Controlling Powered Prosthesis Kinematics over Continuous Transitions Between Walk and Stair Ascent.

Shihao Cheng, Curt A Laubscher, Robert D Gregg
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Abstract

One of the primary benefits of emerging powered prosthetic legs is their ability to facilitate step-over-step stair ascent by providing positive mechanical work. Existing control methods typically have distinct steady-state activity modes for walking and stair ascent, where activity transitions involve discretely switching between controllers and often must be initiated with a particular leg. However, these discrete transitions do not necessarily replicate able-bodied joint biomechanics, which have been shown to continuously adjust over a transition stride. This paper presents a phase-based kinematic controller for a powered knee-ankle prosthesis that enables continuous, biomimetic transitions between walking and stair ascent. The controller tracks joint angles from a data-driven kinematic model that continuously interpolates between the steady-state kinematic models, and it allows both the prosthetic and intact leg to lead the transitions. Results from experiments with two transfemoral amputee participants indicate that knee and ankle kinematics smoothly transition between walking and stair ascent, with comparable or lower root mean square errors compared to variations from able-bodied data.

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在步行和爬楼梯之间的连续转换中控制动力假肢运动学
新出现的动力假肢的主要优点之一是能够通过提供积极的机械功来促进阶梯上升。现有的控制方法通常为行走和爬楼梯提供不同的稳态活动模式,活动转换涉及控制器之间的离散切换,通常必须由特定的腿部启动。然而,这些离散的转换并不一定能复制健全人的关节生物力学,因为关节生物力学已被证明会在转换步幅中不断调整。本文介绍了一种基于相位的膝关节假肢运动控制器,可实现行走和爬楼梯之间的连续仿生过渡。该控制器通过数据驱动的运动学模型跟踪关节角度,该模型在稳态运动学模型之间进行连续插值,并允许假肢和完好腿引导过渡。两名经股截肢者的实验结果表明,膝关节和踝关节运动学在行走和爬楼梯之间平稳过渡,与健全人数据的变化相比,均方根误差相当或更小。
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FBG-based Shape-Sensing to Enable Lateral Deflection Methods of Autonomous Needle Insertion. An Energetic Approach to Task-Invariant Ankle Exoskeleton Control. Controlling Powered Prosthesis Kinematics over Continuous Transitions Between Walk and Stair Ascent. Effects of Personalization on Gait-State Tracking Performance Using Extended Kalman Filters. Improving Amputee Endurance over Activities of Daily Living with a Robotic Knee-Ankle Prosthesis: A Case Study.
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