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Design of Nonlinear Filters Using Affine Projection Algorithm Based Exact and Approximate Adaptive Exponential Functional Link Networks

机译:基于精确和近似自适应指数函数链路网络的仿射投影算法设计非线性滤波器的设计

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摘要

Adaptive exponential functional link network (AEFLN) is a recently developed linear-in-the-parameters nonlinear adaptive filter. It has been observed that the convergence performance of the AEFLN filter deteriorates in the presence of colored and/or correlated inputs. To overcome this issue, an affine projection algorithm (APA) based AEFLN (AEFLN-APA) filter is proposed in this brief. To reduce the hardware complexity of the proposed filter, an approximate AEFLN-APA filter is also developed. The proposed APA-based filters are found to provide improved modeling accuracy in nonlinear system identification scenarios. In this brief, the proposed nonlinear filters are also applied to active noise control (ANC) systems. An adaptive exponential filtered-s APA (AEFsAPA) is developed to enhance the noise mitigation capability of an ANC system. In addition, an approximate AEFsAPA is also formulated to achieve reduced-complexity implementation of AEFsAPA. Simulation results demonstrate the improved convergence behavior of the proposed schemes in nonlinear active noise mitigation scenarios.
机译:自适应指数功能链路网络(AEFLN)是最近开发的直线参数非线性自适应滤波器。已经观察到,AEFLN过滤器的收敛性能在存在着色和/或相关输入的情况下劣化。为了克服这个问题,在这个简短的情况下提出了一种基于仿射投影算法(APA)的AFLN(AEFLN-APA)滤波器。为了降低所提出的滤波器的硬件复杂性,还开发了近似的AEFLN-APA滤波器。发现所提出的基于APA的过滤器在非线性系统识别方案中提供了改进的建模精度。在此简介中,所提出的非线性滤波器也应用于有源噪声控制(ANC)系统。开发了一种自适应指数滤波器-SAPA(AEFSAPA)以增强ANC系统的噪声缓解能力。此外,还配制了近似的αEFSAPA以实现艾斯帕的减少的复杂性实现。仿真结果展示了非线性活动噪声缓解方案中提出的方案的改善行为。

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