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Tracking the soccer ball using multiple fixed cameras

机译:使用多个固定摄像机跟踪足球

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摘要

This paper demonstrates innovative techniques for estimating the trajectory of a soccer ball from multiple fixed cameras. Since the ball is nearly always moving and frequently occluded, its size and shape appearance varies over time and between cameras. Knowledge about the soccer domain is utilized and expressed in terms of field, object and motion models to distinguish the ball from other movements in the tracking and matching processes. Using ground plane velocity, longevity, normalized size and color features, each of the tracks obtained from a Kalman filter is assigned with a likelihood measure that represents the ball. This measure is further refined by reasoning through occlusions and back-tracking in the track history. This can be demonstrated to improve the accuracy and continuity of the results. Finally, a simple 3D trajectory model is presented, and the estimated 3D ball positions are fed back to constrain the 2D processing for more efficient and robust detection and tracking. Experimental results with quantitative evaluations from several long sequences are reported.
机译:本文演示了用于从多个固定摄像机估计足球轨迹的创新技术。由于球几乎总是在移动并且经常被遮挡,因此其大小和形状外观会随着时间的推移以及相机之间的变化而变化。利用有关足球领域的知识,并根据领域,对象和运动模型来表达足球知识,以在跟踪和匹配过程中将球与其他运动区分开。使用地面速度,寿命,归一化尺寸和颜色特征,将从卡尔曼滤波器获得的每个轨迹分配给代表球的似然度度量。通过对轨迹历史中的遮挡和回溯进行推理,可以进一步完善此度量。可以证明这可以提高结果的准确性和连续性。最后,提出了一个简单的3D轨迹模型,并反馈了估计的3D球位置以约束2D处理,从而实现更有效,更可靠的检测和跟踪。报告了从几个长序列进行定量评估的实验结果。

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