lintcode-94-二叉树中的最大路径和
94-二叉树中的最大路径和
给出一棵二叉树,寻找一条路径使其路径和最大,路径可以在任一节点中开始和结束(路径和为两个节点之间所在路径上的节点权值之和)
样例
给出一棵二叉树:
返回 6标签
动态规划 分治法 递归
思路
找出某节点最大和次大路径,合并这两条路径即为最大路径和。
code
/**
* Definition of TreeNode:
* class TreeNode {
* public:
* int val;
* TreeNode *left, *right;
* TreeNode(int val) {
* this->val = val;
* this->left = this->right = NULL;
* }
* }
*/
class Solution {
public:
/**
* @param root: The root of binary tree.
* @return: An integer
*/
int maxPathSum(TreeNode *root) {
int maxSum = 0x80000000;
findMaxSum(root, maxSum);
return maxSum;
}
int findMaxSum(TreeNode *root, int &curMax) {
// write your code here
int maxLeft = 0, maxRight = 0, maxValue = 0;
if(root == NULL) {
return 0;
}
maxLeft = findMaxSum(root->left, curMax);
maxRight = findMaxSum(root->right, curMax);
int temp = (0>maxLeft?0:maxLeft) + (0>maxRight?0:maxRight) + root->val;
curMax = curMax > temp ? curMax : temp;
return ( 0>(maxRight>maxLeft?maxRight:maxLeft) ? 0 : (maxRight>maxLeft?maxRight:maxLeft) ) + root->val;
}
};