Print all nodes that are at distance k from a leaf node

Given a Binary Tree and a positive integer k, print all nodes that are distance k from a leaf node.

Here the meaning of distance is different from previous post. Here k distance from a leaf means k levels higher than a leaf node. For example if k is more than height of Binary Tree, then nothing should be printed. Expected time complexity is O(n) where n is the number nodes in the given Binary Tree.

Recommended: Please solve it on “PRACTICE” first, before moving on to the solution.

The idea is to traverse the tree. Keep storing all ancestors till we hit a leaf node. When we reach a leaf node, we print the ancestor at distance k. We also need to keep track of nodes that are already printed as output. For that we use a boolean array visited[].

C++

/* Program to print all nodes which are at distance k from a leaf */
#include <iostream> 
using namespace std; 
#define MAX_HEIGHT 10000 
  
struct Node { 
    int key; 
    Node *left, *right; 
}; 
  
/* utility that allocates a new Node with the given key  */
Node* newNode(int key) 
{ 
    Node* node = new Node; 
    node->key = key; 
    node->left = node->right = NULL; 
    return (node); 
} 
  
/* This function prints all nodes that are distance k from a leaf node 
   path[] --> Store ancestors of a node 
   visited[] --> Stores true if a node is printed as output.  A node may be k 
                 distance away from many leaves, we want to print it once */
void kDistantFromLeafUtil(Node* node, int path[], bool visited[], 
                          int pathLen, int k) 
{ 
    // Base case 
    if (node == NULL) 
        return; 
  
    /* append this Node to the path array */
    path[pathLen] = node->key; 
    visited[pathLen] = false; 
    pathLen++; 
  
    /* it's a leaf, so print the ancestor at distance k only 
       if the ancestor is not already printed  */
    if (node->left == NULL && node->right == NULL && pathLen - k - 1 >= 0 && visited[pathLen - k - 1] == false) { 
        cout << path[pathLen - k - 1] << " "; 
        visited[pathLen - k - 1] = true; 
        return; 
    } 
  
    /* If not leaf node, recur for left and right subtrees */
    kDistantFromLeafUtil(node->left, path, visited, pathLen, k); 
    kDistantFromLeafUtil(node->right, path, visited, pathLen, k); 
} 
  
/* Given a binary tree and a nuber k, print all nodes that are k 
   distant from a leaf*/
void printKDistantfromLeaf(Node* node, int k) 
{ 
    int path[MAX_HEIGHT]; 
    bool visited[MAX_HEIGHT] = { false }; 
    kDistantFromLeafUtil(node, path, visited, 0, k); 
} 
  
/* Driver program to test above functions*/
int main() 
{ 
    // Let us create binary tree given in the above example 
    Node* root = newNode(1); 
    root->left = newNode(2); 
    root->right = newNode(3); 
    root->left->left = newNode(4); 
    root->left->right = newNode(5); 
    root->right->left = newNode(6); 
    root->right->right = newNode(7); 
    root->right->left->right = newNode(8); 
  
    cout << "Nodes at distance 2 are: "; 
    printKDistantfromLeaf(root, 2); 
  
    return 0; 
} 

Java

// Java program to print all nodes at a distance k from leaf 
// A binary tree node 
class Node { 
    int data; 
    Node left, right; 
  
    Node(int item) 
    { 
        data = item; 
        left = right = null; 
    } 
} 
  
class BinaryTree { 
    Node root; 
  
    /* This function prints all nodes that are distance k from a leaf node 
     path[] --> Store ancestors of a node 
     visited[] --> Stores true if a node is printed as output.  A node may 
     be k distance away from many leaves, we want to print it once */
    void kDistantFromLeafUtil(Node node, int path[], boolean visited[], 
                              int pathLen, int k) 
    { 
        // Base case 
        if (node == null) 
            return; 
  
        /* append this Node to the path array */
        path[pathLen] = node.data; 
        visited[pathLen] = false; 
        pathLen++; 
  
