Publication | Closed Access
Adaptive Coverage Path Planning Policy for a Cleaning Robot with Deep Reinforcement Learning
15
Citations
13
References
2022
Year
Artificial IntelligencePath PlanningTrajectory PlanningEngineeringDeep Reinforcement LearningAi PlanningCleaning RobotAutomationCoverage Path PlanningIntelligent RoboticsSystems EngineeringPath Planning PolicyComputer ScienceIntelligent SystemsRobot LearningLearning ControlRobotics
This paper presents an adaptive policy for coverage path planning for a cleaning robot in 2D environments based on reinforcement learning. We applied an actor-critic model and a simulator to make a robot learn a path planning policy. In the view of consumer electronics, our objective function is designed to generate the minimum energy path. We used a real cleaning robot called R9 made by LG to evaluate our algorithm. Compared with a rule-based algorithm and other learning-based algorithms, our algorithm is probably more efficient in the view of energy saving.
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