首页> 外文会议>Acoustics, Speech and Signal Processing, 2007. ICASSP 2007 >Shot Classification of Basketball Videos and its Application in Shooting Position Extraction
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Shot Classification of Basketball Videos and its Application in Shooting Position Extraction

机译:篮球录像镜头分类及其在射击位置提取中的应用

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In this paper, we propose a system that can automatically segment a basketball video into several clips on the basis of a GOP-based scene change detection method. The length of each clip and the number of dominant color pixels of each frame are used to classify shots into close-up view, medium view, and full court view. Full court view shots are chosen to do advanced analyses such as ball tracking and parameter extracting for the transformation from a 3D real-world court to a 2D image. After that, we map points in the 2D image to the corresponding coordinates in a real-world court by some physical properties of the 3D shooting trajectory, and compute the statistics of all shooting positions. Eventually we can obtain the information about the most possible shooting positions of a professional basketball team, which is useful for opponents to adopt appropriate defense tactics
机译:在本文中,我们提出了一种系统,该系统可以基于基于GOP的场景变化检测方法将篮球视频自动分割为多个片段。每个剪辑的长度和每个帧的主要彩色像素的数量用于将镜头分类为特写视图,中景和全场视图。选择全场观看镜头以进行高级分析,例如球跟踪和参数提取,以实现从3D现实世界球场到2D图像的转换。之后,我们通过3D拍摄轨迹的某些物理属性将2D图像中的点映射到现实世界中的相应坐标,并计算所有拍摄位置的统计信息。最终,我们可以获得有关职业篮球队尽可能多的投篮位置的信息,这对于对手采取适当的防御战术很有用。

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