Countermeasure Security Risks Management in the Internet of Things Based on Fuzzy Logic Inference

Igor Kotenko, I. Saenko, S. Ageev
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引用次数: 19

Abstract

Systems based on the concept of 'Internet of Things' (IoT) are known for multi-tiered architecture, variety and a great number of energy constrained 'things', the influence of new types of attacks, the incompleteness and ambiguity of their parameters. For these reasons, risk management in IoT could be improved by application of fuzzy data processing. The paper considers the main approaches to the construction of intelligent methods and algorithms of information security risk assessment and management for IoT. Mathematical models for security risk assessment in IoT are proposed and investigated. In relation to the concept of multi-agent network control, the Mamdani fuzzy inference procedures for risk assessment and management are developed. Procedures for fuzzy clustering, classification and ranking of security threats are outlined. The experimental results show high stability of the developed security risks management algorithms to uncertainties of input variables.
基于模糊逻辑推理的物联网安全风险对策管理
基于“物联网”(IoT)概念的系统以多层架构、多样性和大量能量受限的“事物”、新型攻击的影响、参数的不完整性和模糊性而闻名。因此,应用模糊数据处理技术可以改善物联网的风险管理。本文研究了物联网信息安全风险评估与管理的智能方法和算法构建的主要途径。提出并研究了物联网安全风险评估的数学模型。结合多智能体网络控制的概念,开发了用于风险评估和管理的Mamdani模糊推理程序。对安全威胁的模糊聚类、分类和排序程序进行了概述。实验结果表明,所开发的安全风险管理算法对输入变量的不确定性具有较高的稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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