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17-04-2024

Gradient scaling and segmented SoftMax Regression Federated Learning (GDS-SRFFL): a novel methodology for attack detection in industrial internet of things (IIoT) networks

Authors: Vijay Anand Rajasekaran, Alagiri Indirajithu, P. Jayalakshmi, Anand Nayyar, Balamurugan Balusamy

Published in: The Journal of Supercomputing | Issue 12/2024

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Abstract

The article presents the Gradient Descent Scaling and Segmented Regression Fine-tuned Federated Learning (GDS-SRFFL) method for enhancing security in Industrial Internet of Things (IIoT) networks. It addresses the challenges of attack detection in IIoT environments, where the number of IoT devices is increasing and security threats are becoming more sophisticated. The GDS-SRFFL method combines gradient scaling for data preprocessing and federated learning for model training, ensuring privacy and security. The method is tested and validated on the TON_IoT dataset, demonstrating improved performance in precision, recall, accuracy, specificity, and attack detection time compared to existing techniques. The article also discusses the limitations and future scope of the proposed methodology, highlighting the need for further advancements in IIoT security.

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Literature
Metadata
Title
Gradient scaling and segmented SoftMax Regression Federated Learning (GDS-SRFFL): a novel methodology for attack detection in industrial internet of things (IIoT) networks
Authors
Vijay Anand Rajasekaran
Alagiri Indirajithu
P. Jayalakshmi
Anand Nayyar
Balamurugan Balusamy
Publication date
17-04-2024
Publisher
Springer US
Published in
The Journal of Supercomputing / Issue 12/2024
Print ISSN: 0920-8542
Electronic ISSN: 1573-0484
DOI
https://doi.org/10.1007/s11227-024-06109-6

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