HDU 2181 哈密顿绕行世界问题(DFS)

哈密顿绕行世界问题

　　　　　　　　　　　　Time Limit: 3000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)

　　　　　　　　　　　　　　　　　　　Total Submission(s): 698    Accepted Submission(s): 423

Problem Description

一个规则的实心十二面体，它的 20个顶点标出世界著名的20个城市，你从一个城市出发经过每个城市刚好一次后回到出发的城市。 

 

Input

前20行的第i行有3个数,表示与第i个城市相邻的3个城市.第20行以后每行有1个数m,m<=20,m>=1.m=0退出.

 

Output

输出从第m个城市出发经过每个城市1次又回到m的所有路线,如有多条路线,按字典序输出,每行1条路线.每行首先输出是第几条路线.然后个一个: 后列出经过的城市.参看Sample output

 

Sample Input

2 5 20

1 3 12

2 4 10

3 5 8

1 4 6

5 7 19

6 8 17

4 7 9

8 10 16

3 9 11

10 12 15

2 11 13

12 14 20

13 15 18

11 14 16

9 15 17

7 16 18

14 17 19

6 18 20

1 13 19

5

0

 

Sample Output

1: 5 1 2 3 4 8 7 17 18 14 15 16 9 10 11 12 13 20 19 6 5

2: 5 1 2 3 4 8 9 10 11 12 13 20 19 18 14 15 16 17 7 6 5

3: 5 1 2 3 10 9 16 17 18 14 15 11 12 13 20 19 6 7 8 4 5

4: 5 1 2 3 10 11 12 13 20 19 6 7 17 18 14 15 16 9 8 4 5

5: 5 1 2 12 11 10 3 4 8 9 16 15 14 13 20 19 18 17 7 6 5

6: 5 1 2 12 11 15 14 13 20 19 18 17 16 9 10 3 4 8 7 6 5

7: 5 1 2 12 11 15 16 9 10 3 4 8 7 17 18 14 13 20 19 6 5

8: 5 1 2 12 11 15 16 17 18 14 13 20 19 6 7 8 9 10 3 4 5

9: 5 1 2 12 13 20 19 6 7 8 9 16 17 18 14 15 11 10 3 4 5

10: 5 1 2 12 13 20 19 18 14 15 11 10 3 4 8 9 16 17 7 6 5

11: 5 1 20 13 12 2 3 4 8 7 17 16 9 10 11 15 14 18 19 6 5

12: 5 1 20 13 12 2 3 10 11 15 14 18 19 6 7 17 16 9 8 4 5

13: 5 1 20 13 14 15 11 12 2 3 10 9 16 17 18 19 6 7 8 4 5

14: 5 1 20 13 14 15 16 9 10 11 12 2 3 4 8 7 17 18 19 6 5

15: 5 1 20 13 14 15 16 17 18 19 6 7 8 9 10 11 12 2 3 4 5

16: 5 1 20 13 14 18 19 6 7 17 16 15 11 12 2 3 10 9 8 4 5

17: 5 1 20 19 6 7 8 9 10 11 15 16 17 18 14 13 12 2 3 4 5

18: 5 1 20 19 6 7 17 18 14 13 12 2 3 10 11 15 16 9 8 4 5

19: 5 1 20 19 18 14 13 12 2 3 4 8 9 10 11 15 16 17 7 6 5

20: 5 1 20 19 18 17 16 9 10 11 15 14 13 12 2 3 4 8 7 6 5

21: 5 4 3 2 1 20 13 12 11 10 9 8 7 17 16 15 14 18 19 6 5

22: 5 4 3 2 1 20 19 18 17 16 15 14 13 12 11 10 9 8 7 6 5

23: 5 4 3 2 12 11 10 9 8 7 6 19 18 17 16 15 14 13 20 1 5

24: 5 4 3 2 12 13 14 18 17 16 15 11 10 9 8 7 6 19 20 1 5

25: 5 4 3 10 9 8 7 6 19 20 13 14 18 17 16 15 11 12 2 1 5

26: 5 4 3 10 9 8 7 17 16 15 11 12 2 1 20 13 14 18 19 6 5

27: 5 4 3 10 11 12 2 1 20 13 14 15 16 9 8 7 17 18 19 6 5

28: 5 4 3 10 11 15 14 13 12 2 1 20 19 18 17 16 9 8 7 6 5

29: 5 4 3 10 11 15 14 18 17 16 9 8 7 6 19 20 13 12 2 1 5

30: 5 4 3 10 11 15 16 9 8 7 17 18 14 13 12 2 1 20 19 6 5

31: 5 4 8 7 6 19 18 17 16 9 10 3 2 12 11 15 14 13 20 1 5

32: 5 4 8 7 6 19 20 13 12 11 15 14 18 17 16 9 10 3 2 1 5

33: 5 4 8 7 17 16 9 10 3 2 1 20 13 12 11 15 14 18 19 6 5

34: 5 4 8 7 17 18 14 13 12 11 15 16 9 10 3 2 1 20 19 6 5

35: 5 4 8 9 10 3 2 1 20 19 18 14 13 12 11 15 16 17 7 6 5

36: 5 4 8 9 10 3 2 12 11 15 16 17 7 6 19 18 14 13 20 1 5

