• hdu4280 最大流DINIC


    题意:
          x最小的到x最大的点同一时间的最大运输量.


    思路:

          裸的最大流,不解释,注意一点,记得加上防爆栈.

    #pragma comment(linker, "/STACK:1024000000,1024000000")
    #include<stdio.h>
    #include<string.h>
    #include<queue>
    #define N 300000
    using namespace std;
    struct  star
    {
       int b,c,next;
    }D[N];
    struct mknum
    {
        int x,t;
    }tou,xin;
    queue<mknum>q;
    int minn(int x,int y)
    {
      return x<y?x:y;
    }
    int list1[100005],list2[100005],tot;
    int  deep[100005];
    void add(int a,int b,int c)
    {
       D[++tot].b=b;
       D[tot].c=c;
       D[tot].next=list1[a];
       list1[a]=tot;
    }
    bool bfs(int s,int t,int n)
    {
       memset(deep,255,sizeof(deep));
       deep[s]=0;
       xin.x=s;
       xin.t=0;
       while(!q.empty())
       q.pop();
       q.push(xin);
       while(!q.empty())
       {
          tou=q.front();
          q.pop();
          for(int k=list1[tou.x];k;k=D[k].next)
          {
              int to=D[k].b;
              if(deep[to]==-1&&D[k].c)
              {
            xin.x=to;
            xin.t=tou.t+1;
            q.push(xin);
            deep[xin.x]=xin.t;
               }
           }
          }
          
          for(int i=0;i<=n;i++)
          list2[i]=list1[i];
          return deep[t]!=-1;
    }                    
    
    int dfs(int s,int t,int flow)
    {
         if(s==t)
         return flow;
         int nowflow=0;
         for(int k=list2[s];k;k=D[k].next) 
         {
              list2[s]=k;
        int to=D[k].b;
        int c=D[k].c;
        if(deep[to]!=deep[s]+1||!c)
        continue;
        if(nowflow==flow)
        break;
        int temp=dfs(to,t,minn(c,flow-nowflow));
        nowflow+=temp;
        D[k].c-=temp;
        D[k^1].c+=temp;
        if(nowflow==flow)
        break;
           }    
            if(nowflow==0)
            deep[s]=0;
            return nowflow;
    }
    
    int DINIC(int s,int t,int n)
    {
      int ans=0;
      while(bfs(s,t,n))
      {
         ans+=dfs(s,t,1000000000);
       }
       return ans;
    }
    
    int main ()
    {
       int i,n,m,mx,mi,s,t,tt,a,b,c,x,y;
       scanf("%d",&tt);
       while(tt--)
       {
          scanf("%d%d",&n,&m);
          mx=-10000000,mi=10000000;
          for(i=1;i<=n;i++)
          {
             scanf("%d%d",&x,&y);
             if(mx<x)
             {
                   mx=x;
                t=i;
             }
             if(mi>x)
             {
                mi=x;
                s=i;
             }
           }
           memset(list1,0,sizeof(list1));
           tot=1;
           for(i=1;i<=m;i++)
           {
              scanf("%d%d%d",&a,&b,&c);
        add(a,b,c);    
        add(b,a,c);
            }
            printf("%d
    ",DINIC(s,t,n));
        }
        return 0;
    }      
        
    

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  • 原文地址:https://www.cnblogs.com/csnd/p/12063249.html
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