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Error Compensation-based Time-Space Separation Modeling Method for Complex Distributed Parameter Processes

机译:复杂分布式参数流程的基于误差补偿的时空分离建模方法

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Constructing a model for nonlinear distributed parameter systems (DPSs) is challenging due to their strong nonlinearity and spatiotemporal nature. As a result, most DPS modeling methods have low modeling accuracy for strongly nonlinear DPSs and this inaccuracy is primarily due to truncation errors and neglect of nonlinear dynamics. Here, an error compensation-based time-space separation modeling method is proposed to better resolve these limitations. We first constructed a Karkunen-Loeve and least squares support vector machine (KL-LS-SVM) time-space separation model to represent the main dynamic behavior. Simultaneously, we developed a spatiotemporal least squares support vector machine (LS-SVM) to compensate for any modeling errors due to either truncation or unknown nonlinear dynamics. These two models were then integrated to construct a complete spatiotemporal model, which allowed for the reconstruction of the DPSs. Performance analyses and experimental validation further showed that the proposed method can effectively model complex nonlinear DPSs and have better modeling ability than more commonly used DPSs modeling methods. (C) 2019 Elsevier Ltd. All rights reserved.
机译:由于其强烈的非线性和时空性,构建非线性分​​布参数系统(DPSS)的模型是挑战性。结果,大多数DPS建模方法对强不动性DPS的模型精度低,并且这种不准确性主要是由于截断误差和非线性动力学的忽视。这里,提出了一种基于误差补偿的时间空间分离建模方法以更好地解决这些限制。我们首先构建了一个Karkunen-Loeve和最小二乘支持向量机(KL-LS-SVM)时间空间分离模型来表示主要动态行为。同时,我们开发了一种时空最小二乘支持向量机(LS-SVM),以补偿由于截断或未知的非线性动力学引起的任何建模误差。然后整合这两种模型以构建完整的时空模型,允许重建DPS。性能分析和实验验证进一步表明该方法可以有效地模拟复杂的非线性DPS,并且具有比更常用的DPS模拟方法更好的建模能力。 (c)2019年elestvier有限公司保留所有权利。

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