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Model-Based Estimation of Ankle Joint Stiffness During Dynamic Tasks: a Validation-Based Approach

机译:动态任务过程中基于模型的踝关节刚度估算:一种基于验证的方法

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Joint stiffness estimation under dynamic conditions still remains a challenge. Current stiffness estimation methods often rely on the external perturbation of the joint. In this study, a novel ’perturbation-free’ stiffness estimation method via electromyography (EMG)-driven musculoskeletal modeling was validated for the first time against system identification techniques. EMG signals, motion capture, and dynamic data of the ankle joint were collected in an experimental setup to study the ankle joint stiffness in a controlled way, i.e. at a movement frequency of 0.6 Hz as well as in the presence and absence of external perturbations. The model-based joint stiffness estimates were comparable to system identification techniques. The ability to estimate joint stiffness at any instant of time, with no need to apply joint perturbations, might help to fill the gap of knowledge between the neural and the muscular systems and enable the subsequent development of tailored neurorehabilitation therapies and biomimetic prostheses and orthoses.
机译:在动态条件下的联合刚度估算仍然是一个挑战。当前的刚度估算方法通常依赖于关节的外部扰动。在这项研究中,首次针对系统识别技术验证了一种通过肌电图(EMG)驱动的肌肉骨骼建模的新颖的“无扰动”刚度估算方法。在实验装置中收集了踝关节的肌电信号,运动捕捉和动态数据,以受控的方式研究踝关节的刚度,即以0.6 Hz的运动频率以及是否存在外部扰动来研究踝关节的刚度。基于模型的关节刚度估算值与系统识别技术相当。在任何时候都可以估计关节僵硬的能力,而无需施加关节扰动,这可能有助于填补神经系统和肌肉系统之间的知识空白,并可以随后开发定制的神经康复疗法以及仿生假肢和矫形器。

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