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Sentiment Analysis Based on Chinese Thinking Modes

机译:基于汉语思维方式的情感分析

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Sentiment analysis is an important research domain for NLP,and currently it mainly focuses on text context.While our research concentrates on the thinking modes,which influence the formation of language.“Spiral graphic mode”,“concreteness” and “scattered view”,are taken into consideration to assist sentiment analysis and classification in this paper.According to these explicit Chinese modes,a Chinese sentiment expression model (CSE) is proposed,which can effectively improve the accuracy of emotion classification.In order to solve the implicit Chinese sentiment expression,Latent Semantic Analysis (LSA) is applied when the CSE model could not classify the implicit emotions accurately.By comparing with two traditional sentiment analysis methods,experimental results show that the performance of sentiment analysis included the Chinese thinking mode factors is significantly better than which not included.
机译:情感分析是自然语言处理的重要研究领域,目前主要集中在文本语境上。我们的研究主要集中在影响语言形成的思维方式上。“螺旋图形模式”,“具体性”和“分散视图”针对这些明显的中文模式,提出了一种中文情感表达模型(CSE),可以有效地提高情感分类的准确性。表达式,当CSE模型不能准确地对隐性情绪进行分类时,应用潜在语义分析(LSA)。通过与两种传统的情感分析方法进行比较,实验结果表明,包括中国思维方式因素在内的情感分析的性能明显优于不包括在内。

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