211 lines
5.6 KiB
Python
211 lines
5.6 KiB
Python
import math
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class Group:
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def __init__(self, number, points=[]):
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self._points = points
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self._number = number
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self._minX = None
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self._maxX = None
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self._minY = None
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self._maxY = None
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def add_point(self, point):
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self._points.append(point)
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self._update_min_max(point)
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def get_points(self):
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return self._points
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@property
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def number(self):
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return self._number
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@number.setter
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def number(self, number):
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self._number = number
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def _update_min_max(self, new_point):
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"""
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Updates the in and max points for this group.
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This is to determine when assigning groups whether the
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same group is selected.
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"""
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converted_point = convert_lidar_to_cartesian(new_point)
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if self._minX is None or self._minX > converted_point[0]:
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self._minX = converted_point[0]
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if self._maxX is None or self._maxX < converted_point[0]:
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self._maxX = converted_point[0]
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if self._minY is None or self._minY > converted_point[1]:
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self._minY = converted_point[1]
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if self._maxY is None or self._maxY < converted_point[1]:
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self._maxY = converted_point[1]
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def get_minX(self):
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return self._minY
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def get_maxX(self):
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return self._maxY
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def get_minY(self):
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return self._minY
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def get_maxY(self):
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return self._maxY
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def convert_lidar_to_cartesian(new_point):
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x = new_point[2] * math.sin(new_point[1])
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y = new_point[2] * math.cos(new_point[1])
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return (x, y)
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def convert_cartesian_to_lidar(x, y):
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"""
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Converts a point on the grid (with car as the origin) to a lidar tuple (distance, angle)
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Parameters
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----------
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x
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Horizontal component of point to convert.
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y
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Vertical component of point to convert.
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Returns
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-------
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converted
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A tuple (distance, angle) that represents the point. Angle is in degrees.
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"""
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# Angle depends on x/y position.
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# if x is positive and y is positive, then angle = 90 - tan-1(y/x)
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# if x is positive and y is negative, then angle = 90 + tan-1(y/x)
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# if x is negative and y is positive, then angle = 270 + tan-1(y/x)
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# if x is negative and y is negative, then angle = 270 - tan-1(y/x)
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return (math.sqrt(x ** 2 + y ** 2), math.degrees(math.atan(y/x) + (180 if ))
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def calc_groups(scan):
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"""
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Calculates groups of points from a lidar scan. The scan should
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already be sorted.
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Parameters
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----------
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scan: Iterable
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The lidar scan data to get groups of.
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Should be of format: (quality, angle, distance)
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Returns
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-------
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list
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List of groups that were found.
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"""
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prevPoint = None
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currentGroup = None
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allGroups = []
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currentGroupNumber = 0
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# assume the list is already sorted.
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for point in scan:
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if prevPoint is None:
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prevPoint = point
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continue
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# Distances are in mm.
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# within 1cm makes a group. Will need to play around with this.
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if (point[2] - prevPoint[2]) ** 2 < 10 ** 2:
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if currentGroup is None:
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currentGroup = Group(currentGroupNumber)
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allGroups.append(currentGroup)
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currentGroup.add_point(point)
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else:
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if currentGroup is not None:
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currentGroupNumber += 1
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currentGroup = None
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prevPoint = point
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return allGroups
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def find_centre(group):
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"""
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Gets a tuple (x,y) of the centre of the group.
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Parameters
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----------
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group: Group
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A group of points to find the centre of.
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Returns
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-------
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tuple (x,y)
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The centre in the form of a tuple (x,y)
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"""
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return ((group.get_maxX() + group.get_minX()) / 2, (group.get_maxY() + group.get_minY()) / 2)
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def assign_groups(prev_groups, new_groups):
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"""
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Assigns group numbers to a new scan based on the groups of an old scan.
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"""
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for group in prev_groups:
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old_centre = find_centre(group)
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for new_group in new_groups:
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new_centre = find_centre(new_group)
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# They are considered the same if the new group and old group centres are within 5cm.
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if ((new_centre[0] - old_centre[0]) ** 2 + (new_centre[1] - old_centre[1]) ** 2) < 50 ** 2:
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new_group.number = group.number
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return new_groups
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def updateCarVelocity(oldGroup, newGroup):
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"""
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Return a tuple (DistanceChange, AngleChange) indicating how the tracked groups have changed, which can
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be used to then update the steering/throttle of the car (or other vehicle that
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may be used)
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Parameters
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----------
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oldGroup: Group
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The positioning of points for the group in the last scan.
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newGroup: Group
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The positioning of points for the group in the latest scan.
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Returns
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-------
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tuple (DistanceChange, AngleChange)
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A tuple containing how the groups' centres changed in the form (distance,angle)
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"""
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return (find_centre(newGroup))
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def dualServoChange(newCentre, changeTuple):
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"""
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Gets a tuple (throttleChange, steeringChange) indicating the change that should be applied to the current
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throttle/steering of an rc car that uses dual servos.
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Parameters
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---------
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newCentre
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Tuple (distance,angle) of the new centre of the tracked group.
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changeTuple
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Tuple (distanceChange, angleChange) from the old centre to the new centre.
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Returns
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-------
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tuple
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Tuple of (throttleChange, steeringChange) to apply to the 2 servos.
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"""
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return ((changeTuple[0] / 3) - (newCentre[0] / 4) + 1, 0)
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