Toward the Development of Knee Prostheses: Review of Current Active Devices
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[1] G. Horn. Electro-control: am EMG-controlled A/K prosthesis , 2006, Medical and biological engineering.
[2] Thomas Schmalz,et al. The Safety of C-Leg: Biomechanical Tests , 2009 .
[3] Rafael R. Torrealba,et al. Through the development of a biomechatronic knee prosthesis for transfemoral amputees: Mechanical design and manufacture, human gait characterization, intelligent control strategies and tests , 2010, 2010 IEEE International Conference on Robotics and Automation.
[4] D G Smith,et al. Back pain as a secondary disability in persons with lower limb amputations. , 2001, Archives of physical medicine and rehabilitation.
[5] H. Herr,et al. A Clinical Comparison of Variable-Damping and Mechanically Passive Prosthetic Knee Devices , 2005, American journal of physical medicine & rehabilitation.
[6] J. Michael,et al. Design Principles, Biomeclianical Data and Clinical Experience with a Polycentric Knee Offering Controlled Stance Phase Knee Flexion: A Preliminary Report , 1997 .
[7] D A Winter,et al. Performance assessment of the Terry Fox jogging prosthesis for above-knee amputees. , 1989, Journal of biomechanics.
[8] R. Kram,et al. The effects of adding mass to the legs on the energetics and biomechanics of walking. , 2007, Medicine and science in sports and exercise.
[9] Aaron D. Ames,et al. Control lyapunov functions and hybrid zero dynamics , 2012, 2012 IEEE 51st IEEE Conference on Decision and Control (CDC).
[10] Fan Zhang,et al. Continuous Locomotion-Mode Identification for Prosthetic Legs Based on Neuromuscular–Mechanical Fusion , 2011, IEEE Transactions on Biomedical Engineering.
[11] H.A. Varol,et al. Real-time gait mode intent recognition of a powered knee and ankle prosthesis for standing and walking , 2008, 2008 2nd IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics.
[12] W. Miller,et al. The influence of falling, fear of falling, and balance confidence on prosthetic mobility and social activity among individuals with a lower extremity amputation. , 2001, Archives of physical medicine and rehabilitation.
[13] He Huang,et al. A Strategy for Identifying Locomotion Modes Using Surface Electromyography , 2009, IEEE Transactions on Biomedical Engineering.
[14] Nicholas P. Fey,et al. Controlling Knee Swing Initiation and Ankle Plantarflexion With an Active Prosthesis on Level and Inclined Surfaces at Variable Walking Speeds , 2014, IEEE Journal of Translational Engineering in Health and Medicine.
[15] H. J. de Jongh,et al. Prosthetic gait of unilateral transfemoral amputees: a kinematic study. , 1995, Archives of physical medicine and rehabilitation.
[16] C. D. Hoover,et al. Stair Ascent With a Powered Transfemoral Prosthesis Under Direct Myoelectric Control , 2013, IEEE/ASME Transactions on Mechatronics.
[17] A. Lees,et al. The functional demands on the intact limb during walking for active transfemoral and transtibial amputees , 2000, Prosthetics and orthotics international.
[18] W. Miller,et al. The prevalence and risk factors of falling and fear of falling among lower extremity amputees. , 2001, Archives of physical medicine and rehabilitation.
[19] G Van der Perre,et al. Development of an above-knee prosthesis equipped with a microcomputer-controlled knee joint: first test results. , 1992, Journal of biomedical engineering.
[20] Michael S Orendurff,et al. Gait efficiency using the C-Leg. , 2006, Journal of rehabilitation research and development.
[21] T. Schmalz,et al. Energy expenditure and biomechanical characteristics of lower limb amputee gait: the influence of prosthetic alignment and different prosthetic components. , 2002, Gait & posture.
[22] Homayoon Kazerooni,et al. Design of a semi-active knee prosthesis , 2009, 2009 IEEE International Conference on Robotics and Automation.
[23] A. Lees,et al. Adjustments in gait symmetry with walking speed in trans-femoral and trans-tibial amputees. , 2003, Gait & posture.
[24] Fan Zhang,et al. Toward Design of an Environment-Aware Adaptive Locomotion-Mode-Recognition System , 2012, IEEE Transactions on Biomedical Engineering.
[25] C W Radcliffe. Four-bar linkage prosthetic knee mechanisms: Kinematics, alignment and prescription criteria , 1994, Prosthetics and orthotics international.
