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598 lines
19 KiB
598 lines
19 KiB
#include "Copter.h" |
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#include <AP_ESC_Telem/AP_ESC_Telem.h> |
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/***************************************************************************** |
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* The init_ardupilot function processes everything we need for an in - air restart |
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* We will determine later if we are actually on the ground and process a |
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* ground start in that case. |
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* |
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*****************************************************************************/ |
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static void failsafe_check_static() |
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{ |
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copter.failsafe_check(); |
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} |
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void Copter::init_ardupilot() |
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{ |
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#if STATS_ENABLED == ENABLED |
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// initialise stats module |
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g2.stats.init(); |
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#endif |
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BoardConfig.init(); |
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#if HAL_MAX_CAN_PROTOCOL_DRIVERS |
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can_mgr.init(); |
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#endif |
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// init cargo gripper |
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#if GRIPPER_ENABLED == ENABLED |
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g2.gripper.init(); |
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#endif |
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#if AC_FENCE == ENABLED |
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fence.init(); |
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#endif |
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// init winch |
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#if WINCH_ENABLED == ENABLED |
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g2.winch.init(); |
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#endif |
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// initialise notify system |
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notify.init(); |
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notify_flight_mode(); |
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// initialise battery monitor |
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battery.init(); |
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// Init RSSI |
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rssi.init(); |
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barometer.init(); |
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// setup telem slots with serial ports |
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gcs().setup_uarts(); |
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#if OSD_ENABLED == ENABLED |
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osd.init(); |
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#endif |
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#if LOGGING_ENABLED == ENABLED |
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log_init(); |
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#endif |
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// update motor interlock state |
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update_using_interlock(); |
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#if FRAME_CONFIG == HELI_FRAME |
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// trad heli specific initialisation |
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heli_init(); |
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#endif |
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#if FRAME_CONFIG == HELI_FRAME |
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input_manager.set_loop_rate(scheduler.get_loop_rate_hz()); |
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#endif |
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init_rc_in(); // sets up rc channels from radio |
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// allocate the motors class |
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allocate_motors(); |
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// initialise rc channels including setting mode |
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rc().convert_options(RC_Channel::AUX_FUNC::ARMDISARM_UNUSED, RC_Channel::AUX_FUNC::ARMDISARM_AIRMODE); |
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rc().init(); |
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// sets up motors and output to escs |
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init_rc_out(); |
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// check if we should enter esc calibration mode |
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esc_calibration_startup_check(); |
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// motors initialised so parameters can be sent |
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ap.initialised_params = true; |
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relay.init(); |
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/* |
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* setup the 'main loop is dead' check. Note that this relies on |
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* the RC library being initialised. |
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*/ |
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hal.scheduler->register_timer_failsafe(failsafe_check_static, 1000); |
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// Do GPS init |
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gps.set_log_gps_bit(MASK_LOG_GPS); |
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gps.init(serial_manager); |
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AP::compass().set_log_bit(MASK_LOG_COMPASS); |
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AP::compass().init(); |
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#if AC_OAPATHPLANNER_ENABLED == ENABLED |
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g2.oa.init(); |
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#endif |
