Performance Enhancing Mechanisms for Human Manipulation

[1]  W. Rymer,et al.  Robot-assisted reaching exercise promotes arm movement recovery in chronic hemiparetic stroke: a randomized controlled pilot study , 2006, Journal of NeuroEngineering and Rehabilitation.

[2]  Bryan Buchholz,et al.  ISB recommendation on definitions of joint coordinate systems of various joints for the reporting of human joint motion--Part II: shoulder, elbow, wrist and hand. , 2005, Journal of biomechanics.

[3]  William S. Harwin,et al.  Upper Limb Robot Mediated Stroke Therapy—GENTLE/s Approach , 2003, Auton. Robots.

[4]  M. Bergamasco,et al.  Arm rehabilitation with a robotic exoskeleleton in Virtual Reality , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.

[5]  Robert Riener,et al.  ARMin: a robot for patient-cooperative arm therapy , 2007, Medical & Biological Engineering & Computing.

[6]  S. Hesse,et al.  Robot-assisted arm trainer for the passive and active practice of bilateral forearm and wrist movements in hemiparetic subjects. , 2003, Archives of physical medicine and rehabilitation.

[7]  R A Scheidt,et al.  Persistence of motor adaptation during constrained, multi-joint, arm movements. , 2000, Journal of neurophysiology.

[8]  Y. Saad,et al.  Numerical solution of large nonsymmetric eigenvalue problems , 1989 .

[9]  Luc Tremblay,et al.  Part and Whole Practice , 2005, Research quarterly for exercise and sport.

[10]  D Walton,et al.  Naturalistic observations of driver hand positions , 2005 .

[11]  D.J. Reinkensmeyer,et al.  A low cost parallel robot and trajectory optimization method for wrist and forearm rehabilitation using the Wii , 2008, 2008 2nd IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics.

[12]  Masahiro Takaiwa,et al.  Development of Wrist Rehabilitation Equipment using Pneumatic Parallel Manipulator , 2007 .

[13]  A. Kecskeméthy,et al.  An Improved Elasto-Kinematic Model of the Human Forearm for Biofidelic Medical Diagnosis , 2005 .

[14]  H. Carnahan,et al.  Application of Motor Learning Principles to Complex Surgical Tasks: Searching for the Optimal Practice Schedule , 2007, Journal of motor behavior.

[15]  D.J. Reinkensmeyer,et al.  Web-based telerehabilitation for the upper extremity after stroke , 2002, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[16]  S. Wolf,et al.  A pneumatic muscle hand therapy device , 2004, The 26th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[17]  M G Fischman,et al.  Motor skill acquisition and retention as a function of average feedback, summary feedback, and performance variability. , 1994, Journal of motor behavior.

[18]  H.I. Krebs,et al.  Wrist rehabilitation following stroke: initial clinical results , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..

[19]  F. N. Platt,et al.  Development of a method of predicting high-accident and high-violation drivers. , 1967, The Journal of applied psychology.

[20]  Jiping He,et al.  Design of a robotic upper extremity repetitive therapy device , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..

[21]  Jiping He,et al.  RUPERT: a Device for Robotic Upper Extremity Repetitive Therapy , 2005, 2005 IEEE Engineering in Medicine and Biology 27th Annual Conference.

[22]  A. Chakrabarti,et al.  The mobile arm support project: a test-bed for design research at the Cambridge Engineering Design Centre , 1994, Proceedings of 16th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[23]  Nicole Wenderoth,et al.  Bimanual Training Reduces Spatial Interference , 2003, Journal of motor behavior.

[24]  B. Mastenbroek,et al.  Development of a Mobile Arm Support (Armon): Design Evolution and Preliminary User Experience , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.

[25]  Alan Barr,et al.  Evaluation of a dynamic arm support for seated and standing tasks: a laboratory study of electromyography and subjective feedback , 2007, Ergonomics.

