在步行和上/下楼梯之间的连续腿间转换中控制动力假肢运动学。

IF 4.8 2区 医学 Q2 ENGINEERING, BIOMEDICAL IEEE Transactions on Neural Systems and Rehabilitation Engineering Pub Date : 2024-10-24 DOI:10.1109/TNSRE.2024.3485643
Shihao Cheng;Curt A. Laubscher;Robert D. Gregg
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引用次数: 0

摘要

尽管动力假肢在行走和爬楼梯等稳态活动中实现了更具生物仿真性的关节运动学,但这些活动之间的转换通常是通过离散切换控制器来处理的,而没有考虑生物仿真性或主导腿的独特作用。本研究介绍了两种基于相位的数据驱动运动学控制方法,以实现行走和上/下楼梯之间的无缝跨腿转换(即由假肢或完好腿启动),同时假定对即将进行的活动有高层次的了解。其中一种方法采用了一种新颖的连续变化运动学模型,该模型以近似凸组合的方式在稳态活动之间进行插值;另一种方法则采用了一种简单的基于切换的模型,该模型具有优化的切换时机和可调整的运动学不连续性平滑。数据驱动分析表明,在一定的分类延迟范围内,连续变化控制器仍然优于开关控制器。两名高功能经股截肢者使用的动力膝踝假肢进行了实验验证,结果表明连续控制器能在过渡期间为两个关节提供更仿生和不间断的运动轨迹,而与启动腿无关。这项研究强调了为高功能假肢使用者提供更自然运动的潜力。
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Controlling Powered Prosthesis Kinematics Over Continuous Inter-Leg Transitions Between Walking and Stair Ascent/Descent
Although powered prosthetic legs have enabled more biomimetic joint kinematics during steady-state activities like walking and stair climbing, transitions between these activities are usually handled by discretely switching controllers without considering biomimicry or the distinct role of the leading leg. This study introduces two data-driven, phase-based kinematic control approaches for seamless inter-leg transitions (i.e., initiated by either the prosthetic or intact leg) between walking and stair ascent/descent, assuming high-level knowledge of the upcoming activity. One approach employs a novel continuously-varying kinematic model that interpolates between steady-state activities as an approximate convex combination, and the other approach employs a simple switching-based model with optimized switching timing and tunable smoothing of kinematic discontinuities. Data-driven analysis indicates the continuously-varying controller remains beneficial over the switching controller for a range of classification delays. Experimental validation with a powered knee-ankle prosthesis used by two high-functioning transfemoral amputees demonstrates the continuous controller can provide more biomimetic and uninterrupted kinematic trajectories for both joints during transitions, irrespective of the initiating leg. This research underscores the potential for enabling more natural locomotion for high-functioning prosthetic leg users.
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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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