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User-Driven Geolocated Event Detection in Social Media

机译:社交媒体中的用户驱动的Geolocated事件检测

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Event detection is one of the most important research topics in social media analysis. Despite this interest, few researchers have addressed the problem of identifying geolocated events in an unsupervised way, and none includes user interests during the process. In this paper, we tackle the problem of local event detection from social media data. We present a method to automatically identify events by evaluating the burstiness of hashtags in a geographical area and a time interval, and at the same time integrating user feedback. We devise two algorithms to discover user-driven events. The first one relies on an exact enumeration process, while the other directly samples the space of events. In our empirical study, we provide evidence that geolocated events cannot be detected by non location-aware methods. We also show that our methods (i) outperform by a factor of two to several orders of magnitude state-of-the-art methods designed to discover geolocated events, (ii) are more robust to noise, and (iii) produce high quality events with respect to user interests.
机译:事件检测是社交媒体分析中最重要的研究主题之一。尽管有这种兴趣,但很少有研究人员已经解决了以无人监督的方式识别地理组织事件的问题,而且在过程中没有包括用户兴趣。在本文中,我们解决了来自社交媒体数据的本地事件检测问题。我们提出了一种通过评估地理区域和时间间隔中的HASHTAG的突发来自动识别事件的方法,并且同时整合用户反馈。我们设计了两个算法来发现用户驱动的事件。第一个依赖于精确的枚举过程,而另一个直接示机事件的空间。在我们的实证研究中,我们提供了证据,即无法通过非定位方法检测地理位置事件。我们还表明,我们的方法(i)优于两​​个到几个级别的最先进方法,旨在发现地理位置事件的最新方法,(ii)更加坚固,(iii)产生高质量关于用户兴趣的事件。

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