[26]  Timothy D. Lee,et al.  Motor Control and Learning: A Behavioral Emphasis , 1982 .

[27]  D. Reinkensmeyer,et al.  Arm-Training with T-WREX After Chronic Stroke: Preliminary Results of a Randomized Controlled Trial , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.

[28]  D. Stewart,et al.  A Platform with Six Degrees of Freedom , 1965 .

[29]  Stuart T. Klapp,et al.  Whole-Task And Part-Task Training In Dual Motor Tasks , 1987 .

[30]  Janan Zaytoon,et al.  Control system design of a 3-DOF upper limbs rehabilitation robot , 2008, Comput. Methods Programs Biomed..

[31]  H. F. Machiel van der Loos,et al.  Development of robots for rehabilitation therapy: the Palo Alto VA/Stanford experience. , 2000, Journal of rehabilitation research and development.

[32]  G. Aschersleben,et al.  The Theory of Event Coding (TEC): a framework for perception and action planning. , 2001, The Behavioral and brain sciences.

[33]  Dan Stoianovici,et al.  Effect of a Pneumatically Driven Haptic Interface on the Perceptional Capabilities of Human Operators , 1998, Presence.

[34]  R. Seliktar,et al.  Design and testing of WREX , 2004 .

[35]  Janine G. Walker,et al.  Cognitive, sensory and physical factors enabling driving safety in older adults. , 2005, Clinical psychology review.

[36]  C. Shea,et al.  Principles derived from the study of simple skills do not generalize to complex skill learning , 2002, Psychonomic bulletin & review.

[37]  R. Riener,et al.  ARMin - Exoskeleton for Arm Therapy in Stroke Patients , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.

[38]  J.C. Perry,et al.  Upper-Limb Powered Exoskeleton Design , 2007, IEEE/ASME Transactions on Mechatronics.

[39]  William C Rogers SAFE DRIVING PERFORMANCE OF OLDER COMMERCIAL VEHICLE DRIVERS , 1998 .

[40]  Michelle J Johnson,et al.  Recent trends in robot-assisted therapy environments to improve real-life functional performance after stroke , 2006, Journal of NeuroEngineering and Rehabilitation.

[41]  D.J. Reinkensmeyer,et al.  A pneumatic robot for re-training arm movement after stroke: rationale and mechanical design , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..

[42]  Alan Sledd,et al.  Performance Enhancement of a Haptic Arm Exoskeleton , 2006, 2006 14th Symposium on Haptic Interfaces for Virtual Environment and Teleoperator Systems.

[43]  N. Manning,et al.  The human arm kinematics and dynamics during daily activities - toward a 7 DOF upper limb powered exoskeleton , 2005, ICAR '05. Proceedings., 12th International Conference on Advanced Robotics, 2005..

[44]  Tariq Rahman,et al.  A simple technique to passively gravity-balance articulated mechanisms , 1995 .

[45]  F.C.T. van der Helm,et al.  Kinematic Design to Improve Ergonomics in Human Machine Interaction , 2006, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[46]  J. Bryan,et al.  Measurement of Executive Function: Considerations for Detecting Adult Age Differences , 2000, Journal of clinical and experimental neuropsychology.

[47]  S. Lalwani,et al.  Spinal cord injury. , 2011, Journal of neurosurgery. Spine.

[48]  R. Richardson,et al.  Initial patient testing of iPAM - a robotic system for Stroke rehabilitation , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.

[49]  H. Krebs,et al.  Effects of Robot-Assisted Therapy on Upper Limb Recovery After Stroke: A Systematic Review , 2008, Neurorehabilitation and neural repair.

[50]  L Saltuari,et al.  [ARMOR: an electromechanical robot for upper limb training following stroke. A prospective randomised controlled pilot study]. , 2008, Handchirurgie, Mikrochirurgie, plastische Chirurgie : Organ der Deutschsprachigen Arbeitsgemeinschaft fur Handchirurgie : Organ der Deutschsprachigen Arbeitsgemeinschaft fur Mikrochirurgie der Peripheren Nerven und Gefasse : Organ der V....

