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Weighted Semi-supervised Orthogonal Factor Analysis Model for Quality-Related Process Monitoring

机译:质量相关过程监控的加权半监督正交因子分析模型

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Probabilistic model has already been widely used for process monitoring. However, the obtained factors may contain quality-unrelated information, which is harmful to the quality-related process monitoring. Meanwhile, considering the situation of unequal sample rates of process and quality variables, a semi -supervised orthogonal factor analysis (Semi -SOFA) model is presented, further, to improve robustness, Semi-SOFA is extended to weighted form (WSemi-SOFA). This paper performs orthogonal decomposition on the obtained factors, which divides them into two parts: quality-related one and quality-unrelated one. Based on it, the corresponding$T^{2}$statistics are designed to offer quality-related process monitoring, respectively. Besides, SPE statistics are constructed as supplement to monitor residuals. For effectiveness demonstration of the proposed method, TE benchmark is utilized.
机译:概率模型已被广泛用于过程监控。但是,获得的因素可能包含与质量无关的信息,这对与质量相关的过程监视有害。同时,考虑到过程和质量变量采样率不相等的情况,提出了半监督正交因子分析(Semi -SOFA)模型,为提高鲁棒性,将Semi-SOFA扩展为加权形式(WSemi-SOFA) 。本文对获得的因子进行正交分解,将其分为与质量相关的两个部分和与质量无关的两个部分。基于它,对应 $ T ^ {2} $ 统计信息旨在分别提供与质量相关的过程监控。此外,SPE统计信息可作为补充以监控残差。为了证明所提出方法的有效性,使用了TE基准。

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