Patti and Terri run a bar in which there are 15 stools. One day, Darrell entered the bar and found that the situation how customers chose the stools were as follows:
OOEOOOOEEEOOOEO
O means that the stool in a certain position is used, while E means that the stool in a certain position is empty (here what we care is not who sits on the stool, but whether the stool is empty).As the example we show above, we can say the situation how the 15 stools is used determines 7 intervals (as following):
OO E OOOO EEE OOO E O
Now we postulate that there are N stools and M customers, which make up K intervals. How many arrangements do you think will satisfy the condition?
O means that the stool in a certain position is used, while E means that the stool in a certain position is empty (here what we care is not who sits on the stool, but whether the stool is empty).As the example we show above, we can say the situation how the 15 stools is used determines 7 intervals (as following):
OO E OOOO EEE OOO E O
Now we postulate that there are N stools and M customers, which make up K intervals. How many arrangements do you think will satisfy the condition?
Input
There are multi test cases and for each test case:
Each case contains three integers N (0<N<=200), M (M<=N), K (K<=20).
Each case contains three integers N (0<N<=200), M (M<=N), K (K<=20).
Output
For each test case print the number of arrangements as described above. (All answers is fit in 64-bit.)
Sample Input
3 1 3
4 2 4
Sample Output
1 2
n个位置坐了m个人分成了k块,求所有可能的种数;
关键是dp表达式
i 0-200
j 0-200
k 1-20
dp[i+1][j][k][0]=dp[i][j][k][0]+dp[i][j][k-1][1];
dp[i+1][j][k][1]=dp[i][j-1][k-1][0]+dp[i][j-1][k][1];
打表然后查询输出
#include<iostream> #include<cstdio> using namespace std; long long dp[202][202][22][2]; int main() { int n=200,m=200,ak=20,i,j,k; dp[0][0][0][1]=1; dp[0][0][0][0]=1; for(i=0;i<=n;i++) { for(j=0;j<=m;j++) { for(k=1;k<=ak;k++) { dp[i+1][j][k][0]=dp[i][j][k][0]+dp[i][j][k-1][1]; if(j!=0) dp[i+1][j][k][1]=dp[i][j-1][k-1][0]+dp[i][j-1][k][1]; } } } while(scanf("%d%d%d",&n,&m,&ak)!=EOF) { cout<<dp[n][m][ak][0]+dp[n][m][ak][1]<<endl; } return 0; }