A Secured Industrial Internet-of-Things Architecture Based on Blockchain Technology and Machine Learning for Sensor Access Control Systems in Smart Manufacturing

被引:28
|
作者
Mrabet, Hichem [1 ]
Alhomoud, Adeeb [2 ]
Jemai, Abderrazek [3 ]
Trentesaux, Damien [4 ]
机构
[1] Univ Carthage, Tunisia Polytech Sch, SERCOM Lab, BP 743, Tunis 2078, Tunisia
[2] Saudi Elect Univ, Coll Sci & Theoret Studies, Dept Sci, Riyadh 11673, Saudi Arabia
[3] Univ Carthage, Tunisia Polytech Sch, SERCOM Lab, INSAT, BP 743, Tunis 1080, Tunisia
[4] Univ Polytech Hauts de France, CNRS, LAMIH UMR, F-59313 Valenciennes, France
来源
APPLIED SCIENCES-BASEL | 2022年 / 12卷 / 09期
基金
英国工程与自然科学研究理事会;
关键词
Blockchain; industrial IoT; smart manufacturing; security threats; security solutions; machine learning; classifiers; privacy; smart contract; access control; IOT;
D O I
10.3390/app12094641
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Featured Application A potential application of the work concerns the development of secure IIoT architectures for smart manufacturing using blockchain technology and machine learning algorithms. In this paper, a layered architecture incorporating Blockchain technology (BCT) and Machine Learning (ML) is proposed in the context of the Industrial Internet-of-Things (IIoT) for smart manufacturing applications. The proposed architecture is composed of five layers covering sensing, network/protocol, transport enforced with BCT components, application and advanced services (i.e., BCT data, ML and cloud) layers. BCT enables gathering sensor access control information, while ML brings its effectivity in attack detection such as DoS (Denial of Service), DDoS (Distributed Denial of Service), injection, man in the middle (MitM), brute force, cross-site scripting (XSS) and scanning attacks by employing classifiers differentiating between normal and malicious activity. The design of our architecture is compared to similar ones in the literature to point out potential benefits. Experiments, based on the IIoT dataset, have been conducted to evaluate our contribution, using four metrics: Accuracy, Precision, Sensitivity and Matthews Correlation Coefficient (MCC). Artificial Neural Network (ANN), Decision Tree (DT), Random Forest, Naive Bayes, AdaBoost and Support Vector Machine (SVM) classifiers are evaluated regarding these four metrics. Even if more experiments are required, it is illustrated that the proposed architecture can reduce significantly the number of DDoS, injection, brute force and XSS attacks and threats within an advanced framework for sensor access control in IIoT networks based on a smart contract along with ML classifiers.
引用
收藏
页数:23
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