本文来源于:http://blog.csdn.net/svitter
称号:让你从(0, 0)走到(4,4)。而且输出路径。
输入数据:二位数组的迷宫;输出数据:路径;
题解:简单的BFS
注意:
1.去重;
2.墙不能走;
3.记录前一个节点
代码:
#include <iostream> #include <stdio.h> #include <string.h> using namespace std; int maze[6][6]; bool visit[5][5]; struct node { node *pre; int i; int j; node(){} node(int a, int b, node*c):i(a), j(b), pre(c){} }; //1.去重 //2.是否墙壁 // inline bool judge(int i, int j, int temp) { if(temp < 0 || temp > 4) return false; //i, j 能够通行,而且没有訪问过 if(maze[i][j] != 1 && !visit[i][j]) return true; return false; } void output(){} int main() { int i, j; for(i = 0; i < 5; i++) for(j = 0; j < 5; j++) scanf("%d", &maze[i][j]); node queue[1000]; memset(visit, 0, sizeof(visit)); int front , rear; front = rear = -1; node cur; int temp; queue[++rear] = node(4, 4, NULL); while(front != rear) { cur = queue[++front]; i = cur.i; j = cur.j; if(i == 0 && j == 0) break; temp = cur.i+1; if(judge(temp, j, temp)) { queue[++rear] = node(temp, j, &queue[front]); visit[temp][j] = 1; } temp = cur.j+1; if(judge(i, temp, temp)) { queue[++rear] = node(i, temp, &queue[front]); visit[i][temp] = 1; } temp = cur.i-1; if(judge(temp, j, temp)) { queue[++rear] = node(temp, j, &queue[front]); visit[temp][j] = 1; } temp = cur .j-1; if(judge(i, temp, temp)) { queue[++rear] = node(i, temp, &queue[front]); visit[i][temp] = 1; } } node *tmp; tmp = &queue[front]; while(tmp != NULL) { printf("(%d, %d) ", tmp->i, tmp->j); tmp = tmp->pre; } return 0; }
版权声明:本文博客原创文章,博客,未经同意,不得转载。