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Steady-State Performance of Spline Adaptive Filters

机译:样条自适应滤波器的稳态性能

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摘要

Recently, a novel class of nonlinear adaptive filters, called spline adaptive filters (SAFs), has been introduced and demonstrated to be very effective in many practical applications. The learning rules of these architectures are based on the least mean square (LMS) algorithm. In order to provide theoretical foundation to the SAF, in this paper we provide a steady-state performance evaluation. In particular, after the stochastic analysis of the mean behavior of the SAF approach under the Gaussian assumption, the analytical derivation of the theoretical excess mean square error (EMSE) and the normalized misadjustment are derived and discussed. The proposed analysis of EMSE and misadjustment is based on the energy conservation approach that has been extended to SAF architecture. The derived theoretical analysis allows to accurately predict the steady-state performance. Therefore, some properties for the correct choice of filter parameters are also provided. Experimental results demonstrate the effectiveness of the analysis results.
机译:最近,一种新型的非线性自适应滤波器被称为样条自适应滤波器(SAF),并已被证明在许多实际应用中非常有效。这些体系结构的学习规则基于最小均方(LMS)算法。为了为SAF提供理论基础,本文提供了稳态性能评估。特别是,在对高斯假设下的SAF方法的平均行为进行随机分析之后,得出并讨论了理论上的均方误差(EMSE)的分析推导和归一化的失调。提议的EMSE和失调分析是基于已扩展到SAF体系结构的节能方法。派生的理论分析可以准确地预测稳态性能。因此,还提供了一些正确选择过滤器参数的属性。实验结果证明了分析结果的有效性。

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