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1.  public class Tahiti {
2.      Tahiti t;
3.      public static void main(String[] args) {
4.          Tahiti t = new Tahiti();
5.          Tahiti t2 = t.go(t);
6.          t2 = null;
7.          // more code here
8.      }
9.      Tahiti go(Tahiti t) {
10.         Tahiti t1 = new Tahiti(); Tahiti t2 = new Tahiti();
11.         t1.t = t2; t2.t = t1; t.t = t2;
12.         return t1;
13.     }
14. }

When line 7 is reached, how many objects are eligible for garbage collection?

as per the answer given for this question, there is no object eligible for GC at line 11; but according to me at least one object, t2, which is set to point null at line 6, should be eligible for garbage collection.

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Thanks in advance for replying.. –  Jagdeep Dec 25 '12 at 10:24
    
I am new to java so please let me know the mistake, but do not down vote for that, plz.. –  Jagdeep Dec 25 '12 at 10:24
    
Trying to get certified via SO? –  Sanchit Dec 25 '12 at 10:27
    
@irrelephant: Thanks.. –  Jagdeep Dec 25 '12 at 10:33

4 Answers 4

up vote 5 down vote accepted

The variable t2 on line 6 is not the only reference to the object. There is a reference from t to the object t2 which was created in the function go which in turn holds a reference to t1 which is the same object that was returned by the function go. So line 6 merely reduces the number of references but there still are live references to the object.

EDIT: Let's try a more elaborate explanation, first I reworked the code a bit to make explaining easier. One statement per line and less confusing variable names + I identified the three relevant objects with the letters A, B and C.

1.  public class Tahiti {
2.      Tahiti u;
3.      public static void main(String[] args) {
4.          Tahiti t = new Tahiti(); // object A
5.          Tahiti t2 = t.go(t);
6.          t2 = null;
7.          // more code here
8.      }
9.      Tahiti go(Tahiti s) {
10.         Tahiti s1 = new Tahiti(); // object B
11.         Tahiti s2 = new Tahiti(); // object C
12.         s1.u = s2;
13.         s2.u = s1;
14.         s.u = s2;
15.         return s1;
16.     }
17. }

On line 4: variable t is initiliazed to reference a new object. Let's call that object itself A (it normally has no name in java but for the sake of this explanation it is easier if it does).

On line 5: t is passed to the function go so we go to line 9

On line 9: the parameter s references the object A which was created on line 4

line 10: initializes variable s1 to point to object B

line 11: initializes variable s2 to refer to object C

line 12: s1.u is set to refer to s2 which means object B gets a reference to C

line 13: s2.u is set to refer to s1 so object C get's a reference to B

line 14: s.u is set to refer s2 which means object A get's a reference to C note that C also has a reference to B so at this point there is a chain from A to B

line 15 return object B and return to line 5

line 5: t2 is set to reference object B (B is now referred to two times once directly by t2 and once because t refers to object A which refers to C which refers to B)

line 6: the reference t2 is set to null so B looses one reference but t is still live which point to A refers to C refers to B

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But t2 object has lost reference to any live object so it should be eligible right..? –  Jagdeep Dec 25 '12 at 10:34
    
The variable t2 is not really the object it is a reference to an object and line 6 only clears that reference. The series of assignments on line 11 however created another chain of references pointing to the same object. Note these assignments set references they do not copy the involved objects. –  Eelke Dec 25 '12 at 10:40
    
I mean to ask, the object referred by t2 has lost any live reference, so that should be eligible for GC –  Jagdeep Dec 25 '12 at 10:42
    
Edited the answer –  Eelke Dec 25 '12 at 11:13

line number 11 execute before line number 6

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At line 5 you're calling the method Tahiti.go(), so the program jumps from line 5 to 10 and reaches 11 for 6.

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Thanks for replying... –  Jagdeep Dec 25 '12 at 10:31

You can just draw a table that maps between lines and the list of access paths pointing to each object immediately after the line, like so:

╔════════════╦═══════════════════════╦════════════════╦═══════════════════╗
║ After Line ║ Pointers to o1        ║ Pointers to o2 ║ Pointers to o3    ║
╠════════════╬═══════════════════════╬════════════════╬═══════════════════╣
║          3 ║ not allocated         ║ not allocated  ║ not allocated     ║
║          4 ║ main:t                ║ not allocated  ║ not allocated     ║
║          9 ║ main:t, go:this, go:t ║ not allocated  ║ not allocated     ║
║         10 ║ main:t, go:this, go:t ║ go:t1          ║ go:t2             ║
║         11 ║ main:t, go:this, go:t ║ go:t1, o3.t    ║ go:t2, o2.t, o1.t ║
║          5 ║ main:t                ║ main:t2, o3.t  ║ o2.t, o1.t        ║
║          6 ║ main:t                ║ o3.t           ║ o2.t, o1.t        ║
╚════════════╩═══════════════════════╩════════════════╩═══════════════════╝

With o1, o2 and o3 being the actual objects getting allocated. It can easily be calculated at every point how many objects can be reclaimed; in this case, after line 6 o1 is accessible from a root, o3 is accessible from o1 and o2 accessible from o3, so no object can be reclaimed.

As a side note, I noticed you wrote "but according to me at least one object, t2, ...". If this is the kind of problems you need to solve, I recommend ditching the habit of naming objects by variables pointing to them; instead give an imaginary id to each object, as I have done above with the o<n>, and treat variables as pointers to those objects instead of their names. That is because, like pointers and unlike names, an object may have more or less than one variables associated with it, and that list of associated variables can change all the time.

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