2022
DOI: 10.20944/preprints202208.0104.v1
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Reinforcement Learning: Theory and Applications in HEMS

Abstract: The twin capabilities of learning from experience and learning at higher levels of abstraction, set reinforcement learning apart from other areas of machine learning and (within the broader context) all of artificial intelligence. It allows algorithmic agents to replace human beings in the real world, including in homes and buildings, in application domains that had hitherto been considered to be beyond today’s capabilities. This goal, specifically aimed at home energy automation that forms the backdrop of thi… Show more

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