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首页> 外文期刊>Journal of Biomechanics >A 3D lower limb musculoskeletal model for simultaneous estimation of musculo-tendon, joint contact, ligament and bone forces during gait
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A 3D lower limb musculoskeletal model for simultaneous estimation of musculo-tendon, joint contact, ligament and bone forces during gait

机译:一个3D下肢肌肉骨骼模型,用于同时估计步态期间的肌腱,关节接触,韧带和骨力

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摘要

Musculo-tendon forces and joint reaction forces are typically estimated using a two-step method, computing first the musculo-tendon forces by a static optimization procedure and then deducing the joint reaction forces from the force equilibrium. However, this method does not allow studying the interactions between musculo-tendon forces and joint reaction forces in establishing this equilibrium and the joint reaction forces are usually overestimated. This study introduces a new 3D lower limb musculoskeletal model based on a one-step static optimization procedure allowing simultaneous musculo-tendon, joint contact, ligament and bone forces estimation during gait. It is postulated that this approach, by giving access to the forces transmitted by these musculoskeletal structures at hip, tibiofemoral, patellofemoral and ankle joints, modeled using anatomically consistent kinematic models, should ease the validation of the model using joint contact forces measured with instrumented prostheses. A blinded validation based on four datasets was made under two different minimization conditions (i.e., C1 - only musculo-tendon forces are minimized, and C2 - musculo-tendon, joint contact, ligament and bone forces are minimized while focusing more specifically on tibiofemoral joint contacts). The results show that the model is able to estimate in most cases the correct timing of musculo-tendon forces during normal gait (i.e., the mean coefficient of active/inactive state concordance between estimated musculo-tendon force and measured EMG envelopes was C1: 65.87% and C2: 60.46%). The results also showed that the model is potentially able to well estimate joint contact, ligament and bone forces and more specifically medial (i.e., the mean RMSE between estimated joint contact force and in vivo measurement was C1: 1.14BW and C2: 0.39BW) and lateral (i.e., C1: 0.65BW and C2: 0.28BW) tibiofemoral contact forces during normal gait. However, the results remain highly influenced by the optimization weights that can bring to somewhat aphysiological musculo-tendon forces.
机译:通常使用两步法估算肌腱力和关节反作用力,首先通过静态优化程序计算肌腱力,然后从力平衡推导出关节反作用力。然而,该方法不允许研究在建立该平衡时肌肉-肌腱力和关节反作用力之间的相互作用,并且通常高估了关节反作用力。这项研究介绍了一种基于单步静态优化程序的新3D下肢肌肉骨骼模型,该模型允许在步态中同时估计肌肉腱,关节接触,韧带和骨力。据推测,这种方法通过利用解剖学上一致的运动学模型来模拟髋,胫股,pa股和踝关节的这些肌肉骨骼结构传递的力,应该可以简化通过器械假体测量的关节接触力对模型的验证。 。在两个不同的最小化条件下(即C1-仅将肌腱力最小化,C2-肌腱,关节接触,韧带和骨骼力最小化),基于四个数据集进行了盲法验证,同时更着重于胫股关节联系人)。结果表明,该模型能够在大多数情况下估算正常步态期间肌腱力的正确时机(即,估算的肌腱力与测得的EMG包络之间的活动/非活动状态一致性的平均系数为C1:65.87 %和C2:60.46%)。结果还表明,该模型可能能够很好地估计关节接触力,韧带和骨力,尤其是内侧(即,估计的关节接触力与体内测量值之间的平均RMSE为C1:1.14BW和C2:0.39BW)正常步态期间的横向和横向(即C1:0.65BW和C2:0.28BW)胫股接触力。但是,结果仍然受到优化权重的极大影响,这些权重会带来一些生理上的肌肉肌腱力。

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