精制和扩展摩擦光谱的措施,特别关注高频范围a)
Christine H Shadle1, Wei-Rong Chen1, Laura L Koenig1
1Yale Child Study Center, School of Medicine, Yale University, New Haven, Connecticut 06519, USA.
The Journal of the Acoustical Society of America
|September 28, 2023
概括
这项研究改进了对摩擦辅音的声学测量,揭示了不同的高频能量模式. 这些改进的光谱测量更好地捕捉了语言中的发音和空气动力学条件.
科学领域:
- 语音学 语音学 语音学
- 声学分析 声学分析
- 语音科学是一种语言科学.
背景情况:
- 摩擦词拥有宽频能量,与元音和音声不同.
- 之前对摩擦物的声学测量并没有完全捕捉到关节和空气动力学细微差别.
研究的目的:
- 引入和完善对摩擦物的声学测量.
- 为了反映在摩擦光谱中的基本关节和空气动力学条件.
- 为了研究高频能量模式的差异.
主要方法:
- 摩擦光谱的分析,包括高频能量.
- 应用光谱峰值测量 (FM) 和振幅差 (AmpD).
- 引入新措施:高频最大振幅 (Fh),振幅范围 (AmpRange) 和高水平D.
主要成果:
- 鲜明的高频能量模式区分了声器,非声器,有声音/无声音的摩擦器,以及发音的地方.
- FM和AmpD对虫有效;调整的FM范围对于雌性气膜摩擦是合理的.
- Fh和AmpRange捕获英语 /f-θ/ 差异和动态振幅范围.
- 在跟踪摩擦内变化方面,HighLevelD的表现优于LevelD和Slope.
- 在单独的单词和连接的语音之间观察到的差异.
结论:
- 介绍了改进的摩擦光谱测量方法.
- 高频谱能量对于精确的摩擦分析至关重要.
- 新措施提高了对摩擦材料的关节-空气动力学条件的理解.
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