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Given a Circularly doubly linked list... How can i convert it into Binary Search Tree..

The question is found at http://rajeevprasanna.blogspot.com/2011/02/convert-binary-tree-into-doubly-linked.html

I tried to write the code for the same, but it choked!! Please, some suggestions here would be good. Also, how can i find the middle of the linked list.. Please talk in terms of code (C or C++ code) and if possible small example would be good else fine.

Going through the article(URL) that i provided above, BST to Linked List was a good excercise. I tried to follow on the same principal, but my program choked... Please help...

Node ListToTree(Node head)
{
    if(head == NULL)
        return NULL;

    Node hleft = NULL, hright = NULL;

    Node root = head;

    hleft = ListToTree(head->left);
    head->left = NULL;
    root->left = hleft;

    hright = ListToTree(head->right);
    head->right = NULL;
    root->right = hright;

    return root;
}
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8  
middle of a "Circularly doubly linked list"? Think about it ... –  pmg Mar 30 '11 at 21:21
    
Need a reference to the original head and make sure right and left are not equal to it o.O –  Joe Mar 30 '11 at 21:24
    
Also I am gonna guess by choking you meant that your program crashed with a stack overflow. –  Joe Mar 30 '11 at 21:26
1  
Heh! Do you mean the median? Or do you mean the mean? Or what? I don't mean to be be mean about it. –  Pete Wilson Mar 30 '11 at 21:26
    
@Joe YEs program crashed!! –  AGeek Mar 30 '11 at 21:51

1 Answer 1

up vote 1 down vote accepted
class Node {
  Node *prev, *next;
  int value;
}

void listToTree(Node * head) {
    if (head == null)
        return;
    if (head->next == head) {
        head->prev = null;
        head->next = null;
        return head;
    }
    if (head->next->next == head) {
        head->prev = null;
        head->next->next = null;
        head->next->prev = null;
        return head;
    }

    Node *p1 = head, *p2 = head->prev;
    while (p1->value < p2.value)
        p1 = p1->next, p2 = p2->prev;
    Node * root = p1;
    root->prev->next = head;
    root->next->prev = head->prev;
    root->prev = listToTree(head);
    root->next = listToTree(root->next);
    return root;
}
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And I assume that list isn't sorted, so every element is inserted to the tree in O(log n) time. –  Artem Volkhin Mar 30 '11 at 21:41
    
List is sorted...... And have to be done, without using extra memmory... Just tweaking with pointers, this is achievable. I am trying to figure it out... read the URL that i posted in the question, and you will get an idea... –  AGeek Mar 30 '11 at 21:50
    
I've updated my code, check this. It works again in O(n log n) but without additional memory. –  Artem Volkhin Mar 31 '11 at 8:46
    
Thanks Artem.. It worked for me!! :) –  AGeek Apr 1 '11 at 0:26

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