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Adaptive Feedback Cancellation for Hearing Aids Using the Prediction-Error Method with Orthonormal Basis Functions

机译:具有正交基函数的预测误差方法用于助听器的自适应反馈消除

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Hearing aids are susceptible to acoustic feedback, which limits the achievable amplification and may severely degrade the sound quality by producing howling artifacts. A potential method of feedback cancellation employs prediction of the feedback path (FP) with an adaptive filter. However, estimation of the FP suffers a large model error, known as the bias, due to correlation between the loudspeaker and source signals. A prediction-error method (PEM) based pre-whitening filter has been utilized to reduce the bias. However, this approach requires a large number of adaptive parameters, thus reducing the convergence rate and limiting the added stable gain (ASG). We introduce a PEM-based method derived based upon the orthonormal basis functions (OBFs) to estimate the FP with a small number of adaptive parameters and the source signal using an autoregressive model. The OBF filter is defined by a set of fixed poles and adaptive tap-output weights. The poles are estimated using an inherently stable least-squares method and embedded into the filter as a priori information. Experimental results show that the proposed method enhances the convergence rate and significantly increases the ASG compared to the standard PEM, while uses far fewer adaptive parameters.
机译:助听器容易受到声音反馈的影响,这会限制可实现的放大,并可能通过产生啸叫声而严重降低声音质量。一种潜在的反馈消除方法是使用自适应滤波器对反馈路径(FP)进行预测。但是,由于扬声器和源信号之间的相关性,FP的估计会遭受较大的模型误差(称为偏差)。基于预测误差方法(PEM)的预白化滤波器已被用来减少偏差。但是,这种方法需要大量的自适应参数,从而降低了收敛速度并限制了增加的稳定增益(ASG)。我们介绍了基于正交基函数(OBF)派生的基于PEM的方法,以使用自回归模型估算具有少量自适应参数和源信号的FP。 OBF滤波器由一组固定极点和自适应抽头输出权重定义。使用固有稳定的最小二乘法估算极点,并将其作为先验信息嵌入到滤波器中。实验结果表明,与标准PEM相比,该方法提高了收敛速度,并显着提高了ASG,同时使用的自适应参数要少得多。

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