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Title:

High-level Decision Making for Safe and Reasonable Autonomous Lane Changing using Reinforcement Learning

Document type:
Konferenzbeitrag
Author(s):
Branka Mirchevska, Christian Pek, Moritz Werling, Matthias Althoff, Joschka Boedecker
Abstract:
Machine learning techniques have been shown to outperform many rule-based systems for the decision-making of autonomous vehicles. However, applying machine learning is challenging due to the possibility of executing unsafe actions and slow learning rates. We address these issues by presenting a reinforcement learning-based approach, which is combined with formal safety verification to ensure that only safe actions are chosen at any time. We let a deep reinforcement learning (RL) agent learn to d...     »
Book / Congress title:
Proc. of the IEEE Int. Conf. on Intelligent Transportation Systems
Year:
2018
Pages:
2156-2162
Fulltext / DOI:
doi:10.1109/ITSC.2018.8569448
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