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首页> 外文期刊>IEEE transactions on circuits and systems . I , Regular papers >Design of Adaptive Exponential Functional Link Network-Based Nonlinear Filters
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Design of Adaptive Exponential Functional Link Network-Based Nonlinear Filters

机译:基于自适应指数功能链接网络的非线性滤波器设计

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摘要

A novel nonlinear filter, which incorporates the concept of exponential sinusoidal models into nonlinear filters based on functional link networks (FLNs) has been developed in this paper. The proposed filter is designed to provide improved convergence characteristics over traditional FLN filters. The conventional trigonometric FLN may be considered as a special case of the proposed adaptive exponential FLN (AEFLN). An adaptive exponential least mean square (AELMS) algorithm has been derived and the same has been successfully applied for identification of a couple of nonlinear plants. The AEFLN-based nonlinear active noise control (ANC) system has also been designed and an adaptive exponential filtered-s least mean square (AEFsLMS) algorithm has been developed to update the weights as well as the exponential factor. Simulation study has revealed the improved noise mitigation offered by the AEFLN-based nonlinear ANC system.
机译:本文开发了一种新颖的非线性滤波器,它将指数正弦模型的概念整合到基于功能链接网络(FLN)的非线性滤波器中。提出的滤波器旨在提供比传统FLN滤波器更高的收敛特性。常规三角函数FLN可以视为提出的自适应指数FLN(AEFLN)的特殊情况。自适应指数最小均方(AELMS)算法已被推导出,并且该算法已成功应用于识别两个非线性植物。还设计了基于AEFLN的非线性主动噪声控制(ANC)系统,并开发了自适应指数滤波最小均方(AEFsLMS)算法来更新权重和指数因子。仿真研究表明,基于AEFLN的非线性ANC系统提供了改进的噪声缓解功能。

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