#include <bits/stdc++.h>
using namespace std;
#define all(x) begin(x), end(x)
#define mp make_pair
using pi = pair<int, int>;
using vi = vector<int>;
int N, D, M;
// test if it is possible to finish the jobs using given # of machines
// return: first: possible or not, second: if possible, the schedule for the
// jobs
pair<bool, vector<vi>> isFeasible(const vector<pi> &jobs, int machineCount) {
vector<vi> schedule(N);
int reqNum = 0;
// we simulate from day 1 until the last day N
// we move to the next day if all the machines are used or
// there is no more job requests left on or before this day
for (int day = 1; day <= N; day++) {
for (int j = 0; j < machineCount; j++) {
// if all jobs before and on this day are finished,
// we can go to the next day, even if there are usable machines left
// we can determine that since the vector jobs is sorted
if (jobs[reqNum].first > day) break;
// if the current date is before the deadline for the job
// we can add this job to the schedule and move to the next job
// request
if (jobs[reqNum].first + D >= day)
schedule[day - 1].push_back(jobs[reqNum++].second);
// otherwise, it is not feasible due to deadline
else return mp(false, schedule);
// if we have processed all the requests, we have found a feasible
// sol
if (reqNum == M) return mp(true, schedule);
}
}
// if not all the requests can be processed within the given N days,
// then it is not feasible
return mp(false, schedule);
}
int main() {
cin.tie(0)->sync_with_stdio(false);
cin >> N >> D >> M;
vector<pi> jobs(M);
for (int i = 0; i < M; i++) {
int day;
cin >> day;
// first: request date, second: index [1..M]
jobs[i] = mp(day, i + 1);
}
// we sort the jobs by the request date in ascending order
// sothat we can test them using isFeasible() in linear time whether they
// can be done in given time using a certain amount of machines
sort(all(jobs));
vector<vi> result;
// binary search on the number of machines for the minimum possible solution
// left and right bound, l and r
int l = 1, r = M;
while (l < r) {
int machineNum = (l + r) / 2;
// test if the jobs would finish within the deadline
// using the current # of machines, machineNum
pair<bool, vector<vi>> curResult = isFeasible(jobs, machineNum);
// if it's possible, we set the right bound as the tested machine number
// and save the current schedule
if (curResult.first) {
r = machineNum;
result = curResult.second;
}
// otherwise, we set the left bound to be the tested number + 1
// and test the next machineNum again
else
l = machineNum + 1;
}
cout << l << "\n";
for (int i = 0; i < N; i++) {
for (int &idx : result[i]) cout << idx << " ";
cout << 0 << "\n";
}
}
# |
결과 |
실행 시간 |
메모리 |
Grader output |
1 |
Correct |
30 ms |
3464 KB |
Output is correct |
2 |
Correct |
31 ms |
3316 KB |
Output is correct |
3 |
Correct |
29 ms |
3176 KB |
Output is correct |
4 |
Correct |
29 ms |
3200 KB |
Output is correct |
5 |
Correct |
32 ms |
3208 KB |
Output is correct |
6 |
Correct |
31 ms |
3464 KB |
Output is correct |
7 |
Correct |
32 ms |
3208 KB |
Output is correct |
8 |
Correct |
28 ms |
3208 KB |
Output is correct |
9 |
Correct |
75 ms |
9792 KB |
Output is correct |
10 |
Correct |
84 ms |
10048 KB |
Output is correct |
11 |
Correct |
28 ms |
2876 KB |
Output is correct |
12 |
Correct |
57 ms |
5080 KB |
Output is correct |
13 |
Correct |
84 ms |
8540 KB |
Output is correct |
14 |
Correct |
136 ms |
10944 KB |
Output is correct |
15 |
Correct |
148 ms |
11120 KB |
Output is correct |
16 |
Correct |
187 ms |
16176 KB |
Output is correct |
17 |
Correct |
231 ms |
18724 KB |
Output is correct |
18 |
Correct |
236 ms |
23172 KB |
Output is correct |
19 |
Correct |
302 ms |
28628 KB |
Output is correct |
20 |
Correct |
227 ms |
18956 KB |
Output is correct |