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An autocorrelation pitch detector and voicing decision with confidence measures developed for noise-corrupted speech

机译:开发了一种自相关基音检测器和带有置信度的清音决策,可用于降噪语音

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摘要

The authors describe an integrated speech feature extraction method consisting of: (1) a pitch detector; (2) a voicing decision to correctly partition speech into voiced and unvoiced intervals; (3) a confidence measure which reflects the probabilistic accuracy of the voicing decision; (4) a confidence measure which reflects the expected deviation of the pitch estimate from the true pitch and the probabilistic accuracy of this deviation; and (5) smoothing techniques for the pitch detector, the voicing decision, and the two confidence measures. The focus of their research is on voiced and unvoiced speech corrupted by high levels of white noise. The voicing decision and the confidence measures are developed by observing the behavior of three features derived from the autocorrelation function and experimentally fitting curves to the data. This integrated set of algorithms is statistically analyzed for speech at seven signal-to-noise ratios.
机译:作者描述了一种综合语音特征提取方法,该方法包括:(1)音高检测器; (2)决定将语音正确划分为浊音和清音的语音决定; (3)反映出语音决定的概率准确性的置信度; (4)置信度测度,它反映音高估计值与真实音高的预期偏差以及该偏差的概率准确性; (5)音高检测器的平滑技术,发声决策和两个置信度。他们的研究重点是被高水平的白噪声破坏的浊音。通过观察自相关函数导出的三个特征的行为并通过实验将曲线拟合到数据,来开发出语音决策和置信度度量。对这套集成算法进行了统计分析,分析了七个信噪比下的语音。

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