Model predictive control-based gait pattern generation for wearable exoskeletons
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Herman van der Kooij | Edwin H. F. van Asseldonk | Letian Wang | H. van der Kooij | E. V. van Asseldonk | Letian Wang
[1] H. van der Kooij,et al. Design and Evaluation of the LOPES Exoskeleton Robot for Interactive Gait Rehabilitation , 2007, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[2] Filip Logist,et al. Fast Pareto set generation for nonlinear optimal control problems with multiple objectives , 2010 .
[3] Frans C. T. van der Helm,et al. Energy efficient walking with central pattern generators: from passive dynamic walking to biologically inspired control , 2009, Biological Cybernetics.
[4] K. H. Low,et al. Locomotive Control of a Wearable Lower Exoskeleton for Walking Enhancement , 2006 .
[5] V. Dietz,et al. Treadmill training of paraplegic patients using a robotic orthosis. , 2000, Journal of rehabilitation research and development.
[6] D. Reinkensmeyer,et al. Review of control strategies for robotic movement training after neurologic injury , 2009, Journal of NeuroEngineering and Rehabilitation.
[7] S.K. Agrawal,et al. Active Leg Exoskeleton (ALEX) for Gait Rehabilitation of Motor-Impaired Patients , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.
[8] H. van der Kooij,et al. Reference Trajectory Generation for Rehabilitation Robots: Complementary Limb Motion Estimation , 2009, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[9] Pierre-Brice Wieber,et al. Trajectory Free Linear Model Predictive Control for Stable Walking in the Presence of Strong Perturbations , 2006, 2006 6th IEEE-RAS International Conference on Humanoid Robots.
[10] R. Riener,et al. Patient-cooperative strategies for robot-aided treadmill training: first experimental results , 2005, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[11] M. Johnson,et al. Quantifying kinematics of purposeful movements to real, imagined, or absent functional objects: Implications for modelling trajectories for robot-assisted ADL tasks** , 2007, Journal of NeuroEngineering and Rehabilitation.
[12] Ben Tse,et al. Autonomous Inverted Helicopter Flight via Reinforcement Learning , 2004, ISER.
[13] S. Hesse,et al. Gait pattern of severely disabled hemiparetic subjects on a new controlled gait trainer as compared to assisted treadmill walking with partial body weight support , 1999, Clinical rehabilitation.
[14] Frans C. T. van der Helm,et al. An alternative approach to synthesizing bipedal walking , 2003, Biological Cybernetics.
[15] H. van der Kooij,et al. In vivo measurement of human knee and hip dynamics using MIMO system identification , 2010, 2010 Annual International Conference of the IEEE Engineering in Medicine and Biology.
[16] Hans Joachim Ferreau,et al. Efficient Numerical Methods for Nonlinear MPC and Moving Horizon Estimation , 2009 .
[17] 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.
[18] Bernard Brogliato,et al. Modeling, stability and control of biped robots - a general framework , 2004, Autom..
[19] A. Hof. The 'extrapolated center of mass' concept suggests a simple control of balance in walking. , 2008, Human movement science.
[20] Antonio Frisoli,et al. A pilot clinical study on robotic assisted rehabilitation in VR with an arm exoskeleton device , 2007, 2007 Virtual Rehabilitation.
[21] Hermano Igo Krebs,et al. An ankle robot for a modular gait rehabilitation system , 2004, 2004 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS) (IEEE Cat. No.04CH37566).