Vocal tract contribution to vocal intensity: Interaction between vocal fold adduction, formant tuning, and fundamental frequency.

IF 2.3 2区 物理与天体物理 Q2 ACOUSTICS
Zhaoyan Zhang
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引用次数: 0

Abstract

The goal of this study was to understand the interaction between the voice source spectral shape, formant tuning, and fundamental frequency in determining the vocal tract contribution to vocal intensity. Computational voice simulations were performed with parametric variations in both vocal fold and vocal tract configurations. The vocal tract contribution to vocal intensity was quantified as the difference in the A-weighted sound pressure level between the radiated sound pressure and the sound pressure at the glottis. The results from the simulations showed that the vocal tract contribution to vocal intensity depends strongly on the amplitude of the first vocal tract resonance. Two strategies to increase vocal tract contribution to vocal intensity were identified. The first strategy was to increase vocal fold adduction, which increases the relative prominence of the harmonics near the first vocal tract resonance. The second strategy was to bring a vocal tract resonance and a nearby harmonic closer in frequency, often known as formant tuning. In this study, increasing vocal fold adduction was the primary strategy at low fundamental frequencies, whereas formant tuning was more effective at high fundamental frequencies, particularly when formant tuning involves the strongest harmonic in the voice source spectrum.

声道对声音强度的贡献:声带内收、共振峰调谐和基本频率之间的相互作用。
本研究的目的是了解声源频谱形状、共振峰调谐和基频之间的相互作用,以确定声道对声音强度的贡献。计算语音模拟进行了参数变化的声带和声道配置。声道对声强的贡献被量化为辐射声压与声门处声压的a加权声压级之差。模拟结果表明,声道对声音强度的贡献很大程度上取决于第一声道共振的幅度。确定了两种增加声道对声音强度贡献的策略。第一个策略是增加声带内收,这增加了第一个声道共振附近的谐波的相对突出。第二种策略是使声道共振和附近的谐波在频率上更接近,通常被称为共振峰调谐。在本研究中,增加声带内收是低基频下的主要策略,而共振峰调谐在高基频下更有效,特别是当共振峰调谐涉及声源频谱中最强的谐波时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.60
自引率
16.70%
发文量
1433
审稿时长
4.7 months
期刊介绍: Since 1929 The Journal of the Acoustical Society of America has been the leading source of theoretical and experimental research results in the broad interdisciplinary study of sound. Subject coverage includes: linear and nonlinear acoustics; aeroacoustics, underwater sound and acoustical oceanography; ultrasonics and quantum acoustics; architectural and structural acoustics and vibration; speech, music and noise; psychology and physiology of hearing; engineering acoustics, transduction; bioacoustics, animal bioacoustics.
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