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I just stumbled upon the following

const myObject = new Object();
myObject['test'] = 'hello';

calc(myObject['test']);

function calc(x: number) {
  console.log(x * 10);
}

This is a very simple case.

My expectation was that TypeScript will at least complain at compile time that it can't find the concrete type but calc expects a number.

Instead TypeScript won't complain at all and in the console there will be NaN.

I first noticed this behavior when using angular 4 and routing data.

const routes: Routes = [
    {
        path: '**',
        data: [{error: new ApplicationError('http-status-404', '', HttpErrorStatus.NotFound)}],
        component: ApplicationErrorComponent,
        resolve: {
            error: ApplicationErrorResolve
        }
    }
];

@Injectable()
export class ApplicationErrorResolve implements Resolve<ApplicationError> {

   constructor(private applicationErrorHandler: ApplicationErrorHandler) { }

   resolve(route: ActivatedRouteSnapshot, state: RouterStateSnapshot): ApplicationError {

        if (route.data != null && route.data[0]['error'] instanceof ApplicationError) {
            this.applicationErrorHandler.addError(route.data[0]);

            return route.data[0];
        }

        return null;
    }
}

// signature of applicationErrorHandler.addError
addError(error: ApplicationError, navigateToErrorPage: boolean = true) {

}

As seen in the code, my object ApplicationError would reside in route.data[0].error and not route.data[0]. But again TypeScript doesn't complain and during runtime I will just have completly wrong object(type)

Is there something I can do about it (other than manually check with instanceof or similar)? Like some kind of guard or a switch for typescript (like --strictNullCheck)?

coming from a c# background this left me really surprised (and kinda worried)

EDIT

Thanks to Saravana the first part (simple example) works. But as soon as I use arrays it fails again. even with noImplictAny = true

 const myArray = new Array<any>();
 myArray[0] = { name: 'test'};
 myArray[1] = { name: 1} ;

 // TypeScript doesn't complain 
 this.calc(myArray[0]);

 // TypeScript doesn't complain
 this.calc(myArray[0].ImActuallyNotPresent);

 function calc(x: number) {
     console.log(x * 10);
 }

I don't get it. Why does this work? I know it has to do with any but why would the definition of myArray supersede my methods signature? This makes very little sense to me und gives a false sense of security.

Is there anyway to solve this?

6
  • I think that's because you are using the bracket notation. Try myObject.test = 'hello'; calc(myObject.test); and see what happens.
    – eko
    Jun 2 '17 at 6:36
  • it does work when using test as property. But I think my typed methods should not have to rely on how I provide the parameter.
    – Arikael
    Jun 2 '17 at 6:39
  • brackt notation is kinda reflection technique in javascript determined t runtime. Better to declare an interface and typecast it to it.
    – NiRUS
    Jun 2 '17 at 6:42
  • But I don't understand why TypeScript doesn't complain at compile time? My method has a typed parameter and I provide just "something". Why does this even work? Am I missing something in TypeScript?
    – Arikael
    Jun 2 '17 at 6:45
  • @Arikael If you want type checking stop using any. Always define types when you need type checking.
    – Saravana
    Jun 2 '17 at 8:26
1

You need to set "noImplicitAny": true in your tsconfig.json or pass the --noImplicitAny flag to the compiler to catch these issues.

If you had turned on noImplicitAny, the compiler will check the type of myObject['test'] against calc. Since it is off the type of myObject['test'] is taken as any which disables all type checking allowing it to be passed to calc.

With "noImplicitAny": true, your example throws the following error:

Element implicitly has an 'any' type because type 'Object' has no index signature.

TypeScript compiler options: https://www.typescriptlang.org/docs/handbook/compiler-options.html


When you did const myArray = new Array<any>(); in your example, you are telling the compiler that myArray can hold an array of anything. The only thing that the compiler will verify is that myArray is an array. The contents of the array can be anything. That is why myArray[0].ImActuallyNotPresent does not throw any errors. Because you told the compiler nothing about the contents of the array.

To ensure type checking on the content of the array, provide type information for the array:

interface MyArrayContent {
  someString: string;
  someNumber: number
}

const myArray = new Array<MyArrayContent>();
myArray[0] = { someString: 'test', someNumber: 1 };
myArray[1] = { someString: "test2", someNumber: 2};

calc(myArray[0]); // Error
calc(myArray[0].ImActuallyNotPresent); // Error
calc(myArray[0].someString); // Error
calc(myArray[0].someNumber); // No error

function calc(x: number) {
  console.log(x * 10);
}

any is TypeScript's way to bypass all type-checking and go into full JS-mode and ignore all compile time checks -- which includes verifying that calc has a number parameter. I understand the confusion. In a language like C# you cannot pass variable of type object when a method expects string without a cast even when all strings are objects. But if you think of any as synonymous to "disable all type checks wherever this variable is used" it would make much more sense.

any documentation: https://www.typescriptlang.org/docs/handbook/basic-types.html#any

4
  • thanks, this answers the first part (the simple example). But the second (actual problem with angular) i still unsolved. I added another example in the question (below EDIT) which shows a problem with arrays.
    – Arikael
    Jun 2 '17 at 7:24
  • thanks again, the problem I had was not that I could use ImActuallyNotPresent. That was what I expected because of any But I did not expect that calc would accept either myArray[0] or myArray[0].ImActuallyNotPresent because like you said it could be anything not just a number. But I explicitly told calcs parameter x to only accept number. That's what I don't get. Why can I provide any as argument when I defined that the parameter has to number?
    – Arikael
    Jun 2 '17 at 8:41
  • 1
    @Arikael any is TypeScript's way to bypass all type-checking and go into full JS-mode and ignore all compile time checks -- which includes verifying that calc has a number parameter. I understand the confusion. In a language like C# you cannot pass variable of type object when a method expects string without a cast. But if you think of any as synonymous to disable all type checks it would make much more sense.
    – Saravana
    Jun 2 '17 at 8:48
  • now I get it, maybe you could add your last comment to your answer because the disable all type checks was exactly what I was missunderstanding/missing. Makes me wonder why the angular team decided to use any for their routing data instead of object
    – Arikael
    Jun 2 '17 at 8:58

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