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AUTOMATIC MULTI-PLAYER DETECTION AND TRACKING IN BROADCAST SPORTS VIDEO USING SUPPORT VECTOR MACHINE AND PARTICLE FILTER

机译:使用支持向量机和粒子过滤器自动多人多人检测和播放视频中的跟踪

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摘要

In this paper, a novel multiple objects detection and tracking approach based on support vector machine and particle filter is proposed to track players in broadcast sports video. Compared with previous work, the contributions of this paper are focused on three aspects. First, an improved particle filter called SVR particle filter is proposed as the player tracker by integrating support vector regression (SVR) into sequential Monte Carlo framework. SVR particle filter enhances the performance of classical particle filter with small sample set and improves the efficiency of tracking system. Second, support vector classification combined with playfield segmentation is employed to automatically detect the players in sports video as the initialization of tracker. Third, a unified framework for automatic object detection and tracking is proposed based on support vector machine and particle filter. The experimental results are encouraging and demonstrate that our approach is effective.
机译:本文提出了一种基于支持向量机和粒子滤波器的多个对象检测和跟踪方法,以跟踪广播运动视频中的玩家。与以前的工作相比,本文的贡献集中在三个方面。首先,通过将支持向量回归(SVR)集成到顺序蒙特卡罗框架中,提出称为SVR粒子滤波器的改进的粒子滤波器。 SVR颗粒过滤器提高了具有小样本集的经典粒子过滤器的性能,提高了跟踪系统的效率。其次,支持传染媒介分类与游戏场分割相结合,用于自动检测体育视频中的玩家作为追踪器的初始化。第三,基于支持向量机和粒子滤波器提出了一种统一的自动对象检测和跟踪框架。实验结果令人鼓舞并证明我们的方法是有效的。

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