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Review of assistive strategies in powered lower-limb orthoses and exoskeletons., , , and . Robotics and Autonomous Systems, (2015)A light-weight active orthosis for hip movement assistance., , , , , , , , and . Robotics and Autonomous Systems, (2015)A Wireless Flexible Sensorized Insole for Gait Analysis., , , , and . Sensors, 14 (1): 1073-1093 (2014)Synthetic and Bio-Artificial Tactile Sensing: A Review., , , and . Sensors, 13 (2): 1435-1466 (2013)The Challenges and Achievements of Experimental Implementation of an Active Transfemoral Prosthesis Based on Biological Quasi-Stiffness: The CYBERLEGs Beta-Prosthesis., , , , , , , , and . Front. Neurorobot., (2018)Design, development and testing of a lightweight and compact locking mechanism for a passive knee prosthesis., , , , , and . BioRob, page 1016-1021. IEEE, (2014)Ankle-Knee Prosthesis with Powered Ankle and Energy Transfer - Development of the CYBERLEGs Alpha-Prototype., , , , , and . NEUROTECHNIX, page 224-228. SciTePress, (2013)Proportional EMG control for upper-limb powered exoskeletons., , , and . EMBC, page 628-631. IEEE, (2011)The NEURARM: towards a platform for joint neuroscience experiments on human motion control theories., , , , , , and . IROS, page 1852-1857. IEEE, (2007)Online Phase Detection Using Wearable Sensors for Walking with a Robotic Prosthesis., , , , , , and . Sensors, 14 (2): 2776-2794 (2014)