首页> 外文期刊>Journal of Neurophysiology >Perceptual and motor learning underlies human stick-balancing skill
【24h】

Perceptual and motor learning underlies human stick-balancing skill

机译:感知和运动学习是人类平衡技巧的基础

获取原文
获取原文并翻译 | 示例
           

摘要

We investigated the acquisition of skill in balancing a stick (52 cm, 34 g) on the fingertip in nine participants using three-dimensional motion analysis. After 3.5 h of practice over 6 wk, the participants could more consistently balance the stick for longer durations with greatly reduced magnitude and speed of stick and finger movements. Irrespective of level of skill, the balanced stick behaved like a normal noninverted pendulum oscillating under greater-than-gravity torque with simple harmonic motion about a virtual pivot located at the radius of gyration above the center of mass. The control input parameter was the magnitude ratio between the torque applied on the stick by the participant and the torque due to gravity. The participants utilized only a narrow range of this parameter, which did not change with practice, to rotate the stick like a linear mass-spring system. With increased skill, the stick therefore maintained the same period of oscillation but showed marked reductions in magnitude of both oscillation and horizontal translation. Better balancing was associated with 1) more accurate visual localization of the stick and proprioceptive localization of the finger and 2) reduced cross-coupling errors between finger and stick movements in orthogonal directions; i.e., finger movements in the anteroposterior plane became less coupled with stick tip movements in the mediolateral plane, and vice versa. Development of this fine motor skill therefore depended on perceptual and motor learning to provide improved estimation of sensorimotor state and precision of motor commands to an unchanging internal model of the rotational dynamics.
机译:我们调查了使用三维运动分析在九名参与者的指尖上平衡一根棍子(52 cm,34 g)的技巧。经过6周的3.5小时练习后,参与者可以在更长的时间内更加稳定地平衡棒,同时大大降低了棒和手指运动的幅度和速度。无论技巧水平如何,平衡杆的行为都像正常的同向摆锤一样,它在重力作用下大于重力,并围绕位于质量中心上方回转半径处的虚拟枢轴进行简单的谐波运动。控制输入​​参数是参与者施加在操纵杆上的扭矩与重力引起的扭矩之间的大小比。参与者仅使用了该参数的狭窄范围(实际上并没有改变)来像线性质量弹簧系统那样旋转杆。因此,随着技巧的提高,摇杆保持了相同的振动周期,但振动和水平平移幅度均显着降低。更好的平衡与以下方面有关:1)棒的视觉定位和手指的本体感受定位更准确; 2)手指和棒在正交方向上的运动之间的交叉耦合误差减小;也就是说,手指在前后平面内的运动与指尖在内侧平面内的运动较少,反之亦然。因此,这种精细的运动技能的发展依赖于知觉和运动学习,以提供对感觉运动状态的改进估计以及运动指令的精确度,以适应不断变化的旋转动力学内部模型。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号