B - Triangle LOVE
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Time Limit:1000MS Memory Limit:65536KB 64bit IO Format:%I64d & %I64u
Description
Input
Output
Sample Input
Sample Output
Hint
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). A i,j = 1 means i-th people loves j-th people, otherwise A i,j = 0.
It is guaranteed that the given relationship is a tournament, that is, A i,i= 0, A i,j ≠ A j,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). A i,j = 1 means i-th people loves j-th people, otherwise A i,j = 0.
It is guaranteed that the given relationship is a tournament, that is, A i,i= 0, A i,j ≠ A j,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
题意分析(转载):
此题可以一遍拓扑排序判环求解 即只需要找到一个环,
就必定存在三元环 证明如下: 假设存在一个n元环,
因为a->b有边,b->a必定没边,反之也成立
所以假设有环上三个相邻的点a-> b-> c,那么如果c->a间有边,
就已经形成了一个三元环,如果c->a没边,那么a->c肯定有边,
这样就形成了一个n-1元环。。。。
所以只需证明n大于3时一定有三元环即可,显然成立。
*/
此题可以一遍拓扑排序判环求解 即只需要找到一个环,
就必定存在三元环 证明如下: 假设存在一个n元环,
因为a->b有边,b->a必定没边,反之也成立
所以假设有环上三个相邻的点a-> b-> c,那么如果c->a间有边,
就已经形成了一个三元环,如果c->a没边,那么a->c肯定有边,
这样就形成了一个n-1元环。。。。
所以只需证明n大于3时一定有三元环即可,显然成立。
*/
方法:拓扑排序
#include<cstdio>
#include<cstring>
#include<algorithm>
using namespace std;
int in[2000];
char s[2000][2000];
int main()
{
int t,n;
scanf("%d",&t);
int ch=1;
while(t--)
{
memset(in,0,sizeof(in));
int faut=0;
scanf("%d",&n);
for(int i=0;i<n;i++)
{
scanf("%s",&s[i]);
for(int k=0;k<n;k++)
if(s[i][k]=='1')
in[k]++;
}
for(int i=0;i<n;i++)
{
int k;
for(k=0;k<n;k++)
if(in[k]==0) break;
if(k==n)
{
faut=1;break;
}
else
{
in[k]--;
for(int g=0;g<n;g++)
if(s[k][g]=='1'&&in[g]!=0)
in[g]--;
}
}
if(faut==1)
printf("Case #%d: Yes\n",ch++);
else
printf("Case #%d: No\n",ch++);
}
return 0;
} 
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