In this paper, we explore an acoustic feedback cancellation (AFC) algorithm that integrates the correntropy-based data-selective algorithm within the prediction error method (PEM). The data selective approach compares the performance of using the error signal $e(n)$ and the pre-whitened error signal $e_{p}(n)$ as data samples. It is shown that using the error signal provides superior system performance and audio quality compared to the pre-whitened error signal, while closely approximating the performance of the original algorithm.
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关键词
acoustic feedback cancellation,prediction error method,correntropy-based data selective algorithms,resource efficiency