Literature DB >> 16636565

The pitch rise paradigm: a new task for real-time endoscopy of non-stationary phonation.

Oliver Rasp1, Jorg Lohscheller, Michael Doellinger, Ulrich Eysholdt, Ulrich Hoppe.   

Abstract

As standard stroboscopy is restricted to the recording of periodic vocal fold vibrations, observations of non-stationary laryngeal mechanisms demand real-time recording systems, the most advanced being the high-speed video technique. It allows the registration of laryngeal parameters during a variation of the fundamental frequency. The aim of this study was to compare amplitude and frequency parameters of vocal fold vibration during stationary and non-stationary phonation, i.e. a monotonous pitch rise. Twenty-nine young female adults with no incidence of voice disorders were examined while performing two different phonation tasks: sustained phonation with a constant frequency and a monotonous pitch rise. Endoscopic recordings and the acoustic signals were acquired simultaneously. Both acoustic and laryngeal parameters were derived for short time intervals of 17.8 ms for the constant pitch and pitch rise conditions. Instantaneous frequency, sound pressure level, vibratory amplitudes of the vocal folds and the type of glottal closure were compared. At the beginning of the pitch rise, the acoustic and laryngeal parameters were similar to the parameters that occurred within the sustained phonation conditions. In contrast, the laryngeal parameters at the middle and at the end of the pitch rise differed substantially from those during sustained phonation. For the first time, quantitative measures of the growing glottal chink and the vibration amplitude decrease during pitch increase could be taken. In general, the image evaluation of the pitch rise paradigm can be subdivided into the starting, the raising and the final phase. As each phase can be considered as quasi-stationary, existing software modules are capable of analysing the process by treating each phase separately. Hence, the pitch rise condition may be suitable for clinical examination to detect information of voice disturbances that cannot be visualized during sustained phonation.

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Year:  2006        PMID: 16636565     DOI: 10.1159/000091731

Source DB:  PubMed          Journal:  Folia Phoniatr Logop        ISSN: 1021-7762            Impact factor:   0.849


  6 in total

1.  Frequency response of synthetic vocal fold models with linear and nonlinear material properties.

Authors:  Stephanie M Shaw; Scott L Thomson; Christopher Dromey; Simeon Smith
Journal:  J Speech Lang Hear Res       Date:  2012-01-23       Impact factor: 2.297

2.  Development of a time-dependent numerical model for the assessment of non-stationary pharyngoesophageal tissue vibrations after total laryngectomy.

Authors:  Björn Hüttner; Georg Luegmair; Rita R Patel; Anke Ziethe; Ulrich Eysholdt; Christopher Bohr; Irina Sebova; Marion Semmler; Michael Döllinger
Journal:  Biomech Model Mechanobiol       Date:  2014-05-27

3.  Computation of physiological human vocal fold parameters by mathematical optimization of a biomechanical model.

Authors:  Anxiong Yang; Michael Stingl; David A Berry; Jorg Lohscheller; Daniel Voigt; Ulrich Eysholdt; Michael Dollinger
Journal:  J Acoust Soc Am       Date:  2011-08       Impact factor: 1.840

4.  Biomechanical modeling of the three-dimensional aspects of human vocal fold dynamics.

Authors:  Anxiong Yang; Jörg Lohscheller; David A Berry; Stefan Becker; Ulrich Eysholdt; Daniel Voigt; Michael Döllinger
Journal:  J Acoust Soc Am       Date:  2010-02       Impact factor: 1.840

5.  Investigation of prescribed movement in fluid-structure interaction simulation for the human phonation process.

Authors:  S Zörner; M Kaltenbacher; M Döllinger
Journal:  Comput Fluids       Date:  2013-11-05       Impact factor: 3.013

6.  Impact of Subharmonic and Aperiodic Laryngeal Dynamics on the Phonatory Process Analyzed in Ex Vivo Rabbit Models.

Authors:  Fabian Thornton; Michael Döllinger; Stefan Kniesburges; David Berry; Christoph Alexiou; Anne Schützenberger
Journal:  Appl Sci (Basel)       Date:  2019-05-13       Impact factor: 2.679

  6 in total

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