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Low-dimensional organization of angular momentum during walking on a narrow beam

机译:窄梁行走时角动量的低维组织

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摘要

Walking on a beam is a challenging motor skill that requires the regulation of upright balance and stability. The difficulty in beam walking results from the reduced base of support compared to that afforded by flat ground. One strategy to maintain stability and hence avoid falling off the beam is to rotate the limb segments to control the body’s angular momentum. The aim of this study was to examine the coordination of the angular momentum variations during beam walking. We recorded movement kinematics of participants walking on a narrow beam and computed the angular momentum contributions of the body segments with respect to three different axes. Results showed that, despite considerable variability in the movement kinematics, the angular momentum was characterized by a low-dimensional organization based on a small number of segmental coordination patterns. When the angular momentum was computed with respect to the beam axis, the largest fraction of its variation was accounted for by the trunk segment. This simple organization was robust and invariant across all participants. These findings support the hypothesis that control strategies for complex balancing tasks might be easier to understand by investigating angular momentum instead of the segmental kinematics.
机译:在横梁上行走是一项具有挑战性的运动技能,需要调节直立的平衡和稳定性。与平坦地面相比,梁行走困难是由于支撑基础减少。保持稳定性并因此避免从光束中掉落的一种策略是旋转肢体,以控制人体的角动量。这项研究的目的是检查在光束行走过程中角动量变化的协调性。我们记录了参与者在窄梁上行走的运动学,并计算了相对于三个不同轴的身体各部分的角动量贡献。结果表明,尽管运动学变化很大,但角动量的特征是基于少量分段协调模式的低维组织。当计算相对于光束轴的角动量时,其变化的最大部分是由躯干部分引起的。这个简单的组织在所有参与者中都强大而不变。这些发现支持这样的假设:通过研究角动量而不是分段运动学,可以更容易地理解用于复杂平衡任务的控制策略。

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