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Upper limb movement analysis via marker tracking with a single-camera system

机译:通过单摄像头系统的标记跟踪进行上肢运动分析

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Optical motion capture systems have been widely adopted for human motion analysis in stroke rehabilitation because of real-time processing and high-accuracy features. However, these systems require a large laboratory space and multiple cameras and thus can be expensive and not transportable. In this paper, we propose a portable, cheap, single-camera motion analysis system to implement upper limb movement analysis. The proposed system consists of video acquisition, camera calibration, marker tracking, autonomous joint angle calculation, visualization, validation and classification. The validation with a state-of-the-art optical motion analysis system using Bland-Altman plot, a typical clinical measure, indicates that the proposed system can accurately capture elbow movement, trunk-tilt, and shoulder movement for diagnosis. Furthermore, the volunteers are explicitly classified into healthy and stroke groups via a support vector machine trained on statistics of the trunk-tilt and shoulder movement. Experimental results show that the proposed system can accurately capture the upper limb movement patterns, automatically classify stroke survivors using ordinal scale classification of upper limb impairment, and offer a convenient and inexpensive solution for upper limb movement analysis.
机译:由于实时处理和高精度功能,光学运动捕捉系统已被广泛用于中风康复中的人体运动分析。但是,这些系统需要较大的实验室空间和多个摄像头,因此价格昂贵且不可运输。在本文中,我们提出了一种便携式,便宜的单摄像机运动分析系统,以实现上肢运动分析。拟议的系统包括视频采集,摄像机校准,标记跟踪,自主关节角度计算,可视化,验证和分类。使用Bland-Altman图(一种典型的临床测量方法)的最新光学运动分析系统进行的验证表明,所提出的系统可以准确地捕获肘部运动,躯干倾斜和肩部运动以进行诊断。此外,通过对躯干倾斜和肩膀运动统计数据进行训练的支持向量机,将志愿者明确分为健康组和中风组。实验结果表明,所提出的系统能够准确捕获上肢运动模式,使用上肢损伤的有序尺度分类对卒中幸存者进行自动分类,并为上肢运动分析提供方便且廉价的解决方案。

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