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COMBAT SPORTS ANALYTICS: BOXING PUNCH CLASSIFICATION USING OVERHEAD DEPTH IMAGERY

机译:战斗体育分析:使用架空深度图像的拳击冲理分类

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In competitive combat sporting environments like boxing, the statistics on a boxer's performance, including the amount and type of punches thrown, provide a valuable source of data and feedback which is routinely used for coaching and performance improvement purposes. This paper presents a robust framework for the automatic classification of a boxer's punches. Overhead depth imagery is employed to alleviate challenges associated with occlusions, and robust body-part tracking is developed for the noisy time-of-flight sensors. Punch recognition is addressed through both a multi-class SVM and Random Forest classifiers. A coarse-to-fine hierarchical SVM classifier is presented based on prior knowledge of boxing punches. This framework has been applied to shadow boxing image sequences taken at the Australian Institute of Sport with 8 elite boxers. Results demonstrate the effectiveness of the proposed approach, with the hierarchical SVM classifier yielding a 96% accuracy, signifying its suitability for analysing athletes punches in boxing bouts.
机译:在竞争对手的运动环境中,如拳击等拳击手,有关拳击手的统计数据,包括抛出的拳击数量,包括拳击的数量和类型,提供了一个有价值的数据来源和反馈来源,这是常规用于辅导和性能提高目的的反馈来源。本文介绍了拳击手拳击自动分类的强大框架。使用架空深度图像来缓解与闭塞相关的挑战,并且为嘈杂的飞行时间传感器开发了鲁棒体部件跟踪。通过多级SVM和随机林分类器来解决打孔识别。基于拳击拳头的先验知识来提出粗略分层SVM分类器。该框架已应用于澳大利亚运动学院的阴影拳击图像序列,其中8名精英拳击手。结果证明了所提出的方法的有效性,分层SVM分类器的准确性为96%,表示其适合分析拳击拳击中的运动员拳击。

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