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my inputs results 24, 4, 2,3,9,10,32 and i am getting following result 2,3,4,24 please let me know where i am doing wrong. i am using a an explicit stack when i have manually checked this program the node is not going through elseif at 4 on stack even it has right sub tree.

         public void inorderNonRcursive(Node root){
         Stack s=new Stack();
         Node node=root;
         Node k;
         int c=0;
        if(node!=null){s.push(node);}

         while(!s.stack.isEmpty())
         {   
            //node=(Node) s.stack.get(s.stack.size()-1);
            System.out.println("first condition"+(node.getleft()!=null && (node.getVisited()==false))+"second condi"+(node.getRight()!=null));
                    if(node.getleft()!=null && (node.getVisited()==false))
                    {
                           node=node.getleft();
                           s.push(node);
                           System.out.println("   from 1           "+(++c)); 
                }else if(node.getRight()!=null)
                {
                k=s.pop();
                System.out.println(k.getvalue());
                node=node.getRight();
                s.push(node);
                System.out.println("    from 2          "+(++c)); 
                }else {
                  k=s.pop();
                 System.out.println(k.getvalue());
                 System.out.println("        from 3      "+(++c)); 

                 }  

               }

             }
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Can you post the code for your Node class? –  Jeff Gohlke Oct 3 '12 at 1:23

2 Answers 2

up vote 6 down vote accepted

Ok. To me, there are two problems in the design: the algorithm seems to be the recursive one adapted for iteration, and the Node class knows about being visited. Here is a different solution (you will need to adapt it a bit):

    // Inorder traversal:
    // Keep the nodes in the path that are waiting to be visited
    Stack s = new Stack(); 
    // The first node to be visited is the leftmost
    Node node = root;
    while (node != null)
    {
        s.push(node);
        node = node.left;
    }
    // Traverse the tree
    while (s.size() > 0)
    {
        // Visit the top node
        node = (Node)s.pop();
        System.out.println((String)node.data);
        // Find the next node
        if (node.right != null)
        {
            node = node.right;
            // The next node to be visited is the leftmost
            while (node != null)
            {
                s.push(node);
                node = node.left;
            }
        }
    }

Referring back to my first comments, you don't say you wrote pseudo code and tested it. I think this a key step in writing new algorithms.

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brilliant! thank you –  codewarrior Oct 9 '13 at 19:40

This looks like a class exercise, designed to help you understand binary trees.

Before you write any code, draw a picture of your tree, with a value at each node, such as "A", "B", "C", etc. Then starting from the root node, see what you need to do to visit each node in order. Write what you have learned in pseudo code, and test it by doing what it says. Make sure you test all the different cases you can think of for each node (you should have at least three). Put about seven nodes in your tree.

Now you can start on your code. Type in your pseudo code as comments, then insert your Java code in between each comment.

Enjoy :-)

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Thank you for you advice but this is not xlass exercise and i have already tested it using node circles and passing step by step and i have also printed conditions on eveey single iteration to know what actully happening.the actual problem is i have a right node 9 for 4 node even though it has a right node its not taking second condition where i am checking for right node as true. I have also implimented recirsive method befor i have started this which gives me perfect answer. –  krishna Oct 3 '12 at 15:07

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