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Comparison of different order cumulants in a speech enhancement system by adaptive Wiener filtering

机译:自适应Wiener滤波在语音增强系统中不同阶累积量的比较

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摘要

The authors study some speech enhancement algorithms based on the iterative Wiener filtering method due to Lim and Oppenheim (1978), where the AR spectral estimation of the speech is carried out using a second-order analysis. But in their algorithms the authors consider an AR estimation by means of a cumulant (third- and fourth-order) analysis. The authors provide a behavior comparison between the cumulant algorithms and the classical autocorrelation one. Some results are presented considering the noise (additive white Gaussian noises) that allows the best improvement and those noises (diesel engine and reactor noise) that leads to the worst one. And exhaustive empirical test shows that cumulant algorithms outperform the original autocorrelation algorithm, specially at low SNR.
机译:作者研究了基于Lim和Oppenheim(1978)的基于迭代Wiener滤波方法的语音增强算法,其中语音的AR频谱估计是使用二阶分析进行的。但是在他们的算法中,作者考虑通过累积量(三阶和四阶)分析来估计AR。作者提供了累积量算法和经典自相关算法之间的行为比较。提出了一些结果,其中考虑了可以实现最佳改进的噪声(加性高斯白噪声)以及导致最差噪声的噪声(柴油机和反应堆噪声)。详尽的经验测试表明,累积量算法优于原始的自相关算法,特别是在低信噪比的情况下。

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