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SAFARI: Safe and Active Robot Imitation Learning with Imagination

2020-11-18 23:43:59
Norman Di Palo, Edward Johns

Abstract

One of the main issues in Imitation Learning is the erroneous behavior of an agent when facing out-of-distribution situations, not covered by the set of demonstrations given by the expert. In this work, we tackle this problem by introducing a novel active learning and control algorithm, SAFARI. During training, it allows an agent to request further human demonstrations when these out-of-distribution situations are met. At deployment, it combines model-free acting using behavioural cloning with model-based planning to reduce state-distribution shift, using future state reconstruction as a test for state familiarity. We empirically demonstrate how this method increases the performance on a set of manipulation tasks with respect to passive Imitation Learning, by gathering more informative demonstrations and by minimizing state-distribution shift at test time. We also show how this method enables the agent to autonomously predict failure rapidly and safely.

Abstract (translated)

URL

https://arxiv.org/abs/2011.09586

PDF

https://arxiv.org/pdf/2011.09586.pdf


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