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Static ankle impedance in stroke and multiple sclerosis: A feasibility study.

, , , , , , and . EMBC, page 8523-8526. IEEE, (2011)

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Adaptive impedance control for robot-aided rehabilitation of ankle movements., , , and . BioRob, page 664-669. IEEE, (2014)Robot-Aided Neurorehabilitation: A Novel Robot for Ankle Rehabilitation., , , , , , and . IEEE Trans. Robotics, 25 (3): 569-582 (2009)Equilibrium point-based control of muscle-driven anthropomorphic legs reveals modularity of human motor control during pedalling., , and . Adv. Robotics, 34 (5): 328-342 (2020)Human-Robot Interaction: Controller Design and Stability., , and . BioRob, page 1096-1101. IEEE, (2020)The effects of galvanic vestibular stimulation and vision on perception of ground inclination., , and . BioRob, page 1019-1022. IEEE, (2016)Predicting efficacy of robot-aided rehabilitation in chronic stroke patients using an MRI-compatible robotic device., , , , , , and . EMBC, page 7470-7473. IEEE, (2011)Characteristics of Human Behavior in Force Modulation while Performing Force Tracking Tasks., and . BioRob, page 240-245. IEEE, (2020)Hand rehabilitation using Soft-Robotics., , , , and . BioRob, page 698-703. IEEE, (2016)Exploiting invariant structure for controlling multiple muscles in anthropomorphic legs: II. Experimental evidence for three equilibrium-point-based synergies during human pedaling., , , , , , , , , and . Humanoids, page 1167-1172. IEEE, (2016)Spatiotemporal Dynamics of Online Motor Correction Processing Revealed by High-density Electroencephalography., , and . J. Cognitive Neuroscience, 26 (9): 1966-1980 (2014)