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Demo scala code:

trait A {
  val a = 3
  val b = a + 2
}

trait B extends A {
  override val a = 10
}

object X extends B

println(X.b)

It prints value: 2, why is it not 5 or 12?

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1  
I'm guessing this has something to do with the order things are processed in relation to mixins when you use an override. Things work fine if in B you don't do any overriding. FWIW, marking b as lazy in A fixes the issue. –  cmbaxter Aug 5 at 14:57
    
Initialization order for traits cake is tricky. Relevant, though different case. –  om-nom-nom Aug 5 at 15:03
    
linearization vs stackable trait. The book "scala in depth" talks a lot about this. Normally, the solution for value will be used in sub trait should define lazy val or def, so it is not early evaluated. –  Cloud tech Aug 6 at 7:53

1 Answer 1

up vote 13 down vote accepted

To answer the why:

In Scala when you write

class A {
  val a = 2
}

The value is initialized in the constructor of the class (the same behavior applies to traits and objects). Furthermore, superclasses are initialized before subclasses. This leads to the following behavior for your use case:

B is created (memory is reserved), with two variables a and b whose value is 0. Now the constructor of A is invoked. Because a is overwritten in a subclass and due to Scalas dynamic binding nature, it is not assigned with 2, but with the value of the subclass. You want to be it 10, but because this assignment happens in the constructor of B (which is not yet invoked) the default value 0 is assigned. Now, b is assigned. Because it is not overwritten, the value a+2 is chosen, where a is 0. Because the constructor of A is finished here, the constructor of B can be invoked, which assigns 10 to a.

Hence, a is 10 and b is 2.

To answer what to do against this behavior bug:

Don't use vals as long as you don't absolutely understand about the problems that can arise. Use defs or lazy vals instead, there values are not initialized in the constructor of a class and therefore can be easily overwritten. If you absolutely need a val in a trait, then make it final

It is possible to mark a var as initialization independent for the subclass, which can be done with var a: Type = _. This tells the compiler to not initialize this variable in the constructor of the defining class (but means that the value needs to stay mutable). It can then easily be assigned in the subclass. This gets important when the in the constructor of the superclass as method is called, that initializes a var:

class A {
  f()
  def f() = ()
}

class B extends A {
  // don't initialize this var with anything else here or
  // the later assignment will be overwritten
  var b: Int = _
  override def f() =
    b = 5
}

new B().b // prints 5
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Wow, that's an unexpected language quirk in a situation that doesn't seem all that exotic. Would we be any worse off if the compiler did not allow overriding vals that other class-scoped vals depend on? –  acjay Aug 5 at 18:41
1  
I don't think this is possible to implement in the compiler, because the superclass may be extended by a classes that depend on values of the superclass at different compilation times. –  sschaef Aug 5 at 19:28
    
I'm not a big down-voter or anything, but isn't the one-question FAQ the only answer to this oft-asked question? docs.scala-lang.org/tutorials/FAQ/initialization-order.html I didn't follow the point of the mutable case, BTW, but it's late here. –  som-snytt Aug 6 at 6:30
    
@som-snytt: Yeah, the one question FAQ is unbeatable but it is not an answer on SO, therefore I couldn't mark this as a duplicate. ;) –  sschaef Aug 6 at 8:09
    
Yes. Figuring out whether a member is overridden or not is called Class Hierarchy Analysis and, like pretty much any even halfway interesting static analysis, is known to be equivalent to solving the Halting Problem. –  Jörg W Mittag Aug 6 at 9:37

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