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Time Profiles for Identifying Users in Online Environments

机译:用于识别在线环境中的用户的时间配置文件

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Many people who discuss sensitive or private issues on web forums and other social media services are using pseudonyms or aliases in order to not reveal their true identity, while using their usual accounts when posting messages on nonsensitive issues. Previous research has shown that if those individuals post large amounts of messages, stylometric techniques can be used to identify the author based on the characteristics of the textual content. In this paper we show how an author's identity can be unmasked in a similar way using various time features, such as the period of the day and the day of the week when a user's posts have been published. This is demonstrated in supervised machine learning (i.e., author identification) experiments, as well as unsupervised alias matching (similarity detection) experiments.
机译:许多在网络论坛和其他社交媒体服务上讨论敏感或私人问题的人都在使用假名或别名,以便不透露自己的真实身份,而在发布有关非敏感问题的消息时使用其通常的帐户。先前的研究表明,如果这些人发布大量消息,则可以使用测听技术根据文本内容的特征来识别作者。在本文中,我们展示了如何使用各种时间功能(例如发布用户帖子的一天中的时段和一周中的一天)以类似的方式来揭露作者的身份。这在有监督的机器学习(即作者身份)实验以及无监督的别名匹配(相似性检测)实验中得到了证明。

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