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I realize this is a hotly debated, controversial topic for Java programmers, but I believe my problem is somewhat unique. My algorithm REQUIRES pass by reference. I am doing a clockwise/counterclockwise pre-order traversal of a general tree (i.e. n-children) to assign virtual (x,y) coordinates. This simply means I count (and tag) the nodes of tree I visit as I visit them.

/**
 * Generates a "pre-ordered" list of the nodes contained in this object's subtree
 * Note: This is counterclockwise pre-order traversal
 * 
 * @param clockwise set to true for clockwise traversal and false for counterclockwise traversal
 * 
 * @return Iterator<Tree> list iterator
 */
public Iterator<Tree> PreOrder(boolean clockwise)
{
    LinkedList<Tree> list = new LinkedList<Tree>();
    if(!clockwise)
        PreOCC(this, list);
    else
        PreO(this,list);
    count = 0;
    return list.iterator();
}
private void PreOCC(Tree rt, LinkedList<Tree> list)
{
    list.add(rt);
    rt.setVirtual_y(count);
    count++;
    Iterator<Tree> ci = rt.ChildrenIterator();
    while(ci.hasNext())
        PreOCC(ci.next(), list);      
}
private void PreO(Tree rt, LinkedList<Tree> list, int count)
{
    list.add(rt);
    rt.setX_vcoordinate(count);
    Iterator<Tree> ci = rt.ReverseChildrenIterator();
    while(ci.hasNext())
        PreO(ci.next(), list, ++count);
}

Here I generate the structure of the tree:

Tree root = new Tree(new Integer(0));
root.addChild(new Tree(new Integer(1), root));
root.addChild(new Tree(new Integer(2), root));
root.addChild(new Tree(new Integer(3), root));
Iterator<Tree> ci = root.ChildrenIterator();
ci.next();
Tree select = ci.next();
select.addChild(new Tree(new Integer(4), select));
select.addChild(new Tree(new Integer(5), select));

And here is my output when I print the order the nodes are traversed and the coordinates it assigns to the respective node.

0 3 2 5 4 1
0 1 2 3 4 3

0 1 2 4 5 3
0 1 2 3 4 3

Note: The first two lines is a clockwise pre-order traversal and assignment of the x-coordinates. The next two lines are a counterclockwise pre-order traversal and assignment of they y-coordinates.

My question is how I can get the second lines to read: 0 1 2 3 4 5

EDIT 1: Here is the code I use to print the order I visit the nodes and the coordinates I assign.

Iterator<Tree> pre = root.PreOrder(true);
System.out.println("              \t");
while(pre.hasNext())
    System.out.print(pre.next() + "\t");

pre = root.PreOrder(true);
System.out.println();
System.out.println("x-coordinates:\t");
while(pre.hasNext())
System.out.print(pre.next().getVirtual_x() + "\t");

System.out.println();
System.out.println();

Iterator<Tree> preCC = root.PreOrder(false);
System.out.println("              \t");
while(preCC.hasNext())
    System.out.print(preCC.next() + "\t");

preCC = root.PreOrder(false);
System.out.println();
System.out.println("x-coordinates:\t");
while(preCC.hasNext())
System.out.print(preCC.next().getVirtual_y() + "\t");

Also here is a quote to better explain the x,y coordinates. the vertices.the y-coordinates for the vertices.

Compute the counterclockwise pre-ordering of the vertices of T (the ordering are numbered from 0 to n − 1), use them as the x-coordinates for the vertices.

Compute the clockwise pre-ordering of the vertices of T (the ordering are numbered from 0 to n − 1), use them as the y-coordinates for the vertices.

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1  
So controversial.... –  Thomas Eding Oct 30 '10 at 20:24
    
I agree. Which makes it even harder to understand what to do here! –  Nathan Oct 30 '10 at 20:30
    
Nathan are you sure the Tree you are constructing has the structure you intend? I don't see how a pre-order traversal of the nodes would visit them in the order of 012345. –  matt b Oct 31 '10 at 3:06
    
@matt: I'm not visiting them in this order. The order the nodes are visited is the top line. I'll post all that code since it seems to be confusing for a lot of people. –  Nathan Oct 31 '10 at 21:05

3 Answers 3

Java's pass by value, always - for both primitives and objects. It's references that are passed for non-primitives, so you can change the state of the objects they point to but not the references themselves.

