• poj 3349:Snowflake Snow Snowflakes(哈希查找,求和取余法+拉链法)


    Snowflake Snow Snowflakes
    Time Limit: 4000MS   Memory Limit: 65536K
    Total Submissions: 30529   Accepted: 8033

    Description

    You may have heard that no two snowflakes are alike. Your task is to write a program to determine whether this is really true. Your program will read information about a collection of snowflakes, and search for a pair that may be identical. Each snowflake has six arms. For each snowflake, your program will be provided with a measurement of the length of each of the six arms. Any pair of snowflakes which have the same lengths of corresponding arms should be flagged by your program as possibly identical.

    Input

    The first line of input will contain a single integer n, 0 < n ≤ 100000, the number of snowflakes to follow. This will be followed by n lines, each describing a snowflake. Each snowflake will be described by a line containing six integers (each integer is at least 0 and less than 10000000), the lengths of the arms of the snow ake. The lengths of the arms will be given in order around the snowflake (either clockwise or counterclockwise), but they may begin with any of the six arms. For example, the same snowflake could be described as 1 2 3 4 5 6 or 4 3 2 1 6 5.

    Output

    If all of the snowflakes are distinct, your program should print the message:
    No two snowflakes are alike.
    If there is a pair of possibly identical snow akes, your program should print the message:
    Twin snowflakes found.

    Sample Input

    2
    1 2 3 4 5 6
    4 3 2 1 6 5

    Sample Output

    Twin snowflakes found.

    Source


     
      哈希表查找
      做的第一道哈希表的题,如有觉得不妥之处,欢迎指正和交流。
     
      题意
      在n (n<100000)个雪花中判断是否存在两片完全相同的雪花,每片雪花有6个角,每个角的长  度限制为1000000。
      两片雪花相等的条件:
      雪花6个角的长度按顺序相等(这个顺序即可以是顺时针的也可以是逆时针的)
     
      思路:
      大概思路就是用一个求和取余法来获得雪花的key值,用拉链法解决冲突。同时如果检测到冲突,依次判断一下这片雪花与和它key值相同的雪花是花瓣长度顺序是否相同,如果相同,证明找到了两片完全一样的雪花。退出循环,输出结果。
      详情可以见大神的博客: POJ3349-Snowflake Snow Snowflakes
      说的很详细。  
     
      注意
      所有的输入数据没有输入完毕就提前结束程序,无妨。例如没有输入完,就检测到相同的雪花,这个时候可以直接break跳出循环停止输入,不会影响评测结果。可以节省不少时间。
     
      代码
      1 #include <iostream>
      2 #include <stdio.h>
      3 
      4 using namespace std;
      5 
      6 #define MAXPRIME 100001
      7 
      8 struct Hashnode{
      9     int len[6];
     10     Hashnode* next;
     11 };
     12 Hashnode hashtable[MAXPRIME]={0};   //哈希表,拉链法解决哈希冲突
     13 
     14 int getkey(Hashnode* p)   //哈希函数,求和取余法。求一片雪花对应的key值
     15 {
     16     int i,key=0;
     17     for(i=0;i<6;i++)
     18         key = (key + p->len[i])%MAXPRIME;
     19     return key;
     20 }
     21 
     22 bool clockwise(Hashnode* p,Hashnode* q) //顺时针看有没有相同的顺序
     23 {
     24     int i,j;
     25     for(i=0;i<6;i++){
     26         for(j=0;j<6;j++)
     27             if(p->len[j]!=q->len[(i+j)%6])
     28                 break;
     29         if(j>=6)
     30             break;
     31     }
     32     //找到两片相同的雪花
     33     if(i<6)
     34         return true;
     35     else
     36         return false;
     37 }
     38 
     39 bool counterclockwise(Hashnode* p,Hashnode* q) //逆时针看有没有相同的顺序
     40 {
     41     int i,j;
     42     for(i=0;i<6;i++){
     43         for(j=0;j<6;j++)
     44             if(p->len[j]!=q->len[(i+6-j)%6])
     45                 break;
     46         if(j>=6)
     47             break;
     48     }
     49     //找到两片相同的雪花
     50     if(i<6)
     51         return true;
     52     else
     53         return false;
     54 }
     55 
     56 bool iscom(Hashnode* p)  //判断这片雪花是否和之前的有一片雪花完全相同
     57 {
     58     int key = getkey(p);
     59     if(hashtable[key].next==NULL){    //没有冲突
     60         hashtable[key].next = p;
     61         return false;
     62     }
     63     else{   //产生冲突
     64         //拉链法解决冲突
     65         Hashnode* q = &hashtable[key];
     66         p->next = q->next;
     67         q->next = p;
     68 
     69         q = p->next;    //从p的下一个开始比较
     70         while(q){
     71             if(clockwise(p,q) || counterclockwise(p,q)) //顺时针或者逆时针看有一个方向有相同的顺序,说明找到了相同的雪花
     72                 return true;
     73             q = q->next;
     74         }
     75         return false;
     76     }
     77 }
     78 
     79 int main()
     80 {
     81     int n,i;
     82     bool f = false; //找没找到两片相同的雪花,默认是没有
     83     scanf("%d",&n);
     84     while(n--){
     85         Hashnode* p = new Hashnode;
     86         p->next = NULL;
     87         for(i=0;i<6;i++)    //读取这片雪花的6个花瓣的长度
     88             scanf("%d",&p->len[i]);
     89         if(iscom(p)){ //判断这片雪花是否和之前的有一片雪花相同,如果有,改变f的值。
     90             //函数中顺便将这片花瓣的信息插入到哈希表。
     91             f=true;
     92             break;    //没有输入完毕,中途退出也可以,省了300MS
     93         }
     94     }
     95     //判断有没有找到两片一样的雪花
     96     if(f)
     97         printf("Twin snowflakes found.
    ");
     98     else
     99         printf("No two snowflakes are alike.
    ");
    100     return 0;
    101 }

    Freecode : www.cnblogs.com/yym2013

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  • 原文地址:https://www.cnblogs.com/yym2013/p/3841378.html
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