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0ef16df511
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| 0ef16df511 | |||
| 356b1081f4 | |||
| 0b0a656bf3 | |||
| a1b4dfce79 |
2 changed files with 62 additions and 25 deletions
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@ -1,11 +1,11 @@
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#pragma once
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#pragma once
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const float ACCEL_LIMIT = 5.0; // cm/s/s
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const float ACCEL_LIMIT = 5.0; // cm/s/s
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const float VEL_LIMIT = 10.0; // cm/s
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const float VEL_LIMIT = 16.0; // cm/s
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const float BACKLASH_RIGHT = 0.0; // degrees
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const float BACKLASH_RIGHT = 0.0; // degrees
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const float BACKLASH_LEFT = 0.0; // degrees
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const float BACKLASH_LEFT = 0.0; // degrees
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const float WHEEL_DIAMETER = 10.00; // cm
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const float WHEEL_DIAMETER = 10.25; // cm
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const float WHEEL_TO_WHEEL = 10.0; // cm
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const float WHEEL_TO_WHEEL = 9.0; // cm
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// centimeters per second to rpm
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// centimeters per second to rpm
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const float CMS_RPM = 60.0 / (PI*WHEEL_DIAMETER);
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const float CMS_RPM = 60.0 / (PI*WHEEL_DIAMETER);
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@ -13,7 +13,7 @@ const float CMS_RPM = 60.0 / (PI*WHEEL_DIAMETER);
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// degrees to centimeters
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// degrees to centimeters
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const float DEG_CM = (PI*WHEEL_DIAMETER) / 360.0;
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const float DEG_CM = (PI*WHEEL_DIAMETER) / 360.0;
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const float FORWARD_DISTANCE = 100.0; // cm
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const float FORWARD_DISTANCE = 10.0; // cm
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const float TURN_AMOUNT = 180.0; // degrees
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const float TURN_AMOUNT = 180.0; // degrees
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const float TURN_DISTANCE = (TURN_AMOUNT / 360.0) * WHEEL_TO_WHEEL * PI;
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const float TURN_DISTANCE = (TURN_AMOUNT / 360.0) * WHEEL_TO_WHEEL * PI;
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const float RETURN_DISTANCE = 100.0; // cm
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const float RETURN_DISTANCE = 100.0; // cm
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@ -24,3 +24,5 @@ const float FF_STAT = 15.4; // motor static friction
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const float KP = 2.0; // proportional
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const float KP = 2.0; // proportional
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const float KI = 0.5; // integral
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const float KI = 0.5; // integral
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const float KD = 0.05; // derivative
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const float KD = 0.05; // derivative
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const float KPP = 0.15; // position proportional
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const float KPI = 0.05; // position integral
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@ -19,7 +19,6 @@ enum ROBOT_STATE {
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float CURRENT_POSITION = 0.0;
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float CURRENT_POSITION = 0.0;
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float CURRENT_ROTATION = 0.0;
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float CURRENT_ROTATION = 0.0;
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struct Setpoint setpoint;
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struct Setpoint setpoint;
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float velocity = 40.0;
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// start of current state
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// start of current state
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float phase_start;
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float phase_start;
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enum ROBOT_STATE robot_state;
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enum ROBOT_STATE robot_state;
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@ -27,6 +26,13 @@ enum ROBOT_STATE robot_state;
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struct Trapezoidal forward = {VEL_LIMIT, ACCEL_LIMIT, FORWARD_DISTANCE};
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struct Trapezoidal forward = {VEL_LIMIT, ACCEL_LIMIT, FORWARD_DISTANCE};
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struct Trapezoidal turn = {VEL_LIMIT, ACCEL_LIMIT, TURN_DISTANCE};
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struct Trapezoidal turn = {VEL_LIMIT, ACCEL_LIMIT, TURN_DISTANCE};
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float left_iaccum = 0.0;
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float right_iaccum = 0.0;
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float time_p = 0.0;
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float left_home = 0.0;
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float right_home = 0.0;
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void write_rpm_ff(SmartMotor* motor, int32_t rpm, float ff) {
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void write_rpm_ff(SmartMotor* motor, int32_t rpm, float ff) {
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if (rpm == 0) {rpm = 1;};
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if (rpm == 0) {rpm = 1;};
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float kV = ff / (float) rpm; // calculate velocity feedforward that causes desired absolute feedforward
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float kV = ff / (float) rpm; // calculate velocity feedforward that causes desired absolute feedforward
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@ -43,15 +49,15 @@ void setup() {
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Wire.begin(); // INIT ARDUINO UNO AS I2C CONTROLLER
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Wire.begin(); // INIT ARDUINO UNO AS I2C CONTROLLER
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// TUNE VELOCITY PID
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left_motor.write_rpm(0.0);
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//left_motor.tune_vel_pid(0.9, 3.7,0.3,0.0);
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delay(1);
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//delay(10);
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right_motor.write_rpm(0.0);
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//right_motor.tune_vel_pid(0.9, 3.7,0.3,0.0);
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delay(999);
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delay(10);
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//right_motor.set_direction(PIDDirection::DIRECT);
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phase_start = (float)millis() / 1000.0;
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phase_start = (float)millis() / 1000.0;
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robot_state = FORWARD;
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robot_state = FORWARD;
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left_motor.home();
