Safe, Efficient, Comfort, and Energy-saving Automated Driving through Roundabout Based on Deep Reinforcement Learning

CoRR(2023)

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Abstract
Traffic scenarios in roundabouts pose substantial complexity for automated driving. Manually mapping all possible scenarios into a state space is labor-intensive and challenging. Deep reinforcement learning (DRL) with its ability to learn from interacting with the environment emerges as a promising solution for training such automated driving models. This study explores, employs, and implements various DRL algorithms, namely Deep Deterministic Policy Gradient (DDPG), Proximal Policy Optimization (PPO), and Trust Region Policy Optimization (TRPO) to instruct automated vehicles' driving through roundabouts. The driving state space, action space, and reward function are designed. The reward function considers safety, efficiency, comfort, and energy consumption to align with real-world requirements. All three tested DRL algorithms succeed in enabling automated vehicles to drive through the roundabout. To holistically evaluate the performance of these algorithms, this study establishes an evaluation methodology considering multiple indicators such as safety, efficiency, and comfort level. A method employing the Analytic Hierarchy Process is also developed to weigh these evaluation indicators. Experimental results on various testing scenarios reveal that the TRPO algorithm outperforms DDPG and PPO in terms of safety and efficiency, and PPO performs best in terms of comfort level. Lastly, to verify the model's adaptability and robustness regarding other driving scenarios, this study also deploys the model trained by TRPO to a range of different testing scenarios, e.g., highway driving and merging. Experimental results demonstrate that the TRPO model trained on only roundabout driving scenarios exhibits a certain degree of proficiency in highway driving and merging scenarios. This study provides a foundation for the application of automated driving with DRL in real traffic environments.
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Key words
Deep Learning,Deep Reinforcement Learning,Energy Consumption,State Space,Comfort Level,Optimal Policy,Reward Function,Analytic Hierarchy Process,Automated Vehicles,Deep Reinforcement Learning Algorithm,Level Of Energy Consumption,Proximal Policy Optimization,Degree Of Proficiency,Neural Network,Performance Indicators,Test Scores,Convergence Rate,Long Short-term Memory,Multilayer Perceptron,Continuous Action,Discrete Action,Deep Q-network,Lane Change,Autonomous Vehicles,Speed Limit,Hyperparameter Tuning,Value Of Vehicle,AlphaGo,Continuous Action Space,Simulation Test
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