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Improved Subglottal Pressure Estimation From Neck-Surface Vibration in Healthy Speakers Producing Non-Modal Phonation.

, , , , и . IEEE J. Sel. Top. Signal Process., 14 (2): 449-460 (2020)

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Improved Subglottal Pressure Estimation From Neck-Surface Vibration in Healthy Speakers Producing Non-Modal Phonation., , , , и . IEEE J. Sel. Top. Signal Process., 14 (2): 449-460 (2020)Modeling Laryngeal Muscle Activation Noise for Low-Order Physiological Based Speech Synthesis., , , , и . INTERSPEECH, стр. 1378-1382. ISCA, (2017)Improving EEG Muscle Artifact Removal With an EMG Array., , , , и . IEEE Trans. Instrumentation and Measurement, 69 (3): 815-824 (2020)Energy-based fluid-structure model of the vocal folds., , , , и . IMA J. Math. Control. Inf., 38 (2): 466-492 (2021)Triangular body-cover model of the vocal folds with coordinated activation of five intrinsic laryngeal muscles with applications to vocal hyperfunction., , , , и . CoRR, (2021)Glottal Airflow Estimation Using Neck Surface Acceleration and Low-Order Kalman Smoothing., , , , и . IEEE ACM Trans. Audio Speech Lang. Process., (2023)LaDIVA: A neurocomputational model providing laryngeal motor control for speech acquisition and production., , , , , и . PLoS Comput. Biol., (2022)Mobile Voice Health Monitoring Using a Wearable Accelerometer Sensor and a Smartphone Platform., , , , и . IEEE Trans. Biomed. Eng., 59 (11-2): 3090-3096 (2012)Smartphone-based detection of voice disorders by long-term monitoring of neck acceleration features., , , , , и . BSN, стр. 1-6. IEEE, (2013)Subglottal Impedance-Based Inverse Filtering of Voiced Sounds Using Neck Surface Acceleration., , , , и . IEEE Trans. Speech Audio Process., 21 (9): 1929-1939 (2013)