Baseball Swing Pose Estimation Using OpenPose

Yung-Che Li, Ching-Tang Chang, Chin-Chang Cheng, Yu-Len Huang
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引用次数: 4

Abstract

This study explores usefulness of using the human pose estimation technique in sport. Since the expansion of deep learning techniques, human pose estimation became an important field of computer vision, it can be used in many applications like pose analysis, correction, training session, etc. The proposed method is used to estimate whether a baseball hitter performs a good swing. The hitter's limb coordinates are detected by the OpenPose model which is a real time multi-person detection system. The coordinates are used to calculate hip distance and limb angles, then the distance and angles are applied with our custom rules. The custom rules are made by researches and coaching experience in order to evaluate the swing of baseball hitter. Each rule is awarded differ points by its importance which we assumed. The goal of this study is using technology assistance in sport coaching scenario.
使用OpenPose的棒球挥拍姿势估计
本研究探讨了在运动中使用人体姿势估计技术的实用性。随着深度学习技术的发展,人体姿态估计成为计算机视觉的一个重要领域,可用于姿态分析、姿态校正、姿态训练等。所提出的方法用于评估棒球击球手是否有良好的挥击。利用OpenPose模型对击球手的肢体坐标进行检测,该模型是一种实时多人检测系统。坐标用于计算臀部距离和肢体角度,然后距离和角度应用于我们的自定义规则。为了对棒球击球手的挥棒进行评价,本文根据研究和教练经验制定了自定义规则。每个规则根据我们假设的重要性被授予不同的分数。本研究的目的是在体育教练场景中使用技术辅助。
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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