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Review of assistive strategies in powered lower-limb orthoses and exoskeletons.

, , , and . Robotics and Autonomous Systems, (2015)

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Actively variable transmission for robotic knee prostheses., , , and . ICRA, page 6665-6671. IEEE, (2017)A Lightweight, Efficient Fully Powered Knee Prosthesis With Actively Variable Transmission., , , and . IEEE Robotics and Automation Letters, 4 (2): 1186-1193 (2019)Vision-Based Pose Estimation for Robot-Mediated Hand Telerehabilitation., , , , , , , , , and . Sensors, 16 (2): 208 (2016)NEUROExos: A powered elbow orthosis for post-stroke early neurorehabilitation., , , , , , and . EMBC, page 342-345. IEEE, (2013)A light-weight active orthosis for hip movement assistance., , , , , , , , and . Robotics and Autonomous Systems, (2015)Review of assistive strategies in powered lower-limb orthoses and exoskeletons., , , and . Robotics and Autonomous Systems, (2015)Design, development, and bench-top testing of a powered polycentric ankle prosthesis., , and . IROS, page 1064-1069. IEEE, (2017)Design, development, and testing of a lightweight hybrid robotic knee prosthesis., , , and . I. J. Robotics Res., 37 (8): 953-976 (2018)On the design of ergonomic wearable robotic devices for motion assistance and rehabilitation., , , , , , and . EMBC, page 6124-6127. IEEE, (2012)A lightweight robotic ankle prosthesis with non-backdrivable cam-based transmission., , , , and . ICORR, page 1142-1147. IEEE, (2017)