DOES THE NERVOUS-SYSTEM USE EQUILIBRIUM-POINT CONTROL TO GUIDE SINGLE AND MULTIPLE JOINT MOVEMENTS

被引:299
作者
BIZZI, E [1 ]
HOGAN, N [1 ]
MUSSAIVALDI, FA [1 ]
GISZTER, S [1 ]
机构
[1] MIT, DEPT MECH ENGN, CAMBRIDGE, MA 02139 USA
关键词
CONTACT TASKS; EQUILIBRIUM POINT; FORCE FIELD; INVERSE DYNAMICS; MICROSTIMULATION; MOTOR CONTROL; MULTIJOINT COORDINATION; ROBOTICS; SPINAL CORD;
D O I
10.1017/S0140525X00072538
中图分类号
B84 [心理学];
学科分类号
04 ; 0402 ;
摘要
The hypothesis that the central nervous system (CNS) generates movement as a shift of the limb's equilibrium posture has been corroborated experimentally in studies involving single- and multijoint motions. Posture may be controlled through the choice of muscle length-tension curve that set agonist-antagonist torque-angle curves determining an equilibrium position for the limb and the stiffness about the joints. Arm trajectories seen to be generated through a control signal defining a series of equilibrium postures. The equilibrium-point hypothesis drastically simplifies the requisite computations for multijoint movements and mechanical interactions with complex dynamic objects in the environment. Because the neuromuscular system is springlike, the instantaneous difference between the arm's actual position and the equilibrium position specified by the neural activity can generate the requisite torques, avoiding the complex "inverse dynamic" problem of computing the torques at the joints. The hypothesis provides a simple, unified description of posture and movement as well as contact control task performance, in which the limb must exert force stably and do work on objects in the environment. The latter is a surprisingly difficult problem, as robotic experience has shown. The prior evidence for the hypothesis came mainly from psychophysical and behavioral experiments. Our recent work has shown that microstimulation of the frog spinal cord's premotoneural network produces leg movements to various positions in the frog's motor space. The hypothesis can now be investigated in the neurophysiological machinery of the spinal cord.
引用
收藏
页码:603 / 613
页数:11
相关论文
共 67 条
[1]  
ALLUM JHJ, 1975, EXP BRAIN RES, V22, P307
[2]   ENCODING OF SPATIAL LOCATION BY POSTERIOR PARIETAL NEURONS [J].
ANDERSEN, RA ;
ESSICK, GK ;
SIEGEL, RM .
SCIENCE, 1985, 230 (4724) :456-458
[3]  
BENNETT D J, 1989, Society for Neuroscience Abstracts, V15, P396
[4]  
BENNETT DJ, 1990, THESIS MIT
[5]   ADAPTABILITY OF INNATE MOTOR PATTERNS AND MOTOR CONTROL MECHANISMS [J].
BERKINBLIT, MB ;
FELDMAN, AG ;
FUKSON, OI .
BEHAVIORAL AND BRAIN SCIENCES, 1986, 9 (04) :585-599
[6]  
Bernstein N.A., 1967, COORDINATION REGULAT
[7]  
BIZZI E, 1982, EXP BRAIN RES, V46, P139
[8]  
BIZZI E, 1976, J NEUROPHYSIOL, V39, P435, DOI 10.1152/jn.1976.39.2.435
[9]  
BIZZI E, 1984, J NEUROSCI, V4, P2738
[10]   COMPUTATIONS UNDERLYING THE EXECUTION OF MOVEMENT - A BIOLOGICAL PERSPECTIVE [J].
BIZZI, E ;
MUSSAIVALDI, FA ;
GISZTER, S .
SCIENCE, 1991, 253 (5017) :287-291