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Classification of kinematic golf putt data with emphasis on feature selection

机译:运动型高尔夫推杆数据的分类,重点在于特征选择

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The complex movement sequences of golf require supporting tools for players and coaches alike. We developed a system that classifies the experience level and trained it with data from an inertial sensor on the club head. Based on 315 golf putts from eleven subjects the system differentiated between experienced and unexperienced players with a classification rate of 86.1%. To improve the classification system and obtain discriminant features we additionally integrated a feature selection step. We compared different selection approaches and concluded that a leave-subject-out feature selection was the appropriate approach to predict the true performance of a live system. The selected features can be fed back to coaches and help them to guide players to a better putting technique.
机译:高尔夫球的复杂运动过程需要球员和教练的辅助工具。我们开发了一种对体验水平进行分类的系统,并使用来自杆头上惯性传感器的数据对其进行了训练。根据来自11个受试者的315个高尔夫球推杆,该系统将有经验和无经验的球员区分开,分类率为86.1%。为了改进分类系统并获得判别特征,我们另外集成了特征选择步骤。我们比较了不同的选择方法,并得出结论,离开主体功能选择是预测实时系统真实性能的适当方法。选定的功能可以反馈给教练,并帮助他们指导球员采用更好的推杆技巧。

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