[lintcode] Binary Tree Maximum Path Sum II

时间:2023-03-08 19:50:55
[lintcode] Binary Tree Maximum Path Sum II

Given a binary tree, find the maximum path sum from root.

The path may end at any node in the tree and contain at least one node in it.

给一棵二叉树,找出从根节点出发的路径中,和最大的一条。

这条路径可以在任何二叉树中的节点结束,但是必须包含至少一个点(也就是根了)。

/**

 * Definition of TreeNode:

 * public class TreeNode {

 *     public int val;

 *     public TreeNode left, right;

 *     public TreeNode(int val) {

 *         this.val = val;

 *         this.left = this.right = null;

 *     }

 * }

 */

public class Solution {

    /**

     * @param root the root of binary tree.

     * @return an integer

     */

    public int maxPathSum2(TreeNode root) {

        if (root ==  null) {

            return Integer.MIN_VALUE;

        }

        int left = maxPathSum2(root.left);

        int right = maxPathSum2(root.right);

        return root.val + Math.max(0, Math.max(left, right));

    }

}

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