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Unsupervised sports video particles annotation based on social latent semantic analysis

机译:基于社会潜在语义分析的无监督体育视频粒子标注

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Large volumes of video particles on practically every major sports event are posted on social media. According to socialbakers.com [1], four of the top twenty Facebook pages focus on sports. These particles can be processed and automatically annotated with events, entities etc. Furthermore, several annotated particles referring to a different time interval of the same sports event, could be synchronized to accomplish annotation of full sports games. Towards this direction, in this paper an innovative scheme is proposed that performs unsupervised annotation of sports video particles, posted on social media. The scheme is based on an intelligent wrapper architecture that automatically gathers and segments content and on the newly introduced Social Latent Semantic Analysis. This paper forms an initial study of automatic sports video particles annotation and experiments indicate its promising performance.
机译:几乎每个重大体育赛事上的大量视频片段都会发布在社交媒体上。根据socialbakers.com [1]的数据,Facebook前二十个页面中有四个专注于体育。可以对这些粒子进行处理并自动为事件,实体等添加注释。此外,可以将引用同一体育项目不同时间间隔的几个带注释的粒子进行同步,以完成完整体育游戏的注释。朝着这个方向,本文提出了一种创新的方案,该方案执行在社交媒体上发布的体育视频粒子的无监督注释。该方案基于可自动收集和分段内容的智能包装器体系结构,并基于新引入的“社会隐性语义分析”。本文形成了对体育视频自动粒子注释的初步研究,并通过实验表明了该方法的应用前景。

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