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Critical analysis of musculoskeletal modelling complexity in multibody biomechanical models of the upper limb

机译:对上肢多体生物力学模型中肌肉骨骼建模复杂性的关键分析

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The inverse dynamics technique applied to musculoskeletal models, and supported by optimisation techniques, is used extensively to estimate muscle and joint reaction forces. However, the solutions of the redundant muscle force sharing problem are sensitive to the detail and modelling assumptions of the models used. This study presents four alternative biomechanical models of the upper limb with different levels of discretisation of muscles by bundles and muscle paths, and their consequences on the estimation of the muscle and joint reaction forces. The muscle force sharing problem is solved for the motions of abduction and anterior flexion, acquired using video imaging, through the minimisation of an objective function describing muscle metabolic energy consumption. While looking for the optimal solution, not only the equations of motion are satisfied but also the stability of the glenohumeral and scapulothoracic joints is preserved. The results show that a lower level of muscle discretisation provides worse estimations regarding the muscle forces. Moreover, the poor discretisation of muscles relevant to the joint in analysis limits the applicability of the biomechanical model. In this study, the biomechanical model of the upper limb describing the infraspinatus by a single bundle could not solve the complete motion of anterior flexion. Despite the small differences in the magnitude of the forces predicted by the biomechanical models with more complex muscular systems, in general, there are no significant variations in the muscular activity of equivalent muscles.
机译:在优化技术的支持下,应用于肌肉骨骼模型的逆动力学技术被广泛用于估算肌肉和关节的反作用力。但是,多余的肌肉力分配问题的解决方案对所用模型的细节和建模假设敏感。这项研究提出了四种不同的上肢生物力学模型,这些模型通过束和肌肉路径使肌肉离散程度不同,并且它们对估计肌肉和关节反作用力具有影响。通过使描述肌肉代谢能量消耗的目标函数最小化,解决了使用视频成像获取的外展和前屈运动的肌肉力量分配问题。在寻找最佳解决方案的同时,不仅满足了运动方程,而且还保留了盂肱和肩or囊关节的稳定性。结果表明,较低的肌肉离散度提供了有关肌肉力量的更差的估计。此外,在分析中与关节相关的肌肉离散性差,限制了生物力学模型的适用性。在这项研究中,上肢的生物力学模型通过单个束描述了鼻下肌不能解决前屈的完整运动。尽管具有更复杂的肌肉系统的生物力学模型所预测的力量大小差异不大,但一般而言,等效肌肉的肌肉活动没有明显变化。

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