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日语擦音 [ɕ] 和 [ç] 的空气动力学差异。

Aeroacoustic differences between the Japanese fricatives [ɕ] and [ç].

机构信息

Toyohashi University of Technology, 1-1 Hibarigaoka, Tempaku, Toyohashi, Aichi 441-8580, Japan.

National Institute for Japanese Language and Linguistics, 10-2 Midoricho, Tachikawa, Tokyo 190-8561, Japan.

出版信息

J Acoust Soc Am. 2021 Apr;149(4):2426. doi: 10.1121/10.0003936.

Abstract

To elucidate the linguistic similarity between the alveolo-palatal sibilant [ɕ] and palatal non-sibilant [ç] in Japanese, the aeroacoustic differences between the two consonants were explored via experimentation with participants and analysis using simplified vocal tract models. The real-time magnetic resonance imaging (rtMRI) observations of articulatory movements demonstrated that some speakers use a nearly identical place of articulation for /si/ [ɕi] and /hi/ [çi]. Simplified vocal tract models were then constructed based on the data captured by static MRI, and the model-generated synthetic sounds were compared with speaker data producing [ɕ] and [ç]. Speaker data demonstrated that the amplitude of the broadband noise of [ç] was weaker than that of [ɕ]; the characteristic peak amplitude at approximately 4 kHz was greater in [ç] than in [ɕ], although the mid-sagittal vocal tract profiles were nearly identical for three of ten subjects in the rtMRI observation. These acoustic differences were reproduced by the proposed models, with differences in the width of the coronal plane constriction and the flow rate. The results suggest the need to include constriction width and flow rate as parameters for articulatory phonetic descriptions of speech sounds.

摘要

为了阐明日语中 alveolo-palatal sibilant [ɕ] 和 palatal non-sibilant [ç] 在语言学上的相似性,通过参与者实验和简化声道模型分析,探索了这两个辅音之间的空气动力学差异。对发音运动的实时磁共振成像(rtMRI)观察表明,一些说话者在发 /si/ [ɕi] 和 /hi/ [çi] 时使用几乎相同的发音部位。然后根据静态 MRI 捕获的数据构建了简化声道模型,并将模型生成的合成声音与产生 [ɕ] 和 [ç] 的说话者数据进行了比较。说话者数据表明,[ç] 的宽带噪声幅度比 [ɕ] 的弱;在大约 4 kHz 处的特征峰值幅度在 [ç] 中大于 [ɕ],尽管在 rtMRI 观察中,十个受试者中有三个的中矢状面声道轮廓几乎相同。这些声学差异被所提出的模型所复制,其差异在于冠状面收缩的宽度和流速。研究结果表明,需要将收缩宽度和流速作为发音语音描述语音的参数。

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