poj1734Sightseeing trip floyd最小环

就是裸的最小环  链接

Description

There is a travel agency in Adelton town on Zanzibar island. It has decided to offer its clients, besides many other attractions, sightseeing the town. To earn as much as possible from this attraction, the agency has accepted a shrewd decision: it is necessary to find the shortest route which begins and ends at the same place. Your task is to write a program which finds such a route. 

In the town there are N crossing points numbered from 1 to N and M two-way roads numbered from 1 to M. Two crossing points can be connected by multiple roads, but no road connects a crossing point with itself. Each sightseeing route is a sequence of road numbers y_1, ..., y_k, k>2. The road y_i (1<=i<=k-1) connects crossing points x_i and x_{i+1}, the road y_k connects crossing points x_k and x_1. All the numbers x_1,...,x_k should be different.The length of the sightseeing route is the sum of the lengths of all roads on the sightseeing route, i.e. L(y_1)+L(y_2)+...+L(y_k) where L(y_i) is the length of the road y_i (1<=i<=k). Your program has to find such a sightseeing route, the length of which is minimal, or to specify that it is not possible,because there is no sightseeing route in the town.

Input

The first line of input contains two positive integers: the number of crossing points N<=100 and the number of roads M<=10000. Each of the next M lines describes one road. It contains 3 positive integers: the number of its first crossing point, the number of the second one, and the length of the road (a positive integer less than 500).

Output

There is only one line in output. It contains either a string 'No solution.' in case there isn't any sightseeing route, or it contains the numbers of all crossing points on the shortest sightseeing route in the order how to pass them (i.e. the numbers x_1 to x_k from our definition of a sightseeing route), separated by single spaces. If there are multiple sightseeing routes of the minimal length, you can output any one of them.

Sample Input

5 71 4 11 3 3003 1 101 2 162 3 1002 5 155 3 20

Sample Output

1 3 5 2

代码：

#include<iostream>#include<cstring>#include<cstdlib>#include<queue>#include<cstdio>#include<climits>#include<algorithm>using namespace std;const int N=111;const int INF=0xffffff;int min_loop;int num;int map[N][N],dist[N][N],pre[N][N];int path[N];int n,m;void dfs(int i,int j){    int k=pre[i][j];    if(k==0)    {        path[num++]=j;        return;    }    dfs(i,k);    dfs(k,j);}//什么意思呢 弗洛伊德下面两层for循环没问题 上面的呢 毕竟是要求环啊 而且<k只是为了减少时间的 并不是像自己想的一样只能用更新的

//dfs的k等于0时 相当于回路闭合啦

<span style="font-family: Arial, Helvetica, sans-serif;">void Floyd()</span>

{    min_loop=INF;    memset(pre,0,sizeof(pre));    for(int k=1; k<=n; k++)    {        for(int i=1; i<k; i++)        {            for(int j=i+1; j<k; j++)            {                if(dist[i][j]+map[i][k]+map[k][j]<min_loop)                {                    min_loop=dist[i][j]+map[i][k]+map[k][j];                    num=0;                    path[num++]=i;                    dfs(i,j);                    path[num++]=k;                }            }        }        for(int i=1; i<=n; i++)        {            for(int j=1; j<=n; j++)            {                if(dist[i][k]+dist[k][j]<dist[i][j])                {                    dist[i][j]=dist[i][k]+dist[k][j];                    pre[i][j]=k;                }            }        }    }}int main(){ //   freopen("cin.txt","r",stdin);    while(~scanf("%d%d",&n,&m))    {        for(int i=1; i<=n; i++)        {            for(int j=i+1; j<=n; j++)                map[i][j]=map[j][i]=dist[i][j]=dist[j][i]=INF;            map[i][i]=dist[i][i]=0;        }        for(int i=0; i<m; i++)        {            int u,v,w;            scanf("%d%d%d",&u,&v,&w);            if(w<map[u][v])            {                map[u][v]=map[v][u]=w;                dist[u][v]=dist[v][u]=w;            }        }        Floyd();        if(min_loop==INF)            puts("No solution.");        else        {            for(int i=0; i<num-1; i++)  printf("%d ",path[i]);            printf("%d\n",path[num-1]);           //printf("%d\n",min_loop);        }    }    return 0;}