A New Approach to Parametric Modeling of Glottal Flow

Glottal waveform models have long been employed in improving the quality of speech synthesis. This paper presents a new approach for modeling the glottal flow. The model is based on three control volumes that strike a one-mass and two-springs system sequentially and generate a glottal pulse. The...

Full description

Saved in:
Bibliographic Details
Main Authors: Tahir Mushtaq QURESHI, Khalid Saifullah SYED
Format: Article
Language:English
Published: Institute of Fundamental Technological Research Polish Academy of Sciences 2013-10-01
Series:Archives of Acoustics
Subjects:
Online Access:https://acoustics.ippt.pan.pl/index.php/aa/article/view/139
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1850105272701288448
author Tahir Mushtaq QURESHI
Khalid Saifullah SYED
author_facet Tahir Mushtaq QURESHI
Khalid Saifullah SYED
author_sort Tahir Mushtaq QURESHI
collection DOAJ
description Glottal waveform models have long been employed in improving the quality of speech synthesis. This paper presents a new approach for modeling the glottal flow. The model is based on three control volumes that strike a one-mass and two-springs system sequentially and generate a glottal pulse. The first, second and third control volumes represent the opening, closing and closed phases of the vocal folds, respec- tively. The masses of the three control volumes and the size of the first one are the four parameters that define the shape, pitch and amplitude of the glottal pulse. The model may be viewed as parametric approach governed by second order differential equations rather than analytical functions and is very flexible for designing a glottal pulse. The glottal pulse generated by the present model, when compared with those generated by Rosenberg, LF and mucosal wave propagation models demonstrates that it appropriately represents the opening, closing and closed phases of the vo- cal fold oscillation. This leads to the validity of our model. Numerical solution of the present model has been found to be very efficient as compared to its analytical solution and two other well-known parametric models Rosenberg++ and LF. The accuracy of the numerical solution has been illustrated with the help of analytical solution. It has been observed that the accuracy improves by increasing the size of the first control volume and may decrease insignificantly with increase in the mass of any of the control volumes. Two experiments with the present model support its successful implementation as a voice source in speech synthesis. Thus our model renders itself as an efficient, accurate and realistic choice as a voice source to be employed in real-time speech production.
format Article
id doaj-art-fb8adbe98a7248519d5febf3833020ae
institution OA Journals
issn 0137-5075
2300-262X
language English
publishDate 2013-10-01
publisher Institute of Fundamental Technological Research Polish Academy of Sciences
record_format Article
series Archives of Acoustics
spelling doaj-art-fb8adbe98a7248519d5febf3833020ae2025-08-20T02:39:08ZengInstitute of Fundamental Technological Research Polish Academy of SciencesArchives of Acoustics0137-50752300-262X2013-10-01364A New Approach to Parametric Modeling of Glottal FlowTahir Mushtaq QURESHI0Khalid Saifullah SYED1Bahauddin Zakariya University Center for Advance Studies in Pure and Applied MathematicsBahauddin Zakariya University Center for Advance Studies in Pure and Applied MathematicsGlottal waveform models have long been employed in improving the quality of speech synthesis. This paper presents a new approach for modeling the glottal flow. The model is based on three control volumes that strike a one-mass and two-springs system sequentially and generate a glottal pulse. The first, second and third control volumes represent the opening, closing and closed phases of the vocal folds, respec- tively. The masses of the three control volumes and the size of the first one are the four parameters that define the shape, pitch and amplitude of the glottal pulse. The model may be viewed as parametric approach governed by second order differential equations rather than analytical functions and is very flexible for designing a glottal pulse. The glottal pulse generated by the present model, when compared with those generated by Rosenberg, LF and mucosal wave propagation models demonstrates that it appropriately represents the opening, closing and closed phases of the vo- cal fold oscillation. This leads to the validity of our model. Numerical solution of the present model has been found to be very efficient as compared to its analytical solution and two other well-known parametric models Rosenberg++ and LF. The accuracy of the numerical solution has been illustrated with the help of analytical solution. It has been observed that the accuracy improves by increasing the size of the first control volume and may decrease insignificantly with increase in the mass of any of the control volumes. Two experiments with the present model support its successful implementation as a voice source in speech synthesis. Thus our model renders itself as an efficient, accurate and realistic choice as a voice source to be employed in real-time speech production.https://acoustics.ippt.pan.pl/index.php/aa/article/view/139control volumesspring-mass systemvocal foldsRosenberg glottal modelLF glottal model
spellingShingle Tahir Mushtaq QURESHI
Khalid Saifullah SYED
A New Approach to Parametric Modeling of Glottal Flow
Archives of Acoustics
control volumes
spring-mass system
vocal folds
Rosenberg glottal model
LF glottal model
title A New Approach to Parametric Modeling of Glottal Flow
title_full A New Approach to Parametric Modeling of Glottal Flow
title_fullStr A New Approach to Parametric Modeling of Glottal Flow
title_full_unstemmed A New Approach to Parametric Modeling of Glottal Flow
title_short A New Approach to Parametric Modeling of Glottal Flow
title_sort new approach to parametric modeling of glottal flow
topic control volumes
spring-mass system
vocal folds
Rosenberg glottal model
LF glottal model
url https://acoustics.ippt.pan.pl/index.php/aa/article/view/139
work_keys_str_mv AT tahirmushtaqqureshi anewapproachtoparametricmodelingofglottalflow
AT khalidsaifullahsyed anewapproachtoparametricmodelingofglottalflow
AT tahirmushtaqqureshi newapproachtoparametricmodelingofglottalflow
AT khalidsaifullahsyed newapproachtoparametricmodelingofglottalflow