Given a Binary tree, The task is to find the maximum value by subtracting the value of node B from the value of node A, where A and B are two nodes of the binary tree and A is an ancestor of B.
Examples:
Input:
Output: 7
Explanation: We can have various ancestor-node difference, some of which are given below :
8 – 3 = 5 , 3 – 7 = -4, 8 – 1 = 7, 10 – 13 = -3
Among all those differences maximum value is 7 obtained by subtracting 1 from 8, which we need to return as result.Input:
9
/ \
6 3
/ \
1 4
Output: 8
Approach:
Traverse whole binary tree to get max difference and we can obtain the result in one traversal only by following below steps :
- If current node is a leaf node then just return its value because it can’t be ancestor of any node.
- Then at each internal node try to get minimum value from left subtree and right subtree and calculate the difference between node value and this minimum value and according to that update the result.
Follow the below steps to Implement the idea:
- Recursively traverse every node (say t) of the tree:
- If t = NULL return INT_MAX
- If the current node is the leaf node then just return the node’s value.
- Recursively calling for left and right subtree for minimum value
- Update res if node value – minimum value from subtree is bigger than res i.e res = max(*res, t->key – val).
- Return minimum value got so far i.e. return min(val, t->key);.
Below is the implementation of the above idea.
// C++ program to find maximum difference between node // and its ancestor #include <bits/stdc++.h> using namespace std;
/* A binary tree node has key, pointer to left child and a pointer to right child */
struct Node {
int key;
struct Node *left, *right;
}; /* To create a newNode of tree and return pointer */ struct Node* newNode( int key)
{ Node* temp = new Node;
temp->key = key;
temp->left = temp->right = NULL;
return (temp);
} /* Recursive function to calculate maximum ancestor-node difference in binary tree. It updates value at 'res'
to store the result. The returned value of this function
is minimum value in subtree rooted with 't' */
int maxDiffUtil(Node* t, int * res)
{ /* Returning Maximum int value if node is not
there (one child case) */
if (t == NULL)
return INT_MAX;
/* If leaf node then just return node's value */
if (t->left == NULL && t->right == NULL)
return t->key;
/* Recursively calling left and right subtree
for minimum value */
int val = min(maxDiffUtil(t->left, res),
maxDiffUtil(t->right, res));
/* Updating res if (node value - minimum value
from subtree) is bigger than res */
*res = max(*res, t->key - val);
/* Returning minimum value got so far */
return min(val, t->key);
} /* This function mainly calls maxDiffUtil() */ int maxDiff(Node* root)
{ // Initialising result with minimum int value
int res = INT_MIN;
maxDiffUtil(root, &res);
return res;
} /* Helper function to print inorder traversal of binary tree */
void inorder(Node* root)
{ if (root) {
inorder(root->left);
cout << root->key << " " ;
inorder(root->right);
}
} // Driver program to test above functions int main()
{ // Making above given diagram's binary tree
Node* root;
root = newNode(8);
root->left = newNode(3);
root->left->left = newNode(1);
root->left->right = newNode(6);
root->left->right->left = newNode(4);
root->left->right->right = newNode(7);
root->right = newNode(10);
root->right->right = newNode(14);
root->right->right->left = newNode(13);
cout << maxDiff(root);
} |
/* Java program to find maximum difference between node and its ancestor */
// A binary tree node has key, pointer to left // and right child class Node {
int key;
Node left, right;
public Node( int key)
{
this .key = key;
left = right = null ;
}
} /* Class Res created to implement pass by reference of 'res' variable */
class Res {
int r = Integer.MIN_VALUE;
} public class BinaryTree {
Node root;
/* Recursive function to calculate maximum ancestor-node
difference in binary tree. It updates value at 'res'
to store the result. The returned value of this
