22

Suppose that I declare a function as follows:

def test(args: String*) = args mkString

What is the type of args?

33

This is called a variable number of arguments or in short varargs. It's static type is Seq[T] where T represents T*. Because Seq[T] is an interface it can't be used as an implementation, which is in this case scala.collection.mutable.WrappedArray[T]. To find out such things it can be useful to use the REPL:

// static type
scala> def test(args: String*) = args
test: (args: String*)Seq[String]

// runtime type
scala> def test(args: String*) = args.getClass.getName
test: (args: String*)String

scala> test("")
res2: String = scala.collection.mutable.WrappedArray$ofRef

Varargs are often used in combination with the _* symbol, which is a hint to the compiler to pass the elements of a Seq[T] to a function instead of the sequence itself:

scala> def test[T](seq: T*) = seq
test: [T](seq: T*)Seq[T]

// result contains the sequence
scala> test(Seq(1,2,3))
res3: Seq[Seq[Int]] = WrappedArray(List(1, 2, 3))

// result contains elements of the sequence
scala> test(Seq(1,2,3): _*)
res4: Seq[Int] = List(1, 2, 3)
  • 1
    Yes, this has and interesting effect that you cannot pass the var-len args immediately, def f1(args: Int*) = args.length; def f2(args: Int*) = f1(args). It will give found Seq[Int] whereas Int is required mismatch error in f2 definition. To circumvent, you need to def f2 = f1(args: _*). So, compiler thinks that argument is a single value and sequence at the same, at compile time :) – Val Jun 9 '15 at 18:39

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