AP_Compass: allow for more than one compass in HIL/SITL
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@ -27,9 +27,9 @@ extern const AP_HAL::HAL& hal;
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// constructor
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AP_Compass_HIL::AP_Compass_HIL(Compass &compass):
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AP_Compass_Backend(compass),
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_compass_instance(0)
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AP_Compass_Backend(compass)
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{
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memset(_compass_instance, 0, sizeof(_compass_instance));
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_compass._setup_earth_field();
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}
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@ -50,12 +50,18 @@ AP_Compass_Backend *AP_Compass_HIL::detect(Compass &compass)
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bool
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AP_Compass_HIL::init(void)
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{
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// register the compass instance in the frontend
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_compass_instance = register_compass();
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// register two compass instances
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for (uint8_t i=0; i<COMPASS_MAX_INSTANCES; i++) {
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_compass_instance[i] = register_compass();
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}
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return true;
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}
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void AP_Compass_HIL::read()
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{
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publish_field(_compass._hil.field, _compass_instance);
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for (uint8_t i=0; i<sizeof(_compass_instance)/sizeof(_compass_instance[0]); i++) {
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if (_compass._hil.healthy[i]) {
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publish_field(_compass._hil.field[_compass_instance[i]], _compass_instance[i]);
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}
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}
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}
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@ -15,7 +15,7 @@ public:
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static AP_Compass_Backend *detect(Compass &compass);
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private:
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uint8_t _compass_instance;
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uint8_t _compass_instance[COMPASS_MAX_INSTANCES];
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};
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#endif
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@ -568,7 +568,7 @@ bool Compass::configured(void)
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// Update raw magnetometer values from HIL data
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//
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void Compass::setHIL(float roll, float pitch, float yaw)
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void Compass::setHIL(uint8_t instance, float roll, float pitch, float yaw)
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{
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Matrix3f R;
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@ -582,31 +582,34 @@ void Compass::setHIL(float roll, float pitch, float yaw)
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// convert the earth frame magnetic vector to body frame, and
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// apply the offsets
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_hil.field = R.mul_transpose(_hil.Bearth);
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_hil.field[instance] = R.mul_transpose(_hil.Bearth);
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// apply default board orientation for this compass type. This is
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// a noop on most boards
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_hil.field.rotate(MAG_BOARD_ORIENTATION);
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_hil.field[instance].rotate(MAG_BOARD_ORIENTATION);
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// add user selectable orientation
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_hil.field.rotate((enum Rotation)_state[0].orientation.get());
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_hil.field[instance].rotate((enum Rotation)_state[0].orientation.get());
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if (!_state[0].external) {
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// and add in AHRS_ORIENTATION setting if not an external compass
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_hil.field.rotate(_board_orientation);
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_hil.field[instance].rotate(_board_orientation);
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}
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_hil.healthy[instance] = true;
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}
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// Update raw magnetometer values from HIL mag vector
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//
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void Compass::setHIL(const Vector3f &mag)
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void Compass::setHIL(uint8_t instance, const Vector3f &mag)
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{
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_hil.field = mag;
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_hil.field[instance] = mag;
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_hil.healthy[instance] = true;
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_last_update_usec = hal.scheduler->micros();
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}
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const Vector3f& Compass::getHIL() const {
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return _hil.field;
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const Vector3f& Compass::getHIL(uint8_t instance) const
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{
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return _hil.field[instance];
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}
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// setup _Bearth
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@ -35,7 +35,7 @@
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maximum number of compass instances available on this platform. If more
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than 1 then redundent sensors may be available
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*/
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#if CONFIG_HAL_BOARD == HAL_BOARD_PX4 || CONFIG_HAL_BOARD == HAL_BOARD_LINUX || CONFIG_HAL_BOARD == HAL_BOARD_VRBRAIN
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#if HAL_CPU_CLASS > HAL_CPU_CLASS_16
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#define COMPASS_MAX_INSTANCES 3
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#define COMPASS_MAX_BACKEND 3
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#else
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@ -223,9 +223,9 @@ public:
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uint8_t get_primary(void) const { return _primary; }
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// HIL methods
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void setHIL(float roll, float pitch, float yaw);
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void setHIL(const Vector3f &mag);
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const Vector3f& getHIL() const;
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void setHIL(uint8_t instance, float roll, float pitch, float yaw);
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void setHIL(uint8_t instance, const Vector3f &mag);
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const Vector3f& getHIL(uint8_t instance) const;
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void _setup_earth_field();
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// enable HIL mode
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@ -240,7 +240,8 @@ public:
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struct {
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Vector3f Bearth;
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float last_declination;
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Vector3f field;
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bool healthy[COMPASS_MAX_INSTANCES];
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Vector3f field[COMPASS_MAX_INSTANCES];
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} _hil;
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private:
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