poj2391 Ombrophobic Bovines

Posted

tags:

篇首语:本文由小常识网(cha138.com)小编为大家整理,主要介绍了poj2391 Ombrophobic Bovines相关的知识,希望对你有一定的参考价值。

?????????????????????   sans   arc   +=   hint   either   mission   and   ide   

Ombrophobic Bovines
Time Limit: 1000MS   Memory Limit: 65536K
Total Submissions: 20459   Accepted: 4403

Description

FJ???s cows really hate getting wet so much that the mere thought of getting caught in the rain makes them shake in their hooves. They have decided to put a rain siren on the farm to let them know when rain is approaching. They intend to create a rain evacuation plan so that all the cows can get to shelter before the rain begins. Weather forecasting is not always correct, though. In order to minimize false alarms, they want to sound the siren as late as possible while still giving enough time for all the cows to get to some shelter. 

The farm has F (1 <= F <= 200) fields on which the cows graze. A set of P (1 <= P <= 1500) paths connects them. The paths are wide, so that any number of cows can traverse a path in either direction. 

Some of the farm???s fields have rain shelters under which the cows can shield themselves. These shelters are of limited size, so a single shelter might not be able to hold all the cows. Fields are small compared to the paths and require no time for cows to traverse. 

Compute the minimum amount of time before rain starts that the siren must be sounded so that every cow can get to some shelter.

Input

* Line 1: Two space-separated integers: F and P 

* Lines 2..F+1: Two space-separated integers that describe a field. The first integer (range: 0..1000) is the number of cows in that field. The second integer (range: 0..1000) is the number of cows the shelter in that field can hold. Line i+1 describes field i. 

* Lines F+2..F+P+1: Three space-separated integers that describe a path. The first and second integers (both range 1..F) tell the fields connected by the path. The third integer (range: 1..1,000,000,000) is how long any cow takes to traverse it.

Output

* Line 1: The minimum amount of time required for all cows to get under a shelter, presuming they plan their routes optimally. If it not possible for the all the cows to get under a shelter, output "-1".

Sample Input

3 4
7 2
0 4
2 6
1 2 40
3 2 70
2 3 90
1 3 120

Sample Output

110

Hint

OUTPUT DETAILS: 

In 110 time units, two cows from field 1 can get under the shelter in that field, four cows from field 1 can get under the shelter in field 2, and one cow can get to field 3 and join the cows from that field under the shelter in field 3. Although there are other plans that will get all the cows under a shelter, none will do it in fewer than 110 time units.

Source

???????????????n???????????????????????????????????????????????????????????????????????????????????????????????????????????????????????????????????????????????????.
????????????????????????????????????,???????????????????????????. ??????????????????????????????????????????????????????????????????????????????????????? 
?????????????????????????????????????????????????????????????????????. ?????????????????????????????????????????????????????????.
?????????????????????floyd???????????????????????????????????????????????????????????????????????????mid???????????????.
?????????????????????????????????????????????sb??????. ????????????S,T???????????????????????????????????????T = 2 * n + 1,??????n???????????????????????????T?????????1......  ???????????????????????????RE.   ??????????????????TLE
#include <cstdio>
#include <queue>
#include <cstring>
#include <iostream>
#include <algorithm>

using namespace std;

typedef long long ll;
const ll maxn = 160010,inf = 10000000000000000;

ll n,m,a[410],b[410],head[410],to[maxn],nextt[maxn],tot = 2,w[maxn];
ll dist[410][410],ans = -1,sum,maxx,d[410],S,T;

void add(ll x,ll y,ll z)
{
    w[tot] = z;
    to[tot] = y;
    nextt[tot] = head[x];
    head[x] = tot++;

    w[tot] = 0;
    to[tot] = x;
    nextt[tot] = head[y];
    head[y] = tot++;
}

bool bfs()
{
    queue <ll> q;
    q.push(S);
    memset(d,-1,sizeof(d));
    d[S] = 0;
    while (!q.empty())
    {
        ll u = q.front();
        q.pop();
        if (u == T)
            return true;
        for (ll i = head[u];i;i = nextt[i])
        {
            ll v = to[i];
            if (w[i] && d[v] == -1)
            {
                d[v] = d[u] + 1;
                q.push(v);
            }
        }
    }
    return false;
}

ll dfs(ll u,ll flow)
{
    if (u == T)
        return flow;
    ll res = 0;
    for (ll i = head[u];i;i = nextt[i])
    {
        ll v = to[i];
        if (w[i] && d[v] == d[u] + 1)
        {
            ll temp = dfs(v,min(flow - res,w[i]));
            w[i] -= temp;
            w[i ^ 1] += temp;
            res += temp;
            if (res == flow)
                return res;
        }
    }
    if (res == 0)
        d[u] = -1;
    return res;
}

bool check(ll x)
{
    tot = 2;
    memset(head,0,sizeof(head));
    for (ll i = 1; i <= n; i++)
    {
        add(S,i,a[i]);
        add(i + n,T,b[i]);
    }
    for (ll i = 1; i <= n; i++)
        for (ll j = 1; j <= n; j++)
            if (dist[i][j] <= x)
                add(i,j + n,inf);
    ll cnt = 0;
    while (bfs())
        cnt += dfs(S,inf);
    if (cnt == sum)
        return true;
    return false;
}

void solve()
{
    for (ll i = 1; i <= n; i++)
        for (ll j = 1; j <= n; j++)
            if (dist[i][j] != inf)
                maxx = max(maxx,dist[i][j]);
    ll l = 1,r = maxx;
    while (l <= r)
    {
        ll mid = (l + r) >> 1;
        if (check(mid))
        {
            ans = mid;
            r = mid - 1;
        }
        else
            l = mid + 1;
    }
}

int main()
{
    scanf("%lld%lld",&n,&m);
    S = 2 * n + 1;
    T = 2 * n + 2;
    for (ll i = 1; i <= n; i++)
    {
        scanf("%lld%lld",&a[i],&b[i]);
        sum += a[i];
    }
    for (ll i = 1; i <= n; i++)
        for (ll j = 1; j <= n; j++)
        {
            if (i == j)
                dist[i][j] = 0;
            else
                dist[i][j] = inf;
        }
    for (ll i = 1; i <= m; i++)
    {
        ll x,y,z;
        scanf("%lld%lld%lld",&x,&y,&z);
        dist[x][y] = dist[y][x] = min(dist[x][y],z);
    }
    for (ll k = 1; k <= n; k++)
        for (ll i = 1; i <= n; i++)
            for (ll j = 1; j <= n; j++)
                dist[i][j] = min(dist[i][j],dist[i][k] + dist[k][j]);
    solve();
    printf("%lld\n",ans);

    return 0;
}

 

以上是关于poj2391 Ombrophobic Bovines的主要内容,如果未能解决你的问题,请参考以下文章

POJ 2391 Ombrophobic Bovines

POJ 2391 Ombrophobic Bovines

poj2391 Ombrophobic Bovines

POJ2391 Ombrophobic Bovines(网络流)(拆点)

POJ2391 Ombrophobic Bovines 网络流拆点+二分+floyed

POJ 2391 Ombrophobic Bovines(二分+拆点+最大流)