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A Dynamic Graph Model for Analyzing Streaming News Documents

机译:用于分析流新闻文档的动态图模型

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In this paper we consider the problem of analyzing streaming documents, in particular streaming news stories. The system is designed to extract statistics from the document, incorporate these into a graph-based model, and discard the document to reduce storage requirements. The model is defined in terms of a changing lexicon and sub-lexicons at each node in the graph, with the nodes of the graph representing topics. An approximation to the TFIDF term weighting is introduced. We illustrate the methodology on a dataset of news articles, and discuss the dynamic nature of the model
机译:在本文中,我们考虑分析流媒体文档(特别是流媒体新闻报道)的问题。该系统旨在从文档中提取统计信息,将其合并到基于图形的模型中,并丢弃文档以减少存储需求。根据图中每个节点上不断变化的词典和子词典来定义模型,其中图的节点代表主题。引入了TFIDF项权重的近似值。我们在新闻报道的数据集上说明了方法论,并讨论了该模型的动态性质

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