Detail výsledku

Statistical Methods for Anomaly Detection in Industrial Communication

BURGETOVÁ, I.; MATOUŠEK, P.; MUTUA, N. Statistical Methods for Anomaly Detection in Industrial Communication. IT-TR-2021-01, Brno: Faculty of Information Technology BUT, 2021. 59 p.
Typ
zpráva odborná
Jazyk
anglicky
Autoři
Abstrakt

This report focuses on application of selected statistical methods to anomaly detection of ICS protocols deployed in smart grids, namely IEC 104, GOOSE and MMS. Industrial network stations are typically pre-configured hardware devices that operate in master-slave mode and exhibits stable and periodic communication patterns over a long time. Due to the stability of ICS communication, statistical models present a natural way for detection of common ICS anomalies.

For probabilistic modeling of network behavior we employ the following statistical features: distribution of packet inter-arrival times, packet size, and packet direction. This report presents the results of our experiments with three statistical methods: the Box Plot, Three Sigma Rule and Local Outlier Factor (LOF) which worked best for ICS  datasets.

Klíčová slova

anomaly detection, communication patterns, industrial networks, IEC 104, monitoring

Rok
2021
Strany
59
Vydavatel
Faculty of Information Technology BUT
Místo
IT-TR-2021-01, Brno
BibTeX
@misc{BUT171490,
  author="Ivana {Burgetová} and Petr {Matoušek} and Nelson Makau {Mutua}",
  title="Statistical Methods for Anomaly Detection in Industrial Communication",
  year="2021",
  pages="59",
  publisher="Faculty of Information Technology BUT",
  address="IT-TR-2021-01, Brno",
  url="https://www.fit.vut.cz/research/publication/12502/"
}
Soubory
Projekty
Bezpečnostní monitorování řídící komunikace ICS v energetických sítích (BONNET), MV, Program bezpečnostního výzkumu ČR v letech 2015-2022 (BV III/1-VS), VI20192022138, zahájení: 2019-11-01, ukončení: 2022-10-31, ukončen
Metody AI pro zabezpečení kybernetického prostoru a řídicí systémy, VUT, Vnitřní projekty VUT, FIT-S-20-6293, zahájení: 2020-03-01, ukončení: 2023-02-28, ukončen
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