Finding repeatable progressive pass clusters and application in international football

Pub Date : 2024-01-22 DOI:10.3233/jsa-220732
Bikash Deb, Javier Fernández Navarro, A. McRobert, Ian Jarman
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Abstract

Progressive passing in football (soccer) is a key aspect in creating positive possession outcomes. Whilst this is well established, there is not a consistent way to describe the different types of progressive passes. We expand on the previous literature, providing a complete methodological approach to progressive pass clustering from selection of the number of clusters (k) to risk-reward profiling of these progressive pass types. In this paper the Separation and Concordance (SeCo) framework is utilised to provide a process to analyse k-means clustering solutions in a more repeatable way. The results demonstrate that we can find stable progressive pass clusters in International Football and their efficacy with progressive passes “Mid Central to Mid Half Space” in build-up and “Mid Half Space to Final Central” into the final 3rd having the best balance between risk (turnover) and reward (shot created) in the subsequent possession. This allowed for opposition profiling of player and team patterns in different phases of play, with a case study presented for the teams in the Last 16 of the 2022 World Cup.
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寻找可重复的渐进式传球群并应用于国际足球
在足球运动中,渐进式传球是创造积极控球结果的一个关键环节。虽然这一点已经得到公认,但并没有一种一致的方法来描述不同类型的渐进式传球。我们对之前的文献进行了扩展,为渐进式传球聚类提供了一套完整的方法论,从聚类数量(k)的选择到这些渐进式传球类型的风险回报分析。本文利用分离与一致性(SeCo)框架,提供了一种以更可重复的方式分析 k 均值聚类解决方案的方法。结果表明,我们可以在国际足球比赛中找到稳定的渐进式传球聚类及其功效,其中 "中场中央到中场半空 "的渐进式传球和 "中场半空到终场中央 "的渐进式传球在随后的控球中风险(翻盘)和回报(创造射门机会)之间达到了最佳平衡。这样就可以对不同比赛阶段的球员和球队模式进行分析,并对 2022 年世界杯 16 强球队进行了案例研究。
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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