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Automatic Score Scene Detection for Baseball Video

机译:棒球视频自动得分场景检测

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We propose a robust score scene detection method for baseball broadcast videos. This method is based on the data-driven approach which has been successful in statistical speech recognition. Audio and video feature streams are integrated by a multi-stream hidden Markov model to model each scene. The proposed method was evaluated in score scene detection experiments using video data of 25 baseball games. While the recall rate with video mode only was 82.8% and that with audio mode only was 86.6%, the proposed method achieved 90.4%. This method was proved to be significantly effective to reduce the cost for making highlight for baseball video content.
机译:我们为棒球广播视频提出了一种强大的分数场景检测方法。该方法基于在统计语音识别中成功的数据驱动方法。音频和视频特征流由多流隐藏的Markov模型集成到模拟每个场景。在使用25个棒球游戏的视频数据的视频数据评估所提出的方法。虽然具有视频模式的召回率仅为82.8%,并且具有音频模式的速度仅为86.6%,所以提出的方法实现了90.4%。证明该方法明显有效地降低棒球视频内容的突出显示的成本。

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