弗洛伊德Floyd求最小环

时间:2023-03-10 06:05:48
弗洛伊德Floyd求最小环

模板:

#include<bits/stdc++.h>

using namespace std;

const int MAXN = ;

const int INF = 0xffffff0;

int temp,Map[MAXN][MAXN],Dist[MAXN][MAXN],pre[MAXN][MAXN],ans[MAXN*];

void Solve(int i,int j,int k)

{

    temp = ;   //回溯,存储最小环

    while(i != j)

    {

        ans[temp++] = j;

        j = pre[i][j];

    }

    ans[temp++] = i;

    ans[temp++] = k;

}

void Floyd(int N)

{

    for(int i = ; i <= N; ++i)

        for(int j = ; j <= N; ++j)

        {

            Dist[i][j] = Map[i][j];

            pre[i][j] = i;

        }

    int MinCircle = INF;    //最小环

    for(int k = ; k <= N; ++k)

    {

        for(int i = ; i <= N; ++i)

        {

            for(int j = ; j <= N; ++j)

            {

                if(i != j && Dist[i][j] != INF && Map[i][k] != INF && Map[k][j] != INF

                   && Dist[i][j] + Map[i][k] + Map[k][j] < MinCircle)

                {

                    MinCircle = min(MinCircle, Dist[i][j] + Map[i][k] + Map[k][j]);

                    Solve(i,j,k);   //回溯存储最小环

                }

            }

        }

        for(int i = ; i <= N; ++i)

        {

            for(int j = ; j <= N; ++j)

            {

                if(Dist[i][k] != INF && Dist[k][j] != INF &&

                   Dist[i][k] + Dist[k][j] < Dist[i][j])

                {

                    Dist[i][j] = Dist[i][k] + Dist[k][j];

                    pre[i][j] = pre[k][j];  //记录点i到点j的路径上,j前边的点

                }

            }

        }

    }

    if(MinCircle == INF)    //不存在环

    {

        printf("No solution.\n");

        return;

    }

    //如果求出最小环为负的,原图必定存在负环

    for(int i = ;i < temp; ++i)    //输出最小环

        if(i != temp-)

            printf("%d ",ans[i]);

        else

            printf("%d\n",ans[i]);

}

例题:

BZOJ1027: [JSOI2007]合金

思路:给定两个点集A和B,求A中最小的一个子集S,使B中所有的点在S的凸包内部。枚举A点集两点i,j(i可以等于j)若B点集中的所有点都在向量i->j的左侧或线段ij上,就连接一条i->j的单向边,然后Floyd求最小环即可。

#include<bits/stdc++.h>

#define eps 1e-8

using namespace std;

struct node

{

    double x,y,z;

}a[],b[];

double multi(node p1,node p2,node p0)

{

    double x1=p1.x-p0.x;

    double y1=p1.y-p0.y;

    double x2=p2.x-p0.x;

    double y2=p2.y-p0.y;

    return x1*y2-x2*y1;

}

double dis(node p1,node p2)

{

    return sqrt((p1.x-p2.x)*(p1.x-p2.x)+(p1.y-p2.y)*(p1.y-p2.y));

}

int d[][];

int main()

{

    int n,m;

    scanf("%d%d",&m,&n);

    for(int i=;i<=m;i++) scanf("%lf%lf%lf",&a[i].x,&a[i].y,&a[i].z);

    for(int i=;i<=n;i++) scanf("%lf%lf%lf",&b[i].x,&b[i].y,&b[i].z);

    int i,j,k;double t;

    memset(d,0x3f,sizeof(d));

    for(i=;i<=m;i++)

        for(j=;j<=m;j++)

        {

            for(k=;k<=n;k++)

            {

                t=multi(a[j],b[k],a[i]);

                if(t<-eps) break;

                if( fabs(t)<eps && dis(a[i],b[k])>dis(a[i],a[j]) )break;

            }

            if(k==n+) d[i][j]=;

        }

    for(k=;k<=m;k++)

        for(i=;i<=m;i++)if(i!=k)

            for(j=;j<=m;j++)if(j!=k)

                if( d[i][j]>d[i][k]+d[k][j] )d[i][j]=d[i][k]+d[k][j];

    int  ans=m+;

    for(i=;i<=m;i++) if(ans>d[i][i])ans=d[i][i];

    if(ans==m+)printf("-1\n");else printf("%d\n",ans);

    return ;

}

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