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My program

class Building {
Building() {
    System.out.print("b ");
}

Building(String name) {
    this();
    System.out.print("bn " + name);
}
};

public class House extends Building {
House() {
    System.out.print("h "); // this is line# 1
}

House(String name) {
    this(); // This is line#2
    System.out.print("hn " + name);
}

public static void main(String[] args) {
    new House("x ");
}
}

We know that compiler will write a call to super() as the first line in the child class's constructor. Therefore should not the output be:

b (call from compiler written call to super(), before line#2

b (again from compiler written call to super(),before line#1 )

h hn x

But the output is

b h hn x

Why is that?

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2  
House(x) -> this() (House()) -> Building () –  muruga Dec 19 '12 at 16:59
    
It wouldn't make much sense, either, if the super() constructor was called more than once - and this would probably also be a violation of Java's contract for constructors. –  Hanno Binder Dec 19 '12 at 17:01

5 Answers 5

up vote 5 down vote accepted

When a constructor starts with a call to another constructor (either this or super), the compiler does not insert a call to the superclass's default constructor. Thus, the calls tree is:

main
 \-> House(String)                (explicit call)
      |-> House()                 (explicit call)
      |    |-> Building()         (implicit call)
      |    |    |-> Object()      (implicit call)
      |    |    \-> print "b "
      |    \-> print "h "
      \-> print "hn x"
share|improve this answer
    
Thanks. Any place where I can read more about this? say Standard or something? Want to know the reason behind that. –  Anon Dec 19 '12 at 17:00
    
@Anon - It's all spelled out in great detail in Section 8.8 of the Java Language Specification. Be prepared for a lot of dense material. A more gentle introduction (with some details missing) is available in the Java tutorial on inheritance. –  Ted Hopp Dec 19 '12 at 17:07
    
thanks. Last question (only asking because some commentator has brought doubt over my understanding) implicit call to super would be before line#1 or line#2 ? –  Anon Dec 19 '12 at 17:12
    
@Anon - The implicit call to super() is before line #1. The compiler never inserts a superclass constructor call if the constructor starts with a call to another constructor (of any kind, either this or super). Also, if constructor x is going to call constructor y, the call to y must be the first statement in the body of x. –  Ted Hopp Dec 19 '12 at 17:17

As per JLS 8.8.7

If a constructor body does not begin with an explicit constructor invocation and the constructor being declared is not part of the primordial class Object, then the constructor body implicitly begins with a superclass constructor invocation "super();"

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Thanks but my question in effect is, why is super() called only once –  Anon Dec 19 '12 at 17:06
    
@Anon: Because you have explicit constructor call this() at line2, if no explicit constructor call, then only implicit call super() will happen. Please read the text JLS one more time. –  Nambari Dec 19 '12 at 17:11

Your House(string name) constructor calls House(), which in turn calls Building(). Building(string name) is never called.

If you wanted to explicitly call Building(string name), in your House(string name) constructor you could add this: super(name); instead of this();

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Yes, I know Buidling (String name) would never be called, I never even mentioned it would be so. My question is something different. –  Anon Dec 19 '12 at 17:02
    
Sorry I missed where you placed // this is line #1 and was just using your code as a reference. –  Brian Driscoll Dec 19 '12 at 17:05

Here is the visual contol flow of your code:

new House("x ")---> House(args)---> House() --->Building()--->Object()
                               ^^this()    ^implicit      ^implicit super() call 
                                             super()
                                             call

---> stands for invoking

Output: b(from building no-args), h(from no-args House), hn x (from args House) b h hn x

From what I know, implicit call to super should be before this(), right? Line#2, in my code

EDIT:

The first line in the constructor is either a call to super class constructor using super() or a call to overloaded constructor using this(). if there is a call to overloaded constructor using this() there will be no call to super().

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From what I know, implicit call to super should be before this(), right? Line#2, in my code –  Anon Dec 19 '12 at 17:09
    
@Anon nope, if you call an overloaded cons explicitly, there will be no super() call in that constructor, check my edit. –  PermGenError Dec 19 '12 at 17:11
    
Thanks. Learned something new. +1. –  Anon Dec 19 '12 at 17:14
    
@Anon you are welcome :) –  PermGenError Dec 19 '12 at 17:15
House(x) -> House() + "hn" + "x"
            Building() + "h" + "hn" +"x"
            "b" + "h" + "hn" + "x"

The call to the superclass will be called only once.

If you want Building(string name) to be called, you have to call it explicitly.

I think it could be easier for you to use super() instead of this()

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I think I understood now. I have another question - why is call to super made only once? –  Anon Dec 19 '12 at 17:07

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