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An Iterative Convolutional Neural Network Based Malicious Node Detection (ICNNMND) Protocol For Internet of Things

  • 11-07-2024
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Abstract

The article introduces an innovative Iterative Convolutional Neural Network based Malicious Node Detection (ICNNMND) protocol designed to secure IoT networks. It addresses the growing challenge of identifying malicious nodes, which are responsible for various attacks like reply packet and discard packet attacks. Traditional detection algorithms struggle with uncertain attack probabilities and high power consumption. The proposed ICNNMND protocol overcomes these limitations by using an iterative CNN model to classify nodes based on extracted features such as delayed transmission metric, forwarding rate metric, and residual energy. This approach significantly improves detection accuracy and reduces system complexity. The protocol operates across physical, network, and application layers, providing a comprehensive solution to safeguard IoT networks. The research highlights the advantages of the ICNNMND protocol, including energy efficiency and high accuracy, and discusses potential future improvements like synthetic data generation for model training.

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Title
An Iterative Convolutional Neural Network Based Malicious Node Detection (ICNNMND) Protocol For Internet of Things
Authors
Moemedi Moka
Karabo Serome
Rajalakshmi Selvaraj
Publication date
11-07-2024
Publisher
Springer US
Published in
Wireless Personal Communications / Issue 2/2024
Print ISSN: 0929-6212
Electronic ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-024-11459-8
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