefinedVariable;
} catch(e) {
  console.log('detected: variable not exists');
}

console.log('but the code is still executed');

notDefinedVariable; // without try-catch wrapper code stops here

console.log('code execution stops. You will NOT see this message on console');

BONUS: (referring to other answers) Why === is more clear than == (source)

if( a == b )

Enter image description here

if( a === b )

Enter image description here

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  • 3
    FYI, (a == b) placed onto Game of Life grid was not all that exciting. – johnsnails May 29 at 11:43
3

It depends on the situation. If you're checking for something that may or may not have been defined globally outside your code (like jQuery perhaps) you want:

if (typeof(jQuery) != "undefined")

(No need for strict equality there, typeof always returns a string.) But if you have arguments to a function that may or may not have been passed, they'll always be defined, but null if omitted.

function sayHello(name) {
    if (name) return "Hello, " + name;
    else return "Hello unknown person";
}
sayHello(); // => "Hello unknown person"
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1

I'm surprised this wasn't mentioned yet...

here are a couple of additional variations using this['var_name']

the benefit of using this method that it can be used before a variable is defined.

if (this['elem']) {...}; // less safe than the res but works as long as you're note expecting a falsy value
if (this['elem'] !== undefined) {...}; // check if it's been declared
if (this['elem'] !== undefined && elem !== null) {...}; // check if it's not null, you can use just elem for the second part

// these will work even if you have an improper variable definition declared here
elem = null; // <-- no var here!! BAD!
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  • This is wrong. window.bar=undefined is defined and set to a value. Your answer fails to detect the difference between this and if the variable does not exist. If you did this.hasOwnProperty('bar') it might have worked. – oligofren Sep 24 '19 at 6:14
0

You could use a try...catch block like following:

var status = 'Variable exists'

try {
    myVar
} catch (ReferenceError) {
    status = 'Variable does not exist'
}

console.log(status)

A disadvantage is you cannot put it in a function as it would throw a ReferenceError

function variableExists(x) {
  var status = true
  try {
      x
  } catch (ReferenceError) {
      status = false
  }
  
  return status
}

console.log(variableExists(x))

Edit:

If you were working in front-end Javascript and you needed to check if a variable was not initialized (var x = undefined would count as not initialized), you could use:

function globalVariableExists(variable) {
  if (window[variable] != undefined) {
    return true
  }
  
  return false
}

var x = undefined

console.log(globalVariableExists("x"))

console.log(globalVariableExists("y"))

var z = 123

console.log(globalVariableExists("z"))

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