Application of nonlinear dynamics theory to understanding normal and pathologic voices in humans.

IF 5.4 2区 生物学 Q1 BIOLOGY
Jan G Švec, Zhaoyan Zhang
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引用次数: 0

Abstract

The theory of nonlinear dynamics was introduced to voice science in the 1990s and revolutionized our understanding of human voice production mechanisms. This theory elegantly explains highly complex phenomena in the human voice, such as subharmonic and rough-sounding voice, register breaks, and intermittent aphonic breaks. These phenomena occur not only in pathologic, dysphonic voices but are also explored for artistic purposes, such as contemporary singing. The theory reveals that sudden changes in vocal fold vibratory patterns and fundamental frequency can result from subtle alterations in vocal fold geometry, mechanical properties, adduction, symmetry or lung pressure. Furthermore, these changes can be influenced by interactions with supraglottal tract and subglottal tract resonances. Crucially, the eigenmodes (modes of vibration) of the vocal folds play a significant role in these phenomena. Understanding how the left and right vocal fold eigenmodes interact and entrain with each other, as well as their interplay with supraglottal tissues, glottal airflow and acoustic resonances, is essential for more sophisticated diagnosis and targeted treatment of voice disorders in the future. Additionally, this knowledge can be helpful in modern vocal pedagogy. This article reviews the concepts of nonlinear dynamics that are important for understanding normal and pathologic voice production in humans.This article is part of the theme issue 'Nonlinear phenomena in vertebrate vocalizations: mechanisms and communicative functions'.

应用非线性动力学理论理解人类正常和病态的声音。
非线性动力学理论在20世纪90年代被引入语音科学,并彻底改变了我们对人类语音产生机制的理解。这一理论很好地解释了人类声音中非常复杂的现象,如亚谐波和粗糙的声音、音域中断和间歇语音中断。这些现象不仅发生在病态的、不发音的声音中,而且也被用于艺术目的,如当代歌唱。该理论揭示了声带振动模式和基本频率的突然变化可能是由声带几何形状、力学特性、内收、对称性或肺压力的细微变化引起的。此外,这些变化可能受到声门上束和声门下束共振的相互作用的影响。至关重要的是,声带的特征模态(振动模态)在这些现象中起着重要作用。了解左右声带特征模式如何相互作用和夹带,以及它们与声门上组织、声门气流和声学共振的相互作用,对于未来更复杂的语音疾病诊断和有针对性的治疗至关重要。此外,这些知识对现代声乐教学也有帮助。这篇文章回顾了非线性动力学的概念,这对于理解人类正常和病理的声音产生是重要的。本文是“脊椎动物发声的非线性现象:机制和交流功能”主题的一部分。
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
11.80
自引率
1.60%
发文量
365
审稿时长
3 months
期刊介绍: The journal publishes topics across the life sciences. As long as the core subject lies within the biological sciences, some issues may also include content crossing into other areas such as the physical sciences, social sciences, biophysics, policy, economics etc. Issues generally sit within four broad areas (although many issues sit across these areas): Organismal, environmental and evolutionary biology Neuroscience and cognition Cellular, molecular and developmental biology Health and disease.
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