The Merry Milk Makers company buys milk from farmers, packages it into attractive 1- and 2-Unit bottles, and then sells that milk to grocery stores so we can each start our day with delicious cereal and milk.
Since milk packaging is such a difficult business in which to make money, it is important to keep the costs as low as possible. Help Merry Milk Makers purchase the farmers' milk in the cheapest possible manner. The MMM company has an extraordinarily talented marketing department and knows precisely how much milk they need each day to package for their customers.
The company has contracts with several farmers from whom they may purchase milk, and each farmer has a (potentially) different price at which they sell milk to the packing plant. Of course, a herd of cows can only produce so much milk each day, so the farmers already know how much milk they will have available.
Each day, Merry Milk Makers can purchase an integer number of units of milk from each farmer, a number that is always less than or equal to the farmer's limit (and might be the entire production from that farmer, none of the production, or any integer in between).
Given:
Note: The total milk produced per day by the farmers will always be sufficient to meet the demands of the Merry Milk Makers even if the prices are high.
Line 1: | Two integers, N and M. The first value, N, (0 <= N <= 2,000,000) is the amount of milk that Merry Milk Makers wants per day. The second, M, (0 <= M <= 5,000) is the number of farmers that they may buy from. |
Lines 2 through M+1: | The next M lines each contain two integers: Pi and Ai. Pi (0 <= Pi <= 1,000) is price in cents that farmer i charges. Ai (0 <= Ai <= 2,000,000) is the amount of milk that farmer i can sell to Merry Milk Makers per day. |
100 5 5 20 9 40 3 10 8 80 6 30
A single line with a single integer that is the minimum cost that Merry Milk Makers msut pay for one day's milk.
630简单贪心,直接代码
#include<iostream> #include<algorithm> #include<cstdio> #include<cstring> #define MAXN 5005 using namespace std; int N,M; typedef struct { int pri,qua; }Node; bool cmp(Node a,Node b) { return a.pri<b.pri; } int main() { Node arr[MAXN]; scanf("%d%d",&N,&M); for(int i=0;i<M;i++) scanf("%d%d",&arr[i].pri,&arr[i].qua); sort(arr,arr+M,cmp); //自定义排序,价格低的排在前边 int sum=0,num=0,i=0; while(num!=N) { sum+=arr[i].pri*arr[i].qua; num+=arr[i].qua; if(num>N) {sum-=arr[i].pri*(num-N);num-=(num-N);} i++; } printf("%d\n",sum); return 0; }