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The combined action of a passive exoskeleton and an EMG-controlled neuroprosthesis for upper limb stroke rehabilitation: First results of the RETRAINER project.

, , , , , , , , , , , , , , , , , , , and . ICORR, page 56-61. IEEE, (2017)

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Upper-limb actuated exoskeleton for muscular dystrophy patients: preliminary results., , , , , , , , , and 3 other author(s). EMBC, page 4431-4435. IEEE, (2019)An assistive upper-limb exoskeleton controlled by multi-modal interfaces for severely impaired patients: development and experimental assessment., , , , , , , , , and 5 other author(s). Robotics Auton. Syst., (2021)BRIDGE - Behavioural reaching interfaces during daily antigravity activities through upper limb exoskeleton: Preliminary results., , , , , , and . ICORR, page 1007-1012. IEEE, (2017)The Retrainer Light-Weight Arm Exoskeleton: Effect of Adjustable Gravity Compensation on Muscle Activations and Forces., , , , , and . BioRob, page 396-401. IEEE, (2018)The combined action of a passive exoskeleton and an EMG-controlled neuroprosthesis for upper limb stroke rehabilitation: First results of the RETRAINER project., , , , , , , , , and 10 other author(s). ICORR, page 56-61. IEEE, (2017)Functional and usability assessment of a robotic exoskeleton arm to support activities of daily life., , , , , , , , and . Robotica, 32 (8): 1213-1224 (2014)A Hybrid Robotic System for Arm Training of Stroke Survivors: Concept and First Evaluation., , , , , , , , , and 12 other author(s). IEEE Trans. Biomed. Eng., 66 (12): 3290-3300 (2019)Multi-Modal Human-Machine Control Interfaces of Upper Limb Motorized Exoskeletons for Severely Impaired Patients., , , , , , , , and . BioRob, page 491-496. IEEE, (2018)Wrist Kinematics and Kinetics during Wheelchair Propulsion with a Novel Handle-based Propulsion Mechanism., , , and . EMBC, page 2146-2149. IEEE, (2018)Estimation Methods for Viscosity, Flow Rate and Pressure from Pump-Motor Assembly Parameters., , , , , and . Sensors, 20 (5): 1451 (2020)