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Multi-subspace factor analysis integrated with support vector data description for multimode process monitoring

机译:集成支持向量数据描述的多子空间因子分析,用于多模式过程监控

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In modern plant-wide systems, chemical industry processes are usually equipped with multiple operating modes to meet the requirements of diversification products. Accurately identifying the running-on mode therefore becomes a focal point. Meanwhile, systems produce numerous process variables, along with complex relationships, which may deteriorate the effectiveness with which statistical processes are monitored. To solve this problem, this study proposes a multimode factor analysis (FA) method that integrates tegrates Pearson's correlation coefficient, joint probability, and support vector data description (SVDD). First, subspaces are generated automatically by using Pearson's coefficients of correlation among variables, instead of based on prior knowledge, which is not always available. Second, the statistical indices are derived by the FA models constructed in each subspace and each mode. Third, the running-on mode is identified according to the joint probabilities among the statistical indices. Finally, SVDD is adopted to provide an intuitive indication for fault detection. The efficiency and availability of the proposed method are demonstrated by three case studies: a numerical simulation, the continuous stirred-tank reactor (CSTR) model, and the Tennessee Eastman (TE) benchmark process. (C) 2018 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
机译:在现代化的全厂系统中,化学工业过程通常配备多种操作模式,以满足多样化产品的要求。因此,准确识别磨合模式成为重点。同时,系统会产生大量过程变量以及复杂的关系,这可能会降低监视统计过程的有效性。为了解决这个问题,本研究提出了一种多模式因子分析(FA)方法,该方法将Pearson的相关系数,联合概率和支持向量数据描述(SVDD)进行了积分。首先,通过使用变量之间的皮尔逊相关系数自动生成子空间,而不是基于并非总是可用的先验知识。其次,统计指标是通过在每个子空间和每个模式中构建的FA模型得出的。第三,根据统计指标之间的联合概率确定磨合模式。最后,采用SVDD为故障检测提供直观的指示。通过三个案例研究证明了该方法的效率和可用性:数值模拟,连续搅拌釜反应器(CSTR)模型和田纳西伊士曼(TE)基准过程。 (C)2018富兰克林研究所。由Elsevier Ltd.出版。保留所有权利。

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    《Journal of the Franklin Institute》 |2018年第15期|7664-7690|共27页
  • 作者单位

    East China Univ Sci & Technol, Minist Educ, Key Lab Adv Control & Optimizat Chem Proc, Shanghai, Peoples R China;

    East China Univ Sci & Technol, Minist Educ, Key Lab Adv Control & Optimizat Chem Proc, Shanghai, Peoples R China;

    East China Univ Sci & Technol, Minist Educ, Key Lab Adv Control & Optimizat Chem Proc, Shanghai, Peoples R China;

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