Files
ardupilot/Blimp/system.cpp
T
Peter Barker f5ed5ffab0 Blimp: remove RCn_OPTION parameter conversion
Rewrote a stored RCn_OPTION of ARMDISARM_UNUSED (41) to ARMDISARM (153).
Added Sep-2021.

Blimp has no release tags, so unlike the other vehicles there is no
release which can be shown to contain the conversion, and a 4.3 migration
floor says nothing about a build made from master.  This removal takes
the floor to mean that a Blimp older than the whole 4.3 cycle is out of
scope for migration, the same as it is for every other vehicle.

A stored 41 which survives becomes an unhandled auxiliary function and
does nothing, which is the same outcome as any other option number this
firmware does not know.
2026-09-01 20:49:36 +10:00

272 lines
7.8 KiB
C++

#include "Blimp.h"
/*****************************************************************************
* The init_ardupilot function processes everything we need for an in - air restart
* We will determine later if we are actually on the ground and process a
* ground start in that case.
*
*****************************************************************************/
static void failsafe_check_static()
{
blimp.failsafe_check();
}
void Blimp::init_ardupilot()
{
// initialise notify system
notify.init();
notify_flight_mode();
// initialise battery monitor
battery.init();
#if AP_RSSI_ENABLED
// Init RSSI
rssi.init();
#endif
barometer.init();
// setup telem slots with serial ports
gcs().setup_uarts();
init_rc_in(); // sets up rc channels from radio
// allocate the motors class
allocate_motors();
loiter = NEW_NOTHROW Loiter(blimp.scheduler.get_loop_rate_hz());
if (loiter == nullptr) {
AP_BoardConfig::allocation_error("Loiter");
}
AP_Param::load_object_from_eeprom(loiter, Loiter::var_info);
// reload lines from the defaults file that may now be accessible
AP_Param::reload_defaults_file(true);
// param count could have changed
AP_Param::invalidate_count();
// initialise rc channels including setting mode
rc().init();
// sets up motors and output to escs
init_rc_out();
// motors initialised so parameters can be sent
ap.initialised_params = true;
#if AP_RELAY_ENABLED
relay.init();
#endif
/*
* setup the 'main loop is dead' check. Note that this relies on
* the RC library being initialised.
*/
hal.scheduler->register_timer_failsafe(failsafe_check_static, 1000);
// Do GPS init
gps.set_log_gps_bit(MASK_LOG_GPS);
gps.init();
AP::compass().set_log_bit(MASK_LOG_COMPASS);
AP::compass().init();
// read Baro pressure at ground
//-----------------------------
barometer.set_log_baro_bit(MASK_LOG_IMU);
barometer.calibrate();
mode_auto.mission.init();
#if HAL_LOGGING_ENABLED
// initialise AP_Logger library
logger.setVehicle_Startup_Writer(FUNCTOR_BIND(&blimp, &Blimp::Log_Write_Vehicle_Startup_Messages, void));
#endif
startup_INS_ground();
ins.set_log_raw_bit(MASK_LOG_IMU_RAW);
// setup fin output
motors->setup_finsmotors();
// enable output to motors
if (arming.rc_calibration_checks(true)) {
enable_motor_output();
}
//Initialise velocity filters
vel_x_filter.init(scheduler.get_loop_rate_hz(), motors->freq_hz, 0.5f, 15.0f);
vel_y_filter.init(scheduler.get_loop_rate_hz(), motors->freq_hz, 0.5f, 15.0f);
vel_z_filter.init(scheduler.get_loop_rate_hz(), motors->freq_hz, 1.0f, 15.0f);
vel_yaw_filter.init(scheduler.get_loop_rate_hz(), motors->freq_hz, 5.0f, 15.0f);
// attempt to switch to MANUAL, if this fails then switch to Land
if (!set_mode((enum Mode::Number)g.initial_mode.get(), ModeReason::INITIALISED)) {
// set mode to MANUAL will trigger mode change notification to pilot
set_mode(Mode::Number::MANUAL, ModeReason::UNAVAILABLE);
} else {
// alert pilot to mode change
AP_Notify::events.failsafe_mode_change = 1;
}
// flag that initialisation has completed
ap.initialised = true;
}
//******************************************************************************
//This function does all the calibrations, etc. that we need during a ground start
