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Applying neural network approach to achieve robust design for dynamic quality characteristics

Chao‐Ton Su (Department of Industrial Engineering and Management, National Chiao Tung University, Hsinchu, Taiwan, ROC)
Kun‐Lin Hsieh (Department of Industrial Engineering and Management, National Chiao Tung University, Hsinchu, Taiwan, ROC)

International Journal of Quality & Reliability Management

ISSN: 0265-671X

Article publication date: 1 August 1998

654

Abstract

This study presents an effective means of applying neural networks to achieve robust design with dynamic characteristic considerations. Two neural networks are constructed to train the data set in the Taguchi’s orthogonal array (OA): one to search for the optimal condition, and the other to forecast the system’s response value. A measuring system employed in semiconductor manufacturing demonstrates the proposed approach’s effectiveness. According to those results, the proposed approach outperforms the conventional Taguchi method. By using the proposed approach, the adjustment factors are not a prerequisite for the dynamic characteristic problem. Moreover, the proposed approach enhances the generalization capability.

Keywords

Citation

Su, C. and Hsieh, K. (1998), "Applying neural network approach to achieve robust design for dynamic quality characteristics", International Journal of Quality & Reliability Management, Vol. 15 No. 5, pp. 509-519. https://doi.org/10.1108/02656719810196243

Publisher

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MCB UP Ltd

Copyright © 1998, MCB UP Limited

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