[51]  C. Burnett,et al.  Values of activities of daily living. A survey of stroke patients and their home therapists. , 1985, Physical therapy.

[52]  D.J. Reinkensmeyer,et al.  Automating Arm Movement Training Following Severe Stroke: Functional Exercises With Quantitative Feedback in a Gravity-Reduced Environment , 2006, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[53]  G. Wulf,et al.  The learning advantages of an external focus of attention in golf. , 1999, Research quarterly for exercise and sport.

[54]  Laurence Chèze,et al.  Rotation sequence as an important factor in shoulder kinematics. , 2006, Clinical biomechanics.

[55]  Hermano Igo Krebs,et al.  A robot for wrist rehabilitation , 2001, 2001 Conference Proceedings of the 23rd Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[56]  J. Merlet Jacobian, Manipulability, Condition Number and Accuracy of Parallel Robots , 2005, ISRR.

[57]  M. Seligman,et al.  Failure to escape traumatic shock. , 1967, Journal of experimental psychology.

[58]  A. Opstal Dynamic Patterns: The Self-Organization of Brain and Behavior , 1995 .

[59]  Jiping He,et al.  Design and Control of RUPERT: A Device for Robotic Upper Extremity Repetitive Therapy , 2007, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[60]  Antonio Frisoli,et al.  A new force-feedback arm exoskeleton for haptic interaction in virtual environments , 2005, First Joint Eurohaptics Conference and Symposium on Haptic Interfaces for Virtual Environment and Teleoperator Systems. World Haptics Conference.

[61]  Richard A. Schmidt,et al.  Optimizing summary knowledge of results for skill learning , 1990 .

[62]  S.J. Ball,et al.  A planar 3DOF robotic exoskeleton for rehabilitation and assessment , 2007, 2007 29th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[63]  S.C. Cramer,et al.  A robotic device for hand motor therapy after stroke , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..

[64]  W. Prinz Perception and Action Planning , 1997 .

[65]  J. Krakauer,et al.  Generalization of Motor Learning Depends on the History of Prior Action , 2006, PLoS biology.

[66]  T. Rahman,et al.  A body-powered functional upper limb orthosis. , 2000, Journal of rehabilitation research and development.

[67]  G. Kramer,et al.  Design of a Dynamic Arm Support (DAS) for gravity compensation , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.

[68]  Hyung-Soon Park,et al.  Developing an Intelligent Robotic Arm for Stroke Rehabilitation , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.

[69]  Gabriele Wulf,et al.  Continuous Concurrent Feedback Degrades Skill Learning: Implications for Training and Simulation , 1997, Hum. Factors.

[70]  Raul Benitez,et al.  Motor adaptation as a greedy optimization of error and effort. , 2007, Journal of neurophysiology.

[71]  C. Blomstrand,et al.  Consequences of severity at stroke onset for health-related quality of life (HRQL) and informal care: a 1-year follow-up in elderly stroke survivors. , 2008, Archives of gerontology and geriatrics.

[72]  K. Furie,et al.  Heart disease and stroke statistics--2008 update: a report from the American Heart Association Statistics Committee and Stroke Statistics Subcommittee. , 2007, Circulation.

[73]  C. Carignan,et al.  Design of an arm exoskeleton with scapula motion for shoulder rehabilitation , 2005, ICAR '05. Proceedings., 12th International Conference on Advanced Robotics, 2005..

[74]  G. Ermentrout Dynamic patterns: The self-organization of brain and behavior , 1997 .

[75]  James David Brown Psychophysiological Measures of Drivers Under Actual Driving Conditions , 1969 .