//******************************************************************************
void Blimp::startup_INS_ground()
{
// initialise ahrs (may push imu calibration into the mpu6000 if using that device).
ahrs.init();
// No Blimp option, but AHRS requirements are similar to Copter's, so that is what we use.
ahrs.set_vehicle_class(AP_AHRS::VehicleClass::COPTER);
// Warm up and calibrate gyro offsets
ins.init(scheduler.get_loop_rate_hz());
// reset ahrs including gyro bias
ahrs.reset();
}
// position_ok - returns true if the horizontal absolute position is ok and home position is set
bool Blimp::position_ok() const
{
// return false if ekf failsafe has triggered
if (failsafe.ekf) {
return false;
}
// check ekf position estimate
return (ekf_has_absolute_position() || ekf_has_relative_position());
}
// ekf_has_absolute_position - returns true if the EKF can provide an absolute WGS-84 position estimate
bool Blimp::ekf_has_absolute_position() const
{
if (!ahrs.have_inertial_nav()) {
// do not allow navigation with dcm position
return false;
}
// if disarmed we accept a predicted horizontal position
if (!motors->armed()) {
if (ahrs.has_status(AP_AHRS::Status::HORIZ_POS_ABS)) {
return true;
}
if (ahrs.has_status(AP_AHRS::Status::PRED_HORIZ_POS_ABS)) {
return true;
}
return false;
}
// once armed we require a good absolute position and EKF must not be in const_pos_mode
if (ahrs.has_status(AP_AHRS::Status::CONST_POS_MODE)) {
return false;
}
return ahrs.has_status(AP_AHRS::Status::HORIZ_POS_ABS);
}
// ekf_has_relative_position - returns true if the EKF can provide a position estimate relative to it's starting position
bool Blimp::ekf_has_relative_position() const
{
// return immediately if EKF not used
if (!ahrs.have_inertial_nav()) {
return false;
}
// return immediately if neither optflow nor visual odometry is enabled
bool enabled = false;
if (!enabled) {
return false;
}
// if disarmed we accept a predicted horizontal relative position
if (!motors->armed()) {
return ahrs.has_status(AP_AHRS::Status::PRED_HORIZ_POS_REL);
}
if (ahrs.has_status(AP_AHRS::Status::CONST_POS_MODE)) {
return false;
}
return ahrs.has_status(AP_AHRS::Status::HORIZ_POS_REL);
}
// returns true if the ekf has a good altitude estimate (required for modes which do AltHold)
bool Blimp::ekf_alt_ok() const
{
if (!ahrs.have_inertial_nav()) {
// do not allow alt control with only dcm
return false;
}
// require both vertical velocity and position
if (!ahrs.has_status(AP_AHRS::Status::VERT_VEL)) {
return false;
}
if (!ahrs.has_status(AP_AHRS::Status::VERT_POS)) {
return false;
}
return true;
}
// update_auto_armed - update status of auto_armed flag
void Blimp::update_auto_armed()
{
// disarm checks
if (ap.auto_armed) {
// if motors are disarmed, auto_armed should also be false
if (!motors->armed()) {
set_auto_armed(false);
return;
}
// if in a manual flight mode and throttle is zero, auto-armed should become false
if (flightmode->has_manual_throttle() && ap.throttle_zero && !failsafe.radio) {
set_auto_armed(false);
}
}
}
#if HAL_LOGGING_ENABLED
/*
should we log a message type now?
*/
bool Blimp::should_log(uint32_t mask)
{
ap.logging_started = logger.logging_started();
return logger.should_log(mask);
}
#endif
// return MAV_TYPE
MAV_TYPE Blimp::get_frame_mav_type()
{
return MAV_TYPE_AIRSHIP;
}
// return string corresponding to frame_class
const char* Blimp::get_frame_string()
{
return motors->get_frame_string();
}
/*
allocate the motors class
*/
void Blimp::allocate_motors(void)
{
motors = NEW_NOTHROW Fins(blimp.scheduler.get_loop_rate_hz());
if (motors == nullptr) {
AP_BoardConfig::allocation_error("FRAME_CLASS=%u", (unsigned)g2.frame_class.get());
}
AP_Param::load_object_from_eeprom(motors, Fins::var_info);
// reload lines from the defaults file that may now be accessible
AP_Param::reload_defaults_file(true);
// param count could have changed
AP_Param::invalidate_count();
}