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I would like to have higher-order-function Function[K=>V, K=>V] which takes a function K=>V and returns the type of the given function. For example I would like to have the following behaviour:

  class Foo[K, V]() {
    def apply[K1 <: K, V1 <: V](f: K1 => V1) = f
  }

  // dummy class hierachy
  class A
  class B extends A
  class C extends B

    // a function f: B=>B
  def f(some: B): B = some

  // the desired result
  val result1: B => B = new Foo[A, A]()(f)

The apply method of Foo takes a B=>B and returns a B=>B. The type-parameters K and V keep track of the "highest" type Foo can take as an argument. Now, I would like Foo to extend Function like

  class Bar[K, V] extends Function[K=>V, K=>V]() {
    def apply(f: K => V) = f
  }

  val result2: B => B = new Bar[A, A]()(f)

however this does obviously not work. Is there a way to make this work? Thanks

Edit

  class Fuzz[K, V, K1 <: K, V1 <: V] extends Function[K1=>V1, K1=>V1] {
    def apply(f: K1 => V1) = f
  }

  val result3: B => B = new Fuzz[A, A, B, B]()(f) 

Also works, however I don't wanna carry the two additional type-parameters

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This may be a duplicate of: stackoverflow.com/q/663254/1019358 – seliopou Dec 31 '12 at 17:02
up vote 2 down vote accepted

This cannot and should not work, because A => A is not a subtype of B => B (and not a supertype either). The reason for that is that Function1 is covariant in its argument type and contravariant in its result type. Thus for A => A to be a subtype of B => B, A would have to be a subtype as well as a supertype of B. That is only the case if A and B are in fact the same type. See the tour of Scala for a more in depth explanation of variance.

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