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attitude_control->parameter_sanity_check(); |
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#if OPTFLOW == ENABLED |
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// initialise optical flow sensor |
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optflow.init(MASK_LOG_OPTFLOW); |
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#endif // OPTFLOW == ENABLED |
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#if HAL_MOUNT_ENABLED |
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// initialise camera mount |
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camera_mount.init(); |
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#endif |
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#if PRECISION_LANDING == ENABLED |
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// initialise precision landing |
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init_precland(); |
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#endif |
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#if LANDING_GEAR_ENABLED == ENABLED |
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// initialise landing gear position |
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landinggear.init(); |
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#endif |
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#ifdef USERHOOK_INIT |
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USERHOOK_INIT |
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#endif |
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// read Baro pressure at ground |
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//----------------------------- |
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barometer.set_log_baro_bit(MASK_LOG_IMU); |
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barometer.calibrate(); |
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// initialise rangefinder |
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init_rangefinder(); |
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// init proximity sensor |
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init_proximity(); |
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#if BEACON_ENABLED == ENABLED |
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// init beacons used for non-gps position estimation |
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g2.beacon.init(); |
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#endif |
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#if RPM_ENABLED == ENABLED |
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// initialise AP_RPM library |
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rpm_sensor.init(); |
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#endif |
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#if MODE_AUTO_ENABLED == ENABLED |
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// initialise mission library |
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mode_auto.mission.init(); |
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#endif |
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#if MODE_SMARTRTL_ENABLED == ENABLED |
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// initialize SmartRTL |
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g2.smart_rtl.init(); |
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#endif |
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// initialise AP_Logger library |
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logger.setVehicle_Startup_Writer(FUNCTOR_BIND(&copter, &Copter::Log_Write_Vehicle_Startup_Messages, void)); |
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startup_INS_ground(); |
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#ifdef ENABLE_SCRIPTING |
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g2.scripting.init(); |
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#endif // ENABLE_SCRIPTING |
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// set landed flags |
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set_land_complete(true); |
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set_land_complete_maybe(true); |
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// we don't want writes to the serial port to cause us to pause |
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// mid-flight, so set the serial ports non-blocking once we are |
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// ready to fly |
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serial_manager.set_blocking_writes_all(false); |
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// enable CPU failsafe |
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failsafe_enable(); |
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ins.set_log_raw_bit(MASK_LOG_IMU_RAW); |
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// enable output to motors |
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if (arming.rc_calibration_checks(true)) { |
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enable_motor_output(); |
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} |
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// attempt to set the intial_mode, else set to STABILIZE |
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if (!set_mode((enum Mode::Number)g.initial_mode.get(), ModeReason::INITIALISED)) { |
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// set mode to STABILIZE will trigger mode change notification to pilot |
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set_mode(Mode::Number::STABILIZE, ModeReason::UNAVAILABLE); |
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} |
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// flag that initialisation has completed |
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ap.initialised = true; |
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} |
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//****************************************************************************** |
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//This function does all the calibrations, etc. that we need during a ground start |
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//****************************************************************************** |
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void Copter::startup_INS_ground() |
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{ |
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// initialise ahrs (may push imu calibration into the mpu6000 if using that device). |
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ahrs.init(); |
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ahrs.set_vehicle_class(AP_AHRS::VehicleClass::COPTER); |
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// Warm up and calibrate gyro offsets |
