You are given the `root` of a binary search tree (BST), where the values of **exactly** two nodes of the tree were swapped by mistake. _Recover the tree without changing its structure_. **Example 1:** ![](https://assets.leetcode.com/uploads/2020/10/28/recover1.jpg) Input: root = [1,3,null,null,2] Output: [3,1,null,null,2] Explanation: 3 cannot be a left child of 1 because 3 > 1. Swapping 1 and 3 makes the BST valid. **Example 2:** ![](https://assets.leetcode.com/uploads/2020/10/28/recover2.jpg) Input: root = [3,1,4,null,null,2] Output: [2,1,4,null,null,3] Explanation: 2 cannot be in the right subtree of 3 because 2 < 3. Swapping 2 and 3 makes the BST valid. **Constraints:** * The number of nodes in the tree is in the range `[2, 1000]`. * `-231 <= Node.val <= 231 - 1` **Follow up:** A solution using `O(n)` space is pretty straight-forward. Could you devise a constant `O(1)` space solution?