标签:http ar io sp for strong on ad ef
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.
confused what "{1,#,2,3}"
means?
> read more on how binary tree is serialized on OJ.
/** * 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) { vector<int> arr(0); queue<TreeNode*> q; vector<int>::iterator index_begin,index_end; TreeNode *leaf; int cnt=1,i; int leaves=0; TreeNode *p = root; if(p==NULL) return true; q.push(p); while(!q.empty()){ arr.clear(); for(i=0,leaves=0;i<cnt;i++){ p=q.front(); arr.push_back(p->val); q.pop(); if(p->val==-999) continue; if(p->left!=NULL) { q.push(p->left); leaves++; } else { leaf=(TreeNode*)malloc(sizeof(TreeNode)); leaf->val=-999; q.push(leaf); leaves++; } if(p->right!=NULL) { q.push(p->right); leaves++; } else { leaf=(TreeNode*)malloc(sizeof(TreeNode)); leaf->val=-999; q.push(leaf); leaves++; } } cnt=leaves; if(cnt%2!=0) return false; index_begin=arr.begin(); index_end=arr.end()-1; while(index_begin<index_end){ if(*index_begin!=*index_end) return false; index_begin++; index_end--; } } return true; } };
标签:http ar io sp for strong on ad ef
原文地址:http://blog.csdn.net/uj_mosquito/article/details/41967569