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Interactions of subglottal pressure and neuromuscular activation on fundamental frequency and intensity.
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2
Differential roles for the thyroarytenoid and lateral cricoarytenoid muscles in phonation.
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4
Neuromuscular control of fundamental frequency and glottal posture at phonation onset.
J Acoust Soc Am. 2012 Feb;131(2):1401-12. doi: 10.1121/1.3672686.
5
Glottal adjustment for regulating vocal intensity. An experimental study.
Acta Otolaryngol. 1986 Sep-Oct;102(3-4):315-24. doi: 10.3109/00016488609108682.
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Phonation Threshold Pressure Revisited: Effects of Intrinsic Laryngeal Muscle Activation.
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Three-dimensional posture changes of the vocal fold from paired intrinsic laryngeal muscles.
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The Effect of Vocal Fold Inferior Surface Hypertrophy on Voice Function in Excised Canine Larynges.
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A biomechanical laryngeal model of voice F0 and glottal width control.
J Acoust Soc Am. 1996 Dec;100(6):3794-812. doi: 10.1121/1.417218.

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2
Asymmetric triangular body-cover model of the vocal folds with bilateral intrinsic muscle activation.
J Acoust Soc Am. 2024 Aug 1;156(2):939-953. doi: 10.1121/10.0028164.
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The Impact of Bimodal Hearing on Speech Acoustics of Vowel Production in Adult Cochlear Implant Users.
J Speech Lang Hear Res. 2023 May 9;66(5):1511-1524. doi: 10.1044/2023_JSLHR-22-00201. Epub 2023 Apr 11.
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Aerodynamic Performance and Neuromuscular Control in Patients with Unilateral Vocal Fold Paralysis.
Diagnostics (Basel). 2022 Dec 11;12(12):3124. doi: 10.3390/diagnostics12123124.
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LaDIVA: A neurocomputational model providing laryngeal motor control for speech acquisition and production.
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Analysis of vibratory mode changes in symmetric and asymmetric activation of the canine larynx.
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The Relationship Between Voice Onset Time and Increase in Vocal Effort and Fundamental Frequency.
J Speech Lang Hear Res. 2021 Apr 14;64(4):1197-1209. doi: 10.1044/2021_JSLHR-20-00505. Epub 2021 Apr 5.

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2
Cricothyroid muscle and thyroarytenoid muscle dominance in vocal register control: preliminary results.
J Voice. 2014 Sep;28(5):652.e21-652.e29. doi: 10.1016/j.jvoice.2014.01.017. Epub 2014 May 21.
3
Neuromuscular control of fundamental frequency and glottal posture at phonation onset.
J Acoust Soc Am. 2012 Feb;131(2):1401-12. doi: 10.1121/1.3672686.
6
Bifurcations in excised larynx experiments.
J Voice. 1996 Jun;10(2):129-38. doi: 10.1016/s0892-1997(96)80039-7.
7
Vocal intensity, subglottic pressure and air flow relationships in singers.
Folia Phoniatr (Basel). 1967;19(6):393-413. doi: 10.1159/000263170.
8
On the relation between subglottal pressure and fundamental frequency in phonation.
J Acoust Soc Am. 1989 Feb;85(2):901-6. doi: 10.1121/1.397562.
9
Vocal intensity in speakers and singers.
J Acoust Soc Am. 1992 May;91(5):2936-46. doi: 10.1121/1.402929.
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Automatic segmentation of speech into syllabic units.
J Acoust Soc Am. 1975 Oct;58(4):880-3. doi: 10.1121/1.380738.

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