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Credit-title detection of video contents based on estimation of superimposed region using character density distribution

机译:基于使用字符密度分布的重叠区域估计的视频内容的片头片尾字幕检测

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We propose a credit-title detection method of video contents based on estimation of superimposed region using character density distribution. Copyright information of video contents is manually extracted for the secondary use of those contents, and its cost is highly expensive. Therefore, automatic detection of credit titles that contain copyright information is highly demanded. However, accuracy of conventional methods is usually insufficient for this purpose. Our method first estimates credit-title-superimposed region based on character density distribution calculated in advance by using many video contents. Then, credit titles are detected in the estimated region. The experiment results show that proposed method improves both recall and precision rates compared to a conventional method. Furthermore, the processing time of the proposed method is less than half that of the conventional method for all contents.
机译:我们提出了一种基于字符密度分布的重叠区域估计的视频内容片名字幕检测方法。手动提取视频内容的版权信息以用于那些内容的二次使用,并且其成本非常昂贵。因此,强烈要求自动检测包含版权信息的信用标题。但是,常规方法的精度通常不足以实现该目的。我们的方法首先通过使用许多视频内容预先计算出的字符密度分布来估计字幕字幕叠加区域。然后,在估计区域中检测信用标题。实验结果表明,与传统方法相比,该方法提高了查全率和查准率。此外,对于所有内容,所提出的方法的处理时间小于传统方法的处理时间。

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