bzoj4485: [Jsoi2015]圈地
思维僵化选手在线被虐
其实应该是不难的,题目明显分成两个集合,要求是不同集合的点不能联通
先假设全选了,然后二分图最小割,相邻两个点直接连墙的费用就可以了
#include<cstdio> #include<iostream> #include<cstring> #include<cstdlib> #include<algorithm> #include<cmath> #define pt(x,y) ((x-1)*m+y) using namespace std; const int _=1e2; const int maxp=400*400+_; struct node { int x,y,c,next; }a[10*maxp];int len,last[maxp]; void ins(int x,int y,int c) { len++; a[len].x=x;a[len].y=y;a[len].c=c; a[len].next=last[x];last[x]=len; len++; a[len].x=y;a[len].y=x;a[len].c=c; a[len].next=last[y];last[y]=len; } int h[maxp],st,ed; int list[maxp]; bool bt_h() { memset(h,0,sizeof(h));h[st]=1; int head=1,tail=2;list[1]=st; while(head!=tail) { int x=list[head]; for(int k=last[x];k;k=a[k].next) { int y=a[k].y; if(a[k].c>0&&h[y]==0) { h[y]=h[x]+1; list[tail++]=y; } } head++; } return h[ed]!=0; } int cur[maxp]; int findflow(int x,int f) { if(x==ed)return f; int s=0; for(int k=cur[x];k;k=a[k].next) { cur[x]=k; int y=a[k].y; if(a[k].c>0&&h[y]==h[x]+1&&s<f) { int t=findflow(y,min(a[k].c,f-s)); s+=t;a[k].c-=t;a[k^1].c+=t; if(s==f)break; } } if(s==0)h[x]=0; return s; } //-------------------------findflow----------------------------------- int main() { int n,m,x,ans=0; scanf("%d%d",&n,&m); len=1; st=n*m+1,ed=n*m+2; for(int i=1;i<=n;i++) for(int j=1;j<=m;j++) { scanf("%d",&x); ans+=abs(x); if(x>0)ins(st,pt(i,j),x); else if(x<0)ins(pt(i,j),ed,-x); } for(int i=2;i<=n;i++) for(int j=1;j<=m;j++) { scanf("%d",&x); ins(pt(i-1,j),pt(i,j),x); } for(int i=1;i<=n;i++) for(int j=2;j<=m;j++) { scanf("%d",&x); ins(pt(i,j-1),pt(i,j),x); } while(bt_h()) { for(int i=1;i<=n*m+2;i++)cur[i]=last[i]; ans-=findflow(st,(1<<30)); } printf("%d\n",ans); return 0; }
pain and happy in the cruel world.