A summit (峰会) is a meeting of heads of state or government. Arranging the rest areas for the summit is not a simple job. The ideal arrangement of one area is to invite those heads so that everyone is a direct friend of everyone.
Now given a set of tentative arrangements, your job is to tell the organizers whether or not each area is all set.
Input Specification:
Each input file contains one test case. For each case, the first line gives two positive integers N (≤ 200), the number of heads in the summit, and M, the number of friendship relations. Then M lines follow, each gives a pair of indices of the heads who are friends to each other. The heads are indexed from 1 to N.
Then there is another positive integer K (≤ 100), and K lines of tentative arrangement of rest areas follow, each first gives a positive number L (≤ N), then followed by a sequence of L distinct indices of the heads. All the numbers in a line are separated by a space.
Output Specification:
For each of the K areas, print in a line your advice in the following format:
-
if in this area everyone is a direct friend of everyone, and no friend is missing (that is, no one else is a direct friend of everyone in this area), print
Area X is OK.
. -
if in this area everyone is a direct friend of everyone, yet there are some other heads who may also be invited without breaking the ideal arrangement, print
Area X may invite more people, such as H.
whereH
is the smallest index of the head who may be invited. -
if in this area the arrangement is not an ideal one, then print
Area X needs help.
so the host can provide some special service to help the heads get to know each other.
Here X
is the index of an area, starting from 1 to K
.
Sample Input:
8 10
5 6
7 8
6 4
3 6
4 5
2 3
8 2
2 7
5 3
3 4
6
4 5 4 3 6
3 2 8 7
2 2 3
1 1
2 4 6
3 3 2 1
Sample Output:
Area 1 is OK.
Area 2 is OK.
Area 3 is OK.
Area 4 is OK.
Area 5 may invite more people, such as 3.
Area 6 needs help.
题意:
给N个点,M条边。K个询问。每个询问给出L个点,问这L个点是不是两两相连的。
如果两两相连:
存不存在一个其它的点,与这L个点都有连接:
有:Area i may invite more people, such as 这个点.
没有:Area i is OK.
不是两两相连:Area i needs help.
题解:
看懂题意发现挺简单的嘛,不需要并查集,直接邻接矩阵存储,直接暴力就ok了,考试的时候一遍过,惊喜!AC代码:
#include<bits/stdc++.h> using namespace std; int e[205][205]; int a[205]; int v[205]; int n,m; int main(){ cin>>n>>m; memset(e,0,sizeof(e)); for(int i=1;i<=m;i++){ int u,v; cin>>u>>v; e[u][v]=e[v][u]=1;//邻接矩阵存储 } int k; cin>>k; int num; for(int i=1;i<=k;i++){//k个询问 cin>>num; memset(v,0,sizeof(v));//v来标记所询问的num个点 for(int j=1;j<=num;j++) { cin>>a[j]; v[a[j]]=1;//做上标记 } int f=1;//是不是两两相连 for(int j=1;j<=num;j++){ for(int p=j+1;p<=num;p++){ if(e[a[j]][a[p]]!=1) f=0; break; } } if(!f) cout<<"Area "<<i<<" needs help."; else{//如果是两两相连 int ans=-1;//是否存在 for(int j=1;j<=n;j++){//查询存不存在一个点与这num个点都相连 if(v[j]) continue;//本身是num个点里的不算 int ff=1; for(int p=1;p<=num;p++){ if(e[a[p]][j]!=1){ ff=0; break; } } if(ff) {//满足与num中的每个点都相连 ans=j;//存在 break; } } if(ans!=-1){//存在 cout<<"Area "<<i<<" may invite more people, such as "<<ans<<"."; }else{//不存在 cout<<"Area "<<i<<" is OK."; } } if(i!=k) cout<<endl;//行末无空行 } return 0; }