Motor learning through the combination of primitives

被引:197
作者
Mussa-Ivaldi, FA
Bizzi, E
机构
[1] MIT, Cambridge, MA 02139 USA
[2] Northwestern Univ, Sch Med, Dept Physiol, Chicago, IL 60611 USA
关键词
force field; dynamics; module; spinal cord; cortex; internal model;
D O I
10.1098/rstb.2000.0733
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
In this paper we discuss a new perspective on how the central nervous system (CNS) represents and solves some of the most fundamental computational problems of motor control. In particular, we consider the task of transforming a planned limb movement into an adequate set of motor commands. To carry out this task the CNS must solve a complex inverse dynamic problem. This problem involves the transformation from a desired motion to the forces that are needed to drive the limb. The inverse dynamic problem is a hard computational challenge because of the need to coordinate multiple limb segments and because of the continuous changes in the mechanical properties of the limbs and of the environment with which they come in contact. A number of studies of motor learning have provided support for the idea that the CNS creates, updates and exploits internal representations of limb dynamics in order to deal with the complexity of inverse dynamics. Here we discuss how such internal representations are likely to be built by combining the modular primitives in the spinal cord as well as other building blocks found in higher brain structures. Experimental studies on spinalized frogs and rats have led to the conclusion that the premotor circuits within the spinal cord are organized into a set of discrete modules. Each module, when activated, induces a specific force field and the simultaneous activation of multiple modules leads to the vectorial combination of the corresponding fields. We regard these force fields as computational primitives that are used by the CNS for generating a rich grammar of motor behaviours.
引用
收藏
页码:1755 / 1769
页数:15
相关论文
共 59 条
[1]  
ALBUS J S, 1971, Mathematical Biosciences, V10, P25, DOI 10.1016/0025-5564(71)90051-4
[2]   Cerebellar ataxia: Abnormal control of interaction torques across multiple joints [J].
Bastian, AJ ;
Martin, TA ;
Keating, JG ;
Thach, WT .
JOURNAL OF NEUROPHYSIOLOGY, 1996, 76 (01) :492-509
[3]  
BIZZI E, 1984, J NEUROSCI, V4, P2738
[4]   COMPUTATIONS UNDERLYING THE EXECUTION OF MOVEMENT - A BIOLOGICAL PERSPECTIVE [J].
BIZZI, E ;
MUSSAIVALDI, FA ;
GISZTER, S .
SCIENCE, 1991, 253 (5017) :287-291
[5]  
Brady M., 1982, Robot Motion: Planning and Control
[6]   Consolidation in human motor memory [J].
BrashersKrug, T ;
Shadmehr, R ;
Bizzi, E .
NATURE, 1996, 382 (6588) :252-255
[7]  
FELDMAN AG, 1966, BIOPHYS-USSR, V11, P565
[8]  
Flanagan JR, 1997, J NEUROSCI, V17, P1519
[9]   THE CONTROL OF HAND EQUILIBRIUM TRAJECTORIES IN MULTIJOINT ARM MOVEMENTS [J].
FLASH, T .
BIOLOGICAL CYBERNETICS, 1987, 57 (4-5) :257-274
[10]  
FLASH T, 1992, P IEEE ENG MED BIOL, V13, P885