        /* it's a leaf, so print the ancestor at distance k only 
         if the ancestor is not already printed  */
        if (node.left == null && node.right == null
            && pathLen - k - 1 >= 0 && visited[pathLen - k - 1] == false) { 
            System.out.print(path[pathLen - k - 1] + " "); 
            visited[pathLen - k - 1] = true; 
            return; 
        } 
  
        /* If not leaf node, recur for left and right subtrees */
        kDistantFromLeafUtil(node.left, path, visited, pathLen, k); 
        kDistantFromLeafUtil(node.right, path, visited, pathLen, k); 
    } 
  
    /* Given a binary tree and a nuber k, print all nodes that are k 
     distant from a leaf*/
    void printKDistantfromLeaf(Node node, int k) 
    { 
        int path[] = new int[1000]; 
        boolean visited[] = new boolean[1000]; 
        kDistantFromLeafUtil(node, path, visited, 0, k); 
    } 
  
    // Driver program to test the above functions 
    public static void main(String args[]) 
    { 
        BinaryTree tree = new BinaryTree(); 
  
        /* Let us construct the tree shown in above diagram */
        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.left = new Node(6); 
        tree.root.right.right = new Node(7); 
        tree.root.right.left.right = new Node(8); 
  
        System.out.println(" Nodes at distance 2 are :"); 
        tree.printKDistantfromLeaf(tree.root, 2); 
    } 
} 
  
// This code has been contributed by Mayank Jaiswal 

Python3

# Program to print all nodes which are at  
# distance k from a leaf  
  
# utility that allocates a new Node with  
# the given key  
class newNode: 
    def __init__(self, key): 
        self.key = key  
        self.left = self.right = None
  
# This function prints all nodes that  
# are distance k from a leaf node  
# path[] -. Store ancestors of a node  
# visited[] -. Stores true if a node is  
# printed as output. A node may be k distance  
# away from many leaves, we want to print it once  
def kDistantFromLeafUtil(node, path, visited,  
                                 pathLen, k): 
      
    # Base case  
    if (node == None): 
        return
  
    # append this Node to the path array 
    path[pathLen] = node.key  
    visited[pathLen] = False
    pathLen += 1
  
    # it's a leaf, so print the ancestor at  
    # distance k only if the ancestor is  
    # not already printed  
    if (node.left == None and node.right == None and 
                            pathLen - k - 1 >= 0 and 
                            visited[pathLen - k - 1] == False): 
        print(path[pathLen - k - 1], end = " ")  
        visited[pathLen - k - 1] = True
        return
  
    # If not leaf node, recur for left  
    # and right subtrees  
    kDistantFromLeafUtil(node.left, path,  
                         visited, pathLen, k) 
    kDistantFromLeafUtil(node.right, path,  
                         visited, pathLen, k) 
  
# Given a binary tree and a nuber k,  
# print all nodes that are k distant from a leaf 
def printKDistantfromLeaf(node, k): 
    global MAX_HEIGHT 
    path = [None] * MAX_HEIGHT  
    visited = [False] * MAX_HEIGHT 
    kDistantFromLeafUtil(node, path, visited, 0, k) 
  
# Driver Code 
MAX_HEIGHT = 10000
  
# Let us create binary tree given in  
# the above example  
root = newNode(1)  
root.left = newNode(2)  
root.right = newNode(3)  
root.left.left = newNode(4)  
root.left.right = newNode(5)  
root.right.left = newNode(6)  
root.right.right = newNode(7)  
root.right.left.right = newNode(8)  
  
print("Nodes at distance 2 are:", end = " ")  
printKDistantfromLeaf(root, 2) 
  
# This code is contributed by pranchalK 

C#

using System; 
  
// C# program to print all nodes at a distance k from leaf 
// A binary tree node 
public class Node { 
    public int data; 
    public Node left, right; 
  
    public Node(int item) 
    { 
        data = item; 
        left = right = null; 
    } 
} 
  
public class BinaryTree { 
    public Node root; 
  
