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人体平衡木行走:调整列维飞行以改善平衡控制。

Human stick balancing: tuning Lèvy flights to improve balance control.

作者信息

Cabrera Juan Luis, Milton John G

机构信息

Laboratorio de Fisica Estadistica, Centro de Fisica, IVIC, Aparado 21827, Caracas 1020A, Venezuela.

出版信息

Chaos. 2004 Sep;14(3):691-8. doi: 10.1063/1.1785453.

Abstract

State-dependent, or parametric, noise is an essential component of the neural control mechanism for stick balancing at the fingertip. High-speed motion analysis in three dimensions demonstrates that the controlling movements made by the fingertip during stick balancing can be described by a Lèvy flight. The Lèvy index, alpha, is approximately 0.9; a value close to optimal for a random search. With increased skill, the index alpha does not change. However, the tails of the Lèvy distribution become broader. These observations suggest a Lèvy flight that is truncated by the properties of the nervous and musculoskeletal system; the truncation decreasing as skill level increases. Measurements of the cross-correlation between the position of the tip of the stick and the fingertip demonstrate that the role of closed-loop feedback changes with increased skill. Moreover, estimation of the neural latencies for stick balancing show that for a given stick length, the latency increases with skill level. It is suggested that the neural control for stick balancing involves a mechanism in which brief intervals of consciously generated, corrective movements alternate with longer intervals of prediction-free control. With learning the truncation of the Lèvy flight becomes better optimized for balance control and hence the time between successive conscious corrections increases. These observations provide the first evidence that changes in a Lèvy flight may have functional significance for the nervous system. This work has implications for the control of balancing problems ranging from falling in the elderly to the design of two-legged robots and earthquake proof buildings.

摘要

状态依赖噪声或参数噪声是指尖保持杆平衡的神经控制机制的重要组成部分。三维高速运动分析表明,杆平衡过程中指尖的控制运动可用 Lévy 飞行来描述。Lévy 指数α约为 0.9,这一数值接近随机搜索的最优值。随着技能提升,指数α不变,但 Lévy 分布的尾部变宽。这些观察结果表明,Lévy 飞行受神经和肌肉骨骼系统特性的截断,且随着技能水平提高截断程度降低。杆尖位置与指尖之间的互相关测量表明,闭环反馈的作用随技能提升而变化。此外,杆平衡神经潜伏期的估计表明,对于给定的杆长度,潜伏期随技能水平增加。研究表明,杆平衡的神经控制涉及一种机制,即有意识产生的短暂纠正运动间隔与更长的无预测控制间隔交替出现。随着学习,Lévy 飞行的截断在平衡控制方面得到更好优化,因此连续有意识纠正之间的时间增加。这些观察结果首次证明 Lévy 飞行的变化可能对神经系统具有功能意义。这项工作对从老年人跌倒到两足机器人设计以及抗震建筑等平衡问题的控制具有启示意义。

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