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Surf Session Events’ Profiling Using Smartphones’ Embedded Sensors

机译:使用智能手机的嵌入式传感器对Surf Session Events进行分析

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摘要

The increasing popularity of water sports—surfing, in particular—has been raising attention to its yet immature technology market. While several available solutions aim to characterise surf session events, this can still be considered an open issue, due to the low performance, unavailability, obtrusiveness and/or lack of validation of existing systems. In this work, we propose a novel method for wave, paddle, sprint paddle, dive, lay, and sit events detection in the context of a surf session, which enables its entire profiling with 88.1% accuracy for the combined detection of all events. In particular, waves, the most important surf event, were detected with second precision with an accuracy of 90.3%. When measuring the number of missed and misdetected wave events, out of the entire universe of 327 annotated waves, wave detection performance achieved 97.5% precision and 94.2% recall. These findings verify the precision, validity and thoroughness of the proposed solution in constituting a complete surf session profiling system, suitable for real-time implementation and with market potential.
机译:水上运动(尤其是冲浪)的日益普及,一直引起人们对其尚未成熟的技术市场的关注。尽管有几种可用的解决方案旨在表征冲浪会话事件,但由于性能低,不可用,不引人注目和/或缺乏对现有系统的验证,这仍然可以视为一个公开问题。在这项工作中,我们提出了一种用于在冲浪会话中检测波浪,桨,短跑桨,俯冲,躺下和坐下事件的新颖方法,该方法能够以88.1%的准确度对整个事件进行概要分析,以对所有事件进行组合检测。特别是,最重要的冲浪事件海浪以第二精度被检测到,精度为90.3%。在测量327个带注释的波的全部范围中,测量错过和未检测到的波事件的数量时,波检测性能可达到97.5%的精度和94.2%的查全率。这些发现证明了所提出的解决方案在构成完整的冲浪会话性能分析系统方面的准确性,有效性和彻底性,适用于实时实施并具有市场潜力。

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