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An Automatic Video Reinforcing System Based on Popularity Rating of Scenes and Level of Detail Controlling

机译:基于场景流行度和细节控制水平的视频自动补强系统

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With the advance of video-on-demand (VOD) services such as Netfix, users are able to watch many kinds of videos anytime and anywhere. While watching a video, recently, users often search related information about it through the Web by using mobile PC. However, users cannot satisfactorily understand and enjoy it because the video keeps playing when they search about it. It is necessary to detect various questions of the video to supplement their related information about each scene for automatic search. However, only one video includes various topics of each scene, furthermore, viewers have different levels of knowledge. Therefore, we have developed a novel automatic video reinforcing system, called TV-Binder, it generates new video contents from one video stream related to viewers' interests and knowledge by adding other related contents (i.e., YouTube videos, images or maps) and by removing unnecessary original scenes, based on topics of each scene. As a result, viewers can satisfy and joyfully watch modified video contents without searching anything. At first, our system extract topics and detect their scenes of a video stream by using closed captions. The system then searches other necessary contents and determines unwanted original scenes based on popularity rating of each original scene and level of detail (LOD) controlling under time pressure. Through this, TV-Binder can automatically generate video contents are classified into four quadrants by two axes, one is digest and detailed videos, the other one is videos for experts with knowledge about particular topics and ordinary viewers without special knowledge. In this paper, we discuss our automatic video reinforcing system and an evaluation of its effectiveness.
机译:随着Netfix等视频点播(VOD)服务的发展,用户可以随时随地观看多种视频。最近,在观看视频时,用户经常使用移动PC在Web上搜索有关该视频的相关信息。但是,用户无法令人满意地理解和欣赏它,因为视频在搜索时一直在播放。有必要检测视频的各种问题,以补充其有关每个场景的相关信息以进行自动搜索。但是,只有一个视频包含每个场景的各种主题,此外,观众的知识水平也不同。因此,我们开发了一种新颖的自动视频增强系统,称为TV-Binder,它通过添加其他相关内容(例如YouTube视频,图像或地图)并通过添加与视频相关的内容,从与观众的兴趣和知识相关的一个视频流中生成新的视频内容。根据每个场景的主题,删除不必要的原始场景。结果,观看者可以满意地并且满意地观看修改后的视频内容而无需搜索任何内容。首先,我们的系统提取主题并使用隐藏式字幕检测其视频流场景。然后,系统搜索其他必要的内容,并根据每个原始场景的受欢迎程度以及在时间压力下控制的细节级别(LOD)来确定不需要的原始场景。通过这种方式,TV-Binder可以自动将视频内容生成为通过两个轴分为四个象限,一个是摘要视频和详细视频,另一个是针对具有特定主题知识的专家和不具有特殊知识的普通观众的视频。在本文中,我们讨论了自动视频增强系统及其效果评估。

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