mirror of https://github.com/ArduPilot/ardupilot
930 lines
32 KiB
C++
930 lines
32 KiB
C++
/*
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This program is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program. If not, see <http://www.gnu.org/licenses/>.
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*/
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/*
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* AP_Airspeed.cpp - airspeed (pitot) driver
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*/
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#include "AP_Airspeed_config.h"
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#if AP_AIRSPEED_ENABLED
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#include "AP_Airspeed.h"
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#include <AP_Vehicle/AP_Vehicle_Type.h>
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// Dummy the AP_Airspeed class to allow building Airspeed only for plane, rover, sub, and copter & heli 2MB boards
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// This could be removed once the build system allows for APM_BUILD_TYPE in header files
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// Note that this is also defined in AP_Airspeed_Params.cpp
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#ifndef AP_AIRSPEED_DUMMY_METHODS_ENABLED
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#define AP_AIRSPEED_DUMMY_METHODS_ENABLED ((APM_BUILD_COPTER_OR_HELI && BOARD_FLASH_SIZE <= 1024) || \
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APM_BUILD_TYPE(APM_BUILD_AntennaTracker) || APM_BUILD_TYPE(APM_BUILD_Blimp))
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#endif
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#if !AP_AIRSPEED_DUMMY_METHODS_ENABLED
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#include <AP_Common/AP_Common.h>
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#include <AP_HAL/AP_HAL.h>
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#include <AP_HAL/I2CDevice.h>
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#include <AP_Math/AP_Math.h>
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#include <GCS_MAVLink/GCS.h>
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#include <SRV_Channel/SRV_Channel.h>
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#include <AP_Logger/AP_Logger.h>
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#include <utility>
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#include "AP_Airspeed_MS4525.h"
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#include "AP_Airspeed_MS5525.h"
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#include "AP_Airspeed_SDP3X.h"
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#include "AP_Airspeed_DLVR.h"
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#include "AP_Airspeed_analog.h"
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#include "AP_Airspeed_ASP5033.h"
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#include "AP_Airspeed_Backend.h"
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#include "AP_Airspeed_DroneCAN.h"
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#include "AP_Airspeed_NMEA.h"
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#include "AP_Airspeed_MSP.h"
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#include "AP_Airspeed_SITL.h"
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extern const AP_HAL::HAL &hal;
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#include <AP_Vehicle/AP_FixedWing.h>
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#ifdef HAL_AIRSPEED_TYPE_DEFAULT
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#define ARSPD_DEFAULT_TYPE HAL_AIRSPEED_TYPE_DEFAULT
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#ifndef ARSPD_DEFAULT_PIN
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#define ARSPD_DEFAULT_PIN 1
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#endif
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#elif APM_BUILD_TYPE(APM_BUILD_ArduPlane)
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// The HAL_BOARD_SITL setting is required because of current probe process for MS4525 will
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// connect and find the SIM_DLVR sensors & fault as there is no way to tell them apart
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#if CONFIG_HAL_BOARD == HAL_BOARD_SITL
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#define ARSPD_DEFAULT_TYPE TYPE_ANALOG
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#define ARSPD_DEFAULT_PIN 1
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#else
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#define ARSPD_DEFAULT_TYPE TYPE_I2C_MS4525
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#ifdef HAL_DEFAULT_AIRSPEED_PIN
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#define ARSPD_DEFAULT_PIN HAL_DEFAULT_AIRSPEED_PIN
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#else
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#define ARSPD_DEFAULT_PIN 15
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#endif
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#endif //CONFIG_HAL_BOARD
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#else // All Other Vehicle Types
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#define ARSPD_DEFAULT_TYPE TYPE_NONE
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#define ARSPD_DEFAULT_PIN 15
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#endif
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#ifndef HAL_AIRSPEED_BUS_DEFAULT
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#define HAL_AIRSPEED_BUS_DEFAULT 1
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#endif
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#define OPTIONS_DEFAULT AP_Airspeed::OptionsMask::ON_FAILURE_AHRS_WIND_MAX_DO_DISABLE | AP_Airspeed::OptionsMask::ON_FAILURE_AHRS_WIND_MAX_RECOVERY_DO_REENABLE | AP_Airspeed::OptionsMask::USE_EKF_CONSISTENCY
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#define ENABLE_PARAMETER !(APM_BUILD_TYPE(APM_BUILD_ArduPlane) || defined(HAL_BUILD_AP_PERIPH))
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// table of user settable parameters
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const AP_Param::GroupInfo AP_Airspeed::var_info[] = {
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#if ENABLE_PARAMETER
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// @Param: _ENABLE
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// @DisplayName: Airspeed Enable
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// @Description: Enable airspeed sensor support
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// @Values: 0:Disable, 1:Enable
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// @User: Standard
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AP_GROUPINFO_FLAGS("_ENABLE", 30, AP_Airspeed, _enable, 0, AP_PARAM_FLAG_ENABLE),
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#endif
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// slots 0-9 (and 63) were previously used by params before being refactored into AP_Airspeed_Params
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// @Param: _TUBE_ORDER
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// @DisplayName: Control pitot tube order
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// @Description: This parameter allows you to control whether the order in which the tubes are attached to your pitot tube matters. If you set this to 0 then the first (often the top) connector on the sensor needs to be the stagnation pressure (the pressure at the tip of the pitot tube). If set to 1 then the second (often the bottom) connector needs to be the stagnation pressure. If set to 2 (the default) then the airspeed driver will accept either order. The reason you may wish to specify the order is it will allow your airspeed sensor to detect if the aircraft is receiving excessive pressure on the static port compared to the stagnation port such as during a stall, which would otherwise be seen as a positive airspeed.
