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Parameter estimation algorithms for dynamical response signals based on the multi-innovation theory and the hierarchical principle

机译:基于多元创新理论和层次原理的动力响应信号参数估计算法

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摘要

In this study, the authors consider the parameter estimation problem of the response signal from a highly non-linear dynamical system. The step response experiment is taken for generating the measured data. Considering the stochastic disturbance in the industrial process and using the gradient search, a multi-innovation stochastic gradient algorithm is proposed through expanding the scalar innovation into an innovation vector in order to obtain more accurate parameter estimates. Furthermore, a hierarchical identification algorithm is derived by means of the decomposition technique and interaction estimation theory. Regarding to the coupled parameter problem between subsystems, the authors put forward the scheme of replacing the unknown parameters with their previous parameter estimates to realise the parameter estimation algorithm. Finally, several examples are provided to access and compare the behaviour of the proposed identification techniques.
机译:在这项研究中,作者考虑了来自高度非线性动力系统的响应信号的参数估计问题。进行阶跃响应实验以生成测量数据。考虑到工业过程中的随机扰动,并采用梯度搜索,通过将标量创新扩展为创新向量,提出了一种多创新随机梯度算法,以获得更准确的参数估计。此外,利用分解技术和交互估计理论推导了层次识别算法。针对子系统之间的耦合参数问题,作者提出了用未知参数替换以前的参数估计值的方案,以实现参数估计算法。最后,提供了一些示例来访问和比较所提出的识别技术的行为。

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