题解 | #二叉树根节点到叶子节点的所有路径和#
二叉树根节点到叶子节点的所有路径和
http://www.nowcoder.com/practice/185a87cd29eb42049132aed873273e83
关键在于对叶子节点的判断。只有在叶子节点才会将路径和 push 进容器。
这个题算是和 NC8、NC9 一脉相承的
/** * struct TreeNode { * int val; * struct TreeNode *left; * struct TreeNode *right; * }; */ class Solution { public: vector<vector<int>> NodeSums; void dfs(TreeNode*root, vector<int> partSum){ if(!root) return; partSum.push_back(root->val); if(root->left == nullptr && root->right == nullptr){ NodeSums.push_back(partSum); } dfs(root->left, partSum); dfs(root->right, partSum); } int sumNumbers(TreeNode* root) { dfs(root, {}); // NodeSums 进行解析 int allSum = 0; for(const auto & arr: NodeSums){ int val = 0; for(int i =0; i < arr.size(); ++i){ val += arr[i]*pow(10, arr.size() - i - 1); } allSum+=val; } return allSum; } };