    /* This function prints all nodes that are distance k from a leaf node  
     path[] --> Store ancestors of a node  
     visited[] --> Stores true if a node is printed as output.  A node may  
     be k distance away from many leaves, we want to print it once */
    public virtual void kDistantFromLeafUtil(Node node, int[] path, bool[] visited, int pathLen, int k) 
    { 
        // Base case 
        if (node == null) { 
            return; 
        } 
  
        /* append this Node to the path array */
        path[pathLen] = node.data; 
        visited[pathLen] = false; 
        pathLen++; 
  
        /* it's a leaf, so print the ancestor at distance k only  
         if the ancestor is not already printed  */
        if (node.left == null && node.right == null && pathLen - k - 1 >= 0 && visited[pathLen - k - 1] == false) { 
            Console.Write(path[pathLen - k - 1] + " "); 
            visited[pathLen - k - 1] = true; 
            return; 
        } 
  
        /* If not leaf node, recur for left and right subtrees */
        kDistantFromLeafUtil(node.left, path, visited, pathLen, k); 
        kDistantFromLeafUtil(node.right, path, visited, pathLen, k); 
    } 
  
    /* Given a binary tree and a nuber k, print all nodes that are k  
     distant from a leaf*/
    public virtual void printKDistantfromLeaf(Node node, int k) 
    { 
        int[] path = new int[1000]; 
        bool[] visited = new bool[1000]; 
        kDistantFromLeafUtil(node, path, visited, 0, k); 
    } 
  
    // Driver program to test the above functions 
    public static void Main(string[] args) 
    { 
        BinaryTree tree = new BinaryTree(); 
  
        /* Let us construct the tree shown in above diagram */
        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.left = new Node(6); 
        tree.root.right.right = new Node(7); 
        tree.root.right.left.right = new Node(8); 
  
        Console.WriteLine(" Nodes at distance 2 are :"); 
        tree.printKDistantfromLeaf(tree.root, 2); 
    } 
} 
  
// This code is contributed by Shrikant13 

Output:

Nodes at distance 2 are: 1 3

Time Complexity: Time Complexity of above code is O(n) as the code does a simple tree traversal.

Space Optimized Solution :

Java

// Java program to print all nodes at a distance k from leaf 
// A binary tree node 
class Node { 
    int data; 
    Node left, right; 
  
    Node(int item) 
    { 
        data = item; 
        left = right = null; 
    } 
} 
  
class BinaryTree { 
    Node root; 
  
    /* Given a binary tree and a nuber k, print all nodes that are k  
    distant from a leaf*/
    int printKDistantfromLeaf(Node node, int k) 
    { 
        if (node == null) 
            return -1; 
        int lk = printKDistantfromLeaf(node.left, k); 
        int rk = printKDistantfromLeaf(node.right, k); 
        boolean isLeaf = lk == -1 && lk == rk; 
        if (lk == 0 || rk == 0 || (isLeaf && k == 0)) 
            System.out.print(" " + node.data); 
        if (isLeaf && k > 0) 
            return k - 1; // leaf node 
        if (lk > 0 && lk < k) 
            return lk - 1; // parent of left leaf 
        if (rk > 0 && rk < k) 
            return rk - 1; // parent of right leaf 
  
        return -2; 
    } 
  
    // Driver program to test the above functions 
    public static void main(String args[]) 
    { 
        BinaryTree tree = new BinaryTree(); 
  
        /* Let us construct the tree shown in above diagram */
        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.left = new Node(6); 
        tree.root.right.right = new Node(7); 
        tree.root.right.left.right = new Node(8); 
  
        System.out.println(" Nodes at distance 2 are :"); 
        tree.printKDistantfromLeaf(tree.root, 2); 
    } 
} 
  
// This code has been contributed by Vijayan Annamalai 

Please write comments if you find anything incorrect, or you want to share more information about the topic discussed above

Attention reader! Don’t stop learning now. Get hold of all the important DSA concepts with the DSA Self Paced Course at a student-friendly price and become industry ready.

My Personal Notes

Recommended: Please solve it on “PRACTICE” first, before moving on to the solution.

C++

Java

Python3

C#

Java

Recommended Posts: