Surface functional electrical stimulation (FES) neuroprostheses for grasping

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[1]  K. Kilgore,et al.  Tendon transfers and functional electrical stimulation for restoration of hand function in spinal cord injury. , 1996, The Journal of hand surgery.

[2]  Gideon F. Inbar,et al.  On Surface EMG Spectral Characterization and Its Application to Diagnostic Classification , 1984, IEEE Transactions on Biomedical Engineering.

[3]  P H Peckham,et al.  Technology transfer of neuroprosthetic devices. , 1996, Journal of rehabilitation research and development.

[4]  R. Nathan,et al.  Upper limb functions regained in quadriplegia: a hybrid computerized neuromuscular stimulation system. , 1990, Archives of physical medicine and rehabilitation.

[5]  Joseph H. Schulman,et al.  Micromodular electronic devices to activate paralyzed muscles and limbs , 1993, Proceedings of the 15th Annual International Conference of the IEEE Engineering in Medicine and Biology Societ.

[6]  Lambert Schomaker,et al.  Amplitude and bandwidth of the frontalis surface EMG: effects of electrode parameters. , 1984, Psychophysiology.

[7]  W Girsch,et al.  Electromyogram-controlled functional electrical stimulation for treatment of the paralyzed upper extremity. , 1999, Artificial organs.

[8]  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.

[9]  T. L. Hill,et al.  Some self-consistent two-state sliding filament models of muscle contraction. , 1975, Biophysical journal.

[10]  P. N. Taylor,et al.  Lumbar Anterior Root Stimulator for Lower Limb Control in Paraplegia , 1996 .

[11]  S. Pourmehdi,et al.  An externally powered, multichannel, implantable stimulator-telemeter for control of paralyzed muscle , 1998, IEEE Transactions on Biomedical Engineering.

[12]  N. Hoshimiya,et al.  Development Of An FES System Controlled By EMG Signals , 1990, [1990] Proceedings of the Twelfth Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[13]  Stefan Silbernagl,et al.  Taschenatlas der Physiologie , 1991 .

[14]  L.H. Lindstrom,et al.  Interpretation of myoelectric power spectra: A model and its applications , 1977, Proceedings of the IEEE.

[15]  R. Stein,et al.  Neural prostheses : replacing motor function after disease or disability , 1992 .

[16]  B. Widrow,et al.  On the Nature and Elimination of Stimulus Artifact in Nerve Signals Evoked and Recorded Using Surface Electrodes , 1982, IEEE Transactions on Biomedical Engineering.

[17]  N Fisekovic,et al.  New controller for functional electrical stimulation systems. , 2001, Medical engineering & physics.

[18]  Maarten Joost IJzerman,et al.  The NESS handmaster orthosis: restoration of hand function in C5 and stroke patients by means of electrical stimulation , 1996 .

[19]  Richard Grieve,et al.  Nonlinear adaptive filtering of stimulus artifact , 2000, IEEE Transactions on Biomedical Engineering.

[20]  S Sauermann,et al.  Useful applications and limits of battery powered implants in functional electrical stimulations. , 1997, Artificial organs.

[21]  R. Thorsen An artefact suppressing fast-recovery myoelectric amplifier , 1999, IEEE Transactions on Biomedical Engineering.

[22]  R. Waters,et al.  International Standards for Neurological and Functional Classification of Spinal Cord Injury , 1997, Spinal Cord.

[23]  Thierry Keller,et al.  GRASPING IN HIGH LESIONED TETRAPLEGIC SUBJECTS USING THE EMG CONTROLLED NEUROPROSTHESIS , 1998 .

[24]  T Blogg,et al.  A digital technique for stimulus artifact reduction. , 1990, Electroencephalography and clinical neurophysiology.

[25]  M. Keith,et al.  Functional neuromuscular stimulation neuroprostheses for the tetraplegic hand. , 1988, Clinical orthopaedics and related research.

[26]  Y. Handa A portable multichannel FES system for restoration of motor function of the paralyzed extremities , 1989 .

