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Automatic detection of collisions in elite level rugby union using a wearable sensing device

机译:使用可穿戴的感应装置自动检测精英级别橄榄球联合会中的碰撞

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摘要

Elite rugby union teams currently employ the latest technology to monitor and evaluate the physical demands of training and games on their players. Tackling has been shown to be the most common cause of injury in rugby union, yet current player monitoring technology does not effectively evaluate player tackling measurements. Currently, to evaluate measurements specific to player tackles, a time-consuming manual analysis of player sensor data and video footage is required. The purpose of this work is to investigate tackle modeling techniques which can be utilised to automatically detect player tackles and collisions using sensing technology already being used by elite international and club level rugby union teams. This paper discusses issues relevant to automatic tackle analysis, describes a technique to detect tackles using sensing data and validates the technique by comparing automatically detected collisions to manually labeled collisions using data from elite club and international level players. The results of the validation show that the system is able to consistently identify collisions with very few false positives and false negatives, achieving a recall and precision rating of 0.933 and 0.958, respectively. The aim is that the automatically detected tackles can provide coaching, medical and strength and conditioning staff with objective tackle-specific measurements, in real time, which can be used in injury prevention and rehabilitation strategies.
机译:精英橄榄球工会团队目前采用最新技术来监视和评估其球员对训练和比赛的身体需求。业已证明,打球是造成橄榄球联盟受伤的最常见原因,但是当前的球员监视技术不能有效地评估球员的打球量度。当前,要评估特定于球员铲球的度量,需要对球员传感器数据和视频素材进行费时的手动分析。这项工作的目的是研究铲球建模技术,该技术可用于使用精英国际和俱乐部级橄榄球工会团队已经使用的传感技术自动检测球员的铲球和碰撞。本文讨论了与自动铲球分析有关的问题,描述了一种使用传感数据检测铲球的技术,并通过使用来自精英俱乐部和国际水平球员的数据将自动检测到的碰撞与手动标记的碰撞进行比较来验证该技术。验证结果表明,该系统能够始终如一地识别几乎没有误报和误报的碰撞,从而使召回率和精确度分别达到0.933和0.958。目的是自动检测到的铲球可以为教练,医疗,力量和调节人员实时提供针对铲球的客观测量结果,可用于伤害预防和康复策略。

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