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A case study on occupational back-support exoskeletons versatility in lifting and carrying., , , , , , , , , and 1 other author(s). PETRA, page 210-217. ACM, (2021)Basic functionality of a prototype wearable assistive soft exoskeleton for people with gait impairments: a case study., , , , , , , , , and 6 other author(s). PETRA, page 202-207. ACM, (2018)Energy Efficiency Analysis and Design Optimization of an Actuation System in a Soft Modular Lower Limb Exoskeleton., , , , and . IEEE Robotics Autom. Lett., 3 (1): 484-491 (2018)Soft Smart Garments for Lower Limb Joint Position Analysis., , , , , , and . Sensors, 17 (10): 2314 (2017)Applicability of an Active Back-Support Exoskeleton to Carrying Activities., , , , , and . Frontiers Robotics AI, (2020)Design and Evaluation of a Soft Assistive Lower Limb Exoskeleton., , , , , , , , , and 4 other author(s). Robotica, 37 (12): 2014-2034 (2019)Human-in-the-Loop Optimization of Active Back-Support Exoskeleton Assistance Via Lumbosacral Joint Torque Estimation., , , , and . IROS, page 6090-6096. (2023)Soft wearable device for lower limb assistance: Assessment of an optimized energy efficient actuation prototype., , , , , , , , and . RoboSoft, page 559-564. IEEE, (2018)Active and Passive Back-Support Exoskeletons: a Comparison in Static and Dynamic Tasks., , , , and . BioRob, page 1-8. IEEE, (2022)Enhancing Occupational Back-Support Exoskeletons Versatility.. University of Genoa, Italy, (2021)base-search.net (ftunivgenova:oai:iris.unige.it:11567/1045128).