总结:
1.需要考虑终点有障碍这一特殊情况。
2.使用广度优先搜索可以解决这一问题,将无障碍的网格表示为1,有障碍或被访问过都表示为0.
import java.util.*;
public class Main{
public static void main(String[] args){
Scanner sc = new Scanner(System.in);
String[] line = sc.nextLine().split(" ");
int n = Integer.parseInt(line[0]);
int m = Integer.parseInt(line[1]);
int[][] path = new int[n+1][m+1];
line = sc.nextLine().split(" ");
int x1 = Integer.parseInt(line[0]);
int y1 = Integer.parseInt(line[1]);
int x2 = Integer.parseInt(line[2]);
int y2 = Integer.parseInt(line[3]);
int i = 1,j=1;
while(sc.hasNextLine()){
char[] ch = sc.nextLine().toCharArray();
for(char c:ch){
if(c=='.')
path[i][j] = 1;
j++;
}
i++;
j = 1;
}
System.out.println(bfs(x1,y1,x2,y2,path));
}
public static int bfs(int x1,int y1,int x2,int y2,int[][] path){
Queue<int[]> queue = new LinkedList<>();
queue.add(new int[]{x1,y1,0});
int n = path.length-1;
int m = path[0].length-1;
path[x1][y1]=0;
if(path[x2][y2]==0)
return -1;
while(!queue.isEmpty()){
int[] a = queue.poll();
if(a[0]+1==x2&&a[1]==y2)
return a[2]+1;
if(a[0]-1==x2&&a[1]==y2)
return a[2]+1;
if(a[0]==x2&&a[1]+1==y2)
return a[2]+1;
if(a[0]==x2&&a[1]-1==y2)
return a[2]+1;
if(a[0]+1<=n&&path[a[0]+1][a[1]]==1){
queue.add(new int[]{a[0]+1,a[1],a[2]+1});
path[a[0]+1][a[1]]=0;
}
if(a[0]-1>=1&&path[a[0]-1][a[1]]==1){
queue.add(new int[]{a[0]-1,a[1],a[2]+1});
path[a[0]-1][a[1]]=0;
}
if(a[1]+1<=m&&path[a[0]][a[1]+1]==1){
queue.add(new int[]{a[0],a[1]+1,a[2]+1});
path[a[0]][a[1]+1]=0;
}
if(a[1]-1>=1&&path[a[0]][a[1]-1]==1){
queue.add(new int[]{a[0],a[1]-1,a[2]+1});
path[a[0]][a[1]-1]=0;
}
}
return -1;
}
}
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