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Optimizing grid-connected solar PV-powered smart homes: IoT-based energy management systems using AOA-PHNN approach

  • 28-12-2024
  • Original Paper
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Abstract

The article introduces a novel method for optimizing energy consumption in grid-connected solar PV-powered DC residential buildings using the AOA-PHNN approach. This hybrid method combines the arithmetic optimization algorithm (AOA) with pseudo-Hamiltonian neural networks (PHNN) to enhance energy management systems. The research addresses the challenges of real-time adaptability to fluctuating renewable energy sources and minimizing energy conversion losses. The proposed method is evaluated using MATLAB and compared with existing optimization algorithms, demonstrating significant cost reductions and improved energy efficiency. The study highlights the potential for enhanced reliability and adaptability in renewable energy systems, making it a valuable resource for professionals in the field.

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Title
Optimizing grid-connected solar PV-powered smart homes: IoT-based energy management systems using AOA-PHNN approach
Authors
P. Arulkumar
R. Saravanan
M. Lakshmanan
A. S. S. Murugan
Publication date
28-12-2024
Publisher
Springer Berlin Heidelberg
Published in
Electrical Engineering / Issue 6/2025
Print ISSN: 0948-7921
Electronic ISSN: 1432-0487
DOI
https://doi.org/10.1007/s00202-024-02894-8
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