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Training Design Performance Analysis and Talent Identification—A Systematic Review about the Most Relevant Variables through the Principal Component Analysis in Soccer Basketball and Rugby

机译:培训设计绩效分析和人才识别 - 通过足球篮球和橄榄球的主要成分分析来系统审查最相关的变量

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摘要

Since the accelerating development of technology applied to team sports and its subsequent high amount of information available, the need for data mining leads to the use of data reduction techniques such as Principal Component Analysis (PCA). This systematic review aims to identify determinant variables in soccer, basketball and rugby using exploratory factor analysis for, training design, performance analysis and talent identification. Three electronic databases (PubMed, Web of Science, SPORTDiscus) were systematically searched and 34 studies were finally included in the qualitative synthesis. Through PCA, data sets were reduced by 75.07%, and 3.9 ± 2.53 factors were retained that explained 80 ± 0.14% of the total variance. All team sports should be analyzed or trained based on the high level of aerobic capacity combined with adequate levels of power and strength to perform repeated high-intensity actions in a very short time, which differ between team sports. Accelerations and decelerations are mainly significant in soccer, jumps and landings are crucial in basketball, and impacts are primarily identified in rugby. Besides, from these team sports, primary information about different technical/tactical variables was extracted such as (a) soccer: occupied space, ball controls, passes, and shots; (b) basketball: throws, rebounds, and turnovers; or (c) rugby: possession game pace and team formation. Regarding talent identification, both anthropometrics and some physical capacity measures are relevant in soccer and basketball. Although overall, since these variables have been identified in different investigations, further studies should perform PCA on data sets that involve variables from different dimensions (technical, tactical, conditional).
机译:自加快技术开发适用于团队体育及其随后可用的大量信息,因此对数据挖掘的需求导致使用数据减少技术,如主成分分析(PCA)。该系统审查旨在使用探索性因子分析,培训设计,性能分析和人才识别来识别足球,篮球和橄榄球的决定因子。系统地搜索了三个电子数据库(PubMed,Sportiscus),并在定性合成中最终包括34项研究。通过PCA,数据集减少了75.07%,保留了3.9±2.53因素,占总方差的80±0.14%。所有团队体育都应根据高水平的有氧能力进行分析或培训,加上足够的力量和力量,在很短的时间内进行重复的高强度行动,在团队体育之间有所不同。加速和减速主要在足球方面主要是重要的,跳跃和着陆在篮球中至关重要,并且主要在橄榄球中得到了影响。此外,从这些团队体育中,提取了关于不同技术/战术变量的主要信息,例如(a)足球:占领空间,球控制,通过和镜头; (b)篮球:投掷,篮板,失误;或(c)橄榄球:拥有比赛步伐和团队形成。关于人才鉴定,人类化学方法和一些物理能力措施都在足球和篮球方面是相关的。尽管总体而言,由于这些变量已经在不同的调查中确定,因此进一步的研究应该在涉及来自不同尺寸的变量的数据集上执行PCA(技术,战术,条件)。

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