Cacti Lottery--------ACM-ICPC 2018 徐州賽區網路預賽
Morgana is playing a game called cacti lottery. In this game, morgana has a 3 \times 33×3 grid graph, and the graph is filled with 11 ~ 99 , each number appears only once. The game is interesting, he doesn't know some numbers, but there are also some numbers he knows but don't want to tell you.
Now he should choose three grids, these three grids should be in the same column or in the same row or in the diagonal line. Only after this choice, can he know all numbers in the grid graph. Then he sums the three numbers in the grids he chooses, get the reward as follows:
Sum | Reward |
---|---|
6 | 10000 |
7 | 36 |
8 | 720 |
9 | 360 |
10 | 80 |
11 | 252 |
12 | 108 |
13 | 72 |
14 | 54 |
15 | 180 |
16 | 72 |
17 | 180 |
18 | 119 |
19 | 36 |
20 | 360 |
21 | 1080 |
22 | 144 |
23 | 1800 |
24 | 3600 |
Then he wants you to predict the expected reward he will get if he is clever enough in the condition that he doesn't want to tell you something he knows.
("He is clever enough" means he will choose the max expected reward row or column or dianonal in the condition that he knows some numbers. And you know that he knows some number, but you don't know what they are exactly. So you should predict his expected reward in your opinion. )
Input
First line contains one integers TT (T \le 100T≤100) represents the number of test cases.
Then each cases contains three lines, giving the 3 \times 33×3 grid graph. '*'
means Morgana knows but doesn't want to tell you, '#'
means Morgana doesn't know, '0'
~ '9'
means the public number that Morgana and you both know.
Output
TT lines, output the answer. If the answer is AA, and your answer is BB. Your answer will be considered as correct if and only if |(A-B)| < 1e-5∣(A−B)∣<1e−5 .
本題答案不唯一,符合要求的答案均正確
樣例輸入複製
2 123 *** ### 12* 45# 78#
樣例輸出複製
10000 4313.16666667
#include<set>
#include<map>
#include<stack>
#include<queue>
#include<math.h>
#include<vector>
#include<string>
#include<stdio.h>
#include<iostream>
#include<string.h>
#include<algorithm>
#define mem(a,b) memset(a,b,sizeof(a))
#define ll long long
#define inf 0x3f3f3f
using namespace std;
#define mod 1000000007
const int maxn=1000115;
map<int,pair<int,int> >m1,m2;
int m3[100];
int g[11][11];
int vis[11],sum[10];
int cnt1,cnt2,k=0;
double ans;
void init(){
m3[6]=10000;
m3[7]= 36;
m3[8]= 720;
m3[9]= 360;
m3[10]= 80;
m3[11]= 252;
m3[12]= 108;
m3[13]= 72;
m3[14]= 54;
m3[15]= 180;
m3[16]= 72;
m3[17]= 180;
m3[18]= 119;
m3[19]= 36;
m3[20]= 360;
m3[21]= 1080;
m3[22]= 144;
m3[23]= 1800;
m3[24]= 3600;
}
double A(int n,int m){
double res=1.0;
for(int i=1;i<=m;i++)
res*=(n-i+1);
return res;
}
void dfs1(int x){
if(x>cnt2){
int l=0;
for(int i=0;i<3;i++){
sum[l++]+=m3[(g[i][0]+g[i][1]+g[i][2])];
}
for(int j=0;j<3;j++){
sum[l++]+=m3[(g[0][j]+g[1][j]+g[2][j])];
}
sum[l++]+=m3[(g[0][0]+g[1][1]+g[2][2])];
sum[l++]+=m3[(g[0][2]+g[1][1]+g[2][0])];
return ;
}
for(int i=1;i<=9;i++){
if(vis[i]==1)continue;
vis[i]=1;
g[m2[x].first][m2[x].second]=i;
dfs1(x+1);
vis[i]=0;
}
}
void dfs(int x){
if(x>cnt1){
mem(sum,0);
dfs1(1);
int maxn=0;
for(int i=0;i<8;i++){
maxn=max(maxn,sum[i]);
}ans+=(double)maxn/A(cnt2,cnt2);
return ;
}
for(int i=1;i<=9;i++){
if(vis[i]==1)continue;
vis[i]=1;
g[m1[x].first][m1[x].second]=i;
dfs(x+1);
vis[i]=0;
}
}
int main(){
int t;
scanf("%d",&t);
while(t--){
mem(vis,0);
mem(g,0);
init();
char s[20];
cnt1=cnt2=0;
ans=0;
for(int i=0;i<3;i++){
scanf("%s",s);
for(int j=0;j<strlen(s);j++){
if(s[j]>='0'&&s[j]<='9'){vis[s[j]-'0']=1;g[i][j]=s[j]-'0';}
if(s[j]=='*'){ m1[++cnt1]=make_pair(i,j);g[i][j]=-1;}
if(s[j]=='#'){m2[++cnt2]=make_pair(i,j);g[i][j]=-1;}
}
}
//cout<<cnt1<<" "<<cnt2<<endl;
dfs(1);
//cout<<ans<<endl;
ans/=A(cnt1+cnt2,cnt1);
printf("%.8lf\n",ans);
}
}