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ins.init(scheduler.get_loop_rate_hz()); |
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// reset ahrs including gyro bias |
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ahrs.reset(); |
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} |
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// update the harmonic notch filter center frequency dynamically |
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void Copter::update_dynamic_notch() |
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{ |
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if (!ins.gyro_harmonic_notch_enabled()) { |
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return; |
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} |
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const float ref_freq = ins.get_gyro_harmonic_notch_center_freq_hz(); |
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const float ref = ins.get_gyro_harmonic_notch_reference(); |
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if (is_zero(ref)) { |
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ins.update_harmonic_notch_freq_hz(ref_freq); |
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return; |
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} |
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const float throttle_freq = ref_freq * MAX(1.0f, sqrtf(motors->get_throttle_out() / ref)); |
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switch (ins.get_gyro_harmonic_notch_tracking_mode()) { |
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case HarmonicNotchDynamicMode::UpdateThrottle: // throttle based tracking |
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// set the harmonic notch filter frequency approximately scaled on motor rpm implied by throttle |
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ins.update_harmonic_notch_freq_hz(throttle_freq); |
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break; |
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#if RPM_ENABLED == ENABLED |
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case HarmonicNotchDynamicMode::UpdateRPM: // rpm sensor based tracking |
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float rpm; |
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if (rpm_sensor.get_rpm(0, rpm)) { |
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// set the harmonic notch filter frequency from the main rotor rpm |
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ins.update_harmonic_notch_freq_hz(MAX(ref_freq, rpm * ref / 60.0f)); |
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} else { |
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ins.update_harmonic_notch_freq_hz(ref_freq); |
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} |
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break; |
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#endif |
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#if HAL_WITH_ESC_TELEM |
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case HarmonicNotchDynamicMode::UpdateBLHeli: // BLHeli based tracking |
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// set the harmonic notch filter frequency scaled on measured frequency |
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if (ins.has_harmonic_option(HarmonicNotchFilterParams::Options::DynamicHarmonic)) { |
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float notches[INS_MAX_NOTCHES]; |
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const uint8_t num_notches = AP::esc_telem().get_motor_frequencies_hz(INS_MAX_NOTCHES, notches); |
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for (uint8_t i = 0; i < num_notches; i++) { |
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notches[i] = MAX(ref_freq, notches[i]); |
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} |
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if (num_notches > 0) { |
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ins.update_harmonic_notch_frequencies_hz(num_notches, notches); |
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} else { // throttle fallback |
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ins.update_harmonic_notch_freq_hz(throttle_freq); |
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} |
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} else { |
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ins.update_harmonic_notch_freq_hz(MAX(ref_freq, AP::esc_telem().get_average_motor_frequency_hz() * ref)); |
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} |
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break; |
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#endif |
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#if HAL_GYROFFT_ENABLED |
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case HarmonicNotchDynamicMode::UpdateGyroFFT: // FFT based tracking |
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// set the harmonic notch filter frequency scaled on measured frequency |
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if (ins.has_harmonic_option(HarmonicNotchFilterParams::Options::DynamicHarmonic)) { |
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float notches[INS_MAX_NOTCHES]; |
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const uint8_t peaks = gyro_fft.get_weighted_noise_center_frequencies_hz(INS_MAX_NOTCHES, notches); |
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ins.update_harmonic_notch_frequencies_hz(peaks, notches); |
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} else { |
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ins.update_harmonic_notch_freq_hz(gyro_fft.get_weighted_noise_center_freq_hz()); |
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} |
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break; |
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#endif |
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case HarmonicNotchDynamicMode::Fixed: // static |
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default: |
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ins.update_harmonic_notch_freq_hz(ref_freq); |
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break; |
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} |
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} |
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// position_ok - returns true if the horizontal absolute position is ok and home position is set |
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bool Copter::position_ok() const |
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{ |
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// return false if ekf failsafe has triggered |
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if (failsafe.ekf) { |
