An unsupervised learning algorithm for the classification of the protection device in the fault diagnosis system

  • Bin Li
  • , Yajuan Guo
  • , Yi Wu
  • , Jinming Chen
  • , Yubo Yuan
  • , Xiaoyi Zhang

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

4 Scopus citations

Abstract

Power protection devices achieve a rapid removal of the grid accident, but the numerous applications of the devices had brought data disaster for the fault diagnosis information system. It costs a great deal of efforts to ensure that the information uploaded by the protection devices correspond to the function of the devices. This pa per presents an unsupervised learning algorithm for the classification of the protection device to facilitate the fault diagnosis information system to locate accurately the event reports of every protection device. The algorithm classifies the protection devices without samples or with small number of samples according to the automation relaying settings. The classification of the protection devices is not just separating the devices according to the types of different companies, but also differentiates these devices with the same type from the same company but different functions. There are two innovations in the proposed unsupervised learning algorithm for the classification of the protection device. Firstly, the automation relaying settings can solve the classification of the protection device in essence and eliminate mistakes from the source. The mistakes are usually caused by the classification of the device's name in manual mode. Secondly, addressing to the characteristics that the relaying settings of the protection devices have uncertain entries under different functions, the algorithm realizes the classification from massive devices.

Original languageEnglish
Title of host publicationCICED 2014 - 2014 China International Conference on Electricity Distribution, Proceedings
PublisherIEEE Computer Society
Pages817-823
Number of pages7
ISBN (Electronic)9781479941261
DOIs
StatePublished - 18 Dec 2014
Externally publishedYes
Event2014 6th China International Conference on Electricity Distribution, CICED 2014 - Shenzhen, China
Duration: 23 Sep 201426 Sep 2014

Publication series

NameChina International Conference on Electricity Distribution, CICED
Volume2014-December
ISSN (Print)2161-7481
ISSN (Electronic)2161-749X

Conference

Conference2014 6th China International Conference on Electricity Distribution, CICED 2014
Country/TerritoryChina
CityShenzhen
Period23/09/1426/09/14

Keywords

  • classification
  • malfunction
  • protection device
  • unsupervised learning algorithm

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