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Minima-controlled speech presence uncertainty tracking method for speech enhancement

机译:用于语音增强的最小控制语音存在不确定性跟踪方法

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摘要

In speech enhancement, soft decision, in which the speech absence probability (SAP) is introduced to modify the spectral gain or update the noise power, is known to be efficient. In many previous works, a fixed a priori probability of speech absence (q) is assumed in estimating the SAP, which is not realistic since speech is quasi-stationary and may not be present in each frequency bin. To address this problem, Malah et al. devised a novel method to obtain distinct values of q for each frequency bin in many frames by comparing the a posteriori SNR to a threshold value [9]. In this regard, a novel algorithm is achieved by taking an advantage of a minima-controlled recursive averaging (MCRA) technique that allows for the robust tracking of speech absence in time. This leads to the improved tracking performance of speech absence in speech enhancement and better results in the objective and subjective evaluation tests.
机译:在语音增强中,软判决是有效的,在软判决中引入语音缺失概率(SAP)来修改频谱增益或更新噪声功率。在许多先前的工作中,在估计SAP时假定存在语音不存在的先验概率(q),这是不现实的,因为语音是准平稳的,并且可能不在每个频点中出现。为了解决这个问题,Malah等。设计了一种新颖的方法,通过将后验SNR与阈值进行比较,从而获得许多帧中每个频率仓的q的不同值[9]。在这方面,通过利用最小控制的递归平均(MCRA)技术的优势实现了一种新颖的算法,该技术允许及时跟踪语音缺失。这导致语音增强中语音缺失的改进跟踪性能,并在客观和主观评估测试中获得更好的结果。

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