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POJ 1979 Red and Black
Red and Black
Time Limit: 1000MS | Memory Limit: 30000K | |
Total Submissions: 34862 | Accepted: 18856 |
Description
There is a rectangular room, covered with square tiles. Each tile is colored either red or black. A man is standing on a black tile. From a tile, he can move to one of four adjacent tiles. But he can‘t move on red tiles, he can move only on black tiles.
Write a program to count the number of black tiles which he can reach by repeating the moves described above.
Write a program to count the number of black tiles which he can reach by repeating the moves described above.
Input
The input consists of multiple data sets. A data set starts with a line containing two positive integers W and H; W and H are the numbers of tiles in the x- and y- directions, respectively. W and H are not more than 20.
There are H more lines in the data set, each of which includes W characters. Each character represents the color of a tile as follows.
‘.‘ - a black tile
‘#‘ - a red tile
‘@‘ - a man on a black tile(appears exactly once in a data set)
The end of the input is indicated by a line consisting of two zeros.
There are H more lines in the data set, each of which includes W characters. Each character represents the color of a tile as follows.
‘.‘ - a black tile
‘#‘ - a red tile
‘@‘ - a man on a black tile(appears exactly once in a data set)
The end of the input is indicated by a line consisting of two zeros.
Output
For each data set, your program should output a line which contains the number of tiles he can reach from the initial tile (including itself).
Sample Input
6 9 ....#. .....# ...... ...... ...... ...... ...... #@...# .#..#. 11 9 .#......... .#.#######. .#.#.....#. .#.#.###.#. .#.#..@#.#. .#.#####.#. .#.......#. .#########. ........... 11 6 ..#..#..#.. ..#..#..#.. ..#..#..### ..#..#..#@. ..#..#..#.. ..#..#..#.. 7 7 ..#.#.. ..#.#.. ###.### ...@... ###.### ..#.#.. ..#.#.. 0 0
Sample Output
45 59 6 13
Source
Japan 2004 Domestic
#include <stdio.h> #include <math.h> #include <iostream> #include <string.h> #include <queue> #define maxn 105 using namespace std; int n,m,num,vis[maxn][maxn]; int dx[]={1,-1,0,0},dy[]={0,0,1,-1}; char mapn[maxn][maxn]; struct node { int x,y; }; void bfs(int a,int b) { queue<node> q; node p; p.x = a; p.y = b; num++; vis[a][b] = 1; q.push(p); while(!q.empty())//加入队列的都是可以走到的点,所以只需ans++即可 { node now = q.front(); int x = now.x,y = now.y; q.pop(); for(int i=0;i<4;i++) { int xx = x + dx[i]; int yy = y + dy[i]; if(xx<0||yy<0||xx>(n-1)||yy>(m-1)||mapn[xx][yy]==‘#‘||vis[xx][yy]) continue; num++; node tmp; tmp.x = xx; tmp.y = yy; q.push(tmp); vis[xx][yy] = 1; } } } int main() { while(cin >> m >> n)//注意这里输入的是m,n { memset(vis,0,sizeof(vis)); num = 0; if(n==0||m==0) break; for(int i=0;i<n;i++) for(int j=0;j<m;j++) cin >> mapn[i][j]; for(int i=0;i<n;i++) for(int j=0;j<m;j++) { if(mapn[i][j]==‘@‘) bfs(i,j); } cout << num << endl; } }
POJ 1979 Red and Black
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