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快速动力学跟踪模拟:在上肢和肩部建模中的应用。

Fast Forward-Dynamics Tracking Simulation: Application to Upper Limb and Shoulder Modeling.

出版信息

IEEE Trans Biomed Eng. 2019 Feb;66(2):335-342. doi: 10.1109/TBME.2018.2838020. Epub 2018 May 17.

Abstract

OBJECTIVE

Musculoskeletal simulation can be used to estimate muscle forces in clinical movement studies. However, such simulations typically only target movement measurements and are not applicable to force exertion tasks which are commonly used in rehabilitation therapy. Simulations can also produce nonphysiological joint forces or be too slow for real-time clinical applications, such as rehabilitation with real-time feedback. The objective of this study is to propose and evaluate a new formulation of forward-dynamics assisted tracking simulation that incorporates measured reaction forces as targets or constraints without any additional computational cost.

METHODS

We illustrate our method with idealized proof-of-concept models and evaluate it with two upper limb cases: Tracking of hand reaction forces during an isometric force-generation task and constraining glenohumeral joint reaction forces for stability during arm elevation.

RESULTS

We show that the addition of reaction force optimization terms within our simulations generates plausible muscle force predictions for these tasks, which are strongly related to reaction forces in addition to movement. Execution times for all models tested were not different when run with or without the reaction force optimization term, ensuring that the simulations are fast enough for real-time clinical applications.

CONCLUSION

Our novel reaction force optimization term leads to more realistic shoulder reaction forces, without any additional computational costs.

SIGNIFICANCE

Our formulation is not only valuable for shoulder simulations, but could be used in various clinical situations (e.g., for different joints and rehabilitation therapy tasks) where the direction and/or magnitude of reaction forces are of interest.

摘要

目的

肌肉骨骼模拟可用于估计临床运动研究中的肌肉力量。然而,这种模拟通常仅针对运动测量,不适用于康复治疗中常用的力施加任务。模拟还可能产生非生理关节力,或者对于实时临床应用(例如具有实时反馈的康复)来说太慢。本研究的目的是提出并评估一种新的正向动力学辅助跟踪模拟公式,该公式将测量的反作用力作为目标或约束,而无需任何额外的计算成本。

方法

我们使用理想化的概念验证模型来说明我们的方法,并通过两个上肢病例对其进行评估:在等长力产生任务中跟踪手部反作用力,以及在抬高手臂时限制盂肱关节反作用力以保持稳定性。

结果

我们表明,在我们的模拟中添加反作用力优化项会为这些任务生成合理的肌肉力量预测,这些预测与运动以外的反作用力密切相关。在运行时添加或不添加反作用力优化项时,所有测试模型的执行时间都没有差异,从而确保模拟速度足够快,可用于实时临床应用。

结论

我们的新型反作用力优化项可产生更真实的肩部反作用力,而不会增加任何额外的计算成本。

意义

我们的公式不仅对肩部模拟有价值,而且可以在各种临床情况下使用(例如,对于不同的关节和康复治疗任务),其中反作用力的方向和/或大小是感兴趣的。

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