Force adaptation in human walking with symmetrically applied downward forces on the pelvis
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Sunil K. Agrawal | Vineet Vashista | Darcy S. Reisman | Shazlin Shaharudin | Neelima Agrawal | D. Reisman | V. Vashista | Neelima Agrawal | S. Shaharudin | S. Agrawal
[1] 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.
[2] P. Cavanagh,et al. Exercise and pharmacological countermeasures for bone loss during long-duration space flight. , 2005, Gravitational and space biology bulletin : publication of the American Society for Gravitational and Space Biology.
[3] J S Higginson,et al. Two simple methods for determining gait events during treadmill and overground walking using kinematic data. , 2008, Gait & posture.
[4] J. D. De Witt,et al. The effect of increasing inertia upon vertical ground reaction forces and temporal kinematics during locomotion , 2008, Journal of Experimental Biology.
[5] D. Reisman,et al. Locomotor adaptation on a split-belt treadmill can improve walking symmetry post-stroke. , 2007, Brain : a journal of neurology.
[6] K. Hind,et al. Weight-bearing exercise and bone mineral accrual in children and adolescents: a review of controlled trials. , 2007, Bone.
[7] J.E. Colgate,et al. KineAssist: a robotic overground gait and balance training device , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..
[8] Sunil K. Agrawal,et al. Experimental studies on the human gait using a tethered pelvic assist device (T-PAD) , 2011, 2011 IEEE International Conference on Rehabilitation Robotics.
[9] Charles S. Layne,et al. The independent effect of added mass on the stability of the sagittal plane leg kinematics during steady-state human walking , 2009, Journal of Experimental Biology.
[10] V. Dietz,et al. Contribution of feedback and feedforward strategies to locomotor adaptations. , 2006, Journal of neurophysiology.
[11] Philip E. Martin,et al. Manipulations of leg mass and moment of inertia: effects on energy cost of walking. , 2005, Medicine and science in sports and exercise.
[12] Alberto Leardini,et al. Quantitative comparison of five current protocols in gait analysis. , 2008, Gait & posture.
[13] Alena M. Grabowski,et al. Independent metabolic costs of supporting body weight and accelerating body mass during walking. , 2005, Journal of applied physiology.
[14] Sunil Kumar Agrawal,et al. A novel passive pelvic device for assistance during locomotion , 2010, 2010 IEEE International Conference on Robotics and Automation.
[15] Laurent J Bouyer,et al. Timing-specific transfer of adapted muscle activity after walking in an elastic force field. , 2009, Journal of neurophysiology.
[16] Hannah J. Block,et al. Interlimb coordination during locomotion: what can be adapted and stored? , 2005, Journal of neurophysiology.
[17] M P Kadaba,et al. Measurement of lower extremity kinematics during level walking , 1990, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[18] Jos Meuleman,et al. Effect of added inertia on the pelvis on gait , 2011, 2011 IEEE International Conference on Rehabilitation Robotics.
[19] Tania Lam,et al. Locomotor adaptations and aftereffects to resistance during walking in individuals with spinal cord injury. , 2011, Journal of neurophysiology.
[20] Elizabeth A. Brackbill,et al. Robot-assisted modifications of gait in healthy individuals , 2010, Experimental Brain Research.
[21] Sunil Kumar Agrawal,et al. An untethered shoe with vibratory feedback for improving gait of Parkinson's Patients: The PDShoe , 2012, 2012 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[22] R. Brand,et al. The biomechanics and motor control of human gait: Normal, elderly, and pathological , 1992 .
[23] S.J. Harkema,et al. A Robot and Control Algorithm That Can Synchronously Assist in Naturalistic Motion During Body-Weight-Supported Gait Training Following Neurologic Injury , 2007, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[24] F. Zajac,et al. Contributions of the individual ankle plantar flexors to support, forward progression and swing initiation during walking. , 2001, Journal of biomechanics.
[25] A. Bastian. Understanding sensorimotor adaptation and learning for rehabilitation , 2008, Current opinion in neurology.
[26] S. Prentice,et al. Adaptation to unilateral change in lower limb mechanical properties during human walking , 2006, Experimental Brain Research.
[27] S.K. Agrawal,et al. Robot assisted gait training with active leg exoskeleton (ALEX) , 2009, 2008 2nd IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics.
[28] 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.
[29] R. Brand,et al. Prediction of hip joint centre location from external landmarks , 1989 .
[30] Jaap H. Buurke,et al. Selective and adaptive robotic support of foot clearance for training stroke survivors with stiff knee gait , 2009, 2009 IEEE International Conference on Rehabilitation Robotics.
[31] Alfred D. Grant. Gait Analysis: Normal and Pathological Function , 2010 .
[32] D.J. Reinkensmeyer,et al. Robot-enhanced motor learning: accelerating internal model formation during locomotion by transient dynamic amplification , 2005, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[33] Kara K. Patterson,et al. Evaluation of gait symmetry after stroke: a comparison of current methods and recommendations for standardization. , 2010, Gait & posture.
[34] Jill M. Landry,et al. Locomotor adaptation to resistance during treadmill training transfers to overground walking in human SCI , 2011, Experimental Brain Research.
[35] R. Ekkelenkamp,et al. Selective control of a subtask of walking in a robotic gait trainer(LOPES) , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.