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I have a Span[A] data type that tracks a minimum and maximum value of type A. Because of this, I require A to have a Scalaz Order instance. Here's what the implementation looks like:

trait Span[A] {
  val min: A
  val max: A
}
object Span {
  def apply[A : Order](id: A): Span[A] = new Span[A] {
    override val min = id
    override val max = id
  }
  def apply[A : Order](a: A, b: A): Span[A] = {
    val swap = implicitly[Order[A]].greaterThan(a, b)
    new Span[A] {
      override val min = if (swap) b else a
      override val max = if (swap) a else b
    }
  }
  implicit def orderSpanSemigroup[A : Order]: Semigroup[Span[A]] = new Semigroup[Span[A]] {
    override def append(f1: Span[A], f2: => Span[A]): Span[A] = {
      val ord = implicitly[Order[A]]
      Span(ord.min(f1.min, f2.min), ord.max(f1.max, f2.max))
    }
  }
}

The apply method seems to work as expected, as I can do this:

val a = Span(1) // or Span.apply(1)

It breaks down if I try to map over this value using a functor, for example, an Option[Int]:

val b = 1.some map Span.apply
// could not find implicit value for evidence parameter of type scalaz.Order[A]

However, I can fix the error by using an explicit type parameter:

val c = 1.some map Span.apply[Int]

Why is this happening? Is there a way to avoid this explicit type parameter? I wonder if it's related to this issue as I originally ran into the problem while trying to use my own implicit Order instance. Of course, it's also failing on Int inputs so maybe it's just a limitation of parameterized methods.

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2  
The context bound desugars to an implicit parameter (in a new parameter list), and this makes a mess of eta expansion, so you're stuck with the type parameter or 1.some.map(Span(_)). –  Travis Brown Apr 25 at 13:33
    
Ah. Sadly, that explains it. I just tried to manually expand the function value my self by doing something like val spanFunc = [A](a: A) => (implicit ord: Order[A]) => Span.apply(a), but realized functions are monomorphic. Oh well. –  Ben Sidhom Apr 25 at 23:43

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