4.1Implement a function to check if a tree is balanced For the purposes of this question,a balanced tree is defned to be a tree such that no two leaf nodes difer in distance from the root by more than one
http://www.cnblogs.com/graph/archive/2013/04/12/3016433.html
4.2DFS
4.3Given a sorted (increasing order) array, write an algorithm to create a binary tree with minimal height
http://www.cnblogs.com/graph/p/3184984.html
4.4 Given a binary search tree, design an algorithm which creates a linked list of all the nodes at each depth (eg, if you have a tree with depth D, you’ll have D linked lists)
http://www.cnblogs.com/graph/p/3251831.html
题目类似,就不多做了
4.5Write an algorithm to fnd the ‘next’ node (e g , in-order successor) of a given node in a binary search tree where each node has a link to its parent
struct Node { int data; struct Node* left; struct Node* right; struct Node* parent; }; Node * minNode(Node * cur){ while(NULL != cur->left){ cur = cur->left; } return cur; } Node * inOrderSucc(Node *cur){
if(cur == NULL) return NULL;
if(NULL != cur->right) return minNode(cur->right); Node * p = cur->parent; while(NULL != p && p->right == cur){ cur = p; p = p->parent; } return p; }
reference : http://www.geeksforgeeks.org/inorder-successor-in-binary-search-tree/(不喜欢CCI上的渣渣答案)
4.6Design an algorithm and write code to fnd the frst common ancestor of two nodes in a binary tree Avoid storing additional nodes in a data structure NOTE: This is not
necessarily a binary search tree
http://www.cnblogs.com/graph/p/3271292.html
4.7 You have two very large binary trees: T1, with millions of nodes, and T2, with hundreds of nodes Create an algorithm to decide if T2 is a subtree of T1
无聊的一道题,解法完全没有体现出来大数据
/** * Definition for binary tree * struct TreeNode { * int val; * TreeNode *left; * TreeNode *right; * TreeNode(int x) : val(x), left(NULL), right(NULL) {} * }; */ bool isMatch(TreeNode * T1, TreeNode &T2); bool isSubtree(TreeNode *T1, TreeNode *T2){ if(T2 == NULL) return true; if(NULL == T1) return false; if(T1->val == T2->val && ismatch(T1, T2)){ return true; } return isSubtree(T1->left , T2) || isSubtree(T1->right, T2) ; } bool isMatch(TreeNode * T1, TreeNode &T2){ if(T1 == NULL && T2 == NULL) return true; if(T1 == NULL || T2 == NULL) return false; if(T1->val != T2->val) return false; return isMatch(T1->left , T2->right) && isMatch(T1->right, T2->right); }
4.8 You are given a binary tree in which each node contains a value Design an algorithm to print all paths which sum up to that value Note that it can be any path in the tree
- it does not have to start at the root
CCI 给的答案实在不爽,明明就是一个后续遍历的应用。非要搞的莫名其妙的。
声明: 以下代码只是写出了我的思路,没有经过测试
struct Node{ int val; Node * left; Node * right; Node(int value):val(value), left(NULL),right(NULL){} }; void print(stack<int> s){ while(!s.empty()){ cout<<s.top() <<" "; s.pop(); } cout<<endl; } void findSum(Node *root,int sum, vector<stack<int>> &path, vector<stack <int>> &path_sum ){ if(root == NULL) return ; if(root->left == NULL && root->right == NULL){ stack<int> p,s; p.push(root->val); s.push(root->val); path.push_back(p); path_sum.push_back(s); return; } vector<stack<int>> pathLeft, pathRight , sumLeft, sumRight; if(root->left != NULL) findSum(root->left, sum, pathLeft,sumLeft); if(root->right != NULL) findSum(root->right, sum, pathRight, sumRight); int cur = root->val; for(int i = 0; i < pathLeft.size(); i++) { pathLeft[i].push(cur); int top = sumLeft[i].top() + cur; sumLeft[i].push(top); if(top == sum) print(pathLeft[i]); path.push_back(pathLeft[i]); path_sum.push_back(sumLeft[i]); } for(int i = 0; i< pathRight.size(); i++) { pathRight[i].push_back(cur); int top = sumRight[i].top() + cur; sumRight[i].push(top); if(top == sum) print(pathRight[i]); path.push_back(pathRight[i]); path_sum.push_back(sumRight[i]); } }