大牛没有能做出来的题,我们要好好做一做
Invert a binary tree.
4 / 2 7 / \ / 1 3 6 9
to
4 / 7 2 / \ / 9 6 3 1
Trivia:
This problem was inspired by
this original tweet by
Max Howell:
Google: 90% of our engineers use the software you wrote (Homebrew), but you can’t invert a binary tree on a whiteboard so fuck off.
递归解决方案:
/** * 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: TreeNode* invertTree(TreeNode* root) { if(root ==NULL) return root; TreeNode* node = invertTree(root->left); root->left = invertTree(root->right); root->right = node; return root; } };
非递归解决方案:
TreeNode* invertTree(TreeNode* root) { if(root == NULL)return NULL; vector<TreeNode*> stack; stack.push_back(root); while(!stack.empty()) { TreeNode* node = stack.back(); stack.pop_back(); swap(node->left,node->right); if(node->left)stack.push_back(node->left); if(node->right)stack.push_back(node->right); } return root; }
python:
def invertTree(self, root): if root: root.left, root.right = self.invertTree(root.right), self.invertTree(root.left) return root Maybe make it four lines for better readability: def invertTree(self, root): if root: invert = self.invertTree root.left, root.right = invert(root.right), invert(root.left) return root -------------------------------------------------------------------------------- And an iterative version using my own stack: def invertTree(self, root): stack = [root] while stack: node = stack.pop() if node: node.left, node.right = node.right, node.left stack += node.left, node.right return root
def invertTree(self, root): if root is None: return None root.left, root.right = self.invertTree(root.right), self.invertTree(root.left) return root
python非递归解决方案:
DFS version: def invertTree(self, root): if (root): self.invertTree(root.left) self.invertTree(root.right) root.left, root.right = root.right, root.left return root BFS version: def bfs_invertTree(self, root): queue = collections.deque() if (root): queue.append(root) while(queue): node = queue.popleft() if (node.left): queue.append(node.left) if (node.right): queue.append(node.right) node.left, node.right = node.right, node.left return root
leetcode 226 Invert Binary Tree 翻转二叉树
原文地址:http://blog.csdn.net/wangyaninglm/article/details/46612367