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Four-joint motion data based posture classification for immersive postural correction system

机译:沉浸式姿势校正系统基于四关节运动数据的姿势分类

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摘要

In the modern age, it is important for people to maintain a good sitting posture because they spend long hours sitting. Posture correction treatment requires a great deal of time and expenses with continuous observation by a specialist. Therefore, there is a need for a system with which users can judge and correct their postures on their own. In this paper, we propose a four joint-based motion capture system for building immersive postural correction system. The system collects the subject's postures, and features are extracted from the collected data to build a database. The data in the DB are classified into normal and abnormal postures after posture learning using the K-means clustering algorithm. An experiment was performed to classify the posture from the joints' rotation angles and positions; the normal posture judgment reached a success rate of 99.79 %. This result suggests that the features of the four joints can be used to judge and help correct a user's posture through application to a spinal disease prevention system in the future.
机译:在现代,人们要保持良好的坐姿很重要,因为他们要长时间坐着。姿势矫正治疗需要大量时间和费用,并且需要专家的持续观察。因此,需要一种系统,通过该系统用户可以自行判断和校正其姿势。在本文中,我们提出了一种基于四关节的运动捕捉系统,用于构建沉浸式姿势校正系统。该系统收集对象的姿势,并从收集的数据中提取特征以建立数据库。使用K均值聚类算法进行姿势学习后,DB中的数据分为正常姿势和异常姿势。进行了实验,根据关节的旋转角度和位置对姿势进行分类。正常姿势判断成功率为99.79%。该结果表明,将来通过应用到脊柱疾病预防系统中,四个关节的特征可用于判断和帮助纠正用户的姿势。

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