Industrial Control Network Security Situation Assessment Based on SAE-RBF

Xinzhuang Li, Hanjun Wang
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引用次数: 1

Abstract

With the in-depth development of “two integration”, industrial control network security situation is more and more serious, industrial control network security protection work is more and more important. Aiming at the characteristics of sparse and complex dimensions of industrial control network security data, combining with the conceptual model of network security situation awareness, this paper proposes a network security situation assessment method, which uses stack self-encoder to process sparse data and uses radial basis neural network to fit complex nonlinear characteristics. It effectively extracts the data features, realizes the analysis and understanding of the data, and completes the security situation assessment, which provides a new method for the security situation assessment of the industrial control network.
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基于SAE-RBF的工业控制网络安全态势评估
随着“两化融合”的深入发展,工控网络安全形势越来越严峻,工控网络安全防护工作越来越重要。针对工控网络安全数据稀疏、维数复杂的特点,结合网络安全态势感知的概念模型,提出了一种利用堆栈自编码器对稀疏数据进行处理,利用径向基神经网络拟合复杂非线性特征的网络安全态势评估方法。有效提取数据特征,实现对数据的分析和理解,完成安全态势评估,为工控网络安全态势评估提供了一种新的方法。
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