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// @User: Advanced
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// @Values: 0:Normal,1:Swapped,2:Auto Detect
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// tube order param had to be shortened so is not preserved in per group descriptions
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#if AIRSPEED_MAX_SENSORS > 1
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// @Param: _PRIMARY
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// @DisplayName: Primary airspeed sensor
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// @Description: This selects which airspeed sensor will be the primary if multiple sensors are found
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// @Values: 0:FirstSensor,1:2ndSensor
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// @User: Advanced
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AP_GROUPINFO("_PRIMARY", 10, AP_Airspeed, primary_sensor, 0),
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#endif
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// 11-20 were previously used by second sensor params before being refactored into AP_Airspeed_Params
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#ifndef HAL_BUILD_AP_PERIPH
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// @Param: _OPTIONS
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// @DisplayName: Airspeed options bitmask
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// @Description: Bitmask of options to use with airspeed. 0:Disable use based on airspeed/groundspeed mismatch (see ARSPD_WIND_MAX), 1:Automatically reenable use based on airspeed/groundspeed mismatch recovery (see ARSPD_WIND_MAX) 2:Disable voltage correction, 3:Check that the airspeed is statistically consistent with the navigation EKF vehicle and wind velocity estimates using EKF3 (requires AHRS_EKF_TYPE = 3)
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// @Description{Copter, Blimp, Rover, Sub}: This parameter and function is not used by this vehicle. Always set to 0.
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// @Bitmask: 0:SpeedMismatchDisable, 1:AllowSpeedMismatchRecovery, 2:DisableVoltageCorrection, 3:UseEkf3Consistency
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// @User: Advanced
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AP_GROUPINFO("_OPTIONS", 21, AP_Airspeed, _options, OPTIONS_DEFAULT),
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// @Param: _WIND_MAX
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// @DisplayName: Maximum airspeed and ground speed difference
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// @Description: If the difference between airspeed and ground speed is greater than this value the sensor will be marked unhealthy. Using ARSPD_OPTION this health value can be used to disable the sensor.
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// @Description{Copter, Blimp, Rover, Sub}: This parameter and function is not used by this vehicle. Always set to 0.
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// @Units: m/s
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// @User: Advanced
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AP_GROUPINFO("_WIND_MAX", 22, AP_Airspeed, _wind_max, 0),
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// @Param: _WIND_WARN
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// @DisplayName: Airspeed and GPS speed difference that gives a warning
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// @Description: If the difference between airspeed and GPS speed is greater than this value the sensor will issue a warning. If 0 ARSPD_WIND_MAX is used.
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// @Description{Copter, Blimp, Rover, Sub}: This parameter and function is not used by this vehicle. Always set to 0.
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// @Units: m/s
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// @User: Advanced
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AP_GROUPINFO("_WIND_WARN", 23, AP_Airspeed, _wind_warn, 0),
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// @Param: _WIND_GATE
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// @DisplayName: Re-enable Consistency Check Gate Size
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// @Description: Number of standard deviations applied to the re-enable EKF consistency check that is used when ARSPD_OPTIONS bit position 3 is set. Larger values will make the re-enabling of the airspeed sensor faster, but increase the likelihood of re-enabling a degraded sensor. The value can be tuned by using the ARSP.TR log message by setting ARSPD_WIND_GATE to a value that is higher than the value for ARSP.TR observed with a healthy airspeed sensor. Occasional transients in ARSP.TR above the value set by ARSPD_WIND_GATE can be tolerated provided they are less than 5 seconds in duration and less than 10% duty cycle.
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// @Description{Copter, Blimp, Rover, Sub}: This parameter and function is not used by this vehicle.
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// @Range: 0.0 10.0
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// @User: Advanced
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AP_GROUPINFO("_WIND_GATE", 26, AP_Airspeed, _wind_gate, 5.0f),
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// @Param: _OFF_PCNT
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// @DisplayName: Maximum offset cal speed error
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// @Description: The maximum percentage speed change in airspeed reports that is allowed due to offset changes between calibraions before a warning is issued. This potential speed error is in percent of ASPD_FBW_MIN. 0 disables. Helps warn of calibrations without pitot being covered.
