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Integration of an adaptive swing control into a neuromuscular human walking model.

, , and . EMBC, page 4915-4918. IEEE, (2013)

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Generalization of a muscle-reflex control model to 3D walking., and . EMBC, page 7463-7466. IEEE, (2013)Integration of an adaptive swing control into a neuromuscular human walking model., , and . EMBC, page 4915-4918. IEEE, (2013)Bayesian Optimization Using Domain Knowledge on the ATRIAS Biped., , , , , and . ICRA, page 1771-1778. IEEE, (2018)MRI Segmentation of Musculoskeletal Components Using U-Net: Preliminary Results., , , and . ICBBB, page 30-35. ACM, (2024)Toward a virtual neuromuscular control for robust walking in bipedal robots., , and . IROS, page 6318-6323. IEEE, (2015)The effect of foot compliance encoded in the windlass mechanism on the energetics of human walking., , , and . EMBC, page 3179-3182. IEEE, (2013)MyoChallenge 2022: Learning contact-rich manipulation using a musculoskeletal hand., , , , , , , , , and 19 other author(s). NeurIPS (Competition and Demos), volume 220 of Proceedings of Machine Learning Research, page 233-250. PMLR, (2021)Regulating speed and generating large speed transitions in a neuromuscular human walking model., and . ICRA, page 511-516. IEEE, (2012)The energetic cost of adaptive feet in walking., and . ROBIO, page 1597-1602. IEEE, (2011)Evaluation of a Neuromechanical Walking Control Model Using Disturbance Experiments., and . Frontiers Comput. Neurosci., (2017)