Girls and Boys
Time Limit: 20000/10000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 7044 Accepted Submission(s): 3178
Problem Description
the second year of the university somebody started a study on the romantic relations between the students. The relation “romantically involved” is defined between one girl and one boy. For the study reasons it is necessary to find out the maximum set satisfying
the condition: there are no two students in the set who have been “romantically involved”. The result of the program is the number of students in such a set.
The input contains several data sets in text format. Each data set represents one set of subjects of the study, with the following description:
the number of students
the description of each student, in the following format
student_identifier:(number_of_romantic_relations) student_identifier1 student_identifier2 student_identifier3 ...
or
student_identifier:(0)
The student_identifier is an integer number between 0 and n-1, for n subjects.
For each given data set, the program should write to standard output a line containing the result.
The input contains several data sets in text format. Each data set represents one set of subjects of the study, with the following description:
the number of students
the description of each student, in the following format
student_identifier:(number_of_romantic_relations) student_identifier1 student_identifier2 student_identifier3 ...
or
student_identifier:(0)
The student_identifier is an integer number between 0 and n-1, for n subjects.
For each given data set, the program should write to standard output a line containing the result.
Sample Input
7 0: (3) 4 5 6 1: (2) 4 6 2: (0) 3: (0) 4: (2) 0 1 5: (1) 0 6: (2) 0 1 3 0: (2) 1 2 1: (1) 0 2: (1) 0
Sample Output
5 2
题意:在大学校园里男女学生存在某种关系。如今给出学生人数n,并给出每一个学生与哪些学生存在关系(存在关系的学生一定是异性)。如今让你求一个学生集合,这个集合中随意两个学生之间不存在这种关系。
输出这种关系集合中最大的一个的学生人数。
(网上翻译)
最大独立集问题 :在N个点的图G中选出m个点。使这m个点两两之间没有边.求m的最大值. 假设图G满足二分图条件。则能够用二分图匹配来做.最大独立集点数 = N - 最大匹配数
#include"stdio.h"
#include"string.h"
#define N 505
int g[N][N];
int mark[N];
int link[N];
int n;
int find(int k) //寻找和能和K节点匹配的右节点
{
int i;
for(i=0;i<n;i++) //遍历数组
{
if(g[i][k]&&!mark[i]) //边存在,且是第一次訪问
{
mark[i]=1;
if(link[i]==-1||find(link[i]))
{ //该点未匹配或者和该点匹配的左节点能够另外匹配
link[i]=k;
return 1;
}
}
}
return 0; //匹配失败
}
int main()
{
int i,j,u,v,m;
while(scanf("%d",&n)!=-1)
{
for(i=0;i<n;i++)
for(j=0;j<n;j++)
g[i][j]=0;
for(i=0;i<n;i++)
{
scanf("%d: (%d)",&u,&m);
while(m--)
{
scanf("%d",&v);
g[u][v]=1;
}
}
memset(link,-1,sizeof(link)); //记录每一个二分图的右半边节点匹配的左节点标号
int ans=0;
for(i=0;i<n;i++)
{
memset(mark,0,sizeof(mark)); //标记数组。防止反复訪问一个节点
if(find(i))
ans++;
}
printf("%d
",n-ans/2); //最大独立集点数 = N - 最大匹配数
}
return 0;
}