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A NARMAX Method for the Identification of Time-Varying Joint Stiffness.

机译:一种识别时变关节刚度的NARMAX方法。

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Dynamic joint stiffness defines the dynamic relationship between the position of a joint and the torque acting about it and can be separated into intrinsic and reflex components. Under stationary conditions, these can be identified using a nonlinear parallel-cascade algorithm that models intrinsic stiffness and reflex stiffness as parallel pathways. Experimental results demonstrate that both intrinsic and reflex stiffness depend strongly on the operating point defined by mean joint position and the activation level. Consequently, both intrinsic and reflex stiffness will appear to be timevarying (TV) whenever the operating point changes, as during movement. This paper describes and validates a new method for identification of TV ankle stiffness. The method is based on the TV nonlinear autorregresive, moving average exogenous (NARMAX) model class. Simulation results demonstrated that the algorithm can accurately estimate the TV parameters of the ankle stiffness. We conclude that the algorithm is potentially a powerful new tool for the study of joint stiffness during TV conditions.
机译:动态关节刚度定义了关节位置与作用的扭矩之间的动态关系,并且可以分离成固有和反射组件。在静止条件下,可以使用非线性平行级联算法来识别,该算法模拟固有刚度和反射刚度作为平行途径。实验结果表明,固有和反射刚度均在由平均接头位置和激活水平定义的操作点上依赖性。因此,每当操作点变化时,内在和反射刚度都会似乎是时光(电视),如运动期间。本文介绍并验证了一种用于识别电视踝僵硬的新方法。该方法基于电视非线性自测性,移动平均外源(NARMAX)模型类。仿真结果表明,该算法可以准确估计踝僵硬度的电视参数。我们得出结论,该算法可能是在电视条件下研究关节刚度的强大新工具。

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