[76]  P. Gallina,et al.  Design, Implementation and Clinical Tests of a Wire-Based Robot for Neurorehabilitation , 2007, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[77]  B. Brewer,et al.  Poststroke Upper Extremity Rehabilitation: A Review of Robotic Systems and Clinical Results , 2007, Topics in stroke rehabilitation.

[78]  G E BRIGGS,et al.  The effect of component practice on performance of a lever-positioning skill. , 1954, Journal of Experimental Psychology.

[79]  David A Gabriel,et al.  Maximum isometric arm forces in the horizontal plane. , 2006, Journal of biomechanics.

[80]  Robert Riener,et al.  ARMin II - 7 DoF rehabilitation robot: mechanics and kinematics , 2007, Proceedings 2007 IEEE International Conference on Robotics and Automation.

[81]  J.L. Herder Development of a statically balanced arm support: ARMON , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..

[82]  W. Harwin,et al.  The effect of GENTLE/s robot mediated therapy on upper extremity function post stroke , 2003 .

[83]  H. F. Schulte The characteristics of the McKibben artificial muscle , 1961 .

[84]  Sadao Kawamura,et al.  Development of an 8 DOF robotic orthosis for assisting human upper limb motion , 1998, Proceedings. 1998 IEEE International Conference on Robotics and Automation (Cat. No.98CH36146).

[85]  Peter Langhorne,et al.  Effects of Augmented Exercise Therapy Time After Stroke: A Meta-Analysis , 2004, Stroke.

[86]  Timothy D. Lee,et al.  Part and whole perceptual-motor practice of a polyrhythm , 2003, Neuroscience Letters.

[87]  C. B. Walter,et al.  The coordination of limb movements with different kinematic patterns , 1988, Brain and Cognition.

[88]  S. Scheer,et al.  Changes in the status of hospitalized stroke patients since inception of the prospective payment system in 1983. , 2002, Archives of physical medicine and rehabilitation.

[89]  N. Hogan,et al.  Robot-aided neurorehabilitation. , 1998, IEEE transactions on rehabilitation engineering : a publication of the IEEE Engineering in Medicine and Biology Society.

[90]  A. Fugl-Meyer,et al.  The post-stroke hemiplegic patient. 1. a method for evaluation of physical performance. , 1975, Scandinavian journal of rehabilitation medicine.

[91]  H. van der Kooij,et al.  Increased range of motion and decreased muscle activity during maximal reach with gravity compensation in stroke patients , 2007, 2007 IEEE 10th International Conference on Rehabilitation Robotics.

[92]  C. E. Clauser,et al.  Weight, volume, and center of mass of segments of the human body , 1969 .

[93]  J. Dewald,et al.  Abnormal joint torque patterns in the paretic upper limb of subjects with hemiparesis , 2001, Muscle & nerve.

[94]  C. Burgar,et al.  Robot-assisted movement training compared with conventional therapy techniques for the rehabilitation of upper-limb motor function after stroke. , 2002, Archives of physical medicine and rehabilitation.

[95]  Michael T. Turvey,et al.  Postural stabilization for the control of touching , 1999 .

[96]  Stefan Schaal,et al.  An exoskeleton robot for human arm movement study , 2005, 2005 IEEE/RSJ International Conference on Intelligent Robots and Systems.

[97]  W. Prinz,et al.  Instructions for motor learning: differential effects of internal versus external focus of attention. , 1998, Journal of motor behavior.

[98]  Heather Carnahan,et al.  The influence of practice schedules in the learning of a complex bone-plating surgical task. , 2005, American journal of surgery.

[99]  Robert Riener,et al.  ARMin - robot for rehabilitation of the upper extremities , 2006, Proceedings 2006 IEEE International Conference on Robotics and Automation, 2006. ICRA 2006..

[100]  Simon F. Giszter,et al.  Spinal cord injury: Present and future therapeutic devices and prostheses , 2011, Neurotherapeutics.