function
is minimum value in subtree rooted with 't' */
int maxDiffUtil(Node t, Res res)
{
/* Returning Maximum int value if node is not
there (one child case) */
if (t == null )
return Integer.MAX_VALUE;
/* If leaf node then just return node's value */
if (t.left == null && t.right == null )
return t.key;
/* Recursively calling left and right subtree
for minimum value */
int val = Math.min(maxDiffUtil(t.left, res),
maxDiffUtil(t.right, res));
/* Updating res if (node value - minimum value
from subtree) is bigger than res */
res.r = Math.max(res.r, t.key - val);
/* Returning minimum value got so far */
return Math.min(val, t.key);
}
/* This function mainly calls maxDiffUtil() */
int maxDiff(Node root)
{
// Initialising result with minimum int value
Res res = new Res();
maxDiffUtil(root, res);
return res.r;
}
/* Helper function to print inorder traversal of
binary tree */
void inorder(Node root)
{
if (root != null ) {
inorder(root.left);
System.out.print(root.key + "" );
inorder(root.right);
}
}
// Driver program to test the above functions
public static void main(String[] args)
{
BinaryTree tree = new BinaryTree();
// Making above given diagram's binary tree
tree.root = new Node( 8 );
tree.root.left = new Node( 3 );
tree.root.left.left = new Node( 1 );
tree.root.left.right = new Node( 6 );
tree.root.left.right.left = new Node( 4 );
tree.root.left.right.right = new Node( 7 );
tree.root.right = new Node( 10 );
tree.root.right.right = new Node( 14 );
tree.root.right.right.left = new Node( 13 );
System.out.println(tree.maxDiff(tree.root));
}
} // This code has been contributed by Mayank // Jaiswal(mayank_24) |
# Python3 program to find maximum difference # between node and its ancestor _MIN = - 2147483648
_MAX = 2147483648
# Helper function that allocates a new # node with the given data and None left # and right pointers. class newNode:
# Constructor to create a new node
def __init__( self , key):
self .key = key
self .left = None
self .right = None
""" Recursive function to calculate maximum ancestor-node difference in binary tree. It updates value at 'res' to store the result. The returned value of this function is minimum value in subtree rooted with 't' """ def maxDiffUtil(t, res):
""" Returning Maximum value if node
is not there (one child case) """
if (t = = None ):
return _MAX, res
""" If leaf node then just return
node's value """
if (t.left = = None and t.right = = None ):
return t.key, res
""" Recursively calling left and right
subtree for minimum value """
a, res = maxDiffUtil(t.left, res)
b, res = maxDiffUtil(t.right, res)
val = min (a, b)
""" Updating res if (node value - minimum
value from subtree) is bigger than res """
res = max (res, t.key - val)
""" Returning minimum value got so far """
return min (val, t.key), res
""" This function mainly calls maxDiffUtil() """ def maxDiff(root):
# Initialising result with minimum value
res = _MIN
x, res = maxDiffUtil(root, res)
return res
""" Helper function to print inorder traversal of binary tree """ def inorder(root):
if (root):
inorder(root.left)
prf( "%d " , root.key)
inorder(root.right)
# Driver Code if __name__ = = '__main__' :
"""
Let us create Binary Tree shown
in above example """
root = newNode( 8 )
root.left = newNode( 3 )
root.left.left = newNode( 1 )
root.left.right = newNode( 6 )
root.left.right.left = newNode( 4 )
root.left.right.right = newNode( 7 )
root.right = newNode( 10 )
root.right.right = newNode( 14 )
root.right.right.left = newNode( 13 )
print (maxDiff(root))
# This code is contributed by # Shubham Singh(SHUBHAMSINGH10) |
using System;
/* C# program to find maximum difference between node and its ancestor */
// A binary tree node has key, pointer to left // and right child public class Node {
public int key;
public Node left, right;
public Node( int key)
{
this .key = key;
left = right = null ;
}
} /* Class Res created to implement pass by reference of 'res' variable */
public class Res {
public int r = int .MinValue;
