Given a 2D board containing 'X' and 'O',
capture all regions surrounded by 'X'.
A region is captured by flipping all 'O's into 'X's
in that surrounded region .
For example,
X X X X X O O X X X O X X O X X
After running your function, the board should be:
X X X X X X X X X X X X X O X X
class Solution {
public:
//called only if board[i][j]==0
void flip(vector<vector<char>> &board, vector<vector<int>> &visited, int i, int j)
{
if(i<0 || i>=board.size() || j<0 || j>=board[0].size() )
return;
if(visited[i][j]==1 || board[i][j]=='X')
return;
//call flip if there's a path from the edge with Os
visited[i][j]=1;
if(i>=1 && board[i-1][j]=='O')
flip(board,visited,i-1,j);
if(i<board.size()-1 && board[i+1][j]=='O')
flip(board,visited,i+1,j);
if(j>=1 && board[i][j-1]=='O')
flip(board,visited,i,j-1);
if(j<board[0].size()-1 && board[i][j+1]=='O')
flip(board,visited,i,j+1);
}
void solve(vector<vector<char>> &board) {
// Note: The Solution object is instantiated only once and is reused by each test case.
if(board.size()==0 || board[0].size()==0) return;
vector<vector<int>> visited;
for(int i=0;i<board.size();i++)
{
vector<int> tmp(board[0].size(),0);
visited.push_back(tmp);
}
//find a path consisting of Os from the edge to the center
for(int i=0;i<board[0].size();i++)
{
if(board[0][i]=='O')
flip(board,visited,0,i);
if(board[board.size()-1][i]=='O')
flip(board,visited,board.size()-1,i);
}
for(int i=0;i<board[0].size();i++)
{
if(board[i][0]=='O')
flip(board,visited,i,0);
if(board[i][board[0].size()-1]=='O')
flip(board,visited,i,board[0].size()-1);
}
for(int i=0;i<board.size();i++)
{
for(int j=0;j<board[0].size();j++)
{
if(visited[i][j]==0 && board[i][j]=='O')
board[i][j]='X';
}
}
return;
}
};
