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Speech and noise power estimation using Gamma modeling

机译:使用Gamma建模的语音和噪声功率估计

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摘要

In speech enhancement, having an accurate estimation of the power of the speech and noise signals forming the noisy observation is critical, as it can highly affect the performance of the enhancement algorithm. A method is introduced in which the distributions of the power of the speech and noise periodograms are modeled using the Gamma distribution to extract their shape parameters. These shape parameters are later used in the observed noisy speech to estimate the power when forming speech and noise periodograms. This method results in more accurate and faster power estimation with respect to the well-known minimum statistics power estimation algorithm and together with the maximum a posteriori speech enhancement algorithm exhibits good speech enhancement performance.
机译:在语音增强中,对形成噪声观察的语音和噪声信号的功率进行准确估计至关重要,因为它会严重影响增强算法的性能。引入了一种方法,其中使用Gamma分布对语音和噪声周期图的功率分布进行建模,以提取其形状参数。这些形状参数随后会在观察到的嘈杂语音中使用,以估计形成语音和噪声周期图时的功率。与众所周知的最小统计功率估计算法相比,此方法可导致更准确,更快的功率估计,并且与最大后验语音增强算法一起表现出良好的语音增强性能。

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