• Evacuation Plan-POJ2175最小费用消圈算法


    Time Limit: 1000MS Memory Limit: 65536K

    Special Judge

    Description

    The City has a number of municipal buildings and a number of fallout shelters that were build specially to hide municipal workers in case of a nuclear war. Each fallout shelter has a limited capacity in terms of a number of people it can accommodate, and there’s almost no excess capacity in The City’s fallout shelters. Ideally, all workers from a given municipal building shall run to the nearest fallout shelter. However, this will lead to overcrowding of some fallout shelters, while others will be half-empty at the same time.

    To address this problem, The City Council has developed a special evacuation plan. Instead of assigning every worker to a fallout shelter individually (which will be a huge amount of information to keep), they allocated fallout shelters to municipal buildings, listing the number of workers from every building that shall use a given fallout shelter, and left the task of individual assignments to the buildings’ management. The plan takes into account a number of workers in every building - all of them are assigned to fallout shelters, and a limited capacity of each fallout shelter - every fallout shelter is assigned to no more workers then it can accommodate, though some fallout shelters may be not used completely.

    The City Council claims that their evacuation plan is optimal, in the sense that it minimizes the total time to reach fallout shelters for all workers in The City, which is the sum for all workers of the time to go from the worker’s municipal building to the fallout shelter assigned to this worker.

    The City Mayor, well known for his constant confrontation with The City Council, does not buy their claim and hires you as an independent consultant to verify the evacuation plan. Your task is to either ensure that the evacuation plan is indeed optimal, or to prove otherwise by presenting another evacuation plan with the smaller total time to reach fallout shelters, thus clearly exposing The City Council’s incompetence.
    这里写图片描述

    During initial requirements gathering phase of your project, you have found that The City is represented by a rectangular grid. The location of municipal buildings and fallout shelters is specified by two integer numbers and the time to go between municipal building at the location (Xi, Yi) and the fallout shelter at the location (Pj, Qj) is Di,j = |Xi - Pj| + |Yi - Qj| + 1 minutes.

    Input

    The input consists of The City description and the evacuation plan description. The first line of the input file consists of two numbers N and M separated by a space. N (1 ≤ N ≤ 100) is a number of municipal buildings in The City (all municipal buildings are numbered from 1 to N). M (1 ≤ M ≤ 100) is a number of fallout shelters in The City (all fallout shelters are numbered from 1 to M).

    The following N lines describe municipal buildings. Each line contains there integer numbers Xi, Yi, and Bi separated by spaces, where Xi, Yi (-1000 ≤ Xi, Yi ≤ 1000) are the coordinates of the building, and Bi (1 ≤ Bi ≤ 1000) is the number of workers in this building.

    The description of municipal buildings is followed by M lines that describe fallout shelters. Each line contains three integer numbers Pj, Qj, and Cj separated by spaces, where Pi, Qi (-1000 ≤ Pj, Qj ≤ 1000) are the coordinates of the fallout shelter, and Cj (1 ≤ Cj ≤ 1000) is the capacity of this shelter.

    The description of The City Council’s evacuation plan follows on the next N lines. Each line represents an evacuation plan for a single building (in the order they are given in The City description). The evacuation plan of ith municipal building consists of M integer numbers Ei,j separated by spaces. Ei,j (0 ≤ Ei,j ≤ 1000) is a number of workers that shall evacuate from the ith municipal building to the jth fallout shelter.

    The plan in the input file is guaranteed to be valid. Namely, it calls for an evacuation of the exact number of workers that are actually working in any given municipal building according to The City description and does not exceed the capacity of any given fallout shelter.

    Output

    If The City Council’s plan is optimal, then write to the output the single word OPTIMAL. Otherwise, write the word SUBOPTIMAL on the first line, followed by N lines that describe your plan in the same format as in the input file. Your plan need not be optimal itself, but must be valid and better than The City Council’s one.

