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number-of-islands.cpp
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number-of-islands.cpp
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class Solution {
public:
bool visited[300][300];
int r[4] = {-1,0,0,1};
int c[4] = {0,-1,1,0};
//Checks if the given row and col value are valid and if the cell is visited and if the cell contains '1' or not.
bool val(int row,int col,vector<vector<char>>& grid,int M,int N)
{
return (row<M && col<N && row>=0 && col>=0 && !visited[row][col] && grid[row][col]=='1');
}
//Dfs function for exploring the surrounding cells
void dfs(int i,int j,vector<vector<char>>& grid, int M, int N)
{
visited[i][j] = true;
for(int a=0;a<4;a++)
{
int row = i + r[a];
int col = j + c[a];
if(val(row,col,grid,M,N))
{
dfs(row,col,grid,M,N);
}
}
}
int numIslands(vector<vector<char>>& grid) {
int m = grid.size();
int n = grid[0].size();
memset(visited,0,sizeof(visited));
int island_count = 0;
for(int i=0;i<m;i++)
{
for(int j=0;j<n;j++)
{
if(!visited[i][j] && grid[i][j]=='1')
{
dfs(i,j,grid,m,n);
island_count++; // Island count is incremented when there is a cell that has not been visited and contains a '1'.
//Dfs function marks the other connected '1's in the visited matrix.
}
}
}
return island_count;
}
};
/* Time complexity : O(m x n) as each cell is accessed one time.
Space complexity : O(m x n) as the visited matrix contains m x n elements.*/