Extract Leaves of a Binary Tree in a Doubly Linked List
Given a Binary Tree, extract all leaves of it in a Doubly Linked List (DLL). Note that the DLL need to be created in-place. Assume that the node structure of DLL and Binary Tree is same, only the meaning of left and right pointers are different. In DLL, left means previous pointer, and right means next pointer.
Let the following be input binary tree
1
/ \
2 3
/ \ \
4 5 6
/ \ / \
7 8 9 10
Output:
Doubly Linked List
785910
Modified Tree:
1
/ \
2 3
/ \
4 6 We need to traverse all leaves and connect them by changing their left and right pointers. We also need to remove them from the Binary Tree by changing left or right pointers in parent nodes. There can be many ways to solve this. In the following implementation, we add leaves at the beginning of the current linked list and update the head of the list using the pointer to head pointer. Since we insert at the beginning, we need to process leaves in reverse order. For reverse order, we first traverse the right subtree, then the left subtree. We use return values to update left or right pointers in parent nodes.
C++
// C++ program to extract leaves of // a Binary Tree in a Doubly Linked List #include <bits/stdc++.h>using namespace std; // Structure for tree and linked list class Node { public: int data; Node *left, *right; }; // Main function which extracts all // leaves from given Binary Tree. // The function returns new root of // Binary Tree (Note that root may change // if Binary Tree has only one node).// The function also sets *head_ref as // head of doubly linked list. left pointer // of tree is used as prev in DLL // and right pointer is used as next Node* extractLeafList(Node *root, Node **head_ref) { // Base cases if (root == NULL) return NULL; if (root->left == NULL && root->right == NULL) { // This node is going to be added // to doubly linked list of leaves, // set right pointer of this node // as previous head of DLL. We // don't need to set left pointer // as left is already NULL root->right = *head_ref; // Change left pointer of previous head if (*head_ref != NULL) (*head_ref)->left = root; // Change head of linked list *head_ref = root; return NULL; // Return new root } // Recur for right and left subtrees root->right = extractLeafList(root->right, head_ref); root->left = extractLeafList(root->left, head_ref); return root; } // Utility function for allocating node for Binary Tree. Node* newNode(int data) { Node* node = new Node(); node->data = data; node->left = node->right = NULL; return node; } // Utility function for printing tree in In-Order. void print(Node *root) { if (root != NULL) { print(root->left); cout<<root->data<<" "; print(root->right); } } // Utility function for printing double linked list. void printList(Node *head) { while (head) { cout<<head->data<<" "; head = head->right; } } // Driver code int main() { Node *head = NULL; Node *root = newNode(1); root->left = newNode(2); root->right = newNode(3); root->left->left = newNode(4); root->left->right = newNode(5); root->right->right = newNode(6); root->left->left->left = newNode(7); root->left->left->right = newNode(8); root->right->right->left = newNode(9); root->right->right->right = newNode(10); cout << "Inorder Traversal of given Tree is:\n"; print(root); root = extractLeafList(root, &head); cout << "\nExtracted Double Linked list is:\n"; printList(head); cout << "\nInorder traversal of modified tree is:\n"; print(root); return 0; } // This code is contributed by rathbhupendra |
C
// C program to extract leaves of a Binary Tree in a Doubly Linked List#include <stdio.h>#include <stdlib.h> // Structure for tree and linked liststruct Node{ int data; struct Node *left, *right;}; // Main function which extracts all leaves from given Binary Tree.// The function returns new root of Binary Tree (Note that root may change// if Binary Tree has only one node). The function also sets *head_ref as// head of doubly linked list. left pointer of tree is used as prev in DLL// and right pointer is used as nextstruct Node* extractLeafList(struct Node *root, struct Node **head_ref){ // Base cases if (root == NULL) return NULL; if (root->left == NULL && root->right == NULL) { // This node is going to be added to doubly linked list // of leaves, set right pointer of this node as previous // head of DLL. We don't need to set left pointer as left // is already NULL root->right = *head_ref; // Change left pointer of previous head if (*head_ref != NULL) (*head_ref)->left = root; // Change head of linked list *head_ref = root; return NULL; // Return new root } // Recur for right and left subtrees