Experiment and analysis of computer vision-based wrist radial and ulnar deviation exercises

M. Bakar, R. Samad, Dwi Pebrianti, M. Mustafa, N. Abdullah
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引用次数: 2

Abstract

The exercise and rehabilitation based on computer vision system have many benefits and it has attracted the interest of researchers in the computer vision community. The researchers have kept on improving the existing methods by creating novel method or developing new algorithms in image processing and artificial intelligence. This paper presents the experiment and analysis of wrist radial and ulnar deviation exercises system based on computer vision method. These exercises are a part of the upper limb exercise for the rehabilitation program. The wrist radial and ulnar deviation exercises are benefited to improve the mobility of the hand and to reduce the pain. The hand tracking, center of palm detection and fingertips detection and Kinect sensor are used in this exercise system. This system guides the user to perform the radial and ulnar deviation movements through the user's display window. The deviation angle of each movement is measured and recorded automatically. The experimental result shows that the average deviation angle for five users in wrist radial and ulnar deviation experiment is 23.4° for the radial motion and 35.8° for the ulnar motion. These measurements are almost similar to the reference value of range of motion (ROM) standard.
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基于计算机视觉的腕部桡尺偏移练习实验与分析
基于计算机视觉系统的运动与康复具有许多优点,引起了计算机视觉界研究人员的兴趣。研究人员通过在图像处理和人工智能领域创造新方法或开发新算法,不断改进现有方法。本文介绍了基于计算机视觉方法的腕尺桡偏运动系统的实验与分析。这些练习是上肢康复训练的一部分。腕桡尺偏操有助于提高手的活动能力,减轻疼痛。该运动系统采用了手部跟踪、掌心检测、指尖检测和Kinect传感器。该系统通过用户显示窗口引导用户进行桡骨和尺骨偏移运动。自动测量并记录每次运动的偏离角。实验结果表明,5名用户在腕尺桡侧偏移实验中,桡侧运动的平均偏移角度为23.4°,尺侧运动的平均偏移角度为35.8°。这些测量值几乎与运动范围(ROM)标准的参考值相似。
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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