42

In the ES6, if I make a class and create an object of that class, how do I check that the object is that class?

I can't just use typeof because the objects are still "object". Do I just compare constructors?

Example:

class Person {
  constructor() {}
}

var person = new Person();

if ( /* what do I put here to check if person is a Person? */ ) {
  // do stuff
}

2 Answers 2

63

Can't you do person instanceof Person?

Comparing constructors alone won't work for subclasses

5
  • Yup, completely forgot about that! It works just like it would with functions (because the classes are just functions!). Thanks!
    – Ivan
    Commented Mar 8, 2015 at 2:42
  • 1
    this is not correct answer. if you have A,B,C classes and B & C extends A, then (new B()) instanceof C returns true.
    – someUser
    Commented Jan 17, 2017 at 16:17
  • 3
    @someUser: new B() instanceof A is the most reasonable definition of inheritance in javascript. If you're finding that you get that for B and C, then your issue is that you've actually made B inherit from C when you didn't intend to. How are you implementing your inheritance?
    – Eric
    Commented Jan 17, 2017 at 21:13
  • 1
    Important: instanceof does not do type checking the way that you expect similar checks to do in strongly typed languages. Instead, it does an identity check on the prototype object, and it’s easily fooled. It won’t work across execution contexts, for instance (a common source of bugs, frustration, and unnecessary limitations). For reference, an example in the wild, from bacon.js: github.com/baconjs/bacon.js/issues/296 Commented Aug 10, 2017 at 18:38
  • @Noah: that sounds more like a warning about execution contexts, as the link discusses. You can construct an equivalent case in C++ with the same problem using dynamic_cast and classes within compilation units. So this does behave like strongly-typed languages, even if you don't expect that from them either.
    – Eric
    Commented Aug 11, 2017 at 2:18
6

Just a word of caution, the use of instanceof seems prone to failure for literals of built-in JS classes (e.g. String, Number, etc). In these cases it might be safer to use typeof as follows:

typeof("foo") === "string";

Refer to this thread for more info.

2
  • You could add double validation
    – daronwolff
    Commented Jun 12, 2017 at 15:12
  • 1
    Wrong answer, don't use this. It will display object for certain objects i.g. console.log(typeof new Array()); // object
    – basickarl
    Commented Sep 10, 2019 at 12:25

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