Kinematics and Dynamics Are Not Represented Independently in Motor Working Memory: Evidence from an Interference Study

Кинематические и динамические параметры не представлены независимо в оперативной памяти двигательной системы: данные исследования интерференции
Christine Tong, Daniel M. Wolpert, J. Randall Flanagan
2002-02-01

interference learningmotor working memoryposition-dependent force fieldsensorimotor adaptationvisuomotor rotation
Our capacity to learn multiple dynamic and visuomotor tasks is limited by the time between the presentations of the tasks. When subjects are required to adapt to equal and opposite position-dependent visuomotor rotations (Krakauer et al., 1999) or velocity-dependent force fields (Brashers-Krug et al., 1996) in quick succession, interference occurs that prevents the first task from being consolidated in memory. In contrast, such interference is not observed between learning a position-dependent visuomotor rotation and an acceleration-dependent force field. On the basis of this finding, it has been argued that internal models of kinematic and dynamic sensorimotor transformations are learned independently (Krakauer et al., 1999). However, these findings are also consistent with the perturbations interfering only if they depend on the same kinematic variable. We evaluated this hypothesis using kinematic and dynamic transformations matched in terms of the kinematic variable on which they depend. Subjects adapted to a position-dependent visuomotor rotation followed 5 min later by a position-dependent rotary force field either with or without visual feedback of arm position. The force field tended to rotate the hand in the direction opposite to the visuomotor rotation. To assess learning, all subjects were retested 24 hr later on the visuomotor rotation, and their performance was compared with a control group exposed only to the visuomotor rotation on both days. Adapting to the position-dependent force field, both with and without visual feedback, impaired learning of the visuomotor rotation. Thus, interference between our kinematic and dynamic transformations was observed, suggesting that the key determinant of interference is the kinematic variable on which the transformation depends.
1
Adapting to a position-dependent rotary force field five minutes after a position-dependent visuomotor rotation impaired subsequent 24-hour retention of the rotation.
2
Interference occurred whether or not visual feedback of arm position was provided during force-field adaptation.
3
Interference occurs between transformations that depend on the same kinematic variable, even when one is visuomotor and the other is dynamic.
4
Learning multiple dynamic and visuomotor tasks is limited when tasks are presented in close succession, with interference preventing consolidation of the first task.
5
The findings indicate that the kinematic variable governing a transformation, rather than its classification as kinematic or dynamic, is the key determinant of motor-memory interference.

human sensorimotor adaptation to position-dependent visuomotor rotations and position-dependent rotary force fields

interference in learning and memory consolidation between kinematic and dynamic transformations that depend on the same kinematic variable

Publication Details
Publication Date
2002-02-01
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Christine Tong
Daniel M. Wolpert
J. Randall Flanagan
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%