不同行走条件下踝关节外骨骼跨步自适应辅助策略。

IF 5.2 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Weihao Yin;Zhibo Jing;Jianquan Ding;Jiaqi Han;Jianda Han;Juanjuan Zhang
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引用次数: 0

摘要

高效和有效的个性化辅助策略对于提高外骨骼在不同行走条件下的性能至关重要。我们提出了一种新的实时自适应辅助策略,以生成个性化和跨步定制的踝关节外骨骼辅助配置文件,以适应各种不同的人体运动需求。该方法基于实时踝关节动量估计,从中等等速行走时预先优化的轮廓开始,在线调整辅助幅度和时间。它消除了步态变化时的重新优化过程,解决了过渡步态时的辅助定制问题。我们招募了10名参与者,并在两种测试场景中验证了我们的方法的性能:一种是单步步行条件,而不是预先优化的步行条件,以及一种是多步步行条件,其中包括多个不同的稳态步态及其过渡状态。对于单步(高速行走)情况,单侧踝关节外骨骼的跨步适应性辅助与无辅助相比减少了35.9±16.8%的肌肉活动,证明了与最先进的方法(人在环优化)相当的辅助水平,但提高了时间效率。在不同步态的情况下,与没有辅助相比,跨步适应性辅助减少了28.4±15.4%的肌肉活动,在过渡状态下减少了28.1±15.9%。结果表明,在多种未知、非优化、变化条件下以及步态过渡过程中,所提出的跨步自适应辅助策略在辅助个性化和定制方面的效率和有效性。这种方法有可能显著提高真实外骨骼的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stride-Wise Adaptive Assistance Strategy for Ankle Exoskeleton Under Varying Walking Conditions
Efficient and effective personalized assistance strategies are crucial for enhancing exoskeleton performance under varying walking conditions. We proposed a novel real-time adaptive assistance strategy to generate personalized and stride-wise customized ankle exoskeleton assistance profiles that adjusted to diverse and varying human locomotion demands. This approach tuned the assistance magnitude and timing online, starting from a profile pre-optimized during medium constant-speed walking, based on real-time ankle momentum estimation. It eliminated re-optimization processes when gait changes and solved assistance customization during transitional gaits. We recruited ten participants and validated the performance of our approach in two testing scenarios: a single-gait walking condition other than the pre-optimized one, and a varying-gait walking condition, which included multiple distinct steady-state gaits and their transition states. For the single-gait (high-speed walking) case, the stride-wise adaptive assistance of a unilateral ankle exoskeleton reduced muscle activity by $35.9~\pm ~16.8$ % compared to no assistance, demonstrating a level of assistance comparable to the state-of-the-art approach (human-in-the-loop optimization), but with improved time efficiency. For the varying-gait case, the stride-wise adaptive assistance reduced muscle activity by $28.4~\pm ~15.4$ % compared to no assistance, and by $28.1~\pm ~15.9$ % during their transition states. These results demonstrated the efficiency and effectiveness of the proposed stride-wise adaptive assistance strategy in assistance personalization and customization under multiple, unknown, un-optimized, changing conditions, as well as during transitional gaits. This approach has the potential to significantly enhance the performance of real-life exoskeletons.
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来源期刊
CiteScore
8.60
自引率
8.20%
发文量
479
审稿时长
6-12 weeks
期刊介绍: Rehabilitative and neural aspects of biomedical engineering, including functional electrical stimulation, acoustic dynamics, human performance measurement and analysis, nerve stimulation, electromyography, motor control and stimulation; and hardware and software applications for rehabilitation engineering and assistive devices.
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