80
function foo<T extends object>(t: T): T {

  return {
    ...t // Error: [ts] Spread types may only be created from object types.
  }
}

I am aware that there are issues on github, but I can't figure out what is fixed and what is not and they have 2695 open issues. So I am posting here. I am using latest Typescript 2.9.2.

Should the above code not work? And how can I fix it if possible?

1
  • 3
    Looks like it fails to cast t to object correctly. Try function foo<T extends object>(t: T): T { return { ...(t as object) } as T; }, it's weird, but works
    – Jevgeni
    Jul 5, 2018 at 11:04

5 Answers 5

120

This is fixed in TypeScript Version 3.2. See Release Notes.


Looks like spread with a generic type isn't supported yet, but there is a GitHub issue about it: Microsoft/TypeScript#10727.

For now you can either use type assertion like @Jevgeni commented:

function foo<T extends object>(t: T): T {
  return { ...(t as object) } as T;
}

or you can use Object.assign which has proper type definitions.

function foo<T extends object>(t: T): T {
  return Object.assign({}, t);
}
5
  • 1
    Excellent. I will use Object.assign for now. Thanks! Jul 6, 2018 at 11:53
  • 6
    You know what, as tslint say: [tslint] Use the object spread operator instead. :'( Oct 25, 2018 at 7:28
  • 3
    @CliteTailor So change the lint rule if you don't like. Linters are supposed to help you establish certain rules, not stop you from writing things you want to write. Jun 1, 2019 at 16:18
  • 8
    i'm using version 3.7.3 and still happening
    – jose920405
    Feb 1, 2020 at 2:14
  • 6
    Typescript 4.2 and still facing the same. I cast ...(t as Record<string, unknown>) to pass the lint as suggested by the linter @@
    – Han
    Apr 3, 2021 at 5:51
34

You can use Record<string, unknown> or an interface like the below examples:

goodsArray.map(good => {
  return {
    id: good.payload.doc.id,
    ...(good.payload.doc.data() as Record<string, unknown>)
  };
});

or

goodsArray.map(good => {
  return {
    id: good.payload.doc.id,
    ...good.payload.doc.data() as Goods // 'Goods' is my interface name
  };
});
1
  • Is the cleaner way?
    – jose920405
    Feb 1, 2020 at 2:13
10

Version 3.2 of Typescript fixed this. The two PRs that improve handling of spread and rest parameters are:

You can try it out now using npm install typescript@3.2.

With 3.2 your code works as is.

Version 3.2 has been released on November 29th, 2018, you can read more about it here.

4
  • 1
    And it's released on the last day of November: blogs.msdn.microsoft.com/typescript/2018/11/29/…
    – Ian Kemp
    Nov 30, 2018 at 5:39
  • I still get this error with version 4.5, so this is likely not fixed
    – Danielo515
    Jan 12 at 22:49
  • @Danielo515 What is your exact code? Maybe the scenario is a bit different ? I'd be curious to see Jan 13 at 7:01
  • @TitianCernicova-Dragomir, if interested, I have similar issue with this for example: let someObject: { [key: string]: number }; can't spread ...someObject
    – oyalhi
    Feb 24 at 22:52
4

If you are still getting this error post version 3.2 then you probably have a type error 'upstream' resulting in an object being unknown instead of an actual object. For instance if you have the spread expression { ...getData() } but your getData function has a compile error you may see this error.

So check for any compiler errors in your browser console because the final error may be misleading.

-1

This answer may help to fix the same problem while using angular and firestoe.

return { id: item.payload.doc.id, ...item.payload.doc.data()} as Employee

this on will throw he same error. for fixing you have to change like this one.

return { id: item.payload.doc.id, ...item.payload.doc.data() as Employee }

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