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Use of Lower Limb Exoskeletons as an Assessment Tool for Human Motor Performance: A Systematic Review.

, , , , , , , and . Sensors, 23 (6): 3032 (March 2023)

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Embedded Barometric Pressure Sensor Unit for Force Myography in Exoskeletons., , , and . Humanoids, page 67-73. IEEE, (2022)Design and Evaluation of the JSI-KneExo: Active, Passive, Pneumatic, Portable Knee Exoskeleton., , , and . CoRR, (2023)Effects of Passive Ankle Exoskeleton on Human Energy Expenditure: Pilot Evaluation., , , and . RAAD, volume 540 of Advances in Intelligent Systems and Computing, page 491-498. Springer, (2016)Modular quasi-passive mechanism for energy storage applications: towards lightweight high-performance exoskeleton., , and . ICAR, page 588-593. IEEE, (2021)Qualitative Assessment of a Clutch-Actuated Ankle Exoskeleton., , and . RAAD, volume 49 of Mechanisms and Machine Science, page 778-786. Springer, (2017)Use of Lower Limb Exoskeletons as an Assessment Tool for Human Motor Performance: A Systematic Review., , , , , , , and . Sensors, 23 (6): 3032 (March 2023)Exoskeleton Arm Pronation/Supination Assistance Mechanism With A Guided Double Rod System., , , and . Humanoids, page 559-564. IEEE, (2019)Pneumatic Quasi-Passive Variable Stiffness Mechanism for Energy Storage Applications., , and . IEEE Robotics Autom. Lett., 7 (2): 1705-1712 (2022)Pseudo-linear variable lever variable stiffness actuator: Design and evaluation., and . AIM, page 785-790. IEEE, (2017)