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Topical Summarization of Web Videos by Visual-Text Time-Dependent Alignment

机译:通过视文本时间相关的对齐方式对Web视频进行主题总结

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Search engines are used to return a long list of hundreds or even thousands of videos in response to a query topic. Efficient navigation of videos becomes difficult and users often need to painstakingly explore the search list for a gist of the search result. This paper addresses the challenge of topical summarization by providing a timeline-based visualization of videos through matching of heterogeneous sources. To overcome the so called sparse-text problem of web videos, auxiliary information from Google context is exploited. Google Trends is used to predict the milestone events of a topic. Meanwhile, the typical scenes of web videos are extracted by visual near-duplicate threading. Visual-text alignment is then conducted to align scenes from videos and articles from Google News. The outcome is a set of scene-news pairs, each representing an event mapped to the milestone timeline of a topic. The timeline-based visualization provides a glimpse of major events about a topic. We conduct both the quantitative and subjective studies to evaluate the practicality of the application.
机译:搜索引擎用于返回一长串数百个甚至数千个视频的列表,以响应查询主题。视频的有效导航变得困难,并且用户经常需要艰苦地探索搜索列表以获取搜索结果的要点。本文通过异类源的匹配提供基于时间轴的视频可视化,从而解决了主题概述的挑战。为了克服所谓的网络视频稀疏文本问题,利用了来自Google上下文的辅助信息。 Google趋势用于预测主题的里程碑事件。同时,网络视频的典型场景是通过视觉上几乎重复的线程提取的。然后进行视觉文本对齐,以对齐来自Google新闻的视频和文章的场景。结果是一组场景新闻对,每个场景新闻对代表一个映射到主题里程碑时间轴的事件。基于时间轴的可视化提供有关主题的主要事件的概览。我们进行定量和主观研究,以评估应用程序的实用性。

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