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Mining Information of Attack-Defense Status from Soccer Video Based on Scene Analysis

机译:基于场景分析的足球录像攻防状态信息挖掘

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Video Content is always huge by itself with abundant information. Extracting explicit semantic information has been extensively investigated such as object detection, structure analysis and event detection. However, little work has been devoted on the problem of discovering global or inexplicit information from the huge video stream. As an implementation in this topic, this paper proposes a solution to mining the statistical global attack-defense status information from soccer video by scene analysis. Semantic scene information of playfield detection, view classification, midline detection and global motion are extracted as the mid level information, and then they are fed into the finite state machine based status mining model to generate the statistical results, which will be of much usefulness for users. Experimental results reveal the feasibility of the method and more research work on the topic of discovering high-level inexplicit informationfrom video are expected.
机译:视频内容本身总是巨大的,具有丰富的信息。提取显式语义信息已被广泛研究,例如对象检测,结构分析和事件检测。但是,关于从庞大的视频流中发现全局信息或不清楚信息的问题所做的工作很少。作为本主题的一种实现,本文提出了一种通过场景分析从足球视频中提取统计的全球攻防状态信息的解决方案。提取运动场检测,视图分类,中线检测和全局运动的语义场景信息作为中层信息,然后将它们输入到基于有限状态机的状态挖掘模型中以生成统计结果,这对于实现统计信息很有用。用户。实验结果证明了该方法的可行性,并有望在视频中发现高水平的模糊信息这一领域进行更多的研究。

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