# SPDX-License-Identifier: MIT # Copyright (c) 2018-2021 The Pybricks Authors """Generic cross-platform module for typical devices like lights, displays, speakers, and batteries.""" from __future__ import annotations from typing import Union, Iterable, overload, Optional, Tuple, Collection, TYPE_CHECKING from .geometry import Matrix, Axis from .parameters import Direction, Stop, Button, Port, Color, Side if TYPE_CHECKING: from .parameters import Number class System: """System control actions for a hub.""" def set_stop_button( self, button: Optional[Union[Button, Iterable[Button]]] ) -> None: """ set_stop_button(button) Sets the button or button combination that stops a running script. Normally, the center button is used to stop a running script. You can change or disable this behavior in order to use the button for other purposes. Arguments: button (Button): A button such as :attr:`Button.CENTER `, or a tuple of multiple buttons. Choose ``None`` to disable the stop button altogether. """ def shutdown(self) -> None: """shutdown() Stops your program and shuts the hub down.""" def reset_reason(self) -> int: """reset_reason() -> int Finds out how and why the hub (re)booted. This can be useful to diagnose some problems. Returns: * ``0`` if the hub was previously powered off normally. * ``1`` if the hub rebooted automatically, like after a firmware update. * ``2`` if the hub previously crashed due to a watchdog timeout, which indicates a firmware issue. """ def name(self) -> str: """name() -> str Gets the hub name. This is the name you see when connecting via Bluetooth. Returns: The hub name. """ @overload def storage(self, offset: int, *, read: int) -> bytes: ... @overload def storage(self, offset: int, *, write: bytes) -> None: ... def storage(self, offset, read=None, write=None): """ storage(self, offset, write=) storage(self, offset, read=) -> bytes Reads or writes binary data to persistent storage. This lets you store data that can be used the next time you run the program. The data will be saved to flash memory when you turn the hub off normally. It will not be saved if the batteries are removed *while* the hub is still running. Once saved, the data will remain available even after you remove the batteries. Args: offset (int): The offset from the start of the user storage memory, in bytes. read (int): The number of bytes to read. Omit this argument when writing. write (bytes): The bytes to write. Omit this argument when reading. Returns: The bytes read if reading, otherwise ``None``. Raises: ValueError: If you try to read or write data outside of the allowed range. """ class DCMotor: """Generic class to control simple motors without rotation sensors, such as train motors.""" def __init__(self, port: Port, positive_direction: Direction = Direction.CLOCKWISE): """__init__(port, positive_direction=Direction.CLOCKWISE) Arguments: port (Port): Port to which the motor is connected. positive_direction (Direction): Which direction the motor should turn when you give a positive duty cycle value. """ def dc(self, duty: Number) -> None: """dc(duty) Rotates the motor at a given duty cycle (also known as "power"). Arguments: duty (Number, %): The duty cycle (-100.0 to 100). """ def stop(self) -> None: """stop() Stops the motor and lets it spin freely. The motor gradually stops due to friction.""" def brake(self) -> None: """brake() Passively brakes the motor. The motor stops due to friction, plus the voltage that is generated while the motor is still moving.""" @overload def settings(self, max_voltage: Number) -> None: ... @overload def settings(self) -> Tuple[int]: ... def settings(self, *args): """ settings(max_voltage) settings() -> Tuple[int] Configures motor settings. If no arguments are given, this returns the current values. Arguments: max_voltage (Number, mV): Maximum voltage applied to the motor during all motor commands. """ class Control: """Class to interact with PID controller and settings.""" scale: int """ Scaling factor between the controlled integer variable and the physical output. For example, for a single motor this is the number of encoder pulses per degree of rotation. """ @overload def limits( self, speed: Optional[Number] = None, acceleration: Optional[Number] = None, torque: Optional[Number] = None, ) -> None: ... @overload def limits(self) -> Tuple[int, int, int]: ... def limits(self, *args): """ limits(speed, acceleration, torque) limits() -> Tuple[int, int, int] Configures the maximum speed, acceleration, and torque. If no arguments are given, this will return the current values. The new ``acceleration`` and ``speed`` limit will become effective when you give a