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  • 337. House Robber III

    The thief has found himself a new place for his thievery again. There is only one entrance to this area, called the "root." Besides the root, each house has one and only one parent house. After a tour, the smart thief realized that "all houses in this place forms a binary tree". It will automatically contact the police if two directly-linked houses were broken into on the same night.

    Determine the maximum amount of money the thief can rob tonight without alerting the police.

    Example 1:

         3
        / 
       2   3
            
         3   1
    

    Maximum amount of money the thief can rob = 3 + 3 + 1 = 7.

    Example 2:

         3
        / 
       4   5
      /     
     1   3   1
    

    Maximum amount of money the thief can rob = 4 + 5 = 9.

    此题是house robber的变体,解法与之前的解法类似,也是动态规划方法解决(每个子问题都和原问题相同,只是规模不同,并且满足最优子结构和重叠子问题条件)。不同之处在于,这里是树,而之前给的是数组,这里面需要用到深度优先遍历,用res数组来记录到该节点时候,最大值是多少,res[0]表示不包括该节点,而res[1]表示包括该节点,代码如下:

    /**

     * Definition for a binary tree node.

     * public class TreeNode {

     *     int val;

     *     TreeNode left;

     *     TreeNode right;

     *     TreeNode(int x) { val = x; }

     * }

     */

    public class Solution {

        public int rob(TreeNode root) {

            int[] res = subrob(root);

            return Math.max(res[0],res[1]);

        }

        public int[] subrob(TreeNode root){

            if(root==null) return new int[2];

            int[] left = subrob(root.left);

            int[] right = subrob(root.right);

            int[] res = new int[2];

            res[0] = Math.max(left[0],left[1])+Math.max(right[0],right[1]);

            res[1] = root.val+left[0]+right[0];

            return res;

        }

    }

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  • 原文地址:https://www.cnblogs.com/codeskiller/p/6357880.html
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