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Least-Squares Estimation of the Common Pole-Zero Filter of Acoustic Feedback Paths in Hearing Aids

机译:助听器中声反馈路径的公共极点零滤波器的最小二乘估计

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In adaptive feedback cancellation both the convergence speed and the computational complexity depend on the number of adaptive parameters used to model the acoustic feedback paths. To reduce the number of adaptive parameters, it has been proposed to model the acoustic feedback paths as the convolution of a time-invariant common pole-zero filter and time-varying all-zero filters, enabling to track fast changes. In this paper, a novel procedure to estimate the common pole-zero filter of acoustic feedback paths is presented. In contrast to previous approaches which minimize the so-called equation-error, we propose to approximate the desired output-error minimization by employing a weighted least-squares procedure motivated by the Steiglitz–McBride iteration. The estimation of the common pole-zero filter is formulated as a semidefinite programming problem, to which a constraint based on the Lyapunov theory is added in order to guarantee the stability of the estimated pole-zero filter. Experimental results using measured acoustic feedback paths from a two microphone behind-the-ear hearing aid show that the proposed optimization procedure using the Lyapunov constraint outperforms existing optimization procedures in terms of modelling accuracy and added stable gain.
机译:在自适应反馈消除中,收敛速度和计算复杂度均取决于用于对声反馈路径建模的自适应参数的数量。为了减少自适应参数的数量,已经提出将声反馈路径建模为时不变的公共零极点滤波器和时变的全零滤波器的卷积,从而能够跟踪快速变化。在本文中,提出了一种新颖的估计声反馈路径的零极点滤波器的程序。与使所谓的方程式误差最小化的先前方法相比,我们建议通过采用由Steiglitz-McBride迭代驱动的加权最小二乘法来近似所需的输出误差最小化。将公共零极点滤波器的估计公式化为一个半定规划问题,在其中添加了基于李雅普诺夫理论的约束条件,以保证估计的零极点滤波器的稳定性。使用来自两个麦克风耳后助听器的测量声反馈路径的实验结果表明,使用Lyapunov约束的拟议优化程序在建模精度和增加的稳定增益方面优于现有优化程序。

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