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Topic Evolution Analysis Based on Cluster Topic Model

机译:基于聚类主题模型的主题演化分析

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摘要

Topic evolution analysis helps to understand how the topics evolve or develop along the timeline. Aiming at the problem that existing researches did not mine the latent semantic information in depth and needed to pre-determine the number of clusters, this paper proposes cluster topic model based method to analyze topic evolution analysis. Firstly, a new topic model, namely cluster topic model, is built to complete document clustering while mining latent semantic information. Secondly, events are detected according to the cluster label of each document and evolution relationship between any two events is identified based on the aspect distributions of documents. Finally, by choosing the representative document of each event, topic evolution graph is constructed to display the development of the topic along the timeline. Experiments are presented to show the performance of our proposed technique. It is found that our proposed technique outperforms the comparable techniques in previous work.
机译:主题演变分析有助于了解主题如何沿时间轴发展或发展。针对现有研究没有深入挖掘潜在语义信息,需要预先确定聚类数量的问题,提出了一种基于聚类主题模型的主题演化分析方法。首先,建立了一个新的主题模型,即聚类主题模型,以在挖掘潜在语义信息的同时完成文档聚类。其次,根据每个文档的簇标签检测事件,并根据文档的长宽分布来识别任意两个事件之间的演化关系。最后,通过选择每个事件的代表文档,可以构建主题演化图以显示时间轴上主题的发展。实验表明了我们提出的技术的性能。发现我们提出的技术优于以前工作中的同类技术。

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