题目链接:http://acm.split.hdu.edu.cn/showproblem.php?pid=2485
Destroying the bus stations
Time Limit: 4000/2000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 2651 Accepted Submission(s): 891
Problem Description
Gabiluso
is one of the greatest spies in his country. Now he’s trying to
complete an “impossible” mission ----- to make it slow for the army of
City Colugu to reach the airport. City Colugu has n bus stations and m
roads. Each road connects two bus stations directly, and all roads are
one way streets. In order to keep the air clean, the government bans all
military vehicles. So the army must take buses to go to the airport.
There may be more than one road between two bus stations. If a bus
station is destroyed, all roads connecting that station will become no
use. What’s Gabiluso needs to do is destroying some bus stations to make
the army can’t get to the airport in k minutes. It takes exactly one
minute for a bus to pass any road. All bus stations are numbered from 1
to n. The No.1 bus station is in the barrack and the No. n station is in
the airport. The army always set out from the No. 1 station.
No.1 station and No. n station can’t be destroyed because of the heavy guard. Of course there is no road from No.1 station to No. n station.
Please help Gabiluso to calculate the minimum number of bus stations he must destroy to complete his mission.
No.1 station and No. n station can’t be destroyed because of the heavy guard. Of course there is no road from No.1 station to No. n station.
Please help Gabiluso to calculate the minimum number of bus stations he must destroy to complete his mission.
Input
There are several test cases. Input ends with three zeros.
For each test case:
The first line contains 3 integers, n, m and k. (0< n <=50, 0< m<=4000, 0 < k < 1000)
Then m lines follows. Each line contains 2 integers, s and f, indicating that there is a road from station No. s to station No. f.
For each test case:
The first line contains 3 integers, n, m and k. (0< n <=50, 0< m<=4000, 0 < k < 1000)
Then m lines follows. Each line contains 2 integers, s and f, indicating that there is a road from station No. s to station No. f.
Output
For each test case, output the minimum number of stations Gabiluso must destroy.
Sample Input
5 7 3
1 3
3 4
4 5
1 2
2 5
1 4
4 5
0 0 0
Sample Output
2
Source
题意:
给定n个点, m条有向边 ,k
下面m条有向边
问删最少几个点使得1-n的最短路>k
分析:其证明还没看懂,先做了再说咯。证明在紫书370,写一下结论:在增广路算法结束时,f是s-t最大流,(S,T)是最小割。
然后问了一下阳哥,记录几个结论,最大流=最小割(边)=最小割(点)。
#include <iostream> #include <stdio.h> #include <cstring> #include <vector> #include <queue> #define INF 0x3f3f3f3f using namespace std; const int maxn = 4000 + 10; int k; struct Edge { int from,to,cap,flow,cost; Edge() {} Edge(int a,int b,int c,int d,int e):from(a),to(b),cap(c),flow(d),cost(e) {} }; struct MCMF { int n,m,s,t; vector<Edge> edges; vector<int> g[maxn]; int inq[maxn]; int d[maxn]; int p[maxn]; int a[maxn]; void init(int n) { this->n =n; for(int i=0; i<n; i++)g[i].clear(); edges.clear(); } void addedge(int from,int to,int cap,int cost) { Edge e1= Edge(from,to,cap,0,cost), e2= Edge(to,from,0,0,-cost); edges.push_back(e1); edges.push_back(e2); m=edges.size(); g[from].push_back(m-2); g[to].push_back(m-1); } bool spfa(int s,int t, int & flow,int & cost) { for(int i=0; i<n; i++) d[i]=INF; memset(inq,0,sizeof(inq)); d[s]=0; inq[s]=1; p[s]=0; a[s]=INF; queue<int>q; q.push(s); while(!q.empty()) { int u=q.front(); q.pop(); inq[u]=0; for(int i=0; i<g[u].size(); i++) { Edge & e = edges[g[u][i]]; if(e.cap>e.flow && d[e.to]>d[u]+e.cost) { d[e.to]=d[u]+e.cost; p[e.to]=g[u][i]; a[e.to]=min(a[u],e.cap-e.flow); if(!inq[e.to]) { q.push(e.to); inq[e.to]=1; } } } } if(d[t]>k) return false; if(d[t]==INF) return false; flow+=a[t]; cost+=a[t]*d[t]; for(int u=t; u!=s; u=edges[p[u]].from) { edges[p[u]].flow +=a[t]; edges[p[u]^1].flow-=a[t]; } return true; } int MincostMaxflow(int s,int t) { int flow=0,cost =0; while(spfa(s,t,flow,cost)); return flow; } } sol; int main() { freopen("input.txt","r",stdin); int n,m; while(scanf("%d%d%d",&n,&m,&k)) { int s = 0,t = 2*n+1; if(n==0&&m==0&&k==0) break; int u,v; sol.init(n*2+2); for(int i=1; i<=n; i++) sol.addedge(i+n,i,1,0); sol.addedge(1,1+n,INF,0); sol.addedge(n,2*n,INF,0); sol.addedge(0,1,INF,0); sol.addedge(2*n,t,INF,0); for(int i=0; i<m; i++) { scanf("%d%d",&u,&v); sol.addedge(u,v+n,INF,1); } printf("%d ",sol.MincostMaxflow(s,t)); } return 0; }