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For the record, I'm NOT a Java Beginner, but -- rather - an intermediate-level guy who kinda forgot a bit about fundamentals about Java.

class C{
    public static void main(String a[]){
        C c1=new C();
        C c2=m1(c1);        //line 4
        C c3=new C();
        c2=c3;              // line 6
        anothermethod();
    }
    static C m1(C ob1){
        ob1 =new C();      // line 10
        return ob1;
    }
    void anothermethod(){}
}

From the above code:

  • Why is it that after line 6, 2 objects of type C are eligible for Garbage Collection(GC)?

  • Why isn't it that in line 4 and line 10, a copy of c1 is passed into the m1() method. So, eventually in line 6, there is going to be 1 Object (not 2) that are going to be eligible for GC. After all, isn't java pass -by-value rather than pass-by-reference?

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2  
You use nice code obfuscator –  Roman Feb 19 '10 at 16:13
1  
this code should not compile: anothermethod is not static but being called in a static context –  Carlos Heuberger Feb 19 '10 at 17:24

2 Answers 2

up vote 1 down vote accepted

What makes you think two objects of type C are available for GC after line 6? I only see one (c2). What tool are you using that tells you otherwise?

Regarding your question about passing c1 into your m1 method: What you pass (by value) is a reference to the object -- a handle by which you can grab the object, if you will -- not a copy of it. The fact you pass a reference into m1 is completely irrelevant, in fact -- you never use that reference, you immediately overwrite it with a reference to a new object, which you then return (this does not affect the c1 that is still referenced in main).

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Refer to question 13 in the following link: examsguide.com/scjp/freequestions2.html –  Catfish Feb 19 '10 at 16:53
    
@Catfish: We're not the only ones who think they're wrong: coderanch.com/t/452512/Programmer-Certification-SCJP/… –  T.J. Crowder Feb 19 '10 at 17:18
    
@Catfish: With respect to them, they're wrong. As of Line 6 in your code (and it looks about the same as theirs), the first C created (by main) is still referenced as c1 in main; the second C created (by m1) is no longer referenced (because the variable that was referencing it is no referencing the third one) and may be GC'd; the third instance created (by main) is still referenced by both c2 and c3 in main. Thus, the second object is the only one ready for GC. At least (the only one mentioned in that code). Apologies if you read my earlier breakdown, I got my c2 and c3 mixed up. :-) –  T.J. Crowder Feb 19 '10 at 17:22
    
@ T. J. Crowder: Then I'm guessing I'm right! :-) –  Catfish Feb 21 '10 at 11:36

There's a difference between pass-references-by-value and pass-values-by-reference :)

Is Java Pass By Reference
Java is never pass by reference right right
Pass By Reference Or Pass By Value

You might want to check out Jon Skeet's article on C# parameter-passing semantics as well, seeing as it's his favorite 'programmer ignorance' pet peeve:
What's your favorite 'programmer ignorance' pet peeve.

So basically, I see your code do the following:

c1 = new C("Alice");
    // m1(C obj1) {     -- c1 gets passed to m1, a copy of the reference is made.
    //                  -- there are now two references to Alice (c1, obj1)
    //    obj1 = new C("Bob"); -- there is now one reference to Alice
                                // and one reference to Bob
    //    return obj1;  -- returns a reference to Bob(c1 still reference Alice)
    // }                -- when m1 returns, one of the references to Alice disappears.
c2 = m1(c1); // c2 points to Bob 
c3 = new C("Charlie");
c2 = c3;      // <-- Bob is eligible for collection. 
              // There are now two references to Charlie
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