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Chinese text sentiment analysis based on fuzzy semantic model

机译:基于模糊语义模型的中文文本情感分析

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Many recent studies of sentiment analysis have shown that a polarity lexicon can effectively improve the classification results. Social media and Social networks, spontaneously user generated content have become important materials for tracking people's opinions and sentiments online. The mathematical models of fuzzy semantics have provided a formal explanation for the fuzzy nature of human language processing. In this paper we investigate the limitations of traditional sentiment analysis approaches and proposed a better Chinese sentiment analysis approach based on fuzzy semantic model. By using the emotion degree lexicon and fuzzy semantic model, this new approach obtains significant improvement in Chinese text sentiment analysis.
机译:最近的许多情感分析研究表明,极性词典可以有效地改善分类结果。社交媒体和社交网络,用户自发生成的内容已经成为用于在线跟踪人们的观点和情感的重要材料。模糊语义学的数学模型为人类语言处理的模糊性提供了形式上的解释。本文探讨了传统情感分析方法的局限性,提出了一种基于模糊语义模型的中文情感分析方法。通过使用情感程度词典和模糊语义模型,该新方法在中文文本情感分析中获得了显着改进。

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