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Advantages of the Incorporation of an Active Upper-Limb Exoskeleton in Industrial Tasks.

, , , , , , and . ROBOT (2), volume 1093 of Advances in Intelligent Systems and Computing, page 477-484. Springer, (2019)

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Advantages of the Incorporation of an Active Upper-Limb Exoskeleton in Industrial Tasks., , , , , , and . ROBOT (2), volume 1093 of Advances in Intelligent Systems and Computing, page 477-484. Springer, (2019)Oxygen consumption in industrial tasks assisted by an active upper-limb exoskeleton., , , , , , and . BioRob, page 576-580. IEEE, (2020)The Effect of an Active Upper-Limb Exoskeleton on Metabolic Parameters and Muscle Activity During a Repetitive Industrial Task., , , , and . IEEE Access, (2022)Activity Classification with Inertial Sensors to Perform Gait Analysis., , , , , and . DCAI (1), volume 740 of Lecture Notes in Networks and Systems, page 74-82. Springer, (2023)Patient Evaluation of an Upper-Limb Rehabilitation Robotic Device for Home Use., , , , , , , , , and 1 other author(s). BioRob, page 450-455. IEEE, (2018)Influence of Robotic Therapy on Severe Stroke Patients., , , , , , , , and . ICORR, page 1-6. IEEE, (2023)Physiological reactions in single-player and competitive arm rehabilitation games., , , , and . EMBC, page 433-436. IEEE, (2019)Customizable Optical Force Sensor for Fast Prototyping and Cost-Effective Applications., , , , , and . Sensors, 18 (2): 493 (2018)Differences in Physiological Reactions Due to a Competitive Rehabilitation Game Modality., , , , , and . Sensors, 21 (11): 3681 (2021)Electromyography Assessment of the Assistance Provided by an Upper-Limb Exoskeleton in Maintenance Tasks., , , , , and . Sensors, 19 (15): 3391 (2019)