3

I would like to use React's memo for a function that has a generic argument. Unfortunately the generic argument defaults to the generic and all the fancy generic deduction logic is lost (TypeScript v3.5.2). In the example below WithMemo (using React.memo) fails with:

Property 'length' does not exist on type 'string | number'.
  Property 'length' does not exist on type 'number'.

while the WithoutMemo works just as expected.

interface TProps<T extends string | number> {
  arg: T;
  output: (o: T) => string;
}

const Test = <T extends string | number>(props: TProps<T>) => {
  const { arg, output } = props;
  return <div>{output(arg)} </div>;
};

const myArg = 'a string';
const WithoutMemo = <Test arg={myArg} output={o => `${o}: ${o.length}`} />;

const MemoTest = React.memo(Test);
const WithMemo = <MemoTest arg={myArg} output={o => `${o}: ${o.length}`} />;

I've looked at this question, but I don't think it relates to my problem.

Possible solution

I've found a possible solution using generic interfaces but it seems a little crude:

const myArgStr = 'a string';
const myArgNo: number = 2;
const WithoutMemo = (
  <>
    <Test arg={myArgStr} output={o => `${o}: ${o.length}`} />
    <Test arg={myArgNo} output={o => `${o * 2}`} />
  </>
);

interface MemoHelperFn {
  <T extends string | number>(arg: TProps<T>): JSX.Element;
}

const MemoTest: MemoHelperFn = React.memo(Test);
const WithMemo = (
  <>
    <MemoTest arg={myArgStr} output={o => `${o}: ${o.length}`} />
    <MemoTest arg={myArgNo} output={o => `${o * 2}`} />
  </>
);

// Below fail as expected
const FailsWithoutMemo = (
  <>
    <Test arg={myArgNo} output={o => `${o}: ${o.length}`} />
    <Test arg={myArgStr} output={o => `${o * 2}`} />
  </>
);

const FailsWithMemo = (
  <>
    <MemoTest arg={myArgNo} output={o => `${o}: ${o.length}`} />
    <MemoTest arg={myArgStr} output={o => `${o * 2}`} />
  </>
);

Is there a more elegant idea of how to fix this?

  • Well, number doesn't have length property, so compiler is right. Your code without generic works, because it's not called at all or called only with string, not with number. To fix it you need to add check for type and call length only when string is passed. – Radosław Cybulski Jul 4 at 15:54
  • @RadosławCybulski - I don't agree. The point of the generic is to make sure that the compiler can match the arg with the output type. Adding a typeof arg === 'string' completely removes the elegance in the generic type. The example is a simplification of what I have in my typeahead package. There you can have a ton of dependencies that are decided on the generic, doing checks for input in each function would be just too painful. – Max Gordon Jul 4 at 16:08
  • 1
    Look at your code const WithMemo = <MemoTest arg={myArg} output={o => ${o}: ${o.length}} />;. This code in output requires o to has length property, compiler tells you that number doesn't. Compiler won't guess, that you'll always pass strings to this Test instance (otherwise the lambda won't work). Whole idea of generics is not to make coding easier by typing less lines, but by making coding easier by catching errors (like the one you've made) earlier. You typed code, that works for string, but not for number and you try to push it to work with number, which compiler detects. – Radosław Cybulski Jul 5 at 7:03
  • @RadosławCybulski - I guess this is an opinionated question. What I want is to figure out if I can have the generic functionality after calling the React.memo. Otherwise I could just skip the entire generic logic and just go with a custom type MyType = string | number and then check everywhere as you suggest. Again, this question is not about whether it is a good idea but if it is possible. – Max Gordon Jul 5 at 7:23
  • output: (o: any) => string; in TProps definition should work then. You might also try restricting type on the lambda itself (output={(o: string) => "${o}: ${o.length}"} and output={(o: number) => "${o * 2}"} for example). – Radosław Cybulski Jul 5 at 8:05

Your Answer

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

Browse other questions tagged or ask your own question.