DocumentCode :
787294
Title :
Vibration parameter extraction from endoscopic image series of the vocal folds
Author :
Döllinger, Michael ; Hoppe, Ulrich ; Hettlich, Frank ; Lohscheller, Jörg ; Schuberth, Stefan ; Eysholdt, Ulrich
Author_Institution :
Dept. of Phoniatrics & Pediatric Audiology, Erlangen-Nurnberg Univ., Erlangen, Germany
Volume :
49
Issue :
8
fYear :
2002
Firstpage :
773
Lastpage :
781
Abstract :
An approach is given to extract parameters affecting phonation based upon digital high-speed recordings of vocal fold vibrations and a biomechanical model. The main parameters which affect oscillation are vibrating masses, vocal fold tension, and subglottal air pressure. By combining digital high-speed observations with the two-mass-model by Ishizaka and Flanagan (1972) as modified by Steinecke and Herzel (1995), an inversion procedure has been developed which allows the identification and quantization of laryngeal asymmetries. The problem is regarded as an optimization procedure with a nonconvex objective function. For this kind of problem, the choice of appropriate initial values is important. This optimization procedure is based on spectral features of vocal fold movements. The applicability of the inversion procedure is first demonstrated in simulated vocal fold curves. Then, inversion results are presented for a healthy voice and a hoarse voice as a case of functional dysphonia caused by laryngeal asymmetry.
Keywords :
Runge-Kutta methods; biomechanics; biomedical measurement; discrete Fourier transforms; image sequences; medical image processing; optimisation; physiological models; speech; vibration measurement; Runge-Kutta algorithm; aerodynamic properties; biomechanical model; charge-coupled device array; computational algorithm; digital high-speed recordings; discrete Fourier transform; endoscopic image series; functional dysphonia; glottography; hoarse voice; identification; initial values; inversion procedure; laryngeal asymmetries; laryngeal asymmetry; myoelastic properties; nonconvex objective function; optimization procedure; phonation; quantization; spectral features; subglottal air pressure; two-mass-model; vibrating masses; vibration parameter extraction; vocal fold tension; vocal folds; Aerodynamics; Differential equations; Digital recording; Endoscopes; Larynx; Mathematics; Nonlinear dynamical systems; Oscillators; Parameter extraction; Quantization; Adult; Algorithms; Computer Simulation; Elasticity; Female; Fourier Analysis; Humans; Image Processing, Computer-Assisted; Laryngoscopy; Models, Biological; Phonation; Reference Values; Sensitivity and Specificity; Vibration; Video Recording; Vocal Cord Paralysis; Vocal Cords; Voice Disorders;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2002.800755
Filename :
1019440
Link To Document :
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