Download code/train/Python/0008640_main.py from Variable-role/sajaniemi_variable_dataset_large: direct link, hf CLI and curl.
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hf download hf://datasets/Variable-role/sajaniemi_variable_dataset_large/code/train/Python/0008640_main.py
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5.39 kB
| from vec import Vec2, vec2_from_direction | |
| import sys | |
| #from sdl2.ext import * | |
| import sdl2.ext as sdl | |
| import sdl2 | |
| import math | |
| import time | |
| import os | |
| import pdb | |
| command_filename = "/tmp/hexsim/command" | |
| START_X_POS = -0.3 | |
| START_Y_POS = 1 | |
| START_ANGLE = -0.2 * math.pi | |
| class Robot: | |
| def __init__(self, sensor_positions): | |
| self.position = Vec2(START_X_POS,START_Y_POS) | |
| self.angle = START_ANGLE | |
| self.sensor_positions = sensor_positions | |
| def set_command_file(): | |
| with open(command_filename, 'w') as cmd_file: | |
| cmd_file.write("0.0,0.0,0.0") | |
| cmd_file.close() | |
| def read_commands(): | |
| """ | |
| Returns a tuple with speed forward, speed left/right and turn speed | |
| """ | |
| with open(command_filename) as txt: | |
| file_content = txt.read() | |
| while len(file_content) == 0: | |
| file_content = txt.read() | |
| split_content = file_content.split(",") | |
| return ( | |
| float(split_content[0]), | |
| float(split_content[1]), | |
| float(split_content[2]) | |
| ) | |
| def add_noise_function(command, function): | |
| command = function(command) | |
| return command | |
| def update_robot(robot, command, delta_time): | |
| forward, strafe, turn = command | |
| robot.position += vec2_from_direction(robot.angle - math.pi/2, forward * delta_time) | |
| robot.position += vec2_from_direction(robot.angle, strafe * delta_time) | |
| robot.angle += turn * delta_time | |
| return robot | |
| WINDOW_SIZE = (1300, 700) | |
| def init_window(): | |
| window = sdl.Window("Hello World!", size=WINDOW_SIZE) | |
| window.show() | |
| return window | |
| def meters_to_pixels(m): | |
| return int(m * 350) | |
| def draw_robot(surface, robot): | |
| pos_x = meters_to_pixels(robot.position.x) + WINDOW_SIZE[0] // 2 | |
| pos_y = meters_to_pixels(robot.position.y) % WINDOW_SIZE[1] | |
| line = ( | |
| pos_x, | |
| pos_y, | |
| pos_x + int(meters_to_pixels(0.10) * math.cos(robot.angle - math.pi / 2)), | |
| pos_y + int(meters_to_pixels(0.10) * math.sin(robot.angle - math.pi / 2)), | |
| pos_x, | |
| pos_y, | |
| pos_x + int(meters_to_pixels(0.05) * math.cos(robot.angle + math.pi / 2)), | |
| pos_y + int(meters_to_pixels(0.05) * math.sin(robot.angle + math.pi / 2)), | |
| pos_x, | |
| pos_y, | |
| pos_x + int(meters_to_pixels(0.05) * math.cos(robot.angle + 0)), | |
| pos_y + int(meters_to_pixels(0.05) * math.sin(robot.angle + 0)), | |
| pos_x, | |
| pos_y, | |
| pos_x + int(meters_to_pixels(0.05) * math.cos(robot.angle - math.pi)), | |
| pos_y + int(meters_to_pixels(0.05) * math.sin(robot.angle - math.pi)) | |
| ) | |
| sdl.line(surface, sdl.Color(255,255,100), line) | |
| def draw(window, robot): | |
| events = sdl.get_events() | |
| for event in events: | |
| if event.type == sdl2.SDL_QUIT: | |
| running = False | |
| break | |
| surface = window.get_surface() | |
| sdl.fill(surface, sdl.Color(0,0,0)) | |
| #Drawing the walls | |
| sdl.line(surface, sdl.Color(255,255,255), | |
| ( | |
| - meters_to_pixels(0.4) + WINDOW_SIZE[0] // 2, 0, | |
| - meters_to_pixels(0.4) + WINDOW_SIZE[0] // 2, WINDOW_SIZE[1], | |
| meters_to_pixels(0.4) + WINDOW_SIZE[0] // 2, 0, | |
| meters_to_pixels(0.4) + WINDOW_SIZE[0] // 2, WINDOW_SIZE[1] | |
| )) | |
| draw_robot(surface, robot) | |
| window.refresh() | |
| def get_senor_position(robot, sensor_pos): | |
| sensor_angle = math.atan2(sensor_pos.y, sensor_pos.x) | |
| sensor_length = abs(sensor_pos) | |
| total_angle = robot.angle + sensor_angle | |
| new_pos = robot.position + vec2_from_direction(total_angle, sensor_length) | |
| return new_pos | |
| def write_sensor_data(robot): | |
| result = "" + str(robot.angle) | |
| for i in range(len(robot.sensor_positions)): | |
| sensor = robot.sensor_positions[i] | |
| sensor_pos = get_senor_position(robot, sensor) | |
| sensor_value = 0 | |
| if i <= 1: | |
| sensor_angle = robot.angle | |
| wall_pos = 0.4 | |
| x_distance = wall_pos - sensor_pos.x | |
| sensor_value = x_distance / math.cos(sensor_angle) | |
| else: | |
| sensor_angle = robot.angle + math.pi | |
| wall_pos = - 0.4 | |
| x_distance = wall_pos - sensor_pos.x | |
| sensor_value = x_distance / math.cos(sensor_angle) | |
| result += "," + str(sensor_value) #+ math.sin(time.time() * 7)/20) | |
| file_path = "/tmp/hexsim/sensors" | |
| with open(file_path, mode="w") as file: | |
| file.write(result) | |
| return result | |
| def set_start_values(): | |
| noise_function = lambda cmd: ( | |
| cmd[0], | |
| cmd[1], #+ math.sin(time.time())/15, | |
| cmd[2] #+ math.sin(time.time() * 3)/15 | |
| ) | |
| return (noise_function, [Vec2(0.1,0.1), Vec2(0.1,-0.1), Vec2(-0.1,0.1), Vec2(-0.1,-0.1)]) | |
| def main(): | |
| set_command_file() | |
| noise_func, sensor_positions = set_start_values() | |
| robot = Robot(sensor_positions) | |
| window = init_window() | |
| old_time = time.time() | |
| while True: | |
| new_time = time.time() | |
| delta_time = new_time - old_time | |
| old_time = new_time | |
| commands = read_commands() | |
| commands = add_noise_function(commands, noise_func) | |
| robot = update_robot(robot, commands, delta_time) | |
| draw(window, robot) | |
| write_sensor_data(robot) | |
| if __name__ == "__main__": | |
| main() | |