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A Novel Machine Learning Approach to Prevent Illegal Distribution of Screen Captured Videos

机译:一种新颖的机器学习方法,防止屏幕捕获视频的非法分发

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Capturing of videos from the television (TV) screens or from the theater screens by using the mobile cameras and its illegal distribution through video-sharing websites like YouTube, Dailymotion, Metacafe, etc. is a well-known challenge faced by the film industry. The video-sharing websites like YouTube does not encourage the illegal distribution of videos (without proper consent from the content owner). Currently, the YouTube has a facility to remove an illegally distributed video content from its video repository based on the request from the content owner. In general, the removal of an illegally distributed video may take a few days, hence during this period, the video may be downloaded by many of the people. The downloaded videos may be again distributed over the internet through different modes. This paper proposed a new technique which will classify a given video into normal video or screen captured video and it can be incorporated with video-sharing websites to prevent the illegal distribution of screen captured videos. The proposed scheme uses a support vector machine model which is trained using no-reference image quality measures. As far as our knowledge is concerned, there is no related work in this area.
机译:通过使用移动摄像机,通过使用移动摄像机(例如YouTube,Dailymotion,Metacafe等视频共享网站)捕获来自电视(电视)屏幕的视频以及其非法分发。是电影业所面临的着名挑战。像YouTube这样的视频共享网站不鼓励视频的非法分配(未经内容所有者的适当同意)。目前,YouTube具有根据来自内容所有者的请求从其视频存储库中删除非法分布的视频内容的设施。通常,删除非法分布的视频可能需要几天,因此在此期间,这些视频可以由许多人下载。下载的视频可以通过不同的模式再次通过Internet分发。本文提出了一种新技术,将给定视频分类为正常视频或屏幕捕获的视频,它可以与视频共享网站合并,以防止屏幕捕获的屏幕的非法分发。该方案使用支持向量机模型使用无参考图像质量措施训练。就我们的知识而言,该领域没有任何相关的工作。

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