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Andreas Sälinger

1 accepted papers

2022

Learning Synthetic Environments and Reward Networks for Reinforcement Learning

ICLR 2022poster

We introduce Synthetic Environments (SEs) and Reward Networks (RNs), represented by neural networks, as proxy environment models for training Reinforcement Learning (RL) agents. We show that an agent, after being trained exclusively on the SE, is able to solve the corresponding real environment. Whi…