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A PEM-based frequency-domain Kalman filter for adaptive feedback cancellation

机译:基于PEM的频域卡尔曼滤波器用于自适应反馈消除

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摘要

Adaptive feedback cancellation (AFC) algorithms are used to solve the problem of acoustic feedback, but, frequently, they do not address the fundamental problem of loudspeaker and source signal correlation, leading to an estimation bias if standard adaptive filtering methods are used. Loudspeaker and source signal prefiltering via the prediction-error method (PEM) can address this problem. In addition to this, the use of a frequency-domain Kalman filter (FDKF) is an appealing tool for the estimation of the adaptive feedback canceler, given the advantages it offers over other common techniques, such as Wiener filtering. In this paper, we derive an algorithm employing a PEM-based prewhitening and a frequency-domain Kalman filter (PEM-FDKF) for AFC. We demonstrate its improved performance when compared with standard frequency-domain adaptive filter (FDAF) algorithms, in terms of reduced estimation error, achievable amplification and sound quality.
机译:自适应反馈消除(AFC)算法用于解决声学反馈问题,但通常无法解决扬声器和源信号相关性的基本问题,如果使用标准自适应滤波方法,则会导致估计偏差。通过预测误差方法(PEM)对扬声器和源信号进行预滤波可以解决此问题。除此之外,鉴于频域卡尔曼滤波器(FDKF)相对于其他常见技术(如维纳滤波)所具有的优势,使用频域卡尔曼滤波器(FDKF)是一种吸引人的工具,可用于估计自适应反馈消除器。在本文中,我们推导了一种算法,该算法采用基于PEM的预白化和用于AFC的频域卡尔曼滤波器(PEM-FDKF)。我们证明了与标准频域自适应滤波器(FDAF)算法相比,它在降低估计误差,可实现的放大率和音质方面的性能得到改善。

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