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I am an AP Java Student and I am practicing for my exam. I came across this question and I don't understand the answer:

Consider the following classes:

public class A
{
  public A() { methodOne(); }

  public void methodOne() { System.out.print("A"); }
}

public class B extends A
{
  public B() { System.out.print("*"); }

  public void methodOne() { System.out.print("B"); }
}

What is the output when the following code is executed:

A obj = new B();

The correct answer is B*. Can someone please explain to me the sequence of method calls?

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Add a print statement to the constructor of A, and it may become clearer. –  Oliver Charlesworth May 1 '12 at 21:52

2 Answers 2

up vote 19 down vote accepted

The B constructor is called. The first implicit instruction of the B constructor is super() (call the default constructor of super class). So A's constructor is called. A's constructor calls super(), which invokes the java.lang.Object constructor, which doesn't print anything. Then methodOne() is called. Since the object is of type B, the B's version of methodOne is called, and B is printed. Then the B constructor continues executing, and * is printed.

It must be noted that calling an overridable method from a constructor (like A's constructor does) is very bad practice: it calls a method on an object which is not constructed yet.

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3  
+1, especially for the bad-practice bit. –  Oliver Charlesworth May 1 '12 at 21:57
    
And, the overidden method may not work the way Class A expects it to. –  Tim Pote May 1 '12 at 22:00
    
I didn't know about the implicit call to super(), thanks! –  user1104775 May 1 '12 at 22:03

The base class must be constructed before the derived class.

First A() is called which calls methodOne() which prints B.

Next, B() is called which prints *.

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