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An Unsupervised Approach for Segmentation and Clustering of Soccer Players

机译:一种无人监督的足球运动员分割和聚类方法

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In this work we consider the problem of soccer team discrimination. The approach we propose starts from the monocular images acquired by a still camera. The first step is the soccer player detection, performed by means of background subtraction. An algorithm based on pixels energy content has been implemented in order to detect moving objects. The use of energy information, combined with a temporal sliding window procedure, allows to be substantially independent from motion hypothesis. Colour histograms in RGB space are extracted from each player, and provided to the unsupervised classification phase. This is composed by two distinct modules: firstly, a modified version of the BSAS clustering algorithm builds the clusters for each class of objects. Then, at runtime, each player is classified by evaluating its distance, in the features space, from the classes previously detected. Algorithms have been tested on different real soccer matches of the Italian Serie A.
机译:在这项工作中,我们考虑了足球队歧视问题。我们提出的方法从静物相机获取的单像素图​​像开始。第一步是足球运动员检测,通过背景减法进行。已经实现了一种基于像素能量内容的算法,以便检测移动对象。使用能量信息,与时间滑动窗程序相结合,允许基本上独立于运动假设。从每个玩家提取RGB空间中的颜色直方图,并提供给无监督的分类阶段。这由两个不同的模块组成:首先,BSAS聚类算法的修改版本为每种对象构建了群集。然后,在运行时,通过从先前检测到的类别评估其在特征空间中的距离来分类每个播放器。在意大利Serie A的不同真实足球比赛上已经测试了算法。

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