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Data-Driven Modeling of a Coupled Electric Drives System Using Regularized Basis Function Volterra Kernels

机译:使用正则基函数Volterra核的耦合电驱动系统的数据驱动建模

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In this paper, we consider the problem of data-driven modeling for systems containing nonlinear sensors. The issue is explored via an established nonlinear benchmark in the system identification community, referred to as the "coupled electric drives." In the benchmark system, nonlinearity emerges in the pulse transducer used to measure the angular velocity of a pulley, which is invariant to the direction of rotation. In order to model the nonlinear dynamics without the use of extensive prior knowledge, we estimate a nonparametric Volterra series model using a regularized basis function approach. While the Volterra series is typically an impractical modeling tool due to the large number of parameters required, we obtain accurate models using only a short estimation dataset, by directly regularizing the basis function expansions of each Volterra kernel in a Bayesian framework.
机译:在本文中,我们考虑了包含非线性传感器的系统的数据驱动建模问题。通过在系统识别社区中建立的非线性基准(称为“耦合电驱动器”)来探讨该问题。在基准系统中,非线性会出现在用于测量皮带轮角速度的脉冲传感器中,该角速度对于旋转方向是不变的。为了在不使用大量先验知识的情况下对非线性动力学建模,我们使用正则基函数方法估计了非参数Volterra级数模型。由于需要大量参数,虽然Volterra系列通常是不切实际的建模工具,但我们仅通过使用贝叶斯框架中的每个Volterra内核的基函数展开直接正则化,仅使用较短的估算数据集即可获得准确的模型。

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