How to suppress "error TS2533: Object is possibly 'null' or 'undefined'"?

typescript

I have a type:

type tSelectProtected = {
  handleSelector?: string,
  data?: tSelectDataItem[],

  wrapperEle?: HTMLElement,
  inputEle?: HTMLElement,
  listEle?: HTMLElement,
  resultEle?: HTMLElement,

  maxVisibleListItems?: number
}

I declare a global module-wise variable:

var $protected : tSelectProtected = {};

I'm assigning proper value in function1() scope:

$protected.listEle = document.createElement('DIV');

Later in function2() scope, I'm calling:

$protected.listEle.classList.add('visible');

I'm getting TypeScript error:

error TS2533: Object is possibly 'null' or 'undefined'

I know that I can do explicit check using if ($protected.listEle) {$protected.listEle} to calm down compiler but this seems to be very unhandy for most non trivial cases.

How this situation can or should be handled without disabling TS compiler checks?

To specifically just "suppress" - stackoverflow.com/a/58121244/1891625

Willem Renzema

If you know from external means that an expression is not null or undefined, you can use the non-null assertion operator ! to coerce away those types:

// Error, some.expr may be null or undefined
let x = some.expr.thing;
// OK
let y = some.expr!.thing;

Thanks for letting me know about ! - Non-null assertion operator operator. It seems that the thing is not well documented yet (https://github.com/Microsoft/TypeScript/issues/11494) so anyone looking answers read this http://stackoverflow.com/questions/38874928/operator-in-typescript-after-object-method

this also has no effect for me on tsc v2.7.2

@ThomasSauvajon the ! operator here does not do the same thing as ? in C# does! It is only a type system assertion; it will not cause your program to not crash when attempting to read a property from null or undefined.

From handbook, added at Ryan's prodding: The syntax is postfix !: identifier! removes null and undefined from the type of identifier This is what Ryan already said, but I find this way helpful too.

This does not work in Typescript 3.2.2. Has it been removed?

Vlad Topala

This feature is called "strict null checks", to turn it off ensure that the --strictNullChecks compiler flag is not set.

However, the existence of null has been described as The Billion Dollar Mistake, so it is exciting to see languages such as TypeScript introducing a fix. I'd strongly recommend keeping it turned on.

One way to fix this is to ensure that the values are never null or undefined, for example by initialising them up front:

interface SelectProtected {
    readonly wrapperElement: HTMLDivElement;
    readonly inputElement: HTMLInputElement;
}

const selectProtected: SelectProtected = {
    wrapperElement: document.createElement("div"),
    inputElement: document.createElement("input")
};

See Ryan Cavanaugh's answer for an alternative option, though!

Personally I use nulls in "vanilla" JavaScript to initialize variables or properties values. This gives me straight answer if given var or prop exists but it has "no usable value" yet or "value was cleared at some point of execution". It's just by convention. This may be not a best approach in TypeScript as I can see by answers here. Thank you for your thoughts.

Even initialization doesn't suppress "Object is possibly 'undefined'" for me in TS 2.7.2

Yes, but these definitions change the values of the objects, for example, HTMLDivElement doesn't have closest target and other basic element events and properties.

What if you are trying to describe a state of some Javascript Object property, where the true representation of the starting state is null?

Adding that there's a ! operator available, very similar to the ones in Kotlin that lets you make these checks much more concise

Vandesh

You can suppress if needed, by adding a comment (with CAUTION below)

// @ts-ignore: Object is possibly 'null'.

Not a direct answer to the OP's question, but in my React application with Typescript - v3.6.2
tslint - v5.20.0

And using the following code

const refToElement = useRef(null);

if (refToElement && refToElement.current) {
     refToElement.current.focus(); // Object is possibly 'null' (for refToElement.current)
}

I moved on by suppressing the compiler for that line -

const refToElement = useRef(null);

if (refToElement && refToElement.current) {
     // @ts-ignore: Object is possibly 'null'.
     refToElement.current.focus(); 
}

CAUTION

Note that since it's a compiler error and not the linter error, // tslint:disable-next-line didn't work. Also, as per the documentation, this should be used rarely, only when necessary

UPDATE

With Typescript 3.7 onwards, you can use optional chaining, to solve the above problem as -

refToElement?.current?.focus();

Also, sometimes it just might be a matter of passing in the appropriate type to the generic paramenter, while using useRef.
Eg: In case of an input element -

const refToElement = useRef<HTMLInputElement>(null);

Much better solution than disabling the strictNullChecks, caution should be used with this, most of the time you want the null reference error because it can cause real headaches down the road.

