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Analyzing Operation Logs of Nuclear Power Plants for Safety and Efficiency Diagnosis of Real-Time Operations

  • J. Xing
  • , P. Liu
  • , P. Tang
  • , A. Yilmaz
  • , R. Boring
  • , G. Gibson

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Operators' lack of understanding of the plant's operation state significantly contributes to human errors in Nuclear Power Plant (NPP) control room operations. The state of an NPP at a particular time is represented by values of analog (e.g., measurements of flow properties) and switch parameters (e.g., the status of a valve). Previous studies focused on analyzing analog parameters rarely considered the switch parameters. Estimating the plant state without considering the timings of switches can be inaccurate. This paper utilizes analog parameters to infer the timing of switches. Two main challenges of establishing a reliable prediction model are 1) high dimensional analog parameters and 2) an imbalanced switch parameter dataset with few control actions. This paper uses PCA to reduce the dimensions and SMOTE to generate more samples capturing the impacts of various control actions. Then the pre-processed data was used to train variants of KNN classifiers. Testing results show that the KNN with SMOTE oversampling but without PCA best predicts switches' timing.

Original languageEnglish
Title of host publicationProceedings of the 29th EG-ICE International Workshop on Intelligent Computing in Engineering
EditorsJochen Teizer, Carl Peter Leslie Schultz
PublisherEuropean Group for Intelligent Computing in Engineering (EG-ICE)
Pages124-133
Number of pages10
ISBN (Electronic)9788775075218
DOIs
StatePublished - 2022
Event29th International Workshop on Intelligent Computing in Engineering, EG-ICE 2022 - Aarhus, Denmark
Duration: Jul 6 2022Jul 8 2022

Publication series

NameProceedings of the 29th EG-ICE International Workshop on Intelligent Computing in Engineering

Conference

Conference29th International Workshop on Intelligent Computing in Engineering, EG-ICE 2022
Country/TerritoryDenmark
CityAarhus
Period07/6/2207/8/22

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