4

The following example confuse me:

class MyClass
{
    public MyProp = "";
}

var object: any = null;

if (object instanceof MyClass)
    console.log(object.MyProp, object.NonExistant); // <-- No error, no intellisense

Why isn't the type guard giving me the correct type within the checked context?

5

User-defined type guards and instanceof type guards does not narrow types that are any (including union and intersection types with any) .

The only thing that will narrow an any in a type guard is using the typeof check and checking for the primitive string, bool, and number:

var something: any;
if (typeof something === "string")
{
    something.NonExistant(); // <- Error, does not exist on `string`
    something.substr(0, 10); // <- Ok
}

The other generic typeof values, function, object and undefined, does not narrow any if one would try to use them like the above example.

There is also an open issue for making it possible to narrow any to primitives within user-defined type guards, milestoned at TS 2.0.

This is a conscious design decision and not a bug

The primary motivation seems to have been that type-guarding a type is generally narrowing the possible type and we get access to more properties that we can be sure exists within the checked context. But in the case with type-guarding the special any, we already have access to all members that could possibly exists, so doing type-guarding on an any as like you expected in your example would actually limit us.

Another motivation also seems to be that there is too much crappy code out there that would break if TypeScript narrowed any's just like the other types.

Workaround

If you have a variable that can be an instance of an arbitrary class, use the type Object instead of anyand type guarding will work as expected.

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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