Property 'getBoundingClientRect' does not exist on type 'never'.

In my case this optional chaining did not work. const input = useRef<HTMLInputElement>(null); and if (input && input.current) { input.current.value = ''; } did the trick.

Property 'goBack' does not exist on type 'never'.ts(2339)

You need to specify the component type in useRef<MyComponent>(null), otherwise TS doesn't know that the reference can also be something else than null.

JoshuaTree

Update: Object chaining is a means to access properties on possibly null or undefined reference

object?.objectProperty?.nextProperty

Previously

if (object !== undefined) {
    // continue - error suppressed when used in this way.
}

Previously

const objectX = object as string

Although, before choosing one of the above workarounds, please consider the architecture you are aiming for and it's impact to the bigger picture.

for some reason my TSC ignores that if statement, still considers it to possibly be undefined...

my error is NOT supressed when I use if(object!==undefined) object.function();

One can also use double comparison with null and undefined, and it is not a bad practice (only if using with those two types) - event TSLint will allow you to do it. It eases checking if something is defined because instead of writing null !== someObject && undefined !== someObject you can use just null != someObject

Also does not suppress the error for me with a recent typescript. Any workarounds for this frustrating behavior?

the checks don't seem to be supressing my warning, and the object concerned here is this !

Mahesh Nepal

This solution worked for me:

go to tsconfig.json and add "strictNullChecks":false

https://i.stack.imgur.com/dfGCY.png

This worked for me as well. Although its still giving error like, for example in subscribe statements, it is not recognizing result variable, typescript wants it to declare .subscribe(result => this.result =result.json());

Have you tried using 'map' operator? Google 'rxjs/map'. I basically do:. Http.get(...).map(result => result.json()).subscribe(result=>{do your stuff here})

doesn't answer the question. OP explicitly said: 'without disabling TS compiler checks'

What the point using TypeScript and removing the linter error aim to alert you? I think the better option is to cast the desired value with as if you 100% sure. I got the case with mongodb and FindOneOrUpdate return value and I had to cast it to the Schema because the result.value is declared as TSchema | undefined and I've already check with result.ok before

@Vincent the point is to get intelligent auto-complete in your IDE while still retaining some of the dynamic nature of JavaScript.

Ericgit

To fix this you can simply use the exclamation mark if you're sure that the object is not null when accessing its property:

list!.values

At first sight, some people might confuse this with the safe navigation operator from angular, this is not the case!

list?.values

The ! post-fix expression will tell the TS compiler that variable is not null, if that's not the case it will crash at runtime

useRef

for useRef hook use like this

const value = inputRef?.current?.value

I'd say this is the right answer, although already posted above. I think answers suggesting a change in consumer code are just wrong.

above may crash at run time, best would be check, if(list.value){ console.log(list.value)} this would tell the TS compiler that the value will be accessed only if the parent condition passed

ssube

If you know the type will never be null or undefined, you should declare it as foo: Bar without the ?. Declaring a type with the ? Bar syntax means it could potentially be undefined, which is something you need to check for.

In other words, the compiler is doing exactly what you're asking it to. If you want it to be optional, you'll need to the check later.

"compiler is doing exactly what you're asking it to" so my idea is wrong, thanks. I need to change approach a little.

In my case the compiler simply didn't realize that I already checked the object for null. I have a getter that checks for null and call that getter. So no, it's not doing exactly what I asked it (this is not to say I expect it to figure everything out) to.

thinkOfaNumber

This is not the OP's problem, but I got the same Object is possibly 'null' message when I had declared a parameter as the null type by accident:

something: null;

instead of assigning it the value of null:

something: string = null;

This is the actual answer. Frustrating when you do an actual explicit null check and still get Object is possibly 'null' error. This answer solves that.

