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Analysis of the Decision-Directed SNR Estimator for Speech Enhancement With Respect to Low-SNR and Transient Conditions

机译:针对低信噪比和瞬态条件的语音增强决策型SNR估计器的分析

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Because of their many applications and their relative ease of implementation, single-channel speech enhancement algorithms have received much attention. As a consequence, a vast amount of publications on estimation procedures and their implementation in noise reduction systems exists. However, there has been little systematic research on the theoretic performance of such estimators. In this paper, we provide a systematic analysis of the performance of noise reduction algorithms in low signal-to-noise ratio (SNR) and transient conditions, where we consider approaches using the well-known decision-directed SNR estimator. We show that the smoothing properties of the decision-directed SNR estimator in low SNR conditions can be analytically described and that the limits of noise reduction for widely used spectral speech estimators based on the decision-directed approach can be predicted. We also illustrate that achieving both a good preservation of speech onsets in transient conditions on one side and the suppression of musical noise on the other can be especially problematic when the decision-directed SNR estimation is used.
机译:由于它们的众多应用和相对容易实现,单通道语音增强算法已受到广泛关注。结果,存在关于估计程序及其在降噪系统中的实现的大量出版物。但是,关于此类估计器的理论性能的系统研究很少。在本文中,我们对低信噪比(SNR)和瞬态条件下的降噪算法性能进行了系统分析,在这些条件下,我们考虑了使用众所周知的决策导向SNR估计器的方法。我们表明,可以解析地描述低信噪比条件下决策导向SNR估计器的平滑特性,并且可以预测基于决策导向方法的广泛使用的频谱语音估计器的降噪极限。我们还说明,当使用决策导向的SNR估计时,一方面在瞬态条件下实现良好的语音开始保存,另一方面在音乐噪声的抑制上实现特别困难。

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