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首页> 外文期刊>Journal of Universal Computer Science >Design of Cognitive Fog Computing for Autonomic Security System in Critical Infrastructure
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Design of Cognitive Fog Computing for Autonomic Security System in Critical Infrastructure

机译:关键基础设施自主安全系统的认知雾计算设计

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摘要

The rapid growth of Internet of Things(IoT) has reached all the facets of life including critical infrastructures. It has become the foundation for most of the critical infrastructures. The increased connectivity and the heterogeneity in IoT have widened the attack surface of critical infrastructures for attackers to exploit. Certain cyberattacks in critical infrastructures can lead to catastrophe and hence the attack has to be identified as early as possible to stop or reduce its impact by activating suitable responses. Therefore, the critical infrastructures require an intelligent security mechanism which can intelligently interpret the attacks from the IoT traffic and efficiently handle the attack scenario by activating appropriate response at faster rate. In this work, an autonomic security system with intelligent self-protect mechanism has been proposed for critical infrastructures. The autonomic security system can autonomously detect known attacks using Extreme Learning Machine, predict the unknown attacks using Gaussian process regression, and select suitable response for handling the attack using fuzzy logic. This intelligence of self-protect mechanism is incorporated in the distributed fog nodes to handle the attack scenario at faster rate and protect the critical infrastructures with minimal human intervention. The experimental analysis of the proposed autonomic security system proves to be efficient in detecting and defending the cyber-attacks with high accuracy and success rate. The results on network load and response time indicates the effectiveness of fog computing in proposed system.
机译:物联网(IoT)的快速发展已涉及生活的方方面面,包括关键基础设施。它已成为大多数关键基础架构的基础。物联网中增强的连接性和异构性扩大了关键基础设施的攻击面,供攻击者利用。关键基础架构中的某些网络攻击可能导致灾难,因此必须尽早识别攻击,以通过激活适当的响应来阻止或减少其影响。因此,关键基础设施需要一种智能安全机制,该机制可以智能地解释来自IoT流量的攻击,并通过以更快的速度激活适当的响应来有效地应对攻击情况。在这项工作中,已针对关键基础设施提出了具有智能自我保护机制的自主安全系统。自主安全系统可以使用Extreme Learning Machine自主检测已知攻击,使用高斯过程回归预测未知攻击,并使用模糊逻辑选择合适的响应来处理攻击。这种自我保护机制的智能功能被并入分布式雾节点中,可以更快地处理攻击情况并以最少的人工干预保护关键基础架构。所提出的自主安全系统的实验分析证明可以有效地检测和防御网络攻击,具有较高的准确性和成功率。网络负载和响应时间的结果表明了所提出系统中雾计算的有效性。

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