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Automatic camera calibration of broadcast tennis video with applications to 3D virtual content insertion and ball detection and tracking

机译:网球广播视频的自动摄像机校准,并将其应用于3D虚拟内容插入以及球的检测和跟踪

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This paper presents an original algorithm to automatically acquire accurate camera calibration from broadcast tennis video (BTV) as well as demonstrates two of its many applications. Accurate camera calibration from BTV is challenging because the frame-data of BTV is often heavily distorted and full of errors, resulting in wildly fluctuating camera parameters. To meet this challenge, we propose a frame grouping technique, which is based on the observation that many frames in BTV possess the same camera viewpoint. Leveraging on this fact, our algorithm groups frames according to the camera viewpoints. We then perform a group-wise data analysis to obtain a more stable estimate of the camera parameters. Recognizing the fact that some of these parameters do vary somewhat even if they have similar camera viewpoint, we further employ a Hough-like search to tune such parameters, minimizing the reprojection disparity. This two-tiered process gains stability in the estimates of the camera parameters, and yet ensures good match between the model and the reprojected camera view via the tuning step. To demonstrate the utility of such stable calibration, we apply the camera matrix acquired to two applications: (a) 3D virtual content insertion; and (b) tennis-ball detection and tracking. The experimental results show that our algorithm is able to acquire accurate camera matrix and the two applications have very good performances.
机译:本文介绍了一种原始算法,可以自动从广播网球视频(BTV)中获取准确的摄像机校准,并演示了其许多应用中的两个。由于BTV的帧数据通常会严重失真并且充满错误,导致BTV的摄像机参数准确波动很大,因此BTV进行准确的摄像机校准具有挑战性。为了应对这一挑战,我们提出了一种帧分组技术,该技术基于以下事实:BTV中的许多帧拥有相同的摄像机视点。利用这一事实,我们的算法会根据相机的视点对帧进行分组。然后,我们进行逐组数据分析,以获得更稳定的相机参数估计值。认识到这些参数中的某些参数即使它们具有相似的相机视点也确实会有所变化,我们进一步采用霍夫式搜索来调整此类参数,从而最大程度地减小了重投影差异。这个分为两层的过程提高了相机参数的估计的稳定性,并通过调整步骤确保了模型与重新投影的相机视图之间的良好匹配。为了演示这种稳定校准的实用性,我们将获取的相机矩阵应用于两个应用程序:(a)3D虚拟内容插入; (b)网球检测和跟踪。实验结果表明,我们的算法能够获取准确的相机矩阵,并且两个应用程序都具有很好的性能。

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