Problem Description
Recently, scientists find that there is love between any of two people. For example, between A and B, if A don’t love B, then B must love A, vice versa. And there is no possibility that two people love each other, what a crazy world!
Now, scientists want to know whether or not there is a “Triangle Love” among N people. “Triangle Love” means that among any three people (A,B and C) , A loves B, B loves C and C loves A.
Your problem is writing a program to read the relationship among N people firstly, and return whether or not there is a “Triangle Love”.
Now, scientists want to know whether or not there is a “Triangle Love” among N people. “Triangle Love” means that among any three people (A,B and C) , A loves B, B loves C and C loves A.
Your problem is writing a program to read the relationship among N people firstly, and return whether or not there is a “Triangle Love”.
Input
The first line contains a single integer t (1 <= t <= 15), the number of test cases.
For each case, the first line contains one integer N (0 < N <= 2000).
In the next N lines contain the adjacency matrix A of the relationship (without spaces). Ai,j = 1 means i-th people loves j-th people, otherwise Ai,j = 0.
It is guaranteed that the given relationship is a tournament, that is, Ai,i= 0, Ai,j ≠ Aj,i(1<=i, j<=n,i≠j).
For each case, the first line contains one integer N (0 < N <= 2000).
In the next N lines contain the adjacency matrix A of the relationship (without spaces). Ai,j = 1 means i-th people loves j-th people, otherwise Ai,j = 0.
It is guaranteed that the given relationship is a tournament, that is, Ai,i= 0, Ai,j ≠ Aj,i(1<=i, j<=n,i≠j).
Output
For each case, output the case number as shown and then print “Yes”, if there is a “Triangle Love” among these N people, otherwise print “No”.
Take the sample output for more details.
Take the sample output for more details.
Sample Input
2
5
00100
10000
01001
11101
11000
5
01111
00000
01000
01100
01110
Sample Output
Case #1: Yes
Case #2: No
题意: 有n个人 然后以下有n行(i) 每行有n个数字 假设第j个数字为1,表示i对j有好感。推断这些关系中是否有三角恋
代码:#include <stdio.h>
#include <string.h>
int t,n;
//存储的是节点的入度
int in_degree[2010];
//存储的是i,j两个节点的关系,1:i love j,0:j love i
char adj_mat[2010][2010]; int main()
{
bool flag;//true表示为有三角恋。false表示为没有三角恋
scanf("%d",&t);
for(int i = 1; i <= t;i++)
{ scanf("%d",&n);
flag = false;
//将全部的节点入度初始化为0
memset(in_degree,0,sizeof(in_degree));
for(int j = 0; j < n; j++)
{
scanf("%s",adj_mat[j]);
for(int k=0;k<n;k++)
if(adj_mat[j][k]=='1')//假设j喜欢k,则把k的入度加1
in_degree[k]++;
} for(int j=0;j<n;j++)
{
int k;
for(k=0;k<n;k++)
if(in_degree[k]==0)break;//找出入度为0的节点
if(k==n)//不论什么一个节点的入度都不为0。说明存在环了,则必有三角恋
{
flag = true;
break;
}else{
//将这个点的入度设为-1,避免再次循环时有查到了这个节点,
//此时说明这个点已经从集合中除掉了
in_degree[k]--;
for(int p=0;p<n;p++)
{
//把从这个节点出发的引起的节点的入度都减去1
if(adj_mat[k][p]=='1'&&in_degree[p]!=0)
in_degree[p]--;
}
}
}
if(flag)
printf("Case #%d: Yes\n",i);
else printf("Case #%d: No\n",i);
}
return 0;
}
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