‘On-Robot Bayesian Reinforcement Learning for POMDPs’

“Robot learning is often difficult due to the expense of gathering data. The need for large amounts of data can, and should, be tackled with effective algorithms and leveraging expert information on robot dynamics. Bayesian reinforcement learning (BRL), thanks to its sample efficiency and ability to exploit prior knowledge, is uniquely positioned as such a solution method. Unfortunately, the application of BRL has been limited due to the difficulties of representing expert knowledge. … This paper advances BRL for robotics by proposing a specialized framework for physical systems.”

Find the paper and full list of authors at ArXiv.

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