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Belief State Planning for Autonomous Driving
Constantin Hubmann
2021
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This work presents a behavior planning algorithm for automated driving in urban environments with an uncertain and dynamic nature. The algorithm allows to consider the prediction uncertainty (e.g. different intentions), perception uncertainty (e.g. occlusions) as well as the uncertain interactive behavior of the other agents explicitly. Simulating the most likely future scenarios allows to find an optimal policy online that enables non-conservative planning under uncertainty.
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Keywords
- autonomes Fahren
- Autonomous driving
- Behavior Planning
- Decision making
- Entscheidungsfindung
- Interactive Planning
- Interaktion
- Mechanical engineering & materials
- Technology, engineering, agriculture
- trajectory planning
- Trajektorienplanung
- Verhaltensgenerierung