37: 5 4 8 9 16 15 11 10 3 2 12 13 14 18 17 7 6 19 20 1 5

38: 5 4 8 9 16 15 14 13 12 11 10 3 2 1 20 19 18 17 7 6 5

39: 5 4 8 9 16 15 14 18 17 7 6 19 20 13 12 11 10 3 2 1 5

40: 5 4 8 9 16 17 7 6 19 18 14 15 11 10 3 2 12 13 20 1 5

41: 5 6 7 8 4 3 2 12 13 14 15 11 10 9 16 17 18 19 20 1 5

42: 5 6 7 8 4 3 10 9 16 17 18 19 20 13 14 15 11 12 2 1 5

43: 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 1 2 3 4 5

44: 5 6 7 8 9 16 17 18 19 20 1 2 12 13 14 15 11 10 3 4 5

45: 5 6 7 17 16 9 8 4 3 10 11 15 14 18 19 20 13 12 2 1 5

46: 5 6 7 17 16 15 11 10 9 8 4 3 2 12 13 14 18 19 20 1 5

47: 5 6 7 17 16 15 11 12 13 14 18 19 20 1 2 3 10 9 8 4 5

48: 5 6 7 17 16 15 14 18 19 20 13 12 11 10 9 8 4 3 2 1 5

49: 5 6 7 17 18 19 20 1 2 3 10 11 12 13 14 15 16 9 8 4 5

50: 5 6 7 17 18 19 20 13 14 15 16 9 8 4 3 10 11 12 2 1 5

51: 5 6 19 18 14 13 20 1 2 12 11 15 16 17 7 8 9 10 3 4 5

52: 5 6 19 18 14 15 11 10 9 16 17 7 8 4 3 2 12 13 20 1 5

53: 5 6 19 18 14 15 11 12 13 20 1 2 3 10 9 16 17 7 8 4 5

54: 5 6 19 18 14 15 16 17 7 8 9 10 11 12 13 20 1 2 3 4 5

55: 5 6 19 18 17 7 8 4 3 2 12 11 10 9 16 15 14 13 20 1 5

56: 5 6 19 18 17 7 8 9 16 15 14 13 20 1 2 12 11 10 3 4 5

57: 5 6 19 20 1 2 3 10 9 16 15 11 12 13 14 18 17 7 8 4 5

58: 5 6 19 20 1 2 12 13 14 18 17 7 8 9 16 15 11 10 3 4 5

59: 5 6 19 20 13 12 11 10 9 16 15 14 18 17 7 8 4 3 2 1 5

60: 5 6 19 20 13 14 18 17 7 8 4 3 10 9 16 15 11 12 2 1 5

 

 

题目链接：http://acm.hdu.edu.cn/showproblem.php?pid=2181

 

#include <stdio.h>
#include <string.h>

const int MAX_NUM = 25;
int   visit[MAX_NUM];        //标记某个城市是否已经访问过
int   adjCity[MAX_NUM][5];   //保存和城市相邻的三个城市的编号
int   recordPath[MAX_NUM];   //记录路径
int   M, routeCount;         //M表示起点位置，routeCount表示路线条数

void printPath(int routeCount) //打印路径
{
    printf("%d:  ", routeCount);
    for(int i = 1; i <= 20; i++)
        printf("%d ", recordPath[i]);
    printf("%d\n", M);
}

void dfs(int curNum, int step)
{
    if(step == 20 && (adjCity[curNum][1] == M 
        || adjCity[curNum][2] == M || adjCity[curNum][3] == M) )
    {
        routeCount++;
        printPath(routeCount);
    }
    for(int k = 1; k <= 3; k++)
    {
        if(visit[ adjCity[curNum][k] ] == 0)
        {
            visit[ adjCity[curNum][k] ] = 1;
            recordPath[step+1] = adjCity[curNum][k];
            dfs(adjCity[curNum][k], step+1);
            visit[ adjCity[curNum][k] ] = 0;
        }
    }
}

int main()
{
    for(int i = 1; i <= 20; i++)
    {
        for(int j = 1; j <= 3; j++)
        {
            scanf("%d", &adjCity[i][j]);
        }
    }
    while(scanf("%d", &M) && M)
    {
        routeCount = 0;
        memset(visit, 0, sizeof(visit));
        recordPath[1] = M;
        visit[M] = 1;
        dfs(M, 1);
    }
    return 0;
}