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  1. Proposal and comparison of network anomaly detection based on long-memory statistical models.Tomasz Andrysiak, Łukasz Saganowski, Michał Choraś & Rafał Kozik - 2016 - Logic Journal of the IGPL 24 (6):944-956.
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  • Unsupervised network traffic anomaly detection with deep autoencoders.Vibekananda Dutta, Marek Pawlicki, Rafał Kozik & Michał Choraś - 2022 - Logic Journal of the IGPL 30 (6):912-925.
    Contemporary Artificial Intelligence methods, especially their subset-deep learning, are finding their way to successful implementations in the detection and classification of intrusions at the network level. This paper presents an intrusion detection mechanism that leverages Deep AutoEncoder and several Deep Decoders for unsupervised classification. This work incorporates multiple network topology setups for comparative studies. The efficiency of the proposed topologies is validated on two established benchmark datasets: UNSW-NB15 and NetML-2020. The results of their analysis are discussed in terms of classification (...)
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