Robot-Assisted Adaptive Training: Custom Force Fields for Teaching Movement Patterns
- 22 March 2004
- journal article
- clinical trial
- Published by Institute of Electrical and Electronics Engineers (IEEE) in IEEE Transactions on Biomedical Engineering
- Vol. 51 (4) , 636-646
- https://doi.org/10.1109/tbme.2003.821035
Abstract
Based on recent studies of neuro-adaptive control, we tested a new iterative algorithm to generate custom training forces to "trick" subjects into altering their target-directed reaching movements to a prechosen movement as an after-effect of adaptation. The prechosen movement goal, a sinusoidal-shaped path from start to end point, was never explicitly conveyed to the subject. We hypothesized that the adaptation would cause an alteration in the feedforward command that would result in the prechosen movement. Our results showed that when forces were suddenly removed after a training period of 330 movements, trajectories were significantly shifted toward the prechosen movement. However, de-adaptation occurred (i.e., the after-effect "washed out") in the 50-75 movements that followed the removal of the training forces. A second experiment suppressed vision of hand location and found a detectable reduction in the washout of after-effects, suggesting that visual feedback of error critically influences learning. A final experiment demonstrated that after-effects were also present in the neighborhood of training-44% of original directional shift was seen in adjacent, unpracticed movement directions to targets that were 60/spl deg/ different from the targets used for training. These results demonstrate the potential for these methods for teaching motor skills and for neuro-rehabilitation of brain-injured patients. This is a form of "implicit learning," because unlike explicit training methods, subjects learn movements with minimal instructions, no knowledge of, and little attention to the trajectory.Keywords
This publication has 40 references indexed in Scilit:
- Comparison of Image Interpolation Methods Applied to Least Squares MatchingPublished by Institute of Electrical and Electronics Engineers (IEEE) ,2008
- Altering movement patterns in healthy and brain-injured subjects via custom designed robotic forcesPublished by Institute of Electrical and Electronics Engineers (IEEE) ,2005
- A theory of cerebellar functionPublished by Elsevier ,2002
- Procedural motor learning in Parkinson's diseaseExperimental Brain Research, 2001
- Independent learning of internal models for kinematic and dynamic control of reachingNature Neuroscience, 1999
- Quantification of force abnormalities during passive and active-assisted upper-limb reaching movements in post-stroke hemiparesisIEEE Transactions on Biomedical Engineering, 1999
- Robot-aided neurorehabilitationIEEE Transactions on Rehabilitation Engineering, 1998
- A Theory of Cerebellar CortexPublished by Springer Nature ,1991
- MOTOR LEARNING IN PATIENTS WITH CEREBELLAR DYSFUNCTIONBrain, 1990
- Adaptation to lateral displacement of vision in patients with lesions of the central nervous systemNeurology, 1983