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Modeling and joint estimation of glottal source and vocal tract filter by state-space methods

机译:状态空间法对声源和声带滤波器的建模和联合估计

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Accurate estimation of the glottal source from a voiced sound is a difficult blind separation problem in speech signal processing. In this work, state-space methods are investigated to enhance the joint estimation of the glottal source and the vocal tract information. The aim of this paper is twofold. First, a stochastic glottal source is proposed, based on deterministic Liljencrants-Fant model and ruled by a stochastic difference equation. Such a representation allows to accurately capture any perturbation occurring at glottal level in real voices. A state-space voice model is formulated considering the stochastic glottal source. Then, combining this voice model and the state-space framework, an inverse filtering method is developed that allows to jointly estimate both glottal source and vocal tract filter. The performance of this method is studied by means of experiments with voices synthesized by applying both the source-filter theory and a physical based voice model. The method is also test using human voice signals. The results demonstrate that accurate estimates of the glottal source and the vocal tract filter can be obtained over several scenarios. Moreover, the method is shown to be robust with respect to different phonation types. (C) 2017 Elsevier Ltd. All rights reserved.
机译:从语音中准确估计声门源是语音信号处理中的一个困难的盲分离问题。在这项工作中,研究了状态空间方法以增强对声门源和声道信息的联合估计。本文的目的是双重的。首先,基于确定性Liljencrants-Fant模型并以随机差分方程为准则,提出了随机声门源。这样的表示允许准确地捕获真实声音中在声门级发生的任何扰动。考虑随机声门源,建立了状态空间语音模型。然后,结合该语音模型和状态空间框架,开发了一种逆滤波方法,该方法可以联合估计声门源和声道滤波器。通过使用源滤波器理论和基于物理的语音模型合成的语音进行实验,研究了该方法的性能。该方法还使用人类语音信号进行测试。结果表明,可以在几种情况下获得对声门源和声道过滤器的准确估计。而且,该方法显示出对于不同的发声类型是鲁棒的。 (C)2017 Elsevier Ltd.保留所有权利。

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