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Frequency domain identification with generalized orthonormal basis functions

机译:具有广义正交基函数的频域识别

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摘要

A method is considered for the identification of linear parametric models based on a least squares identification criterion that is formulated in the frequency domain, To this end, use is made of the empirical transfer function estimate (ETFE), identified from time-domain data. As a parametric model structure use is made of a finite expansion sequence in terms of recently introduced generalized basis functions, being generalizations of the classical pulse and Laguerre and Kautz types of bases. An asymptotic analysis of the estimated models is provided and conditions for consistency are formulated. Explicit and transparent bias and variance expressions are established, the latter ones also valid in a situation of undermodeling.
机译:考虑了一种基于在频域中制定的最小二乘识别标准来识别线性参数模型的方法。为此,使用了从时域数据中识别出的经验传递函数估计(ETFE)。作为参数模型结构,根据最近引入的广义基函数,使用了有限的扩展序列,这是经典脉冲,Laguerre和Kautz类型的基数的泛化。提供了估计模型的渐近分析,并制定了一致性条件。建立了明确,透明的偏差和方差表达式,后者在模型不足的情况下也有效。

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