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Filtering of colored noise for speech enhancement and coding

机译:过滤彩色噪声以进行语音增强和编码

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摘要

Scalar and vector Kalman filters are implemented for filtering speech contaminated by additive white noise or colored noise, and an iterative signal and parameter estimator which can be used for both noise types is presented. Particular emphasis is placed on the removal of colored noise, such as helicopter noise, by using state-of-the-art colored-noise-assumption Kalman filters. The results indicate that the colored noise Kalman filters provide a significant gain in signal-to-noise ratio (SNR), a visible improvement in the sound spectrogram, and an audible improvement in output speech quality, none of which are available with white-noise-assumption Kalman and Wiener filters. When the filter is used as a prefilter for linear predictive coding, the coded output speech quality and intelligibility are enhanced in comparison to direct coding of the noisy speech.
机译:实现了标量和矢量卡尔曼滤波器,以过滤被加性白噪声或彩色噪声污染的语音,并提出了可用于两种噪声类型的迭代信号和参数估计器。特别强调的是通过使用最新的有色噪声假设卡尔曼滤波器来消除有色噪声,例如直升机噪声。结果表明,彩色噪声卡尔曼滤波器可显着提高信噪比(SNR),改善声谱图并在听觉上改善输出语音质量,而白噪声都无法提供假设卡尔曼和维纳滤波器。当将滤波器用作线性预测编码的预滤波器时,与直接编码带噪语音相比,编码后的输出语音质量和清晰度更高。

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