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Designing a generalised reward for Building Energy Management Reinforcement Learning agents

Producción científica: Capítulo del libro/informe/acta de congresoContribución a la conferenciarevisión exhaustiva

Resumen

The reduction of the carbon footprint of buildings is a challenging task, partly due to the conflicting goals of maximising occupant comfort and minimising energy consumption. An intelligent management of Heating, Ventilation and Air Conditioning (HVAC) systems is creating a promising research line in which the creation of suitable algorithms could reduce energy consumption maintaining occupants' comfort. In this regard, Reinforcement Learning (RL) approaches are giving a good balance between data requirements and intelligent operations to control building systems. However, there is a gap concerning how to create a generalised reward signal that can train RL agents without delimiting the problem to a specific or controlled scenario. To tackle it, an analysis and discussion is presented about the necessary requirements for the creation of generalist rewards, with the objective of laying the foundations that allow the creation of generalist intelligent agents for building energy management.
Idioma originalInglés
Título de la publicación alojadaunknown
EditoresPetar Solic, Sandro Nizetic, Joel J. P. C. Rodrigues, Joel J.P.C. Rodrigues, Diego Lopez-de-Ipina Gonzalez-de-Artaza, Toni Perkovic, Luca Catarinucci, Luigi Patrono
EditorialIEEE
Páginas1-6
Número de páginas6
ISBN (versión digital)978-9-5329-0112-2, 9789532901122
ISBN (versión impresa)978-1-6654-4202-2, 978-953-290-112-2
DOI
EstadoPublicada - 8 sept 2021
Evento6th International Conference on Smart and Sustainable Technologies, SpliTech 2021 - Bol and Split, Croacia
Duración: 8 sept 202111 sept 2021

Serie de la publicación

Nombre2021 6th International Conference on Smart and Sustainable Technologies, SpliTech 2021

Conferencia

Conferencia6th International Conference on Smart and Sustainable Technologies, SpliTech 2021
País/TerritorioCroacia
CiudadBol and Split
Período8/09/2111/09/21

ODS de las Naciones Unidas

Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible

  1. ODS 7: Energía asequible y no contaminante
    ODS 7: Energía asequible y no contaminante
  2. ODS 12: Producción y consumo responsables
    ODS 12: Producción y consumo responsables
  3. ODS 13: Acción por el clima
    ODS 13: Acción por el clima

Palabras clave

  • Reinforcement learning
  • Reward
  • Generalised
  • Building
  • Energy efficiency
  • HVAC

Project and Funding Information

  • Funding Info
  • The work described in this paper was partially supported by the Basque Government under ELKARTEK project (LANTEGI4.0 KK-2020/00072).
  • Project ID
  • LANTEGI4.0 KK-2020/00072

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