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return false; |
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} |
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// check ekf position estimate |
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return (ekf_has_absolute_position() || ekf_has_relative_position()); |
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} |
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// ekf_has_absolute_position - returns true if the EKF can provide an absolute WGS-84 position estimate |
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bool Copter::ekf_has_absolute_position() const |
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{ |
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if (!ahrs.have_inertial_nav()) { |
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// do not allow navigation with dcm position |
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return false; |
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} |
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// with EKF use filter status and ekf check |
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nav_filter_status filt_status = inertial_nav.get_filter_status(); |
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// if disarmed we accept a predicted horizontal position |
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if (!motors->armed()) { |
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return ((filt_status.flags.horiz_pos_abs || filt_status.flags.pred_horiz_pos_abs)); |
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} else { |
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// once armed we require a good absolute position and EKF must not be in const_pos_mode |
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return (filt_status.flags.horiz_pos_abs && !filt_status.flags.const_pos_mode); |
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} |
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} |
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// ekf_has_relative_position - returns true if the EKF can provide a position estimate relative to it's starting position |
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bool Copter::ekf_has_relative_position() const |
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{ |
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// return immediately if EKF not used |
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if (!ahrs.have_inertial_nav()) { |
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return false; |
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} |
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// return immediately if neither optflow nor visual odometry is enabled |
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bool enabled = false; |
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#if OPTFLOW == ENABLED |
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if (optflow.enabled()) { |
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enabled = true; |
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} |
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#endif |
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#if HAL_VISUALODOM_ENABLED |
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if (visual_odom.enabled()) { |
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enabled = true; |
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} |
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#endif |
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if (!enabled) { |
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return false; |
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} |
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// get filter status from EKF |
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nav_filter_status filt_status = inertial_nav.get_filter_status(); |
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// if disarmed we accept a predicted horizontal relative position |
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if (!motors->armed()) { |
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return (filt_status.flags.pred_horiz_pos_rel); |
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} else { |
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return (filt_status.flags.horiz_pos_rel && !filt_status.flags.const_pos_mode); |
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} |
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} |
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// returns true if the ekf has a good altitude estimate (required for modes which do AltHold) |
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bool Copter::ekf_alt_ok() const |
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{ |
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if (!ahrs.have_inertial_nav()) { |
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// do not allow alt control with only dcm |
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return false; |
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} |
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// with EKF use filter status and ekf check |
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nav_filter_status filt_status = inertial_nav.get_filter_status(); |
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// require both vertical velocity and position |
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return (filt_status.flags.vert_vel && filt_status.flags.vert_pos); |
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} |
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// update_auto_armed - update status of auto_armed flag |
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void Copter::update_auto_armed() |
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{ |
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// disarm checks |
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if(ap.auto_armed){ |
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// if motors are disarmed, auto_armed should also be false |
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if(!motors->armed()) { |
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set_auto_armed(false); |
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return; |
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} |
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// if in stabilize or acro flight mode and throttle is zero, auto-armed should become false |
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if(flightmode->has_manual_throttle() && ap.throttle_zero && !failsafe.radio) { |
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set_auto_armed(false); |
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} |
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}else{ |
