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50 lines
1.6 KiB
Markdown
50 lines
1.6 KiB
Markdown
# [404. Sum of Left Leaves](https://leetcode.com/problems/sum-of-left-leaves/description/)
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# 思路
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计算一棵二叉树所有左叶子的值之和。
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## 思路一
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设置一个初始为0的全局变量res,遍历一遍树,判断某节点的左子树是否是叶子,若是,则将这个叶子的值加至res,遍历完后返回res即可。
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## 思路二
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直接递归计算结果res。因为某棵树的res等于其左子树的res加上右子树的res。
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# C++
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## 思路一
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``` C++
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class Solution {
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private:
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int res = 0;
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bool is_leaf(TreeNode *p){ // 判断是否是叶子
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if(p == NULL) return false;
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return (p -> left == NULL && p -> right == NULL);
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}
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void find_left_leaf(TreeNode *root){
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if(root == NULL || is_leaf(root)) return;
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if(is_leaf(root -> left)) res += root -> left -> val; // 左子树是叶子,加至res
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else find_left_leaf(root -> left);
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find_left_leaf(root -> right);
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}
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public:
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int sumOfLeftLeaves(TreeNode* root) {
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find_left_leaf(root);
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return res;
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}
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};
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```
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## 思路二
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``` C++
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class Solution {
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private:
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bool is_leaf(TreeNode *p){ // 判断是否是叶子
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if(p == NULL) return false;
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return (p -> left == NULL && p -> right == NULL);
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}
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public:
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int sumOfLeftLeaves(TreeNode* root) {
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if(root == NULL || is_leaf(root)) return 0;
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if(is_leaf(root -> left)) return (root -> left -> val) + sumOfLeftLeaves(root -> right);
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else return sumOfLeftLeaves(root -> left) + sumOfLeftLeaves(root -> right);
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}
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};
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```
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