本题预计涉及:dfs搜索,康托展开(为了寻找映射来判重),曼哈顿距离
Eight II
Time Limit: 4000/2000 MS (Java/Others) Memory Limit: 130000/65536 K (Java/Others)
Total Submission(s): 8374 Accepted Submission(s): 1890
Problem Description
Eight-puzzle, which is also called "Nine grids", comes from an old game.
In this game, you are given a 3 by 3 board and 8 tiles. The tiles are numbered from 1 to 8 and each covers a grid. As you see, there is a blank grid which can be represented as an 'X'. Tiles in grids having a common edge with the blank grid can be moved into that blank grid. This operation leads to an exchange of 'X' with one tile.
We use the symbol 'r' to represent exchanging 'X' with the tile on its right side, and 'l' for the left side, 'u' for the one above it, 'd' for the one below it.
In this game, you are given a 3 by 3 board and 8 tiles. The tiles are numbered from 1 to 8 and each covers a grid. As you see, there is a blank grid which can be represented as an 'X'. Tiles in grids having a common edge with the blank grid can be moved into that blank grid. This operation leads to an exchange of 'X' with one tile.
We use the symbol 'r' to represent exchanging 'X' with the tile on its right side, and 'l' for the left side, 'u' for the one above it, 'd' for the one below it.
A state of the board can be represented by a string S using the rule showed below.
The problem is to operate an operation list of 'r', 'u', 'l', 'd' to turn the state of the board from state A to state B. You are required to find the result which meets the following constrains:1. It is of minimum length among all possible solutions.
2. It is the lexicographically smallest one of all solutions of minimum length.
Input
The first line is T (T <= 200), which means the number of test cases of this problem.
The input of each test case consists of two lines with state A occupying the first line and state B on the second line.
It is guaranteed that there is an available solution from state A to B.
The input of each test case consists of two lines with state A occupying the first line and state B on the second line.
It is guaranteed that there is an available solution from state A to B.
Output
For each test case two lines are expected.
The first line is in the format of "Case x: d", in which x is the case number counted from one, d is the minimum length of operation list you need to turn A to B.
S is the operation list meeting the constraints and it should be showed on the second line.
The first line is in the format of "Case x: d", in which x is the case number counted from one, d is the minimum length of operation list you need to turn A to B.
S is the operation list meeting the constraints and it should be showed on the second line.
Sample Input
2
12X453786
12345678X
564178X23
7568X4123
Sample Output
Case 1: 2
dd
Case 2: 8
urrulldr
Author
zhymaoiing
Source
--------时间分界线----2021.4.19----
在初次应用了康托展开和dfs搜索后发现结果离答案还差一些(即输出的应是最短路径,而非寻找最短路径过程中走过的所有路径)
今天肝不动了,先把初次的代码安排上┭┮﹏┭┮呜呜
1 #include<iostream> 2 #include<cstdio> 3 #include<cstring> 4 #include<queue> 5 #define Judge(xx,yy) (xx>=0&&yy>=0&&xx<3&&yy<3) 6 #define Maxn 362880 7 using namespace std; 8 9 int start[9],goal[9]; 10 int exist[Maxn]; 11 char step[Maxn]; 12 int factorial[]={1,1,2,6,24,120,720,5040,40320,362880}; 13 struct Node{ 14 int num;//步数 15 int state[9];//状态 16 }; 17 int dir[4][2]={ 18 {1,0},//右 19 {0,1},//下 20 {-1,0},//左 21 {0,-1} //上 22 }; 23 bool Contor(int a[],int m)//康拓展开得到下标 24 { 25 long long site=0,cnt;//cnt记录比当前下标所在位更大的数的个数 26 for(int i=0; i<m; ++i) 27 { 28 cnt=0; 29 for(int k=i+1; k<m; ++k) 30 { 31 if(a[i]<a[k]){ 32 cnt++; 33 } 34 } 35 site+=cnt*factorial[m-i-1];//精髓 36 } 37 if(!exist[site]){ 38 exist[site]=1; 39 return true; 40 }else{ 41 return false; 42 } 43 } 44 45 int bfs() 46 { 47 queue<Node> Q; 48 Node head; 49 head.num=0; 50 memcpy(head.state,start,sizeof(head.state)); 51 Contor(head.state,9); 52 53 Q.push(head); 54 int foot=0;//步骤 step的下标 55 while(!Q.empty()) 56 { 57 int zeroSite; 58 head=Q.front(); 59 if(!memcmp(goal,head.state,sizeof(goal))) 60 { 61 return head.num; 62 } 63 64 //调出X所在的一维坐标 65 for(zeroSite=0;zeroSite<9;++zeroSite) 66 { 67 if(head.state[zeroSite]==0){ 68 break; 69 } 70 } 71 Q.pop(); 72 73 int x=zeroSite%3;//第几列 74 int y=zeroSite/3;//第几行 75 int newZ;//移动后X所在的一维下标 76 int newX,newY; 77 78 for(int i=0; i<4; ++i) 79 { 80 newY=y+dir[i][1]; 81 newX=x+dir[i][0]; 82 newZ = 3*newY+newX; 83 if(Judge(newX,newY)){ 84 Node next; 85 memcpy(&next,&head,sizeof(struct Node)); 86 swap(next.state[zeroSite],next.state[newZ]); 87 if(Contor(next.state,9)){ 88 if(i==0){ 89 step[foot]='r'; 90 }else if(i==1){ 91 step[foot]='d'; 92 }else if(i==2){ 93 step[foot]='l'; 94 }else{ 95 step[foot]='u'; 96 } 97 foot++; 98 next.num++; 99 Q.push(next); 100 } 101 } 102 } 103 } 104 step[foot]='�'; 105 } 106 int main() 107 { 108 char startCh[10],goalCh[10]; 109 int N; 110 cin>>N; 111 for(int i=1;i<=N;++i) 112 { 113 memset(exist,0,sizeof(int)); 114 memset(step,0,sizeof(char)); 115 scanf("%s",startCh); 116 for(int j=0; j<9; ++j) 117 { 118 if(startCh[j]!='X'){ 119 start[j]=startCh[j]-'0'; 120 }else{ 121 start[j]=0; 122 } 123 } 124 scanf("%s",goalCh); 125 for(int j=0; j<9; ++j) 126 { 127 if(goalCh[j]!='X'){ 128 goal[j]=goalCh[j]-'0'; 129 }else{ 130 goal[j]=0; 131 } 132 } 133 134 cout<<"Case"<<' '<<i<<':'<<' '<<bfs()<<endl; 135 printf("%s",step); 136 } 137 return 0; 138 }
运行结果如下:
似乎还需要一些未掌握的方法.......(待续……)