root->right = extractLeafList(root->right, head_ref); root->left = extractLeafList(root->left, head_ref); return root;} // Utility function for allocating node for Binary Tree.struct Node* newNode(int data){ struct Node* node = (struct Node*)malloc(sizeof(struct Node)); node->data = data; node->left = node->right = NULL; return node;} // Utility function for printing tree in In-Order.void print(struct Node *root){ if (root != NULL) { print(root->left); printf("%d ",root->data); print(root->right); }} // Utility function for printing double linked list.void printList(struct Node *head){ while (head) { printf("%d ", head->data); head = head->right; }} // Driver program to test above functionint main(){ struct Node *head = NULL; struct Node *root = newNode(1); root->left = newNode(2); root->right = newNode(3); root->left->left = newNode(4); root->left->right = newNode(5); root->right->right = newNode(6); root->left->left->left = newNode(7); root->left->left->right = newNode(8); root->right->right->left = newNode(9); root->right->right->right = newNode(10); printf("Inorder Traversal of given Tree is:\n"); print(root); root = extractLeafList(root, &head); printf("\nExtracted Double Linked list is:\n"); printList(head); printf("\nInorder traversal of modified tree is:\n"); print(root); return 0;} |
Java
// Java program to extract leaf nodes from binary tree// using double linked list // A binary tree nodeclass Node { int data; Node left, right; Node(int item) { data = item; right = left = null; }} public class BinaryTree { Node root; Node head; // will point to head of DLL Node prev; // temporary pointer // The main function that links the list list to be traversed public Node extractLeafList(Node root) { if (root == null) return null; if (root.left == null && root.right == null) { if (head == null) { head = root; prev = root; } else { prev.right = root; root.left = prev; prev = root; } return null; } root.left = extractLeafList(root.left); root.right = extractLeafList(root.right); return root; } //Prints the DLL in both forward and reverse directions. public void printDLL(Node head) { Node last = null; while (head != null) { System.out.print(head.data + " "); last = head; head = head.right; } } void inorder(Node node) { if (node == null) return; inorder(node.left); System.out.print(node.data + " "); inorder(node.right); } // Driver program to test above functions public static void main(String args[]) { BinaryTree tree = new BinaryTree(); tree.root = new Node(1); tree.root.left = new Node(2); tree.root.right = new Node(3); tree.root.left.left = new Node(4); tree.root.left.right = new Node(5); tree.root.right.right = new Node(6); tree.root.left.left.left = new Node(7); tree.root.left.left.right = new Node(8); tree.root.right.right.left = new Node(9); tree.root.right.right.right = new Node(10); System.out.println("Inorder traversal of given tree is : "); tree.inorder(tree.root); tree.extractLeafList(tree.root); System.out.println(""); System.out.println("Extracted double link list is : "); tree.printDLL(tree.head); System.out.println(""); System.out.println("Inorder traversal of modified tree is : "); tree.inorder(tree.root); }} // This code has been contributed by Mayank Jaiswal(mayank_24) |
Python3
# Python program to extract leaf nodes from binary tree# using double linked list # A binary tree nodeclass Node: # Constructor to create a new node def __init__(self, data): self.data = data self.left = None self.right = None # Main function which extracts all leaves from given Binary Tree.# The function returns new root of Binary Tree (Note that # root may change if Binary Tree has only one node).# The function also sets *head_ref as head of doubly linked list.# left pointer of tree is used as prev in DLL# and right pointer is used as nextdef extractLeafList(root): # Base Case if root is None: return None if root.left is None and root.right is None: # This node is going to be added to doubly linked # list of leaves, set pointer of this node as # previous head of DLL. We don't need to set left # pointer as left is already None root.right = extractLeafList.head # Change the left pointer of previous head if extractLeafList.head is not None: extractLeafList.head.left = root # Change head of linked list extractLeafList.head = root return None # Return new root # Recur for right and left subtrees root.right = extractLeafList(root.right) root.left = extractLeafList(root.left) return root # Utility function for printing tree in InOrderdef printInorder(root): if root is not None: printInorder(root.left) print (root.data,end=" ") printInorder(root.right) def printList(head): while(head): if head.data is not None: print (head.data,end=" ") head = head.right # Driver program to test above functionextractLeafList.head = Node(None)root = Node(1)root.left = Node(2)root.right = Node(3)root.left.left = Node(4)root.left.right = Node(5)root.right.right = Node(6)root.left.left.left = Node(7)root.left.left.right = Node(8)root.right.right.left = Node(9)root.right.right.right = Node(10) print ("Inorder traversal of given tree is:")printInorder(root) root = extractLeafList(root) print ("\nExtract Double Linked List is:")printList(extractLeafList.head) print ("\nInorder traversal of modified tree is:")printInorder(root) |
C#
