[LeetCode] Sum Root to Leaf Numbers 求根到叶节点数字之和,Path Sum,Path Sum

 

Given a binary tree containing digits from 0-9 only, each root-to-leaf path could represent a number.

An example is the root-to-leaf path 1->2->3 which represents the number 123.

Find the total sum of all root-to-leaf numbers.

Note: A leaf is a node with no children.

Example:

Input: [1,2,3]
    1
   / \
  2   3
Output: 25
Explanation:
The root-to-leaf path 1->2 represents the number 12.
The root-to-leaf path 1->3 represents the number 13.
Therefore, sum = 12 + 13 = 25.

Example 2:

Input: [4,9,0,5,1]
    4
   / \
  9   0
 / \
5   1
Output: 1026
Explanation:
The root-to-leaf path 4->9->5 represents the number 495.
The root-to-leaf path 4->9->1 represents the number 491.
The root-to-leaf path 4->0 represents the number 40.
Therefore, sum = 495 + 491 + 40 = 1026.

 

这道求根到叶节点数字之和的题跟之前的求 Path Sum 很类似,都是利用DFS递归来解,这道题由于不是单纯的把各个节点的数字相加,而是每遇到一个新的子结点的数字,要把父结点的数字扩大10倍之后再相加。如果遍历到叶结点了,就将当前的累加结果sum返回。如果不是,则对其左右子结点分别调用递归函数,将两个结果相加返回即可,参见代码如下:

 

解法一:

class Solution {
public:
    int sumNumbers(TreeNode* root) {
        return sumNumbersDFS(root, 0);
    }
    int sumNumbersDFS(TreeNode* root, int sum) {
        if (!root) return 0;
        sum = sum * 10 + root->val;
        if (!root->left && !root->right) return sum;
        return sumNumbersDFS(root->left, sum) + sumNumbersDFS(root->right, sum);
    }
};

 

我们也可以采用迭代的写法,这里用的是先序遍历的迭代写法,使用栈来辅助遍历,首先将根结点压入栈,然后进行while循环,取出栈顶元素,如果是叶结点,那么将其值加入结果res。如果其右子结点存在,那么其结点值加上当前结点值的10倍,再将右子结点压入栈。同理,若左子结点存在,那么其结点值加上当前结点值的10倍,再将左子结点压入栈,是不是跟之前的 Path Sum 极其类似呢,参见代码如下:

 

解法二:

class Solution {
public:
    int sumNumbers(TreeNode* root) {
        if (!root) return 0;
        int res = 0;
        stack<TreeNode*> st{{root}};
        while (!st.empty()) {
            TreeNode *t = st.top(); st.pop();
            if (!t->left && !t->right) {
                res += t->val;
            }
            if (t->right) {
                t->right->val += t->val * 10;
                st.push(t->right);
            }
            if (t->left) {
                t->left->val += t->val * 10;
                st.push(t->left);
            }
        }
        return res;
    }
};

 

类似题目:

Path Sum

Binary Tree Maximum Path Sum

 

参考资料:

https://leetcode.com/problems/sum-root-to-leaf-numbers/

https://leetcode.com/problems/sum-root-to-leaf-numbers/discuss/41367/Non-recursive-preorder-traverse-Java-solution

https://leetcode.com/problems/sum-root-to-leaf-numbers/discuss/41452/Iterative-C%2B%2B-solution-using-stack-(similar-to-postorder-traversal)

 

    原文作者:Grandyang
    原文地址: http://www.cnblogs.com/grandyang/p/4273700.html
    本文转自网络文章,转载此文章仅为分享知识,如有侵权,请联系博主进行删除。
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