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Automatic selection of ergonomie indicators for the design of collaborative robots: A virtual-human in the loop approach.

, , , , and . Humanoids, page 801-808. IEEE, (2014)

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Human movement and ergonomics: An industry-oriented dataset for collaborative robotics., , , , , , and . Int. J. Robotics Res., (2019)Humans Need Augmented Feedback to Physically Track Non-Biological Robot Movements., , and . ICRA, page 9872-9878. IEEE, (2023)Ethical and Social Considerations for the Introduction of Human-Centered Technologies at Work., , , and . ARSO, page 131-138. IEEE, (2018)Virtual ergonomics for the design of collaborative robots. (Ergonomie en environnement virtuel pour la conception de robots collaboratifs).. Pierre and Marie Curie University, Paris, France, (2015)Using Exoskeletons to Assist Medical Staff During Prone Positioning of Mechanically Ventilated COVID-19 Patients: A Pilot Study., , , , , , , , , and 5 other author(s). AHFE (5), volume 263 of Lecture Notes in Networks and Systems, page 88-100. Springer, (2021)Interacting with a Torque-Controlled Virtual Human in Virtual Reality for Ergonomics Studies., , , , and . VR Workshops, page 678-679. IEEE, (2022)Automatic selection of ergonomie indicators for the design of collaborative robots: A virtual-human in the loop approach., , , , and . Humanoids, page 801-808. IEEE, (2014)Towards data-driven predictive control of active upper-body exoskeletons for load carrying., , , , and . ARSO, page 59-64. IEEE, (2023)Activity Recognition for Ergonomics Assessment of Industrial Tasks With Automatic Feature Selection., , , and . IEEE Robotics Autom. Lett., 4 (2): 1132-1139 (2019)Workstation Suitability Maps: Generating Ergonomic Behaviors on a Population of Virtual Humans With Multi-Task Optimization., , , , and . IEEE Robotics Autom. Lett., 8 (11): 7384-7391 (November 2023)