Energy optimization associated with thermal comfort and indoor air control via a deep reinforcement learning algorithm

The aim of this work is to propose an artificial intelligence algorithm that maintains thermal comfort and air quality within optimal levels while consuming the least amount of energy from air-conditioning units and ventilation fans. The proposed algorithm is first trained with 10 years of simulated...

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Bibliographic Details
Published in:Building and environment Vol. 155; pp. 105 - 117
Main Authors: Valladares, William, Galindo, Marco, Gutiérrez, Jorge, Wu, Wu-Chieh, Liao, Kuo-Kai, Liao, Jen-Chung, Lu, Kuang-Chin, Wang, Chi-Chuan
Format: Journal Article
Language:English
Published: Oxford Elsevier Ltd 15-05-2019
Elsevier BV
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Online Access:Get full text
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