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// @Range: 0.0 10.0
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// @Units: %
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// @User: Advanced
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AP_GROUPINFO_FRAME("_OFF_PCNT", 27, AP_Airspeed, max_speed_pcnt, 0, AP_PARAM_FRAME_PLANE),
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#endif
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// @Group: _
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// @Path: AP_Airspeed_Params.cpp
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AP_SUBGROUPINFO(param[0], "_", 28, AP_Airspeed, AP_Airspeed_Params),
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#if AIRSPEED_MAX_SENSORS > 1
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// @Group: 2_
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// @Path: AP_Airspeed_Params.cpp
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AP_SUBGROUPINFO(param[1], "2_", 29, AP_Airspeed, AP_Airspeed_Params),
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#endif
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// index 30 is used by enable at the top of the table
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AP_GROUPEND
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};
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/*
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this scaling factor converts from the old system where we used a
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0 to 4095 raw ADC value for 0-5V to the new system which gets the
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voltage in volts directly from the ADC driver
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*/
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#define SCALING_OLD_CALIBRATION 819 // 4095/5
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AP_Airspeed::AP_Airspeed()
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{
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AP_Param::setup_object_defaults(this, var_info);
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// Setup defaults that only apply to first sensor
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param[0].type.set_default(ARSPD_DEFAULT_TYPE);
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#ifndef HAL_BUILD_AP_PERIPH
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param[0].bus.set_default(HAL_AIRSPEED_BUS_DEFAULT);
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param[0].pin.set_default(ARSPD_DEFAULT_PIN);
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#endif
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if (_singleton != nullptr) {
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AP_HAL::panic("AP_Airspeed must be singleton");
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}
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_singleton = this;
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}
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void AP_Airspeed::set_fixedwing_parameters(const AP_FixedWing *_fixed_wing_parameters)
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{
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fixed_wing_parameters = _fixed_wing_parameters;
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}
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// macro for use by HAL_INS_PROBE_LIST
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#define GET_I2C_DEVICE(bus, address) hal.i2c_mgr->get_device(bus, address)
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bool AP_Airspeed::add_backend(AP_Airspeed_Backend *backend)
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{
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if (!backend) {
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return false;
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}
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if (num_sensors >= AIRSPEED_MAX_SENSORS) {
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AP_HAL::panic("Too many airspeed drivers");
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}
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const uint8_t i = num_sensors;
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sensor[num_sensors++] = backend;
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if (!sensor[i]->init()) {
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GCS_SEND_TEXT(MAV_SEVERITY_ERROR, "Airspeed %u init failed", i+1);
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delete sensor[i];
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sensor[i] = nullptr;
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}
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return true;
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}
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/*
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macro to add a backend with check for too many sensors
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We don't try to start more than the maximum allowed
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*/
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#define ADD_BACKEND(backend) \
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do { add_backend(backend); \
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if (num_sensors == AIRSPEED_MAX_SENSORS) { return; } \
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} while (0)
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// convet params to per instance param table
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// PARAMETER_CONVERSION - Added: Dec-2022
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void AP_Airspeed::convert_per_instance()
