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A method for noninvasive on-line secondary path modeling for the filtered-X LMS algorithm for active control of periodic noise.

机译:一种用于主动控制周期性噪声的Filtered-X LMS算法的无创在线辅助路径建模方法。

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摘要

A novel method for noninvasive on-line secondary path modeling for the filtered-X LMS algorithm is proposed for the active control of periodic noise. Previous noninvasive algorithms have utilized iterative search methods that have proven unsuccessful in delivering sufficiently accurate secondary path models for use by the filtered-X LMS-based control system, especially in time-varying systems, resulting in poor performance and instability. The proposed method, based in the frequency domain, uses the concept of linear independence of two equations/two unknowns to arrive at the secondary path estimate. Linear independence of the two equations is achieved by adjusting the control filter output via the filter coefficients prior to the acquisition of the second set of data corresponding to the second equation.; The proposed method is tested on a unique “sound-free” system designed and built specifically for the validation of active noise control algorithms. A summing junction circuit simulates the interference between the primary and secondary disturbances while a computer housing a manually adjustable filter provides a time-varying secondary path; signal generators provide the reference signal. Sinusoidal and dual-frequency signals are used to validate the proposed method. In order to demonstrate the ability of the proposed secondary path modeler to track system changes, tests are conducted where the frequencies are shifted and also where the secondary path is evolving. The secondary path estimates are then compared to the correct estimates ascertained using an LMS-based adaptive filter. The results reflect a simple and elegant secondary path modeling algorithm that provides estimates of unprecedented accuracy for time-varying systems. This accuracy in turn allows for stable operation of the filtered-X LMS-based control filter and thus reliable noise cancellation performance.
机译:提出了一种用于滤波X LMS算法的无创在线次级路径建模的新方法,用于主动控制周期性噪声。先前的非侵入性算法已经利用了迭代搜索方法,这些方法已证明无法成功提供足够精确的辅助路径模型,以供基于X滤波的LMS的控制系统使用,尤其是在时变系统中,从而导致性能和不稳定。所提出的方法基于频域,使用两个方程/两个未知数的线性独立性的概念来得出次级路径估计。两个方程的线性独立性是通过在获取对应于第二方程的第二组数据之前,通过滤波器系数调节控制滤波器的输出来实现的。该方法在独特的“无声”系统上进行了测试,该系统是专门为验证有源噪声控制算法而设计和构建的。求和结电路模拟一次和二次干扰之间的干扰,而装有手动可调滤波器的计算机则提供随时间变化的二次路径。信号发生器提供参考信号。正弦和双频信号用于验证该方法。为了证明所提出的次级路径建模器跟踪系统变化的能力,在频率发生偏移以及次级路径不断变化的地方进行了测试。然后将次级路径估计与使用基于LMS的自适应滤波器确定的正确估计进行比较。结果反映了一种简单而优雅的辅助路径建模算法,该算法为时变系统提供了前所未有的准确性估计。这种准确性又可以使基于X滤波的LMS的控制滤波器稳定运行,从而实现可靠的噪声消除性能。

著录项

  • 作者

    Kim, Benjamin Jung.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Physics Acoustics.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 声学;无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:46:28

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