Queuing(以前写的没整理)
Queuing |
Time Limit: 10000/5000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others) |
Total Submission(s): 62 Accepted Submission(s): 46 |
Problem Description
Queues and Priority Queues are data structures which are known to most computer scientists. The Queue occurs often in our daily life. There are many people lined up at the lunch time.
Now we define that ‘f’ is short for female and ‘m’ is short for male. If the queue’s length is L, then there are 2L numbers of queues. For example, if L = 2, then they are ff, mm, fm, mf . If there exists a subqueue as fmf or fff, we call it O-queue else it is a E-queue. Your task is to calculate the number of E-queues mod M with length L by writing a program. |
Input
Input a length L (0 <= L <= 10 6) and M.
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Output
Output K mod M(1 <= M <= 30) where K is the number of E-queues with length L.
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Sample Input
3 8 4 7 4 8 |
Sample Output
6 2 1 |
Author
WhereIsHeroFrom
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Source
HDU 1st “Vegetable-Birds Cup” Programming Open Contest
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Recommend
lcy
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/* 以前做的没整理的 */ #include<cstdio> using namespace std; int n,m; int f[5]={0,2,4,6,9}; int a[4][4],b[4][4],c[4][4]; void multi(int (*x)[4],int (*y)[4]) { int i,j,k; for(i=0;i<4;i++) for(j=0;j<4;j++) for(c[i][j]=k=0;k<4;k++) c[i][j]+=x[i][k]*y[k][j]; for(i=0;i<4;i++) for(j=0;j<4;j++) x[i][j]=c[i][j]%m; } int main() { //freopen("1.in","r",stdin); int i,j; while(scanf("%d%d",&n,&m)==2) { if(n<=4){printf("%d\n",f[n]%m);continue;} a[0][0]=a[0][2]=a[0][3]=1,a[0][1]=0; a[1][0]=1,a[1][1]=a[1][2]=a[1][3]=0; a[2][0]=a[2][2]=a[2][3]=0,a[2][1]=1; a[3][0]=a[3][1]=a[3][3]=0,a[3][2]=1; for(i=0;i<4;i++) for(j=0;j<4;j++) b[i][j]=(i==j); for(n-=4;n;multi(a,a),n>>=1)if(n&1)multi(b,a); for(j=0,i=0;i<4;i++)j+=b[0][i]*f[4-i]; printf("%d\n",j%m); } return 0; }
我每天都在努力,只是想证明我是认真的活着.