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A new robust delayless subband adaptive filtering algorithm with variable step sizes for active control of broadband noise

机译:一种新的强大的无延长子带自适应滤波算法,可变步长,用于宽带噪声的主动控制

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摘要

Conventional delayless subband active noise control (ANC) systems can be degraded by the unexpected impulsive disturbances in the reference signal and/or the residual error signals despite the fact that the step sizes have been normalized by the variances of subband signals. Another inherent drawback is that an undesirable delay is introduced into the weight update path by using analysis filter banks, which reduces the upper bound of the step sizes thus limits the convergence rate. This paper proposes a novel robust and effective ANC algorithm configured in the delayless subband architecture for broadband noise cancellation. Instead of real-time providing threshold(s) on the reference and/or error signal as applied in most of the existing ANC algorithms for robustness, an online tuning scheme of bounded step sizes for the adaptive learning is developed for better convergence and outlier suppression. Box-constraint and time-averaging scheme deployed in the step size tuning guarantee robustness without requiring very accurate a priori information of the noises which might be corrupted by the impulses in real-world applications. In particular, this paper presents the stability and convergence analysis of the proposed closed-loop ANC system. Moreover, the computational complexity advantage is justified when compared to other state-of-the-art robust ANC algorithms. Numerical simulations are performed to validate the enhanced performance of the proposed algorithm for various colored noises with or without impulsive interferences. (C) 2020 Elsevier Ltd. All rights reserved.
机译:常规的无延迟子带有源噪声控制(ANC)系统可以通过参考信号中的意外脉冲干扰和/或残差误差信号来降低,尽管步骤尺寸由子带信号的差异被标准化。另一个固有缺点是通过使用分析滤波器组将不希望的延迟引入权重更新路径,这减少了步长尺寸的上限,从而限制了收敛速率。本文提出了一种在宽带噪声消除的无延时子带架构中配置的新型鲁棒和有效的ANC算法。代替在大多数现有ANC算法中应用于鲁棒性的参考和/或错误信号上的实时提供阈值,而是为更好的收敛和异常抑制开发了用于自适应学习的有界步骤尺寸的在线调谐方案。在步骤大小调整中部署的框限制和时间平均方案,保证了鲁棒性,而无需非常准确的噪声的先验信息,这些信息可能被真实应用中的冲动损坏。特别是,本文介绍了所提出的闭环ANC系统的稳定性和收敛性分析。此外,与其他最先进的强大的ANC算法相比,计算复杂性优势是合理的。执行数值模拟以验证具有或不具有脉冲干扰的各种彩色噪声的提高算法的增强性能。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Applied Acoustics》 |2021年第5期|107858.1-107858.11|共11页
  • 作者

    Long Guo; Lim Teik C.;

  • 作者单位

    Univ Texas Arlington Vibroacoust & Sound Qual Res Lab Dept Mech & Aerosp Engn ERB 103 500 UTA Blvd Arlington TX 76019 USA;

    Univ Texas Arlington Vibroacoust & Sound Qual Res Lab Dept Mech & Aerosp Engn ERB 103 500 UTA Blvd Arlington TX 76019 USA|Univ Cincinnati Cincinnati OH 45221 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Active noise control; Subband algorithm; Variable step size; Robust;

    机译:主动噪声控制;子带算法;可变步长;鲁棒;

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