Booking System(贪心)

C. Booking System
time limit per test
1 second
memory limit per test
256 megabytes
input
standard input
output
standard output

Innovation technologies are on a victorious march around the planet. They integrate into all spheres of human activity!

A restaurant called "Dijkstra's Place" has started thinking about optimizing the booking system.

There are n booking requests received by now. Each request is characterized by two numbers: ci and pi — the size of the group of visitors who will come via this request and the total sum of money they will spend in the restaurant, correspondingly.

We know that for each request, all ci people want to sit at the same table and are going to spend the whole evening in the restaurant, from the opening moment at 18:00 to the closing moment.

Unfortunately, there only are k tables in the restaurant. For each table, we know ri — the maximum number of people who can sit at it. A table can have only people from the same group sitting at it. If you cannot find a large enough table for the whole group, then all visitors leave and naturally, pay nothing.

Your task is: given the tables and the requests, decide which requests to accept and which requests to decline so that the money paid by the happy and full visitors was maximum.

Input

The first line of the input contains integer n (1 ≤ n ≤ 1000) — the number of requests from visitors. Then n lines follow. Each line contains two integers: ci, pi (1 ≤ ci, pi ≤ 1000) — the size of the group of visitors who will come by the i-th request and the total sum of money they will pay when they visit the restaurant, correspondingly.

The next line contains integer k (1 ≤ k ≤ 1000) — the number of tables in the restaurant. The last line contains k space-separated integers: r1, r2, ..., rk (1 ≤ ri ≤ 1000) — the maximum number of people that can sit at each table.

Output

In the first line print two integers: m, s — the number of accepted requests and the total money you get from these requests, correspondingly.

Then print m lines — each line must contain two space-separated integers: the number of the accepted request and the number of the table to seat people who come via this request. The requests and the tables are consecutively numbered starting from 1 in the order in which they are given in the input.

If there are multiple optimal answers, print any of them.

Sample test(s)
input
3
10 50
2 100
5 30
3
4 6 9
output
2 130
2 1
3 2

 

       题意:

       给出 N(1 ~ 1000),代表有 N 个旅行团,后给出 N 个旅行团的人数和钱数。现要去一饭馆吃饭,有 K(1 ~ 1000) 张桌子,后给出每张桌子最大容纳的人数量。要如何分配旅行团的人,使其赚到的钱数最多。每个团的人必须在同一桌吃饭,一桌不能共存有两个团。

 

       思路:

       贪心。使赚到的钱最大,所以对旅行团的钱数由大到小排序,如果钱数相同则人数由小到大排序。后开始分配座位,每次分配原则为找最小适合该旅行团人数的桌子。

 

       AC:

#include <cstdio>
#include <algorithm>

using namespace std;

const int MAX = 1005;

typedef struct { int peo, mon, num, tab; }node1;

node1 p[MAX];
int t[MAX], vis[MAX];

int cmp (node1 a, node1 b) {
        if (a.mon != b.mon) return a.mon > b.mon;
        return a.peo < b.peo;
}

int main () {
        int n;
        scanf("%d", &n);
        for (int i = 1; i <= n; ++i) {
                scanf("%d%d", &p[i].peo, &p[i].mon);
                p[i].num = i;
                p[i].tab = -1;
        }

        sort (p + 1, p + 1 + n, cmp);

        int k;
        scanf("%d", &k);
        for (int i = 1; i <= k; ++i) {
                scanf("%d", &t[i]);
                vis[i] = 0;
        }

        int sum = 0, ans = 0;
        for (int i = 1; i <= n; ++i) {
                int min_num = MAX;
                for (int j = 1; j <= k; ++j) {
                        if(p[i].peo <= t[j] &&
                           !vis[j] &&
                           min_num > t[j]) {
                                    min_num = t[j];
                                    p[i].tab = j;
                           }
                }

                if (p[i].tab != -1) {
                        ans++;
                        sum += p[i].mon;
                        vis[p[i].tab] = 1;
                }
        }

        printf("%d %d\n", ans, sum);
        for (int i = 1; i <= n; ++i) {
                if (p[i].tab != -1) {
                        printf("%d %d\n", p[i].num, p[i].tab);
                }
        }

        return 0;
}

 

 

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