1

Dears, I want to implement this behavior:

"Trespassers will be shot, survivors will be shot again"

But I get this stacktrace:

Exception in thread "main" java.lang.StackOverflowError
    at java.lang.String.equals(String.java:975)
    at test.Person.isDead(Person.java:14)
    at test.Shooter.shoot(Shooter.java:7)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)
    at test.Shooter.shoot(Shooter.java:8)

The 'Property' class:

package test;

public class Property {

    private Shooter shooter = new Shooter();

    public void punish(Person tresspasser) {

        shooter.shoot(tresspasser);
    }
}

The Shooter class:

package test;

public class Shooter {

    public void shoot(Person person) {

        if(!person.isDead()){
            shoot(person);
        }
    }
}

The 'Person' class:

package test;

public class Person {

    private String name;

    public Person(String name) {

        this.name = name;
    }

    public void tresspass(Property property) {

        property.punish(this);
    }

    public boolean isDead(){

        return !name.equals("Chuck Norris");
    }
}

And finally, the Main class:

package test;

public class Main {

    public static void main(String args[]) {

        Person person = new Person("Chuck Norris");

        Property myProperty = new Property();

        person.tresspass(myProperty);
    }
}

What am I doing wrong?

I use eclipse and the problem occurs in Java 6, 7 and 8...

S.

  • 1
    s/Chuck Norris/Jon Skeet/ – Mureinik Apr 22 '16 at 19:18
  • This is where stepping through your code in your debugger would help you see why it recurses forever. – Peter Lawrey Apr 22 '16 at 19:35
4

Your mistake is in your Person Constructor. Add the clause

if(name.equals("Chuck Norris")){
    throw new ChuckNorrisException("Chuck Norris saw through your ploy to consider him a person");
}

and then you'll be fine.

  • 3
    I was always told to not throw a ChuckNorrisException otherwise the ChuckNorrisException would throw me... – Bamboomy Apr 29 '16 at 20:16
10

return !name.equals("Chuck Norris"); always returns false if the person's name is "Chuck Norris" and therefore you loop infinitely.

You likely have limited ammo so you should consider some kind of ammunition functionality.

  • 4
    This person is immortal. Even you have unlimited ammo, you will spend your whole life shooting him, generation by generation. – Ethan F. Apr 22 '16 at 19:21
3

In the following snippet you loop on shoot while the person is alive. Since Chuck Norris can not die, you end up shooting infinitely on him and he ends up killing your program with a StackOverflowError:

public void shoot(Person person) {

    if(!person.isDead()){
        shoot(person);
    }
}

You can set a maximum number of ammunition or add a firstShot argument to allow only 2 shots. For example:

public void shoot(Person person) {
    shoot(person, true);
}

private void shoot(Person person, boolean firstShot) {
    if(firstShot && !person.isDead()) {
        shoot(person, false);
    }
}
  • but won't he be angry then? – Bamboomy Apr 22 '16 at 19:21
  • 2
    If you shoot him only 2 times, I think he may not even notice it. So you should be safe. – Raphaël Apr 22 '16 at 19:23

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.