RNN-based Early Cyber-Attack Detection for the Tennessee Eastman Process

September 07, 2017 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Pavel Filonov, Fedor Kitashov, Andrey Lavrentyev arXiv ID 1709.02232 Category cs.CR: Cryptography & Security Cross-listed cs.LG Citations 61 Venue arXiv.org Last Checked 5 months ago
Abstract
An RNN-based forecasting approach is used to early detect anomalies in industrial multivariate time series data from a simulated Tennessee Eastman Process (TEP) with many cyber-attacks. This work continues a previously proposed LSTM-based approach to the fault detection in simpler data. It is considered necessary to adapt the RNN network to deal with data containing stochastic, stationary, transitive and a rich variety of anomalous behaviours. There is particular focus on early detection with special NAB-metric. A comparison with the DPCA approach is provided. The generated data set is made publicly available.
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