zoukankan      html  css  js  c++  java
  • POJ3122 Pie

    Time Limit: 1000MS   Memory Limit: 65536K
    Total Submissions: 15473   Accepted: 5302   Special Judge

    Description

    My birthday is coming up and traditionally I'm serving pie. Not just one pie, no, I have a number N of them, of various tastes and of various sizes. F of my friends are coming to my party and each of them gets a piece of pie. This should be one piece of one pie, not several small pieces since that looks messy. This piece can be one whole pie though.

    My friends are very annoying and if one of them gets a bigger piece than the others, they start complaining. Therefore all of them should get equally sized (but not necessarily equally shaped) pieces, even if this leads to some pie getting spoiled (which is better than spoiling the party). Of course, I want a piece of pie for myself too, and that piece should also be of the same size.

    What is the largest possible piece size all of us can get? All the pies are cylindrical in shape and they all have the same height 1, but the radii of the pies can be different.

    Input

    One line with a positive integer: the number of test cases. Then for each test case:
    • One line with two integers N and F with 1 ≤ N, F ≤ 10 000: the number of pies and the number of friends.
    • One line with N integers ri with 1 ≤ ri ≤ 10 000: the radii of the pies.

    Output

    For each test case, output one line with the largest possible volume V such that me and my friends can all get a pie piece of size V. The answer should be given as a floating point number with an absolute error of at most 10−3.

    Sample Input

    3
    3 3
    4 3 3
    1 24
    5
    10 5
    1 4 2 3 4 5 6 5 4 2

    Sample Output

    25.1327
    3.1416
    50.2655

    Source

     
    这图放的……出题人出题的时候要么是饿得发慌,要么是吃饱了撑着。
     
     
    二分答案法,注意精度即可。据小优说pi精度小于3.14159265359会WA
     1 /**/
     2 #include<iostream>
     3 #include<cstdio>
     4 #include<cmath>
     5 #include<cstring>
     6 #include<algorithm>
     7 using namespace std;
     8 const double pi=3.14159265359;
     9 const double eps=1e-6;
    10 const int mxn=12000;
    11 int n,m;
    12 double s[mxn];
    13 int main(){
    14     int T;
    15     scanf("%d",&T);
    16     while(T--){
    17         scanf("%d%d",&n,&m);
    18         m+=1;
    19         int i,j;
    20         double sum=0;
    21         for(i=1;i<=n;i++)scanf("%lf",&s[i]),s[i]=s[i]*s[i],sum+=s[i];
    22         double l=0,r=sum/m,mid;
    23         while(r-l>eps){
    24             mid=(l+r)/2;
    25             int cnt=0;
    26             for(i=1;i<=n;i++)cnt+=(int)(s[i]/mid);
    27             if(cnt>=m)l=mid;
    28             else r=mid;
    29         }
    30         printf("%.4f
    ",mid*pi);
    31     }
    32 }
  • 相关阅读:
    linux进程管理类
    linux关机重启指令
    linux分区及磁盘挂载
    linux的运行级别
    property
    访问限制机制
    类的组合与封装
    继承与派生
    logging模块
    re模块
  • 原文地址:https://www.cnblogs.com/SilverNebula/p/5823522.html
Copyright © 2011-2022 走看看