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Sensory regulation of stance-to-swing transition in generation of adaptive human walking: A simulation study.

, , , and . Robotics Auton. Syst., 60 (5): 685-691 (2012)

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Simulating Adaptive Human Bipedal Locomotion Based on Phase Resetting Using Foot-Contact Information., , , and . Adv. Robotics, 22 (15): 1697-1713 (2008)Hindlimb splitbelt treadmill walking of a rat based on a neuromusculoskeletal model., , , , , , , and . BioRob, page 881-886. IEEE, (2014)A recurrent neural network model for generation of humanlike reaching movements., and . Adv. Robotics, 32 (15): 837-849 (2018)A hypothetical neural network model for generation of human precision grip., and . Neural Networks, (2019)Contributions of phase resetting and interlimb coordination to the adaptive control of hindlimb obstacle avoidance during locomotion in rats: a simulation study., , , , , , , , , and 1 other author(s). Biol. Cybern., 107 (2): 201-216 (2013)Evaluating functional roles of phase resetting in generation of adaptive human bipedal walking with a physiologically based model of the spinal pattern generator., , , , and . Biol. Cybern., 102 (5): 373-387 (2010)An analysis of leg joint synergy during bipedal walking in Japanese macaques., , , and . EMBC, page 8183-8186. IEEE, (2011)Sensory regulation of stance-to-swing transition in generation of adaptive human walking: A simulation study., , , and . Robotics Auton. Syst., 60 (5): 685-691 (2012)Stabilizing Function of the Musculoskeletal System for Periodic Motion., , , and . Adv. Robotics, 23 (5): 521-534 (2009)Generation of human bipedal locomotion by a bio-mimetic neuro-musculo-skeletal model., and . Biol. Cybern., 84 (1): 1-11 (2001)