A Novel Label Smoothing Technique for Machine Degradation

Ko Chieh Chao, Yu Shih, Ching Hung Lee*

*Corresponding author for this work

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

Abstract

Due to the rise of Industry 4.0, most factories use fully automated equipment to reduce labor costs and increase production efficiency. These long-running machines gradually age over time, which results in machine degradation and lower product yields. In general, the whole life cycle of a machine is from health state to degradation state to fault state. Once a machine breaks down, it may increase production costs and leads to serious safety hazards. To prevent the machine from running in a fault state, many sensors are applied to monitor the health of the machine. Then, the collected data are fed into the degradation model, which is used to evaluate the degradation level. Because machine degradation is a continuous process, the features in the transition region between adjacent two condition states are nearly identical. Similar features make the degradation model perform poorly in the transition region. In this study, a novel label smoothing method is proposed to improve the model performance in the transition region. The proposed method which is tested on a bearing run-to-failure data dataset has achieved a prediction accuracy of 96.76%. The results of the experimental study demonstrate that the proposed method outperforms the other compared peer methods.

Original languageEnglish
Title of host publicationIFAC-PapersOnLine
EditorsHideaki Ishii, Yoshio Ebihara, Jun-ichi Imura, Masaki Yamakita
PublisherElsevier B.V.
Pages4430-4435
Number of pages6
Edition2
ISBN (Electronic)9781713872344
DOIs
StatePublished - 1 Jul 2023
Event22nd IFAC World Congress - Yokohama, Japan
Duration: 9 Jul 202314 Jul 2023

Publication series

NameIFAC-PapersOnLine
Number2
Volume56
ISSN (Electronic)2405-8963

Conference

Conference22nd IFAC World Congress
Country/TerritoryJapan
CityYokohama
Period9/07/2314/07/23

Keywords

  • Bearing health monitoring
  • convolution neural network
  • label smoothing
  • machine degradation
  • sensor selection
  • tool wear

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