UVa 439 - Knight Moves 搜索专题
| 439-Knight Moves | 13381 |
56.27%
|
5157 |
93.21%
|
题目类型: 搜索
样例输入:
e2 e4 a1 b2 b2 c3 a1 h8 a1 h7 h8 a1 b1 c3 f6 f6
样例输出:
To get from e2 to e4 takes 2 knight moves. To get from a1 to b2 takes 4 knight moves. To get from b2 to c3 takes 2 knight moves. To get from a1 to h8 takes 6 knight moves. To get from a1 to h7 takes 5 knight moves. To get from h8 to a1 takes 6 knight moves. To get from b1 to c3 takes 1 knight moves. To get from f6 to f6 takes 0 knight moves.
分析:
这题也是一道十分经典的搜索入门题。 由于题目是指定象棋中马的开始位置,与目标位置, 要求马以最少的步数走到目标位置。 凡是求最短步数的,一般用BFS做比较好。
求步数时, 有个小技巧, 开个vis数组,初始化为0, 然后这个用来记录走的步数,而不仅仅是用来标记是否走过。具体见代码
#include<iostream>
#include<cstdio>
#include<cstring>
using namespace std;
char start[3], end[3];
int dir[8][2] = {{-2,1},{-1,2},{1,2},{2,1},
{2,-1},{1,-2},{-1,-2},{-2,-1}};
int vis[10][10];
struct Node{int x, y; };
Node que[1000];
void bfs(){
int front=0, rear=1;
que[0].x=start[0]-'a', que[0].y=start[1]-'0'-1;
vis[que[0].x][que[0].y] = 1;
while(front<rear){
Node t = que[front++];
// 如果遇到满足条件的,直接输出
if(t.x==end[0]-'a' && t.y==end[1]-'0'-1){
printf("To get from %s to %s takes %d knight moves.\n", start,end,vis[t.x][t.y]-1);
return ;
}
for(int i=0; i<8; ++i){
int dx=t.x+dir[i][0], dy=t.y+dir[i][1];
if(dx>=0 && dx<8 && dy>=0 && dy<8 && !vis[dx][dy]){
vis[dx][dy] = vis[t.x][t.y]+1; // 记住步数
Node temp;
temp.x=dx, temp.y=dy;
que[rear++] = temp;
}
}
}
}
int main(){
#ifdef LOCAL
freopen("input.txt", "r", stdin);
#endif
while(~scanf("%s %s", start, end) && start[0]){
memset(vis, 0, sizeof(vis));
bfs();
}
return 0;
}