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Paratroopers
Time Limit: 1000MS   Memory Limit: 65536K
Total Submissions: 7267   Accepted: 2194

Description

It is year 2500 A.D. and there is a terrible war between the forces of the Earth and the Mars. Recently, the commanders of the Earth are informed by their spies that the invaders of Mars want to land some paratroopers in the × n grid yard of one their main weapon factories in order to destroy it. In addition, the spies informed them the row and column of the places in the yard in which each paratrooper will land. Since the paratroopers are very strong and well-organized, even one of them, if survived, can complete the mission and destroy the whole factory. As a result, the defense force of the Earth must kill all of them simultaneously after their landing.

In order to accomplish this task, the defense force wants to utilize some of their most hi-tech laser guns. They can install a gun on a row (resp. column) and by firing this gun all paratroopers landed in this row (resp. column) will die. The cost of installing a gun in the ith row (resp. column) of the grid yard is ri (resp. ci ) and the total cost of constructing a system firing all guns simultaneously is equal to the product of their costs. Now, your team as a high rank defense group must select the guns that can kill all paratroopers and yield minimum total cost of constructing the firing system.

Input

Input begins with a number T showing the number of test cases and then, T test cases follow. Each test case begins with a line containing three integers 1 ≤ m ≤ 50 , 1 ≤ n ≤ 50 and 1 ≤ l ≤ 500 showing the number of rows and columns of the yard and the number of paratroopers respectively. After that, a line with m positive real numbers greater or equal to 1.0 comes where the ith number is ri and then, a line with n positive real numbers greater or equal to 1.0 comes where the ith number is ci. Finally, l lines come each containing the row and column of a paratrooper.

Output

For each test case, your program must output the minimum total cost of constructing the firing system rounded to four digits after the fraction point.

Sample Input

1
4 4 5
2.0 7.0 5.0 2.0
1.5 2.0 2.0 8.0
1 1
2 2
3 3
4 4
1 4

Sample Output

16.0000

这道题第一眼还以为是最优匹配,但是可能开枪数大于最大匹配数,所以不能这么解
以花费为两边容量建边,中间原来的边设为inf,那么每一条边都会流过行花费或者列花费的流量限制,但是这个也是看了小you的博客之后总结出来的
值得一提的是乘积应当转化为自然对数加和然后再指数回来,一开始没看到

另 会在减的过程中小于0,所以直接用a==0判断会T或者WA
//996k 16ms
#include <cstdio>
#include <cstring>
#include <queue>
#include <assert.h>
#include <cmath>
using namespace std;
const double inf=1e20;
const double eps=1e-8;
const int maxnum=302;
const int sups=300,supt=301;
double f[maxnum][maxnum];
int e[maxnum][maxnum];
int len[maxnum];

double min(double a1,double b1) {
    return a1<b1?a1:b1;
}

int m,n,l;//m ri n ci
void input(){
    scanf("%d%d%d",&m,&n,&l);
    memset(len,0,sizeof(len));

    for(int i=0;i<m;i++){
        double ttc;
        scanf("%lf",&ttc);
        f[sups][i]=log(ttc);
        f[i][sups]=0;
        e[sups][len[sups]++]=i;
        e[i][len[i]++]=sups;
    }
    for(int i=m;i<m+n;i++){
        double ttc;
        scanf("%lf",&ttc);
        f[i][supt]=log(ttc);
        f[supt][i]=0;
        e[supt][len[supt]++]=i;
        e[i][len[i]++]=supt;
    }
    for(int i=0;i<l;i++){
        int tr,tc;
        scanf("%d%d",&tr,&tc);tr--;tc=tc-1+m;
        f[tr][tc]=inf;
        f[tc][tr]=0;
        e[tr][len[tr]++]=tc;e[tc][len[tc]++]=tr;
    }
}

int d[maxnum];
bool vis[maxnum];
bool  bfs(){
    memset(vis,0,sizeof(vis));
    d[supt]=0;
    queue<int >que;
    que.push(supt);
    vis[supt]=true;
    while(!que.empty()){
        int fr=que.front();que.pop();
        for(int i=0;i<len[fr];i++){
            int to=e[fr][i];
            if(!vis[to]&&fabs(f[to][fr])>eps){
                vis[to]=true;
                d[to]=d[fr]+1;
                que.push(to);
            }
        }
    }
    return vis[sups];
}

int cur[maxnum];
double dfs(int s,double a){
    if(s==supt||a<eps)return a;
    double flow=0;
    for(int &i=cur[s];i<len[s];i++){
        int to=e[s][i];
        double sub;
        if(d[s]==d[to]+1&&(sub=dfs(to,min(a,f[s][to])))>eps){
            f[s][to]-=sub;
            f[to][s]+=sub;
            flow+=sub;
            a-=sub;
            if(fabs(a)<eps)break;
        }
    }
    return flow;
}
double maxflow(){
    double ans=0.000;
    while(bfs()){
        memset(cur,0,sizeof(cur));
        ans+=dfs(sups,inf);
    }
    return ans;
}

int main(){
    int t;
    scanf("%d",&t);
    while(t--){
        input();
        double ans=maxflow();
        printf("%.4f\n",exp(ans));
    }
    return 0;
}

  





网络流 poj3308,布布扣,bubuko.com

网络流 poj3308

标签:des   blog   os   io   strong   for   ar   art   

原文地址:http://www.cnblogs.com/xuesu/p/3926435.html

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