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Estimation of Time-Varying Intrinsic and Reflex Dynamic Joint Stiffness during Movement. Application to the Ankle Joint

机译:运动过程中时变固有和反射动态关节刚度的估算。应用于踝关节

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摘要

Dynamic joint stiffness determines the relation between joint position and torque, and plays a vital role in the control of posture and movement. Dynamic joint stiffness can be quantified during quasi-stationary conditions using disturbance experiments, where small position perturbations are applied to the joint and the torque response is recorded. Dynamic joint stiffness is composed of intrinsic and reflex mechanisms that act and change together, so that nonlinear, mathematical models and specialized system identification techniques are necessary to estimate their relative contributions to overall joint stiffness. Quasi-stationary experiments have demonstrated that dynamic joint stiffness is heavily modulated by joint position and voluntary torque. Consequently, during movement, when joint position and torque change rapidly, dynamic joint stiffness will be Time-Varying (TV). This paper introduces a new method to quantify the TV intrinsic and reflex components of dynamic joint stiffness during movement. The algorithm combines ensemble and deterministic approaches for estimation of TV systems; and uses a TV, parallel-cascade, nonlinear system identification technique to separate overall dynamic joint stiffness into intrinsic and reflex components from position and torque records. Simulation studies of a stiffness model, whose parameters varied with time as is expected during walking, demonstrated that the new algorithm accurately tracked the changes in dynamic joint stiffness using as little as 40 gait cycles. The method was also used to estimate the intrinsic and reflex dynamic ankle stiffness from an experiment with a healthy subject during which ankle movements were imposed while the subject maintained a constant muscle contraction. The method identified TV stiffness model parameters that predicted the measured torque very well, accounting for more than 95% of its variance. Moreover, both intrinsic and reflex dynamic stiffness were heavily modulated through the movement in a manner that could not be predicted from quasi-stationary experiments. The new method provides the tool needed to explore the role of dynamic stiffness in the control of movement.
机译:动态关节刚度决定了关节位置和扭矩之间的关系,并且在控制姿势和运动中起着至关重要的作用。动态关节刚度可以在准静态条件下使用干扰实验进行量化,其中对关节施加较小的位置扰动并记录扭矩响应。动态关节刚度由共同作用和变化的内在和反射机制组成,因此必须使用非线性,数学模型和专门的系统识别技术来估计它们对整体关节刚度的相对贡献。准静态实验表明,动态关节刚度受关节位置和自愿扭矩的影响很大。因此,在运动过程中,当关节位置和扭矩快速变化时,动态关节刚度将随时间变化(TV)。本文介绍了一种量化运动过程中动态关节刚度的电视固有和反射分量的新方法。该算法结合了集成方法和确定性方法来估计电视系统。并使用电视并联级联非线性系统识别技术,将位置和扭矩记录中的整体动态关节刚度分为固有分量和反射分量。对刚度模型的仿真研究表明,该新模型的参数随步行过程的变化而随时间变化,结果表明,新算法仅需40个步态周期即可准确跟踪动态关节刚度的变化。该方法还用于根据健康受试者的实验估算内在和反射性动态踝关节僵硬度,在此过程中,在受试者保持恒定的肌肉收缩的同时施加了踝部运动。该方法确定了TV刚度模型参数,这些参数很好地预测了所测量的扭矩,占其方差的95%以上。而且,固有运动和反射动力学刚度都通过运动进行了严格的调制,其方式是准静态实验无法预测的。新方法提供了探索动态刚度在运动控制中的作用所需的工具。

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