1

Kotlin Code:

class Inva<T>{
    fun <T> x(y:T) {}
}

fun main(args: Array<Integer>) {
    var inva = Inva<Int>()
    inva.x(“123”)
}

Java Equivalent:

public class Vab<T> {

    void x(T y) {}

    public static void main(String[] args) {

       Vab<Integer> vab = new Vab<Integer>();

       vab.x("123");

   }
}

Why does the Kotlin code allow the invariant, whereas the Java code is flagged correctly as invalid?

  • 1
    How are those programs equivalent? The first class is a generic class having a generic member, the second is just a generic class. – Aluan Haddad Dec 30 '17 at 19:52
  • They both try to place an invariant property as an argument to a method. They may not be precisely the same but the kotlin code highlights placing a string into an invariant method. Java flags this as a compile type error (expecting int), Kotlin allows it to compile. – Hi Lo Dec 30 '17 at 19:55
5

These code snippets are not equivalent, since the Java snippet uses the type parameter of its class instead of declaring its own.

A comparable Java method declaration would be like this (note the additional <T> on the method itself):

<T> void x(T y) {}

And with this change, the Java class would compile just like the Kotlin variant.

| improve this answer | |
  • 1
    Exactly. Shadowing is exactly the behavior one would expect. – Aluan Haddad Dec 30 '17 at 19:59
2

First of all, your main signature is wrong, you should use Array<String> instead of Array<Integer>.

Your class has a type parameter T, which is completely unused. The embedded function x also has a type parameter T, which is independent of the class type parameter. You can change the function signature as follows:

class Inva<T>{
    fun x(y:T) {}
}

Now your call will fail as expected: Type mismatch.

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.