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I have some code that is similar to the following:

class testClass {
    class A(val next:Option[A]){
        def printA=println("A called")

    }

    class B(val someValue:Int){
        def printB=println("B called with value "+someValue)
    }

    def printStuff[T](obj:T):Any={
        obj match{
        case a:A=>{ a.printA
                    return new A(Some(a))
                    }
        case b:B=>{ b.printB
                    return  if (b.someValue==0) new B(0) else
                        printStuff(new B(b.someValue-1))
                    }
        }
    }

Here, I'd like for my method printStuff to return an object with the same type as the input. However, when trying to compile this, I get the following error :

error: type mismatch;
found   : a.type (with underlying type testClass.this.A)
required: T
return a

with a similar error for return b . I realise that I could set the return type to Any,but in my "real" code, I am applying the function in a recursive descent manner, so it would force me to add quite a few asInstanceOfs, something which I'd like to avoid.

Is it possible to get Scala's type system to figure out what I'm trying to write, without having to completely rewrite the function?

EDIT: I've tried to edit my example to bring out things that might be important in my real code :

  • the fact that it's recursive

  • the fact that its return type depends on one of the arguments.

share|improve this question
    
Why return obj (return keyword is not necessary) at the end of printStuff() not feasible? –  Tomasz Nurkiewicz Aug 14 '12 at 16:29
    
in my production code, I rarely return the same object, but construct other objects. I've tried to update the example to clear this part up –  rtpg Aug 14 '12 at 16:43
    
The above code compiled for me when I pasted it into the REPL –  Luigi Plinge Aug 14 '12 at 16:55

2 Answers 2

up vote 3 down vote accepted

Why not simply overload printStuff for each argument type, since this is effectively what you're doing anyway?

def printStuff(a : A) = {a.printA; new A(Some(a))}
def printStuff(b : B) = {b.printB; new B(b.someValue - 1)}

Alternatively, if there's common behaviour you want to abstract out, and so keep the single method, you can go down the typeclass route:

trait Cloneable[T] { def clone(t : T) : T }
object Cloneable {
  implicit object AIsCloneable extends Cloneable[A] { def clone(a : A) = new A(Some(a)) }
  implicit object BIsCloneable extends Cloneable[B] { def clone(b : B) : B = if (b.someValue == 0) new B(0) else new B(b.someValue -1) }
}

def printStuff[T : Cloneable](t : T) = implicitly[Cloneable[T]].clone(t)
share|improve this answer
    
typeclass is definitely the right approach IMO. I'm fairly sure common interface with a return type consistent with input is what is really being asked for, the problem is trying to implement it all in one place. –  Brian Smith Aug 14 '12 at 23:03

You could add asInstanceOf to the return. Would that cause a problem in your production code?

Something like:

def printStuff[T](obj:T):T={
    obj match{
      case a:A=>{ a.printA
        a.asInstanceOf[T]
      }
      case b:B=>{ b.printB
        b.asInstanceOf[T]
      }
    }
  }
share|improve this answer
    
I have many different cases in my production code (maybe around 20), and I'd really try to avoid going that route (it seems contrary to the scala way) –  rtpg Aug 14 '12 at 16:42
    
I really don't think you can do it without explicit conversion (isInstanceOf), or having all your classes share a common type (implement an Interface?), or using Any as the return type. There is no way for Scala to type check a method that returns a different type depending on the value passed and a type matching construct. Of course, I could be wrong. –  pcalcao Aug 14 '12 at 16:49

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