基于机器学习的多智能体信息物理传输系统安全性研究

G. Funchal, T. Pedrosa, Marco V. B. A. Vallim, P. Leitão
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引用次数: 1

摘要

工业4.0的一个主要基础是使用物联网(IoT)技术连接设备和系统,其中网络物理系统(CPS)作为基于分布式和分散结构的骨干基础设施。这种方法提供了显著的好处,即提高了性能、响应能力和可重构性,但也带来了一些安全问题,因为设备和系统容易受到网络攻击。本文介绍了在多智能体系统(MAS)的基础上,利用不同的独立模块化和智能输送模块构建自组织网络物理输送系统,以提高系统安全性的几种机制的实现。为此,JADE-S附加组件用于实施更多的安全控制,还创建了一个由机器学习(ML)技术支持的入侵检测系统(IDS),该系统分析代理之间的通信,能够监视和分析系统中发生的事件,提取入侵迹象,它们共同有助于减轻网络攻击。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Security for a Multi-Agent Cyber-Physical Conveyor System using Machine Learning
One main foundation of Industry 4.0 is the connectivity of devices and systems using Internet of Things (IoT) technologies, where Cyber-physical systems (CPS) act as the backbone infrastructure based on distributed and decentralized structures. This approach provides significant benefits, namely improved performance, responsiveness and reconfigurability, but also brings some problems in terms of security, as the devices and systems become vulnerable to cyberattacks. This paper describes the implementation of several mechanisms to increase the security in a self-organized cyber-physical conveyor system, based on multi-agent systems (MAS) and build up with different individual modular and intelligent conveyor modules. For this purpose, the JADE-S add-on is used to enforce more security controls, also an Intrusion Detection System (IDS) is created supported by Machine Learning (ML) techniques that analyses the communication between agents, enabling to monitor and analyse the events that occur in the system, extracting signs of intrusions, together they contribute to mitigate cyberattacks.
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