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Daniel Worrall

5 accepted papers

2020

MDP Homomorphic Networks: Group Symmetries in Reinforcement Learning

NeurIPS 2020poster

This paper introduces MDP homomorphic networks for deep reinforcement learning. MDP homomorphic networks are neural networks that are equivariant under symmetries in the joint state-action space of an MDP. Current approaches to deep reinforcement learning do not usually exploit knowledge about such…

2020

SE(3)-Transformers: 3D Roto-Translation Equivariant Attention Networks

NeurIPS 2020poster

We introduce the SE(3)-Transformer, a variant of the self-attention module for 3D point-clouds, which is equivariant under continuous 3D roto-translations. Equivariance is important to ensure stable and predictable performance in the presence of nuisance transformations of the data input. A positive…