HDU 4015 Mario and Mushrooms

3375 ワード

Mario and Mushrooms
Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65768/65768 K (Java/Others)Total Submission(s): 265    Accepted Submission(s): 220
Problem Description
Mario usually relaxes himself by walking along the shady track near the Mushroom Kingdom. The evil King Koopa noticed that and placed a lot of mushroom on the road. There are two types of mushrooms, max mushrooms and bad mushrooms. The bad mushrooms will decrease Mario's HP by m points, on the other hand, max mushrooms will increase Mario's HP by one point. The mushrooms are randomly placed on the track and Mario will receive them one by one. Once Mario's HP becomes zero or below after he received a mushroom, he will die.
Notice that Mario begins with HP zero, so if the first mushroom is bad, Mario will die immediately. Fortunately, if Mario receives all the mushrooms, he will be alive with HP 1. In the other words, if there are k bad mushrooms on the way, there will also be m*k+1 max mushrooms.
Princess Peach wants to know the possibility for Mario staying alive. Please help her to calculate it out.
 
Input
There are several test cases. The first line contains only one integer T, denoting the number of test cases.
For each test case, there is only one line including two integers: m and k, denoting the amount of points of HP the Mario will decrease if he receives a bad mushroom, and the number of bad mushrooms on the track. (1 <= m <= 1000, 1 <= k <= 1000)
 
Output
For each test case, output only real number denoting the possibility that Mario will survive if he receives all the randomly placed mushrooms one by one. The answer should be rounded to eight digits after the decimal point.
 
Sample Input
2 1 1 60 80
 
Sample Output
Case #1: 0.33333333 Case #2: 0.00020488
 
Source
The 36th ACM/ICPC Asia Regional Shanghai Site —— Warmup
 
Recommend
lcy
 
 
明らかな確率問題...
結果はサンプル推測で出てきました...簡単な結果、秒が過ぎた.
#include<stdio.h>
int main()
{
int T;
int m,k;
int iCase=0;
scanf("%d",&T);
while(T--)
{
iCase++;
scanf("%d%d",&m,&k);
printf("Case #%d: %.8lf
",iCase,(double)1/(k+m*k+1));
}
return 0;
}