Learning When to Drive in Intersections by Combining Reinforcement Learning and Model Predictive Control

August 01, 2019 Β· Declared Dead Β· πŸ› International Conference on Intelligent Transportation Systems

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Authors Tommy Tram, Ivo Batkovic, Mohammad Ali, Jonas SjΓΆberg arXiv ID 1908.00177 Category cs.RO: Robotics Cross-listed cs.AI, cs.LG, eess.SY, stat.ML Citations 35 Venue International Conference on Intelligent Transportation Systems Last Checked 6 months ago
Abstract
In this paper, we propose a decision making algorithm intended for automated vehicles that negotiate with other possibly non-automated vehicles in intersections. The decision algorithm is separated into two parts: a high-level decision module based on reinforcement learning, and a low-level planning module based on model predictive control. Traffic is simulated with numerous predefined driver behaviors and intentions, and the performance of the proposed decision algorithm was evaluated against another controller. The results show that the proposed decision algorithm yields shorter training episodes and an increased performance in success rate compared to the other controller.
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