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Published in: Experimental Brain Research 3/2006

01-01-2006 | Research Article

Evaluation of robotic training forces that either enhance or reduce error in chronic hemiparetic stroke survivors

Authors: James L. Patton, Mary Ellen Stoykov, Mark Kovic, Ferdinando A. Mussa-Ivaldi

Published in: Experimental Brain Research | Issue 3/2006

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Abstract

This investigation is one in a series of studies that address the possibility of stroke rehabilitation using robotic devices to facilitate “adaptive training.” Healthy subjects, after training in the presence of systematically applied forces, typically exhibit a predictable “after-effect.” A critical question is whether this adaptive characteristic is preserved following stroke so that it might be exploited for restoring function. Another important question is whether subjects benefit more from training forces that enhance their errors than from forces that reduce their errors. We exposed hemiparetic stroke survivors and healthy age-matched controls to a pattern of disturbing forces that have been found by previous studies to induce a dramatic adaptation in healthy individuals. Eighteen stroke survivors made 834 movements in the presence of a robot-generated force field that pushed their hands proportional to its speed and perpendicular to its direction of motion — either clockwise or counterclockwise. We found that subjects could adapt, as evidenced by significant after-effects. After-effects were not correlated with the clinical scores that we used for measuring motor impairment. Further examination revealed that significant improvements occurred only when the training forces magnified the original errors, and not when the training forces reduced the errors or were zero. Within this constrained experimental task we found that error-enhancing therapy (as opposed to guiding the limb closer to the correct path) to be more effective than therapy that assisted the subject.
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Metadata
Title
Evaluation of robotic training forces that either enhance or reduce error in chronic hemiparetic stroke survivors
Authors
James L. Patton
Mary Ellen Stoykov
Mark Kovic
Ferdinando A. Mussa-Ivaldi
Publication date
01-01-2006
Publisher
Springer-Verlag
Published in
Experimental Brain Research / Issue 3/2006
Print ISSN: 0014-4819
Electronic ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-005-0097-8

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