• Dropping tests(01分数规划)


    Dropping tests
    Time Limit: 1000MS   Memory Limit: 65536K
    Total Submissions: 8176   Accepted: 2862

    Description

    In a certain course, you take n tests. If you get ai out of bi questions correct on test i, your cumulative average is defined to be

    .

    Given your test scores and a positive integer k, determine how high you can make your cumulative average if you are allowed to drop any k of your test scores.

    Suppose you take 3 tests with scores of 5/5, 0/1, and 2/6. Without dropping any tests, your cumulative average is . However, if you drop the third test, your cumulative average becomes .

    Input

    The input test file will contain multiple test cases, each containing exactly three lines. The first line contains two integers, 1 ≤ n ≤ 1000 and 0 ≤ k < n. The second line contains n integers indicating ai for all i. The third line contains n positive integers indicating bi for all i. It is guaranteed that 0 ≤ ai ≤ bi ≤ 1, 000, 000, 000. The end-of-file is marked by a test case with n = k = 0 and should not be processed.

    Output

    For each test case, write a single line with the highest cumulative average possible after dropping k of the given test scores. The average should be rounded to the nearest integer.

    Sample Input

    3 1
    5 0 2
    5 1 6
    4 2
    1 2 7 9
    5 6 7 9
    0 0

    Sample Output

    83
    100
    题解:给你n个数,让求删除k个数后

    的最大值;01分数规划;

    代码:

     1 #include<cstdio>
     2 #include<iostream>
     3 #include<algorithm>
     4 #include<cstring>
     5 #include<cmath>
     6 using namespace std;
     7 const int MAXN=10010;
     8 struct Node{
     9     int a,b;
    10 };
    11 Node dt[MAXN];
    12 double d[MAXN];
    13 int n,k;
    14 bool fsgh(double R){
    15     double sum=0;
    16     for(int i=0;i<n;i++)d[i]=dt[i].a-R*dt[i].b;
    17     sort(d,d+n);
    18     for(int i=n-1;i>=n-k;i--)sum+=d[i];
    19     return sum>0?true:false;
    20 }
    21 double erfen(double l,double r){
    22     double mid;
    23     while(r-l>1e-6){
    24         mid=(l+r)/2;
    25         if(fsgh(mid))l=mid;
    26         else r=mid;
    27     }
    28     return mid;
    29 }
    30 int main(){
    31     while(scanf("%d%d",&n,&k),n|k){
    32         double mx=0;
    33         k=n-k;
    34         for(int i=0;i<n;i++)scanf("%d",&dt[i].a);
    35         for(int i=0;i<n;i++)scanf("%d",&dt[i].b),mx=max(1.0*dt[i].a/dt[i].b,mx);
    36         printf("%.0f
    ",erfen(0,mx)*100);
    37     }
    38     return 0;
    39 }
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  • 原文地址:https://www.cnblogs.com/handsomecui/p/4971467.html
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