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I have two types defined like this:

type Type1 = 'A' | 'B' | 'C';
type Type2 = 'D' | 'B' | 'F';

I have create 2 objects using these types like so:

const TYPE1 : { [ id in Type1 ] : {
  label : string;
  image : string;
} } = {
  A: {
    label: 'a',
    image: 'a.jpg',
  },
  B: {
    label: 'b',
    image: 'b.png',
  },
  C: {
    label: 'c',
    image: 'c.gif',
  },
};

const TYPE2 : { [ id in Type2 ] : {
  label : string;
  image : string;
  val : number;
} } = {
  D: {
    label: 'd',
    image: 'd.jpg',
    val: 0,
  },
  B: {
    label: 'b',
    image: 'b.png',
    val: 1,
  },
  F: {
    label: 'f',
    image: 'f.gif',
    val: 2,
  },
};

Since these 2 objects are very similar I want to create a generic function that can operate on both, so I was hoping to do this:

function doStuff<T>( typeIn : {[key in T] : { label : string; image : string } } ) {
  // use T here for stuff 
}

This doesn't work as I'm getting the following error:

Type 'T' is not assignable to type 'string | number | symbol'. Type 'T' is not assignable to type 'symbol'.(2322)

I can make the function work if I change the function signature to:

function doStuff( typeIn : {[key : string] : { label : string; image : string } } ) {
  //oh oh, I no longer know if typeIn is using Type1 or Type2
}

Is there a way I can declare typeIn using the generic T?

1 Answer 1

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The immediate problem is that you are not constraining your generic type T to something the compiler recognizes as key-like. You can use PropertyKey (which is a synonym for string | number | symbol) and the error will go away:

function doStuff<T extends PropertyKey>(
  typeIn: { [key in T]: { label: string; image: string } }
) { }

And you can call doStuff() as you intend:

doStuff(TYPE1); // T is inferred as Type1
doStuff(TYPE2); // T is inferred as Type2

Okay, hope that helps; good luck!

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