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A Quality-Relevant Sequential Phase Partition Approach for Regression Modeling and Quality Prediction Analysis in Manufacturing Processes

机译:制造过程中回归建模和质量预测分析的质量相关顺序相划分方法

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摘要

Competition and demand for consistent and high-quality product have spurred the development of quality prediction methods for industrial manufacturing processes. Multiplicity of phases is, in general, common nature of many batch manufacturing processes. Considering that different phases may have different effects on qualities, one of the key issues is how to partition the whole batch process into multiple phases. In the present work, an automatic quality-relevant step-wise sequential phase partition (QSSPP) algorithm is developed for phase-based regression modeling and quality prediction. It considers the time sequence of operation phases and can capture the time-varying quality prediction relationships. Using this algorithm, phases are separated in order from quality-relevant perspective, revealing different quality prediction relationships. The phase-based regression system is set up for online quality prediction and the online prediction results are quantitatively evaluated for each phase. The feasibility and performance of the proposed algorithm are illustrated by an important manufacturing process, injection molding.
机译:对一致和高质量产品的竞争和需求刺激了工业制造过程质量预测方法的发展。通常,许多批生产过程的相通用性。考虑到不同的阶段可能对质量产生不同的影响,关键问题之一是如何将整个批处理过程划分为多个阶段。在当前的工作中,针对基于相位的回归建模和质量预测,开发了一种与质量相关的自动逐步相序分配(QSSPP)自动算法。它考虑了操作阶段的时间顺序,并且可以捕获时变质量预测关系。使用此算法,从与质量相关的角度将阶段按顺序分离,从而揭示了不同的质量预测关系。建立基于阶段的回归系统进行在线质量预测,并对每个阶段的在线预测结果进行定量评估。通过一个重要的制造过程,即注塑成型,说明了该算法的可行性和性能。

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