3

I have a function that takes an argument object and returns an object. The returned object will contain a "bar" key depending if the "includeBar" key is provided as an option. I tried the following overload

interface Options {
    includeBar: boolean
}

interface Return {
    foo: string;
    bar: string;
}

function someFunc(opt: Options & { includeBar: true }): Return;
function someFunc(opt: Options & { includeBar: false }): Omit<Return, "bar">;
function someFunc(opt: any): any {
    // ...
}

const { bar: bar1 } = someFunc({ includeBar: true }); // OK bar1 exists
const { bar: bar2 } = someFunc({ includeBar: false }); // OK bar2 does not exists

It works fine until I pass a declared object to myFunc:

const options: Options = {
    includeBar: true
}

const { bar } = someFunc(options); // TS Error Types of property 'includeBar' are incompatible. Type 'boolean' is not assignable to type 'false'.

Here is a sample TS playground

I saw this similar question but the answer has the same problem once the function is given a declared object.

1 Answer 1

1

You need to make the following changes to your declaration of options...

const options = {
    includeBar: true
} as const;

Then Typescript can tell that

  1. options has a narrower type than Options
  2. options won't have had its values changed at runtime since declaration.
3
  • I would never had thought about that thanks, though it's limitating: say that my options object comes from a wrapping function: function wrappingFunc(options: Options) { return myFunc(options) }. I can't use the const syntax here.
    – htulipe
    Commented May 3, 2021 at 12:11
  • 1
    I sketched out an improved function signature for your overloads which allows the narrower type to be preserved through the call stack which you can see here. However, I didn't share that originally as it was a different problem.
    – cefn
    Commented May 3, 2021 at 12:52
  • Indeed it is but thanks for sharing anyway
    – htulipe
    Commented May 3, 2021 at 13:39

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