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Network Traffic Anomaly Detection in Railway Intelligent Control Systems Using Nonlinear Dynamics Approach

机译:使用非线性动力学方法的铁路智能控制系统中的网络流量异常检测

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The work presents an approach for anomaly detection in network traffic based on nonlinear dynamics techniques. The main attention is paid to nonlinear-dynamical models of telecommunication traffic in the distributed network subsystems of railway intelligent control systems. In the considered system, telecommunication traffic is presented in time series form. The time series is used as the basis for reconstructed nonlinear dynamic system with chaotic behavior. The calculation algorithms for embedding dimension, correlation dimension and spectrum of Lyapunov exponents are given. The computational implementations for assessment of dynamical characteristics reconstructed from noisy time series of network traffic are presented. Anomaly detection algorithm based on Lyapunov exponents calculation is presented for nonlinear system generating network traffic.
机译:该工作提出了一种基于非线性动力学技术的网络流量异常检测方法。主要关注在铁路智能控制系统的分布式网络子系统中的电信流量的非线性动态模型。在考虑的系统中,电信流量以时间序列形式呈现。该时间序列用作复合行为的重建非线性动态系统的基础。给出了用于嵌入尺寸,相关维度和Lyapunov指数的相关维度和频谱的计算算法。呈现了从嘈杂的时间序列网络流量重建的动态特征评估的计算实现。基于Lyapunov指数计算的异常检测算法用于生成网络流量的非线性系统。

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