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In order to use MethodHandle's, i need to represent a no-return-type: void. In java it's as simple as void.class(yes, it works), in scala you can get int.class by using

scala> classOf[Int]
res1: Class[Int] = int

, but by using classOf[Void], you get

scala> val t = classOf[Void]
t: Class[Void] = class java.lang.Void

scala> t.isPrimitive
res4: Boolean = false

which isn't obviously void.class.

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I don't know anything about Scala, but how about classOf[void]? –  tbodt Nov 11 '13 at 1:27
    
@tbodt That does not work, void does not exist in Scala. –  Jesper Nov 11 '13 at 8:51

4 Answers 4

up vote 4 down vote accepted
scala> classOf[Unit]
res0: Class[Unit] = void
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See Andrew Jones' answer about return types in Scala. If you still need it though:

scala> val c = java.lang.Void.TYPE
c: Class[Void] = void

scala> c.isPrimitive
res0: Boolean = true
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Instead of

classOf[Void]

, use:

Void.TYPE

REPL Output:

scala> classOf[Void]
res14: Class[Void] = class java.lang.Void

scala> Void.TYPE
res15: Class[Void] = void
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There is no such thing as a void type in Scala. All functions return some value. If the value isn't explicitly defined, it is type Unit.

Further, void is considered a pseudo-type by Java. Because of this, there is no way for void to be the type of a return object.

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