324

How can I determine whether an object x has a defined property y, regardless of the value of x.y?

I'm currently using

if (typeof(x.y) !== 'undefined')

but that seems a bit clunky. Is there a better way?

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610

Object has property:

If you are testing for properties that are on the object itself (not a part of its prototype chain) you can use .hasOwnProperty():

if (x.hasOwnProperty('y')) { 
  // ......
}

Object or its prototype has a property:

You can use the in operator to test for properties that are inherited as well.

if ('y' in x) {
  // ......
}
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  • 25
    Or even better — Object.prototype.hasOwnProperty.call(x, 'y'), so that property named "hasOwnProperty" would not conflict with inspection process ;) – kangax Dec 24 '09 at 14:03
  • 5
    Or even shorter — {}.hasOwnProperty.call(x, 'y'). – axmrnv Jan 27 '19 at 20:46
  • 1
80

If you want to know if the object physically contains the property @gnarf's answer using hasOwnProperty will do the work.

If you're want to know if the property exists anywhere, either on the object itself or up in the prototype chain, you can use the in operator.

if ('prop' in obj) {
  // ...
}

Eg.:

var obj = {};

'toString' in obj == true; // inherited from Object.prototype
obj.hasOwnProperty('toString') == false; // doesn't contains it physically
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18

Underscore.js or Lodash

if (_.has(x, "y")) ...

:)

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  • Nope. It's just an alias for Object.prototype.hasOwnProperty.call(x, "y"). For arrays I think you might want Array.prototype.indexOf, _.indexOf, or _.contains – nackjicholson Nov 3 '13 at 22:13
12

You can trim that up a bit like this:

if ( x.y !== undefined ) ...
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  • 16
    That would fail with x = {y:undefined} – James Dec 12 '09 at 21:59
  • 21
    Does anyone need to distinguish between "not defined" and "defined to be undefined?" – jpsimons Dec 12 '09 at 22:25
  • 16
    @darkporter I do sometimes ;) – mmm Jul 19 '13 at 19:48
  • @jpsimons for and instance "defined to be undefined" is used by Firestore when saving document data. – Viacheslav Dobromyslov Sep 10 at 2:44
6

One feature of my original code

if ( typeof(x.y) != 'undefined' ) ...

that might be useful in some situations is that it is safe to use whether x exists or not. With either of the methods in gnarf's answer, one should first test for x if there is any doubt if it exists.

So perhaps all three methods have a place in one's bag of tricks.

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  • 1
    You could always use (x && x.hasOwnProperty('y')) or (x && 'y' in x) – gnarf Aug 4 '10 at 21:50
  • I agree, testing for x should be a separate case on it's own. Also yields better error reporting. – b01 Aug 18 '11 at 14:44
  • That failed for me. If x is undefined then typeof(x.y) returns a ReferenceError rather than the string 'undefined' – Craig Dec 18 '14 at 22:40
1

Since question was regarding clunkiness of property checking, and one regular usecase for that being validation of function argument options objects, thought I'd mention a library-free short way of testing existence of multiple properties. Disclaimer: It does require ECMAScript 5 (but IMO anyone still using IE8 deserves a broken web).

function f(opts) {
  if(!["req1","req2"].every(opts.hasOwnProperty, opts)) {
      throw new Error("IllegalArgumentException");
  }
  alert("ok");
}
f({req1: 123});  // error
f({req1: 123, req2: 456});  // ok
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0

ES6+:

There is a new feature on ES6+ that you can check it like below:

if (x?.y)

Actually, the interpretor checks the existence of x and then call the y and because of putting inside if parentheses the coercion happens and x?.y converted to boolean.

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-3

Why not simply:

if (typeof myObject.myProperty == "undefined") alert("myProperty is not defined!");

Or if you expect a specific type:

if (typeof myObject.myProperty != "string") alert("myProperty has wrong type or does not exist!");
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  • 1
    Because its bad to read and not type strict. I must ask to you: why not simply x.hasOwnProperty('y')? – Fabian Picone Aug 21 '17 at 7:27

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