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A multimodal spectral approach to characterize rhythm in natural speech

机译:一种表征自然语音节奏的多峰频谱方法

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摘要

Human utterances demonstrate temporal patterning, also referred to as rhythm. While simple oromotor behaviors (e.g., chewing) feature a salient periodical structure, conversational speech displays a time-varying quasi-rhythmic pattern. Quantification of periodicity in speech is challenging. Unimodal spectral approaches have highlighted rhythmic aspects of speech. However, speech is a complex multimodal phenomenon that arises from the interplay of articulatory, respiratory, and vocal systems. The present study addressed the question of whether a multimodal spectral approach, in the form of coherence analysis between electromyographic (EMG) and acoustic signals, would allow one to characterize rhythm in natural speech more efficiently than a unimodal analysis. The main experimental task consisted of speech production at three speaking rates; a simple oromotor task served as control. The EMG-acoustic coherence emerged as a sensitive means of tracking speech rhythm, whereas spectral analysis of either EMG or acoustic amplitude envelope alone was less informative. Coherence metrics seem to distinguish and highlight rhythmic structure in natural speech. (C) 2016 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution 3.0 Unported License.
机译:人类的言语表明了时间模式,也称为节奏。简单的口语运动行为(例如咀嚼)具有明显的周期性结构,而会话语音则表现出随时间变化的准节奏模式。语音周期性的量化具有挑战性。单峰频谱方法突出了语音的节奏方面。但是,语音是一种复杂的多峰现象,由发音,呼吸和声音系统的相互作用引起。本研究解决了以下问题:采用多峰频谱方法,以肌电图(EMG)与声音信号之间的相干分析形式,是否比单峰分析更有效地表征自然语音中的节奏。主要的实验任务包括以三种语速进行语音表达。一个简单的口述运动任务作为控制。 EMG声学相干性已成为跟踪语音节奏的一种灵敏手段,而单独对EMG或声学幅度包络进行频谱分析的信息较少。连贯性度量似乎可以区分并突出自然语音中的节奏结构。 (C)2016作者。除另有说明外,所有文章内容均根据知识共享署名3.0未移植许可证进行许可。

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