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SSVEP-Based Brain-Computer Interface Controlled Functional Electrical Stimulation System for Upper Extremity Rehabilitation.

, , , and . IEEE Trans. Syst. Man Cybern. Syst., 46 (7): 947-956 (2016)

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Bioinspired Segmented Hybrid Bending Pneumatic Actuators for Rehabilitation/Assisting Training., , , and . M2VIP, page 1-6. IEEE, (2023)An inter-subject model to reduce the calibration time for motion imagination-based brain-computer interface., , , , , and . Medical Biol. Eng. Comput., 57 (4): 939-952 (2019)Breathing Pattern Recognition By the Fusion of EMG and Acceleration Signals., , , , and . ROBIO, page 877-882. IEEE, (2022)Robot-Assisted Rehabilitation System Based on SSVEP Brain-Computer Interface for Upper Extremity., , , , and . ROBIO, page 1058-1063. IEEE, (2018)SSVEP-Based Brain-Computer Interface Controlled Functional Electrical Stimulation System for Upper Extremity Rehabilitation., , , and . IEEE Trans. Syst. Man Cybern. Syst., 46 (7): 947-956 (2016)A Novel Limbs-free Human-Computer Interface: Face-Computer Interface (FCI) with Channels Optimization., , , and . ROBIO, page 1092-1097. IEEE, (2021)A supervised independent component analysis algorithm for motion imagery-based brain computer interface., , , , , and . Biomed. Signal Process. Control., (2022)Face-Computer Interface (FCI): Intent Recognition Based on Facial Electromyography (fEMG) and Online Human-Computer Interface With Audiovisual Feedback., , , , , and . Frontiers Neurorobotics, (2021)A Novel Limbs-Free Variable Structure Wheelchair based on Face-Computer Interface (FCI) with Shared Control., , , and . ICRA, page 5480-5486. IEEE, (2022)Intuitive Human-Robot-Environment Interaction with EMG Signals: A Review., , , , and . IEEE CAA J. Autom. Sinica, 11 (5): 1075-1091 (May 2024)