In a binary tree, the root node is at depth 0, and children of each depth knode are at depth k+1.
Two nodes of a binary tree are cousins if they have the same depth, but have different parents.
We are given the root of a binary tree with unique values, and the values x and y of two different nodes in the tree.
Return true if and only if the nodes corresponding to the values x and yare cousins.
Example 1:
Input: root = [1,2,3,4], x = 4, y = 3 Output: falseExample 2:
Input: root = [1,2,3,null,4,null,5], x = 5, y = 4 Output: trueExample 3:
Input: root = [1,2,3,null,4], x = 2, y = 3 Output: false
Note:
The number of nodes in the tree will be between 2 and 100.Each node has a unique integer value from 1 to 100.-----------------------------------------------------------------------------------------
额,这个题,怎么说的,弄懂了方法,就会发现这个题是比较简单的,是easy题是有道理的。要好好扎实BFS的基础。
这个题就是先把每个结点的父节点和它的位置求出,然后再比较,可以用hash。
C++代码:
/** * 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: bool isCousins(TreeNode* root, int x, int y) { queue<pair<TreeNode*,TreeNode*> > q; q.push(make_pair(root,nullptr)); int depth = 0; unordered_map<int,pair<TreeNode*,int> > mp; //TreeNode*指的是这个结点的父结点。第二个int指的是深度。 while(!q.empty()){ for(int i = q.size(); i > 0; i--){ auto t = q.front(); q.pop(); mp[t.first->val] = make_pair(t.second,depth); if(t.first->left) q.push(make_pair(t.first->left,t.first)); if(t.first->right) q.push(make_pair(t.first->right,t.first)); } depth++; } auto tx = mp[x],ty = mp[y]; return tx.first != ty.first && tx.second == ty.second; } };
转载于:https://www.cnblogs.com/Weixu-Liu/p/10787493.html
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