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I'm currently learning how to use TypeScript correctly, and I can't find any references that explain how to declare an interface/type indexed by a string and containing a couple of optional properties.

Here is the code I'm trying to use :

interface MyInterface {
    [key: string]: string;
    foo: string; // <-- Works fine
    bar?: string; // <-- Error, because the property might be undefined ?
}

Why is this syntax not valid for the optional property ? Is it even possible using TypeScript to achieve this ?

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  • You could enable the --exactOptionalPropertyTypes compiler option as shown here to ensure that nobody is allowed to write undefined to the bar property. Does that fully address the question? If so I'll write up an answer explaining; if not, what am I missing?
    – jcalz
    Jul 24, 2023 at 16:16
  • Adding 'undefined' on the key as mentioned below solved the problem so I'll try not to modify the compiler options :) Jul 24, 2023 at 17:12

1 Answer 1

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The given key 1 is considered for all keys, if you want any value to be undefined, you must give undefined type to the first one.

interface MyInterface {
   [key: string]: string | undefined;
   foo: string;
   bar?: string;
}

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