problem:
Given a binary tree, find the maximum path sum.
The path may start and end at any node in the tree.
For example:
Given the below binary tree,
1
/ 2 3
Return 6.
thinking:
(1)二叉树寻找一条路径比较难做,没有parent指针更难
(2)采用DFS遍历,从根结点开始
code:
/**
* Definition for binary tree
* struct TreeNode {
* int val;
* TreeNode *left;
* TreeNode *right;
* TreeNode(int x) : val(x), left(NULL), right(NULL) {}
* };
*/
class Solution {
public:
int calLen(TreeNode *root, int &len)
{
if (root == NULL)
{
len = 0;
return 0;
}
if (root->left == NULL && root->right == NULL)
{
len = root->val;
return root->val;
}
int leftPath, rightPath;
int leftLen;
if (root->left)
leftLen = calLen(root->left, leftPath);
else
{
leftLen = INT_MIN;
leftPath = 0;
}
int rightLen;
if (root->right)
rightLen = calLen(root->right, rightPath);
else
{
rightLen = INT_MIN;
rightPath = 0;
}
len = max(max(leftPath, rightPath) + root->val, root->val);
int maxLen = max(root->val, max(leftPath + rightPath + root->val,
max(leftPath + root->val, rightPath + root->val)));
return max(max(leftLen, rightLen), maxLen);
}
int maxPathSum(TreeNode *root) {
int len;
return calLen(root, len);
}
};leetcode || 124、Binary Tree Maximum Path Sum
原文地址:http://blog.csdn.net/hustyangju/article/details/45307843
