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Parallel PCA-KPCA for nonlinear process monitoring

机译:并行PCA-KPCA用于非线性过程监控

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Both linear and nonlinear relationships may exist among process variables, and monitoring a process with such complex relationships among variables is imperative. However, individual principal component analysis (PCA) or kernel PCA (KPCA) may not be able to characterize these complex relationships well. This paper proposes a parallel PCA-KPCA (P-PCA-KPCA) modeling and monitoring scheme that incorporates randomized algorithm (RA) and genetic algorithm (GA) for efficient fault detection for a process with linearly correlated and nonlinearly related variables First, to determine the included variables in the parallel PCA (P-PCA) and the parallel KPCA (P-KPCA) models, GA-based optimization is performed, in which RA is used to generate faulty validation data. Second, monitoring statistics are established for the P-PCA and the P-KPCA models, in which the process status is determined. The proposed monitoring scheme discriminates the linear and nonlinear relationships among variables in a process and deals with nonlinear processes efficiently. We provide case studies on a numerical example and the continuous stirred tank reactor process. These case studies demonstrate that the proposed P-PCA-KPCA monitoring scheme is better than conventional PCA- or KPCA-based methods at performing nonlinear process monitoring.
机译:过程变量之间可能同时存在线性和非线性关系,因此必须使用变量之间的这种复杂关系来监视过程。但是,单个主成分分析(PCA)或内核PCA(KPCA)可能无法很好地表征这些复杂的关系。本文提出了一种并行PCA-KPCA(P-PCA-KPCA)建模和监控方案,该方案结合了随机算法(RA)和遗传算法(GA),可以对具有线性相关和非线性相关变量的过程进行有效的故障检测。首先,确定在并行PCA(P-PCA)和并行KPCA(P-KPCA)模型中包含变量时,将执行基于GA的优化,其中RA用于生成错误的验证数据。其次,为P-PCA和P-KPCA模型建立监视统计信息,并在其中确定过程状态。所提出的监视方案区分了过程中变量之间的线性和非线性关系,并有效地处理了非线性过程。我们提供了一个数值示例和连续搅拌釜反应器过程的案例研究。这些案例研究表明,提出的P-PCA-KPCA监视方案在执行非线性过程监视方面比常规的基于PCA或KPCA的方法更好。

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