// C# program to extract leaf // nodes from binary tree// using double linked listusing System; // A binary tree nodepublic class Node { public int data; public Node left, right; public Node(int item) { data = item; right = left = null; }} public class BinaryTree { Node root; Node head; // will point to head of DLL Node prev; // temporary pointer // The main function that links // the list list to be traversed public Node extractLeafList(Node root) { if (root == null) return null; if (root.left == null && root.right == null) { if (head == null) { head = root; prev = root; } else { prev.right = root; root.left = prev; prev = root; } return null; } root.left = extractLeafList(root.left); root.right = extractLeafList(root.right); return root; } // Prints the DLL in both forward // and reverse directions. public void printDLL(Node head) { Node last = null; while (head != null) { Console.Write(head.data + " "); last = head; head = head.right; } } void inorder(Node node) { if (node == null) return; inorder(node.left); Console.Write(node.data + " "); inorder(node.right); } // Driver code public static void Main(String []args) { BinaryTree tree = new BinaryTree(); tree.root = new Node(1); tree.root.left = new Node(2); tree.root.right = new Node(3); tree.root.left.left = new Node(4); tree.root.left.right = new Node(5); tree.root.right.right = new Node(6); tree.root.left.left.left = new Node(7); tree.root.left.left.right = new Node(8); tree.root.right.right.left = new Node(9); tree.root.right.right.right = new Node(10); Console.WriteLine("Inorder traversal of given tree is : "); tree.inorder(tree.root); tree.extractLeafList(tree.root); Console.WriteLine(""); Console.WriteLine("Extracted double link list is : "); tree.printDLL(tree.head); Console.WriteLine(""); Console.WriteLine("Inorder traversal of modified tree is : "); tree.inorder(tree.root); }} // This code has been contributed by 29AjayKumar |
Javascript
<script> // javascript program to extract leaf nodes from binary tree // using var linked list // A binary tree node class Node { constructor(val) { this.data = val; this.left = null; this.right = null; } } var root; var head; // will point to head of DLL var prev; // temporary pointer // The main function that links the list list to be traversed function extractLeafList(root) { if (root == null) return null; if (root.left == null && root.right == null) { if (head == null) { head = root; prev = root; } else { prev.right = root; root.left = prev; prev = root; } return null; } root.left = extractLeafList(root.left); root.right = extractLeafList(root.right); return root; } // Prints the DLL in both forward and reverse directions. function printDLL(head) { var last = null; while (head != null) { document.write(head.data + " "); last = head; head = head.right; } } function inorder(node) { if (node == null) return; inorder(node.left); document.write(node.data + " "); inorder(node.right); } // Driver program to test above functions root = new Node(1); root.left = new Node(2); root.right = new Node(3); root.left.left = new Node(4); root.left.right = new Node(5); root.right.right = new Node(6); root.left.left.left = new Node(7); root.left.left.right = new Node(8); root.right.right.left = new Node(9); root.right.right.right = new Node(10); document.write("Inorder traversal of given tree is :<br/> "); inorder(root); extractLeafList(root); document.write("<br/>"); document.write("Extracted var link list is :<br/> "); printDLL(head); document.write("<br/>"); document.write("Inorder traversal of modified tree is : <br/>"); inorder(root); // This code contributed by umadevi9616</script> |
Output
Inorder Traversal of given Tree is: 7 4 8 2 5 1 3 9 6 10 Extracted Double Linked list is: 7 8 5 9 10 Inorder traversal of modified tree is: 4 2 1 3 6
Time Complexity: O(n), the solution does a single traversal of a given Binary Tree.
Auxiliary Space: O(h), height of the Binary Tree due to recursion call stack.
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