5

I'm said to have PersonImpl<Base : IPerson> generics class, where IPerson is interface of Person. I'm trying to do this

interface IPerson {
    fun getName(): String
}

interface IPoliceMan : IPerson {
    fun getDepartmentName(): String
}

open class PersonImpl<T: IPerson>(private val name: String) : T

and then

class PoliceMan(private val departmentName: String, name: String) : PersonImpl<IPoliceMan>(name)

So I want the compiler to say I need to implement getDepartmentName() in PoliceMan, but this is not possible as Only classes and interfaces may serve as supertypes

So the only variant is like this

class PoliceMan(private val departmentName: String, name: String) : IPoliceMan, PersonImpl<IPoliceMan>(name)

with interface duplication.

Can I have generic supertype in Kotlin (or Java)?

P.S. If it's not possible, is there any mechanism of emulating this behaviour?

1
  • 3
    Forcing a class to implement a method is not the purpose of generics, that's what extending abstract classes and/or implementing interfaces are for.
    – Slaw
    Apr 7, 2019 at 10:21

1 Answer 1

0

I don't think you need generics for this, just implementing interfaces.

interface IPerson { // "HasName"
    val name: String
}

interface IPoliceMan : IPerson { // "HasDepartmentName"
    val departmentName: String
}

open class Person(
    override val name: String
) : IPerson

class PoliceMan(
    override val departmentName: String, 
    name: String
) : Person(name), IPoliceMan
3
  • Yeah, obviously this is clear variant, but I was said to implement like it was in question (the task is based on C++, where it's possible to inherit from template) Apr 7, 2019 at 14:52
  • I don't think you can do that in Kotlin. Apr 7, 2019 at 14:54
  • 2
    I agree that you can't do that in Kotlin. In C++ (as I understand it), generics are implemented with templates, so each instantiation can have a different superclass. Whereas in Kotlin (and Java), generics are implemented using type erasure; as far as the runtime is concerned, there's only a single class, and so it can only have one superclass.
    – gidds
    Apr 7, 2019 at 18:12

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