43

I'm upgrading a personal package that is based on the Flutter framework. I noticed here in the Flutter Text widget source code that there is a null check:

if (textSpan != null) {
  properties.add(textSpan!.toDiagnosticsNode(name: 'textSpan', style: DiagnosticsTreeStyle.transition));
}

However, textSpan! is still using the ! operator. Shouldn't textSpan be promoted to a non-nullable type without having to use the ! operator? However, trying to remove the operator gives the following error:

An expression whose value can be 'null' must be null-checked before it can be dereferenced.
Try checking that the value isn't 'null' before dereferencing it.

Here is a self-contained example:

class MyClass {
  String? _myString;
  
  String get myString {
    if (_myString == null) {
      return '';
    }
    
    return _myString; //   <-- error here
  }
}

I get a compile-time error:

Error: A value of type 'String?' can't be returned from function 'myString' because it has a return type of 'String'.

Or if I try to get _mySting.length I get the following error:

The property 'length' can't be unconditionally accessed because the receiver can be 'null'.

I thought doing the null check would promote _myString to a non-nullable type. Why doesn't it?

My question was solved on GitHub so I'm posting an answer below.

3

3 Answers 3

40

Dart engineer Erik Ernst says on GitHub:

Type promotion is only applicable to local variables. ... Promotion of an instance variable is not sound, because it could be overridden by a getter that runs a computation and returns a different object each time it is invoked. Cf. dart-lang/language#1188 for discussions about a mechanism which is similar to type promotion but based on dynamic checks, with some links to related discussions.

So local type promotion works:

  String myMethod(String? myString) {
    if (myString == null) {
      return '';
    }
    
    return myString;
  }

But instance variables don't promote. For that you need to manually tell Dart that you are sure that the instance variable isn't null in this case by using the ! operator:

class MyClass {
  String? _myString;
  
  String myMethod() {
    if (_myString == null) {
      return '';
    }
    
    return _myString!;
  }
}
2
  • 1
    Can myMethod be rewritten as String myMethod() { return _myString ?? '' }?
    – gegobyte
    Apr 26, 2021 at 12:20
  • 2
    @gegobyte, Yes (if you add a semicolon).
    – Suragch
    Apr 27, 2021 at 0:28
26

The Error:

Let's say, this is your code and you're doing a null check on the instance variable and still seeing an error:

class Foo {
  int? x;

  double toDouble() {
    if (x != null) return x.toDouble(); // <-- Error
    return -1;
  }
}

The method 'toDouble' can't be unconditionally invoked because the receiver can be 'null'.

The error you see in code like this is because Getters are not promoted to their non-nullable counterparts. Let's talk about the reason why.


Reason of the Error:

Let's say, there's a class Bar which extends Foo and overrides x field and implemented like this:

class Bar extends Foo {
  @override
  int? get x => (++_count).isOdd ? 1 : null;
  int _count = 0;
}

Now, if you do

Bar().toDouble();

You would have run into a runtime null error, which is why getters type promotion is prohibited.


Solutions:

We need to cast away nullability from int?. There are generally 3 ways to do this.

  • Use local variable (Recommended)

    double toDouble() {
      final x = this.x; // <-- Use a local variable
      if (x != null) return x.toDouble(); 
      return -1;
    }
    
  • Use ?. with ??

    double toDouble() {
      return x?.toDouble() ?? -1; // Provide a default value
    }
    
  • Use null-assertion operator (!)

    You should only use this solution when you're 100% sure that the variable (x) will never be null.

    double toDouble() {
      return x!.toDouble(); // Null assertion operator
    }
    
6
  • 1
    The local variable solution looks like the best option, especially when you need to use += or *= operators Apr 19, 2021 at 20:44
  • Details on documentation: dart.dev/guides/language/language-tour#other-operators
    – Xao
    May 23, 2021 at 11:22
  • Is the solution to use a local variable your personal recommendation, or has the dart team said anything about it? Aug 4, 2021 at 8:53
  • @HannesHultergård It's coming from a post written by one of the members of Dart team.
    – CopsOnRoad
    Aug 4, 2021 at 16:34
  • 1
    Please correct me if I'm wrong, but unless I'm missing something fundamental here, I feel that this example doesn't really illustrate the reasoning behind preventing getter promotion, since i obviously never changes after the null check. Wouldn't a better example for i in Bar be int? get i => Random().nextBool() ? 0 : null; like the one shown here? This way, you can really see how the compiler could never guarantee that i isn't null, since its value can change to null when it's accessed after the null check. Apr 28, 2022 at 20:56
0

style: Theme.of(context).textTheme.headline5!.copyWith(

style: Theme.of(context).textTheme.headline5!.copyWith(
                        color: Colors.white

Try making the call conditional using ? or a null safety checker - !

1
  • Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.
    – Community Bot
    Sep 15, 2021 at 22:41

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