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Editorial: Assessing Bipedal Locomotion: Towards Replicable Benchmarks for Robotic and Robot-Assisted Locomotion.

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Simultaneous estimation of human and exoskeleton motion: A simplified protocol., , , , , , , and . ICORR, page 1431-1436. IEEE, (2017)Novel kinematic indices for quantifying upper limb ability and dexterity after cervical spinal cord injury., , , , , , and . Med. Biol. Engineering and Computing, 55 (5): 833-844 (2017)Benchmarking Human Likeness of Bipedal Robot Locomotion: State of the Art and Future Trends., , , , , , , , and . Metrics of Sensory Motor Coordination and Integration in Robots and Animals, volume 36 of Cognitive Systems Monographs, Springer, (2020)Benchmarking Human-Like Posture and Locomotion of Humanoid Robots: A Preliminary Scheme., , , , , , , , , and 8 other author(s). Living Machines, volume 8608 of Lecture Notes in Computer Science, page 320-331. Springer, (2014)A Variable Stiffness Actuator Module With Favorable Mass Distribution for a Bio-inspired Biped Robot., , , , , , , , , and 1 other author(s). Front. Neurorobot., (2019)Editorial : Assessing Bipedal Locomotion : Towards Replicable Benchmarks for Robotic and Robot-Assisted Locomotion, , , , and . Frontiers in Neurorobotics, (2019)Assessing sensorimotor excitability after spinal cord injury: a reflex testing method based on cycling with afferent stimulation., , , , , , , and . Med. Biol. Engineering and Computing, 56 (8): 1425-1434 (2018)A predictive model of muscle excitations based on muscle modularity for a large repertoire of human locomotion conditions., , , , , and . Front. Comput. Neurosci., (2015)Modular control of mediolateral postural sway., , , , , , , and . EMBC, page 3632-3635. IEEE, (2012)Editorial: Assessing Bipedal Locomotion: Towards Replicable Benchmarks for Robotic and Robot-Assisted Locomotion., , , , and . Front. Neurorobot., (2019)