标签:printf ++ lin desc cte ota ati tin input
Time Limit: 2000MS | Memory Limit: 131072K | |
Total Submissions: 5476 | Accepted: 1775 |
Description
Ginny’s birthday is coming soon. Harry Potter is preparing a birthday present for his new girlfriend. The present is a magic bracelet which consists of n magic beads. The are m kinds of different magic beads. Each kind of beads has its unique characteristic. Stringing many beads together a beautiful circular magic bracelet will be made. As Harry Potter’s friend Hermione has pointed out, beads of certain pairs of kinds will interact with each other and explode, Harry Potter must be very careful to make sure that beads of these pairs are not stringed next to each other.
There infinite beads of each kind. How many different bracelets can Harry make if repetitions produced by rotation around the center of the bracelet are neglected? Find the answer taken modulo 9973.
Input
The first line of the input contains the number of test cases.
Each test cases starts with a line containing three integers n (1 ≤ n ≤ 109, gcd(n, 9973) = 1), m (1 ≤ m ≤ 10), k (1 ≤ k ≤ m(m − 1) ⁄ 2). The next k lines each contain two integers a and b (1 ≤ a, b ≤ m), indicating beads of kind a cannot be stringed to beads of kind b.
Output
Output the answer of each test case on a separate line.
Sample Input
4 3 2 0 3 2 1 1 2 3 2 2 1 1 1 2 3 2 3 1 1 1 2 2 2
Sample Output
4 2 1 0
Source
数学问题 统计 burnside引理 矩阵乘法 乘法逆元
求旋转同构下不同的染色方案,有某两种颜色不能放在相邻位置的要求。
旋转同构时,同一个循环节里只能填相同的颜色,若有k个循环节,可以看做是走一条1->2->3->..->k->1的回路,其中每个位置可以选一种颜色。
似乎可以转化成图论中的路径条数问题。
建出邻接矩阵,若两种颜色可以相邻,就“连边”。邻接矩阵自乘k次后,对角线元素累加起来就是当前状况下的方案数。
最后div n需要用到乘法逆元
1 #include<cstdio> 2 #include<cstring> 3 #include<algorithm> 4 using namespace std; 5 const int MOD = 9973; 6 typedef long long LL; 7 int m,k,n,a,b,T,mat[10][10],tmp[10][10],tp[10][10],prime[36000],is[36000]; 8 void getprime() 9 { 10 int cnt=0; 11 for(int i=2;i<36000;i++) 12 { 13 if(!is[i]) 14 { 15 prime[cnt++]=i; 16 for(int j=i;j<36000;j+=i) 17 is[j]=1; 18 } 19 } 20 } 21 int pow(int x,int y) 22 { 23 x=x%MOD; 24 int t=1; 25 while(y) 26 { 27 if(y&1)t=(t*x)%MOD; 28 x=(x*x)%MOD; 29 y>>=1; 30 } 31 return t; 32 } 33 void mul(int a[10][10],int b[10][10],int m) 34 { 35 int c[10][10]; 36 memset(c,0,sizeof(c)); 37 for(int i=0;i<m;i++) 38 for(int j=0;j<m;j++) 39 for(int k=0;k<m;k++) 40 c[i][j]=(c[i][j]+a[i][k]*b[k][j])%MOD; 41 for(int i=0;i<m;i++) 42 for(int j=0;j<m;j++) 43 a[i][j]=c[i][j]; 44 } 45 int get(int x) 46 { 47 memset(tmp,0,sizeof(tmp)); 48 for(int i=0;i<m;i++) 49 for(int j=0;j<m;j++) 50 tp[i][j]=mat[i][j]; 51 for(int i=0;i<m;i++)tmp[i][i]=1; 52 while(x) 53 { 54 if(x&1) 55 mul(tmp,tp,m); 56 mul(tp,tp,m); 57 x>>=1; 58 } 59 int ans=0; 60 for(int i=0;i<m;i++) 61 ans=(ans+tmp[i][i])%MOD; 62 return ans; 63 } 64 int eular(int x) 65 { 66 if(x==1)return 1; 67 int rep=x; 68 for(int i=0;prime[i]*prime[i]<=x;i++) 69 { 70 if(x%prime[i]==0) 71 { 72 rep-=rep/prime[i]; 73 x/=prime[i]; 74 } 75 while(x%prime[i]==0)x/=prime[i]; 76 if(x==1)break; 77 } 78 if(x!=1) 79 rep-=rep/x; 80 return rep%MOD; 81 } 82 int inv(int n) 83 { 84 return pow(n,MOD-2)%MOD; 85 } 86 int main() 87 { 88 scanf("%d",&T); 89 getprime(); 90 while(T--) 91 { 92 scanf("%d%d%d",&n,&m,&k); 93 for(int i=0;i<m;i++) 94 for(int j=0;j<m;j++) 95 mat[i][j]=1; 96 for(int i=0;i<k;i++) 97 { 98 scanf("%d%d",&a,&b); 99 a--; 100 b--; 101 mat[a][b]=mat[b][a]=0; 102 } 103 int ans=0; 104 int i; 105 for(i=1;i*i<n;i++) 106 { 107 if(n%i==0) 108 { 109 ans=(ans+(get(i)*eular(n/i))%MOD)%MOD; 110 ans=(ans+(get(n/i)*eular(i))%MOD)%MOD; 111 } 112 } 113 if(i*i==n) 114 ans=(ans+(get(i)*eular(n/i))%MOD)%MOD; 115 printf("%d\n",(ans*inv(n))%MOD); 116 } 117 return 0; 118 }
标签:printf ++ lin desc cte ota ati tin input
原文地址:http://www.cnblogs.com/SilverNebula/p/6691953.html