Problem Description
Permutation plays a very important role in Combinatorics. For example ,1 2 3 4 5 and 1 3 5 4 2 are both 5-permutations. As everyone's known, the number of n-permutations is n!. According to their magnitude relatives ,if we insert the sumbols "<" or ">"between every pairs of consecutive numbers of a permutations,we can get the permutations with symbols. For example,1 2 3 4 5 can be changed to 1<2<3<4<5, 1 3 5 4 2 can be changed to 1<3<5>4>2. Now it's yout task to calculate the number of n-permutations with k"<"symbol. Maybe you don't like large numbers ,so you should just geve the result mod 2009.
Input
Input may contai multiple test cases. Each test case is a line contains two integers n and k .0<n<=100 and 0<=k<=100. The input will terminated by EOF.
Output
The nonegative integer result mod 2007 on a line.
Sample Input
5 2
Sample Output
66
题意大概就是求n的全排列中,用大于小于号连接,其中小于号有k个的情况有多少种。注意,ac代码是%2009,不是2007
显然n的全排列有n!个,考虑下dp算法
状态转移是DP(n,k)=dp(n-1,k)*(k+1)+dp(n-1)(k-1)*(n-k)
n代表考虑n个数字的状态,k代表小于号的个数。
先作特殊情况,序列1 2 3 4 5 6,一共5个小于号,如果我要加入数字7,那么我有7种加法,并且只有一种加法会使小于号+1.
序列a1 a2 a3 a4 a5 ……a(n-1),一共有n-1个数字,有k个小于号,那么我加入an有n种加法,其中会使小于号+1的有n-k种(就是加在大于号的位置上),其他的k+1种不会改变小于号的个数。
#include<stdio.h> int main() { int n,k,i,j,s; int dp[111][111]; for(i=0;i<=101;i++) { dp[i][0]=1; dp[0][i]=0; } while(scanf("%d%d",&n,&k)!=EOF) { for(i=1;i<=101;i++) for(j=1;j<=101;j++) { dp[i][j]=(dp[i-1][j]*(j+1)+dp[i-1][j-1]*(i-j))%2009; } printf("%d ",dp[n][k]); } }