PADELVIC: Multicamera videos and motion capture data of an amateur padel match

Mohammadreza Javadiha, Carlos Andujar, Michele Calvanese, E. Lacasa, Jordi Moyés, J. L. Pontón, Antoni Susin, Jiabo Wang
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Abstract

Recent advances in computer vision and deep learning techniques have opened new possibilities regarding the automatic labeling of sport videos. However, an essential requirement for supervised techniques is the availability of accurately labeled training datasets. In this paper we present PadelVic, an annotated dataset of an amateur padel match which consists of multi-view video streams, accurate motion capture data of one of the players, as well as synthetic videos specifically designed to serve as training sets for convolutional neural networks estimating positional data from videos. As a demonstration of one of the applications of the dataset, we present a system for the accurate prediction of the center-of-mass of the players projected onto the court plane, from a single-view video of the match.
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PADELVIC:业余乒乓球比赛的多摄像机视频和动作捕捉数据
计算机视觉和深度学习技术的最新进展为自动标注体育视频提供了新的可能性。然而,监督技术的一个基本要求是提供准确标注的训练数据集。在本文中,我们介绍了 PadelVic,这是一个业余围棋比赛的标注数据集,由多视角视频流、其中一名球员的精确运动捕捉数据以及合成视频组成,专门设计用作卷积神经网络从视频中估算位置数据的训练集。作为该数据集的应用示范之一,我们展示了一个系统,该系统可从比赛的单视角视频中准确预测投射到球场平面上的球员质量中心。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Efecto agudo de los partidos de pádel en las emociones de jugadoras amateur A 10-week neuromuscular program improved specific skills in young competitive tennis players Fatiga mental y p´ádel: estado de la cuestión PADELVIC: Multicamera videos and motion capture data of an amateur padel match Evaluation of active and reactive menifestations in female padel players. Influence of the playing side
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