1128. Partition into Groups
Time limit: 0.5 second Memory limit: 64 MB
There are
N
children in the kindergarten. Unfortunately, the children quarrel though not often. Each child has not more than three adversaries. Is it possible to partition the children into two groups (possibly not equal), so that each child would have not more than one adversary in his or her group?
Input
The first line contains an integer
N, 0 <
N
≤ 7163. The next
N
lines contain lists of adversaries of each child. A line starts with the amount of the corresponding child's adversaries, then the numbers of the adversaries follow. The numbers in each line are separated with a space.
Output
The first line contains the number of children in the smaller group. The next line contains the list of children in the group. The numbers in the second line are separated with a space. If the groups are of the same size then you are to describe the group that contains the child number one. Note that the output may contain the only number 0. If there are several possible partitions it's sufficient to output an arbitrary one. If there's no possible partition you are to output the only string “NO SOLUTION”.
Sample
input | output |
---|---|
8 3 2 3 7 3 1 3 7 3 1 2 7 1 6 0 2 4 8 3 1 2 3 1 6 |
4 1 2 5 6 |
Problem Author: Dmitry Filimonenkov
Problem Source: VI Ural State University Collegiate Programming Contest (21.10.2001)
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用vector不好使,wa8,可能爆栈啦,不得已用链表,存储前向星,贪心&&dfs,由题意可证明无(NO solution)的情况
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1 #include<iostream> 2 #include<string> 3 #include<cstring> 4 #include<cmath> 5 #include<algorithm> 6 #include<cstdio> 7 #include<queue> 8 #include<vector> 9 #include<stack> 10 using namespace std; 11 struct node//用指针链表 12 { 13 int to; 14 node *next; 15 } *gr[600001],nodea[600001]; 16 int nump; 17 int col[60005]; 18 int n,i,j,k,num,m,h,y; 19 void add(int x,int rt)//存储 20 { 21 nodea[nump].to=rt; 22 nodea[nump].next=gr[x]; 23 gr[x]=&nodea[nump]; 24 nump++; 25 } 26 void dfs(int s,int t)//dfs贪心 27 { 28 node *mp; 29 for(mp=gr[s];mp!=NULL;mp=mp->next) 30 { 31 if(col[mp->to]==0) 32 { 33 col[mp->to]=t; 34 dfs(mp->to,3-t); 35 } 36 } 37 } 38 int main() 39 { 40 while(scanf("%d",&n)!=EOF) 41 { 42 for(i=0;i<=n;i++)//初始化 43 { 44 col[i]=0; 45 gr[i]=NULL; 46 } 47 nump=1; 48 for(i=1;i<=n;i++) 49 { 50 cin>>m; 51 for(j=1;j<=m;j++) 52 { 53 cin>>h; 54 add(i,h); 55 } 56 } 57 memset(col,0,sizeof(col)); 58 for(i=1;i<=n;i++) 59 if(col[i]==0) 60 { 61 col[i]=2; 62 dfs(i,1); 63 } 64 node *mp; 65 for(i=1;i<=n;i++) 66 { 67 num=0; 68 for(mp=gr[i];mp!=NULL;mp=mp->next) 69 if(col[i]==col[mp->to]) 70 num++; 71 if(num>=2)//重了变换 72 col[i]=3-col[i]; 73 } 74 num=0; 75 for(i=1;i<=n;i++) 76 if(col[i]==2) 77 num++; 78 if(num>n/2)//输出时处理 79 { 80 num=n-num; 81 y=1; 82 } 83 else 84 y=2; 85 bool fs=true; 86 cout<<num<<endl; 87 for(i=1;i<=n;i++) 88 if(col[i]==y) 89 { 90 if(fs==true) 91 { 92 cout<<i; 93 fs=false; 94 } 95 else 96 cout<<' '<<i; 97 } 98 99 cout<<endl; 100 } 101 102 return 0; 103 }
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