poj 2488 DFS

A Knight's Journey

Time Limit : 2000/1000ms (Java/Other)   Memory Limit : 131072/65536K (Java/Other)

Total Submission(s) : 10   Accepted Submission(s) : 4

Problem Description

Background 
The knight is getting bored of seeing the same black and white squares again and again and has decided to make a journey 
around the world. Whenever a knight moves, it is two squares in one direction and one square perpendicular to this. The world of a knight is the chessboard he is living on. Our knight lives on a chessboard that has a smaller area than a regular 8 * 8 board, but it is still rectangular. Can you help this adventurous knight to make travel plans? 

Problem 
Find a path such that the knight visits every square once. The knight can start and end on any square of the board.

 

 

Input

The input begins with a positive integer n in the first line. The following lines contain n test cases. Each test case consists of a single line with two positive integers p and q, such that 1 <= p * q <= 26. This represents a p * q chessboard, where p describes how many different square numbers 1, . . . , p exist, q describes how many different square letters exist. These are the first q letters of the Latin alphabet: A, . . .

 

 

Output

The output for every scenario begins with a line containing "Scenario #i:", where i is the number of the scenario starting at 1. Then print a single line containing the lexicographically first path that visits all squares of the chessboard with knight moves followed by an empty line. The path should be given on a single line by concatenating the names of the visited squares. Each square name consists of a capital letter followed by a number. 
If no such path exist, you should output impossible on a single line.

 

 

Sample Input

3 1 1 2 3 4 3

 

 

Sample Output

Scenario #1:

A1

Scenario #2:

impossible

Scenario #3:

A1B3C1A2B4C2A3B1C3A4B2C4

 

---

如图，对于骑士所在的位置，所标识的1 2 3 4...位置就是组成字典序的顺序。

View Code

 1 #include <iostream>

 2 #include <stdio.h>

 3 #include <string.h>

 4 using namespace std;

 5 

 6 int vis[26][26],path[26][2];

 7 int flag,a,b;

 8 

 9 int dir[8][2]={-2,-1,-2,1,-1,-2,-1,2,    //这样子排数字是为了保证字典序

10                 1,-2, 1,2, 2,-1, 2,1};

11 

12 void dfs(int s,int t, int k)

13 {

14     int i,j;

15     if(k==a*b)

16     {

17         for(i=0;i<k;i++)

18             printf("%c%d",path[i][0]+'A',path[i][1]+1);

19         printf("\n");

20         flag=1;

21     }

22     else 

23     {

24         for(j=0;j<8;j++)

25         {

26             int n=s+dir[j][0];

27             int m=t+dir[j][1];

28             if(n>=0 && n<b && m>=0 && m<a && vis[n][m]==0 && !flag)

29             {

30                 vis[n][m]=1;

31                 path[k][0]=n;

32                 path[k][1]=m;

33                 dfs(n,m,k+1);

34                 vis[n][m]=0;

35             }

36         }

37     }

38 }

39 

40 int main()

41 {

42     int n,t;

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

44     for(t=1;t<=n;t++)

45     {

46         flag=0;

47         int i,j;

48         scanf("%d%d",&a,&b);

49         for(i=0;i<a;i++)

50         {

51             for(j=0;j<b;j++)

52             {

53                 vis[i][j]=0;

54             }

55         }

56         vis[0][0]=1;

57         path[0][0]=0;path[0][1]=0;

58         printf("Scenario #%d:\n",t);

59         dfs(0,0,1);

60         if(flag==0) printf("impossible\n");

61         printf("\n");

62     }

63     //system("pause");

64     return 0;

65 }