new motor command. Ongoing maneuvers are not affected. Arguments: speed (Number, deg/s or Number, mm/s): Maximum speed. All speed commands will be capped to this value. acceleration (Number, deg/s² or Number, mm/s²): Slope of the speed curve when accelerating or decelerating. Use a tuple to set acceleration and deceleration separately. If one value is given, it is used for both. torque (:ref:`torque`): Maximum feedback torque during control. """ @overload def pid( self, kp: Optional[Number] = None, ki: Optional[Number] = None, kd: Optional[Number] = None, integral_deadzone: Optional[Number] = None, integral_rate: Optional[Number] = None, ) -> None: ... @overload def pid(self) -> Tuple[int, int, int, int, int]: ... def pid(self, *args): """pid(kp, ki, kd, integral_deadzone, integral_rate) pid() -> Tuple[int, int, int, int, int] Gets or sets the PID values for position and speed control. If no arguments are given, this will return the current values. Arguments: kp (int): Proportional position control constant. It is the feedback torque per degree of error: µNm/deg. ki (int): Integral position control constant. It is the feedback torque per accumulated degree of error: µNm/(deg s). kd (int): Derivative position (or proportional speed) control constant. It is the feedback torque per unit of speed: µNm/(deg/s). integral_deadzone (Number, deg or Number, mm): Zone around the target where the error integral does not accumulate errors. integral_rate (Number, deg/s or Number, mm/s): Maximum rate at which the error integral is allowed to grow. """ @overload def target_tolerances( self, speed: Optional[Number] = None, position: Optional[Number] = None ) -> None: ... @overload def target_tolerances(self) -> Tuple[int, int]: ... def target_tolerances(self, *args): """target_tolerances(speed, position) target_tolerances() -> Tuple[int, int] Gets or sets the tolerances that say when a maneuver is done. If no arguments are given, this will return the current values. Arguments: speed (Number, deg/s or Number, mm/s): Allowed deviation from zero speed before motion is considered complete. position (Number, deg or :ref:`distance`): Allowed deviation from the target before motion is considered complete. """ @overload def stall_tolerances( self, speed: Optional[Number] = None, time: Optional[Number] = None ) -> None: ... @overload def stall_tolerances(self) -> Tuple[int, int]: ... def stall_tolerances(self, speed, time): """stall_tolerances(speed, time) stall_tolerances() -> Tuple[int, int] Gets or sets stalling tolerances. If no arguments are given, this will return the current values. Arguments: speed (Number, deg/s or Number, mm/s): If the controller cannot reach this speed for some ``time`` even with maximum actuation, it is stalled. time (Number, ms): How long the controller has to be below this minimum ``speed`` before we say it is stalled. """ class Model: """Class to interact with motor state observer and settings.""" def state(self) -> Tuple[float, float, float, bool]: """state() -> Tuple[float, float, float, bool] Gets the estimated angle, speed, current, and stall state of the motor, using a simulation model that mimics the real motor. These estimates are updated faster than the real measurements, which can be useful when building your own PID controllers. For most applications it is better to used the *measured* :meth:`angle `, :meth:`speed `, :meth:`load `, and :meth:`stall ` state instead. Returns: Tuple with the estimated angle (deg), speed (deg/s), current (mA), and stall state (``True`` or ``False``). """ @overload def settings(self, values: tuple) -> None: ... @overload def settings(self) -> tuple: ... def settings(self, speed, time): """settings(values) settings() -> Tuple Gets or sets model settings as a tuple of integers. If no arguments are given, this will return the current values. This method is mainly used to debug the motor model class. Changing these settings should not be needed in user programs. .. _model settings: https://docs.pybricks.com/projects/pbio/en/latest/struct__pbio__observer__settings__t.html Arguments: values (Tuple): Tuple with `model settings`_. """ class Motor(DCMotor): """Generic class to control motors with built-in rotation sensors.""" control = Control() """The motors use PID control to accurately track the speed and angle targets that you specify. You can change its behavior through the ``control`` attribute of the motor. See :ref:`control` for an overview of available methods.""" model = Model() """Model representing the observer that estimates the motor state.""" def __init__( self, port: Port, positive_direction: Direction = Direction.CLOCKWISE, gears: