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Profile monitoring of reflow process using approximations of mixture second-order polynomials

机译:使用混合二阶多项式的近似值对回流过程进行轮廓监控

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摘要

Lately, profile monitoring has received considerable attention in the statistical process control research field. This paper proposes a novel monitoring framework for the reflow process data, which uses two goodness-of-fit criteria to select the change points in the mixture polynomial model. Among change points, the mixture second-order polynomials are utilized to piecewisely approximate the nonlinear profile data of the reflow process. The well-known Hotelling T-2 and proposed EWMA(4) control charts are then employed to monitor the parameter estimates. The experimental results demonstrate that the proposed monitoring framework presents better performances in detecting outlying profiles than the conventional methods in phase I. In phase II, the performance of the proposed framework is assessed in terms of the out-of-control average run length. Copyright (c) 2014 John Wiley & Sons, Ltd.
机译:最近,在统计过程控制研究领域中,概要文件监视已引起相当大的关注。本文提出了一种用于回流过程数据的新型监视框架,该框架使用两个拟合优度准则来选择混合多项式模型中的变化点。在变化点中,混合二阶多项式用于分段逼近回流过程的非线性轮廓数据。然后使用著名的Hotelling T-2和提出的EWMA(4)控制图来监视参数估计。实验结果表明,与第一阶段的常规方法相比,该提议的监视框架在检测离群轮廓方面表现出更好的性能。在第二阶段,该提议的框架的性能是根据失控的平均运行时间进行评估的。版权所有(c)2014 John Wiley&Sons,Ltd.

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