A Scoping Review of Energy Load Disaggregation

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Abstract

Energy load disaggregation can contribute to balancing power grids by enhancing the effectiveness of demand-side management and promoting electricity-saving behavior through increased consumer awareness. However, the field currently lacks a comprehensive overview. To address this gap, this paper conducts a scoping review of load disaggregation domains, data types, and methods, by assessing 72 full-text journal articles. The findings reveal that domestic electricity consumption is the most researched area, while others, such as industrial load disaggregation, are rarely discussed. The majority of research uses relatively low-frequency data, sampled between 1 and 60 s. A wide variety of methods are used, and artificial neural networks are the most common, followed by optimization strategies, Hidden Markov Models, and Graph Signal Processing approaches.

Original languageEnglish
Title of host publicationProgress in Artificial Intelligence - 22nd EPIA Conference on Artificial Intelligence, EPIA 2023, Proceedings : 22nd EPIA Conference on Artificial Intelligence, EPIA 2023, Faial Island, Azores, September 5–8, 2023, Proceedings, Part II
EditorsNuno Moniz, Zita Vale, José Cascalho, Catarina Silva, Raquel Sebastião
Volume2
PublisherSpringer
Publication date2023
Pages209–221
ISBN (Print)978-3-031-49010-1
ISBN (Electronic)978-3-031-49011-8
DOIs
Publication statusPublished - 2023
EventThe 22nd Portuguese conference on artificial intelligence -
Duration: 5. Sept 20238. Sept 2023

Conference

ConferenceThe 22nd Portuguese conference on artificial intelligence
Period05/09/202308/09/2023
SeriesLecture Notes in Computer Science
Volume14116
ISSN0302-9743

Keywords

  • Energy load disaggregation
  • scoping review
  • load disaggregation methods
  • data and data source
  • Scoping review
  • Data and data source
  • Load disaggregation methods

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