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跨越凸起障碍物的视觉运动控制对小的基线位移很敏感。

Visuomotor control of leaping over a raised obstacle is sensitive to small baseline displacements.

作者信息

Daniels Katherine A J, Burn J F

机构信息

Queen's School of Engineering, University of Bristol, Bristol, UK.

Department of Sport and Exercise Sciences, Musculoskeletal Science and Sports Medicine Research Centre, Manchester Metropolitan University, Manchester M15 6BH, UK.

出版信息

R Soc Open Sci. 2021 Mar 10;8(3):201877. doi: 10.1098/rsos.201877.

Abstract

The limb kinematics used for stepping or leaping over an obstacle are determined primarily by visual sensing of obstacle position and geometry. In this study, we demonstrate that changes are induced in limb kinematics even when obstacle geometry is manipulated in a way that does not introduce a mechanical requirement for a change of limb trajectory nor increase risk of collision. Human participants performed a running leap over a single raised obstacle bar. Kinematic changes were measured when an identical second bar was introduced at a ground level underneath the obstacle and displaced by a functionally insignificant distance along the axis of travel. The presence or absence of a baseline directly beneath the highest extremity had no significant effect on limb kinematics. However, displacing the baseline horizontally induced a horizontal translation of limb trajectory in the direction of the displacement. These results show that systematic changes to limb trajectories can occur in the absence of a change in sensed mechanical constraints or optimization. The nature of visuomotor control of human leaping may involve a continuous mapping of sensory input to kinematic output rather than one responsive only to information perceived to be mechanically relevant.

摘要

用于跨越障碍物的肢体运动学主要由对障碍物位置和几何形状的视觉感知来决定。在本研究中,我们证明,即使以一种既不会对肢体轨迹变化产生机械要求也不会增加碰撞风险的方式来操控障碍物的几何形状,肢体运动学仍会发生改变。人类参与者对单个升高的障碍物横杆进行跑步跨越。当在障碍物下方的地面水平位置引入一根相同的第二横杆,并沿行进轴移动一个功能上无关紧要的距离时,测量运动学变化。在最高肢体下方是否存在基线对肢体运动学没有显著影响。然而,水平移动基线会导致肢体轨迹沿位移方向发生水平平移。这些结果表明,在没有感知到的机械约束或优化变化的情况下,肢体轨迹可能会发生系统性变化。人类跳跃的视觉运动控制本质可能涉及感觉输入到运动输出的连续映射,而不是仅对被认为与机械相关的信息做出反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/05d1/8074954/3b746748a6e0/rsos201877f01.jpg

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