10

If I define the following function to return a function:

def foo(): (Int*) => String = { is =>
    is.map(_.toString).mkString(", ")
}

And then try to reference it:

val bar = foo()
bar(1, 2, 3)

I get the compiler error

Too many arguments (3) for method apply...

But when I explicitly define the reference type it compiles fine:

val bar2: (Int*) => String = foo()
bar2(4, 5, 6)

Is there any way I can define my function foo() without needing this explicit reference type?

1
  • 1
    def foo(): (Int*) => String does not seem to compile on my machine with Scala 2.13. I get error: repeated parameters are only allowed in method signatures; use Seq instead Jul 8, 2019 at 11:01

1 Answer 1

13

This is a known bug, which was "fixed" in Scala 2.13 by removing the ability to use * in types outside of method signatures at all.

If you only care about pre-2.13 Scala versions, you can use the workaround you've identified—explicitly annotate the function variable with the starred type. If you need to support 2.13, you can do something like this, thanks to Scala's single abstract method syntax:

trait MyVarargsFunc[-A, +B] {
  def apply(is: A*): B
}

val f: MyVarargsFunc[Int, String] = is => is.map(_.toString).mkString(", ")

Or if you want to get really fancy:

trait *=>[-A, +B] { def apply(is: A*): B }

val f: Int *=> String = is => is.map(_.toString).mkString(", ")

And then:

scala> f(1, 2, 3)
res0: String = 1, 2, 3

This will also work on 2.12 (I checked), and it should work on 2.11 with -Xexperimental (and it'll work even on 2.10 or vanilla 2.11 if you instantiate MyVarargsFunc explicitly—you just don't get the nice function literal syntax).

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.