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Lukas Hermann

4 accepted papers

2022

Affordance Learning from Play for Sample-Efficient Policy Learning

ICRA 2022poster

Robots operating in human-centered environments should have the ability to understand how objects function: what can be done with each object, where this interaction may occur, and how the object is used to achieve a goal. To this end, we propose a novel approach that extracts a self-supervised visu…

Cited by 45SourcecodeScholar
2020

Adaptive Curriculum Generation from Demonstrations for Sim-to-Real Visuomotor Control

ICRA 2020poster

We propose Adaptive Curriculum Generation from Demonstrations (ACGD) for reinforcement learning in the presence of sparse rewards. Rather than designing shaped reward functions, ACGD adaptively sets the appropriate task difficulty for the learner by controlling where to sample from the demonstration…

Cited by 31SourceScholar
2020

Hindsight for Foresight: Unsupervised Structured Dynamics Models from Physical Interaction

IROS 2020poster

A key challenge for an agent learning to interact with the world is to reason about physical properties of objects and to foresee their dynamics under the effect of applied forces. In order to scale learning through interaction to many objects and scenes, robots should be able to improve their own p…

Cited by 20SourceScholar