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Speech enhancement using a joint MAP estimation of LP parameters

机译:使用LP参数的联合MAP估计进行语音增强

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Codebook-based speech enhancement approach is an effective method for reducing non-stationary noise. In view of the inaccurate problem of estimating the short-term predictor parameters of the speech and noise, this paper proposes a codebook-based maximum posteriori probability (MAP) speech enhancement approach by combining MAP estimation and codebook-based method. Based on the prior information and inter-frame correlation of the short-term predictor parameters, the paper develops both memoryless and memory-based MAP predictor parameters estimators which optimally get the spectral shapes and the corresponding excitation variances. In order to further improve the accuracy of the parameters, a novel approach of estimating the excitation variances is proposed for the memory-based case. Experimental results show that, in comparison with the reference method, the proposed method can get better performance under various noise conditions.
机译:基于密码本的语音增强方法是一种减少非平稳噪声的有效方法。鉴于语音和噪声的短期预测参数估计不准确的问题,本文提出了一种基于码本的最大后验概率(MAP)语音增强方法,该方法将MAP估计与基于码本的方法相结合。基于短期预报器参数的先验信息和帧间相关性,本文开发了无记忆和基于内存的MAP预报器参数估计器,可以最佳地获得频谱形状和相应的激励方差。为了进一步提高参数的准确性,针对基于存储器的情况,提出了一种估计励磁方差的新颖方法。实验结果表明,与参考方法相比,该方法在各种噪声条件下都能获得较好的性能。

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