【LeetCode】145. Binary Tree Postorder Traversal (3 solutions)

时间:2023-03-08 21:35:58

Binary Tree Postorder Traversal

Given a binary tree, return the postorder traversal of its nodes' values.

For example:
Given binary tree {1,#,2,3},

   1

    \

     2

    /

   3

return [3,2,1].

Note: Recursive solution is trivial, could you do it iteratively?

解法一:递归法

/**

 * 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:

    vector<int> postorderTraversal(TreeNode* root) {

        vector<int> ret;

        Helper(ret, root);

        return ret;

    }

    void Helper(vector<int>& ret, TreeNode* root)

    {

        if(root != NULL)

        {

            Helper(ret, root->left);

            Helper(ret, root->right);

            ret.push_back(root->val);

        }

    }

};

【LeetCode】145. Binary Tree Postorder Traversal (3 solutions)

解法二:借助栈的深度优先搜索,需要记录每个节点是否访问过。

/**

 * 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:

    vector<int> postorderTraversal(TreeNode* root) {

        vector<int> ret;

        if(root == NULL)

            return ret;

        stack<TreeNode*> stk;

        unordered_map<TreeNode*, bool> visited;

        stk.push(root);

        visited[root] = true;

        while(!stk.empty())

        {

            TreeNode* top = stk.top();

            if(top->left != NULL && visited[top->left] == false)

            {

                stk.push(top->left);

                visited[top->left] = true;

                continue;

            }

            if(top->right != NULL && visited[top->right] == false)

            {

                stk.push(top->right);

                visited[top->right] = true;

                continue;

            }

            ret.push_back(top->val);

            stk.pop();

        }

        return ret;

    }

};

【LeetCode】145. Binary Tree Postorder Traversal (3 solutions)

解法三:在Discussion看到一种巧妙的解法。

前序是:根左右

后序是:左右跟

因此可以将前序改为根右左,然后逆序为左右根输出。

前序遍历不需要回溯(对应图的深度遍历),是一种半层次遍历,因此效率很高。

/**

 * 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:

    vector<int> postorderTraversal(TreeNode* root) {

        vector<int> ret;

        if(root == NULL)

            return ret;

        stack<TreeNode*> stk;

        stk.push(root);

        while(!stk.empty())

        {

            TreeNode* top = stk.top();

            stk.pop();

            ret.push_back(top->val);

            if(top->left != NULL)

                stk.push(top->left);

            if(top->right != NULL)

                stk.push(top->right);

        }

        reverse(ret.begin(), ret.end());

        return ret;

    }

};

【LeetCode】145. Binary Tree Postorder Traversal (3 solutions)

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