[26] Yashraj S. Narang,et al. The Effects of Prosthesis Inertial Properties on Prosthetic Knee Moment and Hip Energetics Required to Achieve Able-Bodied Kinematics , 2016, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[27] Koushil Sreenath,et al. A Compliant Hybrid Zero Dynamics Controller for Stable, Efficient and Fast Bipedal Walking on MABEL , 2011, Int. J. Robotics Res..
[28] Rafael R. Torrealba,et al. Towards the development of knee prostheses: review of current researches , 2008, Kybernetes.
[29] Hugh M. Herr,et al. Powered ankle-foot prosthesis to assist level-ground and stair-descent gaits , 2008, Neural Networks.
[30] S. Nadeau,et al. Frontal and sagittal plane analyses of the stair climbing task in healthy adults aged over 40 years: what are the challenges compared to level walking? , 2003, Clinical biomechanics.
[31] Robert D. Gregg,et al. A Robust Parameterization of Human Gait Patterns Across Phase-Shifting Perturbations , 2017, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[32] Hugh Herr,et al. Agonist-antagonist active knee prosthesis: a preliminary study in level-ground walking. , 2009, Journal of rehabilitation research and development.
[33] A. Dollar,et al. Estimation of Quasi-Stiffness of the Human Knee in the Stance Phase of Walking , 2013, PloS one.
[34] Donald Thomas Darling. Automatic damping profile optimization for computer controlled above-knee prostheses , 1978 .
[35] He Huang,et al. An Analysis of EMG Electrode Configuration for Targeted Muscle Reinnervation Based Neural Machine Interface , 2008, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[36] David A. Winter,et al. Biomechanics and Motor Control of Human Movement , 1990 .
[37] Denny J. Padgett,et al. Gait and balance of transfemoral amputees using passive mechanical and microprocessor-controlled prosthetic knees. , 2007, Gait & posture.
[38] Donald Lee Grimes. An active multi-mode above knee prosthesis controller , 1979 .
[39] Jack M. Winters,et al. Multiple Muscle Systems , 1990, Springer New York.
[40] Michael Goldfarb,et al. Myoelectric control of a powered knee prosthesis for volitional movement during non-weight-bearing activities , 2010, 2010 Annual International Conference of the IEEE Engineering in Medicine and Biology.
[41] Kenton R Kaufman,et al. Energy expenditure and activity of transfemoral amputees using mechanical and microprocessor-controlled prosthetic knees. , 2008, Archives of physical medicine and rehabilitation.
[42] P. Willems,et al. Effect of speed on the energy cost of walking in unilateral traumatic lower limb amputees , 2008, European Journal of Applied Physiology.
[43] Xiangrong Shen,et al. Design and Control of a Pneumatic Artificial Muscle Actuated Above-Knee Prosthesis , 2011 .
[44] R. Riener,et al. Joint powers in stair climbing at different slopes , 1999, Proceedings of the First Joint BMES/EMBS Conference. 1999 IEEE Engineering in Medicine and Biology 21st Annual Conference and the 1999 Annual Fall Meeting of the Biomedical Engineering Society (Cat. N.
[45] Nicola Vitiello,et al. CYBERLEGs: A User-Oriented Robotic Transfemoral Prosthesis with Whole-Body Awareness Control , 2014, IEEE Robotics & Automation Magazine.
[46] Robert Riener,et al. Control strategies for active lower extremity prosthetics and orthotics: a review , 2015, Journal of NeuroEngineering and Rehabilitation.
[47] G Mensch,et al. Running patterns of transfemoral amputees: A clinical analysis , 1986, Prosthetics and orthotics international.
[48] Michael Goldfarb,et al. Standing Stability Enhancement With an Intelligent Powered Transfemoral Prosthesis , 2011, IEEE Transactions on Biomedical Engineering.
[49] David C. Post,et al. Design and experimental implementation of a hybrid zero dynamics-based controller for planar bipeds with curved feet , 2014, Int. J. Robotics Res..
[50] Darwin G. Caldwell,et al. Braided Pneumatic Muscle Actuators , 1993 .
[51] F. Sup,et al. Design and Control of an Electrically Powered Knee Prosthesis , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.
[52] G Van der Perre,et al. Development of EMG-based mode and intent recognition algorithms for a computer-controlled above-knee prosthesis. , 1990, Journal of biomedical engineering.
[53] S. Najarian,et al. A COMPUTER SIMULATION OF THE EFFECT OF MUSCLE LOSS ON HIP JOINT EFFORT DURING THE STANCE PHASE OF TRANSFEMORAL AMPUTEE GAIT , 2011 .
