64

I was wondering if I can have conditional types in TypeScript?

Currently I have the following interface:

interface ValidationResult {
  isValid: boolean;
  errorText?: string;
}

But I want to remove errorText, and only have it when isValid is false as a required property.

I wish I was able to write it as the following interface:

interface ValidationResult {
  isValid: true;
}

interface ValidationResult {
  isValid: false;
  errorText: string;
}

But as you know, it is not possible. So, what is your idea about this situation?

  • Do you mean, when isValid is false? – CertainPerformance Dec 4 '19 at 9:13
  • 18
    isValid is redundant then. You might as well just have the errorText, and then if errorText is null, there is no error. – MTilsted Dec 4 '19 at 20:21
  • Yes, @MTilsted, you are right, but we have to keep it because of our legacy codes. – Arman Dec 5 '19 at 15:30
89

One way to model this kind of logic is to use a union type, something like this

interface Valid {
  isValid: true
}

interface Invalid {
  isValid: false
  errorText: string
}

type ValidationResult = Valid | Invalid

const validate = (n: number): ValidationResult => {
  return n === 4 ? { isValid: true } : { isValid: false, errorText: "num is not 4" }
}

The compiler is then able to narrow the type down based on the boolean flag

const getErrorTextIfPresent = (r: ValidationResult): string | null => {
  return r.isValid ? null : r.errorText
}
40

To avoid creating multiple interfaces which only get used to create a third, you can also alternate directly, with a type instead:

type ValidationResult = {
    isValid: false;
    errorText: string;
} | {
    isValid: true;
};
20

The union demonstrated by bugs is how I recommend handling this. Nonetheless, Typescript does have something known as “conditional types,” and they can handle this.

type ValidationResult<IsValid extends boolean = boolean> = (IsValid extends true
    ? { isValid: IsValid; }
    : { isValid: IsValid; errorText: string; }
);


declare const validation: ValidationResult;
if (!validation.isValid) {
    validation.errorText;
}

This ValidationResult (which is actually ValidationResult<boolean> due to the default parameter) is equivalent to the union produced in bugs’s answer or in CertainPerformance’s answer, and can be used in the same manner.

The advantage here is that you could also pass around a known ValidationResult<false> value, and then you wouldn’t have to test isValid as it would be known to be false and errorString would be known to exist. Probably not necessary for a case like this—and conditional types can be complex and difficult to debug, so they probably shouldn’t be used unnecessarily. But you could, and that seemed worth mentioning.

  • 3
    I'm sure these are really helpful at times. But, to me, the syntax looks really nasty. – Peilonrayz Dec 5 '19 at 12:12
  • 3
    @Peilonrayz Eh, it has good consistency with other Typescript coding, and extends is the right operator to use. And it has extremely powerful, particularly since you can also use it to dig into types: type SecondOf<T> = T extends Pair<any, infer U> ? U : never;. – KRyan Dec 5 '19 at 13:24
  • @KRyan I've been thinking about that. Does that basically just mean SecondOf<number> 'expands' to Pair<any, number>? I guess the saying "don't judge a book by it's cover" is pertinent here. – Peilonrayz Dec 7 '19 at 8:18
  • @Peilonrayz Ah, no; rather the opposite. SecondOf<Pair<any, number>> evaluates to number. SecondOf<number> evaluates to never, because number extends Pair<any, infer U> is false, as number does not extend any Pair – KRyan Dec 20 '19 at 20:05

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