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// arm checks |
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// for tradheli if motors are armed and throttle is above zero and the motor is started, auto_armed should be true |
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if(motors->armed() && ap.using_interlock) { |
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if(!ap.throttle_zero && motors->get_spool_state() == AP_Motors::SpoolState::THROTTLE_UNLIMITED) { |
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set_auto_armed(true); |
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} |
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// if motors are armed and throttle is above zero auto_armed should be true |
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// if motors are armed and we are in throw mode, then auto_armed should be true |
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} else if (motors->armed() && !ap.using_interlock) { |
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if(!ap.throttle_zero || flightmode->mode_number() == Mode::Number::THROW) { |
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set_auto_armed(true); |
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} |
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} |
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} |
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} |
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/* |
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should we log a message type now? |
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*/ |
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bool Copter::should_log(uint32_t mask) |
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{ |
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#if LOGGING_ENABLED == ENABLED |
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ap.logging_started = logger.logging_started(); |
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return logger.should_log(mask); |
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#else |
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return false; |
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#endif |
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} |
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/* |
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allocate the motors class |
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*/ |
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void Copter::allocate_motors(void) |
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{ |
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switch ((AP_Motors::motor_frame_class)g2.frame_class.get()) { |
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#if FRAME_CONFIG != HELI_FRAME |
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case AP_Motors::MOTOR_FRAME_QUAD: |
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case AP_Motors::MOTOR_FRAME_HEXA: |
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case AP_Motors::MOTOR_FRAME_Y6: |
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case AP_Motors::MOTOR_FRAME_OCTA: |
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case AP_Motors::MOTOR_FRAME_OCTAQUAD: |
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case AP_Motors::MOTOR_FRAME_DODECAHEXA: |
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case AP_Motors::MOTOR_FRAME_DECA: |
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case AP_Motors::MOTOR_FRAME_SCRIPTING_MATRIX: |
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default: |
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motors = new AP_MotorsMatrix(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsMatrix::var_info; |
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break; |
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case AP_Motors::MOTOR_FRAME_TRI: |
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motors = new AP_MotorsTri(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsTri::var_info; |
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AP_Param::set_frame_type_flags(AP_PARAM_FRAME_TRICOPTER); |
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break; |
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case AP_Motors::MOTOR_FRAME_SINGLE: |
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motors = new AP_MotorsSingle(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsSingle::var_info; |
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break; |
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case AP_Motors::MOTOR_FRAME_COAX: |
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motors = new AP_MotorsCoax(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsCoax::var_info; |
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break; |
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case AP_Motors::MOTOR_FRAME_TAILSITTER: |
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motors = new AP_MotorsTailsitter(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsTailsitter::var_info; |
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break; |
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case AP_Motors::MOTOR_FRAME_6DOF_SCRIPTING: |
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#ifdef ENABLE_SCRIPTING |
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motors = new AP_MotorsMatrix_6DoF_Scripting(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsMatrix_6DoF_Scripting::var_info; |
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#endif // ENABLE_SCRIPTING |
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break; |
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case AP_Motors::MOTOR_FRAME_DYNAMIC_SCRIPTING_MATRIX: |
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#ifdef ENABLE_SCRIPTING |
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motors = new AP_MotorsMatrix_Scripting_Dynamic(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsMatrix_Scripting_Dynamic::var_info; |
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#endif // ENABLE_SCRIPTING |
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break; |
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#else // FRAME_CONFIG == HELI_FRAME |
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case AP_Motors::MOTOR_FRAME_HELI_DUAL: |
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motors = new AP_MotorsHeli_Dual(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsHeli_Dual::var_info; |
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AP_Param::set_frame_type_flags(AP_PARAM_FRAME_HELI); |
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break; |
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case AP_Motors::MOTOR_FRAME_HELI_QUAD: |
