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`any` Considered Harmful, Except For These Cases

Matt Pocock
Matt PocockMatt is a well-regarded TypeScript expert known for his ability to demystify complex TypeScript concepts.

any is an extremely powerful type in TypeScript. It lets you treat a value as if you were in JavaScript, not TypeScript. This means that it disables all of TypeScript's features - type checking, autocomplete, and safety.

const myFunction = (input: any) => {
  input.someMethod();
};

myFunction("abc"); // This will fail at runtime!

Using any is rightly considered harmful by most of the community. There are ESLint rules to prevent its use. This can turn developers off using any entirely.

However, there are a few advanced cases where any is always the right choice. Here are some of them:

Type Argument Constraints

Let's imagine we wanted to implement the ReturnType utility in TypeScript. This utility takes a function type and returns the type of its return value.

We need to create a generic type which takes a function type as a type argument. If we restricted ourselves to not use any, we might use unknown:

type ReturnType<T extends (...args: unknown[]) => unknown> =
  // Not important for our explanation:
  T extends (...args: unknown[]) => infer R ? R : never;

It's not important to understand all of this code, only the constraint - T extends (...args: unknown[]) => unknown. What we're saying here is that only functions which accept an arguments array of unknown[] and return unknown are allowed.

It seems to work fine for functions which have no arguments:

const myFunction = () => {
  console.log("Hey!");
};

type Result = ReturnType<typeof myFunction>;
type Result = void

But it stops working as soon as we add an argument:

const myFunction = (input: string) => {
  console.log("Hey!");
};

type Result = ReturnType<typeof myFunction>;
Type '(input: string) => void' does not satisfy the constraint '(...args: unknown[]) => unknown'. Types of parameters 'input' and 'args' are incompatible. Type 'unknown' is not assignable to type 'string'.2344
Type '(input: string) => void' does not satisfy the constraint '(...args: unknown[]) => unknown'. Types of parameters 'input' and 'args' are incompatible. Type 'unknown' is not assignable to type 'string'.

In fact, it only works if we change the parameter of our function to input: unknown:

const myFunction = (input: unknown) => {
  console.log("Hey!");
};

type Result = ReturnType<typeof myFunction>;
type Result = void

So accidentally, we've created a ReturnType function that only works on functions which accept unknown as an argument. This is not what we wanted. We wanted it to work on any function.

The solution is to use any[] as the type argument constraint:

type ReturnType<T extends (...args: any[]) => any> =
  T extends (...args: any[]) => infer R ? R : never;

const myFunction = (input: string) => {
  console.log("Hey!");
};

type Result = ReturnType<typeof myFunction>;
type Result = void

Now it works as expected. We're declaring that we don't care what types the function accepts - it could be anything.

The reason this is safe is because we're deliberately declaring a wide type. We're saying "I don't care what the function accepts, as long as it's a function". This is a safe use of any.

Returning Conditional Types From Generic Functions

In some places, TypeScript's narrowing abilites are not as good as we'd like them to be. Let's say we want to create a function which returns different types based on a condition:

const youSayGoodbyeISayHello = (
  input: "hello" | "goodbye"
) => {
  if (input === "goodbye") {
    return "hello";
  } else {
    return "goodbye";
  }
};

const result = youSayGoodbyeISayHello("hello");
const result: "hello" | "goodbye"

This function isn't really doing what we want it to. We want it to return the type "goodbye" when we pass in "hello". But currently, result is typed as "hello" | "goodbye".

We can fix this by using a conditional type:

const youSayGoodbyeISayHello = <
  TInput extends "hello" | "goodbye"
>(
  input: TInput
): TInput extends "hello" ? "goodbye" : "hello" => {
  if (input === "goodbye") {
    return "hello";
  } else {
    return "goodbye";
  }
};

const goodbye = youSayGoodbyeISayHello("hello");
const goodbye: "goodbye"
const hello = youSayGoodbyeISayHello("goodbye");
const hello: "hello"

We've added a conditional type to the return type of the function which mirrors our runtime logic. If TInput, inferred from the runtime argument input, is "hello", we return "goodbye". Otherwise, we return "hello".

But there's a problem. I've deliberately disabled the errors in the snippet above. Let's see what happens when we enable them:

const youSayGoodbyeISayHello = <
  TInput extends "hello" | "goodbye"
>(
  input: TInput
): TInput extends "hello" ? "goodbye" : "hello" => {
  if (input === "goodbye") {
    return "hello";
Type '"hello"' is not assignable to type 'TInput extends "hello" ? "goodbye" : "hello"'.2322
Type '"hello"' is not assignable to type 'TInput extends "hello" ? "goodbye" : "hello"'. } else { return "goodbye";
Type '"goodbye"' is not assignable to type 'TInput extends "hello" ? "goodbye" : "hello"'.2322
Type '"goodbye"' is not assignable to type 'TInput extends "hello" ? "goodbye" : "hello"'. } };

Ouch. TypeScript doesn't seem to be matching up the conditional type with the runtime logic. "hello" or "goodbye" can't be returned from the function.

We can fix this by using as, and forcing it to be the correct conditional type:

const youSayGoodbyeISayHello = <
  TInput extends "hello" | "goodbye"
>(
  input: TInput
): TInput extends "hello" ? "goodbye" : "hello" => {
  if (input === "goodbye") {
    return "hello" as TInput extends "hello"
      ? "goodbye"
      : "hello";
  } else {
    return "goodbye" as TInput extends "hello"
      ? "goodbye"
      : "hello";
  }
};

We can make this nicer by extracting that logic to a common generic type:


type YouSayGoodbyeISayHello<
  TInput extends "hello" | "goodbye"
> = TInput extends "hello" ? "goodbye" : "hello";

const youSayGoodbyeISayHello = <
  TInput extends "hello" | "goodbye"
>(
  input: TInput
): YouSayGoodbyeISayHello<TInput> => {
  if (input === "goodbye") {
    return "hello" as YouSayGoodbyeISayHello<TInput>;
  } else {
    return "goodbye" as YouSayGoodbyeISayHello<TInput>;
  }
};

But in these situations, it often makes more sense to use as any:

const youSayGoodbyeISayHello = <
  TInput extends "hello" | "goodbye"
>(
  input: TInput
): TInput extends "hello" ? "goodbye" : "hello" => {
  if (input === "goodbye") {
    return "hello" as any;
  } else {
    return "goodbye" as any;
  }
};

Yes, this does make our function less type-safe. We could accidentally return "bonsoir" from the function instead.

But in these situations, it's often better to use as any and add a unit test for this function's behavior. Because of TypeScript's limitations in checking this stuff, this is often as close as you'll get to type safety.

There are several other use cases like this, where inside generic functions you need to use any to get around TypeScript's limitations. To me, this is fine.

Conclusion

A question remains: should you ban any from your codebase? I think, on balance, the answer should be yes. You should turn on the ESLint rule which prevents its use, and you should avoid it wherever possible.

However, there are cases where any is needed. They're worth using eslint-disable to get around them. So, bookmark this article, and attach it to your PR's when you feel the need to use it.

Have you spotted any other legitimate use cases for any? Let me know!

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Matt Pocock
Matt Pocock