2

I have 3 types:

export interface Animal {
...
}

export interface Cat extends Animal{
...
}

export interface Dog extends Animal{
...
}

export interface Iguana extends Animal {
...
}

In a separate file I have defined 3 async functions with the following syntax:

const task1 = (() => Promise<Cat[]>) = async () => {
...
}

const task2 = (() => Promise<Dog[]>) = async () => {
...
}

const task3 = (() => Promise<Iguana[]>) = async () => {
...
}

const tasks = [task1, task2, task3];
const runningTasks = tasks.map(task => task());
// below line throws an error
const results = await Promise.all(runningTasks);

The last line throws an error because of type incompatibility, and it's extremely long and basically says "Dog is missing properties from Cat".

What I am trying to do is simply call these 3 functions asyncronously and save their results.

  • Hi, interesting, perhaps have them return the base type Animal? – jspcal May 15 at 22:59
  • i thought about that and as you suspect the error is resolved, but then I am not sure whether that actually allows me to use the specific types from the results, which is important to me. – Jeremy Fisher May 15 at 23:01
  • I'm looking at the type signature of all and it seems like the problem is that it expects one particular type T and all values passed into the function are of the same type T and thus it returns a T[] – Jeremy Fisher May 15 at 23:02
  • Hmm another option would be to define a class with one property for each output. – jspcal May 15 at 23:05
  • 1
    The easiest way out of this is probably to assert that runningTasks is the tuple type you expect: const runningTasks = tasks.map(task => task()) as [Promise<Cat[]>, Promise<Dog[]>, Promise<Iguana[]>]; – jcalz May 16 at 1:15
1

What I am trying to do is simply call these 3 functions asyncronously and save their results.

You have this kind of set up:

export interface Animal {
    name: string;
}

export interface Cat extends Animal {
    attitude: string;
}

export interface Dog extends Animal {
    sleepDuration: number;
}

export interface Iguana extends Animal {
    skinToughness: number;
}

const task1 = async (): Promise<Cat[]> => {
    return await Promise.resolve([]);
}

const task2 = async (): Promise<Dog[]> => {
    return await Promise.resolve([]);
}

const task3 = async (): Promise<Iguana[]> => {
    return await Promise.resolve([]);
}

One approach is to use the parent type in the Promise like this:

const demo = async () => {
    const tasks = [task1, task2, task3];
    const runningTasks: Promise<Animal[]>[] = tasks.map(task => task());
    const results: Animal[][] = await Promise.all(runningTasks);
}

If it is important to use the specific types from the results, the tuple that jcalz suggested would work:

const demo = async () => {
    const tasks = [task1, task2, task3] as const;

    type TaskResults = [
        ReturnType<typeof task1>,
        ReturnType<typeof task2>,
        ReturnType<typeof task3>,
    ];

    const runningTasks = tasks.map(task => task()) as TaskResults;
    const results = await Promise.all(runningTasks);

    results[0][0].attitude;
    results[1][0].sleepDuration;
    results[2][0].skinToughness;
}

Surprisingly, if you do not need to start the tasks ahead of time then you can maintain type information with this approach:

const demo = async () => {

    const results = await Promise.all([
        task1(),
        task2(),
        task3()
    ])

    results[0][0].attitude;
    results[1][0].sleepDuration;
    results[2][0].skinToughness;
}
  • Here is a follow up question/answer that creates a MapToReturnType, which can take the place of the manual type creation of TaskResults wiith MapToReturnType<typeof tasks>. stackoverflow.com/q/56160793/1108891 – Shaun Luttin May 16 at 14:24

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