Robotic lower limb prosthesis design through simultaneous computer optimizations of human and prosthesis costs
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[1] B. B. Chatterjee,et al. Metabolic cost of walking at different speeds with patellar tendon-bearing prosthesis. , 1974, Journal of applied physiology.
[2] R. Waters,et al. Energy cost of walking of amputees: the influence of level of amputation. , 1976, The Journal of bone and joint surgery. American volume.
[3] N. Curtin,et al. Energetic aspects of muscle contraction. , 1985, Monographs of the Physiological Society.
[4] R. M. Alexander,et al. Optimization and gaits in the locomotion of vertebrates. , 1989, Physiological reviews.
[5] J. Lehmann,et al. Comprehensive analysis of energy storing prosthetic feet: Flex Foot and Seattle Foot Versus Standard SACH foot. , 1993, Archives of physical medicine and rehabilitation.
[6] J. Lehmann,et al. Comprehensive analysis of dynamic elastic response feet: Seattle Ankle/Lite Foot versus SACH foot. , 1993, Archives of physical medicine and rehabilitation.
[7] E. Isakov,et al. Mobility of persons after traumatic lower limb amputation. , 1997, Disability and rehabilitation.
[8] A. Minetti,et al. A theory of metabolic costs for bipedal gaits. , 1997, Journal of theoretical biology.
[9] A. J. van den Bogert,et al. Intrinsic muscle properties facilitate locomotor control - a computer simulation study. , 1998, Motor control.
[10] P. E. Martin,et al. Walking symmetry and energy cost in persons with unilateral transtibial amputations: matching prosthetic and intact limb inertial properties. , 2000, Archives of physical medicine and rehabilitation.
[11] M. Pandy,et al. Dynamic optimization of human walking. , 2001, Journal of biomechanical engineering.
[12] Frederick C. Corey,et al. Alexander , 1997, The Reign of Leo VI (886-912).
[13] D. Datta,et al. Mobility outcome following unilateral lower limb amputation , 2003, Prosthetics and orthotics international.
[14] A. Lees,et al. Adjustments in gait symmetry with walking speed in trans-femoral and trans-tibial amputees. , 2003, Gait & posture.
[15] Jasbir S. Arora,et al. Survey of multi-objective optimization methods for engineering , 2004 .
[16] H. Ralston. Energy-speed relation and optimal speed during level walking , 1958, Internationale Zeitschrift für angewandte Physiologie einschließlich Arbeitsphysiologie.
[17] Manoj Srinivasan,et al. Computer optimization of a minimal biped model discovers walking and running , 2006, Nature.
[18] R. Neptune,et al. Mechanical energetic contributions from individual muscles and elastic prosthetic feet during symmetric unilateral transtibial amputee walking: a theoretical study. , 2007, Journal of biomechanics.
[19] Hugh M. Herr,et al. Powered Ankle--Foot Prosthesis Improves Walking Metabolic Economy , 2009, IEEE Transactions on Robotics.
[20] Manoj Srinivasan,et al. Optimal speeds for walking and running, and walking on a moving walkway. , 2009, Chaos.
[21] Daniel P. Ferris,et al. Powered ankle exoskeletons reveal the metabolic cost of plantar flexor mechanical work during walking with longer steps at constant step frequency , 2009, Journal of Experimental Biology.
[22] Manoj Srinivasan,et al. Fifteen observations on the structure of energy-minimizing gaits in many simple biped models , 2011, Journal of The Royal Society Interface.
[23] B. R. Umberger,et al. Stance and swing phase costs in human walking , 2010, Journal of The Royal Society Interface.
[24] Marko Ackermann,et al. Optimality principles for model-based prediction of human gait. , 2010, Journal of biomechanics.
[25] Alena M. Grabowski,et al. Bionic ankle–foot prosthesis normalizes walking gait for persons with leg amputation , 2012, Proceedings of the Royal Society B: Biological Sciences.
[26] Anne E. Martin,et al. Predicting human walking gaits with a simple planar model. , 2014, Journal of biomechanics.
[27] Andrew K. LaPre,et al. Simulation of a powered ankle prosthesis with dynamic joint alignment , 2014, 2014 36th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[28] Matthew L. Handford,et al. Sideways walking: preferred is slow, slow is optimal, and optimal is expensive , 2014, Biology Letters.
[29] Ross H Miller. A comparison of muscle energy models for simulating human walking in three dimensions. , 2014, Journal of biomechanics.
[30] Steven H Collins,et al. A universal ankle-foot prosthesis emulator for human locomotion experiments. , 2014, Journal of biomechanical engineering.
[31] Steven H. Collins,et al. Prosthetic ankle push-off work reduces metabolic rate but not collision work in non-amputee walking , 2014, Scientific Reports.
[32] Chandana Paul,et al. Low-bandwidth reflex-based control for lower power walking: 65 km on a single battery charge , 2014, Int. J. Robotics Res..
[33] John R. Rebula,et al. The Cost of Leg Forces in Bipedal Locomotion: A Simple Optimization Study , 2015, PloS one.