Computer Vision Solutions for Range of Motion Assessment

J. Aleksic
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Abstract

Joint range of motion (ROM) is an important indicator of physical functionality and musculoskeletal health. In sports, athletes require adequate levels of joint mobility to minimize the risk of injuries and maximize performance, while in rehabilitation, restoring joint ROM is essential for faster recovery and improved physical function. Traditional methods for measuring ROM include goniometry, inclinometry and visual estimation; all of which are limited in accuracy due to the subjective nature of the assessment. With the rapid development of technology, new systems based on computer vision are continuously introduced as a possible solution for more objective and accurate measurements of the range of motion. Therefore, this article aimed to evaluate novel computer vision-based systems based on their accuracy and practical applicability for a range of motion assessment. The review covers a variety of systems, including motion-capture systems (2D and 3D cameras), RGB-Depth cameras, commercial software systems and smartphone apps. Furthermore, this article also highlights the potential limitations of these systems and explores their potential future applications in sports and rehabilitation.
运动范围评估的计算机视觉解决方案
关节活动范围(ROM)是身体功能和肌肉骨骼健康的重要指标。在运动中,运动员需要足够的关节活动水平,以最大限度地减少受伤的风险,最大限度地提高表现,而在康复中,恢复关节ROM对于更快地恢复和改善身体功能至关重要。传统的测量ROM的方法有测角法、测斜法和目测法;由于评估的主观性质,所有这些都在准确性上受到限制。随着技术的快速发展,基于计算机视觉的新系统不断被引入,作为一种可能的解决方案,可以更客观、更准确地测量运动范围。因此,本文旨在评估基于计算机视觉的新型系统在一系列运动评估中的准确性和实用性。该报告涵盖了各种系统,包括动作捕捉系统(2D和3D相机)、RGB-Depth相机、商业软件系统和智能手机应用程序。此外,本文还强调了这些系统的潜在局限性,并探讨了它们在运动和康复方面的潜在未来应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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