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Altered Neural Control Reduces Shear Forces and Ankle Impedance on a Slippery Surface.

, , and . IEEE Trans. Biomed. Eng., 66 (8): 2381-2389 (2019)

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Multiple-input, multiple-output system identification for characterization of limb stiffness dynamics., , and . Biol. Cybern., 80 (5): 327-337 (1999)Efficient estimation of time-varying intrinsic and reflex stiffness., , and . EMBC, page 4124-4127. IEEE, (2011)The dynamic effect of muscle activation on knee stiffness., and . EMBC, page 1599-1602. IEEE, (2014)Learning impedance controller parameters for lower-limb prostheses., , , , , and . IROS, page 4268-4274. IEEE, (2013)Posture-dependent changes in corticomotor excitability of the biceps after spinal cord injury and tendon transfer., , , , , , , and . EMBC, page 4302-4305. IEEE, (2014)Grand Challenges in Interfacing Engineering With Life Sciences and Medicine., , , , , , , , , and 8 other author(s). IEEE Trans. Biomed. Eng., 60 (3): 589-598 (2013)Altered Neural Control Reduces Shear Forces and Ankle Impedance on a Slippery Surface., , and . IEEE Trans. Biomed. Eng., 66 (8): 2381-2389 (2019)Estimates of Acausal Joint Impedance Models., and . IEEE Trans. Biomed. Eng., 59 (10): 2913-2921 (2012)Estimation of joint impedance using short data segments., and . EMBC, page 4120-4123. IEEE, (2011)Modeling open-loop stability of a human arm driven by a functional electrical stimulation neuroprosthesis., , , , , and . EMBC, page 3598-3601. IEEE, (2013)