题解 | #输出二叉树的右视图#
输出二叉树的右视图
http://www.nowcoder.com/practice/c9480213597e45f4807880c763ddd5f0
class Solution {
public:
/**
* 代码中的类名、方法名、参数名已经指定,请勿修改,直接返回方法规定的值即可
* 求二叉树的右视图
* @param xianxu int整型vector 先序遍历
* @param zhongxu int整型vector 中序遍历
* @return int整型vector
*/
struct TreeNode {
int val;
TreeNode* left;
TreeNode* right;
TreeNode(int x) {val = x; left = nullptr; right = nullptr;}
};
TreeNode* bulidTree(vector<int>& pre, vector<int>& mid, int l1, int r1, int l2, int r2) {
if(l1 > r1 || l2 > r2)
return nullptr;
TreeNode* root = new TreeNode(pre[l1]); // 前序数组中的第一个数就是根节点
for(int i = l2; i <= r2; i++){
if(root->val == mid[i]) {
// 查找中序数组中和根节点值相同的元素,其前面的元素为左子树,后面元素为右子树
root->left = bulidTree(pre, mid, l1 + 1, l1 + i - l2, l2, i - 1);
root->right = bulidTree(pre, mid, l1 + i - l2 + 1, r1, i + 1, r2);
}
}
return root;
}
vector<int> solve(vector<int>& xianxu, vector<int>& zhongxu) {
// write code here
TreeNode* root = bulidTree(xianxu, zhongxu, 0, xianxu.size() - 1, 0, zhongxu.size() - 1);
vector<int> res;
if(root == nullptr)
return res;
queue<TreeNode*> q;
q.push(root);
while(!q.empty()) {
int len = q.size(); // 统计现在一层的节点数量,当节点数到达最后一个时,将节点值存入数组res
for(int i = 0; i < len; i++) {
auto t = q.front();
if(i == len - 1)
res.push_back(t->val);
q.pop();
if(t->left)
q.push(t->left);
if(t->right)
q.push(t->right);
}
}
return res;
}
};
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