Optional[Union[Collection[int], Collection[Collection[int]]]] = None, reset_angle: bool = True, profile: Number = None, ): """__init__(port, positive_direction=Direction.CLOCKWISE, gears=None, reset_angle=True, profile=None) Arguments: port (Port): Port to which the motor is connected. positive_direction (Direction): Which direction the motor should turn when you give a positive speed value or angle. gears (list): List of gears linked to the motor. For example: ``[12, 36]`` represents a gear train with a 12-tooth and a 36-tooth gear. Use a list of lists for multiple gear trains, such as ``[[12, 36], [20, 16, 40]]``. When you specify a gear train, all motor commands and settings are automatically adjusted to account for the resulting gear ratio. The motor direction remains unchanged by this. reset_angle (bool): Choose ``True`` to reset the rotation sensor value to the absolute marker angle (between -180 and 179). Choose ``False`` to keep the current value, so your program knows where it left off last time. profile (Number, deg): Precision profile. A lower value means more precise movement; a larger value means smoother movement. If no value is given, a suitable profile for this motor type will be selected automatically. """ def angle(self) -> int: """angle() -> int: deg Gets the rotation angle of the motor. Returns: Motor angle. """ def speed(self, window: Number = 100) -> int: """speed(window=100) -> int: deg/s Gets the speed of the motor. The speed is measured as the change in the motor angle during the given time window. A short window makes the speed value more responsive to motor movement, but less steady. A long window makes the speed value less responsive, but more steady. Arguments: window (Number, ms): The time window used to determine the speed. Returns: Motor speed. """ def stalled(self) -> bool: """stalled() -> bool Checks if the motor is currently stalled. It is stalled when it cannot reach the target speed or position, even with the maximum actuation signal. Returns: ``True`` if the motor is stalled, ``False`` if not. """ def load(self) -> int: """load() -> int: mNm Estimates the load that holds back the motor when it tries to move. Returns: The load torque. """ def reset_angle(self, angle: Optional[Number]) -> None: """ reset_angle(angle) Sets the accumulated rotation angle of the motor to a desired value. Arguments: angle (Number, deg): Value to which the angle should be reset. """ def hold(self) -> None: """hold() Stops the motor and actively holds it at its current angle.""" def run(self, speed: Number) -> None: """run(speed) Runs the motor at a constant speed. The motor accelerates to the given speed and keeps running at this speed until you give a new command. Arguments: speed (Number, deg/s): Speed of the motor. """ def run_time( self, speed: Number, time: Number, then: Stop = Stop.HOLD, wait: bool = True ) -> None: """run_time(speed, time, then=Stop.HOLD, wait=True) Runs the motor at a constant speed for a given amount of time. The motor accelerates to the given speed, keeps running at this speed, and then decelerates. The total maneuver lasts for exactly the given amount of ``time``. Arguments: speed (Number, deg/s): Speed of the motor. time (Number, ms): Duration of the maneuver. then (Stop): What to do after coming to a standstill. wait (bool): Wait for the maneuver to complete before continuing with the rest of the program. """ def run_angle( self, speed: Number, rotation_angle: Number, then: Stop = Stop.HOLD, wait: bool = True, ) -> None: """run_angle(speed, rotation_angle, then=Stop.HOLD, wait=True) Runs the motor at a constant speed by a given angle. Arguments: speed (Number, deg/s): Speed of the motor. rotation_angle (Number, deg): Angle by which the motor should rotate. then (Stop): What to do after coming to a standstill. wait (bool): Wait for the maneuver to complete before continuing with the rest of the program. """ def run_target( self, speed: Number, target_angle: Number, then: Stop = Stop.HOLD, wait: bool = True, ) -> None: """run_target(speed, target_angle, then=Stop.HOLD, wait=True) Runs the motor at a constant speed towards a given target angle. The direction of rotation is automatically selected based on the target angle. It does not matter if ``speed`` is positive or negative. Arguments: speed (Number, deg/s): Speed of the motor. target_angle (Number, deg): Angle that the motor should rotate to. then (Stop): What to do after coming to a standstill. wait (bool): Wait for the motor to reach the target before continuing with the rest of the program. """ def run_until_stalled( self, speed: Number, then: Stop = Stop.COAST, duty_limit: