Variable Frame Length Of A Higher Order Speech AR Estimation In A Speech Enhancement System

J. M. Salavedra, E. Masgrau, A. Moreno, J. Estarellas
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引用次数: 1

Abstract

We study some speech enhancement algorithms based on the iterative Wiener filtering method due to Lim-Oppenheim [2], where the AR spectral estimation of the speech is carried out using a 2nd-order analysis. But in our algorithms we consider an AR estimation by means of cumulant analysis. This work extends some preceding papers due to the authors, providing a different frame length where AR estimation is done. Information of previous speech frames is used to initiate speech AR modelling of the current frame. Two parameters are introduced to dessign Wiener filter at first iteration of this iterative algorithm. These parameters are the Interframe Factor IF and the Previous Frame Iteration PFI. They allow a very important noise suppression after processing only fxst iteration of this algorithm, without any appreciable increase of distortion.
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语音增强系统中高阶语音AR估计的可变帧长
我们研究了一些基于Lim-Oppenheim[2]的迭代维纳滤波方法的语音增强算法,其中语音的AR谱估计是使用二阶分析进行的。但在我们的算法中,我们考虑通过累积量分析来估计AR。由于作者的原因,这项工作扩展了之前的一些论文,提供了不同的帧长度来进行AR估计。使用之前的语音帧信息启动当前帧的语音AR建模。在该迭代算法的第一次迭代中,引入两个参数来设计维纳滤波器。这些参数是帧间因子IF和前一帧迭代PFI。它们允许在处理该算法的第一次迭代后进行非常重要的噪声抑制,而没有任何明显的失真增加。
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