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Online Finger Control Using High-Density EMG and Minimal Training Data for Robotic Applications.

, , , , , and . IEEE Robotics and Automation Letters, 4 (2): 217-223 (2019)

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An EMG-Controlled Robotic Hand Exoskeleton for Bilateral Rehabilitation., , , , , , , , , and 2 other author(s). IEEE Trans. Haptics, 8 (2): 140-151 (2015)An emg-based robotic hand exoskeleton for bilateral training of grasp., , , , , , , , , and . World Haptics, page 537-542. IEEE, (2013)A New Gaze-BCI-Driven Control of an Upper Limb Exoskeleton for Rehabilitation in Real-World Tasks., , , , , , and . IEEE Trans. Systems, Man, and Cybernetics, Part C, 42 (6): 1169-1179 (2012)A Linear Approach to Optimize an EMG-Driven Neuromusculoskeletal Model for Movement Intention Detection in Myo-Control: A Case Study on Shoulder and Elbow Joints., , , , and . Front. Neurorobot., (2018)Evaluating Generalization Capability of Bio-inspired Models for a Myoelectric Control: A Pilot Study., , , , , and . ICIC (3), volume 11645 of Lecture Notes in Computer Science, page 739-750. Springer, (2019)A novel BCI-SSVEP based approach for control of walking in Virtual Environment using a Convolutional Neural Network., , , , , , , and . IJCNN, page 4121-4128. IEEE, (2014)A neuromusculoskeletal model of the human upper limb for a myoelectric exoskeleton control using a reduced number of muscles., , , , , , and . World Haptics, page 273-279. IEEE, (2015)A Novel Approach for Upper Limb Robotic Rehabilitation for Stroke Patients., , , , , , , , , and . EuroHaptics (2), volume 9775 of Lecture Notes in Computer Science, page 459-469. Springer, (2016)Synergy-Based Multi-fingers Forces Reconstruction and Discrimination from Forearm EMG., , and . EuroHaptics (2), volume 10894 of Lecture Notes in Computer Science, page 204-213. Springer, (2018)Upper Limb Joint Angular Velocity Synergies of Human Reaching Movements., , , , , and . CBS, page 641-646. IEEE, (2018)