Download code/train/Python/0002293_simulator.py from Variable-role/sajaniemi_variable_dataset_large: direct link, hf CLI and curl.
- Browser
- Download file 5.89 kB
-
https://huggingface.co/datasets/Variable-role/sajaniemi_variable_dataset_large/resolve/main/code/train/Python/0002293_simulator.py
- Command line
-
hf download hf://datasets/Variable-role/sajaniemi_variable_dataset_large/code/train/Python/0002293_simulator.py
-
curl -L -o 0002293_simulator.py https://huggingface.co/datasets/Variable-role/sajaniemi_variable_dataset_large/resolve/main/code/train/Python/0002293_simulator.py
5.89 kB
| from __future__ import absolute_import | |
| from soar.brain.templates import * | |
| from soar.main.common import * | |
| from soar.gui.robot import parse_map,transform | |
| import soar.gui.robot_model as model | |
| import soar.main.client as client | |
| import soar.pioneer.geometry as geom | |
| from getopt import getopt | |
| from threading import Event | |
| from math import pi,sin,cos | |
| import time | |
| import sys | |
| # Simulator limits | |
| MAX_V = 0.75 | |
| MAX_OMEGA = pi/2. | |
| MIN_SONAR_RANGE = 0.05 | |
| MAX_SONAR_RANGE = 1.5 | |
| class RobotStatus(RobotIO): | |
| def __init__(self,initial=(0,0,0),port=0): | |
| self.port = port | |
| self.v = 0.0 | |
| self.omega = 0.0 | |
| self.voltage = 0.0 | |
| self.position = (0,0,0) | |
| self.colliding = False | |
| self.initial = initial | |
| self.paused = Event() | |
| self.stop = Event() | |
| client.subscribe(SPEED_TOPIC(port),self.setForward) | |
| client.subscribe(OMEGA_TOPIC(port),self.setRotational) | |
| client.subscribe(VOLTAGE_TOPIC(port),self.setVoltage) | |
| client.subscribe(BRAIN_MSG,self.brain_background) | |
| client.subscribe(SIM_MSG,self.brain_background) | |
| client.subscribe(SIM_STEP_MSG,self.step) | |
| def setForward(self,v): | |
| assert isinstance(v,numbers), "Forward velocity should be number" | |
| self.v = max(-MAX_V,min(MAX_V,v)) | |
| def setRotational(self,omega): | |
| assert isinstance(omega,numbers), "Rotational velocity should be number" | |
| self.omega = max(-MAX_OMEGA,min(MAX_OMEGA, omega)) | |
| def setVoltage(self,v): | |
| assert isinstance(v,numbers), "Voltage should be number" | |
| self.voltage = max(-10.,min(10,v)) | |
| def setEnvironment(self,walls,w,h): | |
| self.walls = [] | |
| limits = [(0,0,w,0),(w,0,w,h),(w,h,0,h),(0,h,0,0)] | |
| for (x1,y1,x2,y2) in walls+limits: | |
| self.walls.append(geom.Segment(geom.Point(x1,y1),geom.Point(x2,y2))) | |
| def step(self,dt,expect_paused=True): | |
| client.message(INITIAL_TOPIC(self.port),self.initial) | |
| if expect_paused and (not self.paused.is_set()): | |
| return | |
| x,y,theta = self.position | |
| x += self.v*cos(theta)*dt | |
| y += self.v*sin(theta)*dt | |
| theta += self.omega*dt | |
| ix,iy,itheta = self.initial | |
| # Check if we are colliding. | |
| # Build robot segments | |
| robot_segments = [] | |
| px,py = transform((ix,iy,itheta),(x,y)) | |
| pos = (px,py,itheta+theta-pi/2.) | |
| robot_points = (transform(pos,point) for point in model.points) | |
| prev = None | |
| first = None | |
