poj 2135 Farm Tour 最小费用最大流建图跑最短路

时间:2023-03-08 18:15:08

题目链接

题意:无向图有N(N <= 1000)个节点,M(M <= 10000)条边;从节点1走到节点N再从N走回来,图中不能走同一条边,且图中可能出现重边,问最短距离之和为多少?

思路:很经典的构图(看题解的);每条原图中的边赋予cap为1,表示只走一次。超级源点s和汇点t分别和起点终点连边,cap为2,这里cap为2就直接限制了只能有两次最大流;同时最大流中以权值限制得到的就是最小费用;很注意的一点就是此题为无向图带权值,建图时每条有向边建成两条即总边数为4*M。由于spfa找最短路是有方向的,所以这样并不会出现一条边找两次的可能;

#include<iostream>

#include<cstdio>

#include<cstring>

#include<string.h>

#include<algorithm>

#include<vector>

#include<cmath>

#include<stdlib.h>

#include<time.h>

#include<stack>

#include<set>

#include<map>

#include<queue>

using namespace std;

#define rep0(i,l,r) for(int i = (l);i < (r);i++)

#define rep1(i,l,r) for(int i = (l);i <= (r);i++)

#define rep_0(i,r,l) for(int i = (r);i > (l);i--)

#define rep_1(i,r,l) for(int i = (r);i >= (l);i--)

#define MS0(a) memset(a,0,sizeof(a))

#define MS1(a) memset(a,-1,sizeof(a))

#define MSi(a) memset(a,0x3f,sizeof(a))

#define inf 0x3f3f3f3f

#define lson l, m, rt << 1

#define rson m+1, r, rt << 1|1

typedef long long ll;

#define A first

#define B second

#define MK make_pair

typedef __int64 ll;

template<typename T>

void read1(T &m)

{

    T x=,f=;char ch=getchar();

    while(ch<''||ch>''){if(ch=='-')f=-;ch=getchar();}

    while(ch>=''&&ch<=''){x=x*+ch-'';ch=getchar();}

    m = x*f;

}

template<typename T>

void read2(T &a,T &b){read1(a);read1(b);}

template<typename T>

void read3(T &a,T &b,T &c){read1(a);read1(b);read1(c);}

template<typename T>

void out(T a)

{

    if(a>) out(a/);

    putchar(a%+'');

}

int T,kase = ,i,j,k,n,m,s,t;

const int M = ;

int head[M],tot;

struct Edge{

    int from,to,cap,flow,Next,w;

    Edge(){}

    Edge(int f,int to,int cap,int Next,int w):from(f),to(to),cap(cap),Next(Next),w(w),flow(){}

}e[M<<];

inline void ins(int u,int v,int w,int cap)

{

    e[++tot] = Edge{u,v,cap,head[u],w};

    head[u] = tot;

}

int d[],pre[],inq[],a[];

bool spfa()

{

    MSi(d);MS0(inq);

    d[s] = ;

    queue<int> q;

    q.push(s);

    inq[s] = ;pre[s] = ;a[s] = inf;

    while(!q.empty()){

        int u = q.front();q.pop();

        inq[u] = ;

        for(int id = head[u];id; id = e[id].Next){

            int v = e[id].to;

            if(d[v] > d[u] + e[id].w && e[id].cap > e[id].flow){

                d[v] = d[u] + e[id].w;

                pre[v] = id;

                a[v] = min(a[u],e[id].cap - e[id].flow);

                if(!inq[v]){ q.push(v); inq[v] = ;}

            }

        }

    }

    return d[t] != inf;

}

void solve()

{

    ll ans = ;

    while(spfa()){

        ans += d[t]*a[t];

        for(int u = t;u != s;u = e[pre[u]].from){

            e[pre[u]].flow += a[t];

            e[pre[u]^].flow -= a[t];

        }

    }

    printf("%I64d\n",ans);

}

int main()

{

    while(scanf("%d%d",&n,&m) == ){

        MS0(head);tot = ;

        s = ,t = n+;

        int u,v,w;

        rep0(i,,m){

            read3(u,v,w);

            ins(u,v,w,);ins(v,u,-w,);// ** 下面不能省略,因为是无向输入的.

            ins(v,u,w,);ins(u,v,-w,);

        }

        ins(s,,,);ins(,s,,);

        ins(n,t,,);ins(t,n,,);

        solve();

    }

    return ;

}

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