A method for estimating vocal-tract shape from a target speech spectrum
Author:
Affiliation:
1. Faculty of Design, Kyushu University
Publisher
Acoustical Society of Japan
Subject
Acoustics and Ultrasonics
Link
https://www.jstage.jst.go.jp/article/ast/36/5/36_E1520/_pdf
Reference27 articles.
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2. 2) M. M. Sondhi and J. Schroeter, ``A hybrid time-frequency domain articulatory speech synthesizer,'' IEEE Trans. Acoust. Speech Signal Process., 35, 955-967 (1987).
3. 3) X. Pelorson, A. Hirschberg, R. R. van Hassel, A. P. J. Wijnands and Y. Auregan, ``Theoretical and experimental study of quasisteady-flow separation within the glottis during phonation. Application to a modified two-mass model,'' J. Acoust. Soc. Am., 96, 3416-3431 (1994).
4. 4) B. H. Story and I. R. Titze, ``Voice simulation with a body-cover model of the vocal folds,'' J. Acoust. Soc. Am., 97, 1249-1260 (1995).
5. 5) N. J. C. Lous, G. C. J. Hofmans, R. N. J. Veldhuis and A. Hirschberg, ``A symmetrical two-mass vocal-fold model coupled to vocal tract and trachea, with application to prosthesis design,'' Acustica united with Acta Acustica, 84, 1135-1150 (1998).
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1. Speaker Dependent Acoustic-to-Articulatory Inversion Using Real-Time MRI of the Vocal Tract;Interspeech 2020;2020-10-25
2. Inverse estimation of the vocal tract shape based on a vocal tract mapping interface;The Journal of the Acoustical Society of America;2019-04
3. A morphological and acoustic analysis of the vocal tract during the act of whistling;Acoustical Science and Technology;2018-05-01
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