Erich Thienhaus Institute, Detmold University of Music, 32756 Detmold, Germany.
Department of Science, Mathematics, and Technology, Singapore University of Technology and Design (SUTD), Singapore 487372, Singapore.
Sensors (Basel). 2023 Jan 13;23(2):939. doi: 10.3390/s23020939.
Broadband excitation introduced at the speaker's lips and the evaluation of its corresponding relative acoustic impedance spectrum allow for fast, accurate and non-invasive estimations of vocal tract resonances during speech and singing. However, due to radiation impedance interactions at the lips at low frequencies, it is challenging to make reliable measurements of resonances lower than 500 Hz due to poor signal to noise ratios, limiting investigations of the first vocal tract resonance using such a method. In this paper, various physical configurations which may optimize the acoustic coupling between transducers and the vocal tract are investigated and the practical arrangement which yields the optimal vocal tract resonance detection sensitivity at low frequencies is identified. To support the investigation, two quantitative analysis methods are proposed to facilitate comparison of the sensitivity and quality of resonances identified. Accordingly, the optimal configuration identified has better acoustic coupling and low-frequency response compared with existing arrangements and is shown to reliably detect resonances down to 350 Hz (and possibly lower), thereby allowing the first resonance of a wide range of vowel articulations to be estimated with confidence.
在扬声器的唇部引入宽带激励,并评估其对应的相对声阻抗谱,可以快速、准确且无创地估计说话和唱歌时的声道共振。然而,由于唇部在低频时的辐射阻抗相互作用,因此由于信噪比差,难以对低于 500 Hz 的共振进行可靠的测量,从而限制了使用这种方法对第一声道共振的研究。在本文中,研究了各种可能优化换能器和声道之间声耦合的物理配置,并确定了在低频下获得最佳声道共振检测灵敏度的实际布置。为了支持研究,提出了两种定量分析方法,以方便比较所识别的共振的灵敏度和质量。因此,与现有配置相比,所确定的最佳配置具有更好的声耦合和低频响应,并且能够可靠地检测低至 350 Hz(可能更低)的共振,从而能够自信地估计各种元音发音的第一共振。