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right_motor.home();
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}
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}
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void loop() {
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void loop() {
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@ -62,29 +68,50 @@ void loop() {
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setpoint = trapezoidal_planner(&forward, time);
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setpoint = trapezoidal_planner(&forward, time);
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break;
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break;
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case TURN:
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case TURN:
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setpoint = trapezoidal_planner(&forward, time);
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setpoint = trapezoidal_planner(&turn, time);
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break;
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break;
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}
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}
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float feedforward =
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float turnsig = (robot_state == TURN ? 1.0 : -1.0); // direction of travel for right motor
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// position PI controller
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float pos_err_left = ((setpoint.position / DEG_CM) + left_home) - left_motor.read_angle();
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float pos_err_right = ((turnsig * setpoint.position / DEG_CM) + right_home) - right_motor.read_angle();
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// delta should be ~4ms
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if (time > time_p) {
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float delta = time - time_p;
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right_iaccum += pos_err_right * delta;
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left_iaccum += pos_err_left * delta;
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}
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time_p = time;
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float left_effort = pos_err_left * KPP + left_iaccum * KPI;
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float right_effort = pos_err_right * KPP + right_iaccum * KPI;
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float left_velocity = setpoint.velocity + left_effort;
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float right_velocity = (turnsig * setpoint.velocity) + right_effort;
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// calculate feedforward from motion profile and position PI data
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float feedforward_left =
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setpoint.acceleration * CMS_RPM * FF_ACCEL +
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setpoint.acceleration * CMS_RPM * FF_ACCEL +
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setpoint.velocity * CMS_RPM * FF_VEL +
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left_velocity * CMS_RPM * FF_VEL +
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((setpoint.velocity > 0.0) ? FF_STAT : -FF_STAT);
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((left_velocity > 0.0) ? FF_STAT : -FF_STAT);
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float feedforward_right =
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float feedforward_right =
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setpoint.acceleration * CMS_RPM * 9.0 +
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setpoint.acceleration * CMS_RPM * FF_ACCEL +
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setpoint.velocity * CMS_RPM * FF_VEL +
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right_velocity * CMS_RPM * FF_VEL +
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((setpoint.velocity > 0.0) ? FF_STAT : -FF_STAT);
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((right_velocity > 0.0) ? FF_STAT : -FF_STAT);
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write_rpm_ff(&left_motor, setpoint.velocity * CMS_RPM, feedforward);
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// arbitrary feedforward with on-board velocity PID
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write_rpm_ff(&right_motor, (robot_state == TURN ? setpoint.velocity : -setpoint.velocity) * CMS_RPM, feedforward);
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write_rpm_ff(&left_motor, left_velocity * CMS_RPM , feedforward_left);
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write_rpm_ff(&right_motor, right_velocity * CMS_RPM , feedforward_right);
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// READ MOTOR POSITION
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// send telemetry
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int32_t rpm = -right_motor.read_rpm();
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int32_t rpm = -right_motor.read_rpm();
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int32_t pos = -right_motor.read_angle();
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int32_t pos = -right_motor.read_angle();
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int32_t error = setpoint.velocity * CMS_RPM - rpm;
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int32_t error = setpoint.velocity * CMS_RPM - rpm;
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Serial.print("ff:");
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Serial.print("ff:");
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Serial.print(feedforward_right);
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Serial.print(right_effort);
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Serial.print(",time:");
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Serial.print(",time:");
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Serial.print(time);
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Serial.print(time);
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Serial.print(",distgoal:");
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Serial.print(",distgoal:");
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@ -101,8 +128,16 @@ void loop() {
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Serial.print(error / CMS_RPM);
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Serial.print(error / CMS_RPM);
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Serial.println("");
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Serial.println("");
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// move on if at setpoint TODO: check that the error is low as well
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// total wheel offness in degrees
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if (setpoint.complete) {
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float total_pos_error = abs(pos_err_left) + abs(pos_err_right);
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// move on if at setpoint TODO: give up after timeout
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if (setpoint.complete && total_pos_error < 10.0) {
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// rehome
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left_home += (setpoint.position / DEG_CM);
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right_home += (turnsig * setpoint.position / DEG_CM);
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// zero accumulators
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right_iaccum = 0.0; left_iaccum = 0.0;
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switch (robot_state) {
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switch (robot_state) {
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case FORWARD:
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case FORWARD:
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robot_state = TURN;
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robot_state = TURN;
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