Computational motor control: Redundancy and invariance

被引:150
作者
Guigon, Emmanuel
Baraduc, Pierre
Desmurget, Michel
机构
[1] Univ Paris 06, INSERM, U742, UPMC,ANiM, F-75005 Paris, France
[2] INSERM, U534, Space & Act, F-69500 Bron, France
[3] INSERM, U371, Brain & Vis Res, F-69500 Bron, France
关键词
D O I
10.1152/jn.00290.2006
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The nervous system controls the behavior of complex kinematically redundant biomechanical systems. How it computes appropriate commands to generate movements is unknown. Here we propose a model based on the assumption that the nervous system: 1) processes static ( e. g., gravitational) and dynamic ( e. g., inertial) forces separately; 2) calculates appropriate dynamic controls to master the dynamic forces and progress toward the goal according to principles of optimal feedback control; 3) uses the size of the dynamic commands ( effort) as an optimality criterion; and 4) can specify movement duration from a given level of effort. The model was used to control kinematic chains with 2, 4, and 7 degrees of freedom [ planar shoulder/elbow, three-dimensional (3D) shoulder/ elbow, 3D shoulder/elbow/wrist] actuated by pairs of antagonist muscles. The muscles were modeled as second-order nonlinear filters and received the dynamics commands as inputs. Simulations showed that the model can quantitatively reproduce characteristic features of pointing and grasping movements in 3D space, i.e., trajectory, velocity profile, and final posture. Furthermore, it accounted for amplitude/duration scaling and kinematic invariance for distance and load. These results suggest that motor control could be explained in terms of a limited set of computational principles.
引用
收藏
页码:331 / 347
页数:17
相关论文
共 130 条
  • [1] Modelling kinematics and dynamics of human arm movements
    Admiraal, MA
    Kusters, JMAM
    Gielen, SCAM
    [J]. MOTOR CONTROL, 2004, 8 (03) : 312 - 338
  • [2] Axial synergies during human upper trunk bending
    Alexandrov, A
    Frolov, A
    Massion, J
    [J]. EXPERIMENTAL BRAIN RESEARCH, 1998, 118 (02) : 210 - 220
  • [3] Dynamic optimization of human walking
    Anderson, FC
    Pandy, MG
    [J]. JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2001, 123 (05): : 381 - 390
  • [4] ATKESON CG, 1985, J NEUROSCI, V5, P2318
  • [5] Baddeley RJ, 2003, J NEUROSCI, V23, P3066
  • [6] Coupling between reaching movement direction and hand orientation for grasping
    Bennis, N
    Roby-Brami, A
    [J]. BRAIN RESEARCH, 2002, 952 (02) : 257 - 267
  • [7] Bernshtein N. A., 1967, COORDINATION REGULAT
  • [8] LOAD COMPENSATION IN HUMAN GOAL-DIRECTED ARM MOVEMENTS
    BOCK, O
    [J]. BEHAVIOURAL BRAIN RESEARCH, 1990, 41 (03) : 167 - 177
  • [9] Drawing sequences of segments in 3D: Kinetic influences on arm configuration
    Breteler, MDK
    Hondzinski, JM
    Flanders, M
    [J]. JOURNAL OF NEUROPHYSIOLOGY, 2003, 89 (06) : 3253 - 3263
  • [10] Geometric features of workspace and joint-space paths of 3D reaching movements
    Breteler, MDK
    Meulenbroek, RGJ
    Gielen, SCAM
    [J]. ACTA PSYCHOLOGICA, 1998, 100 (1-2) : 37 - 53