Robot-Aided Neurorehabilitation: A Pediatric Robot for Ankle Rehabilitation
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Hermano Igo Krebs | Stefano Rossi | Paolo Cappa | Konstantinos P. Michmizos | Enrico Castelli | H. Krebs | S. Rossi | K. Michmizos | E. Castelli | P. Cappa
[1] Hermano Igo Krebs,et al. Pointing with the ankle: the speed-accuracy trade-off , 2013, Experimental Brain Research.
[2] Timothy D. Lee,et al. Dissociated Contextual Interference Effects in Children and Adults , 1997, Perceptual and Motor Skills.
[3] J. Krakauer,et al. How is a motor skill learned? Change and invariance at the levels of task success and trajectory control. , 2012, Journal of neurophysiology.
[4] E V Evarts,et al. Reaction time in Parkinson's disease. , 1981, Brain : a journal of neurology.
[5] Judith E. Deutsch,et al. A Stewart Platform-Based System for Ankle Telerehabilitation , 2001, Auton. Robots.
[6] R. Hyman. Stimulus information as a determinant of reaction time. , 1953, Journal of experimental psychology.
[7] J. G. Vera,et al. Practice Schedule and Acquisition, Retention, and Transfer of a Throwing Task in 6-YR.-Old Children , 2003, Perceptual and motor skills.
[8] C. Marsden. The mysterious motor function of the basal ganglia , 1982, Neurology.
[9] Hermano Igo Krebs,et al. Modeling reaction time in the ankle , 2014, 5th IEEE RAS/EMBS International Conference on Biomedical Robotics and Biomechatronics.
[10] Hermano Igo Krebs,et al. Clinical application of a modular ankle robot for stroke rehabilitation. , 2013, NeuroRehabilitation.
[11] Hermano Igo Krebs,et al. Rehabilitation Robotics: Performance-Based Progressive Robot-Assisted Therapy , 2003, Auton. Robots.
[12] M. Merzenich,et al. Reorganization of neocortical representations after brain injury: a neurophysiological model of the bases of recovery from stroke. , 1987, Progress in brain research.
[13] J. Rodda,et al. Classification of gait patterns in spastic hemiplegia and spastic diplegia: a basis for a management algorithm , 2001, European journal of neurology.
[14] Hermano Igo Krebs,et al. Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs? , 2013, PloS one.
[15] Contextual Interference Effects on the Acquisition and Retention of Fundamental Motor Skills , 1999, Perceptual and motor skills.
[16] Karl M Newell,et al. Time scales, difficulty/skill duality, and the dynamics of motor learning. , 2009, Advances in experimental medicine and biology.
[17] L. Henderson,et al. On the existence of an attention-demanding process peculiar to simple reaction time: Converging evidence from Parkinson's disease , 1989 .
[18] J R Davids,et al. Common gait abnormalities of the knee in cerebral palsy. , 1993, Clinical orthopaedics and related research.
[19] T. Tombaugh,et al. The Effects of Practice on Speed of Information Processing Using the Adjusting-Paced Serial Addition Test (Adjusting-PSAT) and the Computerized Tests of Information Processing (CTIP) , 2007, Applied neuropsychology.
[20] Ethan R. Buch,et al. Noninvasive cortical stimulation enhances motor skill acquisition over multiple days through an effect on consolidation , 2009, Proceedings of the National Academy of Sciences.
[21] Hyung-Soon Park,et al. Quantitative evaluations of ankle spasticity and stiffness in neurological disorders using manual spasticity evaluator. , 2011, Journal of rehabilitation research and development.
[22] Ferdinando A. Mussa-Ivaldi,et al. Robot-assisted adaptive training: custom force fields for teaching movement patterns , 2004, IEEE Transactions on Biomedical Engineering.
[23] A. Latimer,et al. High Levels of Contextual Interference Enhance Handwriting Skill Acquisition , 2004, Journal of motor behavior.
[24] Panagiotis K. Artemiadis,et al. Pediatric anklebot , 2011, 2011 IEEE International Conference on Rehabilitation Robotics.
[25] Alfred D. Grant. Gait Analysis: Normal and Pathological Function , 2010 .
[26] A. Jenkinson,et al. Quantitative Analysis and Classification of Gait Patterns in Cerebral Palsy Using a Three-Dimensional Motion Analyzer , 1998, Journal of child neurology.
[27] J. Patton,et al. Evaluation of robotic training forces that either enhance or reduce error in chronic hemiparetic stroke survivors , 2005, Experimental Brain Research.
[28] M. Mon-Williams,et al. Motor Control and Learning , 2006 .
[29] Neville Hogan,et al. Impedance Control: An Approach to Manipulation: Part II—Implementation , 1985 .
[30] N. Hogan,et al. Robot-aided sensorimotor arm training improves outcome in patients with chronic stroke , 2003, Neurology.
[31] H. Krebs,et al. Effects of Robot-Assisted Therapy on Upper Limb Recovery After Stroke: A Systematic Review , 2008, Neurorehabilitation and neural repair.
[32] N. Hogan,et al. Robot-aided neurorehabilitation. , 1998, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.
