LAPSE:2023.18538
Published Article
LAPSE:2023.18538
Definition of Residential Power Load Profiles Clusters Using Machine Learning and Spatial Analysis
March 8, 2023
Abstract
This study presents a novel approach for discovering actionable knowledge and exploring data-based models from data recorded by household smart meters. The proposed framework is supported by a machine learning architecture based on the application of data mining methods and spatial analysis to extract temporal and spatial restricted clusters of characteristic monthly electricity load profiles. In addition, it uses these clusters to perform short-term load forecasting (1 week) using recurrent neural networks. The approach analyses a database with measurements of 1000 smart meters gathered during 4 years in Guayaquil, Ecuador. Results of the proposed methodology led us to obtain a precise and efficient stratification of typical consumption patterns and to extract neighbour information to improve the performance of residential energy consumption forecasting.
Keywords
energy consumption clustering, load profiles forecasting, Machine Learning, recurrent neural network, smart meter, spatial analysis
Suggested Citation
Flor M, Herraiz S, Contreras I. Definition of Residential Power Load Profiles Clusters Using Machine Learning and Spatial Analysis. (2023). LAPSE:2023.18538
Author Affiliations
Flor M: Institut d’Informatica i Applicacions, Universitat de Girona, 17003 Girona, Spain [ORCID]
Herraiz S: Institut d’Informatica i Applicacions, Universitat de Girona, 17003 Girona, Spain [ORCID]
Contreras I: Institut d’Informatica i Applicacions, Universitat de Girona, 17003 Girona, Spain [ORCID]
Journal Name
Energies
Volume
14
Issue
20
First Page
6565
Year
2021
Publication Date
2021-10-12
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en14206565, Publication Type: Journal Article
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LAPSE:2023.18538
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https://doi.org/10.3390/en14206565
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