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Weighted Complex Orthogonal Estimator for Identifying Linear and Nonlinear Continuous Time Models from Generalised Frequency Response Functions.

机译:基于广义频率响应函数识别线性和非线性连续时间模型的加权复正交估计。

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摘要

A new weighted orthogonal least squares algorithm is derived to estimate linear and nonlinear continuous time differential equation models from complex frequency response data. The algorithm combines the properties and advantages of both weighted and orthogonal least squares algorithms. A weighted complex orthogonal estimator, obtained by combining the proposed algorithm with the modified error reduction ratio test provides an effective and robust way of detecting the correct model structure or determining which terms to include in the model and identifying the unknown parameters. Since the estimation procedure does not involve any numerical differentiation of the noisy data, the performance of the estimator under the influence of significant noise is quite satisfactory. The proposed estimator has been successfully applied to a variety of both linear and nonlinear systems.
机译:推导了一种新的加权正交最小二乘算法,可以根据复杂的频率响应数据估计线性和非线性连续时间微分方程模型。该算法结合了加权和最小二乘算法的特性和优点。通过将所提出的算法与改进的误差减少率测试相结合而获得的加权复数正交估计量,为检测正确的模型结构或确定模型中要包括哪些项以及识别未知参数提供了一种有效而强大的方法。由于估计程序不涉及噪声数据的任何数值微分,因此在明显噪声影响下的估计器性能非常令人满意。所提出的估计器已成功应用于各种线性和非线性系统。

著录项

  • 作者

    Swain, A.K.; Billings, S.A.;

  • 作者单位
  • 年度 1995
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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