[33] Hermano Igo Krebs,et al. Ankle Training With a Robotic Device Improves Hemiparetic Gait After a Stroke , 2011, Neurorehabilitation and neural repair.
[34] H. Herr,et al. Adaptive control of a variable-impedance ankle-foot orthosis to assist drop-foot gait , 2004, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[35] Darryl Charles,et al. Optimising engagement for stroke rehabilitation using serious games , 2009, The Visual Computer.
[36] C D Marsden,et al. A comparative study of simple and choice reaction time in Parkinson's, Huntington's and cerebellar disease. , 1993, Journal of neurology, neurosurgery, and psychiatry.
[37] Gottfried Mayer-Kress,et al. Time Scales of Performance Levels During Training of Complex Motor Tasks , 2009 .
[38] Deborah Kartin,et al. Beyond componentry: How principles of motor learning can enhance locomotor rehabilitation of individuals with lower limb loss--a review. , 2012, Journal of rehabilitation research and development.
[39] J. Gage,et al. Gait patterns in spastic hemiplegia in children and young adults. , 1987, The Journal of bone and joint surgery. American volume.
[40] Vittorio Cannatà,et al. Brain network involved in visual processing of movement stimuli used in upper limb robotic training: an fMRI study , 2011, Journal of NeuroEngineering and Rehabilitation.
[41] Hermano Igo Krebs,et al. A Comparative Analysis of Speed Profile Models for Ankle Pointing Movements: Evidence that Lower and Upper Extremity Discrete Movements are Controlled by a Single Invariant Strategy , 2014, Front. Hum. Neurosci..
[42] J R Engsberg,et al. Ankle spasticity and strength in children with spastic diplegic cerebral palsy , 2000, Developmental medicine and child neurology.
[43] K. P. Michmizos,et al. Assist-as-needed in lower extremity robotic therapy for children with cerebral palsy , 2012, 2012 4th IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics (BioRob).
[44] Bruce H Dobkin,et al. Body-weight-supported treadmill rehabilitation after stroke. , 2011, The New England journal of medicine.
[45] Timothy D. Lee,et al. Motor Control and Learning: A Behavioral Emphasis , 1982 .
[46] Hermano Igo Krebs,et al. Modular Ankle Robotics Training in Early Subacute Stroke , 2014, Neurorehabilitation and neural repair.
[47] T. D. Lee,et al. What is repeated in a repetition? Effects of practice conditions on motor skill acquisition. , 1991, Physical therapy.
[48] G. Cantore,et al. Stimulation of Subthalamic Nuclei Restores a Near Normal Planning Strategy in Parkinson’s Patients , 2013, PloS one.
[49] B. Dobkin,et al. Should Body Weight–Supported Treadmill Training and Robotic-Assistive Steppers for Locomotor Training Trot Back to the Starting Gate? , 2012, Neurorehabilitation and neural repair.
[50] N. Hogan,et al. A novel approach to stroke rehabilitation , 2000, Neurology.
[51] R. Nudo,et al. Neural Substrates for the Effects of Rehabilitative Training on Motor Recovery After Ischemic Infarct , 1996, Science.
[52] M. Rogers,et al. Motor planning is impaired in Parkinson's disease , 1988, Brain Research.
[53] N. Hogan,et al. Motions or muscles? Some behavioral factors underlying robotic assistance of motor recovery. , 2006, Journal of rehabilitation research and development.
[54] Hermano Igo Krebs,et al. Reaction time in ankle movements: a diffusion model analysis , 2014, Experimental Brain Research.
[55] V. Dietz,et al. Treadmill training of paraplegic patients using a robotic orthosis. , 2000, Journal of rehabilitation research and development.
[56] Thomas G Sugar,et al. Design of a robotic gait trainer using spring over muscle actuators for ankle stroke rehabilitation. , 2005, Journal of biomechanical engineering.
[57] Hermano Igo Krebs,et al. Robot-Aided Neurorehabilitation: A Novel Robot for Ankle Rehabilitation , 2009, IEEE Transactions on Robotics.
[58] K. P. Michmizos,et al. Serious Games for the Pediatric Anklebot , 2012, 2012 4th IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics (BioRob).
[59] H.I. Krebs,et al. Robot-Aided Neurorehabilitation: A Robot for Wrist Rehabilitation , 2007, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[60] A. Behrman,et al. Reaction Times and Movement Times: Benefits of Practice to Younger and Older Adults , 1996 .
[61] L. Richards,et al. Comprehensive Overview of Nursing and Interdisciplinary Rehabilitation Care of the Stroke Patient: A Scientific Statement From the American Heart Association , 2010, Stroke.
[62] W. E. Hick. Quarterly Journal of Experimental Psychology , 1948, Nature.
[63] Victoria L Chester,et al. A comparison of kinetic gait parameters for 3-13 year olds. , 2006, Clinical biomechanics.
[64] C. Marsden,et al. Response choice in Parkinson's disease. The effects of uncertainty and stimulus-response compatibility. , 1993, Brain : a journal of neurology.
[65] H. Seo,et al. A reservoir of time constants for memory traces in cortical neurons , 2011, Nature Neuroscience.
[66] S. Hesse,et al. A mechanized gait trainer for restoration of gait. , 2000, Journal of rehabilitation research and development.