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Nonlinear state estimation with delayed measurements using data fusion technique and cubature Kalman filter for chemical processes

机译:使用数据融合技术和Cubature Kalman滤波器进行化学过程的延迟测量的非线性状态估计

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摘要

Nonlinear state estimation with delayed measurements has been considered in many industrial applications. However, classical methods cannot use these slow rates, irregular, delayed measurements, even though the delayed measurements are usually more accurate. Therefore, finding a method to utilize these delayed measurements can improve the accuracy and robustness of nonlinear state estimation. As this aim, one nonlinear state estimation method with delayed measurements using data fusion technique and cubature Kalman filter is proposed. The framework of processing delayed measurements was elaborated by applying the data fusion technique of covariance matrix. Then, two kinds of data fusion methods, with corresponding merits and faults in speed and accuracy, were described. Finally, the efficacy of the proposed methods is demonstrated by a chemical application of the nonlinear polymerization process. (C) 2018 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:在许多工业应用中考虑了具有延迟测量的非线性状态估计。然而,即使延迟的测量通常更准确,古典方法也不能使用这些慢速速率,不规则,延迟测量。因此,找到利用这些延迟测量的方法可以提高非线性状态估计的精度和鲁棒性。如该目的,提出了一种使用数据融合技术和Cubature Kalman滤波器的延迟测量的一个非线性状态估计方法。通过应用协方差矩阵的数据融合技术,详细阐述了处理延迟测量的框架。然后,描述了两种数据融合方法,具有相应的优点和速度和精度的故障。最后,通过非线性聚合方法的化学应用来证明所提出的方法的功效。 (c)2018化学工程师机构。 elsevier b.v出版。保留所有权利。

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