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01-07-2024 | Original Article

Federated learning-guided intrusion detection and neural key exchange for safeguarding patient data on the internet of medical things

Authors: Chongzhou Zhong, Arindam Sarkar, Sarbajit Manna, Mohammad Zubair Khan, Abdulfattah Noorwali, Ashish Das, Koyel Chakraborty

Published in: International Journal of Machine Learning and Cybernetics | Issue 12/2024

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Abstract

The introduction of the Internet of Things (IoT) has revolutionized the healthcare sector, giving rise to the Internet of Medical Things (IoMT). While IoMT offers significant benefits, it also poses substantial security challenges. Intrusion Detection Systems (IDS) are essential for recognizing and mitigating these security risks. This article proposes a novel approach that combines federated learning-guided intrusion detection and neural key exchange to enhance IoMT security. Federated learning allows for collaborative model training without sharing sensitive patient data, while neural key exchange facilitates secure communication between IoMT devices. The proposed method addresses various security issues, including data privacy, hacking, and centralized control vulnerabilities. By leveraging advanced technologies, this approach aims to create a reliable and secure IoMT ecosystem for healthcare applications.

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Metadata
Title
Federated learning-guided intrusion detection and neural key exchange for safeguarding patient data on the internet of medical things
Authors
Chongzhou Zhong
Arindam Sarkar
Sarbajit Manna
Mohammad Zubair Khan
Abdulfattah Noorwali
Ashish Das
Koyel Chakraborty
Publication date
01-07-2024
Publisher
Springer Berlin Heidelberg
Published in
International Journal of Machine Learning and Cybernetics / Issue 12/2024
Print ISSN: 1868-8071
Electronic ISSN: 1868-808X
DOI
https://doi.org/10.1007/s13042-024-02269-2