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A COMPARISON OF STATIC AND DYNAMIC OPTIMIZATION MUSCLE FORCE PREDICTIONS DURING WHEELCHAIR PROPULSION

机译:轮椅推进过程中静态和动态优化肌肉力预测的比较

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摘要

The primary purpose of this study was to compare static and dynamic optimization muscle force and work predictions during the push phase of wheelchair propulsion. A secondary purpose was to compare the differences in predicted shoulder and elbow kinetics and kinematics and handrim forces. The forward dynamics simulation minimized differences between simulated and experimental data (obtained from 10 manual wheelchair users) and muscle co-contraction. For direct comparison between models, the shoulder and elbow muscle moment arms and net joint moments from the dynamic optimization were used as inputs into the static optimization routine. RMS errors between model predictions were calculated to quantify model agreement. There was a wide range of individual muscle force agreement that spanned from poor (26.4 % Fmax error in the middle deltoid) to good (6.4 % Fmax error in the anterior deltoid) in the prime movers of the shoulder. The predicted muscle forces from the static optimization were sufficient to create the appropriate motion and joint moments at the shoulder for the push phase of wheelchair propulsion, but showed deviations in the elbow moment, pronation-supination motion and hand rim forces. These results suggest the static approach does not produce results similar enough to be a replacement for forward dynamics simulations, and care should be taken in choosing the appropriate method for a specific task and set of constraints. Dynamic optimization modeling approaches may be required for motions that are greatly influenced by muscle activation dynamics or that require significant co-contraction.
机译:这项研究的主要目的是比较轮椅推进过程中静态和动态的最佳肌肉力量和工作预测。第二个目的是比较预测的肩和肘动力学,运动学和手腕力的差异。前向动力学模拟将模拟和实验数据(从10个手动轮椅使用者获得)和肌肉收缩的差异最小化。为了直接在模型之间进行比较,将动态优化中的肩膀和肘部肌肉力矩臂和净关节力矩用作静态优化例程的输入。计算模型预测之间的RMS误差以量化模型一致性。肩部原动力的范围很广,从较差(中三角肌的Fmax误差为26.4%)到良好(前三角肌的Fmax误差为6.4%)。通过静态优化得出的预测肌肉力足以在轮椅推进的推动阶段在肩部产生适当的运动和关节力矩,但显示出弯矩,旋前旋肌和手缘力的偏差。这些结果表明,静态方法不会产生足以替代正向动力学模拟的结果,因此应谨慎选择适合特定任务和约束条件的方法。对于受肌肉激活动力学影响很大或需要明显收缩的运动,可能需要动态优化建模方法。

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