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Visualization of Subtopics of the Thematic Document Collection Using the Context-Semantic Graph

机译:使用上下文语义图可视化主题文档集的子主题

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摘要

An approach for visualization of nested topics within large collections of documents is proposed. The approach is based on set of parameters: information entropy, Kullback-Leibler divergence, Ginzburg algorithm, similarity the distributions of keywords and key phrases in the documents with Bernoulli's theoretical distributions. The results of comparisons of our approach with implementations based on TF-IDF approaches are presented.
机译:提出了一种可视化大量文档中嵌套主题的方法。该方法基于以下参数集:信息熵,Kullback-Leibler散度,Ginzburg算法,文档中关键字和关键短语的分布与Bernoulli的理论分布相似。给出了我们的方法与基于TF-IDF方法的实现的比较结果。

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