| for p in robot_points: | |
| if prev is not None: | |
| robot_segments.append(geom.Segment(geom.Point(*prev),geom.Point(*p))) | |
| else: | |
| first = p | |
| prev = p | |
| robot_segments.append(geom.Segment(geom.Point(*prev),geom.Point(*first))) | |
| for w in self.walls: | |
| self.colliding = any(r.intersects(w) for r in robot_segments) | |
| if self.colliding: | |
| break | |
| # If we are, then don't move. | |
| client.message(COLLIDES_TOPIC(self.port),self.colliding) | |
| if not self.colliding: | |
| self.position = (x,y,theta) | |
| client.message(POSITION_TOPIC(self.port),self.position) | |
| # Calculate sonars, and send them. | |
| sonars = {} | |
| # Create sonar beams in [MIN_SONAR_RANGE,MAX_SONAR_RANGE] | |
| # Then find the walls it collides with, and choose the nearest one. | |
| x,y,theta = self.position | |
| px,py = transform((ix,iy,itheta),(x,y)) | |
| pos = (px,py,itheta+theta) | |
| for i,(sx,sy,stheta) in enumerate(model.sonar_poses): | |
| (x,y) = transform(pos,(sx,sy)) | |
| origin = (x,y,itheta+theta+stheta) | |
| p1 = geom.Point(*transform(origin,(MIN_SONAR_RANGE,0))) | |
| p2 = geom.Point(*transform(origin,(MAX_SONAR_RANGE,0))) | |
| beam = geom.Segment(p1,p2) | |
| intersects = (beam.intersection_point(w) for w in self.walls) | |
| intersects = (i for i in intersects if i is not None) | |
| ranges = (p1.distance(i) for i in intersects) | |
| try: | |
| r = min(ranges) | |
| r = int((r+MIN_SONAR_RANGE)*1000) # This is what the robot sends | |
| except ValueError: # No intersections | |
| r = None | |
| sonars[i] = r | |
| client.message(SONARS_TOPIC(self.port),sonars) | |
| def brain_background(self,msg): | |
| assert not self.stop.is_set(), "The simulator is terminated" | |
| assert msg in (PAUSE_MSG,CONTINUE_MSG,STEP_MSG,CLOSE_MSG), "Message not recognized" | |
| if msg == PAUSE_MSG: | |
| self.paused.set() | |
| elif msg == CONTINUE_MSG: | |
| if self.paused.is_set(): | |
| self.paused.clear() | |
| Thread(target=self.go).start() | |
| elif msg == STEP_MSG: | |
| pass # Ignore | |
| elif msg == CLOSE_MSG: | |
| self.stop.set() | |
| client.terminate() | |
| def go(self): | |
| t0 = time.time() | |
| while not (self.paused.is_set() or self.stop.is_set()): | |
| t1 = time.time() | |
| self.step(t1-t0,expect_paused=False) | |
| t0 = t1 | |
| time.sleep(max(0,0.02-(time.time()-t0))) | |
| def main(argv): | |
| global status | |
| map_file = None | |
| port = 0 | |
| initial = (0,0,0) | |
| opts,args = getopt(argv[1:],"p:i:m:",["port=","initial=","map="]) | |
| for opt,arg in opts: | |
| if opt in ("-p","--port"): | |
| port = eval(arg) | |
| if opt in ("-i","--initial"): | |
| initial = eval(arg) | |
| if opt in ("-m","--map"): | |
| map_file = arg | |
| w,h = 7.,7. | |
| initial = w/2.,h/2.,0. | |
| walls = [] | |
| if map_file is not None: | |
| (w,h),walls,initial = parse_map(map_file) | |
| status = RobotStatus(initial,port) | |
| status.setEnvironment(walls,w,h) | |
| status.paused.set() | |
| status.step(0) # For position, etc. | |
| client.keep_alive() | |
| return 0 | |
| if __name__ == "__main__": | |
| sys.exit(main(sys.argv)) | |