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ID | 题目 | 提交者 | 结果 | 用时 | 内存 | 语言 | 文件大小 | 提交时间 | 测评时间 |
---|---|---|---|---|---|---|---|---|---|
#468801 | #7185. Poor Students | embusca# | TL | 193ms | 4756kb | C++14 | 3.2kb | 2024-07-09 01:11:55 | 2024-07-09 01:11:55 |
Judging History
answer
#include "bits/stdc++.h"
using namespace std;
#define endl '\n'
#define rep(i, a, b) for (int i = a; i < (b); i++)
#define all(x) (x).begin(), (x).end()
#define sz(x) (int)(x).size()
typedef long long ll;
/**
* Author: Stanford
* Date: Unknown
* Source: Stanford Notebook
* Description: Min-cost max-flow.
* If costs can be negative, call setpi before maxflow, but note that negative cost cycles are not supported.
* To obtain the actual flow, look at positive values only.
* Status: Tested on kattis:mincostmaxflow, stress-tested against another implementation
* Time: $O(F E \log(V))$ where F is max flow. $O(VE)$ for setpi.
*/
#pragma once
#include <bits/extc++.h> include-line, keep-include
const ll INF = numeric_limits<ll>::max() / 4;
struct MCMF {
struct edge {
int from, to, rev;
ll cap, cost, flow;
};
int N;
vector<vector<edge>> ed;
vector<int> seen;
vector<ll> dist, pi;
vector<edge*> par;
MCMF(int N) : N(N), ed(N), seen(N), dist(N), pi(N), par(N) {}
void addEdge(int from, int to, ll cap, ll cost) {
if (from == to) return;
ed[from].push_back(edge{ from,to,sz(ed[to]),cap,cost,0 });
ed[to].push_back(edge{ to,from,sz(ed[from])-1,0,-cost,0 });
}
void path(int s) {
fill(all(seen), 0);
fill(all(dist), INF);
dist[s] = 0; ll di;
__gnu_pbds::priority_queue<pair<ll, int>> q;
vector<decltype(q)::point_iterator> its(N);
q.push({ 0, s });
while (!q.empty()) {
s = q.top().second; q.pop();
seen[s] = 1; di = dist[s] + pi[s];
for (edge& e : ed[s]) if (!seen[e.to]) {
ll val = di - pi[e.to] + e.cost;
if (e.cap - e.flow > 0 && val < dist[e.to]) {
dist[e.to] = val;
par[e.to] = &e;
if (its[e.to] == q.end())
its[e.to] = q.push({ -dist[e.to], e.to });
else
q.modify(its[e.to], { -dist[e.to], e.to });
}
}
}
rep(i,0,N) pi[i] = min(pi[i] + dist[i], INF);
}
pair<ll, ll> maxflow(int s, int t) {
ll totflow = 0, totcost = 0;
while (path(s), seen[t]) {
ll fl = INF;
for (edge* x = par[t]; x; x = par[x->from])
fl = min(fl, x->cap - x->flow);
totflow += fl;
for (edge* x = par[t]; x; x = par[x->from]) {
x->flow += fl;
ed[x->to][x->rev].flow -= fl;
}
}
rep(i,0,N) for(edge& e : ed[i]) totcost += e.cost * e.flow;
return {totflow, totcost/2};
}
// If some costs can be negative, call this before maxflow:
void setpi(int s) { // (otherwise, leave this out)
fill(all(pi), INF); pi[s] = 0;
int it = N, ch = 1; ll v;
while (ch-- && it--)
rep(i,0,N) if (pi[i] != INF)
for (edge& e : ed[i]) if (e.cap)
if ((v = pi[i] + e.cost) < pi[e.to])
pi[e.to] = v, ch = 1;
assert(it >= 0); // negative cost cycle
}
};
int main() {
cin.tie(0)->sync_with_stdio(0);
int n, k; cin>>n>>k;
MCMF fl(k+n+7);
int s=0, t=n+k+2;
for(int i=1+k;i<=n+k+1;i++){
fl.addEdge(i,t,1,0);
}
for(int i=0;i<n;i++){
for(int u=0;u<k;u++){
ll x; cin>>x;
fl.addEdge(1+u,i+1+k,1,x);
}
}
for(int i=1;i<=k;i++){
int x; cin>>x;
fl.addEdge(s,i,x,0);
}
cout<<fl.maxflow(s,t).second<<'\n';
return 0;
}
详细
Test #1:
score: 100
Accepted
time: 0ms
memory: 3568kb
input:
6 2 1 2 1 3 1 4 1 5 1 6 1 7 3 4
output:
12
result:
ok answer is '12'
Test #2:
score: 0
Accepted
time: 0ms
memory: 3620kb
input:
3 3 1 2 3 2 4 6 6 5 4 1 1 1
output:
8
result:
ok answer is '8'
Test #3:
score: 0
Accepted
time: 193ms
memory: 4756kb
input:
1000 10 734 303 991 681 755 155 300 483 702 442 237 256 299 675 671 757 112 853 759 233 979 340 288 377 718 199 935 666 576 842 537 363 592 349 494 961 864 727 84 813 340 78 600 492 118 421 478 925 552 617 517 589 716 7 928 638 258 297 706 787 266 746 913 978 436 859 701 951 137 44 815 336 471 720 2...
output:
92039
result:
ok answer is '92039'
Test #4:
score: -100
Time Limit Exceeded
input:
5000 10 14 114 254 832 38 904 25 147 998 785 917 694 750 372 379 887 247 817 999 117 802 15 799 515 316 42 69 247 95 144 727 398 509 725 682 456 369 656 693 955 923 1 681 631 962 826 233 963 289 856 165 491 488 832 111 950 853 791 929 240 509 843 667 970 469 260 447 477 161 431 514 903 627 236 144 3...