LAPSE:2023.22330
Published Article
LAPSE:2023.22330
Big Data for Energy Management and Energy-Efficient Buildings
March 24, 2023
European buildings are producing a massive amount of data from a wide spectrum of energy-related sources, such as smart meters’ data, sensors and other Internet of things devices, creating new research challenges. In this context, the aim of this paper is to present a high-level data-driven architecture for buildings data exchange, management and real-time processing. This multi-disciplinary big data environment enables the integration of cross-domain data, combined with emerging artificial intelligence algorithms and distributed ledgers technology. Semantically enhanced, interlinked and multilingual repositories of heterogeneous types of data are coupled with a set of visualization, querying and exploration tools, suitable application programming interfaces (APIs) for data exchange, as well as a suite of configurable and ready-to-use analytical components that implement a series of advanced machine learning and deep learning algorithms. The results from the pilot application of the proposed framework are presented and discussed. The data-driven architecture enables reliable and effective policymaking, as well as supports the creation and exploitation of innovative energy efficiency services through the utilization of a wide variety of data, for the effective operation of buildings.
Keywords
Big Data, data-driven architecture, decision support, energy management, energy services, energy-efficient buildings
Suggested Citation
Marinakis V. Big Data for Energy Management and Energy-Efficient Buildings. (2023). LAPSE:2023.22330
Author Affiliations
Marinakis V: Decision Support Systems Laboratory, School of Electrical and Computer Engineering, National Technical University of Athens, 9 Heroon Polytechniou str., 15773 Athens, Greece [ORCID]
Journal Name
Energies
Volume
13
Issue
7
Article Number
E1555
Year
2020
Publication Date
2020-03-27
Published Version
ISSN
1996-1073
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Original Submission
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PII: en13071555, Publication Type: Journal Article
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LAPSE:2023.22330
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doi:10.3390/en13071555
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Mar 24, 2023
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CC BY 4.0
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