Corticomuscular Coherence Analysis on Hand Movement Distinction for Active Rehabilitation
暂无分享,去创建一个
Yu Qi | Yiwen Wang | Xiaoxiang Zheng | Xinxin Lou | Xiaoling Hu | Siyuan Xiao | Yiwen Wang | Xiaoxiang Zheng | Xiaoling Hu | Siyuan Xiao | Yu Qi | X. Lou
[1] C. Richards,et al. Potential role of mental practice using motor imagery in neurologic rehabilitation. , 2001, Archives of physical medicine and rehabilitation.
[2] N. Hogan,et al. The effect of robot-assisted therapy and rehabilitative training on motor recovery following stroke. , 1997, Archives of neurology.
[3] 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.
[4] Marco Pirini,et al. The ABC of EMG , 2014 .
[5] A. E. Schulman,et al. Electroencephalographic measurement of motor cortex control of muscle activity in humans , 2000, Clinical Neurophysiology.
[6] M. Hallett,et al. Electroencephalographic analysis of cortico-muscular coherence: reference effect, volume conduction and generator mechanism , 1999, Clinical Neurophysiology.
[7] D. Beevers,et al. The atlas of heart disease and stroke , 2005, Journal of Human Hypertension.
[8] J. P. Miller,et al. Effect of constraint-induced movement therapy on upper extremity function 3 to 9 months after stroke: the EXCITE randomized clinical trial. , 2006, JAMA.
[9] G. Pfurtscheller. Event-related synchronization (ERS): an electrophysiological correlate of cortical areas at rest. , 1992, Electroencephalography and clinical neurophysiology.
[10] J. Liepert,et al. Motor cortex plasticity during forced-use therapy in stroke patients: a preliminary study , 2001, Journal of Neurology.
[11] G. Pfurtscheller,et al. EEG-based discrimination between imagination of right and left hand movement. , 1997, Electroencephalography and clinical neurophysiology.
[12] W. Rymer,et al. Relative contributions of neural mechanisms versus muscle mechanics in promoting finger extension deficits following stroke , 2003, Muscle & nerve.
[13] T. Platz,et al. Impairment–oriented training and adaptive motor cortex reorganisation after stroke: a fTMS study , 2005, Journal of Neurology.
[14] M Hallett,et al. Coherence Between Cortical and Muscular Activities After Subcortical Stroke , 2001, Stroke.
[15] P. Matthews,et al. Functional MRI Detects Posterior Shifts in Primary Sensorimotor Cortex Activation After Stroke: Evidence of Local Adaptive Reorganization? , 2001, Stroke.
[16] N. Hogan,et al. Robot-aided neurorehabilitation. , 1998, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.
[17] Sang Wook Lee,et al. Subject-Specific Myoelectric Pattern Classification of Functional Hand Movements for Stroke Survivors , 2011, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[18] J. Liepert,et al. Motor cortex plasticity during constraint-induced movement therapy in stroke patients , 1998, Neuroscience Letters.
[19] B. Conway,et al. Synchronization between motor cortex and spinal motoneuronal pool during the performance of a maintained motor task in man. , 1995, The Journal of physiology.
[20] M. Maležič,et al. Treadmill training with partial body weight support compared with physiotherapy in nonambulatory hemiparetic patients. , 1995, Stroke.
[21] M. Hallett,et al. Information flow from the sensorimotor cortex to muscle in humans , 2001, Clinical Neurophysiology.
[22] D. Graupe. EMG pattern analysis for patient-responsive control of FES in paraplegics for walker-supported walking , 1989, IEEE Transactions on Biomedical Engineering.
[23] M. Hallett,et al. Corticomuscular coherence: a review. , 1999, Journal of clinical neurophysiology : official publication of the American Electroencephalographic Society.
[24] K. Englehart,et al. Classification of the myoelectric signal using time-frequency based representations. , 1999, Medical engineering & physics.
[25] Bin He,et al. Classifying EEG-based motor imagery tasks by means of time–frequency synthesized spatial patterns , 2004, Clinical Neurophysiology.
[26] E. Sellers,et al. How many people are able to control a P300-based brain–computer interface (BCI)? , 2009, Neuroscience Letters.
[27] T. Chalmers,et al. Functional electrostimulation in poststroke rehabilitation: a meta-analysis of the randomized controlled trials. , 1996, Archives of physical medicine and rehabilitation.
[28] Gert Pfurtscheller,et al. Motor imagery and direct brain-computer communication , 2001, Proc. IEEE.
[29] Jean-Claude Baron,et al. Displacement of primary sensorimotor cortex activation after subcortical stroke: a longitudinal PET study with clinical correlation , 2003, NeuroImage.
[30] S Saxena,et al. An EMG-controlled grasping system for tetraplegics. , 1995, Journal of rehabilitation research and development.
[31] George A. Mensah,et al. The atlas of heart disease and stroke , 2005 .
[32] B. Kamousi,et al. Classification of motor imagery tasks for brain-computer interface applications by means of two equivalent dipoles analysis , 2005, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[33] Boniface Sj. Plasticity after acute ischaemic stroke studied by transcranial magnetic stimulation. , 2001 .
[34] R. Nudo,et al. Neural Substrates for the Effects of Rehabilitative Training on Motor Recovery After Ischemic Infarct , 1996, Science.
[35] S. Boniface. Plasticity after acute ischaemic stroke studied by transcranial magnetic stimulation , 2001, Journal of neurology, neurosurgery, and psychiatry.
[36] M. Ferrarin,et al. A pilot study of myoelectrically controlled FES of upper extremity , 2001, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[37] R. C. Oldfield. The assessment and analysis of handedness: the Edinburgh inventory. , 1971, Neuropsychologia.
[38] Junuk Chu,et al. A Real-Time EMG Pattern Recognition System Based on Linear-Nonlinear Feature Projection for a Multifunction Myoelectric Hand , 2006, IEEE Transactions on Biomedical Engineering.
[39] Subashan Perera,et al. Persisting Consequences of Stroke Measured by the Stroke Impact Scale , 2002, Stroke.
[40] F. K. Lam,et al. Fuzzy EMG classification for prosthesis control. , 2000, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.