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{
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AP_Param::ConversionInfo info;
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#ifndef HAL_BUILD_AP_PERIPH
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// Vehicle conversion
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if (!AP_Param::find_key_by_pointer(this, info.old_key)) {
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return;
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}
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static const struct convert_table {
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uint32_t element[2];
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ap_var_type type;
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const char* name;
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} conversion_table[] = {
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{ {4042, 714}, AP_PARAM_INT8, "TYPE" }, // ARSPD_TYPE, ARSPD2_TYPE
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{ {74, 778}, AP_PARAM_INT8, "USE" }, // ARSPD_USE, ARSPD2_USE
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{ {138, 842}, AP_PARAM_FLOAT, "OFFSET" }, // ARSPD_OFFSET, ARSPD2_OFFSET
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{ {202, 906}, AP_PARAM_FLOAT, "RATIO" }, // ARSPD_RATIO, ARSPD2_RATIO
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{ {266, 970}, AP_PARAM_INT8, "PIN" }, // ARSPD_PIN, ARSPD2_PIN
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#if AP_AIRSPEED_AUTOCAL_ENABLE
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{ {330, 1034}, AP_PARAM_INT8, "AUTOCAL" }, // ARSPD_AUTOCAL, ARSPD2_AUTOCAL
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#endif
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{ {394, 1098}, AP_PARAM_INT8, "TUBE_ORDR" }, // ARSPD_TUBE_ORDER, ARSPD2_TUBE_ORDR
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{ {458, 1162}, AP_PARAM_INT8, "SKIP_CAL" }, // ARSPD_SKIP_CAL, ARSPD2_SKIP_CAL
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{ {522, 1226}, AP_PARAM_FLOAT, "PSI_RANGE" }, // ARSPD_PSI_RANGE, ARSPD2_PSI_RANGE
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{ {586, 1290}, AP_PARAM_INT8, "BUS" }, // ARSPD_BUS, ARSPD2_BUS
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{ {1546, 1610}, AP_PARAM_INT32, "DEVID" }, // ARSPD_DEVID, ARSPD2_DEVID
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};
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#else
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// Periph conversion
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if (!AP_Param::find_top_level_key_by_pointer(this, info.old_key)) {
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return;
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}
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const struct convert_table {
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uint32_t element[2];
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ap_var_type type;
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const char* name;
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} conversion_table[] = {
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{ {0, 11}, AP_PARAM_INT8, "TYPE" }, // ARSPD_TYPE, ARSPD2_TYPE
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#if AP_AIRSPEED_AUTOCAL_ENABLE
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{ {5, 16}, AP_PARAM_INT8, "AUTOCAL" }, // ARSPD_AUTOCAL, ARSPD2_AUTOCAL
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#endif
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{ {8, 19}, AP_PARAM_FLOAT, "PSI_RANGE" }, // ARSPD_PSI_RANGE, ARSPD2_PSI_RANGE
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{ {24, 25}, AP_PARAM_INT32, "DEVID" }, // ARSPD_DEVID, ARSPD2_DEVID
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};
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#endif
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char param_name[17] {};
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info.new_name = param_name;
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for (const auto & elem : conversion_table) {
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info.type = elem.type;
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for (uint8_t i=0; i < MIN(AIRSPEED_MAX_SENSORS,2); i++) {
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info.old_group_element = elem.element[i];
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if (i == 0) {
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hal.util->snprintf(param_name, sizeof(param_name), "ARSPD_%s", elem.name);
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} else {
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hal.util->snprintf(param_name, sizeof(param_name), "ARSPD%i_%s", i+1, elem.name);
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}
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AP_Param::convert_old_parameter(&info, 1.0, 0);
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}
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}
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}
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void AP_Airspeed::init()
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{
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convert_per_instance();
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#if ENABLE_PARAMETER
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// if either type is set then enable if not manually set
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if (!_enable.configured() && ((param[0].type.get() != TYPE_NONE) || (param[1].type.get() != TYPE_NONE))) {
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_enable.set_and_save(1);