[27]  T. Sinkjær,et al.  Control of Movement for the Physically Disabled , 2000 .

[28]  D. Simons,et al.  Stimulus artifact reduction in nerve conduction. , 1985, Archives of physical medicine and rehabilitation.

[29]  Peter Shizgal,et al.  Improved artifact rejection and isolation of compound action potentials by means of digital subtraction , 1989, Journal of Neuroscience Methods.

[30]  R J Roby,et al.  A simplified circuit for stimulus artifact suppression. , 1975, Electroencephalography and clinical neurophysiology.

[31]  G. Inbar,et al.  Autoregressive Modeling of Surface EMG and Its Spectrum with Application to Fatigue , 1987, IEEE Transactions on Biomedical Engineering.

[32]  R Riener,et al.  Biomechanical model of the human knee evaluated by neuromuscular stimulation. , 1996, Journal of biomechanics.

[33]  M W Keith,et al.  An elbow extension neuroprosthesis for individuals with tetraplegia. , 1998, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.

[34]  R. D'ambrosia,et al.  A technique for recording the EMG of electrically stimulated skeletal muscle. , 1985, Orthopedics.

[35]  S Saxena,et al.  An EMG-controlled grasping system for tetraplegics. , 1995, Journal of rehabilitation research and development.

[36]  P. Peckham,et al.  Evaluation of shoulder movement as a command control source , 1990, IEEE Transactions on Biomedical Engineering.

[37]  N. Hoshimiya,et al.  Externally powered implantable FES system , 1995, MHS'95. Proceedings of the Sixth International Symposium on Micro Machine and Human Science.

[38]  P A Parker,et al.  Stimulus artifact reduction in evoked potential measurements. , 1996, Archives of physical medicine and rehabilitation.

[39]  G W Harding,et al.  A method for eliminating the stimulus artifact from digital recordings of the direct cortical response. , 1991, Computers and biomedical research, an international journal.

[40]  T L Babb,et al.  A sample and hold amplifier system for stimulus artifact suppression. , 1978, Electroencephalography and clinical neurophysiology.

[41]  L. Vodovnik,et al.  Myo-electric control of paralyzed muscles. , 1965, IEEE transactions on bio-medical engineering.

[42]  D. D. Walker,et al.  A fast-recovery electrode amplifier for electrophysiology. , 1978, Electroencephalography and clinical neurophysiology.

[43]  Thomas Wichmann,et al.  A digital averaging method for removal of stimulus artifacts in neurophysiologic experiments , 2000, Journal of Neuroscience Methods.

[44]  D O Hancock,et al.  The value of postural reduction in the initial management of closed injuries of the spine with paraplegia and tetraplegia , 1969, Paraplegia.

[45]  Rune A Thorsen,et al.  Restoration of hand function in tetraplegics using myoelectrically controlled functional electrical| stimulation of the controlling muscle , 1997 .

[46]  T. Sinkjaer,et al.  Control of FES thumb force using slip information obtained from the cutaneous electroneurogram in quadriplegic man. , 1999, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.

[47]  F. Zajac Muscle and tendon: properties, models, scaling, and application to biomechanics and motor control. , 1989, Critical reviews in biomedical engineering.

[48]  A. Prochazka,et al.  The bionic glove: an electrical stimulator garment that provides controlled grasp and hand opening in quadriplegia. , 1997, Archives of physical medicine and rehabilitation.

[49]  Graeme M. Clark,et al.  A gated differential amplifier for recording physiological responses to electrical stimulation , 1992, Journal of Neuroscience Methods.

[50]  W. Donovan,et al.  The International Standards Booklet for Neurological and Functional Classification of Spinal Cord Injury , 1994, Paraplegia.

[51]  J. Erlanger,et al.  A COMPARISON OF THE CHARACTERISTICS OF AXONS THROUGH THEIR INDIVIDUAL ELECTRICAL RESPONSES , 1933 .

[52]  J Duchêne,et al.  Surface electromyogram during voluntary contraction: processing tools and relation to physiological events. , 1993, Critical reviews in biomedical engineering.