[54] J. Czerniecki,et al. Effect of prosthetic mass on swing phase work during above-knee amputee ambulation. , 1997, American journal of physical medicine & rehabilitation.
[55] H.A. Varol,et al. Design and control of an active electrical knee and ankle prosthesis , 2008, 2008 2nd IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics.
[56] Simulation of the Effect of Amputation Level on Individual Muscle Forces of Transfemoal Amputees , 2010 .
[57] Thomas Sugar,et al. Design, implementation and test results of a robust control method for a powered ankle foot orthosis (AFO) , 2008, 2008 IEEE International Conference on Robotics and Automation.
[58] Robert Riener,et al. Review of the actuators of active knee prostheses and their target design outputs for activities of daily living , 2017, 2017 International Conference on Rehabilitation Robotics (ICORR).
[59] P. Mukhopadhyay,et al. E.M.G. operated electronic artificial-leg controller , 2006, Medical and Biological Engineering and Computing.
[60] Daniel P. Ferris,et al. Learning to walk with a robotic ankle exoskeleton. , 2007, Journal of biomechanics.
[61] R W Mann,et al. An electrohydraulic knee-torque controller for a prosthesis simulator. , 1977, Journal of biomechanical engineering.
[62] R. Riener,et al. Stair ascent and descent at different inclinations. , 2002, Gait & posture.
[63] Jessy W. Grizzle,et al. Performance Analysis and Feedback Control of ATRIAS, A Three-Dimensional Bipedal Robot , 2014 .
[64] Robert D. Gregg,et al. Preliminary experiments with a unified controller for a powered knee-ankle prosthetic leg across walking speeds , 2016, 2016 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS).
[65] Saeed Zahedi,et al. A powered prosthetic knee joint inspired from musculoskeletal system , 2013 .
[66] Robert Riener,et al. Complementary limb motion estimation for the control of active knee prostheses , 2011, Biomedizinische Technik. Biomedical engineering.
[67] B. Heller,et al. A comparative evaluation of oxygen consumption and gait pattern in amputees using Intelligent Prostheses and conventionally damped knee swing-phase control , 2005, Clinical rehabilitation.
[68] Michael Goldfarb,et al. A Robotic Leg Prosthesis: Design, Control, and Implementation , 2014, IEEE Robotics & Automation Magazine.
[69] Nur Azah Hamzaid,et al. Technology Efficacy in Active Prosthetic Knees for Transfemoral Amputees: A Quantitative Evaluation , 2014, TheScientificWorldJournal.
[70] Robert Riener,et al. Actuator With Angle-Dependent Elasticity for Biomimetic Transfemoral Prostheses , 2015, IEEE/ASME Transactions on Mechatronics.
[71] Michael Goldfarb,et al. Design and Control of a Powered Transfemoral Prosthesis , 2008, Int. J. Robotics Res..
[72] A. M. Simon,et al. Real-time myoelectric control of knee and ankle motions for transfemoral amputees. , 2011, JAMA.
[73] M. Goldfarb,et al. Control of Stair Ascent and Descent With a Powered Transfemoral Prosthesis , 2013, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[74] Aaron D. Ames,et al. First steps toward translating robotic walking to prostheses: a nonlinear optimization based control approach , 2017, Auton. Robots.
[75] Hugh Herr,et al. Antagonistic active knee prosthesis. A metabolic cost of walking comparison with a variable-damping prosthetic knee , 2011, 2011 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[76] Todd A. Kuiken,et al. Improving Myoelectric Pattern Recognition Robustness to Electrode Shift by Changing Interelectrode Distance and Electrode Configuration , 2012, IEEE Transactions on Biomedical Engineering.
[77] P. Bonato,et al. An EMG-position controlled system for an active ankle-foot prosthesis: an initial experimental study , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..
[78] Rory A Cooper,et al. Wheeled mobility: factors influencing mobility and assistive technology in veterans and servicemembers with major traumatic limb loss from Vietnam war and OIF/OEF conflicts. , 2010, Journal of rehabilitation research and development.
[79] Timothy Bretl,et al. Learning impedance controller parameters for lower-limb prostheses , 2013, 2013 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[80] Hugh Herr,et al. User-adaptive control of a magnetorheological prosthetic knee , 2003, Ind. Robot.
[81] Pere J Riu. Book review of “Biomagnetics: Principles and Applications of Biomagnetic Stimulation and Imaging” edited by Shoogo Ueno and Masaki Sekino , 2016, Biomedical engineering online.
[82] W. Van Petegem,et al. An EMG-based finite state approach for a microcomputer-controlled above-knee prosthesis , 1995, Proceedings of 17th International Conference of the Engineering in Medicine and Biology Society.
