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最大摄氧量、功率管理与跑步速度提升的关系:通过聚类分析实现步态识别。

The Relationship between VOmax, Power Management, and Increased Running Speed: Towards Gait Pattern Recognition through Clustering Analysis.

机构信息

Embedded Systems and Artificial Intelligence Group, Universidad Cardenal Herrera-CEU, CEU Universities, 46115 Valencia, Spain.

Department of Physiotherapy, Universidad Cardenal Herrera-CEU, CEU Universities, 46115 Valencia, Spain.

出版信息

Sensors (Basel). 2021 Apr 1;21(7):2422. doi: 10.3390/s21072422.

Abstract

Triathlon has become increasingly popular in recent years. In this discipline, maximum oxygen consumption (VOmax) is considered the gold standard for determining competition cardiovascular capacity. However, the emergence of wearable sensors (as Stryd) has drastically changed training and races, allowing for the more precise evaluation of athletes and study of many more potential determining variables. Thus, in order to discover factors associated with improved running efficiency, we studied which variables are correlated with increased speed. We then developed a methodology to identify associated running patterns that could allow each individual athlete to improve their performance. To achieve this, we developed a correlation matrix, implemented regression models, and created a heat map using hierarchical cluster analysis. This highlighted relationships between running patterns in groups of young triathlon athletes and several different variables. Among the most important conclusions, we found that high VOmax did not seem to be significantly correlated with faster speed. However, faster individuals did have higher power per kg, horizontal power, stride length, and running effectiveness, and lower ground contact time and form power ratio. VOmax appeared to strongly correlate with power per kg and this seemed to indicate that to run faster, athletes must also correctly manage their power.

摘要

近年来,铁人三项运动越来越受欢迎。在这项运动中,最大摄氧量(VOmax)被认为是衡量比赛心血管能力的金标准。然而,可穿戴传感器(如 Stryd)的出现彻底改变了训练和比赛方式,使运动员的评估更加精确,也可以研究更多潜在的决定因素变量。因此,为了发现与提高跑步效率相关的因素,我们研究了哪些变量与速度的提高相关。然后,我们开发了一种方法来识别相关的跑步模式,使每个运动员都能提高他们的表现。为了实现这一目标,我们开发了一个相关矩阵,实施了回归模型,并使用层次聚类分析创建了一个热图。这突出了年轻铁人三项运动员群体中跑步模式与几个不同变量之间的关系。最重要的结论之一是,我们发现高 VOmax 似乎与更快的速度没有显著相关性。然而,速度较快的运动员的每公斤功率、水平功率、步长和跑步效率更高,地面接触时间和形态功率比更低。VOmax 与每公斤功率呈强相关,这似乎表明要想跑得更快,运动员还必须正确管理他们的力量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/138d/8037243/22c47fd399f0/sensors-21-02422-g001.jpg

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