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Soft Decision Based Laplacian Model Factor Estimation for Noisy Speech Enhancement

机译:基于软决策的Laplacian模型因子估计噪声语音增强

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The Laplacian model factor estimation is a critical link for noisy speech enhancement technique employing Laplacian statistical model priori of clean speech. In this letter, we propose a novel estimation algorithm for this parameter based on soft decision in discrete cosine transform domain. As the speech signal is not always present in the noisy speech signal at all components, we first compute the speech presence probability which is decided in each discrete cosine transform component, and then based on the minimum mean square error estimation theory, the Laplacian model factor is estimated in the speech presence stage. Simulation experiment results demonstrate that the proposed algorithm possesses improved performance than that of the conventional method under different noisy conditions and levels.
机译:拉普拉斯模型因子估计是噪声语音增强技术的关键链路,采用清洁语音的拉普拉斯统计模型。在这封信中,我们提出了一种基于离散余弦变换域的软判决的该参数的新颖估算算法。由于语音信号并不总是存在于所有组件的嘈杂语音信号中,我们首先计算在每个离散余弦变换分量中决定的语音存在概率,然后基于最小均方误差估计理论,拉普拉斯模型因子估计在语音存在阶段。仿真实验结果表明,该算法具有比不同噪声条件和水平不同的传统方法的性能提高。

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