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Please see BST codes below. It only outputs "5". what did I do wrong?

#include <iostream>

class bst {
 public:
  bst(const int& numb) : root(new node(numb)) {}

  void insert(const int& numb) {
    root->insert(new node(numb), root);
  }

  void inorder() {
    root->inorder(root);
  }

 private:
  class node {
   public:
    node(const int& numb) : left(NULL), right(NULL) {
      value = numb;
    }

    void insert(node* insertion, node* position) {
      if (position == NULL) position = insertion;
      else if (insertion->value > position->value)
        insert(insertion, position->right);
      else if (insertion->value < position->value)
        insert(insertion, position->left);
    }

    void inorder(node* tree) {
      if (tree == NULL)
        return;
      inorder(tree->left);
      std::cout << tree->value << std::endl;
      inorder(tree->right); 
    }
  private:
    node* left;
    node* right;
    int value;
  };

  node* root;
};

int main() {
  bst tree(5);
  tree.insert(4);
  tree.insert(2);
  tree.insert(10);
  tree.insert(14);
  tree.inorder();
  return 0;
}
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3 Answers 3

up vote 1 down vote accepted

use reference:

void insert(node* insertion, node* &position)

void inorder(node* &tree) {

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could you explain why we need to use reference here? –  ihm Jun 2 '12 at 4:39
    
@ihm, since you are modifying the contents of the pointer "root". Thus the 2nd argument of insert should be a reference. The argument in "inorder" need not to be a reference. –  edison Jun 2 '12 at 4:45

It's because you never set the values of the left and right fields of root.

Somewhere you have to say, for a given node, n:

n->left = ...
n->right = ...

You never did this. So you ended up with a single node tree. Your root has two null children.

You can get sneaky about this, too: if you do what @user1431015 suggests, and pass the child pointers by reference, then the assignment to the reference paraemter (position) will do the trick. Passing them by value, as you did, only assigns to a local variable, and not to the tree itself.

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Your insert never ends up doing anything in most cases. The base case of your recurstion is:

void insert(node* insertion, node* position) {
     if (position == NULL) position = insertion;

But all 'position' is is a locally scoped pointer value. Assigning to it will have no effect once your function exits.

What you need to do is make the position parameter a reference to pointer. IN other words, make it of type node*&. Then the assignment will stick after you exit the function.

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thank you. I got it –  ihm Jun 2 '12 at 4:43

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