From James Gosling in "The Java Programming Language":

"...There is exactly one parameter passing mode in Java - pass by value - and that keeps things simple. .."

I think that's the final authority on this.

I realize this is a hotly debated, controversial topic for Java programmers

No, there's no debate. This has been baked into the language since the beginning by James Gosling. If you think it's controversial, you're sadly deluded or ignorant.

share|improve this answer
    
Ok, I understand this, but how does this help me solve my problem? The reason for asking this question was not to spark a debate, but move towards a solution to the problem I presented. –  Nathan Oct 30 '10 at 20:42
1  
Sadly enough there is debate - uninformed on one side, of course. Some random chap emailed me about this just last night, trying to convince me that Java always uses pass by reference :( –  Jon Skeet Oct 30 '10 at 20:44
    
It's like creationism versus evolution for me: both sides aren't equal in weight. –  duffymo Oct 30 '10 at 20:46
    
@Nathan - Sorry, the way you worded your question makes it sound like you not only think that Java is pass by reference, but that it's the solution to your problem. If you don't believe that, I'd edit your wording. I'd also make your problem clearer, because tree traversal by recursion is commonly done in Java. Maybe there's something else that you're missing. –  duffymo Oct 30 '10 at 20:47
1  
I think they're about on par. –  duffymo Oct 31 '10 at 1:05

actually, there is a way to pass by reference in Java:

class Pointer {
    private Object ptr;
    public Pointer(Object v)  { set(v);  }
    public void set(Object v) { ptr = v; }
    public Object get()       { return ptr; }
}

and you use them:

public void swap(Pointer a, Pointer b) {
    Object tmp = a.get();
    a.set(b.get());
    b.set(tmp);
}

and call swap like this:

public static void main(String[] args) {
    Integer one = 1; 
    Integer two = 2;
    Pointer pone; pone.set(one);
    Pointer ptwo; ptwo.set(two);
    swap(pone, ptwo);
    System.out.println((Integer) pone.get());
    System.out.println((Integer) ptwo.get());
}

though, if you're really doing this, then you're probably either insane or just not thinking in Java yet.

share|improve this answer
6  
Just to be clear, that's not actually doing pass by reference. It's simulating pass by reference via an extra level of indirection. I'm not saying it doesn't work, just that it's not like it's making the language change its passing scheme :) –  Jon Skeet Oct 30 '10 at 20:43
1  
This is not passing by reference - sorry. –  duffymo Oct 30 '10 at 20:54
    
@duffymo: yes, it's not passing by reference, it's more similar to pass-by-pointer. If you replace all a.get() with *a and a.set(...) with *a = ..., you'll get the more familiar pass-by-pointer from C/C++. pointer is generally agreed to be a specific form of reference, therefore pass-by-pointer is a specific type of pass-by-reference (though some purists may disagree, since the pointer itself is still passed by value). –  Lie Ryan Oct 30 '10 at 21:13
1  
@duffymo: also, you need a little sense of humor ;) –  Lie Ryan Oct 30 '10 at 21:16
1  
When I see something humorous, I'll laugh. If you're expressing your wry side with this code Lie Ryan, I'm afraid that SO, the Internet, and the browser are filtering it out. –  duffymo Oct 30 '10 at 21:30

You don't require pass by reference, you require a function with side effects. Pass by reference would be one way to achieve this; using a mutable object as a function argument would be another.

private void PreO(Tree rt, LinkedList<Tree> list, int[] count)
{
    list.add(rt);
    rt.setX_vcoordinate(count[0]);
    Iterator<Tree> ci = rt.ReverseChildrenIterator();
    while(ci.hasNext()) {
        ++count[0];
        PreO(ci.next(), list, count);
    }
}
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