Shevchenko Viktor

As an option, you can use a type casting. If you have this error from typescript that means that some variable has type or is undefined:

let a: string[] | undefined;

let b: number = a.length; // [ts] Object is possibly 'undefined'
let c: number = (a as string[]).length; // ok

Be sure that a really exist in your code.

this was the working solution for me. Declaring that member as type 'any' in an 'on fly' interface has solved the problem

@BoteaFlorin You should not cast it to any. Instead cast it to an explicit type. If you use any you miss the point of using TypeScript in the first place.

A practical example of casting to suppress the null possibility is document.querySelector() since it is possible that the element doesn't exist. I had this exact problem today and I knew that adding ! before every . wasn't the only solution. Thanks for saving me minutes of reading the docs (even though I might read them when I have time)

@AhmedShaqanbi that's not a good example. You should still check, or use option chaining. If the compiler thinks something could be null, then it really probably can be and you should write code under the assumption.

Jamie Hutber

For me this was an error with the ref and react:

const quoteElement = React.useRef()
const somethingElse = quoteElement!.current?.offsetHeight ?? 0

This would throw the error, the fix, to give it a type:

// <div> reference type
const divRef = React.useRef<HTMLDivElement>(null);

// <button> reference type
const buttonRef = React.useRef<HTMLButtonElement>(null);

// <br /> reference type
const brRef = React.useRef<HTMLBRElement>(null);

// <a> reference type
const linkRef = React.useRef<HTMLLinkElement>(null);

No more errors, hopefully in some way this might help somebody else, or even me in the future :P

Actually, the fix is simply passing null to useRef. The additional type is optional.

Mehdi Roostaeian

Related to 'object is possibly null' compile error, if you want to disable this checking in your typescript configuration, you should add the below line in the tsconfig.json file.

"compilerOptions": {

   // other rules

   "strictNullChecks": false
}

It's not a good idea to turn this off. The rule is there to help you avoid a very common class of type errors. It's better to fix your program (adjust types and add if checks) than to silence annoying but useful errors.

Turning off "strictNullChecks" is not a solution.

Simon_Weaver

Tip for RxJS

I'll often have member variables of type Observable<string>, and I won't be initializing it until ngOnInit (using Angular). The compiler then assumes it to be uninitialized becasue it isn't 'definitely assigned in the constructor' - and the compiler is never going to understand ngOnInit.

You can use the ! assertion operator on the definition to avoid the error:

favoriteColor!: Observable<string>;

An uninitialized observable can cause all kinds of runtime pain with errors like 'you must provide a stream but you provided null'. The ! is fine if you definitely know it's going to be set in something like ngOnInit, but there may be cases where the value is set in some other less deterministic way.

So an alternative I'll sometimes use is :

public loaded$: Observable<boolean> = uninitialized('loaded');

Where uninitialized is defined globally somewhere as:

export const uninitialized = (name: string) => throwError(name + ' not initialized');

Then if you ever use this stream without it being defined it will immediately throw a runtime error.

I don't recommend doing this everywhere, but I'll do this sometimes - especially if relying on @Input parameters set from the outside

Gedeon

In ReactJS, I check in the constructor if the variables are null, if they are I treat it like an exception and manage the exception appropriately. If the variables are not null, code carries on and compiler does not complain anymore after that point:

private variable1: any;
private variable2: any;

constructor(props: IProps) {
    super(props);

    // i.e. here I am trying to access an HTML element
    // which might be null if there is a typo in the name
    this.variable1 = document.querySelector('element1');
    this.variable2 = document.querySelector('element2');

    // check if objects are null
    if(!this.variable1 || !this.variable2) {
        // Manage the 'exception', show the user a message, etc.
    } else {
        // Interpreter should not complain from this point on
        // in any part of the file
        this.variable1.disabled = true; // i.e. this line should not show the error
    }

Jonathan Cast CONT

As of TypeScript 3.7 (https://www.typescriptlang.org/docs/handbook/release-notes/typescript-3-7.html), you can now use the ?. operator to get undefined when accessing an attribute (or calling a method) on a null or undefined object:

inputEl?.current?.focus(); // skips the call when inputEl or inputEl.current is null or undefined

The optional property access operator is ?..

Santosh nayak

// @ts-nocheck

Add this to the top of the file

https://i.stack.imgur.com/1moSo.png

using Typescript and switching off Typescript in the code is no really a good idea. You might as well use Javascript then.

yes, I agree. but this can be a quick fix for the time being

Chris Shaffer

I ran in to this with React when setting state and using map.

