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一种基于可选置信规则库的工业互联网安全评估模型

An Industrial Internet Security Assessment Model Based on a Selectable Confidence Rule Base.

作者信息

Yang Qingqing, Li Shiming, Wang Yuhe, Li Guoxing, Yuan Yanbin

机构信息

College of Computer Science and Information Engineering, Harbin Normal University, Harbin 150025, China.

出版信息

Sensors (Basel). 2024 Nov 27;24(23):7577. doi: 10.3390/s24237577.

Abstract

To mitigate the impact of network security on the production environment in the industrial internet, this paper proposes a confidence rule-based security assessment model for the industrial internet that uses selective modeling. First, a definition of selective modeling tailored to the characteristics of the industrial internet is provided. Based on this, the assessment process of the Selectable Belief Rule Base (BRB-s) model is introduced. Then, in combination with the Selection covariance matrix adaptive evolution strategy (S-CMA-ES) algorithm, a parameter optimization method for the BRB-s model is designed, which expands the selective constraints on expert knowledge. This model establishes a better unidirectional selection strategy among different subgroups, and while expanding the selection constraints on expert knowledge, it achieves better evaluation results. This effectively addresses the issue of reduced modeling accuracy caused by insufficient data and poor data quality. Finally, the experiments of different evaluation models on industrial data sets are compared, and good results are obtained, which verify the evaluation accuracy of the industrial Internet network security situation assessment model proposed in this paper and the feasibility and effectiveness of the S-CMA-ES optimization algorithm.

摘要

为减轻网络安全对工业互联网生产环境的影响,本文提出一种基于置信规则的工业互联网安全评估模型,该模型采用选择性建模。首先,给出了针对工业互联网特点的选择性建模定义。在此基础上,介绍了可选择置信规则库(BRB-s)模型的评估过程。然后,结合选择协方差矩阵自适应进化策略(S-CMA-ES)算法,设计了BRB-s模型的参数优化方法,该方法扩展了对专家知识的选择性约束。该模型在不同子组之间建立了更好的单向选择策略,在扩展对专家知识的选择约束的同时,取得了更好的评估结果。这有效地解决了数据不足和数据质量差导致建模精度降低的问题。最后,比较了不同评估模型在工业数据集上的实验,取得了良好的结果,验证了本文提出的工业互联网网络安全态势评估模型的评估准确性以及S-CMA-ES优化算法的可行性和有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4dc4/11644398/5d41d74cf5bf/sensors-24-07577-g001.jpg

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