Double-talk detection using the singular value decomposition for acoustic echo cancellation

M. Hamidia, A. Amrouche
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引用次数: 9

Abstract

One of the major problems in voiced communication systems is the presence of acoustic echoes generated from the coupling between the loudspeaker and the microphone. In this paper, a new method of Double-Talk Detection (DTD) for Acoustic Echo Cancellation (AEC), based on the Singular Value Decomposition (SVD), is proposed. Usually, the performances of the AEC, which is based on adaptive filtering, degrade seriously in the presence of speech issued from the near-end speaker (double-talk). Then, Double Talk Detection system must be added to AEC, for controlling the adaptation of the adaptive filter coefficients. For this purpose, we introduce the SVD of the far-end signal for detecting the double-talk periods. The obtained results, using TIMIT database, show that the proposed method outperforms the classical Geigel algorithm and Normalized Cross-Correlation (NCC) algorithm.
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基于奇异值分解的双声检测回声消除
语音通信系统的主要问题之一是由于扬声器和麦克风之间的耦合而产生的回声。本文提出了一种基于奇异值分解(SVD)的声学回声消除双声检测(DTD)新方法。通常,基于自适应滤波的AEC在近端说话者(双话)讲话时,其性能会严重下降。然后,必须在AEC中加入双话检测系统,以控制自适应滤波器系数的自适应。为此,我们引入了远端信号的奇异值分解来检测双腔周期。基于TIMIT数据库的结果表明,该方法优于经典的Geigel算法和归一化互相关(NCC)算法。
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