1

This question already has an answer here:

I have no idea why it's not working.

Error message in eclipse: The method test(Fruit, capture#1-of ? extends Fruit) in the type BiPredicate is not applicable for the arguments (Fruit, Mango)

import java.util.function.BiPredicate;

public class PredTest {

    public static void main(String[] args) {

        class Fruit {
            public String name;
            public String color;
            Fruit(String name) {this.name = name; }
        };

        class Apple extends Fruit {
            Apple() {super("Apple");}
        };
        class Mango extends Fruit {
            Mango() {super("Mango");}
        };

        BiPredicate<Fruit, ? extends Fruit> tester = (f, nf) -> {
            System.out.println(nf.name);
            return true;
        };
        Fruit f = new Fruit("Not named");
        Apple a = new Apple();
        Mango m = new Mango();

// ########### I see error in the below line
        System.out.println(tester.test(f, m));

    }

}

marked as duplicate by Michael java Nov 22 '18 at 10:45

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3

Suppose you changed your lambda expression to:

    BiPredicate<Fruit, ? extends Fruit> tester = (Fruit f, Apple nf) -> {
        System.out.println(nf.name);
        return true;
    };

Would you still expect the compiler to allow passing a Mango to this BiPredicate?

Based on the compile time type - BiPredicate<Fruit, ? extends Fruit> - of tester, the compiler doesn't know if Mango is allowed, so it doesn't allow it.

Changing your BiPredicate to:

BiPredicate<Fruit, ? super Fruit> tester = (f, nf) -> {
    System.out.println(nf.name);
    return true;
};

will eliminate the compilation error.

  • But how can it then access nf.name, if nf could be any superclass of Fruit (eg Object)? – daniu Nov 22 '18 at 10:41
  • 1
    @daniu BiPredicate<Fruit, ? super Fruit> could be assigned a BiPredicate<Fruit, Fruit>, so you can't pass an Object to tester.test(). – Eran Nov 22 '18 at 10:50
  • But BiPredicate<Fruit, ? super Fruit> could also be assigned a BiPredicate<Fruit, Object>, no? – daniu Nov 22 '18 at 13:12
  • 1
    @daniu yes, but then the lambda expression won't contain nf.name. And anyway, the compiler can't allow you to pass Object as the second parameter of the BiPredicate's method, since your code must be type safe for any possible assignment to the BiPredicate<Fruit, ? super Fruit> variable. – Eran Nov 22 '18 at 13:18

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