评估小扰动下多关节上肢动力学的线性度以获得可靠的机械阻抗估计。

IF 4.8 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Seongil Hwang;Hyunah Kang;Sang Hoon Kang
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引用次数: 0

摘要

本研究研究了小扰动下多关节上肢动力学的线性行为,这是随机估计上肢机械阻抗的先决条件,这对于理解运动控制至关重要,并具有评估神经系统疾病的潜力。在小扰动下上肢动力学的线性存在矛盾的报告,即使对健康个体也是如此。我们假设多关节上肢在小扰动下表现为线性,并且未补偿的非线性机器人关节摩擦降低了阻抗估计的可靠性。使用类似于MIT-MANUS的2自由度直接驱动机器人,在两种情况下估计10名健康个体的上肢多关节机械阻抗:无(使用笛卡尔比例导数控制)和有(使用基于内部模型的阻抗控制)摩擦补偿。有摩擦补偿的多相干和部分相干接近统一,且明显高于没有摩擦补偿的情况,这证实了上肢在小扰动下的线性行为,并且先前报道的低相干检测到的非线性是由于机器人关节摩擦小而显著。预计在小扰动下确认上肢的线性可以使上肢阻抗估计更加可靠,从而促进运动控制研究,并补充中风后上肢动力学改变的诊断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessing Linearity in Multi-Joint Upper Limb Dynamics Under Small Perturbations for Reliable Mechanical Impedance Estimation
This study investigates the linear behavior of multi-joint upper limb dynamics under small perturbations, a prerequisite for stochastic estimation of upper limb mechanical impedance, which is crucial for understanding motor control and has the potential to assess neurological disorders. Conflicting reports exist on the linearity of upper limb dynamics under small perturbations, even for healthy individuals. We hypothesized that the multi-joint upper limb behaves linearly under small perturbations and that uncompensated nonlinear robot joint frictions degrade impedance estimation reliability. The upper limb multi-joint mechanical impedance of ten healthy individuals was estimated using a 2-degree-of-freedom direct-drive robot similar to MIT-MANUS, known for small joint frictions, under two conditions: without (using Cartesian proportional-derivative control) and with (using internal model based impedance control) friction compensation. Multiple and partial coherences were close to unity with friction compensation and significantly higher than without it, confirming that the upper limb behaves linearly under small perturbations and that previously reported nonlinearity detected by low coherences was due to small but significant robot joint frictions. It is expected that confirming the linearity of the upper limb under small perturbations allows for confident upper limb impedance estimation, thereby promoting motor control studies and complementing the diagnosis of the altered upper-limb dynamics post-stroke.
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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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