[101]  Wesley E. Woodson,et al.  Human Factors Design Handbook , 1981 .

[102]  D.J. Reinkensmeyer,et al.  Control of a Pneumatic Orthosis for Upper Extremity Stroke Rehabilitation , 2006, 2006 International Conference of the IEEE Engineering in Medicine and Biology Society.

[103]  G E BRIGGS,et al.  Training and transfer as a function of component interaction. , 1958, Journal of experimental psychology.

[104]  Massimo Bergamasco,et al.  An arm exoskeleton system for teleoperation and virtual environments applications , 1994, Proceedings of the 1994 IEEE International Conference on Robotics and Automation.

[105]  Just L Herder,et al.  Principle and design of a mobile arm support for people with muscular weakness. , 2006, Journal of rehabilitation research and development.

[106]  R. Schmidt,et al.  Reduced frequency of knowledge of results enhances motor skill learning. , 1990 .

[107]  C. Burgar,et al.  The MIME robotic system for upper-limb neuro-rehabilitation: results from a clinical trial in subacute stroke , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..

[108]  W. Rymer,et al.  Understanding and treating arm movement impairment after chronic brain injury: progress with the ARM guide. , 2014, Journal of rehabilitation research and development.

[109]  H.I. Krebs,et al.  Robot-Aided Neurorehabilitation: A Robot for Wrist Rehabilitation , 2007, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[110]  Chengqiu Li,et al.  Development of a 6-DOF Rehabilitation Robot and its Software for Clinical Evaluation Based on Virtual Reality , 2007, 2007 IEEE/ICME International Conference on Complex Medical Engineering.

[111]  M. Jurak,et al.  Passive robotic movement therapy of the spastic hemiparetic arm with REHAROB: report of the first clinical test and the follow-up system improvement , 2005, 9th International Conference on Rehabilitation Robotics, 2005. ICORR 2005..

[112]  K. Kiguchi,et al.  Development of an exoskeleton robot for human wrist and forearm motion assist , 2007, 2007 International Conference on Industrial and Information Systems.

[113]  Daniel M. Wolpert,et al.  Making smooth moves , 2022 .

[114]  R. Riener,et al.  ARMin - Toward a six DoF upper limb rehabilitation robot , 2006, The First IEEE/RAS-EMBS International Conference on Biomedical Robotics and Biomechatronics, 2006. BioRob 2006..

[115]  S. Hesse,et al.  Upper and lower extremity robotic devices to promote motor recovery after stroke -recent developments , 2004, The 26th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[116]  J. Mehrholz,et al.  Computerized Arm Training Improves the Motor Control of the Severely Affected Arm After Stroke: A Single-Blinded Randomized Trial in Two Centers , 2005, Stroke.

[117]  Robert Riener,et al.  Robot-aided neurorehabilitation of the upper extremities , 2005, Medical and Biological Engineering and Computing.

[118]  Jiping He,et al.  Determining natural arm configuration along a reaching trajectory , 2005, Experimental Brain Research.

[119]  Marcia K. O'Malley,et al.  Design of a Haptic Arm Exoskeleton for Training and Rehabilitation , 2004 .

[120]  K. Furie,et al.  Heart disease and stroke statistics--2007 update: a report from the American Heart Association Statistics Committee and Stroke Statistics Subcommittee. , 2008, Circulation.

[121]  S. Wolf,et al.  Forced use of hemiplegic upper extremities to reverse the effect of learned nonuse among chronic stroke and head-injured patients , 1989, Experimental Neurology.

[122]  Richard M. Murray,et al.  A Mathematical Introduction to Robotic Manipulation , 1994 .

[123]  Woon-fong Wallace Leung,et al.  Quantitative evaluation of motor functional recovery process in chronic stroke patients during robot-assisted wrist training. , 2009, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.

[124]  Rita R. Hohlstein,et al.  Occupational Therapy for Physical Dysfunction (3rd ed.) , 1990 .