Optional[Number] = None, ) -> int: """ run_until_stalled(speed, then=Stop.COAST, duty_limit=None) -> int: deg Runs the motor at a constant speed until it stalls. Arguments: speed (Number, deg/s): Speed of the motor. then (Stop): What to do after coming to a standstill. duty_limit (Number, %): Duty cycle limit during this command. This is useful to avoid applying the full motor torque to a geared or lever mechanism. If it is ``None``, the duty limit won't be changed during this command. Returns: Angle at which the motor becomes stalled. """ def done(self) -> bool: """done() -> bool Checks if an ongoing command or maneuver is done. Returns: ``True`` if the command is done, ``False`` if not. """ def track_target(self, target_angle: Number) -> None: """track_target(target_angle) Tracks a target angle. This is similar to :meth:`.run_target`, but the usual smooth acceleration is skipped: it will move to the target angle as fast as possible. This method is useful if you want to continuously change the target angle. Arguments: target_angle (Number, deg): Target angle that the motor should rotate to. """ class Speaker: """Plays beeps and sounds using a speaker.""" @overload def volume(self, volume: Number) -> None: ... @overload def volume(self) -> int: ... def volume(self, *args): """volume(volume) volume() -> int: % Gets or sets the speaker volume. If no volume is given, this method returns the current volume. Arguments: volume (Number, %): Volume of the speaker in the 0-100 range. """ def beep(self, frequency: Number = 500, duration: Number = 100) -> None: """beep(frequency=500, duration=100) Play a beep/tone. Arguments: frequency (Number, Hz): Frequency of the beep in the 64-24000 Hz range. duration (Number, ms): Duration of the beep. If the duration is less than 0, then the method returns immediately and the frequency play continues to play indefinitely. """ def play_notes(self, notes: Iterable[str], tempo: Number = 120) -> None: """play_notes(notes, tempo=120) Plays a sequence of musical notes. For example: ``["C4/4", "C4/4", "G4/4", "G4/4"]``. Each note is a string with the following format: - The first character is the name of the note, ``A`` to ``G`` or ``R`` for a rest. - Note names can also include an accidental ``#`` (sharp) or ``b`` (flat). ``B#``/``Cb`` and ``E#``/``Fb`` are not allowed. - The note name is followed by the octave number ``2`` to ``8``. For example ``C4`` is middle C. The octave changes to the next number at the note C, for example, ``B3`` is the note below middle C (``C4``). - The octave is followed by ``/`` and a number that indicates the size of the note. For example ``/4`` is a quarter note, ``/8`` is an eighth note and so on. - This can optionally followed by a ``.`` to make a dotted note. Dotted notes are 1-1/2 times as long as notes without a dot. - The note can optionally end with a ``_`` which is a tie or a slur. This causes there to be no pause between this note and the next note. Arguments: notes (iter): A sequence of notes to be played. tempo (int): Beats per minute. A quarter note is one beat. """ class ColorLight: """Control a multi-color light.""" def on(self, color: Color) -> None: """on(color) Turns on the light at the specified color. Arguments: color (Color): Color of the light. """ def off(self) -> None: """off() Turns off the light.""" def blink(self, color: Color, durations: Collection[Number]) -> None: """blink(color, durations) Blinks the light at a given color by turning it on and off for given durations. The light keeps blinking indefinitely while the rest of your program keeps running. This method provides a simple way to make basic but useful patterns. For more generic and multi-color patterns, use ``animate()`` instead. Arguments: color (Color): Color of the light. durations (list): Sequence of time values of the form ``[on_1, off_1, on_2, off_2, ...]``. """ def animate(self, colors: Collection[Color], interval: Number) -> None: """animate(colors, interval) Animates the light with a sequence of colors, shown one by one for the given interval. The animation runs in the background while the rest of your program keeps running. When the animation completes, it repeats. Arguments: colors (list): Sequence of :class:`Color <.parameters.Color>` values. interval (Number, ms): Time between color updates. """ class LightArray3: """Control an array of three single-color lights.""" def on(self, brightness: Union[Number, Tuple[Number, Number, Number]]) -> None: """on(brightness) Turns on the lights at the specified brightness. Arguments: brightness (Number or tuple, %): Use a single value to set the brightness of all lights at the same