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Codeforces Round #272 (Div. 2) B. Dreamoon and WiFi (超几何

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Release: 2016-06-07 15:00:57
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题目链接:Codeforces Round #273 (Div. 2) B. Dreamoon and WiFi 题意:“”表示前进1个单位,“-”表示后退1个单位,问以0为起点经过S1,S2两个命令后达到的位置相同的概率。 思路:统计“”和“-”的数量。如果S2中的“”或者“-”比S1中的多,概率是0。

题目链接:Codeforces Round #273 (Div. 2) B. Dreamoon and WiFi

题意:“+”表示前进1个单位,“-”表示后退1个单位,问以0为起点经过S1,S2两个命令后达到的位置相同的概率。

思路:统计“+”和“-”的数量。如果S2中的“+”或者“-”比S1中的多,概率是0。其他条件下,形成的是超几何分布。


AC代码:


#include <stdio.h>
#include <string.h>
int fac(int n,int m)
{
	int i,s=1;
	for(i=m;i>m-n;i--)
		s*=i;
	return s;
}
int C(int n,int m)
{
	int a=fac(n,m);
	int b=fac(n,n);
	return a/b;
}
double ipow(double n,int p)
{
	int i;
	double s=1.0;
	for(i=0;i<p s return int main char s1 len while addsum for if else subsum scanf m="0,pos=0,sum;" addsum-- subsum-- printf double ans><br>
<br>
</p>

</string.h></stdio.h>
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