    Sample Input

    3 4
    -3 3 5
    -2 -2 6
    2 2 5
    -1 1 3
    1 1 4
    -2 -2 7
    0 -1 3
    3 1 1 0
    0 0 6 0
    0 3 0 2

    Sample Output

    SUBOPTIMAL
    3 0 1 1
    0 0 6 0
    0 4 0 1
    Source

    Northeastern Europe 2002

    题意:有n个市政大楼和m个避难所,每一个市政大楼都有一定的人数,而每一个避难所也有一定的容量,从某个市政大楼到某个避难所的花费是曼哈顿距离+1,现在委员会给你一个有效的疏散计划,判断还有没有这个计划更优的方案。

    分析:开始理解题意的时候,以为用最小费用跑一次,判断最小费用与所给的答案,但是TLE,后来在讨论中看到最小费用会超时,说是用消圈的方式判断是不是还有更优解。
    消圈定理:残留网络里如果存在负费用圈,那么当前流不是最小费用流。
    负圈有必要解释一下:费用总和是负数,且每条边的剩余流量大于0
    按照所给的信息建图。

    #include <cstdio>
    #include <cstring>
    #include <cstdlib>
    #include <cmath>
    #include <iostream>
    #include <queue>
    #include <algorithm>
    
    using namespace std;
    
    const int INF = 0x3f3f3f3f;
    
    const int Max = 210;
    
    typedef struct node
    {
        int x,y,num;
    }Point;
    
    int Map[Max][Max],Cost[Max][Max],Num[Max];
    
    Point  Z[Max],B[Max];
    
    int dis[Max],pre[Max],Du[Max];
    
    bool vis[Max];
    
    int n,m,s,t;
    
    int ok(Point a,Point b)
    {
        return abs(a.x-b.x)+abs(a.y-b.y)+1;
    }
    
    int SPFA() //判断是不是有负圈
    {
        for(int i=0;i<=t;i++)
        {
            dis[i] = INF;
    
            pre[i] = -1;
    
            Du[i] = 0;
    
            vis[i]=false;
        }
        queue<int>Q;
    
        dis[t] = 0,vis[t] = true;
    
        Q.push(t);
    
        Du[t] = 1;
    
        while(!Q.empty())
        {
            int u = Q.front();
    
            Q.pop();
    
            for(int i=0;i<=t;i++)
            {
                if(Map[u][i]&&dis[i]>dis[u]+Cost[u][i])
                {
                    dis[i] = dis[u]+Cost[u][i];
    
                    pre[i] = u;
    
                    if(!vis[i])
                    {
                        vis[i]=true;
    
                        Q.push(i);
    
                        Du[i]++;
    
                        if(Du[i]>t)
                        {
                            return i;
                        }
                    }
                }
            }
    
            vis[u]=false;
        }
    
        return -1;
    }
    
    int main()
    {
    
        int num;
    
        while(~scanf("%d %d",&n,&m))
        {
            s= 0, t =n+m+1;
    
            memset(Map,0,sizeof(Map));
    
            memset(Cost,0,sizeof(Cost));
    
            memset(Num,0,sizeof(Num));
    
            for(int i=1;i<=n;i++) scanf("%d %d %d",&Z[i].x,&Z[i].y,&Z[i].num);
    
            for(int i=1;i<=m;i++) scanf("%d %d %d",&B[i].x,&B[i].y,&B[i].num);
    
            for(int i=1;i<=n;i++)//市政与避难所之间建图
            {
                for(int j=1;j<=m;j++)
                {
                    Cost[i][j+n] = ok(Z[i],B[j]);
    
                    Cost[j+n][i] = -Cost[i][j+n];
    
                    Map[i][j+n] = Z[i].num;
                }
            }
            int ans = 0;
    
            for(int i=1;i<=n;i++)
            {
                for(int j=1;j<=m;j++)
                {
                    scanf("%d",&num);
    
                    Map[i][j+n]-= num;
    
                    Map[j+n][i] = num;
    
                    Num[j]+=num;
                }
            }
    
            for(int i=1;i<=m;i++)
            {
                Map[i+n][t] = B[i].num-Num[i];
    
                Map[t][i+n] = Num[i];
            }
    
            ans = SPFA();
    
            if(ans==-1)
            {
                printf("OPTIMAL
    ");
            }
            else
            {
                printf("SUBOPTIMAL
    ");
    
                memset(vis,false,sizeof(vis));
    
                int v = ans;
    
                while(!vis[v])
                {
                    vis[v]=true;
    
                    v = pre[v];
                }
    
                ans  = v;
    
                do
                {
                    Map[pre[v]][v] --;
    
                    Map[v][pre[v]]++;
    
                    v = pre[v];
                }
                while(v!=ans);
    
                for(int i=1;i<=n;i++)
                {
                    for(int j=1;j<=m;j++)
                    {
                        if(j!=1)
                        {
                            printf(" ");
                        }
    
                        printf("%d",Map[j+n][i]);
                    }
    
                    printf("
    ");
                }
            }
        }
        return 0;
    }
    
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  • 原文地址:https://www.cnblogs.com/juechen/p/5255862.html
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