time. Use a tuple of three values to set the brightness of each light individually. """ def off(self) -> None: """off() Turns off all the lights.""" class LightArray4(LightArray3): """Control an array of four single-color lights.""" def on( self, brightness: Union[Number, Tuple[Number, Number, Number, Number]] ) -> None: """on(brightness) Turns on the lights at the specified brightness. Arguments: brightness (Number or tuple, %): Use a single value to set the brightness of all lights at the same time. Use a tuple of four values to set the brightness of each light individually. The order of the lights is shown in the image above. """ class LightMatrix: """Control a rectangular grid of single-color lights.""" def __init__(self, rows: int, columns: int): """LightMatrix(rows, columns) Initializes the light matrix display. Arguments: rows (int): Number of rows in the grid columns (int): Number of columns in the grid """ def orientation(self, up: Side) -> None: """orientation(up) Sets the orientation of the light matrix display. Only new displayed images and pixels are affected. The existing display contents remain unchanged. Arguments: top (Side): Which side of the light matrix display is "up" in your design. Choose ``Side.TOP``, ``Side.LEFT``, ``Side.RIGHT``, or ``Side.BOTTOM``. """ def icon(self, icon: Matrix) -> None: """icon(icon) Displays an icon, represented by a matrix of :ref:`brightness` values. Arguments: icon (Matrix): Matrix of intensities (:ref:`brightness`). A 2D list is also accepted. """ def animate(self, matrices: Collection[Matrix], interval: Number) -> None: """animate(matrices, interval) Displays an animation made using a list of images. Each image has the same format as above. Each image is shown for the given interval. The animation repeats forever while the rest of your program keeps running. Arguments: matrices (iter): Sequence of :class:`Matrix ` of intensities. interval (Number, ms): Time to display each image in the list. """ def pixel(self, row: Number, column: Number, brightness: Number = 100) -> None: """pixel(row, column, brightness=100) Turns on one pixel at the specified brightness. Arguments: row (Number): Vertical grid index, starting at 0 from the top. column (Number): Horizontal grid index, starting at 0 from the left. brightness (Number :ref:`brightness`): Brightness of the pixel. """ def off(self) -> None: """off() Turns off all the pixels.""" def number(self, number: Number) -> None: """number(number) Displays a number in the range -99 to 99. A minus sign (``-``) is shown as a faint dot in the center of the display. Numbers greater than 99 are shown as ``>``. Numbers less than -99 are shown as ``<``. Arguments: number (int): The number to be displayed. """ def char(self, char: str) -> None: """char(char) Displays a character or symbol on the light grid. This may be any letter (``a``--``z``), capital letter (``A``--``Z``) or one of the following symbols: ``!"#$%&'()*+,-./:;<=>?@[\\]^_`{|}``. Arguments: character (str): The character or symbol to be displayed. """ def text(self, text: str, on: Number = 500, off: Number = 50) -> None: """text(text, on=500, off=50) Displays a text string, one character at a time, with a pause between each character. After the last character is shown, all lights turn off. Arguments: text (str): The text to be displayed. on (Number, ms): For how long a character is shown. off (Number, ms): For how long the display is off between characters. """ class Keypad: """Get status of buttons on a keypad layout.""" def __init__(self, active_buttons): ... def pressed(self) -> Collection[Button]: """pressed() -> Collection[Button] Checks which buttons are currently pressed. Returns: Set of pressed buttons. """ class Battery: """Get the status of a battery.""" def voltage(self) -> int: """voltage() -> int: mV Gets the voltage of the battery. Returns: Battery voltage. """ def current(self) -> int: """current() -> int: mA Gets the current supplied by the battery. Returns: Battery current. """ class Charger: """Get the status of a battery charger.""" def connected(self) -> bool: """connected() -> bool Checks whether a charger is connected via USB. Returns: ``True`` if a charger is connected, ``False`` if not. """ def status(self) -> int: """status() -> int Gets the status of the battery charger, represented by one of the following values. This corresponds to the battery light indicator right next to the USB port. 0. Not charging (light is off). 1. Charging (light is red). 2. Charging is complete (light is green). 