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}
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// Check if enabled
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if (!lib_enabled()) {
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return;
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}
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#endif
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if (enabled(0)) {
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allocate();
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}
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}
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void AP_Airspeed::allocate()
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{
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if (sensor[0] != nullptr) {
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// already initialised, periph may call allocate several times to allow CAN detection
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return;
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}
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#ifdef HAL_AIRSPEED_PROBE_LIST
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// load sensors via a list from hwdef.dat
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HAL_AIRSPEED_PROBE_LIST;
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#else
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// look for sensors based on type parameters
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for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
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#if AP_AIRSPEED_AUTOCAL_ENABLE
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state[i].calibration.init(param[i].ratio);
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state[i].last_saved_ratio = param[i].ratio;
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#endif
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// Set the enable automatically to false and set the probability that the airspeed is healhy to start with
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state[i].failures.health_probability = 1.0f;
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switch ((enum airspeed_type)param[i].type.get()) {
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case TYPE_NONE:
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// nothing to do
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break;
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case TYPE_I2C_MS4525:
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#if AP_AIRSPEED_MS4525_ENABLED
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sensor[i] = new AP_Airspeed_MS4525(*this, i);
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#endif
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break;
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case TYPE_SITL:
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#if AP_AIRSPEED_SITL_ENABLED
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sensor[i] = new AP_Airspeed_SITL(*this, i);
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#endif
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break;
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case TYPE_ANALOG:
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#if AP_AIRSPEED_ANALOG_ENABLED
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sensor[i] = new AP_Airspeed_Analog(*this, i);
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#endif
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break;
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case TYPE_I2C_MS5525:
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#if AP_AIRSPEED_MS5525_ENABLED
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sensor[i] = new AP_Airspeed_MS5525(*this, i, AP_Airspeed_MS5525::MS5525_ADDR_AUTO);
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#endif
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break;
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case TYPE_I2C_MS5525_ADDRESS_1:
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#if AP_AIRSPEED_MS5525_ENABLED
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sensor[i] = new AP_Airspeed_MS5525(*this, i, AP_Airspeed_MS5525::MS5525_ADDR_1);
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#endif
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break;
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case TYPE_I2C_MS5525_ADDRESS_2:
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#if AP_AIRSPEED_MS5525_ENABLED
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sensor[i] = new AP_Airspeed_MS5525(*this, i, AP_Airspeed_MS5525::MS5525_ADDR_2);
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#endif
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break;
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case TYPE_I2C_SDP3X:
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#if AP_AIRSPEED_SDP3X_ENABLED
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sensor[i] = new AP_Airspeed_SDP3X(*this, i);
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#endif
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break;
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case TYPE_I2C_DLVR_5IN:
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#if AP_AIRSPEED_DLVR_ENABLED
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sensor[i] = new AP_Airspeed_DLVR(*this, i, 5);
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#endif
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break;
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case TYPE_I2C_DLVR_10IN:
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#if AP_AIRSPEED_DLVR_ENABLED
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sensor[i] = new AP_Airspeed_DLVR(*this, i, 10);
