EEG-Controlled Functional Electrical Stimulation Therapy With Automated Grasp Selection: A Proof-of-Concept Study.
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José Zariffa | Lazar I. Jovanovic | Ryan G. L. Koh | Jirapat Likitlersuang | J. Zariffa | C. Marquez-Chin | Ryan Koh | Xinyi Gong | Lazar Jovanovic | Isabel Bolivar-Tellería | Matthew Myers | César Márquez-Chin | J. Likitlersuang | Matthew Myers | X. Gong | Isabel Bólivar-Tellería
[1] M. Popovic,et al. Functional electrical therapy: retraining grasping in spinal cord injury , 2006, Spinal Cord.
[2] Thierry Keller,et al. Modular transcutaneous functional electrical stimulation system. , 2005, Medical engineering & physics.
[3] M. Popovic,et al. Functional Electrical Stimulation Therapy for Grasping in Spinal Cord Injury: An Overview , 2011 .
[4] Milos R Popovic,et al. Functional electrical stimulation therapy for grasping in traumatic incomplete spinal cord injury: randomized control trial. , 2011, Artificial organs.
[5] M. Popovic,et al. Why Is Functional Electrical Stimulation Therapy Capable of Restoring Motor Function Following Severe Injury to the Central Nervous System , 2016 .
[6] M R Popovic,et al. Surface-stimulation technology for grasping and walking neuroprosthesis. , 2001, IEEE engineering in medicine and biology magazine : the quarterly magazine of the Engineering in Medicine & Biology Society.
[7] Vera Kaiser,et al. Fast set-up asynchronous brain-switch based on detection of foot motor imagery in 1-channel EEG , 2010, Medical & Biological Engineering & Computing.
[8] G. Pfurtscheller,et al. Evaluation of event-related desynchronization (ERD) preceding and following voluntary self-paced movement. , 1979, Electroencephalography and clinical neurophysiology.
[9] R. Stein,et al. Long-Term Therapeutic and Orthotic Effects of a Foot Drop Stimulator on Walking Performance in Progressive and Nonprogressive Neurological Disorders , 2010, Neurorehabilitation and neural repair.
[10] M. Popovic,et al. Restoring voluntary grasping function in individuals with incomplete chronic spinal cord injury: pilot study. , 2013, Topics in spinal cord injury rehabilitation.
[11] V. Dietz,et al. Transcutaneous functional electrical stimulation for grasping in subjects with cervical spinal cord injury , 2005, Spinal Cord.
[12] M. Popovic,et al. Functional Electrical Stimulation Therapy of Voluntary Grasping Versus Only Conventional Rehabilitation for Patients With Subacute Incomplete Tetraplegia , 2011, Neurorehabilitation and neural repair.
[13] A. Kralj,et al. Use of functional electrical stimulation in the lower extremities of incomplete spinal cord injured patients. , 1999, Artificial organs.
[14] Dejan B Popović,et al. Microsoft Kinect-Based Artificial Perception System for Control of Functional Electrical Stimulation Assisted Grasping , 2014, BioMed research international.
[15] L. Cohen,et al. Brain–machine interface in chronic stroke rehabilitation: A controlled study , 2013, Annals of neurology.
[16] T. Johnston,et al. Implantable FES system for upright mobility and bladder and bowel function for individuals with spinal cord injury , 2005, Spinal Cord.
[17] Luc Van Gool,et al. SURF: Speeded Up Robust Features , 2006, ECCV.
[18] L. Schwirtlich,et al. Hybrid assistive system-the motor neuroprosthesis , 1989, IEEE Transactions on Biomedical Engineering.
[19] Maarten J. IJzerman,et al. Functional electrical stimulation by means of the ‘Ness Handmaster Orthosis’ in chronic stroke patients: an exploratory study , 2001, Clinical rehabilitation.
[20] Cuntai Guan,et al. A Randomized Controlled Trial of EEG-Based Motor Imagery Brain-Computer Interface Robotic Rehabilitation for Stroke , 2015, Clinical EEG and neuroscience.