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GPLSIUA: Combining Temporal Information and Topic Modeling for Cross-Document Event Ordering

机译:GPLSIUA:结合时间信息和主题建模对跨文档事件排序

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Building unified timelines from a collection of written news articles requires cross-document event coreference resolution and temporal relation extraction. In this paper we present an approach event coreference resolution according to: a) similar temporal information, and b) similar semantic arguments. Temporal information is detected using an automatic temporal information system (TIPSem), while semantic information is represented by means of LDA Topic Modeling. The evaluation of our approach shows that it obtains the highest Micro-average F-score results in the SemEval-2015 Task 4: "TimeLine: Cross-Document Event Ordering" (25.36% for TrackB, 23.15% for SubtrackB), with an improvement of up to 6% in comparison to the other systems. However, our experiment also showed some drawbacks in the Topic Modeling approach that degrades performance of the system.
机译:从一系列书面新闻文章中构建统一的时间表需要交叉文档事件COREREFED分辨率和时间关系提取。在本文中,我们介绍了一种方法,根据以下:a)类似的时间信息和b)类似的语义参数。使用自动时间信息系统(TIPSEM)检测时间信息,而语义信息通过LDA主题建模表示。我们的方法的评估表明,它获得了Semeval-2015任务4:“时间轴:交叉文件事件排序”(TrackB的时间表:SubTrackB的25.35%)的最高微平均f-score结果(25.36%),具有改进与其他系统相比,高达6%。但是,我们的实验还在模拟方法中显示了一些缺点,从而降低了系统性能。

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