题意
第一问没什么好说的,就是个最大流。
第二问我们考虑怎么处理费用和增大(K)的限制。
费用:
每条边重新建一遍,带上费用就好了。
增大(K):
我们可以利用残余网络,新建虚拟源点(S),从(S)向(1)连容量为(K)费用为(0)的边,这样我们从S再跑一遍最小费用最大流即可。
code:
#include<bits/stdc++.h>
using namespace std;
const int maxn=1010;
const int maxm=5010;
const int inf=1e9;
int n,m,K,cnt_edge=1,S,T,ans1,ans2;
int head[maxn],cur[maxn],dep[maxn],dis[maxn];
bool vis[maxn];
struct Edge{int u,v,w,c;}E[maxm];
struct edge{int to,nxt,flow,cost;}e[maxm<<2];
inline int read()
{
char c=getchar();int res=0,f=1;
while(c<'0'||c>'9'){if(c=='-')f=-1;c=getchar();}
while(c>='0'&&c<='9')res=res*10+c-'0',c=getchar();
return res*f;
}
inline void add(int u,int v,int w,int c)
{
e[++cnt_edge].nxt=head[u];
head[u]=cnt_edge;
e[cnt_edge].to=v;
e[cnt_edge].flow=w;
e[cnt_edge].cost=c;
}
inline void addflow(int u,int v,int w,int c){add(u,v,w,c);add(v,u,0,-c);}
inline bool bfs()
{
memset(dep,0,sizeof(dep));
queue<int>q;
q.push(S);dep[S]=1;cur[S]=head[S];
while(!q.empty())
{
int x=q.front();q.pop();
for(int i=head[x];i;i=e[i].nxt)
{
int y=e[i].to;
if(dep[y]||e[i].flow<=0)continue;
dep[y]=dep[x]+1;q.push(y);cur[y]=head[y];
}
}
return dep[T]>0;
}
inline bool spfa()
{
memset(dis,0x3f,sizeof(dis));
memset(vis,0,sizeof(vis));
queue<int>q;
q.push(S);dis[S]=0;vis[S]=1;
while(!q.empty())
{
int x=q.front();q.pop();vis[x]=0;
for(int i=head[x];i;i=e[i].nxt)
{
int y=e[i].to;
if(dis[y]>dis[x]+e[i].cost&&e[i].flow>0)
{
dis[y]=dis[x]+e[i].cost;
if(!vis[y])q.push(y),vis[y]=1;
}
}
}
return dis[T]!=0x3f3f3f3f;
}
int dfs1(int x,int lim)
{
if(lim<=0||x==T)return lim;
int res=lim;
for(int i=cur[x];i;i=e[i].nxt)
{
cur[x]=i;
int y=e[i].to;
if(dep[y]!=dep[x]+1||e[i].flow<=0)continue;
int tmp=dfs1(y,min(res,e[i].flow));
if(tmp<=0)dep[y]=0;
res-=tmp;
e[i].flow-=tmp,e[i^1].flow+=tmp;
if(res<=0)break;
}
return lim-res;
}
int dfs2(int x,int lim)
{
vis[x]=1;
if(lim<=0||x==T)return lim;
int res=lim;
for(int i=head[x];i;i=e[i].nxt)
{
int y=e[i].to;
if(dis[y]!=dis[x]+e[i].cost||e[i].flow<=0||vis[y])continue;
int tmp=dfs2(y,min(res,e[i].flow));
res-=tmp;
e[i].flow-=tmp,e[i^1].flow+=tmp;
if(res<=0)break;
}
return lim-res;
}
inline int Dinic1()
{
int res=0;
while(bfs())res+=dfs1(S,inf);
return res;
}
inline int Dinic2()
{
int res=0,cost=0;
while(spfa())
{
int flow=dfs2(S,inf);
res+=flow;cost+=flow*dis[T];
}
return cost;
}
int main()
{
n=read(),m=read(),K=read();
for(int i=1;i<=m;i++)E[i].u=read(),E[i].v=read(),E[i].w=read(),E[i].c=read();
for(int i=1;i<=m;i++)addflow(E[i].u,E[i].v,E[i].w,0);
S=1,T=n;
ans1=Dinic1();
for(int i=1;i<=m;i++)addflow(E[i].u,E[i].v,inf,E[i].c);
addflow(0,1,K,0);
S=0,T=n;
ans2=Dinic2();
printf("%d %d",ans1,ans2);
return 0;
}