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Prediction of ground reaction forces and moments during various activities of daily living

机译:预测各种日常生活活动中地面反作用力和力矩

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Inverse dynamics based simulations on musculoskeletal models is a commonly used method for the analysis of human movement. Due to inaccuracies in the kinematic and force plate data, and a mismatch between the model and the subject, the equations of motion are violated when solving the inverse dynamics problem. As a result, dynamic inconsistency will exist and lead to residual forces and moments. In this study, we present and evaluate a computational method to perform inverse dynamics-based simulations without force plates, which both improves the dynamic consistency as well as removes the model's dependency on measured external forces. Using the equations of motion and a scaled musculoskeletal model, the ground reaction forces and moments (GRF&Ms) are derived from three-dimensional full-body motion. The method entails a dynamic contact model and optimization techniques to solve the indeterminacy problem during a double contact phase and, in contrast to previously proposed techniques, does not require training or empirical data. The method was applied to nine healthy subjects performing several Activities of Daily Living (ADLs) and evaluated with simultaneously measured force plate data. Except for the transverse ground reaction moment, no significant differences (P>0.05) were found between the mean predicted and measured GRF&Ms for almost all ADLs. The mean residual forces and moments, however, were significantly reduced (P>0.05) in almost all ADLs using our method compared to conventional inverse dynamic simulations. Hence, the proposed method may be used instead of raw force plate data in human movement analysis using inverse dynamics.
机译:基于逆动力学的肌肉骨骼模型仿真是分析人体运动的常用方法。由于运动学和力板数据的不准确以及模型与对象之间的不匹配,在解决逆动力学问题时违反了运动方程。结果,将存在动态不一致并导致残余力和力矩。在这项研究中,我们提出并评估一种计算方法,该方法可以在没有力板的情况下执行基于逆动力学的仿真,这不仅可以改善动态一致性,而且可以消除模型对测得的外力的依赖性。使用运动方程式和缩放的肌肉骨骼模型,可以从三维全身运动中得出地面反作用力和矩(GRF&Ms)。该方法需要动态接触模型和优化技术来解决双接触阶段的不确定性问题,并且与先前提出的技术相比,该方法不需要训练或经验数据。该方法被应用于执行几项日常生活活动(ADL)的九名健康受试者,并使用同时测量的测力板数据进行了评估。除横向地面反应力矩外,几乎所有ADL的平均预测GRF和Ms之间均无显着差异(P> 0.05)。但是,与传统的逆动态模拟相比,使用我们的方法,几乎​​所有ADL中的平均残余力和力矩都显着降低(P> 0.05)。因此,在使用逆动力学的人体运动分析中,可以使用所提出的方法代替原始力板数据。

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