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#endif
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break;
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case TYPE_I2C_DLVR_20IN:
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#if AP_AIRSPEED_DLVR_ENABLED
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sensor[i] = new AP_Airspeed_DLVR(*this, i, 20);
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#endif
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break;
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case TYPE_I2C_DLVR_30IN:
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#if AP_AIRSPEED_DLVR_ENABLED
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sensor[i] = new AP_Airspeed_DLVR(*this, i, 30);
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#endif
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break;
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case TYPE_I2C_DLVR_60IN:
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#if AP_AIRSPEED_DLVR_ENABLED
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sensor[i] = new AP_Airspeed_DLVR(*this, i, 60);
|
|
#endif // AP_AIRSPEED_DLVR_ENABLED
|
|
break;
|
|
case TYPE_I2C_ASP5033:
|
|
#if AP_AIRSPEED_ASP5033_ENABLED
|
|
sensor[i] = new AP_Airspeed_ASP5033(*this, i);
|
|
#endif
|
|
break;
|
|
case TYPE_UAVCAN:
|
|
#if AP_AIRSPEED_DRONECAN_ENABLED
|
|
sensor[i] = AP_Airspeed_DroneCAN::probe(*this, i, uint32_t(param[i].bus_id.get()));
|
|
#endif
|
|
break;
|
|
case TYPE_NMEA_WATER:
|
|
#if AP_AIRSPEED_NMEA_ENABLED
|
|
#if APM_BUILD_TYPE(APM_BUILD_Rover) || APM_BUILD_TYPE(APM_BUILD_ArduSub)
|
|
sensor[i] = new AP_Airspeed_NMEA(*this, i);
|
|
#endif
|
|
#endif
|
|
break;
|
|
case TYPE_MSP:
|
|
#if AP_AIRSPEED_MSP_ENABLED
|
|
sensor[i] = new AP_Airspeed_MSP(*this, i, 0);
|
|
#endif
|
|
break;
|
|
}
|
|
if (sensor[i] && !sensor[i]->init()) {
|
|
GCS_SEND_TEXT(MAV_SEVERITY_ERROR, "Airspeed %u init failed", i + 1);
|
|
delete sensor[i];
|
|
sensor[i] = nullptr;
|
|
}
|
|
if (sensor[i] != nullptr) {
|
|
num_sensors = i+1;
|
|
}
|
|
}
|
|
|
|
#if AP_AIRSPEED_DRONECAN_ENABLED
|
|
// we need a 2nd pass for DroneCAN sensors so we can match order by DEVID
|
|
// the 2nd pass accepts any devid
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
if (sensor[i] == nullptr && (enum airspeed_type)param[i].type.get() == TYPE_UAVCAN) {
|
|
sensor[i] = AP_Airspeed_DroneCAN::probe(*this, i, 0);
|
|
if (sensor[i] != nullptr) {
|
|
num_sensors = i+1;
|
|
}
|
|
}
|
|
}
|
|
#endif // AP_AIRSPEED_DRONECAN_ENABLED
|
|
#endif // HAL_AIRSPEED_PROBE_LIST
|
|
|
|
// set DEVID to zero for any sensors not found. This allows backends to order
|
|
// based on previous value of DEVID. This allows for swapping out sensors
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
if (sensor[i] == nullptr) {
|
|
// note we use set() not set_and_save() to allow a sensor to be temporarily
|
|
// removed for one boot without losing its slot
|
|
param[i].bus_id.set(0);
|
|
}
|
|
}
|
|
}
|
|
|
|
// read the airspeed sensor
|
|
float AP_Airspeed::get_pressure(uint8_t i)
|
|
{
|
|
if (!enabled(i)) {
|
|
return 0;
|
|
}
|
|
float pressure = 0;
|
|
if (sensor[i]) {
|
|
state[i].healthy = sensor[i]->get_differential_pressure(pressure);
|
|
}
|
|
return pressure;
|
|
}
|
|
|
|
// get a temperature reading if possible
|
|
bool AP_Airspeed::get_temperature(uint8_t i, float &temperature)
|
|
{
|
|
if (!enabled(i)) {
|
|
return false;
|
|
}
|
|
if (sensor[i]) {
|
|
return sensor[i]->get_temperature(temperature);
|
|
}
|
|
return false;
|
|
}
|
|
|
|
// calibrate the zero offset for the airspeed. This must be called at
|
|
// least once before the get_airspeed() interface can be used
|
|
void AP_Airspeed::calibrate(bool in_startup)
|
|
{
|
|
#ifndef HAL_BUILD_AP_PERIPH
|
|
if (!lib_enabled()) {
|
|
return;
|
|
}
|
|
if (hal.util->was_watchdog_reset()) {
|
|
GCS_SEND_TEXT(MAV_SEVERITY_INFO,"Airspeed: skipping cal");
|
|
return;
|
|
}
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
if (!enabled(i)) {
|
|
continue;
|
|
}
|
|
if (state[i].use_zero_offset) {
|
|
param[i].offset.set(0);
|
|
continue;
|
|
}
|
|
if (in_startup && param[i].skip_cal) {
|
|
continue;
|
|
}
|
|
if (sensor[i] == nullptr) {
|
|
GCS_SEND_TEXT(MAV_SEVERITY_ERROR, "Airspeed %u not initalized, cannot cal", i+1);
|
|
continue;
|
|
}
|
|
state[i].cal.start_ms = AP_HAL::millis();
|
|
state[i].cal.count = 0;
|
|
state[i].cal.sum = 0;
|
|
state[i].cal.read_count = 0;
|
|
calibration_state[i] = CalibrationState::IN_PROGRESS;
|
|
GCS_SEND_TEXT(MAV_SEVERITY_INFO,"Airspeed %u calibration started", i+1);
|
|
}
|
|
#endif // HAL_BUILD_AP_PERIPH
|
|
}
|
|
|
|
/*
|
|
update async airspeed zero offset calibration
|
|
*/
|
|
void AP_Airspeed::update_calibration(uint8_t i, float raw_pressure)
|
|
{
|
|
#ifndef HAL_BUILD_AP_PERIPH
|
|
if (!enabled(i) || state[i].cal.start_ms == 0) {
|
|
return;
|
|
}
|
|
|
|
// consider calibration complete when we have at least 15 samples
|
|
// over at least 1 second
|
|
if (AP_HAL::millis() - state[i].cal.start_ms >= 1000 &&
|
|
state[i].cal.read_count > 15) {
|
|
if (state[i].cal.count == 0) {
|
|
GCS_SEND_TEXT(MAV_SEVERITY_WARNING, "Airspeed %u unhealthy", i + 1);
|
|
calibration_state[i] = CalibrationState::FAILED;
|
|
} else {
|
|
GCS_SEND_TEXT(MAV_SEVERITY_INFO, "Airspeed %u calibrated", i + 1);
|
|
float calibrated_offset = state[i].cal.sum / state[i].cal.count;
|
|
// check if new offset differs too greatly from last calibration, indicating pitot uncovered in wind
|
|
if (fixed_wing_parameters != nullptr) {
|
|
float airspeed_min = fixed_wing_parameters->airspeed_min.get();
|
|
// use percentage of ARSPD_FBW_MIN as criteria for max allowed change in offset
|
|
float max_change = 0.5*(sq((1 + (max_speed_pcnt * 0.01))*airspeed_min) - sq(airspeed_min));
|
|
