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  • PAT A1127 ZigZagging on a Tree (30 分)——二叉树,建树,层序遍历

    Suppose that all the keys in a binary tree are distinct positive integers. A unique binary tree can be determined by a given pair of postorder and inorder traversal sequences. And it is a simple standard routine to print the numbers in level-order. However, if you think the problem is too simple, then you are too naive. This time you are supposed to print the numbers in "zigzagging order" -- that is, starting from the root, print the numbers level-by-level, alternating between left to right and right to left. For example, for the following tree you must output: 1 11 5 8 17 12 20 15.

    zigzag.jpg

    Input Specification:

    Each input file contains one test case. For each case, the first line gives a positive integer N (≤30), the total number of nodes in the binary tree. The second line gives the inorder sequence and the third line gives the postorder sequence. All the numbers in a line are separated by a space.

    Output Specification:

    For each test case, print the zigzagging sequence of the tree in a line. All the numbers in a line must be separated by exactly one space, and there must be no extra space at the end of the line.

    Sample Input:

    8
    12 11 20 17 1 15 8 5
    12 20 17 11 15 8 5 1
    

    Sample Output:

    1 11 5 8 17 12 20 15
    
     
     1 #include <stdio.h>
     2 #include <algorithm>
     3 #include <queue>
     4 using namespace std;
     5 const int maxn=31;
     6 int pos[maxn],in[maxn];
     7 int n,m;
     8 vector<int> res[31];
     9 struct node{
    10     int data;
    11     node* left,*right;
    12     int lvl;
    13 };
    14 node* create(int inl,int inr,int posl,int posr){
    15     if(inl > inr) return NULL;
    16     node* root = new node;
    17     root->data = pos[posr];
    18     int k;
    19     for(k=inl;k<=inr;k++){
    20         if(pos[posr]==in[k]) break;
    21     }
    22     int numleft=k-inl;
    23     root->left = create(inl,k-1,posl,posl+numleft-1);
    24     root->right = create(k+1,inr,posl+numleft,posr-1);
    25     return root;
    26 }
    27 void pr(node* root){
    28     queue<node*> q;
    29     root->lvl=0;
    30     q.push(root);
    31     while(!q.empty()){
    32         node* now=q.front();
    33         q.pop();
    34         res[now->lvl].push_back(now->data);
    35         if(now->left!=NULL){
    36             now->left->lvl=now->lvl+1;
    37             q.push(now->left);
    38         }
    39         if(now->right!=NULL){
    40             now->right->lvl=now->lvl+1;
    41             q.push(now->right);
    42         }
    43     }
    44 }
    45 int main(){
    46     scanf("%d",&n);
    47     for(int i=0;i<n;i++){
    48         scanf("%d",&in[i]);    
    49     }
    50     for(int i=0;i<n;i++){
    51         scanf("%d",&pos[i]);    
    52     }
    53     node* root = create(0,n-1,0,n-1);
    54     pr(root);
    55     int cnt=0;
    56     for(int i=0;i<32;i++){
    57         if(i%2==0){
    58             for(int j=res[i].size()-1;j>=0;j--){
    59                 printf("%d",res[i][j]);
    60                 cnt++;
    61                 if(cnt<n)printf(" ");
    62             }
    63         }
    64         else{
    65             for(int j=0;j<res[i].size();j++){
    66                 printf("%d",res[i][j]);
    67                 cnt++;
    68                 if(cnt<n)printf(" ");
    69             }
    70         }
    71         if(cnt==n)break;
    72     }
    73 }
    View Code

    注意点:最简单的一道30分题了。只要会建树,再层序遍历,把每层的数据保存起来,再根据层数正着输出或是反向输出就ac了。

    ps:也可以用deque双向队列更方便的实现。每层的输出其实可以不用开vector数组,一层遍历完后输出就好了。

    ---------------- 坚持每天学习一点点
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  • 原文地址:https://www.cnblogs.com/tccbj/p/10431870.html
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