In this case I was making an API fetch call and the value of the response wasn't known, but should have a value "Answer". I used a custom type for this, but because the value could be null, I got a TS error anyway. Allowing the type to be null doesn't fix it; alternatively you could use a default parameter value, but this was messy for my case.

I overcame it by providing a default value in the event the response was empty by just using a ternary operator:

this.setState({ record: (response.Answer) ? response.Answer : [{ default: 'default' }] });

Pedro Mutter

Try to call object like this:

(<any>Object).dosomething

This error has come because you have declared them as optional using ?. Now Typescript does strict check and it won't allow doing anything that may be undefined. Therefore, you can use (<any>yourObject) here.

Philipp Meissner

In typescript you can do the following to suppress the error:

let subString?: string;

subString > !null; - Note the added exclamation mark before null.

Joe

This is not an answer for the OP but I've seen a lot of people confused about how to avoid this error in the comments. This is a simple way to pass the compiler check

if (typeof(object) !== 'undefined') {
    // your code
}

Note: This won't work

if (object !== undefined) {
        // your code
    }

It stills complain even inside the check.

mosu

This is rather verbose and don't like it but it's the only thing that worked for me:

if (inputFile && inputFile.current) {
        ((inputFile.current as never) as HTMLInputElement).click()
}

only

if (inputFile && inputFile.current) {
        inputFile.current.click() // also with ! or ? didn't work
}

didn't work for me. Typesript version: 3.9.7 with eslint and recommended rules.

yes! in this case, that's the best solution. thank you.

Wenfang Du

You can use type casting for situations like:

// `textarea` is guaranteed to be loaded
const textarea = <HTMLTextAreaElement>document.querySelector('textarea')
👇 no error here
textarea.value = 'foo'

It could still be undefined or null if the control isn't found by querySelector().

Ahmad Khudeish

Pretty surprised no one answered this, all you got to do is check if the object exists before accessing it, it's pretty straight forward. Otherwise, make sure you initialize the values that your before accessing the object.

if($protected.listEle.classList) { $protected.listEle.classList.add('visible'); }

Vibhu kumar

Bind you variable like this variabalName?.value It will work for sure.

It creates another error Property 'value' does not exist on type 'never'.

Nick

Not OPs problems but I fixed this by adding a null check

I changed:

*ngIf="username.invalid &&  username.errors.required"

*ngIf="username.invalid && username.errors != null && username.errors.required"

Shmarkus

In angular, I use:

// eslint-disable-next-line @typescript-eslint/ban-ts-ignore
// @ts-ignore
const sum = row
    .filter(p => p.priceInCents !== undefined)
    .reduce((sum, current) => sum + current.priceInCents, 0);

Since just using @ts-ignore, the eslint complains that it disables compilation errors, this is why I add the eslint-disable-next-line.

This also just hides the error rather than fixing it.

Mudassar Mustafai

When I changed "strict:true" to "strict:false" in tsconfig.json file than code isn't showing error. add added ! sign with obj like added

myImage!.getAttriute('src');

than code isn't showing error.

This doesn't fix the error, it just turns it off.

Emanuel

import React, { useRef, useState } from 'react'
...
const inputRef = useRef()
....
function chooseFile() {
  const { current } = inputRef
  (current || { click: () => {}}).click()
}
...
<input
   onChange={e => {
     setFile(e.target.files)
    }}
   id="select-file"
   type="file"
   ref={inputRef}
/>
<Button onClick={chooseFile} shadow icon="/upload.svg">
   Choose file
</Button>

https://i.stack.imgur.com/TaKcK.png

O-9

I had this problem with Angular (11.x). On a previous day I moved a piece of HTML/component to a individual - smaller - component. On the next day my computer had shut down and my project couldn't build. It turned out that the component .html was the problem. So as said, it's the null safety...

From this (excerpt):

<div class="code mat-body-strong">{{ machine.productCode }}</div>

To this:

<div class="code mat-body-strong">{{ machine?.productCode }}</div>

dawid debinski

In typescript, to mute message about possibility null:

Interface   {
  data: string|null
}

const myData = document.data ?? "";

How to suppress "error TS2533: Object is possibly 'null' or 'undefined'"?

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