[53]  Moshe Solomonow,et al.  External Control of the Neuromuscular System , 1984, IEEE Transactions on Biomedical Engineering.

[54]  Carlo J. De Luca,et al.  The Use of Surface Electromyography in Biomechanics , 1997 .

[55]  Morten Kristian Haugland,et al.  A flexible method for fabrication of nerve cuff electrodes , 1996, Proceedings of 18th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[56]  W. Durfee,et al.  Reducing muscle fatigue in FES applications by stimulating with N-let pulse trains , 1995, IEEE Transactions on Biomedical Engineering.

[57]  Patrick E. Crago,et al.  Stimulus artifact removal in EMG from muscles adjacent to stimulated muscles , 1996, Journal of Neuroscience Methods.

[58]  Warren M. Grill,et al.  Stimulus waveforms for selective neural stimulation , 1995 .

[59]  G. Loeb,et al.  Micromodular implants to provide electrical stimulation of paralyzed muscles and limbs , 1997, IEEE Transactions on Biomedical Engineering.

[60]  M. Popovic,et al.  Clinical evaluation of the bionic glove. , 1999, Archives of physical medicine and rehabilitation.

[61]  P.H. Peckham,et al.  A flexible, portable system for neuromuscular stimulation in the paralyzed upper extremity , 1988, IEEE Transactions on Biomedical Engineering.

[62]  Francisco Del Pozo,et al.  Hybrid stimulator for chronic experiments , 1978, IEEE Transactions on Biomedical Engineering.

[63]  S J Dorgan,et al.  A nonlinear mathematical model of electrically stimulated skeletal muscle. , 1997, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.

[64]  P. Peckham,et al.  Neural prostheses: clinical applications of functional electrical stimulation in spinal cord injury , 1992, Paraplegia.

[65]  Graham H. Creasey,et al.  International Standards for Neurological and Functional Classification of Spinal Cord Injury. American Spinal Injury Association. , 1997 .

[66]  A. Huxley Muscle structure and theories of contraction. , 1957, Progress in biophysics and biophysical chemistry.

[67]  D. Rushton,et al.  Sacral anterior root stimulators for bladder control in paraplegia: the first 50 cases. , 1986, Journal of neurology, neurosurgery, and psychiatry.

[68]  N. Hoshimiya,et al.  Development of percutaneous intramuscular electrode for multichannel FES system , 1989, IEEE Transactions on Biomedical Engineering.

[69]  R. Merletti,et al.  Suppression of stimulation artifacts from myoelectric-evoked potential recordings , 1988, IEEE Transactions on Biomedical Engineering.

[70]  Liberson Wt,et al.  Functional electrotherapy: stimulation of the peroneal nerve synchronized with the swing phase of the gait of hemiplegic patients. , 1961, Archives of physical medicine and rehabilitation.

[71]  Dennis D. Roscoe,et al.  An Externally Powered, Multichannel, Implantable Stimulator for Versatile Control of Paralyzed Muscle , 1987, IEEE Transactions on Biomedical Engineering.

[72]  Charles M. Epstein,et al.  A Simple Artifact-Rejection Preamplifier for Clinical Neurophysiology , 1995 .

[73]  J. A. Freeman An electronic stimulus artifact suppressor. , 1971, Electroencephalography and Clinical Neurophysiology.

[74]  H. Guy,et al.  Molecular model of the action potential sodium channel. , 1986, Proceedings of the National Academy of Sciences of the United States of America.

[75]  T. Perkins,et al.  Lumbar root stimulation for restoring leg function: stimulator and measurement of muscle actions. , 1997, Artificial organs.

[76]  D. Graupe,et al.  Stochastically-modulated stimulation to slow down muscle fatigue at stimulated sites in paraplegics using functional electrical stimulation for leg extension , 2000, Neurological research.

[77]  H Kern,et al.  Standing up with denervated muscles in humans using functional electrical stimulation. , 1999, Artificial organs.