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Localization of Geospatial Events and Hoax Prediction in the UFO Database

机译:UFO数据库中地理空间事件的本地化和骗局预测

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Unidentified Flying Objects (UFOs) have been an interesting topic for most enthusiasts and hence people all over the United States report such findings online at the National UFO Report Center (NUFORC). Some of these reports are a hoax and among those that seem legitimate, our task is not to establish that these events confirm that they indeed are events related to flying objects from aliens in outer space. Rather, we intend to identify if the report was a hoax as was identified by the UFO database team with their existing curation criterion. However, the database provides a wealth of information that can be exploited to provide various analyses and insights such as social reporting, identifying real-time spatial events and much more. We perform analysis to localize these time-series geospatial events and correlate with known real-time events. This paper does not confirm any legitimacy of alien activity, but rather attempts to gather information from likely legitimate reports of UFOs by studying the online reports. These events happen in geospatial clusters and also are time-based. We look at cluster density and data visualization to search the space of various cluster realizations to decide best probable clusters that provide us information about the proximity of such activity. A random forest classifier is also presented that is used to identify true events and hoax events, using the best possible features available such as region, week, time-period and duration. Lastly, we show the performance of the scheme on various days and correlate with real-time events where one of the UFO reports strongly correlates to a missile test conducted in the United States.
机译:对于大多数发烧友来说,不明飞行物(UFO)一直是一个有趣的话题,因此,美国各地的人们都在国家UFO报告中心(NUFORC)在线报告了此类发现。这些报告中有一些是骗局,在看起来合法的报告中,我们的任务不是要确定这些事件是否证实它们确实与外层空间中来自外星人的飞行物体有关。相反,我们打算根据UFO数据库团队使用其现有策展标准来确定该报告是否是骗局。但是,该数据库提供了大量信息,可利用这些信息来提供各种分析和见解,例如社会报告,识别实时空间事件等。我们进行分析以定位这些时间序列的地理空间事件,并将其与已知的实时事件相关联。本文没有确认外星人活动的任何合法性,而是试图通过研究在线报告从不明飞行物的合法报告中收集信息。这些事件发生在地理空间集群中,并且是基于时间的。我们着眼于聚类密度和数据可视化,以搜索各种聚类实现的空间,以确定可以为我们提供有关此类活动接近程度的信息的最佳可能聚类。还提供了一个随机森林分类器,该分类器使用可能的最佳特征(如区域,星期,时间段和持续时间)来识别真实事件和恶作剧事件。最后,我们展示了该计划在不同日期的性能,并与不明飞行物报告之一与在美国进行的导弹测试高度相关的实时事件相关。

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