3. There is a problem with the charger (light is yellow). Returns: Status value. """ def current(self) -> int: """current() -> int: mA Gets the charging current. Returns: Charging current. """ class SimpleAccelerometer: """Get measurements from an accelerometer.""" def acceleration(self) -> Tuple[int, int, int]: """acceleration() -> Tuple[int, int, int]: mm/s² Gets the acceleration of the device. Returns: Acceleration along all three axes. """ def up(self) -> Side: """up() -> Side Checks which side of the hub currently faces upward. Returns: ``Side.TOP``, ``Side.BOTTOM``, ``Side.LEFT``, ``Side.RIGHT``, ``Side.FRONT`` or ``Side.BACK``. """ class Accelerometer(SimpleAccelerometer): """Get measurements from an accelerometer.""" @overload def acceleration(self, axis: Axis) -> float: ... @overload def acceleration(self) -> Matrix: ... def acceleration(self, *args): """ acceleration(axis) -> float: mm/s² acceleration() -> vector: mm/s² Gets the acceleration of the device along a given axis in the :ref:`robot reference frame `. Arguments: axis (Axis): Axis along which the acceleration should be measured. Returns: Acceleration along the specified axis. If you specify no axis, this returns a vector of accelerations along all axes. """ def tilt(self) -> Tuple[int, int]: """tilt() -> Tuple[int, int] Gets the pitch and roll angles. This is relative to the :ref:`user-specified neutral orientation `. The order of rotation is pitch-then-roll. This is equivalent to a positive rotation along the robot y-axis and then a positive rotation along the x-axis. Returns: Tuple of pitch and roll angles in degrees. """ class IMU(Accelerometer): def ready(self) -> bool: """ready() -> bool Checks if the device is calibrated and ready for use. This becomes ``True`` when the robot has been sitting stationary for a few seconds, which allows the device to re-calibrate. It is ``False`` if the hub has just been started, or if it hasn't had a chance to calibrate for more than 10 minutes. Returns: ``True`` if it is ready for use, ``False`` if not. """ def stationary(self) -> bool: """stationary() -> bool Checks if the device is currently stationary (not moving). Returns: ``True`` if stationary for at least a second, ``False`` if it is moving. """ @overload def settings( self, angular_velocity_threshold: float = None, acceleration_threshold: float = None, ) -> None: ... @overload def settings(self) -> Tuple[float, float]: ... def settings(self, *args): """ settings(angular_velocity_threshold, acceleration_threshold) settings() -> Tuple[float, float] Configures the IMU settings. If no arguments are given, this returns the current values. The ``angular_velocity_threshold`` and ``acceleration_threshold`` define when the hub is considered stationary. If all measurements stay below these thresholds for one second, the IMU will recalibrate itself. In a noisy room with high ambient vibrations (such as a competition hall), it is recommended to increase the thresholds slightly to give your robot the chance to calibrate. To verify that your settings are working as expected, test that the ``stationary()`` method gives ``False`` if your robot is moving, and ``True`` if it is sitting still for at least a second. Arguments: angular_velocity_threshold (Number, deg/s): The threshold for angular velocity. The default value is 1.5 deg/s. acceleration_threshold (Number, mm/s²): The threshold for angular velocity. The default value is 250 mm/s². """ def heading(self) -> float: """heading() -> float: deg Gets the heading angle relative to the starting orientation. It is a positive rotation around the :ref:`z-axis in the robot frame `, prior to applying any tilt rotation. For a vehicle viewed from the top, this means that a positive heading value corresponds to a counterclockwise rotation. The heading value continously increments as the robot keeps turning. It does *not* wrap around after reaching 180 degrees. .. note:: *For now, this method only keeps track of the heading while the robot is on a flat surface.* This means that the value is no longer correct if you lift it from the table. To solve this, you can call ``reset_heading`` to reset the heading to a known value *after* you put it back down. For example, you could align your robot with the side of the competition table and reset the heading 90 degrees as the new starting point. Returns: Heading angle relative to starting orientation. """ def reset_heading(self, angle: Number) -> None: """reset_heading(angle) Resets the accumulated heading angle of the robot. Arguments: angle (Number, deg): Value to which the heading should be reset. """ @overload def angular_velocity(self, axis: Axis) -> float: ... @overload def angular_velocity(self) -> Matrix: ... def angular_velocity(self, *args): """ angular_velocity(axis) -> float: deg/s angular_velocity() -> vector: deg/s Gets the angular velocity of the device along a given axis in the :ref:`robot reference frame `. Arguments: axis (Axis): Axis along which the angular velocity should be measured. Returns: Angular velocity along the specified axis. If you specify no axis, this returns a vector of accelerations along all axes. """ def rotation(self, axis: Axis) -> float: """ rotation(axis) -> float: deg Gets the rotation of the device along a given axis in the :ref:`robot reference frame `. This value is useful if your robot *only* rotates along the requested axis. For general three-dimensional motion, use the ``orientation()`` method instead. The value starts counting from ``0`` when you initialize this class. Arguments: axis (Axis): Axis along which the rotation should be measured. Returns: The rotation angle. """ def orientation(self) -> Matrix: """ orientation() -> Matrix Gets the three-dimensional orientation of the robot in the :ref:`robot reference frame `. It returns a rotation matrix whose columns represent the ``X``, ``Y``, and ``Z`` axis of the robot. .. note:: This method is not yet implemented. Returns: The rotation matrix. """ class CommonColorSensor: """Generic color sensor that supports Pybricks color calibration.""" def __init__(self, port: Port): """__init__(port) Arguments: port (Port): Port to which the sensor is connected. """ def color(self) -> Color: """color() -> Color Scans the color of a surface. You choose which colors are detected using the ``detectable_colors()`` method. By default, it detects ``Color.RED``, ``Color.YELLOW``, ``Color.GREEN``, ``Color.BLUE``, ``Color.WHITE``, or ``Color.NONE``. Returns: Detected color. """ def hsv(self) -> Color: """hsv() -> Color Scans the color of a surface. This method is similar to ``color()``, but it gives the full range of hue, saturation and brightness values, instead of rounding it to the nearest detectable color. Returns: Measured color. The color is described by a hue (0--359), a saturation (0--100), and a brightness value (0--100). """ def ambient(self) -> int: """ambient() -> int: % Measures the ambient light intensity. Returns: Ambient light intensity, ranging from 0% (dark) to 100% (bright). """ def reflection(self) -> int: """reflection() -> int: % Measures how much a surface reflects the light emitted by the sensor. Returns: Measured reflection, ranging from 0% (no reflection) to 100% (high reflection). """ @overload def detectable_colors(self, colors: Collection[Color]) -> None: ... @overload def detectable_colors(self) -> Collection[Color]: ... def detectable_colors(self, *args): """ detectable_colors(colors) detectable_colors() -> Collection[Color] Configures which colors the ``color()`` method should detect. Specify only colors that you wish to detect in your application. This way, the full-color measurements are rounded to the nearest desired color, and other colors are ignored. This improves reliability. If you give no arguments, the currently chosen colors will be returned. Arguments: colors (list or tuple): List of :class:`Color <.parameters.Color>` objects: the colors that you want to detect. You can pick standard colors such as ``Color.MAGENTA``, or provide your own colors like ``Color(h=348, s=96, v=40)`` for even better results. You measure your own colors with the ``hsv()`` method. """ class AmbientColorSensor(CommonColorSensor): """Like CommonColorSensor, but also detects ambient colors when the sensor light is turned off""" def color(self, surface: bool = True) -> Optional[Color]: """color(surface=True) -> Color Scans the color of a surface or an external light source. You choose which colors are detected using the ``detectable_colors()`` method. By default, it detects ``Color.RED``, ``Color.YELLOW``, ``Color.GREEN``, ``Color.BLUE``, ``Color.WHITE``, or ``Color.NONE``. Arguments: surface (bool): Choose ``true`` to scan the color of objects and surfaces. Choose ``false`` to scan the color of screens and other external light sources. Returns: Detected color.` """ def hsv(self, surface: bool = True) -> Color: """hsv(surface=True) -> Color Scans the color of a surface or an external light source. This method is similar to ``color()``, but it gives the full range of hue, saturation and brightness values, instead of rounding it to the nearest detectable color. Arguments: surface (bool): Choose ``true`` to scan the color of objects and surfaces. Choose ``false`` to scan the color of screens and other external light sources. Returns: Measured color. The color is described by a hue (0--359), a saturation (0--100), and a brightness value (0--100). """