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Contributions of phase resetting and interlimb coordination to the adaptive control of hindlimb obstacle avoidance during locomotion in rats: a simulation study.

, , , , , , , , , , and . Biol. Cybern., 107 (2): 201-216 (2013)

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Gait analysis in rat with cerebellar stroke., , , , , and . MHS, page 1-5. IEEE, (2017)Hindlimb splitbelt treadmill walking of a rat based on a neuromusculoskeletal model., , , , , , , and . BioRob, page 881-886. IEEE, (2014)A mathematical model of adaptive behavior in quadruped locomotion., , , , and . Biol. Cybern., 78 (5): 337-347 (1998)Construction of Experimental Environment for Muscle Synergy Analysis of Bipedal Walking in Rats., , , , , and . MHS, page 1-3. IEEE, (2018)Adaptive locomotion to periodic perturbation. Adaptation mechanism with coupling of oscillator and link dynamics., , , , and . Artif. Life Robotics, 3 (2): 97-101 (1999)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)Optical Myography-Based Sensing Methodology of Application of Random Loads to Muscles during Hand-Gripping Training., , , , , and . Sensors, 24 (4): 1108 (February 2024)Measuring body sway of bipedally standing rat and quantitative evaluation of its postural control., , , , , , , and . EMBC, page 5311-5314. IEEE, (2015)Development of a quadrupedal robot adapting to environmental changes., , , , and . Adv. Robotics, 13 (3): 263-264 (1998)Dynamical model of the body sway of bipedally standing rat with olivo-cerebellar dysfunction., , , , , , and . MHS, page 1-2. IEEE, (2015)