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Mean square performance evaluation in frequency domain for an improved adaptive feedback cancellation in hearing aids

机译:在频域中进行均方性能评估,以改善助听器的自适应反馈消除

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We consider an adaptive linear prediction based feedback canceller for hearing aids that exploits two (an external and a shaped) noise signals for a bias-less adaptive estimation. In particular, the bias in the estimate of the feedback path is reduced by synthesizing the high-frequency spectrum of the reinforced signal using a shaped noise signal. Moreover, a second shaped (probe) noise signal is used to reduce the closed-loop signal correlation between the acoustic input and the loudspeaker signal at low frequencies. A power-transfer-function analysis of the system is provided, from which the effect of the system parameters and adaptive algorithms [normalized least mean square (NLMS) and recursive least square (RLS)] on the rate of convergence, the steady-state behaviour and the stability of the feedback canceller is explicitly found. The derived expressions are verified through computer simulations. It is found that, as compared to feedback canceller without probe noise, the cost of achieving an unbiased estimate of the feedback path using the feedback canceller with probe noise is a higher steady-state misadjustment for the RLS algorithm, whereas a slower convergence and a higher tracking error for the NLMS algorithm. (C) 2018 Elsevier B.V. All rights reserved.
机译:我们考虑用于助听器的基于自适应线性预测的反馈消除器,该消除器利用两个(外部和成形的)噪声信号进行无偏差自适应估计。特别地,通过使用整形噪声信号合成增强信号的高频频谱来减少反馈路径的估计中的偏差。此外,第二整形(探头)噪声信号用于降低低频时声音输入和扬声器信号之间的闭环信号相关性。提供了系统的功率传递函数分析,系统参数和自适应算法[归一化最小均方(NLMS)和递归最小二乘(RLS)]对系统的收敛速度,稳态有影响。明确发现了反馈消除器的行为和稳定性。通过计算机仿真验证了派生的表达式。已经发现,与没有探头噪声的反馈抵消器相比,使用带有探头噪声的反馈抵消器来实现反馈路径的无偏估计的代价是RLS算法的稳态失调较高,而收敛速度较慢且收敛速度较慢。 NLMS算法的跟踪误差较高。 (C)2018 Elsevier B.V.保留所有权利。

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