考试时又翻车了.....

一定要及时调整自己的思路！！！

随从最多有7个，只有三种，所以把每一种随从多开一维

so：f[i][j][k][l]为到第i次攻击前，场上有j个1血，k个2血，l个3血随从的概率

最后利用期望的可加性都加起来就好了

ps.30滴血受到四五十伤害，完全tm不符合逻辑啊，mdzz！！！

#include<cstdio>

#include<cstring>

#include<iostream>

#include<cmath>

#include<algorithm>

using namespace std;

int T,a,b,c,n;

double f[55][8][8][8],ans;

int main()

{

    //freopen("defcthun.in","r",stdin);

    //freopen("defcthun.out","w",stdout);

    scanf("%d",&T);

    for(int i=1;i<=T;i++)

    {

        scanf("%d%d%d%d",&n,&a,&b,&c);

        ans=0; memset(f,0,sizeof f);

        f[1][a][b][c]=1;

        for(int i=1;i<=n;i++)

            for(int j=0;j<=7;j++)

                for(int k=0;k<=7;k++)

                    for(int l=0;l<=7;l++){

                        if(!f[i][j][k][l]) continue;

                        ans+=(double)f[i][j][k][l]*1.0/(1.0+j+k+l);

                        if(i==n) continue;

                        f[i+1][j][k][l]+=(double)f[i][j][k][l]*1.0/(1.0+j+k+l);

                        if(j>0) f[i+1][j-1][k][l]+=(double)f[i][j][k][l]*j/(1.0+j+k+l);

                        if(k>0){

                            if(j+k+l==7) f[i+1][j+1][k-1][l]+=(double)f[i][j][k][l]*k/(1.0+j+k+l);

                            else f[i+1][j+1][k-1][l+1]+=(double)f[i][j][k][l]*k/(1.0+j+k+l);

                        }

                        if(l>0){

                            if(j+k+l==7) f[i+1][j][k+1][l-1]+=(double)f[i][j][k][l]*l/(1.0+j+k+l);

                            else f[i+1][j][k+1][l]+=(double)f[i][j][k][l]*l/(1.0+j+k+l);

                        }

                    }

        printf("%0.2lf\n",ans);

    }

    return 0;

}