Files
ODrive/Firmware/MotorControl/encoder.cpp
T

207 lines
7.3 KiB
C++

//#include "encoder.hpp"
#include "odrive_main.hpp"
Encoder::Encoder(const EncoderHardwareConfig_t& hw_config,
EncoderConfig_t& config) :
hw_config_(hw_config),
config_(config)
{
// Calculate encoder pll gains
// This calculation is currently identical to the PLL in SensorlessEstimator
float pll_bandwidth = 1000.0f; // [rad/s]
pll_kp_ = 2.0f * pll_bandwidth;
// Critically damped
pll_ki_ = 0.25f * (pll_kp_ * pll_kp_);
}
static void enc_index_cb_wrapper(void* ctx) {
reinterpret_cast<Encoder*>(ctx)->enc_index_cb();
}
void Encoder::setup() {
HAL_TIM_Encoder_Start(hw_config_.timer, TIM_CHANNEL_ALL);
GPIO_subscribe(hw_config_.index_port, hw_config_.index_pin, GPIO_NOPULL,
enc_index_cb_wrapper, this);
}
//--------------------
// Hardware Dependent
//--------------------
// Triggered when an encoder passes over the "Index" pin
// TODO: only arm index edge interrupt when we know encoder has powered up
// TODO: disable interrupt once we found the index
void Encoder::enc_index_cb() {
if (!index_found_) {
set_count(0);
index_found_ = true;
}
}
// Function that sets the current encoder count to a desired 32-bit value.
void Encoder::set_count(int32_t count) {
// Disable interrupts to make a critical section to avoid race condition
uint32_t prim = __get_PRIMASK();
__disable_irq();
state_ = count;
hw_config_.timer->Instance->CNT = count;
pll_pos_ = (float)count;
__set_PRIMASK(prim);
}
// TODO: Do the scan with current, not voltage!
// TODO: add check_timing
bool Encoder::calib_enc_offset(float voltage_magnitude) {
static const float start_lock_duration = 1.0f;
static const float scan_omega = 4.0f * M_PI;
static const float scan_distance = 16.0f * M_PI;
static const int num_steps = scan_distance / scan_omega * current_meas_hz;
// go to motor zero phase for start_lock_duration to get ready to scan
int i = 0;
axis_->run_control_loop([&](){
axis_->motor_.enqueue_voltage_timings(voltage_magnitude, 0.0f);
return ++i < start_lock_duration * current_meas_hz;
});
if (axis_->error_ != Axis::ERROR_NO_ERROR)
return false;
int32_t init_enc_val = (int16_t)hw_config_.timer->Instance->CNT;
int64_t encvaluesum = 0;
// scan forward
i = 0;
axis_->run_control_loop([&](){
float phase = wrap_pm_pi(scan_distance * (float)i / (float)num_steps - scan_distance / 2.0f);
float v_alpha = voltage_magnitude * arm_cos_f32(phase);
float v_beta = voltage_magnitude * arm_sin_f32(phase);
axis_->motor_.enqueue_voltage_timings(v_alpha, v_beta);
encvaluesum += (int16_t)hw_config_.timer->Instance->CNT;
return ++i < num_steps;
});
if (axis_->error_ != Axis::ERROR_NO_ERROR)
return false;
//TODO avoid recomputing elec_rad_per_enc every time
float elec_rad_per_enc = axis_->motor_.config_.pole_pairs * 2 * M_PI * (1.0f / (float)(config_.cpr));
float expected_encoder_delta = scan_distance / elec_rad_per_enc;
float actual_encoder_delta_abs = fabsf((int16_t)hw_config_.timer->Instance->CNT-init_enc_val);
if(fabsf(actual_encoder_delta_abs - expected_encoder_delta)/expected_encoder_delta > config_.calib_range)
{
error_ = ERROR_CPR_OUT_OF_RANGE;
return false;
}
// check direction
if ((int16_t)hw_config_.timer->Instance->CNT > init_enc_val + 8) {
// motor same dir as encoder
axis_->motor_.config_.direction = 1;
} else if ((int16_t)hw_config_.timer->Instance->CNT < init_enc_val - 8) {
