Locomotor adaptation to a soleus EMG-controlled antagonistic exoskeleton.
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[1] Aymar de Rugy,et al. Muscle Coordination Is Habitual Rather than Optimal , 2012, The Journal of Neuroscience.
[2] Francesco Lacquaniti,et al. Patterned control of human locomotion , 2012, The Journal of physiology.
[3] R. Neptune,et al. Relationships between muscle contributions to walking subtasks and functional walking status in persons with post-stroke hemiparesis. , 2011, Clinical biomechanics.
[4] J. Nessler,et al. A single bout of resistance exercise does not affect nonlinear dynamics of lower extremity kinematics during treadmill walking. , 2011, Gait & posture.
[5] Jason J Kutch,et al. Muscle redundancy does not imply robustness to muscle dysfunction. , 2011, Journal of biomechanics.
[6] Ming Wu,et al. Feedback and feedforward locomotor adaptations to ankle-foot load in people with incomplete spinal cord injury. , 2010, Journal of neurophysiology.
[7] Daniel P Ferris,et al. Joint kinetic response during unexpectedly reduced plantar flexor torque provided by a robotic ankle exoskeleton during walking. , 2010, Journal of biomechanics.
[8] Richard R Neptune,et al. Modular control of human walking: Adaptations to altered mechanical demands. , 2010, Journal of biomechanics.
[9] Richard R Neptune,et al. Merging of healthy motor modules predicts reduced locomotor performance and muscle coordination complexity post-stroke. , 2010, Journal of neurophysiology.
[10] J Maxwell Donelan,et al. Dynamic Principles of Gait and Their Clinical Implications , 2010, Physical Therapy.
[11] Daniel P Ferris,et al. Invariant ankle moment patterns when walking with and without a robotic ankle exoskeleton. , 2010, Journal of biomechanics.
[12] M. Tresch,et al. The case for and against muscle synergies , 2009, Current Opinion in Neurobiology.
[13] David J. Reinkensmeyer,et al. Slacking by the human motor system: Computational models and implications for robotic orthoses , 2009, 2009 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[14] R R Neptune,et al. Modulation of leg muscle function in response to altered demand for body support and forward propulsion during walking. , 2009, Journal of biomechanics.
[15] Ming Wu,et al. Ankle load modulates hip kinetics and EMG during human locomotion. , 2009, Journal of neurophysiology.
[16] J. Wakeling. The recruitment of different compartments within a muscle depends on the mechanics of the movement , 2009, Biology Letters.
[17] C. Kinnaird,et al. Medial Gastrocnemius Myoelectric Control of a Robotic Ankle Exoskeleton , 2009, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[18] Rieko Osu,et al. CNS Learns Stable, Accurate, and Efficient Movements Using a Simple Algorithm , 2008, The Journal of Neuroscience.
[19] R. Kram,et al. Independent effects of weight and mass on plantar flexor activity during walking: implications for their contributions to body support and forward propulsion. , 2008, Journal of applied physiology.
[20] J. Hidler,et al. Biomechanics of overground vs. treadmill walking in healthy individuals. , 2008, Journal of applied physiology.
[21] Daniel P. Ferris,et al. Locomotor adaptation to a powered ankle-foot orthosis depends on control method , 2007, Journal of NeuroEngineering and Rehabilitation.
[22] Lena H Ting,et al. Neuromechanics of muscle synergies for posture and movement , 2007, Current Opinion in Neurobiology.
[23] Richard R Neptune,et al. Compensatory strategies during normal walking in response to muscle weakness and increased hip joint stiffness. , 2007, Gait & posture.
[24] Daniel P Ferris,et al. An improved powered ankle-foot orthosis using proportional myoelectric control. , 2006, Gait & posture.
[25] Marco Schieppati,et al. Coordinated modulation of locomotor muscle synergies constructs straight-ahead and curvilinear walking in humans , 2006, Experimental Brain Research.
[26] J. Krakauer,et al. Consolidation of motor memory , 2006, Trends in Neurosciences.
[27] Daniel P. Ferris,et al. An ankle-foot orthosis powered by artificial pneumatic muscles. , 2005, Journal of applied biomechanics.
[28] F. Lacquaniti,et al. Five basic muscle activation patterns account for muscle activity during human locomotion , 2004, The Journal of physiology.
[29] A. Minetti,et al. A feedback-controlled treadmill (treadmill-on-demand) and the spontaneous speed of walking and running in humans. , 2003, Journal of applied physiology.
[30] R. Kram,et al. Energy cost and muscular activity required for propulsion during walking. , 2003, Journal of applied physiology.
[31] J. Donelan,et al. Mechanical work for step-to-step transitions is a major determinant of the metabolic cost of human walking. , 2002, The Journal of experimental biology.
[32] R. M. Alexander,et al. Energetics and optimization of human walking and running: the 2000 Raymond Pearl memorial lecture. , 2002 .
[33] Arthur D Kuo,et al. Energetics of actively powered locomotion using the simplest walking model. , 2002, Journal of biomechanical engineering.
[34] F. Zajac,et al. Contributions of the individual ankle plantar flexors to support, forward progression and swing initiation during walking. , 2001, Journal of biomechanics.
[35] R. Kram,et al. Mechanical and metabolic determinants of the preferred step width in human walking , 2001, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[36] A. Ruina,et al. Multiple walking speed-frequency relations are predicted by constrained optimization. , 2001, Journal of theoretical biology.
[37] J. Nielsen,et al. Major role for sensory feedback in soleus EMG activity in the stance phase of walking in man , 2000, The Journal of physiology.
[38] Blake Hannaford,et al. Measurement and modeling of McKibben pneumatic artificial muscles , 1996, IEEE Trans. Robotics Autom..
[39] Michael I. Jordan,et al. An internal model for sensorimotor integration. , 1995, Science.
[40] D. Winter,et al. Is there a ‘normal’ profile of EMG activity in gait? , 1986, Medical and Biological Engineering and Computing.
[41] G. Cavagna,et al. The determinants of the step frequency in walking in humans. , 1986, The Journal of physiology.
[42] H. Forssberg,et al. Hardwired locomotor network in cat revealed by a retained motor pattern to gastrocnemius after muscle transposition , 1983, Neuroscience Letters.
[43] R. Waters,et al. Electromyographic gait analysis before and after operative treatment for hemiplegic equinus and equinovarus deformity. , 1982, The Journal of bone and joint surgery. American volume.
[44] J. Perry,et al. Preoperative and postoperative dynamic electromyography as an aid in planning tendon transfers in children with cerebral palsy. , 1977, The Journal of bone and joint surgery. American volume.
[45] D. Sutherland,et al. Electromyographic Study of Transplanted Muscles about the Knee in Poliomyelitic Patients , 1960 .
[46] J. R. Close,et al. The phasic activity of the muscles of the lower extremity and the effect of tendon transfer. , 1959, The Journal of bone and joint surgery. American volume.
[47] H. Ralston. Energy-speed relation and optimal speed during level walking , 1958, Internationale Zeitschrift für angewandte Physiologie einschließlich Arbeitsphysiologie.
[48] R. Sperry. The Problem of Central Nervous Reorganization After Nerve Regeneration and Muscle Transposition , 1945, The Quarterly Review of Biology.
[49] Daniel P. Ferris,et al. Learning to walk with a robotic ankle exoskeleton. , 2007, Journal of biomechanics.
[50] Daniel P. Ferris,et al. Mechanical performance of artificial pneumatic muscles to power an ankle-foot orthosis. , 2006, Journal of biomechanics.
[51] Vladimir M. Zatsiorsky,et al. Kinetics of Human Motion , 2002 .