Hzz loves aeroplane chess very much. The chess map contains N+1 grids labeled from 0 to N. Hzz starts at grid 0. For each step he throws a dice(a dice have six faces with equal probability to face up and the numbers on the faces are 1,2,3,4,5,6). Whe…

http://acm.split.hdu.edu.cn/showproblem.php?pid=4405 Aeroplane chess Problem Description   Hzz loves aeroplane chess very much. The chess map contains N+1 grids labeled from 0 to N. Hzz starts at grid 0. For each step he throws a dice(a dice have six…

Aeroplane chess Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 1503    Accepted Submission(s): 1025 Problem Description Hzz loves aeroplane chess very much. The chess map contains N+1 grids la…

Problem Description Hzz loves aeroplane chess very much. The chess map contains N+ grids labeled to N. Hzz starts at grid . For each step he throws a dice(a dice have six faces with equal probability to face up and the numbers on the faces are ,,,,,)…

题意:有一个n个点的飞行棋,问从0点掷骰子(1~6)走到n点须要步数的期望 当中有m个跳跃a,b表示走到a点能够直接跳到b点. dp[ i ]表示从i点走到n点的期望,在正常情况下i点能够到走到i+1,i+2,i+3,i+4,i+5,i+6 点且每一个点的概率都为1/6 所以dp[i]=(dp[i+1]+dp[i+2]+dp[i+3]+dp[i+4]+dp[i+5]+dp[i+6])/6  + 1(步数加一). 而对于有跳跃的点直接为dp[a]=dp[b]; #include<stdio.h>…

题目大意:一个跳棋游戏,每置一次骰子前进相应的步数.但是有的点可以不用置骰子直接前进,求置骰子次数的平均值. 题目分析:状态很容易定义:dp(i)表示在第 i 个点出发需要置骰子的次数平均值.则状态转移方程为: dp(i)=singma(pk*dp(i+k))+1 (如果在 i 处必须置骰子才能前进) dp(i)=dp(s) (如果在 i 处能直接到达s处) 代码如下: # include<iostream> # include<cstdio> # include<vecto…

Aeroplane chess Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 1667    Accepted Submission(s): 1123 Problem Description Hzz loves aeroplane chess very much. The chess map contains N+1 grids lab…

HDU 3853    LOOPS 题目大意是说人现在在1,1,需要走到N,N,每次有p1的可能在元位置不变,p2的可能走到右边一格,有p3的可能走到下面一格,问从起点走到终点的期望值 这是弱菜做的第一道概率DP的题,首先是看了一下有关概率DP的资料,大概知道一般球概率就是从起点推到终点,求期望就是从终点推到起点 考虑这题的做法,其实很简单设DP[i][j]表示从i,j到达终点所需时间的期望值 DP[i][j] =p1 *  DP[i][j] + p2 * DP[i][j+1] + p3 * D…

题目链接: http://acm.zju.edu.cn/onlinejudge/showProblem.do?problemId=4808 题目大意: 有n条路,选每条路的概率相等,初始能力值为f,每条路通过的难度值为ci,当能力值大于某条路A的难度值b时,能够成功逃离,花费时间ti,小于等于时,不能逃离但能力值增加b. 给定初始的能力值,求成功逃离的期望. 解题思路: 简单期望dp. 设dp[i]表示能力值为i时,逃离的期望值. 对于每条路j,当i>c[j]时,成功逃离+ti[j],否则能力值…

Aeroplane chess Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 1628    Accepted Submission(s): 1103 Problem Description Hzz loves aeroplane chess very much. The chess map contains N+1 grids la…