Electrically Stimulated Lower Limb using a Takagi-Sugeno Fuzzy Model and Robust Switched Controller Subject to Actuator Saturation and Fault under Nonideal Conditions
暂无分享,去创建一个
Willian Ricardo Bispo Murbak Nunes | Marcelo Augusto Assunção Sanches | Marcelo Carvalho Minhoto Teixeira | Uiliam Nelson Lendzion Tomaz Alves | Aparecido Augusto de Carvalho | M. Teixeira | M. Sanches | W. R. Nunes | U. N. L. Alves | Aparecido Augusto Carvalho
[1] Bin Zhou,et al. Analysis and design of discrete-time linear systems with nested actuator saturations , 2013, Syst. Control. Lett..
[2] Warren E. Dixon,et al. A Non-Linear Control Method to Compensate for Muscle Fatigue during Neuromuscular Electrical Stimulation , 2017, Front. Robot. AI.
[3] Arash Ajoudani,et al. A Neuro-Sliding-Mode Control With Adaptive Modeling of Uncertainty for Control of Movement in Paralyzed Limbs Using Functional Electrical Stimulation , 2009, IEEE Transactions on Biomedical Engineering.
[4] Zongli Lin,et al. Robust stability analysis and fuzzy-scheduling control for nonlinear systems subject to actuator saturation , 2003, IEEE Trans. Fuzzy Syst..
[5] F. Cendes,et al. Electrical Stimulation During Gait Promotes Increase of Muscle Cross-sectional Area in Quadriplegics: A Preliminary Study , 2009, Clinical orthopaedics and related research.
[6] Gary S Beaupre,et al. Bone changes in the lower limbs from participation in an FES rowing exercise program implemented within two years after traumatic spinal cord injury , 2018, The journal of spinal cord medicine.
[7] Hanie Nadia Shasmin,et al. Towards Universal Control System for Powered Ankle–Foot Prosthesis: A Simulation Study , 2020, Int. J. Fuzzy Syst..
[8] Maria José Blanca-Mena,et al. Brain-Computer Interface application: auditory serial interface to control a two-class motor-imagery-based wheelchair , 2017, Journal of NeuroEngineering and Rehabilitation.
[9] Hamid-Reza Kobravi,et al. A decentralized adaptive fuzzy robust strategy for control of upright standing posture in paraplegia using functional electrical stimulation. , 2012, Medical engineering & physics.
[10] Susana Ladra,et al. Automatic group-wise whole-brain short association fiber bundle labeling based on clustering and cortical surface information , 2020, Biomedical engineering online.
[11] Giancarlo Ferrigno,et al. Functional electrical stimulation controlled by artificial neural networks: pilot experiments with simple movements are promising for rehabilitation applications. , 2004, Functional neurology.
[12] Philippe Poignet,et al. Toward lower limbs movement restoration with input–output feedback linearization and model predictive control through functional electrical stimulation , 2012 .
[13] Marcelo C. M. Teixeira,et al. On Switched Regulator Design of Uncertain Nonlinear Systems Using Takagi–Sugeno Fuzzy Models , 2014, IEEE Transactions on Fuzzy Systems.
[14] Gang Wang,et al. Stabilization of unknown nonlinear systems with T-S fuzzy model and dynamic delay partition , 2018, J. Intell. Fuzzy Syst..
[15] Marcus Johnson,et al. Adaptive Inverse Optimal Neuromuscular Electrical Stimulation , 2013, IEEE Trans. Cybern..
[16] R. Riener,et al. Model-based control of FES-induced single joint movements , 2001, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[17] Marcelo C. M. Teixeira,et al. On local H∞ switched controller design for uncertain T-S fuzzy systems subject to actuator saturation with unknown membership functions , 2017, Fuzzy Sets Syst..
[18] Marcelo C. M. Teixeira,et al. Discrete Takagi-Sugeno Fuzzy Models Applied to Control the Knee Joint Movement of Paraplegic Patients , 2020, IEEE Access.
[19] Antonio P.L. Bo,et al. Cycling with Spinal Cord Injury: A Novel System for Cycling Using Electrical Stimulation for Individuals with Paraplegia, and Preparation for Cybathlon 2016 , 2017, IEEE Robotics & Automation Magazine.
[20] M. Tadjine,et al. COMPARATIVE STUDY OF NON-LINEAR CONTROLLERS FOR THE REGULATION OF THE PARAPLEGIC KNEE MOVEMENT USING FUNCTIONAL ELECTRICAL STIMULATION , 2018, Journal of Mechanics in Medicine and Biology.
[21] L. Zadeh,et al. An editorial perspective , 1978 .
[22] Philippe Fraisse,et al. Coordinating Upper and Lower Body During FES‐Assisted Transfers in Persons With Spinal Cord Injury in Order to Reduce Arm Support , 2015, Neuromodulation : journal of the International Neuromodulation Society.
[23] Kevin M. Foglyano,et al. Setting the pace: insights and advancements gained while preparing for an FES bike race , 2017, Journal of NeuroEngineering and Rehabilitation.
[24] Stephen P. Boyd,et al. Linear Matrix Inequalities in System and Control Theory , 1994, Studies in Applied Mathematics.
[25] Johan Löfberg,et al. YALMIP : a toolbox for modeling and optimization in MATLAB , 2004 .
[26] Nitin Sharma,et al. Using Person-Specific Muscle Fatigue Characteristics to Optimally Allocate Control in a Hybrid Exoskeleton—Preliminary Results , 2020, IEEE Transactions on Medical Robotics and Bionics.
