defmodule BMP280 do use GenServer alias BMP280.{Calc, Calibration, Comm, Measurement, Transport} @sea_level_pa 100_000 @default_bmp280_bus_address 0x77 @typedoc """ The type of sensor in use. """ @type sensor_type() :: :bmp280 | :bme280 | 0..255 @moduledoc """ Read temperature and pressure from a Bosch BM*280 sensors """ <> (File.read!("README.md") |> String.split(~r{\n## .+\n}) |> Enum.fetch!(1)) @typedoc """ BMP280 GenServer start_link options * `:name` - a name for the GenServer * `:bus_name` - which I2C bus to use (e.g., `"i2c-1"`) * `:bus_address` - the address of the BMP280 (defaults to 0x77) * `:sea_level_pa` - a starting estimate for the sea level pressure in Pascals """ @type options() :: [ name: GenServer.name(), bus_name: String.t(), bus_address: Circuits.I2C.address(), sea_level_pa: number() ] @doc """ Start a new GenServer for interacting with a BMP280 Normally, you'll want to pass the `:bus_name` option to specify the I2C bus going to the BMP280. """ @spec start_link(options()) :: GenServer.on_start() def start_link(init_arg) do options = Keyword.take(init_arg, [:name]) GenServer.start_link(__MODULE__, init_arg, options) end @doc """ Return the type of sensor This function returns the cached result of reading the ID register. if the part is recognized. If not, it returns the integer read. """ @spec sensor_type(GenServer.server()) :: sensor_type() def sensor_type(server) do GenServer.call(server, :sensor_type) end @doc """ Read the current temperature, pressure, altitude An error is return if the I2C transactions fail. """ @spec read(GenServer.server()) :: {:ok, Measurement.t()} | {:error, any()} def read(server) do GenServer.call(server, :read) end @doc """ Update the sea level pressure estimate The sea level pressure should be specified in Pascals. The estimate is used for altitude calculations. """ @spec update_sea_level_pressure(GenServer.server(), number()) :: :ok def update_sea_level_pressure(server, new_estimate) do GenServer.call(server, {:update_sea_level, new_estimate}) end @doc """ Force the altitude to a known value Altitude calculations depend on the accuracy of the sea level pressure estimate. Since the sea level pressure changes based on the weather, it needs to be kept up to date or altitude measurements can be pretty far off. Another way to set the sea level pressure is to report a known altitude. Call this function with the current altitude in meters. This function returns an error if the attempt to sample the current barometric pressure fails. """ @spec force_altitude(GenServer.server(), number()) :: :ok | {:error, any()} def force_altitude(server, altitude_m) do GenServer.call(server, {:force_altitude, altitude_m}) end @doc """ Detect the type of sensor that is located at the I2C address If the sensor is a known BMP280 or BME280 the response will either contain `:bmp280` or `:bme280`. If the sensor does not report back that it is one of those two types of sensors the return value will contain the id value that was reported back form the sensor. The bus address is likely going to be 0x77 (the default) or 0x76. """ @spec detect(String.t(), Circuits.I2C.address()) :: {:ok, sensor_type()} | {:error, any()} def detect(bus_name, bus_address \\ @default_bmp280_bus_address) do with {:ok, transport} <- Transport.open(bus_name, bus_address) do Comm.sensor_type(transport) end end @impl GenServer def init(args) do bus_name = Keyword.get(args, :bus_name, "i2c-1") bus_address = Keyword.get(args, :bus_address, @default_bmp280_bus_address) {:ok, transport} = Transport.open(bus_name, bus_address) state = %{ transport: transport, calibration: nil, sea_level_pa: Keyword.get(args, :sea_level_pa, @sea_level_pa), sensor_type: nil } {:ok, state, {:continue, :continue}} end @impl GenServer def handle_continue(:continue, state) do new_state = state |> query_sensor() |> send_enable() |> read_calibration() {:noreply, new_state} end @impl GenServer def handle_call(:read, _from, state) do rc = case Comm.read_raw_samples(state.transport, state.sensor_type) do {:ok, raw} -> {:ok, Calc.raw_to_measurement( state.calibration, state.sea_level_pa, raw )} error -> error end {:reply, rc, state} end def handle_call(:sensor_type, _from, state) do {:reply, state.sensor_type, state} end def handle_call({:update_sea_level, new_estimate}, _from, state) do {:reply, :ok, %{state | sea_level_pa: new_estimate}} end def handle_call({:force_altitude, altitude_m}, _from, state) do case Comm.read_raw_samples(state.transport, state.sensor_type) do {:ok, raw} -> {:ok, m = Calc.raw_to_measurement( state.calibration, state.sea_level_pa, raw )} sea_level = Calc.sea_level_pressure(m.pressure_pa, altitude_m) {:reply, :ok, %{state | sea_level_pa: sea_level}} error -> {:reply, error, state} end end defp query_sensor(state) do {:ok, sensor_type} = Comm.sensor_type(state.transport) %{state | sensor_type: sensor_type} end defp send_enable(state) do :ok = Comm.send_enable(state.transport, state.sensor_type) state end defp read_calibration(state) do {:ok, raw} = Comm.read_calibration(state.transport, state.sensor_type) %{state | calibration: Calibration.from_binary(state.sensor_type, raw)} end end