[83] Michael Goldfarb,et al. Upslope Walking With a Powered Knee and Ankle Prosthesis: Initial Results With an Amputee Subject , 2011, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[84] Klaas Postema,et al. A systematic literature review of the effect of different prosthetic components on human functioning with a lower-limb prosthesis. , 2004, Journal of rehabilitation research and development.
[85] Homayoon Kazerooni,et al. Design of a semi-active knee-ankle prosthesis , 2011, 2011 IEEE International Conference on Robotics and Automation.
[86] J. Czerniecki,et al. Mechanical work adaptations of above-knee amputee ambulation. , 1996, Archives of physical medicine and rehabilitation.
[87] Jessy W. Grizzle,et al. Event-Based Stabilization of Periodic Orbits for Underactuated 3-D Bipedal Robots With Left-Right Symmetry , 2014, IEEE Transactions on Robotics.
[88] 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.
[89] T.G. Sugar,et al. A Robust Control Concept for Robotic Ankle Gait Assistance , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.
[90] David Moser,et al. Motor electrical damping for back-drivable prosthetic knee , 2016, 2016 11th France-Japan & 9th Europe-Asia Congress on Mechatronics (MECATRONICS) /17th International Conference on Research and Education in Mechatronics (REM).
[91] J. Czerniecki,et al. Kinematic and kinetic comparisons of transfemoral amputee gait using C-Leg and Mauch SNS prosthetic knees. , 2006, Journal of rehabilitation research and development.
[92] Katheryn J Allyn,et al. Evaluation of function, performance, and preference as transfemoral amputees transition from mechanical to microprocessor control of the prosthetic knee. , 2007, Archives of physical medicine and rehabilitation.
[93] Jessy W. Grizzle,et al. Preliminary walking experiments with underactuated 3D bipedal robot MARLO , 2014, 2014 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[94] Seung-Bok Choi,et al. Design and control of a prosthetic leg for above-knee amputees operated in semi-active and active modes , 2016 .
[95] J. Paysant,et al. Kinematics in the terminal swing phase of unilateral transfemoral amputees: microprocessor-controlled versus swing-phase control prosthetic knees. , 2010, Archives of physical medicine and rehabilitation.
[96] V. Wright,et al. Bone and joint changes in lower limb amputees. , 1978, Annals of the rheumatic diseases.
[97] N. Ordway,et al. Comparison Between the C-leg® Microprocessor-Controlled Prosthetic Knee and Non-Microprocessor Control Prosthetic Knees: A Preliminary Study of Energy Expenditure, Obstacle Course Performance, and Quality of Life Survey , 2007, Prosthetics and orthotics international.
[98] Kevin B. Fite,et al. The Design and Initial Experimental Validation of an Active Myoelectric Transfemoral Prosthesis , 2012 .
[99] Michael Goldfarb,et al. A Powered Prosthetic Intervention for Bilateral Transfemoral Amputees , 2015, IEEE Transactions on Biomedical Engineering.
[100] C. W. Radcliffe. Above-knee prosthetics , 1977 .
[101] Saeed Zahedi,et al. Design of an efficient back-drivable semi-active above knee prosthesis , 2011 .
[102] H.A. Varol,et al. Preliminary Evaluations of a Self-Contained Anthropomorphic Transfemoral Prosthesis , 2009, IEEE/ASME Transactions on Mechatronics.
[103] D. Datta,et al. Outcome of prosthetic management of bilateral lower-limb amputees. , 1992, Disability and rehabilitation.
[104] S.G. Meek,et al. Fatigue compensation of the electromyographic signal for prosthetic control and force estimation , 1993, IEEE Transactions on Biomedical Engineering.
[105] Jonathon W. Sensinger,et al. Design and preliminary testing of the RIC hybrid knee prosthesis , 2015, 2015 37th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[106] T. Kuiken,et al. Cortical motor activity and reorganization following upper-limb amputation and subsequent targeted reinnervation☆ , 2013, NeuroImage: Clinical.
[107] Michael Goldfarb,et al. Running With a Powered Knee and Ankle Prosthesis , 2015, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[108] Michael Goldfarb,et al. Self-contained powered knee and ankle prosthesis: Initial evaluation on a transfemoral amputee , 2009, 2009 IEEE International Conference on Rehabilitation Robotics.
[109] Michael Goldfarb,et al. A unified force controller for a proportional-injector direct-injection monopropellant-powered actuator , 2006 .