// motor opposite dir as encoder
axis_->motor_.config_.direction = -1;
} else {
// Encoder response error
error_ = ERROR_RESPONSE;
return false;
}
// scan backwards
i = 0;
axis_->run_control_loop([&](){
float phase = wrap_pm_pi(-scan_distance * (float)i / (float)num_steps + scan_distance / 2.0f);
float v_alpha = voltage_magnitude * arm_cos_f32(phase);
float v_beta = voltage_magnitude * arm_sin_f32(phase);
axis_->motor_.enqueue_voltage_timings(v_alpha, v_beta);
encvaluesum += (int16_t)hw_config_.timer->Instance->CNT;
return ++i < num_steps;
});
if (axis_->error_ != Axis::ERROR_NO_ERROR)
return false;
int offset = encvaluesum / (num_steps * 2);
config_.offset = offset;
is_calibrated_ = true;
return true;
}
bool Encoder::scan_for_enc_idx(float omega, float voltage_magnitude) {
index_found_ = false;
float phase = 0.0f;
axis_->run_control_loop([&](){
phase = wrap_pm_pi(phase + omega * current_meas_period);
float v_alpha = voltage_magnitude * arm_cos_f32(phase);
float v_beta = voltage_magnitude * arm_sin_f32(phase);
axis_->motor_.enqueue_voltage_timings(v_alpha, v_beta);
// continue until the index is found
return !index_found_;
});
return axis_->error_ == Axis::ERROR_NO_ERROR;
}
bool Encoder::run_calibration() {
float enc_calibration_voltage;
if (axis_->motor_.config_.motor_type == MOTOR_TYPE_HIGH_CURRENT)
enc_calibration_voltage = axis_->motor_.config_.calibration_current * axis_->motor_.config_.phase_resistance;
else if (axis_->motor_.config_.motor_type == MOTOR_TYPE_GIMBAL)
enc_calibration_voltage = axis_->motor_.config_.calibration_current;
else
return false;
if (config_.use_index && !index_found_)
if (!scan_for_enc_idx(
(float)(axis_->motor_.config_.direction) * config_.idx_search_speed,
enc_calibration_voltage))
return false;
if (!config_.hand_calibrated) //
if (!calib_enc_offset(enc_calibration_voltage))
return false;
return true;
}
bool Encoder::update(float* pos_estimate, float* vel_estimate, float* phase_output) {
// Check that we don't get problems with discrete time approximation
if (!(current_meas_period * pll_kp_ < 1.0f)) {
error_ = ERROR_NUMERICAL;
return false;
}
// update internal encoder state
int16_t delta_enc = (int16_t)hw_config_.timer->Instance->CNT - (int16_t)state_;
state_ += (int32_t)delta_enc;
// compute electrical phase
int corrected_enc = state_ % config_.cpr;
corrected_enc -= config_.offset;
//corrected_enc *= axis_->motor_.config_.direction; TODO: verify if this still works
//TODO avoid recomputing elec_rad_per_enc every time
float elec_rad_per_enc = axis_->motor_.config_.pole_pairs * 2 * M_PI * (1.0f / (float)(config_.cpr));
float ph = elec_rad_per_enc * (float)corrected_enc;
// ph = fmodf(ph, 2*M_PI);
phase_ = wrap_pm_pi(ph);
// run pll (for now pll is in units of encoder counts)
// TODO pll_pos runs out of precision very quickly here! Perhaps decompose into integer and fractional part?
// Predict current pos
pll_pos_ += current_meas_period * pll_vel_;
// discrete phase detector
float delta_pos = (float)(state_ - (int32_t)floorf(pll_pos_));
// pll feedback
pll_pos_ += current_meas_period * pll_kp_ * delta_pos;
pll_vel_ += current_meas_period * pll_ki_ * delta_pos;
// Assign output arguments
if (pos_estimate) *pos_estimate = pll_pos_;
if (vel_estimate) *vel_estimate = pll_vel_;
if (phase_output) *phase_output = phase_;
return true;
}