} public class BinaryTree {
public Node root;
/* Recursive function to calculate maximum ancestor-node
difference in binary tree. It updates value at 'res'
to store the result. The returned value of this
function
is minimum value in subtree rooted with 't' */
public virtual int maxDiffUtil(Node t, Res res)
{
/* Returning Maximum int value if node is not
there (one child case) */
if (t == null ) {
return int .MaxValue;
}
/* If leaf node then just return node's value */
if (t.left == null && t.right == null ) {
return t.key;
}
/* Recursively calling left and right subtree
for minimum value */
int val = Math.Min(maxDiffUtil(t.left, res),
maxDiffUtil(t.right, res));
/* Updating res if (node value - minimum value
from subtree) is bigger than res */
res.r = Math.Max(res.r, t.key - val);
/* Returning minimum value got so far */
return Math.Min(val, t.key);
}
/* This function mainly calls maxDiffUtil() */
public virtual int maxDiff(Node root)
{
// Initialising result with minimum int value
Res res = new Res();
maxDiffUtil(root, res);
return res.r;
}
/* Helper function to print inorder traversal of
binary tree */
public virtual void inorder(Node root)
{
if (root != null ) {
inorder(root.left);
Console.Write(root.key + "" );
inorder(root.right);
}
}
// Driver program to test the above functions
public static void Main( string [] args)
{
BinaryTree tree = new BinaryTree();
// Making above given diagram's binary tree
tree.root = new Node(8);
tree.root.left = new Node(3);
tree.root.left.left = new Node(1);
tree.root.left.right = new Node(6);
tree.root.left.right.left = new Node(4);
tree.root.left.right.right = new Node(7);
tree.root.right = new Node(10);
tree.root.right.right = new Node(14);
tree.root.right.right.left = new Node(13);
Console.WriteLine(tree.maxDiff(tree.root));
}
} // This code is contributed by Shrikant13 |
<script> /* javascript program to find maximum difference between node and its ancestor */
// A binary tree node has key, pointer to left // and right child class Node { constructor(key) {
this .key = key;
this .left = this .right = null ;
}
} /* * Class Res created to implement pass by reference of 'res' variable
*/
class Res { constructor(){ this .r = Number.MIN_VALUE;
}
} var root;
/*
* Recursive function to calculate maximum ancestor-node difference in binary
* tree. It updates value at 'res' to store the result. The returned value of
* this function is minimum value in subtree rooted with 't'
*/
function maxDiffUtil( t, res) {
/*
* Returning Maximum var value if node is not there (one child case)
*/
if (t == null )
return Number.MAX_VALUE;
/* If leaf node then just return node's value */
if (t.left == null && t.right == null )
return t.key;
/*
* Recursively calling left and right subtree for minimum value
*/
var val = Math.min(maxDiffUtil(t.left, res), maxDiffUtil(t.right, res));
/*
* Updating res if (node value - minimum value from subtree) is bigger than res
*/
res.r = Math.max(res.r, t.key - val);
/* Returning minimum value got so far */
return Math.min(val, t.key);
}
/* This function mainly calls maxDiffUtil() */
function maxDiff( root) {
// Initialising result with minimum var value
res = new Res();
maxDiffUtil(root, res);
return res.r;
}
/*
* Helper function to print inorder traversal of binary tree
*/
function inorder( root) {
if (root != null ) {
inorder(root.left);
document.write(root.key + "" );
inorder(root.right);
}
}
// Driver program to test the above functions
// Making above given diagram's binary tree
root = new Node(8);
root.left = new Node(3);
root.left.left = new Node(1);
root.left.right = new Node(6);
root.left.right.left = new Node(4);
root.left.right.right = new Node(7);
root.right = new Node(10);
root.right.right = new Node(14);
root.right.right.left = new Node(13);
document.write(maxDiff(root));
// This code contributed by umadevi9616 </script> |
7
Time Complexity: O(N), for visiting every node of the tree.
Auxiliary Space: O(N) for recursion call stack.