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人体运动和肌肉功能的生物力学分析实时系统。

A real-time system for biomechanical analysis of human movement and muscle function.

机构信息

Department of Mechanical Engineering, Cleveland State University, 1960 E. 24th Street, SH 232, Cleveland, OH 44115, USA.

出版信息

Med Biol Eng Comput. 2013 Oct;51(10):1069-77. doi: 10.1007/s11517-013-1076-z. Epub 2013 Jul 25.

Abstract

Mechanical analysis of movement plays an important role in clinical management of neurological and orthopedic conditions. There has been increasing interest in performing movement analysis in real-time, to provide immediate feedback to both therapist and patient. However, such work to date has been limited to single-joint kinematics and kinetics. Here we present a software system, named human body model (HBM), to compute joint kinematics and kinetics for a full body model with 44 degrees of freedom, in real-time, and to estimate length changes and forces in 300 muscle elements. HBM was used to analyze lower extremity function during gait in 12 able-bodied subjects. Processing speed exceeded 120 samples per second on standard PC hardware. Joint angles and moments were consistent within the group, and consistent with other studies in the literature. Estimated muscle force patterns were consistent among subjects and agreed qualitatively with electromyography, to the extent that can be expected from a biomechanical model. The real-time analysis was integrated into the D-Flow system for development of custom real-time feedback applications and into the gait real-time analysis interactive lab system for gait analysis and gait retraining.

摘要

运动的力学分析在神经和骨科疾病的临床管理中起着重要作用。人们越来越感兴趣的是实时进行运动分析,以便为治疗师和患者提供即时反馈。然而,迄今为止,此类工作仅限于单关节运动学和动力学。在这里,我们提出了一个名为人体模型 (HBM) 的软件系统,该系统可实时计算具有 44 个自由度的全身模型的关节运动学和动力学,并估计 300 个肌肉元素的长度变化和力。HBM 用于分析 12 名健康受试者在步态中的下肢功能。在标准 PC 硬件上,处理速度超过 120 个样本/秒。关节角度和力矩在组内一致,并且与文献中的其他研究一致。估计的肌肉力量模式在受试者之间一致,并与肌电图定性一致,从生物力学模型的角度来看,可以预期到这种一致性。实时分析被集成到 D-Flow 系统中,用于开发定制的实时反馈应用程序,并集成到步态实时分析交互式实验室系统中,用于步态分析和步态再训练。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ffc9/3751375/f3080dcc8fff/11517_2013_1076_Fig1_HTML.jpg

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