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The following code snippet

class A {
   def foo = "A.foo"
}

trait B {
   def foo = "B.foo"
   def bar = "B.bar"
}

val x = new A with B

does not compile because

error: overriding method foo in class A of type => java.lang.String;
method foo in trait B of type => java.lang.String needs `override' modifier

However, my intention is define x so that:

x.foo => "A.foo"
x.bar => "B.par"

That is, I only want x to inherit bar from B, but not foo. Is there a way in scala to achieve that?

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2 Answers 2

up vote 12 down vote accepted
scala> val x = new A with B { override def foo = super[A].foo }
x: A with B = $anon$1@4822f558

scala> x.foo
res0: java.lang.String = A.foo

scala> x.bar
res1: java.lang.String = B.bar

It is obviously not something you want to do too often.

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+1 that's a neat trick... –  Russell Apr 26 '12 at 21:36
1  
Note also, that while it works fine with defs it gets trickier with vals. –  om-nom-nom Apr 26 '12 at 21:39

As it doesn't seem like you really want A with B to be a B, but rather to have access to a subset of the behaviour of a B, this sounds like a good case for composition over inheritance:

class A(val b: B) {
   def foo = "A.foo"
   def bar = b.bar
}

class B {
   def foo = "B.foo"
   def bar = "B.bar"
}

val x = new A(new B)
x.foo => "A.foo"
x.bar => "B.bar"

Or, if you need an A without a B most of the time but sometimes need to be able to call the bar method on it, you could do it with an implicit conversion:

class A {
  def foo = "A.foo"
}
class B {
  def foo = "B.foo"
  def bar = "B.bar"
}

implicit def a2b(a: A) = new B

val x = new A
x.foo => "A.foo"
x.bar => "B.bar"
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