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一种通过视频记波法量化黏膜波的自动方法。

An automatic method to quantify mucosal waves via videokymography.

作者信息

Jiang Jack J, Zhang Yu, Kelly Michael P, Bieging Erik T, Hoffman Matthew R

机构信息

Department of Surgery, Division of Otolaryngology-Head and Neck Surgery, University of Wisconsin School of Medicine and Public Health, Madison, Wisconsin, USA.

出版信息

Laryngoscope. 2008 Aug;118(8):1504-10. doi: 10.1097/MLG.0b013e318177096f.

Abstract

OBJECTIVE/HYPOTHESIS: Vocal fold vibration is associated with four distinct vibratory patterns: those of the right-upper, right-lower, left-upper, and left-lower vocal fold lips. The purpose of this study was to propose a least squares method to quantify the vibratory properties of each of the four vocal fold lips via videokymography (VKG).

STUDY DESIGN

This was a methodological study designed to examine the impact of subglottal pressure and line-scan position on mucosal wave parameters.

METHODS

VKG, a line-scan imaging technique, has proven to be an effective method for studying vocal fold vibratory patterns. This study used VKG images and an automatic mucosal wave extraction method to examine the vibration of each individual vocal fold lip of 17 excised canine larynges under differing subglottal pressures and line-scan positions.

RESULTS

Varying subglottal pressure led to results consistent with previous studies. Examination of the vocal folds at different line-scan positions along its length revealed that amplitude is greatest at the midpoint of the vocal fold, followed by the anterior portion of the vocal fold, with the posterior portion having the lowest amplitude (P < .001). Frequency and phase delay did not change significantly throughout the length of the vocal fold.

CONCLUSIONS

The method used in this study allows for easy determination of four sets of vibratory parameters, and examination of the effect of biomechanical parameters on vocal fold vibrations.

摘要

目的/假设:声带振动与四种不同的振动模式相关:右上、右下、左上和左下声带唇的振动模式。本研究的目的是提出一种最小二乘法,通过视频记波法(VKG)量化四个声带唇各自的振动特性。

研究设计

这是一项方法学研究,旨在考察声门下压力和线扫描位置对黏膜波参数的影响。

方法

VKG是一种线扫描成像技术,已被证明是研究声带振动模式的有效方法。本研究使用VKG图像和一种自动黏膜波提取方法,在不同的声门下压力和线扫描位置下,检查17个切除的犬喉的每个声带唇的振动情况。

结果

声门下压力的变化导致的结果与先前的研究一致。沿声带长度在不同线扫描位置检查声带发现,振幅在声带中点处最大,其次是声带前部,后部振幅最低(P <.001)。在声带全长范围内,频率和相位延迟没有显著变化。

结论

本研究中使用的方法能够轻松确定四组振动参数,并考察生物力学参数对声带振动的影响。

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本文引用的文献

2
Spatiotemporal chaos in excised larynx vibrations.
Phys Rev E Stat Nonlin Soft Matter Phys. 2005 Sep;72(3 Pt 2):035201. doi: 10.1103/PhysRevE.72.035201. Epub 2005 Sep 22.
4
Chaotic vibrations of a vocal fold model with a unilateral polyp.
J Acoust Soc Am. 2004 Mar;115(3):1266-9. doi: 10.1121/1.1648974.
5
Results of experiments with human larynxes.
Pract Otorhinolaryngol (Basel). 1959 Nov;21:425-50. doi: 10.1159/000274240.
6
An automatic method to quantify the vibration properties of human vocal folds via videokymography.
Folia Phoniatr Logop. 2003 May-Jun;55(3):128-36. doi: 10.1159/000070724.
7
Mucosal wave asymmetries in the clinical voice laboratory.
J Otolaryngol. 2002 Oct;31(5):275-80. doi: 10.2310/7070.2002.43298.
9
Vocal fold vibrations: high-speed imaging, kymography, and acoustic analysis: a preliminary report.
Laryngoscope. 2000 Dec;110(12):2117-22. doi: 10.1097/00005537-200012000-00028.
10
Quantitative study of mucosal wave via videokymography in canine larynges.
Laryngoscope. 2000 Sep;110(9):1567-73. doi: 10.1097/00005537-200009000-00032.

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