2023
DOI: 10.3390/app132312687
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Enhancing Internet of Things Network Security Using Hybrid CNN and XGBoost Model Tuned via Modified Reptile Search Algorithm

Mohamed Salb,
Luka Jovanovic,
Nebojsa Bacanin
et al.

Abstract: This paper addresses the critical security challenges in the internet of things (IoT) landscape by implementing an innovative solution that combines convolutional neural networks (CNNs) for feature extraction and the XGBoost model for intrusion detection. By customizing the reptile search algorithm for hyperparameter optimization, the methodology provides a resilient defense against emerging threats in IoT security. By applying the introduced algorithm to hyperparameter optimization, better-performing models a… Show more

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Cited by 15 publications
(2 citation statements)
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References 53 publications
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“…Moreover, hybrid methods between machine/deep learning and metaheuristics excel in other application domains as well, as evidenced by numerous successful recent applications including medicine [22,13,8,27,32,6,24], agriculture [25], environmental monitoring [5,20], economy [13,41,38] and power grids [29,14,3,39,45]. Other notable applications include weather forecasting [21], cloud computing [7,33,4,9], wireless sensor networks [46,11,44] and intrusion detection [35,36,23,15]. Also, it is worth mentioning that there are also many applications of enhanced metaheuristics methods [40,42].…”
Section: Related Workmentioning
confidence: 99%
“…Moreover, hybrid methods between machine/deep learning and metaheuristics excel in other application domains as well, as evidenced by numerous successful recent applications including medicine [22,13,8,27,32,6,24], agriculture [25], environmental monitoring [5,20], economy [13,41,38] and power grids [29,14,3,39,45]. Other notable applications include weather forecasting [21], cloud computing [7,33,4,9], wireless sensor networks [46,11,44] and intrusion detection [35,36,23,15]. Also, it is worth mentioning that there are also many applications of enhanced metaheuristics methods [40,42].…”
Section: Related Workmentioning
confidence: 99%
“…Numerous researchers have successfully adopted machine learning algorithms for mechanical engineering problems. Salb et al [18] proposed a method for enhancing IoT network security by combining CNNs for feature extraction with XGBoost for intrusion detection. They further introduced a modified Reptile Search algorithm for hyperparameter optimisation, leading to a more robust defence against emerging threats in IoT security.…”
Section: Introductionmentioning
confidence: 99%