勤益科大機構典藏:Item 987654321/7228
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    题名: An analysis of an optical coating process capability prediction model in a Six Sigma procedure by integrating APIBPN and K-means
    作者: 黃喬次
    贡献者: 工業工程與(工程)管理系
    日期: 2012-07
    上传时间: 2018-05-23 09:39:24 (UTC+8)
    摘要: This study focused on plastic panel products, and treated product penetration rate as a quality characteristic to construct an optical coating process capability prediction model. This study applied Six Sigma to conduct an empirical study on an optical film processing plant. Combining the Taguchi's parameter design method and the back propagation neural network (BPNN) prediction method, this study used the orthogonal array in experimental design, and employed the Taguchi method to analyse the data obtained from the orthogonal array experiments to study the key factors and their levels, in order to determine the optimal process parameter combinations. The influential process parameters were input into the after 'apicalis' in Pachycondyla apicalis optimise back propagation network (APIBPN) and K-means, the outputs of which were the prediction results of the coating film process capability. The results can provide engineers a reference in quality improvement and decision-making planning. The experimental results suggested that the Cpk was improved from 0.89 to 1.63, indicating a significant improvement in process capability value. The prediction accuracy rate is over 97.6%, which is better than that of the trial and error method, and can improve coating film process capabilities and product quality.
    Online publication date: Wed, 25-Jul-2012
    關聯: International Journal of Materials and Product Technology
    显示于类别:[工業工程與管理系(所)] 【工業工程與管理系所】期刊論文

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