11

I'm trying to do the following code:

def sum(e: { def *(x: Double): Double}) = e * 2.0

Problem is, this doesn't work with any numeric classes:

sum(20.0)
<console>:9: error: type mismatch;
 found   : Double(10.0)
 required: AnyRef{def *(x: Double): Double}
              algo(10.0)

sum(10)
<console>:9: error: type mismatch;
 found   : Int(10)
 required: AnyRef{def *(x: Double): Double}
              algo(10)

Is there something wrong with my code?

  • It seems the problem is that Double is value type (subtype of AnyVal). And scala structural typing want instance of reference type (AnyRef) – zvez Oct 4 '12 at 5:13
14

Scala's structural type doesn't require AnyRef.

Certainly, the following method declaration doesn't work as expected.

def sum(e: { def *(x: Double): Double }) = e * 2.0

The reason of that is the above code is interpreted as the followings:

def sum(e: AnyRef { def *(x: Double): Double}) = e * 2.0

If you specify Any explicitly, the code works:

scala> def sum(e: Any { def *(x: Double): Double }) = e * 2.0
sum: (e: Any{def *(x: Double): Double})Double

scala> sum(10.0)
res0: Double = 20.0
  • It's worth noting that this behavior is defined in section "3.2.7 Compound Types" of the spec: "A compound type may also consist of just a refinement {R} with no preceding component types. Such a type is equivalent to AnyRef{R}." – Travis Brown Oct 29 '12 at 13:12
9

Your sum method expects a subtype of AnyRef while Double and other numeric types are subtypes of AnyVal. What you should do instead, is to use the Numeric typeclass.

def sum[E:Numeric](e:E) = {
  val n = implicitly[Numeric[E]]
  n.toDouble(e) * 2
}

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