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Incorporating delayed measurements in an improved high-degree cubature Kalman filter for the nonlinear state estimation of chemical processes

机译:在改进的高度Cubature Kalman滤波器中延迟测量,用于化学过程的非线性状态估计

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摘要

The on-line estimation of process quality variables has a large impact on the advanced monitoring and control techniques of chemical processes. The present study offers an improved high-degree cubature Kalman filter (HCKF) to solve the nonlinear state estimation problem of high-dimensional chemical processes. We substituted the Cholesky decomposition in the HCKF filter with a diagonalization transformation of the matrix. In addition, we enhanced numerical stability and estimation accuracy. On this basis, we present one nonlinear state estimation method based on the sample-state augmentation and improved HCKF to handle issues with delayed measurements. Finally, we used the nonlinear state estimation experiments for the polymerization process to validate the proposed method. The numerical results indicated the achievement of state estimation with higher accuracy and better stability following the effective utilization of the delayed measurements for nonlinear chemical processes. (C) 2018 ISA. Published by Elsevier Ltd. All rights reserved.
机译:过程质量变量的在线估计对化学过程的先进监测和控制技术产生了很大的影响。本研究提供了一种改进的高度Cubature Kalman滤波器(HCKF),以解决高维化学过程的非线性状态估计问题。我们用矩阵的对角化转换代替HCKF滤波器中的Cholesky分解。此外,我们增强了数值稳定性和估计精度。在此基础上,我们呈现了一种基于样本 - 状态增强和改进的Hckf的一个非线性状态估计方法来处理延迟测量的问题。最后,我们使用非线性状态估计实验进行聚合过程,以验证所提出的方法。数值结果表明,在有效利用非线性化学过程的延迟测量后,通过更高的精度和更好的稳定性来实现状态估计。 (c)2018 ISA。 elsevier有限公司出版。保留所有权利。

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