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Detection of Individual Ball Possession in Soccer

机译:检测足球中的单个球占有权

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While ball possession usually is considered on team level, a model on player level brings several advantages. We calculate ball possession and control statistics for all players as well as new ball control heat maps to evaluate the players' performances. Furthermore, a basis for detecting events and tactical structure becomes available. To derive individual ball possession from spatio-temporal data, we present an automatic approach, based both on physical knowledge and machine learning techniques. Moreover, we introduce different ball possession definitions and algorithms to model various grades of ball control. When applied to flawless raw data, the algorithms show precision and recall ratios between 80 and 92 %. With approximately four percentage points less in uncorrected data, the presented algorithms are also reliable in real-world scenarios.
机译:虽然球占有人通常被认为是团队层面,但一个关于球员水平的模型带来了几个优势。我们计算所有玩家的球占有和控制统计,以及新的球控制热图,以评估玩家的性能。此外,可以获得检测事件和战术结构的基础。为了从时空数据中获得单独的球占有,我们介绍了一种自动方法,无论是在物理知识和机器学习技术。此外,我们介绍了不同的球占有定义和算法,以模拟各种球控制。当应用于完美的原始数据时,算法显示在80%和92%之间的精度和记忆比。在未校正数据中减少约4个百分点,所呈现的算法在现实世界方案中也是可靠的。

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