[27] Marcelo C. M. Teixeira,et al. Robust T-S Fuzzy Control of Electrostimulation for Paraplegic Patients considering Norm-Bounded Uncertainties , 2020, Mathematical Problems in Engineering.
[28] Nitin Sharma,et al. Dynamic Optimization of FES and Orthosis-Based Walking Using Simple Models , 2014, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[29] Naji A. Alibeji,et al. An adaptive low-dimensional control to compensate for actuator redundancy and FES-induced muscle fatigue in a hybrid neuroprosthesis , 2017 .
[30] Marcelo C. M. Teixeira,et al. Design of a Takagi-Sugeno Fuzzy Regulator for a Set of Operation Points , 2012 .
[31] Kazuo Tanaka,et al. Model construction, rule reduction, and robust compensation for generalized form of Takagi-Sugeno fuzzy systems , 2001, IEEE Trans. Fuzzy Syst..
[32] C. Azevedo-Coste,et al. Experimental Results and Design Considerations for FES-Assisted Transfer for People with Spinal Cord Injury , 2018, Converging Clinical and Engineering Research on Neurorehabilitation III.
[33] Nitin Sharma,et al. Model Predictive Control-Based Knee Actuator Allocation During a Standing-Up Motion with a Powered Exoskeleton and Functional Electrical Stimulation , 2020 .
[34] J Jovic,et al. A new 3D center of mass control approach for FES-assisted standing: First experimental evaluation with a humanoid robot. , 2016, Medical engineering & physics.
[35] T. Schauer,et al. Supporting front crawl swimming in paraplegics using electrical stimulation: a feasibility study , 2020, Journal of NeuroEngineering and Rehabilitation.
[36] Marcelo C. M. Teixeira,et al. Robust switched control design for electrically stimulated lower limbs: A linear model analysis in healthy and spinal cord injured subjects , 2020 .
[37] Tingshu Hu,et al. An analysis and design method for linear systems subject to actuator saturation and disturbance , 2002, Proceedings of the 2000 American Control Conference. ACC (IEEE Cat. No.00CH36334).
[38] Naji A. Alibeji,et al. Nonlinear model predictive control of functional electrical stimulation , 2017 .
[39] Naji A. Alibeji,et al. Model-Based Dynamic Control Allocation in a Hybrid Neuroprosthesis , 2018, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[40] Vladimir A. Yakubovich,et al. Linear Matrix Inequalities in System and Control Theory (S. Boyd, L. E. Ghaoui, E. Feron, and V. Balakrishnan) , 1995, SIAM Rev..
[41] Warren E. Dixon,et al. Switched Tracking Control of the Lower Limb During Asynchronous Neuromuscular Electrical Stimulation: Theory and Experiments , 2017, IEEE Transactions on Cybernetics.
[42] C. L. Lynch,et al. A Comparison of Closed-Loop Control Algorithms for Regulating Electrically Stimulated Knee Movements in Individuals With Spinal Cord Injury , 2012, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[43] R Riener,et al. Patient-driven control of FES-supported standing up: a simulation study. , 1998, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.
[44] M. Popovic,et al. Functional electrical stimulation therapy for restoration of motor function after spinal cord injury and stroke: a review , 2020, BioMedical Engineering OnLine.
[45] Brian Andrews,et al. Development of Functional Electrical Stimulation Rowing: The Rowstim Series , 2017, Artificial organs.
[46] Marcio de Queiroz,et al. Robust Adaptive Control of the Nonlinearly Parameterized Human Shank Dynamics for Electrical Stimulation Applications , 2018 .
[47] Michael Goldfarb,et al. An Approach for the Cooperative Control of FES With a Powered Exoskeleton During Level Walking for Persons With Paraplegia , 2016, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[48] Warren E. Dixon,et al. Switched Control of Cadence During Stationary Cycling Induced by Functional Electrical Stimulation , 2016, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[49] Naji A. Alibeji,et al. A Control Scheme That Uses Dynamic Postural Synergies to Coordinate a Hybrid Walking Neuroprosthesis: Theory and Experiments , 2018, Front. Neurosci..
[50] B. Andrews,et al. The role of functional electrical stimulation in the rehabilitation of patients with incomplete spinal cord injury - observed benefits during gait studies , 1993, Paraplegia.
[51] A. Kralj,et al. Enhancement of gait restoration in spinal injured patients by functional electrical stimulation. , 1988, Clinical orthopaedics and related research.
[52] Eugênio B. Castelan,et al. Fuzzy dynamic output feedback control through nonlinear Takagi-Sugeno models , 2015, Fuzzy Sets Syst..
[53] A. Pedotti,et al. The relationship between electrical stimulus and joint torque: a dynamic model. , 2000, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.
[54] Alan J. Laub,et al. The LMI control toolbox , 1994, Proceedings of 1994 33rd IEEE Conference on Decision and Control.
[55] Cheryl L Lynch,et al. A generic model of real-world non-ideal behaviour of FES-induced muscle contractions: simulation tool , 2011, Journal of neural engineering.
[56] Juliana A. Guimaraes,et al. Cadence Tracking and Disturbance Rejection in Functional Electrical Stimulation Cycling for Paraplegic Subjects: A Case Study , 2017, Artificial organs.
[57] M. Teixeira,et al. Smoothing switched control laws for uncertain nonlinear systems subject to actuator saturation , 2016 .
[58] Marcelo C. M. Teixeira,et al. Electrical stimulation tracking control for paraplegic patients using T-S fuzzy models , 2017, Fuzzy Sets Syst..