[110] Saeed Zahedi,et al. Inertia Properties of a Prosthetic Knee Mechanism , 2015, TAROS.
[111] A L Hof,et al. Uphill and downhill walking in unilateral lower limb amputees. , 2008, Gait & posture.
[112] Rolf Isermann,et al. Intelligent actuators - Ways to autonomous actuating systems , 1993, Autom..
[113] Barri L Schnall,et al. Assessment of transfemoral amputees using C-Leg and Power Knee for ascending and descending inclines and steps. , 2012, Journal of rehabilitation research and development.
[114] V Segers,et al. Kinematics of the transition between walking and running when gradually changing speed. , 2007, Gait & posture.
[115] Seishi Sawamura,et al. Effect of an Intelligent Prosthesis (IP) on the Walking Ability of Young Transfemoral Amputees: Comparison of IP Users with Able-Bodied People , 2003, American journal of physical medicine & rehabilitation.
[116] Michael Goldfarb,et al. Metabolics of stair ascent with a powered transfemoral prosthesis , 2015, 2015 37th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[117] Michael Goldfarb,et al. Design and energetic characterization of a liquid-propellant-powered actuator for self-powered robots , 2003 .
[118] Joost Geeroms,et al. CYBERLEGS Beta-Prosthesis active knee system , 2015, 2015 IEEE International Conference on Rehabilitation Robotics (ICORR).
[119] J. Czerniecki,et al. The prevalence of knee pain and symptomatic knee osteoarthritis among veteran traumatic amputees and nonamputees. , 2005, Archives of physical medicine and rehabilitation.
[120] Robert D. Gregg,et al. Design and Benchtop Validation of a Powered Knee-Ankle Prosthesis with High-Torque, Low-Impedance Actuators , 2018, 2018 IEEE International Conference on Robotics and Automation (ICRA).
[121] Michael Goldfarb,et al. Volitional Control of a Prosthetic Knee Using Surface Electromyography , 2011, IEEE Transactions on Biomedical Engineering.
[122] Philipp Beckerle,et al. Active lower limb prosthetics: a systematic review of design issues and solutions , 2016, BioMedical Engineering OnLine.
[123] Jonathon W. Sensinger,et al. Speed-Adaptation Mechanism: Robotic Prostheses Can Actively Regulate Joint Torque , 2014, IEEE Robotics & Automation Magazine.
[124] David Moser,et al. DYNAMIC COUPLING CHARACTERISTICS OF A SEMI-ACTIVE KNEE PROSTHESIS , 2013 .
[125] Hugh M. Herr,et al. Clutchable series-elastic actuator: Implications for prosthetic knee design , 2014, Int. J. Robotics Res..
[126] H. Herr,et al. Adaptive control of a variable-impedance ankle-foot orthosis to assist drop-foot gait , 2004, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[127] Ludovic Righetti,et al. Programmable central pattern generators: an application to biped locomotion control , 2006, Proceedings 2006 IEEE International Conference on Robotics and Automation, 2006. ICRA 2006..
[128] Levi J. Hargrove,et al. Minimum jerk swing control allows variable cadence in powered transfemoral prostheses , 2014, 2014 36th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[129] Ming Liu,et al. A Prototype for Smart Prosthetic Legs-Analysis and Mechanical Design , 2011 .
[130] Kathryn Ziegler-Graham,et al. Estimating the prevalence of limb loss in the United States: 2005 to 2050. , 2008, Archives of physical medicine and rehabilitation.
[131] Rajiv Dubey,et al. Kinetic Differences Using a Power Knee and C-Leg While Sitting Down and Standing Up: A Case Report , 2010 .
[132] Simona Crea,et al. A Wireless Flexible Sensorized Insole for Gait Analysis , 2014, Sensors.
[133] Michael Goldfarb,et al. Design and Control of a Powered Knee and Ankle Prosthesis , 2007, Proceedings 2007 IEEE International Conference on Robotics and Automation.
[134] Rafael R. Torrealba,et al. Cybernetic knee prosthesis: application of an adaptive central pattern generator , 2012, Kybernetes.
[135] Michael S Orendurff,et al. The Relationship Between Lumbar Spine Kinematics during Gait and Low-Back Pain in Transfemoral Amputees , 2010, American journal of physical medicine & rehabilitation.
[136] Aaron D. Ames,et al. Quadratic programming and impedance control for transfemoral prosthesis , 2014, 2014 IEEE International Conference on Robotics and Automation (ICRA).
[137] Michael Goldfarb,et al. Impedance & Admittance-Based Coordination Control Strategies for Robotic Lower Limb Prostheses , 2014 .