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java - Why is Optional<T> declared as a final class?

I was playing with the following question: Using Java 8's Optional with Stream::flatMap and wanted to add a method to a custom Optional<T> and then check if it worked.
More precise, I wanted to add a stream() to my CustomOptional<T> that returns an empty stream if no value is present, or a stream with a single element if it is present.

However, I came to the conclusion that Optional<T> is declared as final.

Why is this so? There are loads of classes that are not declared as final, and I personally do not see a reason here to declare Optional<T> final.

As a second question, why can not all methods be final, if the worry is that they would be overridden, and leave the class non-final?

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According to this page of the Java SE 8 API docs, Optional<T> is a value based class. According to this page of the API docs, value-based classes have to be immutable.

Declaring all the methods in Optional<T> as final will prevent the methods from being overridden, but that will not prevent an extending class from adding fields and methods. Extending the class and adding a field together with a method that changes the value of that field would make that subclass mutable and hence would allow the creation of a mutable Optional<T>. The following is an example of such a subclass that could be created if Optional<T> would not be declared final.

//Example created by @assylias
public class Sub<T> extends Optional<T> {
    private T t;

    public void set(T t) {
        this.t = t;
    }
}

Declaring Optional<T> final prevents the creation of subclasses like the one above and hence guarantees Optional<T> to be always immutable.


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