一种评估人类外骨骼适应性的神经效率度量的发展。

IF 2.9 Q2 ROBOTICS
Frontiers in Robotics and AI Pub Date : 2025-04-02 eCollection Date: 2025-01-01 DOI:10.3389/frobt.2025.1541963
Ranjana K Mehta, Yibo Zhu, Eric B Weston, William S Marras
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引用次数: 0

摘要

被动式外骨骼已被引入,以减轻腰椎的负荷,同时提高佩戴者的生产力。然而,很少有研究检查短期人类外骨骼适应的神经认知效应。该研究的目的是开发一种新的神经效率指标,以评估重复举重期间人类外骨骼的短期适应。12名参与者(性别平衡)分别在两天内进行了短时间(阶段:早、中、晚)的模拟不对称举重任务,有和没有被动的下背部外骨骼。研究了相、外骨骼状态及其相互作用对生物力学参数、神经激活和新型神经效率指标的影响。发现外骨骼条件下的峰值L5/S1上侧向剪切力明显低于对照组。然而,其他生物力学和神经激活测量在两种情况下具有可比性。神经效率指标的时间变化遵循运动适应过程。随着时间的推移,与对照组相比,参与者在外骨骼辅助举升条件下表现出较低的效率。神经效率指标能够在高度动态外骨骼辅助的手动处理任务中跟踪短期任务适应过程。与对照条件相比,外骨骼辅助任务效率较低,需要更长的适应期,这可能会影响外骨骼的接受和/或使用意图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a neural efficiency metric to assess human-exoskeleton adaptations.

Passive exoskeletons have been introduced to alleviate loading on the lumbar spine while increasing the wearer's productivity. However, few studies have examined the neurocognitive effects of short-term human-exoskeleton adaptation. The objective of the study was to develop a novel neural efficiency metric to assess short-term human exoskeleton adaptation during repetitive lifting. Twelve participants (gender-balanced) performed simulated asymmetric lifting tasks for a short duration (phase: early, middle, late) with and without a passive low back exoskeleton on two separate days. Phase, exoskeleton condition, and their interaction effects on biomechanical parameters, neural activation, and the novel neural efficiency metric were examined. Peak L5/S1 superior lateral shear forces were found to be significantly lower in the exoskeleton condition than in the control condition. However, other biomechanical and neural activation measures were comparable between conditions. The temporal change of the neural efficiency metric was found to follow the motor adaptation process. Compared to the control condition, participants exhibited lower efficiency during the exoskeleton-assisted lifting condition over time. The neural efficiency metric was capable of tracking the short-term task adaptation process during a highly ambulatory exoskeleton-assisted manual handling task. The exoskeleton-assisted task was less efficient and demanded a longer adaptation period than the control condition, which may impact exoskeleton acceptance and/or intent to use.

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来源期刊
CiteScore
6.50
自引率
5.90%
发文量
355
审稿时长
14 weeks
期刊介绍: Frontiers in Robotics and AI publishes rigorously peer-reviewed research covering all theory and applications of robotics, technology, and artificial intelligence, from biomedical to space robotics.
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