20

I have a type alias Data which is a union of two data structure -- one contain array that is not empty while the other is empty:

const dataEmptyArray = { data: [] }
const dataNotEmptyArray = { data: [1, 2, 3] }

type DataEmptyArray = typeof dataEmptyArray
type DataNotEmptyArray = typeof dataNotEmptyArray

type Data = DataNotEmptyArray | DataEmptyArray // <--- union here

function foo(arg:Data) {
  if (arg && arg.data && Array.isArray(arg.data)) {
    return arg.data.map( (d:(never|number)) => d)
    //              ^^^<--------- this expression is not callable   
  } else {
    return 'no data'
  }
}

const result = foo(dataEmptyArray)

However, when I try to call Array.prototype.map() on the array I have an error said: "this expression is not callable"

The above snippet can be found here

I notice, I can eliminate the type error if I define the alias of Data as intersection:

type Data = DataNotEmptyArray & DataEmptyArray

or simply don't union with DataEmptyArray

type Data = DataNotEmptyArray

Could you please explain why union with empty Array is a problem ? What does it mean when it said "the expression is not callable"? thanks!!

2 Answers 2

34

Option 1

Update typescript to 4.2+ (I recommend the latest version)

This will work for .map, but it will not work for .reduce, .every, .find and .filter

(Edit 2023-05-17: .every, .find and .filter should be fixed in the next release TypeScript 5.2?)

As of May 2023 there is an open issue about the .reduce case: https://github.com/microsoft/TypeScript/issues/44063

Option 2

In the meantime you can add as any[] to get rid of the error:
For .map:

const arr: number[] | string[] = [];
// Add as any[]
(arr as any[]).map((a: number | string, index: number) => { 
    return index
});

For .reduce:

const arr: number[] | string[] = [];
// Add as any[]
(arr as any[]).reduce((acc: number | string, val: number|string) => { 
    return `${acc} ${val}`
},'');

More information

The issue for .map:
https://github.com/microsoft/TypeScript/issues/36390

The issue for the .every, .find and .filter cases:
https://github.com/microsoft/TypeScript/issues/44373

6
  • 1
    Thanks. After update to TypeScript 4.3 issue gone
    – Cichy
    Commented Jun 23, 2021 at 10:37
  • 2
    Option 2 works great! Thank you!
    – mila
    Commented Feb 6, 2022 at 21:46
  • In case anyone else wonder it's not just for reduce but also for filter, find, etc. Here's the issue tracking them all: github.com/microsoft/TypeScript/issues/44373
    – maxime1992
    Commented Apr 12, 2022 at 8:26
  • @maxime1992 Thanks for pointing out, I have updated the answer to include these. If you are still looking for a solution, Option 2 (See above) should work for all of these
    – sazzy4o
    Commented Apr 12, 2022 at 20:03
2

The issue is not really the empty array. If you have a case with the 2 arrays with different types for example if array with number and string

const dataEmptyArray = { data: ['my string'] };
const dataNotEmptyArray = { data: [1, 2, 3] };

This viewed as a limitation from TS, he won't be able to handle the union type string[] | number[] as for your case never[]|number[]. He will not assume that it's Array which if you cast to that you will be able to call the map.

Also form the raised issue on github https://github.com/microsoft/TypeScript/issues/33591

We don't have any way to check this in a way that's well-bounded in terms of analysis time. (...)

The only way to correctly check this program is to re-check the body of the inner body 3 * 3 * 3 times (!), and TS would need to clear its cache of expression types on each invocation (something which is currently architecturally impossible). It's not even clear what we'd show for arr's type here!

2
  • 1
    ummm..... i don't think i understand. if it is a type Array, we should be able to call map on it. Is that so difficult? Really? i admit i don't know the inner working ofTS, but this seem to be such an obvious thing as a limitations.
    – apollo
    Commented Nov 8, 2019 at 23:44
  • At the end Array and [] are not 100 % the same thing. I think at some point ts would Infer the type of [1,2,3] as [number, number, number] instead of number[] or Array<number>
    – dege
    Commented Nov 9, 2019 at 8:57

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