if (max_speed_pcnt > 0 && (abs(calibrated_offset-param[i].offset) > max_change) && (abs(param[i].offset) > 0)) {
|
|
GCS_SEND_TEXT(MAV_SEVERITY_WARNING, "Arspd %d offset change large;cover and recal", i +1);
|
|
}
|
|
}
|
|
param[i].offset.set_and_save(calibrated_offset);
|
|
calibration_state[i] = CalibrationState::SUCCESS;
|
|
}
|
|
state[i].cal.start_ms = 0;
|
|
return;
|
|
}
|
|
// we discard the first 5 samples
|
|
if (state[i].healthy && state[i].cal.read_count > 5) {
|
|
state[i].cal.sum += raw_pressure;
|
|
state[i].cal.count++;
|
|
}
|
|
state[i].cal.read_count++;
|
|
#endif // HAL_BUILD_AP_PERIPH
|
|
}
|
|
|
|
// get aggregate calibration state for the Airspeed library:
|
|
AP_Airspeed::CalibrationState AP_Airspeed::get_calibration_state() const
|
|
{
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
switch (calibration_state[i]) {
|
|
case CalibrationState::SUCCESS:
|
|
case CalibrationState::NOT_STARTED:
|
|
continue;
|
|
case CalibrationState::IN_PROGRESS:
|
|
return CalibrationState::IN_PROGRESS;
|
|
case CalibrationState::FAILED:
|
|
return CalibrationState::FAILED;
|
|
}
|
|
}
|
|
return CalibrationState::SUCCESS;
|
|
}
|
|
|
|
// read one airspeed sensor
|
|
void AP_Airspeed::read(uint8_t i)
|
|
{
|
|
if (!enabled(i) || !sensor[i]) {
|
|
return;
|
|
}
|
|
state[i].last_update_ms = AP_HAL::millis();
|
|
|
|
// try and get a direct reading of airspeed
|
|
if (sensor[i]->has_airspeed()) {
|
|
state[i].healthy = sensor[i]->get_airspeed(state[i].airspeed);
|
|
state[i].raw_airspeed = state[i].airspeed; // for logging
|
|
return;
|
|
}
|
|
|
|
float raw_pressure = get_pressure(i);
|
|
float airspeed_pressure = raw_pressure - get_offset(i);
|
|
|
|
// remember raw pressure for logging
|
|
state[i].corrected_pressure = airspeed_pressure;
|
|
|
|
#ifndef HAL_BUILD_AP_PERIPH
|
|
bool prev_healthy = state[i].healthy;
|
|
if (state[i].cal.start_ms != 0) {
|
|
update_calibration(i, raw_pressure);
|
|
}
|
|
|
|
// filter before clamping positive
|
|
if (!prev_healthy) {
|
|
// if the previous state was not healthy then we should not
|
|
// use an IIR filter, otherwise a bad reading will last for
|
|
// some time after the sensor becomees healthy again
|
|
state[i].filtered_pressure = airspeed_pressure;
|
|
} else {
|
|
state[i].filtered_pressure = 0.7f * state[i].filtered_pressure + 0.3f * airspeed_pressure;
|
|
}
|
|
|
|
/*
|
|
we support different pitot tube setups so user can choose if
|
|
they want to be able to detect pressure on the static port
|
|
*/
|
|
switch ((enum pitot_tube_order)param[i].tube_order.get()) {
|
|
case PITOT_TUBE_ORDER_NEGATIVE:
|
|
state[i].last_pressure = -airspeed_pressure;
|
|
state[i].raw_airspeed = sqrtf(MAX(-airspeed_pressure, 0) * param[i].ratio);
|
|
state[i].airspeed = sqrtf(MAX(-state[i].filtered_pressure, 0) * param[i].ratio);
|
|
break;
|
|
case PITOT_TUBE_ORDER_POSITIVE:
|
|
state[i].last_pressure = airspeed_pressure;
|
|
state[i].raw_airspeed = sqrtf(MAX(airspeed_pressure, 0) * param[i].ratio);
|
|
state[i].airspeed = sqrtf(MAX(state[i].filtered_pressure, 0) * param[i].ratio);
|
|
break;
|
|
case PITOT_TUBE_ORDER_AUTO:
|
|
default:
|
|
state[i].last_pressure = fabsf(airspeed_pressure);
|
|
state[i].raw_airspeed = sqrtf(fabsf(airspeed_pressure) * param[i].ratio);
|
|
state[i].airspeed = sqrtf(fabsf(state[i].filtered_pressure) * param[i].ratio);
|
|
break;
|
|
}
|
|
#endif // HAL_BUILD_AP_PERIPH
|
|
}
|
|
|
|
// read all airspeed sensors
|
|
void AP_Airspeed::update()
|
|
{
|
|
if (!lib_enabled()) {
|
|
return;
|
|
}
|
|
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
read(i);
|
|
}
|
|
|
|
#if HAL_GCS_ENABLED
|
|
// debugging until we get MAVLink support for 2nd airspeed sensor
|
|
if (enabled(1)) {
|
|
gcs().send_named_float("AS2", get_airspeed(1));
|
|
}
|
|
#endif
|
|
|
|
#if HAL_LOGGING_ENABLED
|
|
const uint8_t old_primary = primary;
|
|
#endif
|
|
|
|
// setup primary
|
|
if (healthy(primary_sensor.get())) {
|
|
primary = primary_sensor.get();
|
|
} else {
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
if (healthy(i)) {
|
|
primary = i;
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
|
|
check_sensor_failures();
|
|
|
|
#if HAL_LOGGING_ENABLED
|
|
if (primary != old_primary) {
|
|
AP::logger().Write_Event(LogEvent::AIRSPEED_PRIMARY_CHANGED);
|
|
}
|
|
if (_log_bit != (uint32_t)-1 && AP::logger().should_log(_log_bit)) {
|
|
Log_Airspeed();
|
|
}
|
|
#endif
|
|
}
|
|
|
|
#if AP_AIRSPEED_MSP_ENABLED
|
|
/*
|
|
handle MSP airspeed data
|
|
*/
|
|
void AP_Airspeed::handle_msp(const MSP::msp_airspeed_data_message_t &pkt)
|
|
{
|
|
if (!lib_enabled()) {
|
|
return;
|
|
}
|
|
|
|
if (pkt.instance > 1) {
|
|
return; //supporting 2 airspeed sensors at most
|
|
}
|
|
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
if (sensor[i]) {
|
|
sensor[i]->handle_msp(pkt);
|
|
}
|
|
}
|
|
}
|
|
#endif
|
|
|
|
// @LoggerMessage: HYGR
|
|
// @Description: Hygrometer data
|
|
// @Field: TimeUS: Time since system startup
|
|
// @Field: Id: sensor ID
|
|
// @Field: Humidity: percentage humidity
|
|
// @Field: Temp: temperature in degrees C
|
|
|
|
void AP_Airspeed::Log_Airspeed()
|
|
{
|
|
const uint64_t now = AP_HAL::micros64();
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
if (!enabled(i) || sensor[i] == nullptr) {
|
|
continue;
|
|
}
|
|
float temperature;
|
|
if (!get_temperature(i, temperature)) {
|
|
temperature = 0;
|
|
}
|
|
const struct log_ARSP pkt{
|
|
LOG_PACKET_HEADER_INIT(LOG_ARSP_MSG),
|
|
time_us : now,
|
|
instance : i,
|
|
airspeed : get_raw_airspeed(i),
|
|
diffpressure : get_differential_pressure(i),
|
|
temperature : (int16_t)(temperature * 100.0f),
|
|
rawpressure : get_corrected_pressure(i),
|
|
offset : get_offset(i),
|
|
use : use(i),
|
|
healthy : healthy(i),
|
|
health_prob : get_health_probability(i),
|
|
test_ratio : get_test_ratio(i),
|
|
primary : get_primary()
|
|
};
|
|
