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Threat Detection in Tweets with Trigger Patterns and Contextual Cues

机译:具有触发模式和上下文提示的推文中的威胁检测

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摘要

Many threats in the real world can be related to activities in public sources on the Internet. Early detection of threats based on Internet information could assist in the prevention of incidents. However, the amount of data in social media, blogs and forums rapidly increases and it is time consuming for security services to monitor all these sources. Therefore, it is important to have a system that automatically ranks messages based on their threat potential and thereby allows security operators to check these messages more efficiently. In this paper, we present a novel method for detecting threatening messages on Twitter based on trigger keywords and contextual cues. The system was tested on multiple large collections of Dutch tweets. Our experimental results show that our system can successfully analyze messages and recognize threatening content.
机译:现实世界的许多威胁可能与互联网上的公共来源的活动有关。根据互联网信息的早期检测威胁可以帮助预防事故。但是,社交媒体,博客和论坛中的数据量迅速增加,安全服务耗时,以监控所有这些来源。因此,重要的是要有一个系统,它基于其威胁潜力自动排列消息,从而允许安全运算符更有效地检查这些消息。在本文中,我们提出了一种基于触发关键字和上下文提示来检测Twitter上的威胁信息的新方法。该系统在多个荷兰推文上进行了测试。我们的实验结果表明,我们的系统可以成功分析消息并识别威胁内容。

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