Given a binary tree, check whether it is a mirror of itself (ie, symmetric around its center).
For example, this binary tree is symmetric:
1 / \ 2 2 / \ / \ 3 4 4 3
But the following is not:
1 / \ 2 2 \ \ 3 3
Note:
Bonus points if you could solve it both recursively and iteratively.
二叉树是否对称的本质,其实是判定两棵树是否镜像。
递归是很常见的实现方式,最简便。
/** * Definition for binary tree * struct TreeNode { * int val; * TreeNode *left; * TreeNode *right; * TreeNode(int x) : val(x), left(NULL), right(NULL) {} * }; */ class Solution { public: bool isSymmetric(TreeNode *root) { if(!root) return true; return compRoot(root -> left, root -> right); } private: bool compRoot(TreeNode* lroot, TreeNode* rroot){ if(!lroot) return (NULL == rroot); if(NULL == rroot) return false; if(lroot -> val != rroot -> val) return false; return (compRoot(lroot -> left, rroot -> right) && compRoot(lroot -> right, rroot -> left)); } };
非递归,我的方法其实还是很常规,用栈来代替。因为是对称比较,所以要两个栈。
这个思路其实可以稍微简化一下,改用一个双端队列deque实现。比起用两个栈来,显得稍微“洋气”一点 ==。
/** * Definition for binary tree * struct TreeNode { * int val; * TreeNode *left; * TreeNode *right; * TreeNode(int x) : val(x), left(NULL), right(NULL) {} * }; */ class Solution { public: bool isSymmetric(TreeNode *root) { if(!root) return true; if(!root -> left && !root -> right) return true; if( (!root -> left && root -> right) || (root -> left && !root -> right) ) return false; deque<TreeNode*> dq; dq.push_front(root -> left); dq.push_back(root -> right); while(!dq.empty()){ TreeNode* lroot = dq.front(); TreeNode* rroot = dq.back(); dq.pop_front(); dq.pop_back(); if(lroot -> val != rroot -> val) return false; if( (!lroot -> right && rroot -> left) || (lroot -> right && !rroot -> left) ) return false; if(lroot -> right){ dq.push_front(lroot -> right); dq.push_back(rroot -> left); } if( (!lroot -> left && rroot -> right) || (lroot -> left && !rroot -> right) ) return false; if(lroot -> left){ dq.push_front(lroot -> left); dq.push_back(rroot -> right); } } return true; } };