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Ball recognition in real sequences of soccer images with different light conditions

机译:在不同光照条件下足球图像真实序列中的球识别

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摘要

Circle detection problems have been largely studied in the last years for numerous image processing applications. Automatic ball recognition in television sequences of soccer images is a fundamental task to solve: a number of doubtful cases occurs during the game especially for detecting the outside event and the goal event. This domain is challenging as a great number of problems have to be managed, such as occlusions, shadows, objects similar to the ball, real time processing. In this work we have developed a visual framework that tries to solve the above problems mainly considering the changes of light conditions that modify the appearance of the ball during the matches. The ball detection algorithm has to be very simple in terms of time processing but also efficient in terms of false positive rate. The framework we propose consists of two sequential steps for solving the ball recognition problem: the first step uses a template matching algorithm to detect the region of the image that is the best candidate to contain an object whose shape is similar to the ball; in the second step a neural classifier is applied on the selected region to confirm if the ball has been properly detected or a false positive has been found.
机译:在过去的几年中,对于许多图像处理应用,已经对圆检测问题进行了大量研究。足球图像电视序列中的自动球识别是要解决的基本任务:在比赛过程中发生许多令人怀疑的情况,特别是对于检测外部事件和进球事件。该领域具有挑战性,因为必须解决许多问题,例如遮挡,阴影,类似于球的物体,实时处理。在这项工作中,我们开发了一个视觉框架,试图解决上述问题,主要是考虑到在比赛过程中灯光条件的变化会改变球的外观。球检测算法在时间处理方面必须非常简单,但在误报率方面必须高效。我们提出的框架包含两个解决球识别问题的顺序步骤:第一步使用模板匹配算法来检测图像区域,该区域是包含形状类似于球的对象的最佳候选对象;在第二步中,将神经分类器应用于所选区域,以确认是否已正确检测到球或发现了假阳性。

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