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I've defined a function with generics and I have some trouble understanding the error that the compiler is giving me. The problem can be expressed simply with :

def myfunc[T <: MyClass](param:MyClass):T = param

It gives me this error on param in my the body : Expression of type MyClass doesn't conform to the expected type T.

Why? param fits the upper bound of T. How can I make something like this work without resorting to casting param to T?

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5 Answers

You have the variance backwards. If T <: MyClass, then you can supply a T where MyClass is expected. But you cannot give a MyClass where T is expected.

To illustrate:

def myfunc(x: Any): String = x

This gives the same error, for the same reason. An Any is not a String, and your MyClass is not a T.

This is what you may have meant:

def myfunc[T >: MyClass](param:MyClass):T = param

Which works fine.

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Yes, but no. I don't want T to be a supertype of MyClass. I really want T to be a subtype. However, I realized that the return type cannot be T, since T could be any subtype of MyClass and the runtime type of param also could be a subtype of MyClass, and they don't necessarily match. –  subb Dec 13 '12 at 3:53
    
Try pretending that Scala does not have subtyping, and figure out the requirement from there. Then reintroduce subtyping if you need it. –  Apocalisp Dec 17 '12 at 19:48
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Look at this:

class A(); class B extends A;

scala> def myfunc[T <: A,U >: A](param: U):T = param
<console>:8: error: type mismatch;
found   : param.type (with underlying type U)
required: T
       def myfunc[T <: A,U >: A](param: U):T = param

Your param:MyClass does really have a lower bound (>: MyClass), like in Java - it can be any descendant of MyClass. So, how could you run myfunc(B) and return type that is higher on class diagram than A? B considered lower than A in an inheritance diagram, you return B but say that it is really <: A. Error.

Sometimes its useful to explicitly declare all those types like, T, U, V etc and see what compiler says.

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Your assumption that param relates to T because they share a common ancestor is wrong.

For example, a base class A can have two subclasses B and C. If T is of type B and param is of type C, param is not of a type relatable to T.

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I hope to help you.

The argument type is T not MyClass.

object StackOverFlow13851352 extends App {
    class MyClass
    class YourClass extends MyClass
    def myfunc[T <: MyClass](param: T): T = param

    val clazz: YourClass = myfunc(new YourClass)
}

Scala code runner version 2.10.0-RC2 -- Copyright 2002-2012, LAMP/EPFL

java version "1.7.0_09"

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Yes, I know I can do that, but that's not the point. I want to know why the compiler refuse to understand that param's type conforms to T. –  subb Dec 13 '12 at 1:22
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Ok. Assume, you have the below:

class Animal
class Dog extends Animal

And now lets have your function below:

def myfunc[T <: Animal](param:Animal):T = param

For now assume, compiler doesn't throw error. On calling myfunc[Dog](new Animal), it should return a Dog according to function definition. But In reality, you are just sending back Animal. Which should not be allowed. Hence the error.

Now had it been:

def myfunc[T >: Dog](param:Dog):T = param

Here on calling myfunc[Animal](new Dog). The return type is of Animal. But the function returns a Dog which is correct as Dog is an Animal. Hope it clarifies

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