[POJ2151]Check the difficulty of problems (概率dp)

时间:2023-03-09 02:29:12
[POJ2151]Check the difficulty of problems (概率dp)

题目链接:http://poj.org/problem?id=2151

题目大意:有M个题目,T支队伍,第i个队伍做出第j个题目的概率为Pij,问每个队伍都至少做出1个题并且至少有一个队伍做出N题的概率。

先定义状态dp[i][j][k],代表第i支队伍从前j个题目里正好做出k题的概率。

有:dp[i][j][k] = dp[i][j-1][k]*(1-p[i][j]) + dp[i][j-1][k-1]*p[i][j];

然后设f[i]为前i支队伍里,每队至少做出一个题并且至少有一个队伍做出N题的概率。

那么f[i] = f[i-1]*(第i支队伍做出不少于1题的概率) + (1-f[i-1]-存在队伍没做出题的概率)*(第i支队伍做了不少于N题的概率)

上面这个是个全概率公式

于是乎:

 ///#pragma comment(linker, "/STACK:102400000,102400000")

 #include <cstdio>

 #include <cstring>

 #include <algorithm>

 #include <vector>

 #include <map>

 #include <set>

 #include <bitset>

 #include <cmath>

 #include <numeric>

 #include <iterator>

 #include <iostream>

 #include <cstdlib>

 #include <functional>

 #include <queue>

 #include <stack>

 #include <string>

 #include <cctype>

 using namespace std;

 #define PB push_back

 #define MP make_pair

 #define SZ size()

 #define ST begin()

 #define ED end()

 #define CLR clear()

 #define ZERO(x) memset((x),0,sizeof(x))

 typedef long long LL;

 typedef unsigned long long ULL;

 typedef pair<int,int> PII;

 const double EPS = 1e-;

 const int MAX_T = ;

 const int MAX_M = ;

 int M,T,N;

 double p[MAX_T][MAX_M],f[MAX_T],any[MAX_T],dp[MAX_T][MAX_M][MAX_M];

 int main(){

     while( ~scanf("%d%d%d",&M,&T,&N), M!=&&T!=&&N!= ) {

         ZERO(dp);

         ZERO(f);

         ZERO(any);

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

             for(int j=;j<=M;j++) {

                 scanf("%lf",&p[i][j]);

             }

         }

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

             dp[i][][] = 1.0;

             for(int j=;j<=M;j++) {

                 dp[i][j][] = dp[i][j-][]*(-p[i][j]);

             }

             for(int j=;j<=M;j++){

                 for(int k=;k<=j;k++){

                     dp[i][j][k] = dp[i][j-][k]*(-p[i][j]) + dp[i][j-][k-]*p[i][j];

                 }

             }

             for(int j=;j<=M;j++){

                 for(int k=;k<=M;k++){

                     dp[i][j][k] += dp[i][j][k-];

                 }

             }

         }

         f[] = 0.0;

         any[] = 1.0;

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

             any[i] = any[i-]*(1.0-dp[i][M][]);

         }

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

             any[i] = 1.0 - any[i];

         }

         any[] = 0.0;

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

             f[i] = f[i-]*(dp[i][M][M]-dp[i][M][]) + (1.0-f[i-]-any[i-])*(dp[i][M][M]-dp[i][M][N-]);

         }

         printf("%.3f\n",f[T]);

     }

     return ;

 }