get到新姿势,最小割=最大流,来个大佬的PPT
这道题的做法是将st和1的xpy连,0的xpy和ed连,xpy之间jy连双向边,然后呢答案就是最小割。
#include<cstdio> #include<iostream> #include<cstring> using namespace std; struct node { int x,y,c,next,other; }a[110000];int len,last[310]; void ins(int x,int y,int c) { int k1,k2; len++;k1=len; a[len].x=x;a[len].y=y;a[len].c=c; a[len].next=last[x];last[x]=len; len++;k2=len; a[len].x=y;a[len].y=x;a[len].c=0; a[len].next=last[y];last[y]=len; a[k1].other=k2; a[k2].other=k1; } int st,ed; int h[310],list[310]; 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(h[y]==0&&a[k].c>0) { h[y]=h[x]+1; list[tail]=y; tail++; } } head++; } if(h[ed]==0)return false; return true; } int findflow(int x,int f) { if(x==ed)return f; int s=0; for(int k=last[x];k;k=a[k].next) { int y=a[k].y; if(h[y]==h[x]+1&&a[k].c>0&&s<f) { int t=findflow(y,min(a[k].c,f-s)); s+=t;a[k].c-=t;a[a[k].other].c+=t; } } return s; } int main() { int n,m,x,y; scanf("%d%d",&n,&m); st=n+1,ed=n+2; len=0;memset(last,0,sizeof(last)); for(int i=1;i<=n;i++) { scanf("%d",&x); if(x==1)ins(st,i,1); else ins(i,ed,1); } for(int i=1;i<=m;i++) { scanf("%d%d",&x,&y); ins(x,y,1);ins(y,x,1); } int ans=0; while(bt_h()==true) { ans+=findflow(st,2147483647); } printf("%d ",ans); return 0; }