Improving convergence in finite word length nonlinear active noise control systems

Raj Shah, Sandeep Reddy, Vinal Patel, N. George
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引用次数: 2

Abstract

An attempt has been made in this paper to improve the convergence of functional link artificial neural network (FLANN) based nonlinear active noise control (ANC) systems. This improvement has been achieved by formulating a recursive least square (RLS) training mechanism. However, FLANN-RLS ANC systems are not effective in noise mitigation when implemented in a finite word length scenario. A QR-RLS based training mechanism has been designed to improved convergence even in reduced word length implementations. A simulation study has been carried out to study the effectiveness of the proposed scheme in improving convergence when finite word length implementation is attempted. The proposed FLANN-QRRLS scheme has been shown to improve convergence behaviour in comparison with other schemes compared.
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改进有限字长非线性主动噪声控制系统的收敛性
本文对基于功能链路人工神经网络(FLANN)的非线性主动噪声控制(ANC)系统的收敛性进行了改进。这种改进是通过制定递归最小二乘(RLS)训练机制来实现的。然而,当在有限字长情况下实施时,FLANN-RLS ANC系统在降噪方面并不有效。设计了一种基于QR-RLS的训练机制,即使在减少单词长度的实现中也能提高收敛性。通过仿真研究,研究了在有限字长情况下,所提方案在提高收敛性方面的有效性。与其他方案相比,FLANN-QRRLS方案具有更好的收敛性能。
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