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Performance analysis and prediction in triathlon

机译:铁人三项运动成绩分析与预测

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摘要

Performance in triathlon is dependent upon factors that include somatotype, physiological capacity, technical proficiency and race strategy. Given the multidisciplinary nature of triathlon and the interaction between each of the three race components, the identification of target split times that can be used to inform the design of training plans and race pacing strategies is a complex task. The present study uses machine learning techniques to analyse a large database of performances in Olympic distance triathlons (2008-2012). The analysis reveals patterns of performance in five components of triathlon (three race "legs" and two transitions) and the complex relationships between performance in each component and overall performance in a race. The results provide three perspectives on the relationship between performance in each component of triathlon and the final placing in a race. These perspectives allow the identification of target split times that are required to achieve a certain final place in a race and the opportunity to make evidence-based decisions about race tactics in order to optimise performance.
机译:铁人三项的表现取决于各种因素,包括体型,生理能力,技术水平和种族策略。考虑到铁人三项的多学科性质以及三个种族组成部分之间的相互作用,确定可用于告知训练计划和种族起搏策略设计的目标分段时间是一项复杂的任务。本研究使用机器学习技术来分析奥林匹克距离铁人三项(2008-2012)成绩的大型数据库。该分析揭示了铁人三项运动的五个组成部分(三个种族的“腿”和两个过渡)的表现模式,以及每个组成部分的表现与一场比赛的总体表现之间的复杂关系。结果为铁人三项赛各组成部分的表现与比赛的最终排名之间的关系提供了三种观点。这些观点可以确定在比赛中取得特定最终位置所需要的目标分段时间,并有机会针对比赛策略制定基于证据的决策,以优化性能。

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