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Automated Highlight Generation from Cricket Broadcast Video

机译:板球广播视频自动生成精彩片段

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This paper presents a novel method for the automation of highlight extraction using broadcast cricket video. The top-down hierarchical approach yielded an average frame processing speed of 0.04 seconds. The Motion History Image (MHI) method was used to detect the camera zoom-in motion which is a semantic feature of the bowler run-up sequence. A multi-spatial approach to feature extraction maximized highlight detection accuracy and was useful for smart parsing through video sequences. Experimental results on various broadcast video samples showed a robust performance across different formats of the game with an average recall rate of 99% and precision rate of 94.2 %. The proposed framework does not require any supervised training, temporal reordering of frames or manual intervention during the highlight extraction process.
机译:本文提出了一种新的方法,用于利用广播板球视频自动进行高亮提取。自上而下的分层方法产生的平均帧处理速度为0.04秒。运动历史图像(MHI)方法用于检测摄像头的放大运动,这是礼帽准备程序序列的语义特征。一种用于特征提取的多空间方法可以最大程度地提高突出显示检测的准确性,对于通过视频序列进行智能解析很有用。在各种广播视频样本上的实验结果表明,该游戏在不同格式的游戏中均具有出色的性能,平均召回率达到99%,准确率达到94.2%。拟议的框架在突出显示提取过程中不需要任何有监督的培训,帧的时间重新排序或手动干预。

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