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A new glottal flow pulses extraction approach based on jointly parametric and nonparametric estimation

机译:基于联合参数估计和非参数估计的声门流脉冲提取新方法

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Linear prediction (LP) and complex cepstrum (CC) approaches have been shown to be effective for extracting glottal flow pulses (GFPs). This paper proposes a new approach, which first employs an odd-order LP analysis to find parameters of an all-pole model by least-squares (LS) methods and then uses deconvolution to obtain coarse GFPs by inverse filtering. Then, CC-based phase decomposition is used to obtain a refined estimate by further suppressing the remaining minimum-phase information from results after the inverse filtering. We demonstrate the effectiveness of this new approach by applying it to both synthetic and real speech voiced utterances.
机译:线性预测(LP)和复杂倒谱(CC)方法已被证明对提取声门血流脉冲(GFP)有效。本文提出了一种新方法,该方法首先使用奇数阶LP分析通过最小二乘(LS)方法找到全极点模型的参数,然后使用反卷积通过逆滤波获得粗GFP。然后,基于CC的相位分解可通过从逆滤波后的结果中进一步抑制剩余的最小相位信息来获得精确的估计值。通过将其应用于合成语音和真实语音,我们证明了这种新方法的有效性。

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