标签:Requires lam pac lse gre ons 3.3 cti amount
Problem Description
FatMouse prepared M pounds of cat food, ready to trade with the cats guarding the warehouse containing his favorite food, JavaBean.
The warehouse has N rooms. The i-th room contains J[i] pounds of JavaBeans and requires F[i] pounds of cat food. FatMouse does not have to trade for all the JavaBeans in the room, instead, he may get J[i]* a% pounds of JavaBeans if he pays F[i]* a% pounds of cat food. Here a is a real number. Now he is assigning this homework to you: tell him the maximum amount of JavaBeans he can obtain.
Input
The input consists of multiple test cases. Each test case begins with a line containing two non-negative integers M and N. Then N lines follow, each contains two non-negative integers J[i] and F[i] respectively. The last test case is followed by two -1‘s. All integers are not greater than 1000.
Output
For each test case, print in a single line a real number accurate up to 3 decimal places, which is the maximum amount of JavaBeans that FatMouse can obtain.
Sample Input
5 3
7 2
4 3
5 2
20 3
25 18
24 15
15 10
-1 -1
Sample Output
13.333
31.500
Author
CHEN, Yue
Source
思路
题目的大意是有\(J[i]\)个豆子,要得到的话交\(F[i]\)个猫粮,给你m份猫粮,问你如何最大化受益
显然是根据\(J[i]/F[i]\)的高低排序,也就是我们通俗意义上的性价比
代码
#include<bits/stdc++.h>
using namespace std;
struct node
{
double j; //豆子
double f; //猫粮
double single; //豆子/猫粮
} a[1010];
int main()
{
int m,n;
while(cin>>m>>n)
{
if(m==-1 && n==-1) break;
for(int i=1;i<=n;i++)
{
cin >> a[i].j >> a[i].f;
a[i].single = a[i].j/a[i].f;
} //读入
sort(a+1,a+n+1,[=](node x,node y) -> bool {return x.single > y.single;});//lamba表达式作为cmp函数
double ans = 0.0;
for(int i=1;i<=n;i++)
{
if(m>a[i].f)
{
ans += a[i].j;
m -= a[i].f;
}else
{
ans += m/a[i].f*a[i].j;
break; //不够只能按百分比买
}
}
printf("%.3lf\n",ans);
}
return 0;
}
标签:Requires lam pac lse gre ons 3.3 cti amount
原文地址:https://www.cnblogs.com/MartinLwx/p/9716732.html