given a binary tree and a sum, find all root-to-leaf paths where each path’s sum equals the given sum.
Answers
#include<stdio.h>
#include<stdlib.h>
#define bool int
/* A binary tree node has data, pointer to left child
and a pointer to right child */
struct node
{
int data;
struct node* left;
struct node* right;
};
/*
Given a tree and a sum, return true if there is a path from the root
down to a leaf, such that adding up all the values along the path
equals the given sum.
Strategy: subtract the node value from the sum when recurring down,
and check to see if the sum is 0 when you run out of tree.
*/
bool hasPathSum(struct node* node, int sum)
{
/* return true if we run out of tree and sum==0 */
if (node == NULL)
{
return (sum == 0);
}
else
{
bool ans = 0;
/* otherwise check both subtrees */
int subSum = sum - node->data;
/* If we reach a leaf node and sum becomes 0 then return true*/
if ( subSum == 0 && node->left == NULL && node->right == NULL )
return 1;
if(node->left)
ans = ans || hasPathSum(node->left, subSum);
if(node->right)
ans = ans || hasPathSum(node->right, subSum);
return ans;
}
}
/* UTILITY FUNCTIONS */
/* Helper function that allocates a new node with the
given data and NULL left and right pointers. */
struct node* newnode(int data)
{
struct node* node = (struct node*)
malloc(sizeof(struct node));
node->data = data;
node->left = NULL;
node->right = NULL;
return(node);
}
/* Driver program to test above functions*/
int main()
{
int sum = 21;
/* Constructed binary tree is
10
/ \
8 2
/ \ /
3 5 2
*/
struct node *root = newnode(10);
root->left = newnode(8);
root->right = newnode(2);
root->left->left = newnode(3);
root->left->right = newnode(5);
root->right->left = newnode(2);
if(hasPathSum(root, sum))
printf("There is a root-to-leaf path with sum %d", sum);
else
printf("There is no root-to-leaf path with sum %d", sum);
getchar();
return 0;
}