题目连接: (luogu) https://www.luogu.org/problemnew/show/P2604
(bzoj) https://www.lydsy.com/JudgeOnline/problem.php?id=1834
题解: 第一问所有的费用全按(0)建,跑完了之后很自然想到利用残余网络。
把(n)和一个新点(T)连边,然后原来的残量网络保留,在此基础上对于原来的每条边流量均按(+inf)建,费用为原始费用再跑一遍即可。
时间复杂度(O(MaxFlowMinCost(n,m)))
(然而智障的我不会处理残量网路还想做(K)次费用流每次(+1),真是没脑子)
代码
#include<cstdio>
#include<cstdlib>
#include<cstring>
#include<algorithm>
#define llong long long
using namespace std;
const int N = 1002;
const int M = 10000;
const llong INF = 1000000000000ll;
struct Edge
{
int u,v,nxt,rev; llong c,w;
} e[(M<<1)+3];
Edge ae[M+3];
int fe[N+3];
int que[N+3];
llong dis[N+3];
bool inq[N+3];
int lst[N+3];
int n,m,en,p,s,t;
llong mf,mc;
void addedge(int u,int v,llong w,llong c)
{
en++; e[en].u = u; e[en].v = v; e[en].w = w; e[en].c = c;
e[en].nxt = fe[u]; fe[u] = en; e[en].rev = en+1;
en++; e[en].u = v; e[en].v = u; e[en].w = 0; e[en].c = -c;
e[en].nxt = fe[v]; fe[v] = en; e[en].rev = en-1;
}
bool spfa()
{
for(int i=1; i<=n; i++) dis[i] = INF;
int head = 1,tail = 2; que[tail-1] = s; dis[s] = 0ll;
while(head!=tail)
{
int u = que[head]; head++; if(head==n+1) head = 1;
for(int i=fe[u]; i; i=e[i].nxt)
{
if(e[i].w>0 && dis[e[i].v]>dis[u]+e[i].c)
{
dis[e[i].v] = dis[u]+e[i].c;
lst[e[i].v] = i;
if(!inq[e[i].v])
{
inq[e[i].v] = true;
que[tail] = e[i].v; tail++; if(tail==n+1) tail = 1;
}
}
}
inq[u] = false;
}
return dis[t]!=INF;
}
void calcflow()
{
llong flow = INF;
for(int i=t; i!=s; i=e[lst[i]].u)
{
flow = min(flow,e[lst[i]].w);
}
for(int i=t; i!=s; i=e[lst[i]].u)
{
e[lst[i]].w -= flow; e[e[lst[i]].rev].w += flow;
}
mf += flow; mc += flow*dis[t];
}
void mfmc()
{
while(spfa())
{
calcflow();
}
}
int main()
{
scanf("%d%d%d",&n,&m,&p);
for(int i=1; i<=m; i++)
{
scanf("%d%d%lld%lld",&ae[i].u,&ae[i].v,&ae[i].w,&ae[i].c);
addedge(ae[i].u,ae[i].v,ae[i].w,0ll);
}
s = 1; t = n; mf = mc = 0ll;
mfmc();
printf("%lld ",mf);
n++; addedge(n-1,n,p,0); t = n;
for(int i=1; i<=m; i++)
{
addedge(ae[i].u,ae[i].v,INF,ae[i].c);
}
mf = mc = 0ll;
mfmc();
printf("%lld
",mc);
return 0;
}