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Real-time tracking of a tennis ball by combining 3D data and domain knowledge

机译:通过组合3D数据和域知识来实时跟踪网球

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Computer vision is steadily gaining importance in many research fields, as its applications expand from traditional fields situation analysis and scene understanding in video surveillance to other scenarios. The sportive context can represent a perfect test-bed for many machine vision algorithms because of the large availability of visual data brought by wide spread cameras on a relatively high number of courts. In this paper we introduce a tennis ball detection and tracking method that exploits domain knowledge to effectively recognize ball positions and trajectories. A peculiarity of this approach is that it starts from a sparse but cluttered point cloud that evolves over time, basically working on 3D samples only. Experiments on real data demonstrate the effectiveness of the algorithm in terms of tracking accuracy and path following capability.
机译:计算机愿景在许多研究领域稳步增长,因为其应用从传统领域的情况分析和视频监控中的视频监控到其他场景中的应用扩展。对于许多机器视觉算法来说,嬉戏的背景可以代表一个完美的测试床,因为宽阔的摄像机在相对较高数量的法庭上带来的视觉数据的巨大可用性。在本文中,我们介绍了一个网球检测和跟踪方法,用于有效地识别球位和轨迹的域知识。这种方法的特殊性是它从稀疏但杂乱的点云开始,随着时间的推移而发展,基本上仅在3D样本上工作。实验实验证明了算法在跟踪精度和路径之后的能力之后的效力。

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