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Categorization and Monitoring of Internet Public Opinion Based on Latent Semantic Analysis

机译:基于潜在语义分析的网络舆情分类与监测

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Rapid progress of network arouses much attention on Internet public opinion. To address this issue, we propose a novel system for categorization and monitoring of Internet public opinion. Due to the text format of Internet public opinion and the semantic relationship between words in such documents, we introduce latent semantic analysis (LSA) to represent document of public opinion. Compared to the traditional vector space model (VSM), LSA overcomes the problem of high dimensional space. We use two classifiers to perform text categorization on a corpus collected from a hot Website. For the monitoring, we give the structure of this module and introduce its main functions.
机译:网络的快速进步唤起了互联网舆论的重视。为了解决这个问题,我们提出了一种小型制度,用于分类和监测互联网舆论。由于互联网舆论的文本格式和这些文件中单词之间的语义关系,我们引入潜在语义分析(LSA)代表舆论文件。与传统的矢量空间模型(VSM)相比,LSA克服了高维空间的问题。我们使用两个分类器在从热门网站收集的语料库上执行文本分类。对于监控,我们提供了该模块的结构并引入其主要功能。

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