zoukankan      html  css  js  c++  java
  • Ubiquitous Religions(并查集)

    题目来源:

    https://vjudge.net/problem/POJ-2524

    题目描述:

    There are so many different religions in the world today that it is difficult to keep track of them all. You are interested in finding out how many different religions students in your university believe in. 

    You know that there are n students in your university (0 < n <= 50000). It is infeasible for you to ask every student their religious beliefs. Furthermore, many students are not comfortable expressing their beliefs. One way to avoid these problems is to ask m (0 <= m <= n(n-1)/2) pairs of students and ask them whether they believe in the same religion (e.g. they may know if they both attend the same church). From this data, you may not know what each person believes in, but you can get an idea of the upper bound of how many different religions can be possibly represented on campus. You may assume that each student subscribes to at most one religion.

    Input

    The input consists of a number of cases. Each case starts with a line specifying the integers n and m. The next m lines each consists of two integers i and j, specifying that students i and j believe in the same religion. The students are numbered 1 to n. The end of input is specified by a line in which n = m = 0.

    Output

    For each test case, print on a single line the case number (starting with 1) followed by the maximum number of different religions that the students in the university believe in.

    Sample Input

    10 9
    1 2
    1 3
    1 4
    1 5
    1 6
    1 7
    1 8
    1 9
    1 10
    10 4
    2 3
    4 5
    4 8
    5 8
    0 0
    

    Sample Output

    Case 1: 1
    Case 2: 7
    

    Hint

    Huge input, scanf is recommended.
    题意描述:
    输入人数和几对关系
    计算并输出有几个独立团体
    解题思路:
    并查集,每输入一对关系,如果属于同一个祖宗则跳过,不属于同一个祖宗则向左归并。
    代码实现:
     1 #include<stdio.h>
     2 int f[50100];
     3 void merge(int u,int v);
     4 int getf(int v){
     5     return f[v]==v? v : f[v]=getf(f[v]);
     6 }
     7 
     8 int main()
     9 {
    10     int n,m,i,t=1; 
    11     while(scanf("%d%d",&n,&m), n+m != 0)
    12     {
    13         for(i=1;i<=n;i++)
    14             f[i]=i;
    15         int a,b;
    16         while(m--)
    17         {
    18             scanf("%d%d",&a,&b);
    19             merge(a,b);    
    20         }
    21         
    22         int count=0;
    23         for(i=1;i<=n;i++)
    24             if(f[i]==i)    
    25                 count++;
    26         printf("Case %d: %d
    ",t++,count);
    27     }
    28     return 0;
    29 }
    30 void merge(int u,int v)
    31 {
    32     int t1,t2;
    33     t1=getf(u);
    34     t2=getf(v);
    35     if(t1 != t2)
    36         f[t2]=t1;    
    37 } 
  • 相关阅读:
    CI框架学习——基本的用法(一)
    android测试之——Instrumentation(一)
    android测试之——mokeyrunner上(二)
    两台linux机器时间同步
    linux常用命令
    hdu2609(最小表示法)
    poj1509(环形字符串求最小字典序)
    最小最大表示法,求环形字符串的最小最大字典树(模板)
    区间dp总结篇
    dp之最长递增、公共子序列总结
  • 原文地址:https://www.cnblogs.com/wenzhixin/p/8397633.html
Copyright © 2011-2022 走看看