Your task is to calculate the area of visible part of the walls inside the labyrinth. In other words, the area of the walls' surface visible to a visitor of the labyrinth. Note that there's no holes to look or to move through between any two adjacent blocks of the wall. The blocks are considered to be adjacent if they touch each other in any corner. See picture for an example: visible walls inside the labyrinth are drawn with bold lines. The height of all the walls is 3 meters.
Input
The first line of the input contains the single number N. The next N lines contain N characters each. Each line describes one row of the labyrinth matrix. In each line only dot and diesis characters will be used and each line will be terminated with a new line character. There will be no spaces in the input.Output
Your program should print to the output a single integer ― the exact value of the area of the wallpaper needed.Sample
| input | output |
|---|---|
5 ..... ...## ..#.. ..### ..... |
198 |
还有可能搜不到出口,所以要检验=-=不行再从出口搜一次=-=
#include#include #include #include using namespace std; int dr[4][2]={{0,1},{0,-1},{-1,0},{1,0}}; char mp[35][35]; int visit[35][35]; int n,sum; void dfs(int x,int y) { for(int i=0;i<4;i++) { int xx=x+dr[i][0]; int yy=y+dr[i][1]; if(!visit[xx][yy]&&mp[xx][yy]=='.') { visit[xx][yy]=1; dfs(xx,yy); } else if(mp[xx][yy]=='#') sum++; } } int main() { char s[35]; while(~scanf("%d",&n)) { sum=0; memset(mp,'#',sizeof(mp));//还可以这样?原谅我只会赋0和-1=-= for(int i=1;i<=n;i++) { scanf("%s",s); for(int j=1;j<=n;j++) mp[i][j]=s[j-1]; } visit[1][1]=1; dfs(1,1); if(!visit[n][n]) { visit[n][n]=1; dfs(n,n); } printf("%d\n",(sum-4)*9); } return 0; }