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将声音与深度神经网络相结合用于运动科学中的跳跃高度测量。

Combining Sound and Deep Neural Networks for the Measurement of Jump Height in Sports Science.

机构信息

Institute of Telecommunications and Multimedia Applications, Universitat Politecnica de Valencia, 46022 Valencia, Spain.

University Institute for Computing Research, University of Alicante, 03690 Alicante, Spain.

出版信息

Sensors (Basel). 2024 May 29;24(11):3505. doi: 10.3390/s24113505.

Abstract

Jump height tests are employed to measure lower-limb muscle power of athletic and non-athletic populations. The most popular instruments for this purpose are jump mats and, in recent years, smartphone apps, which compute jump height through the manual annotation of video recordings and recently automatically using the sound produced during the jump to extract the flight time. In a previous work, the afore-mentioned sound systems were presented by the authors in which the take-off and landing events from the audio recordings of jump executions were obtained using classical signal processing. In this work, a more precise, noise-immune, and robust system, capable of working in the most unfavorable environments, is presented. The system uses a deep neural network trained specifically for this purpose. More than 300 jumps were recorded to train and validate the network performance. The ground truth was a jump mat, providing a slightly better accuracy in quiet and medium quiet environments but excellent accuracy in noisy and complicated ones. The developed audio-based system is a trustworthy instrument for measuring jump height accurately in any kind of environment, providing a perfect measurement tool that can be accessed through a mobile phone in the form of an app.

摘要

跳高技术用于测量运动员和非运动员群体的下肢肌肉力量。为此目的最流行的仪器是跳垫,近年来,智能手机应用程序也可以通过手动注释视频记录来计算跳高技术,最近还可以使用跳跃时产生的声音自动提取飞行时间。在之前的工作中,作者提出了上述声音系统,其中使用经典信号处理从跳跃执行的音频记录中获得起跳和着陆事件。在这项工作中,提出了一种更精确、抗噪和鲁棒的系统,能够在最不利的环境中工作。该系统使用专门为此目的训练的深度神经网络。记录了 300 多次跳跃以训练和验证网络性能。真实情况是使用跳垫,在安静和中等安静的环境中提供了稍高的准确性,但在嘈杂和复杂的环境中具有出色的准确性。开发的基于音频的系统是一种可信赖的仪器,可在任何环境中准确测量跳跃高度,提供了一种完美的测量工具,可以通过智能手机以应用程序的形式访问。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dd37/11175252/4dc037c4d46a/sensors-24-03505-g001.jpg

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