인공 신경망의 패턴분석에 근거한 지능적 부품품질 관리시스템의 설계

Design of Intelligent Material Quality Control System based on Pattern Analysis using Artificial Neural Network

  • 이장희 (한국과학기술원 산업공학과) ;
  • 유성진 (한국과학기술원 산업공학과) ;
  • 박상찬 (한국과학기술원 산업공학과)
  • 발행 : 2001.12.01

초록

In resolving industrial quality control problems, a vector of multiple quality characteristic variables is involved rather than a single variable. However, it is not guaranteed that a multivariate control chart based on statistical methods can monitor abnormal signal in case that small changes of relationship between each variables causes abnormal production process. Hence a quality control system for real-time monitoring of the multi-dimensional quality characteristic vector under a multivariate normal process is needed to enhance tile production system quality performance. A pattern analysis approach based on self-organizing map (SOM), an unsupervised learning technique of neural network, is applied to the design of such a quality control system. In this study we present a new material quality control system based on pattern analysis approach and illustrate the effectiveness of proposed system using actual electronic company material data.

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