AP::logger().WriteBlock(&pkt, sizeof(pkt));
|
|
|
|
#if AP_AIRSPEED_HYGROMETER_ENABLE
|
|
struct {
|
|
uint32_t sample_ms;
|
|
float temperature;
|
|
float humidity;
|
|
} hygrometer;
|
|
if (sensor[i]->get_hygrometer(hygrometer.sample_ms, hygrometer.temperature, hygrometer.humidity) &&
|
|
hygrometer.sample_ms != state[i].last_hygrometer_log_ms) {
|
|
AP::logger().WriteStreaming("HYGR",
|
|
"TimeUS,Id,Humidity,Temp",
|
|
"s#%O",
|
|
"F---",
|
|
"QBff",
|
|
AP_HAL::micros64(),
|
|
i,
|
|
hygrometer.humidity,
|
|
hygrometer.temperature);
|
|
state[i].last_hygrometer_log_ms = hygrometer.sample_ms;
|
|
}
|
|
#endif
|
|
}
|
|
}
|
|
|
|
bool AP_Airspeed::use(uint8_t i) const
|
|
{
|
|
#ifndef HAL_BUILD_AP_PERIPH
|
|
if (!lib_enabled()) {
|
|
return false;
|
|
}
|
|
if (_force_disable_use) {
|
|
return false;
|
|
}
|
|
if (!enabled(i) || !param[i].use) {
|
|
return false;
|
|
}
|
|
if (param[i].use == 2 && !is_zero(SRV_Channels::get_output_scaled(SRV_Channel::k_throttle))) {
|
|
// special case for gliders with airspeed sensors behind the
|
|
// propeller. Allow airspeed to be disabled when throttle is
|
|
// running
|
|
return false;
|
|
}
|
|
return true;
|
|
#else
|
|
return false;
|
|
#endif // HAL_BUILD_AP_PERIPH
|
|
}
|
|
|
|
/*
|
|
return true if all enabled sensors are healthy
|
|
*/
|
|
bool AP_Airspeed::all_healthy(void) const
|
|
{
|
|
for (uint8_t i=0; i<AIRSPEED_MAX_SENSORS; i++) {
|
|
if (enabled(i) && !healthy(i)) {
|
|
return false;
|
|
}
|
|
}
|
|
return true;
|
|
}
|
|
|
|
bool AP_Airspeed::lib_enabled() const {
|
|
#if ENABLE_PARAMETER
|
|
return _enable > 0;
|
|
#endif
|
|
return true;
|
|
}
|
|
|
|
// return true if airspeed is enabled
|
|
bool AP_Airspeed::enabled(uint8_t i) const {
|
|
if (!lib_enabled()) {
|
|
return false;
|
|
}
|
|
if (i < AIRSPEED_MAX_SENSORS) {
|
|
return param[i].type.get() != TYPE_NONE;
|
|
}
|
|
return false;
|
|
}
|
|
|
|
// return health status of sensor
|
|
bool AP_Airspeed::healthy(uint8_t i) const {
|
|
bool ok = state[i].healthy && enabled(i) && sensor[i] != nullptr;
|
|
#ifndef HAL_BUILD_AP_PERIPH
|
|
// sanity check the offset parameter. Zero is permitted if we are skipping calibration.
|
|
ok &= (fabsf(param[i].offset) > 0 || state[i].use_zero_offset || param[i].skip_cal);
|
|
#endif
|
|
return ok;
|
|
}
|
|
|
|
// return the current airspeed in m/s
|
|
float AP_Airspeed::get_airspeed(uint8_t i) const {
|
|
if (!enabled(i)) {
|
|
// we can't have negative airspeed so sending an obviously invalid value
|
|
return -1.0;
|
|
}
|
|
return state[i].airspeed;
|
|
}
|
|
|
|
// return the unfiltered airspeed in m/s
|
|
float AP_Airspeed::get_raw_airspeed(uint8_t i) const {
|
|
if (!enabled(i)) {
|
|
// we can't have negative airspeed so sending an obviously invalid value
|
|
return -1.0;
|
|
}
|
|
return state[i].raw_airspeed;
|
|
}
|
|
|
|
// return the differential pressure in Pascal for the last airspeed reading
|
|
float AP_Airspeed::get_differential_pressure(uint8_t i) const {
|
|
if (!enabled(i)) {
|
|
return 0.0;
|
|
}
|
|
return state[i].last_pressure;
|
|
}
|
|
|
|
// return the current corrected pressure
|
|
float AP_Airspeed::get_corrected_pressure(uint8_t i) const {
|
|
if (!enabled(i)) {
|
|
return 0.0;
|
|
}
|
|
return state[i].corrected_pressure;
|
|
}
|
|
|
|
#if AP_AIRSPEED_HYGROMETER_ENABLE
|
|
bool AP_Airspeed::get_hygrometer(uint8_t i, uint32_t &last_sample_ms, float &temperature, float &humidity) const
|
|
{
|
|
if (!enabled(i) || sensor[i] == nullptr) {
|
|
return false;
|
|
}
|
|
return sensor[i]->get_hygrometer(last_sample_ms, temperature, humidity);
|
|
}
|
|
#endif // AP_AIRSPEED_HYGROMETER_ENABLE
|
|
|
|
#else // build type is not appropriate; provide a dummy implementation:
|
|
const AP_Param::GroupInfo AP_Airspeed::var_info[] = { AP_GROUPEND };
|
|
|
|
void AP_Airspeed::update() {};
|
|
bool AP_Airspeed::get_temperature(uint8_t i, float &temperature) { return false; }
|
|
void AP_Airspeed::calibrate(bool in_startup) {}
|
|
AP_Airspeed::CalibrationState AP_Airspeed::get_calibration_state() const { return CalibrationState::NOT_STARTED; }
|
|
bool AP_Airspeed::use(uint8_t i) const { return false; }
|
|
bool AP_Airspeed::enabled(uint8_t i) const { return false; }
|
|
bool AP_Airspeed::healthy(uint8_t i) const { return false; }
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float AP_Airspeed::get_airspeed(uint8_t i) const { return 0.0; }
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float AP_Airspeed::get_differential_pressure(uint8_t i) const { return 0.0; }
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#if AP_AIRSPEED_MSP_ENABLED
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void AP_Airspeed::handle_msp(const MSP::msp_airspeed_data_message_t &pkt) {}
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#endif
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bool AP_Airspeed::all_healthy(void) const { return false; }
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void AP_Airspeed::init(void) {};
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AP_Airspeed::AP_Airspeed() {}
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#endif // #if AP_AIRSPEED_DUMMY_METHODS_ENABLED
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// singleton instance
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AP_Airspeed *AP_Airspeed::_singleton;
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namespace AP {
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AP_Airspeed *airspeed()
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{
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return AP_Airspeed::get_singleton();
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}
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};
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#endif // AP_AIRSPEED_ENABLED
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