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Advances in Lee-Schetzen Method for Volterra Filter Identification

机译:Lee-Schetzen方法用于Volterra滤波器识别的研究进展

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摘要

This paper concerns the identification of nonlinear discrete causal systems that can be approximated with the Wiener-Volterra series. Some advances in the efficient use of Lee-Schetzen (L-S) method are presented, which make practical the estimate of long memory and high order models. Major problems in L-S method occur in the identification of diagonal kernel elements. Two approaches have been considered: approximation of gridded data, with interpolation or smoothing, and improved techniques for diagonal elements estimation. A comparison of diagonal elements estimated, with different methods has been shown with extended tests on fifth order Volterra systems.
机译:本文涉及可通过Wiener-Volterra级数近似的非线性离散因果系统的识别。提出了有效利用Lee-Schetzen(L-S)方法的一些进展,这些进展使对长记忆和高阶模型的估计变得切实可行。 L-S方法的主要问题出现在对角核元素的识别中。已经考虑了两种方法:网格数据的近似,插值或平滑以及对角元素估计的改进技术。在五阶Volterra系统上进行了扩展测试,结果显示了使用不同方法估算的对角线元素的比较。

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