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motors = new AP_MotorsHeli_Quad(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsHeli_Quad::var_info; |
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AP_Param::set_frame_type_flags(AP_PARAM_FRAME_HELI); |
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break; |
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case AP_Motors::MOTOR_FRAME_HELI: |
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default: |
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motors = new AP_MotorsHeli_Single(copter.scheduler.get_loop_rate_hz()); |
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motors_var_info = AP_MotorsHeli_Single::var_info; |
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AP_Param::set_frame_type_flags(AP_PARAM_FRAME_HELI); |
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break; |
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#endif |
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} |
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if (motors == nullptr) { |
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AP_BoardConfig::config_error("Unable to allocate FRAME_CLASS=%u", (unsigned)g2.frame_class.get()); |
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} |
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AP_Param::load_object_from_eeprom(motors, motors_var_info); |
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ahrs_view = ahrs.create_view(ROTATION_NONE); |
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if (ahrs_view == nullptr) { |
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AP_BoardConfig::config_error("Unable to allocate AP_AHRS_View"); |
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} |
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const struct AP_Param::GroupInfo *ac_var_info; |
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#if FRAME_CONFIG != HELI_FRAME |
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if ((AP_Motors::motor_frame_class)g2.frame_class.get() == AP_Motors::MOTOR_FRAME_6DOF_SCRIPTING) { |
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#ifdef ENABLE_SCRIPTING |
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attitude_control = new AC_AttitudeControl_Multi_6DoF(*ahrs_view, aparm, *motors, scheduler.get_loop_period_s()); |
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ac_var_info = AC_AttitudeControl_Multi_6DoF::var_info; |
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#endif // ENABLE_SCRIPTING |
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} else { |
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attitude_control = new AC_AttitudeControl_Multi(*ahrs_view, aparm, *motors, scheduler.get_loop_period_s()); |
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ac_var_info = AC_AttitudeControl_Multi::var_info; |
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} |
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#else |
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attitude_control = new AC_AttitudeControl_Heli(*ahrs_view, aparm, *motors, scheduler.get_loop_period_s()); |
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ac_var_info = AC_AttitudeControl_Heli::var_info; |
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#endif |
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if (attitude_control == nullptr) { |
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AP_BoardConfig::config_error("Unable to allocate AttitudeControl"); |
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} |
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AP_Param::load_object_from_eeprom(attitude_control, ac_var_info); |
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pos_control = new AC_PosControl(*ahrs_view, inertial_nav, *motors, *attitude_control, scheduler.get_loop_period_s()); |
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if (pos_control == nullptr) { |
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AP_BoardConfig::config_error("Unable to allocate PosControl"); |
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} |
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AP_Param::load_object_from_eeprom(pos_control, pos_control->var_info); |
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#if AC_OAPATHPLANNER_ENABLED == ENABLED |
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wp_nav = new AC_WPNav_OA(inertial_nav, *ahrs_view, *pos_control, *attitude_control); |
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#else |
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wp_nav = new AC_WPNav(inertial_nav, *ahrs_view, *pos_control, *attitude_control); |
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#endif |
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if (wp_nav == nullptr) { |
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AP_BoardConfig::config_error("Unable to allocate WPNav"); |
|
} |
|
AP_Param::load_object_from_eeprom(wp_nav, wp_nav->var_info); |
|
|
|
loiter_nav = new AC_Loiter(inertial_nav, *ahrs_view, *pos_control, *attitude_control); |
|
if (loiter_nav == nullptr) { |
|
AP_BoardConfig::config_error("Unable to allocate LoiterNav"); |
|
} |
|
AP_Param::load_object_from_eeprom(loiter_nav, loiter_nav->var_info); |
|
|
|
#if MODE_CIRCLE_ENABLED == ENABLED |
|
circle_nav = new AC_Circle(inertial_nav, *ahrs_view, *pos_control); |
|
if (circle_nav == nullptr) { |
|
AP_BoardConfig::config_error("Unable to allocate CircleNav"); |
|
} |
|
AP_Param::load_object_from_eeprom(circle_nav, circle_nav->var_info); |
|
#endif |
|
|
|
// reload lines from the defaults file that may now be accessible |
|
AP_Param::reload_defaults_file(true); |
|
|
|
// now setup some frame-class specific defaults |
|
switch ((AP_Motors::motor_frame_class)g2.frame_class.get()) { |
|
case AP_Motors::MOTOR_FRAME_Y6: |
|
attitude_control->get_rate_roll_pid().kP().set_default(0.1); |
|
attitude_control->get_rate_roll_pid().kD().set_default(0.006); |
|
attitude_control->get_rate_pitch_pid().kP().set_default(0.1); |
|
attitude_control->get_rate_pitch_pid().kD().set_default(0.006); |
|
attitude_control->get_rate_yaw_pid().kP().set_default(0.15); |
|
attitude_control->get_rate_yaw_pid().kI().set_default(0.015); |
|
break; |
|
case AP_Motors::MOTOR_FRAME_TRI: |
|
attitude_control->get_rate_yaw_pid().filt_D_hz().set_default(100); |
|
break; |
|
default: |
|
break; |
|
} |
|
|
|
// brushed 16kHz defaults to 16kHz pulses |
|
if (motors->get_pwm_type() == AP_Motors::PWM_TYPE_BRUSHED) { |
|
g.rc_speed.set_default(16000); |
|
} |
|
|
|
// upgrade parameters. This must be done after allocating the objects |
|
convert_pid_parameters(); |
|
#if FRAME_CONFIG == HELI_FRAME |
|
convert_tradheli_parameters(); |
|
#endif |
|
|
|
// param count could have changed |
|
AP_Param::invalidate_count(); |
|
} |
|
|
|
bool Copter::is_tradheli() const |
|
{ |
|
#if FRAME_CONFIG == HELI_FRAME |
|
return true; |
|
#else |
|
return false; |
|
#endif |
|
}
|
|
|