Given:

// type-class
trait Eq[A]

class MyInt 
object MyInt {
  implicit val myIntEq = new Eq[MyInt] {}
}

sealed trait Something {
  type A 
  implicit val x: Eq[A]
}

case object SomethingImpl extends Something {
  override type A = MyInt
  override implicit val x = MyInt.myIntEq
}

Then, I used the type member's implicit via:

scala> def f(s: Something): Eq[s.A] = {
     |   implicit val x: Eq[s.A] = s.x
     |   x
     | }
f: (s: Something)Eq[s.A]

However, my instincts tell me that it's somewhat clumsy to have to bring the implicit into scope via implicit val ....

Perhaps I should define the f function within the Something's companion object?

What's the standard way to define this f function?

  • 2
    Your example of f function seems to be over-simplified, because with the current information, I would simply implement it as = s.x. – sjrd Sep 26 '16 at 13:06
  • 1
    You can import s.x. – Jasper-M Sep 26 '16 at 13:16
  • @Jasper-M That's the answer, not a comment. – Alexey Romanov Sep 26 '16 at 13:37
up vote 2 down vote accepted

If you want to bring a certain implicit into scope, you usually import it.

def f(s: Something) = {
  import s.x
  ???
}
  • Is it possible to write f in the Something companion? I tried, object Something { def f(x: Something) = { implicitly[Eq[x.A]]; ??? } }, but that did not compile. – Kevin Meredith Sep 26 '16 at 16:57

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