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Annotating Real Time Twitter's Images/Videos Basing on Tweets

机译:注释实时Twitter的图像/视频在推文上基于推文

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摘要

Nowadays, online social network "Twitter" represents a huge source of unrefined information in various formats (text, video, photo), especially during events and abnormal cases/incidents. New features for Twitter mobile application are now available, allowing user to publish direct photos online. This paper is focusing on photos/videos taken by user and published in real time using only mobile devices. The aim is to find candidates for annotation from Tweet stream, then to annotate them by taking into accounts several features based only on tweets. A preprocessing step is necessary to exclude all useless tweets, we then process textual content of the rest. As a final step, we consider an additional characterization (spatiotemporal and saliency) to get outcome of the annotation as RDF triples.
机译:如今,在线社交网络“Twitter”代表了各种格式(文本,视频,照片)的未定义信息的巨大来源,尤其是在事件和异常情况下/事件期间。 Twitter移动应用程序的新功能现在可用,允许用户在线发布直接照片。本文专注于用户拍摄的照片/视频,并仅使用移动设备实时发布。目的是找到从Tweet流注释的候选者,然后通过仅基于推文的账户来注释它们。预处理步骤是排除所有无用推文的必要步骤,然后我们处理其余的文本内容。作为最后一步,我们考虑了额外的表征(时尚和显着性),以获得作为RDF三元族的注释的结果。

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