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Learning Lexical Subjectivity Strength for Chinese Opinionated Sentence Identification

机译:学习词汇主观强度进行汉语观点句识别

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Lexical subjectivity strength has proven to be of great value to subjectivity classification. However, the quantitative calculation of lexical subjectivity strength has not yet been much explored. This paper presents a fuzzy set based approach to automatically learn lexical subjectivity strength for Chinese opinionated sentence identification. To approach this task, log-linear probabilities are employed to extract a set of subjective words from opinionated sentences, and three fuzzy sets, namely low-strength subjectivity, medium-strength subjectivity and high-strength subjectivity, are then defined to represent their respective classes of subjectivity strength. Furthermore, three membership functions are built to indicate the degrees of subjective words in different fuzzy sets. Finally, the acquired lexical subjective strength is further exploited to perform subjectivity classification. The experimental results on the NTCIR-7 MOAT data demonstrate that the introduction of lexical subjective strength is beneficial to subjectivity classification.
机译:词汇主观性强度已被证明对主观性分类具有重要价值。但是,词汇主观性强度的定量计算还没有被广泛探索。本文提出了一种基于模糊集的方法,用于自动学习词汇主观强度,用于汉语自以为是的句子识别。为了完成该任务,采用对数线性概率从有观点的句子中提取出一组主观词,然后定义了三个模糊集,即低强度主观性,中强度主观性和高强度主观性,以表示它们各自主观强度的类别。此外,构建了三个隶属度函数以指示不同模糊集中的主观单词的程度。最后,进一步利用获得的词汇主观强度来进行主观分类。在NTCIR-7 MOAT数据上的实验结果表明,引入词汇主观强度有助于主观性分类。

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