[Topcoder16346]TwoPerLine

CXXV.[Topcoder16346]TwoPerLine

跟一年半以前就刷过的经典老题[AHOI2009]中国象棋完全一致，道理非常simple，设 $f_{i,j,k}$ 表示DP到第 $i$ 列，其中有 $j$ 行内恰有 $2$ 枚棋，$k$ 行里恰有 $1$ 枚棋，然后就依据第 $i$ 列里填的东西填到哪进行转移即可。复杂度 $O(n^3)$。

代码：

#include<bits/stdc++.h>
using namespace std;
const int mod=1e9+7;
class TwoPerLine{
private:
	int f[210][210][210];
	void add(int &x,int y){x+=y;if(x>=mod)x-=mod;}
	int sqr(int x){return (1ll*x*(x-1)/2)%mod;}
public:
	int count(int n,int m){
		f[0][0][0]=1;
		for(int i=0;i<n;i++)for(int j=0;j<=n;j++)for(int k=0;j+k<=n;k++)if(j*2+k<=m){
			add(f[i+1][j][k],f[i][j][k]);//put nothing on this colomn
			if(k)add(f[i+1][j+1][k-1],1ll*f[i][j][k]*k%mod);//put one chess on an 1-row
			if(k>=2)add(f[i+1][j+2][k-2],1ll*f[i][j][k]*sqr(k)%mod);//put both chesses on 1-rows
			if(j+k+1<=n)add(f[i+1][j][k+1],1ll*f[i][j][k]*(n-j-k)%mod);//put one chess on a 0-row
			if(j+k+2<=n)add(f[i+1][j][k+2],1ll*f[i][j][k]*sqr(n-j-k)%mod);//put both chesses on 0-rows
			if(k&&j+k+1<=n)add(f[i+1][j+1][k],1ll*f[i][j][k]*k%mod*(n-j-k)%mod);//put one chess on an 1-row, the other on a 0-row
		}
		int res=0;
		for(int j=0;j<=n;j++)for(int k=0;j+k<=n;k++)if(j*2+k==m)add(res,f[n][j][k]);
		return res;
	}
}my;
/*
int main(){
//	printf("%d\n",my.count(3,6));
//	printf("%d\n",my.count(7,0));
//	printf("%d\n",my.count(100,3));
//	printf("%d\n",my.count(6,4));
	return 0;
}
*/