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基于模型的主动膝关节僵硬度估计。

Model-based estimation of active knee stiffness.

作者信息

Pfeifer Serge, Hardegger Michael, Vallery Heike, List Renate, Foresti Mauro, Riener Robert, Perreault Eric J

机构信息

Sensory-Motor Systems Lab, Institute of Robotics and Intelligent Systems, ETH Zurich, Zurich, Switzerland.

出版信息

IEEE Int Conf Rehabil Robot. 2011;2011:5975474. doi: 10.1109/ICORR.2011.5975474.

Abstract

Knee joint impedance varies substantially during physiological gait. Quantifying this modulation is critical for the design of transfemoral prostheses that aim to mimic physiological limb behavior. Conventional methods for quantifying joint impedance typically involve perturbing the joint in a controlled manner, and describing impedance as the dynamic relationship between applied perturbations and corresponding joint torques. These experimental techniques, however, are difficult to apply during locomotion without impeding natural movements. In this paper, we propose a method to estimate the elastic component of knee joint impedance that depends on muscle activation, often referred to as active knee stiffness. The method estimates stiffness using a musculoskeletal model of the leg and a model for activation-dependent short-range muscle stiffness. Muscle forces are estimated from measurements including limb kinematics, kinetics and muscle electromyograms. For isometric validation, we compare model estimates to measurements involving joint perturbations; measured stiffness is 17% lower than model estimates for extension, and 42% lower for flexion torques. We show that sensitivity of stiffness estimates to common approaches for estimating muscle force is small in isometric conditions. We also make initial estimates of how knee stiffness is modulated during gait, illustrating how this approach may be used to obtain parameters relevant to the design of transfemoral prostheses.

摘要

膝关节阻抗在生理步态期间会有显著变化。量化这种调节对于旨在模仿生理肢体行为的经股骨假肢设计至关重要。传统的量化关节阻抗的方法通常包括以可控方式扰动关节,并将阻抗描述为施加的扰动与相应关节扭矩之间的动态关系。然而,这些实验技术在不阻碍自然运动的情况下很难在运动过程中应用。在本文中,我们提出了一种估计膝关节阻抗弹性成分的方法,该成分取决于肌肉激活,通常称为主动膝关节刚度。该方法使用腿部的肌肉骨骼模型和依赖于激活的短程肌肉刚度模型来估计刚度。肌肉力通过包括肢体运动学、动力学和肌肉肌电图在内的测量来估计。为了进行等长验证,我们将模型估计值与涉及关节扰动的测量值进行比较;测量得到的伸展刚度比模型估计值低17%,屈曲扭矩刚度低42%。我们表明,在等长条件下,刚度估计值对估计肌肉力的常用方法的敏感性较小。我们还对步态期间膝关节刚度如何调节进行了初步估计,说明了这种方法可如何用于获取与经股骨假肢设计相关的参数。

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