The space complexity of the solution is O(N^2), where N is the number of queens. This is because we need to store the board configuration and the result list.
Given an integer n , return all possible configurations of the board where n queens can be placed without attacking each other. jav g-queen
The time complexity of the solution is O(N!), where N is the number of queens. This is because in the worst case, we need to try all possible configurations of the board. The space complexity of the solution is O(N^2),
private void backtrack(List<List<String>> result, char[][] board, int row) { if (row == board.length) { List<String> solution = new ArrayList<>(); for (char[] chars : board) { solution.add(new String(chars)); } result.add(solution); return; } for (int col = 0; col < board.length; col++) { if (isValid(board, row, col)) { board[row][col] = 'Q'; backtrack(result, board, row + 1); board[row][col] = '.'; } } } The time complexity of the solution is O(N
private boolean isValid(char[][] board, int row, int col) { // Check the column for (int i = 0; i < row; i++) { if (board[i][col] == 'Q') { return false; } } // Check the main diagonal int i = row - 1, j = col - 1; while (i >= 0 && j >= 0) { if (board[i--][j--] == 'Q') { return false; } } // Check the other diagonal i = row - 1; j = col + 1; while (i >= 0 && j < board.length) { if (board[i--][j++] == 'Q') { return false; } } return true; } }