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 1Maximum amount of money the thief can rob = 3 + 3 + 1 = 7.
Example 2:
3 / \ 4 5 / \ \ 1 3 1Maximum amount of money the thief can rob = 4 + 5 = 9.
分析:
以下的答案有错,不知道错在哪里!
!
!难道不是统计偶数层的和与奇数层的和,然后比較大小就可得出结果?
/** * Definition for a binary tree node. * struct TreeNode { * int val; * TreeNode *left; * TreeNode *right; * TreeNode(int x) : val(x), left(NULL), right(NULL) {} * }; */ class Solution { public: int rob(TreeNode* root) { if(root==NULL) return 0; queue<TreeNode*> que;//用来总是保存当层的节点 que.push(root); int oddsum =root->val;//用于统计奇数层的和 int evensum=0; //用于统偶数层的和 //获取每一层的节点 int curlevel=2; while(!que.empty()) { int levelSize = que.size();//通过size来推断当层的结束 for(int i=0; i<levelSize; i++) { if(que.front()->left != NULL) //先获取该节点下一层的左右子,再获取该节点的元素。由于一旦压入必弹出。所以先处理左右子 que.push(que.front()->left); if(que.front()->right != NULL) que.push(que.front()->right); if(curlevel % 2 ==1) oddsum += que.front()->val; else evensum += que.front()->val; que.pop(); } curlevel++; } return oddsum > evensum ? oddsum : evensum;//奇数层的和与偶数层的和谁更大谁就是结果 } };
学习别人的代码:
int rob(TreeNode* root) { int child = 0, childchild = 0; rob(root, child, childchild); return max(child, childchild); } void rob(TreeNode* root, int &child, int &childchild) { if(!root) return; int l1 = 0, l2 = 0, r1 = 0, r2 = 0; rob(root->left, l1, l2); rob(root->right, r1, r2); child = l2 + r2 + root->val; childchild = max(l1, l2) + max(r1, r2); }
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原文地址:http://blog.csdn.net/ebowtang/article/details/50890931
原作者博客:http://blog.csdn.net/ebowtang
本博客LeetCode题解索引:http://blog.csdn.net/ebowtang/article/details/50668895