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I'm trying to call the 'equals' method from a generic type. On run time the type has an overload for 'equals' but the Object.equals(Object obj)‬ is still triggered.

This is the generic class which calls 'equals'.

public class SortedGroup <T> {
    void func(T element1,T element2) {
        if (element1.equals(element2))
            System.out.println("yes");
        else
            System.out.println("no");
}

This is the new type class that overloads 'equals'

public class Person {
    private int ID;
    public Person(int ID) {
        this.ID = ID;
    }
...
    public boolean equals(Person o) {
        return (this.ID == o.ID);
    }
...
}

and this is main.


Person p1 = new Person(1);
Person p2 = new Person(1);
SortedGroup<Person> SG = new SortedGroup<Person>();

SG.func(p1,p2);
}

I expect the output be yes but the actual output no

4

You are not overriding equals, you are overloading it (same method name, different signature). To override equals from Object correctly, you must match the method signature. This means that your equals method must take an Object, not a Person.

public boolean equals(Object o) {  // ...

It is good practice to include the @Override annotation on any method intended to override a method from a superclass or implement a method from an interface. If you had done so, then the compiler would have alerted you to the fact that your method didn't override equals.

@Override
public boolean equals(Object o) {  // ...

This also means that you'll need to test if the object passed in is actually a Person before casting and comparing member values.

It is also good practice to override hashCode so that is is consistent with equals, according to the hashCode contract.

  • Thank you for the answer, I know I'm not overriding. But why my overload method doesn't work? The program on "run-time" spouse to call equals that take a Person type. – Tal Apr 10 at 14:16
  • @Tal It does not work because SortedGroup func compilation would resolve your call to equals to equals(Object) and not equals(Person) since it does not know that T is going to be Person in runtime. You must put yourself in the compiler position, it only can work with the information it is given in the file its compiling. If you bound T to be always a Person (<T extends Person>) then it will probably work. However you should not do this and instead properly overload equals(Objects) (and hashCode())... – Valentin Ruano Apr 10 at 14:57
  • ... since you would still have problems with other classes that relay on equals and hashCode like the containers in java.util.* (e.g. ArrayList, HashMap... ). @Tal – Valentin Ruano Apr 10 at 14:58

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