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DOI

The paper considers methods for interpreting anomalies in time-ordered data of different structure with the use of special methods for analyzing the behavior of neural networks. The use of reconstruction-based anomaly detection methods makes it possible to detect anomalous patterns in the data, but it does not make it possible to conclude which feature had a decisive influence on the result of the model inference. The paper provides an overview of research in this direction, including the description of well-known methods for interpreting deep learning models and their modifications for analyzing the dataset of a cyber-physical system. Those methods are used for anomaly detection and interpretation for cyber physical system.
Язык оригиналаАнглийский
Название основной публикацииProceedings of the Seventh International Scientific Conference “Intelligent Information Technologies for Industry” (IITI’23)
Подзаголовок основной публикацииbook
РедакторыS. Kovalev, A. Sukhanov, I. Kotenko
ИздательSpringer Cham
Страницы106-114
Число страниц9
ISBN (электронное издание)978-3-031-43792-2
ISBN (печатное издание)978-3-031-43791-5
DOI
СостояниеОпубликовано - 18 сент. 2023

Серия публикаций

НазваниеLecture Notes in Networks and Systems
Том777
ISSN (печатное издание)2367-3370
ISSN (электронное издание)2367-3389

    Предметные области ASJC Scopus

  • Signal Processing
  • Control and Systems Engineering
  • Computer Networks and Communications

ID: 46905519