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@ -65,7 +65,6 @@ def main():
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calibrated[i] = False
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wheels = function(arlo, *values[i])
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fraction = max(wheels)/min(wheels)
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print(fraction)
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if fraction <= THRESHOLD:
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calibrated[i] = True
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elif wheels[0] < wheels[1]:
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@ -89,7 +88,6 @@ def main():
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time[2] = int((1000 * cpr * cpc)/(cps[2] * 36))
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# milliseconds per 10 degrees anticlockwise
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time[3] = int((1000 * cpr * cpc)/(cps[3] * 36))
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print(cps)
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values_hex = "-".join(
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[".".join([format(i, "x") for i in v]) for v in values]
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137
robot/arlo.py
Normal file
137
robot/arlo.py
Normal file
@ -0,0 +1,137 @@
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from time import sleep
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from .robot import Robot
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START_VALUES = [60, 60]
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THRESHOLD = 1.05
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SLEEP_TIME = 2
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def test_forward(arlo, l_power, r_power):
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arlo.reset_encoder_counts()
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arlo.go_diff(l_power, r_power, 1, 1)
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sleep(SLEEP_TIME)
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arlo.stop()
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return (
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abs(int(arlo.read_left_wheel_encoder())),
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abs(int(arlo.read_right_wheel_encoder()))
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)
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def test_back(arlo, l_power, r_power):
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arlo.reset_encoder_counts()
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arlo.go_diff(l_power, r_power, 0, 0)
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sleep(SLEEP_TIME)
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arlo.stop()
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return (
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abs(int(arlo.read_left_wheel_encoder())),
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abs(int(arlo.read_right_wheel_encoder()))
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)
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def test_clockwise(arlo, l_power, r_power):
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arlo.reset_encoder_counts()
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arlo.go_diff(l_power, r_power, 1, 0)
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sleep(SLEEP_TIME)
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arlo.stop()
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return (
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abs(int(arlo.read_left_wheel_encoder())),
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abs(int(arlo.read_right_wheel_encoder()))
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)
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def test_anticlockwise(arlo, l_power, r_power):
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arlo.reset_encoder_counts()
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arlo.go_diff(l_power, r_power, 0, 1)
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sleep(SLEEP_TIME)
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arlo.stop()
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return (
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abs(int(arlo.read_left_wheel_encoder())),
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abs(int(arlo.read_right_wheel_encoder()))
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)
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class Arlo():
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def __init__(self, calibration_code = None) -> None:
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self.robot = Robot()
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if calibration_code is None:
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self._calibrate()
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else:
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self.calibration_code = calibration_code
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self._decode_calibration_code()
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def forward(self, distance) -> None:
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left, right = tuple(self.wheel_values[0])
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self.robot.go_diff(left, right, 1, 1)
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sleep((distance * self.timing[0])/1000)
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self.robot.stop()
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def backwards(self, distance) -> None:
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left, right = tuple(self.wheel_values[1])
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self.robot.go_diff(left, right, 0, 0)
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sleep((distance * self.timing[1])/1000)
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self.robot.stop()
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def clockwise(self, angle) -> None:
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left, right = tuple(self.wheel_values[2])
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self.robot.go_diff(left, right, 1, 0)
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sleep((angle * self.timing[2])/1000)
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self.robot.stop()
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def anticlockwise(self, angle) -> None:
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left, right = tuple(self.wheel_values[3])
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self.robot.go_diff(left, right, 0, 1)
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sleep((angle * self.timing[3])/1000)
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self.robot.stop()
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def _decode_calibration_code(self) -> None:
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wheel_values_hex, timing_hex = tuple(self.calibration_code.split("_"))
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self.wheel_values = [
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[int(x, 16) for x in values.split(".")]
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for values in wheel_values_hex.split("-")
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]
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self.timing = [int(x, 16) for x in timing_hex.split("-")]
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def _calibrate(self) -> None:
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values = [START_VALUES.copy() for _ in range(4)]
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cps = [0 for _ in range(4)]
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calibrated = [False for _ in range(4)]
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tests = [
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test_forward,
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test_back,
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test_clockwise,
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test_anticlockwise
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]
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while not all(calibrated):
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print(calibrated, values)
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for i, function in enumerate(tests):
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calibrated[i] = False
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wheels = function(self.robot, *values[i])
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fraction = max(wheels)/min(wheels)
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if fraction <= THRESHOLD:
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calibrated[i] = True
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elif wheels[0] < wheels[1]:
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values[i][0] += 1
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else:
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values[i][1] += 1
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cps[i] = wheels[0]/SLEEP_TIME
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time = [0 for _ in range(4)]
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cpc = 144/(3.14159*15) # wheel counts per cm
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# milliseconds per 10cm forward
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time[0] = int((1000 * cpc)/cps[0])
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# milliseconds per 10cm backwards
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time[1] = int((1000 * cpc)/cps[1])
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cpr = 3.1415*38 # 1 rotation in cm
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# milliseconds per 1 degrees clockwise
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time[2] = int((1000 * cpr * cpc)/(cps[2] * 360))
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# milliseconds per 1 degrees anticlockwise
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time[3] = int((1000 * cpr * cpc)/(cps[3] * 360))
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self.wheel_values = values
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self.timing = time
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values_hex = "-".join(
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[".".join([format(i, "x") for i in v]) for v in values]
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)
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time_hex = "-".join([format(i, "x") for i in time])
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self.calibration_code = f"{values_hex}_{time_hex}"
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