题目
输入某二叉树的前序遍历和中序遍历的结果,请重建出该二叉树。假设输入的前序遍历和中序遍历的结果中都不含重复的数字。例如输入前序遍历序列{1,2,4,7,3,5,6,8}和中序遍历序列{4,7,2,1,5,3,8,6},则重建二叉树并输出它的后序遍历序列。
代码
/*---------------------------------------
* 日期:2015-07-20
* 作者:SJF0115
* 题目: 8.重建二叉树
* 结果:AC
* 网址:http://www.nowcoder.com/books/coding-interviews/8a19cbe657394eeaac2f6ea9b0f6fcf6?rp=1
* 来源:剑指Offer
* 博客:
-----------------------------------------*/
#include <iostream>
#include <vector>
#include <string>
#include <algorithm>
using namespace std;
struct TreeNode{
int val;
TreeNode *left;
TreeNode *right;
TreeNode(int x):val(x),left(nullptr),right(nullptr){}
};
class Solution{
public:
struct TreeNode* reConstructBinaryTree(vector<int> pre,vector<int> in) {
int size = pre.size();
if(size == 0){
return nullptr;
}//if
return PreInBuildTree(pre,in,0,0,size);
}
private:
TreeNode* PreInBuildTree(vector<int> preorder,vector<int> inorder,int preIndex,int inIndex,int size){
if(size == 0){
return nullptr;
}//if
// 根节点
TreeNode* root = new TreeNode(preorder[preIndex]);
// 寻找根节点在中序遍历数组的下标
int index = 0;
for(int i = 0;i < size;++i){
// 注意:inorder[inIndex+i]
if(preorder[preIndex] == inorder[inIndex+i]){
index = inIndex+i;
break;
}//if
}//for
// 左子树个数
int leftSize = index - inIndex;
// 右子树个数
int rightSize = size - leftSize - 1;
// 左子树
root->left = PreInBuildTree(preorder,inorder,preIndex+1,inIndex,leftSize);
// 右子树
root->right = PreInBuildTree(preorder,inorder,preIndex+1+leftSize,index+1,rightSize);
return root;
}
};
void PostOrder(TreeNode* root){
if(root){
PostOrder(root->left);
PostOrder(root->right);
cout<<root->val<<endl;
}//if
}
int main(){
Solution s;
vector<int> preOrder = {1,2,4,7,3,5,6,8};
vector<int> inOrder = {4,7,2,1,5,3,8,6};
TreeNode* root = s.reConstructBinaryTree(preOrder,inOrder);
PostOrder(root);
return 0;
}
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原文地址:http://blog.csdn.net/sunnyyoona/article/details/46966143
