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            Self-learning Anomaly Detection in Industrial Production

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            Author(s)
            Meshram, Ankush
            Language
            English
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            Abstract
            Configuring an anomaly-based Network Intrusion Detection System for cybersecurity of an industrial system in the absence of information on networking infrastructure and programmed deterministic industrial process is challenging. Within the research work, different self-learning frameworks to analyze passively captured network traces from PROFINET-based industrial system for protocol-based and process behavior-based anomaly detection are developed, and evaluated on a real-world industrial system.
            URI
            https://doab-dev.siscern.org/handle/20.500.12854/191948
            Keywords
            Industrielles Steuerungssystem; Netzwerksicherheit; Netzwerk-Intrusion-Detection-System; Anomalieerkennung; selbstlernend; Industrial Control System; Network Security; Network Intrusion Detection System; Anomaly Detection; self-learning; thema EDItEUR::U Computing and Information Technology::UY Computer science::UYA Mathematical theory of computation::UYAM Maths for computer scientists
            DOI
            10.5445/KSP/1000152715
            Publisher
            KIT Scientific Publishing
            Publisher website
            http://www.ksp.kit.edu/
            Publication date and place
            2023
            Series
            Karlsruher Schriften zur Anthropomatik,
            Pages
            224
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              This project received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 871069.

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