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A Distance-Dependent Chinese Restaurant Process Based Method for Event Detection on Social Media

机译:基于距离的中餐过程的社交媒体事件检测方法

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In this paper, we propose a method for event detection on social media, which aims at clustering media items into groups of events based on their textural information as well as available metadata. Our approach is based on distance-dependent Chinese Restaurant Process (ddCRP), a clustering approach resembling Dirichlet process algorithm. Furthermore, we scrutinize the effectiveness of a series of pre-processing steps in improving the detection performance. We experimentally evaluated our method using the Social Event Detection (SED) dataset of MediaEval 2013 benchmarking workshop, which pertains to the discovery of social events and their grouping in event-specific clusters. The obtained results indicate that the proposed method attains very good performance rates compared to existing approaches.
机译:在本文中,我们提出了一种在社交媒体上进行事件检测的方法,该方法旨在根据媒体项目的纹理信息以及可用的元数据将其分为事件组。我们的方法基于与距离相关的中国饭店过程(ddCRP),这是一种类似于Dirichlet过程算法的聚类方法。此外,我们仔细检查了一系列预处理步骤在提高检测性能方面的有效性。我们使用MediaEval 2013基准测试研讨会的社交事件检测(SED)数据集对实验方法进行了实验评估,该数据集与社交事件的发现及其在事件特定群集中的分组有关。获得的结果表明,与现有方法相比,所提出的方法具有非常好的性能。

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