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Analysis of Measured and Simulated Supraglottal Acoustic Waves

机译:测量和模拟超普拉塔尔声波的分析

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To date, although much attention has been paid to the estimation and modeling of the voice source (ie, the glottal airflow volume velocity), the measurement and characterization of the supraglottal pressure wave have been much less studied. Some previous results have unveiled that the supraglottal pressure wave has some spectral resonances similar to those of the voice pressure wave. This makes the supraglottal wave partially intelligible. Although the explanation for such effect seems to be clearly related to the reflected pressure wave traveling upstream along the vocal tract, the influence that nonlinear source-filter interaction has on it is not as clear. This article provides an insight into this issue by comparing the acoustic analyses of measured and simulated supraglottal and voice waves. Simulations have been performed using a high-dimensional discrete vocal fold model. Results of such comparative analysis indicate that spectral resonances in the supraglottal wave are mainly caused by the regressive pressure wave that travels upstream along the vocal tract and not by source-tract interaction. On the contrary and according to simulation results, source-tract interaction has a role in the loss of intelligibility that happens in the supraglottal wave with respect to the voice wave. This loss of intelligibility mainly corresponds to spectral differences for frequencies above 1500 Hz.
机译:迄今为止,虽然对语音源的估计和建模有很多关注(即,最小的气流体积速度),所以研究了超级普拉塔尔压力波的测量和表征。一些先前的结果推出了Suprotoptal压力波具有类似于语音压波的光谱共振。这使得Supraylottal波部分可理解。虽然对这种效果的解释似乎与沿着声道上游的反射压力波显然有关,但是非线性源滤波器相互作用对其上游的影响并不明显。本文通过比较测量和模拟的Suprotoptal和语音波的声学分析来介绍该问题。已经使用高维离散声子折叠模型进行了模拟。这种比较分析的结果表明,Supradlottal波中的光谱共振主要由沿着声道上游行驶而不是通过源片相互作用引起的回归压力波。相反,根据仿真结果,源 - 道互动在丢失丢失的可懂度丧失方面的作用,这种情况相对于语音波发生在副普拉塔尔波浪中。这种可懂度的损失主要是对应于1500 Hz以上频率的光谱差异。

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