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01-07-2024 | Original Paper

Performance enhancement of EV charging stations and distribution system: a GJO–APCNN technique

Authors: B. Gunapriya, B. Santosh Kumar, B. Rajalakshmi, A. Amarendra

Published in: Electrical Engineering | Issue 1/2025

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Abstract

The article introduces a groundbreaking GJO–APCNN technique for enhancing the performance of EV charging stations and distribution systems. By integrating Golden Jackal Optimization and Attention Pyramid Convolutional Neural Networks, the method aims to minimize operational costs and improve system efficiency. The research highlights the interconnected nature of charging stations and distribution systems, which have traditionally been addressed with isolated solutions. The proposed technique leverages the hunting behavior of golden jackals for global optimization and the advanced predictive capabilities of APCNN for intelligent decision-making. The study demonstrates superior performance compared to existing methods, showcasing significant cost reductions and improved system reliability. The article includes detailed modeling of photovoltaic systems, wind turbines, electric vehicles, and energy storage systems, as well as a comprehensive analysis of system performance and cost-effectiveness. The results, presented through various figures and tables, underscore the potential of the GJO–APCNN technique in revolutionizing energy management practices in the era of electric vehicles.

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Literature
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Metadata
Title
Performance enhancement of EV charging stations and distribution system: a GJO–APCNN technique
Authors
B. Gunapriya
B. Santosh Kumar
B. Rajalakshmi
A. Amarendra
Publication date
01-07-2024
Publisher
Springer Berlin Heidelberg
Published in
Electrical Engineering / Issue 1/2025
Print ISSN: 0948-7921
Electronic ISSN: 1432-0487
DOI
https://doi.org/10.1007/s00202-024-02531-4