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Adaptive variable step-size neural controller for nonlinear feedback active noise control systems

机译:非线性反馈有源噪声控制系统的自适应变步长神经控制器

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摘要

Abstract Adaptive filter techniques and the filtered-x least mean square (FxLMS) algorithm have been used in Active Noise Control (ANC) systems. However, their effectiveness may degrade due to the nonlinearities and modeling errors in the system. In this paper, a new feedback ANC system with an adaptive neural controller and variable step-size learning parameters (VSSP) is proposed to improve the performance. A nonlinear adaptive controller with the FxLMS algorithm is first designed to replace the traditional adaptive FIR filter; then, a variable step-size learning method is developed for online updating the controller parameters. The proposed control is implemented without any offline learning phase, while faster convergence and better noise elimination can be achieved. The main contribution is that we show how to analyze the stability of the proposed closed-loop ANC systems, and prove the convergence of the presented adaptations. Moreover, the computational complexities of different methods are compared. Comparative simulation results demonstrate the validity of the proposed methods for attenuating different noise sources transferred via nonlinear paths, and show the improved performance over classical methods.
机译:摘要自适应滤波技术和X最小均方滤波(FxLMS)算法已用于主动噪声控制(ANC)系统中。但是,由于系统中的非线性和建模错误,它们的有效性可能会降低。本文提出了一种新的具有自适应神经控制器和可变步长学习参数(VSSP)的反馈ANC系统,以提高性能。首先设计了具有FxLMS算法的非线性自适应控制器来代替传统的自适应FIR滤波器。然后,开发了一种可变步长学习方法,用于在线更新控制器参数。所提出的控制无需任何离线学习阶段即可实施,同时可以实现更快的收敛和更好的噪声消除。主要的贡献是,我们展示了如何分析所提出的闭环ANC系统的稳定性,以及证明所提出的适应性的收敛性。此外,比较了不同方法的计算复杂度。对比仿真结果证明了所提方法对衰减通过非线性路径传递的不同噪声源的有效性,并显示了优于传统方法的性能。

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