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Noun and Keyword Detection of Korean in Ubiquitous Environment

机译:普遍存在环境中朝鲜语的名词和关键词检测

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In a language, noun and keyword extraction is a key element in a ubiquitous environment. When it comes to processing Korean language information, however, there are still a lot of problems with noun and keyword extraction. This paper proposes an effective noun extraction method that considers noun emergence features. The proposed method can be effectively used in areas like information retrieval where large volumes of documents and data need to be processed in a fast manner. In this paper, a category-based keyword construction method is also presented that uses an unsupervised learning technique to ensure high volumes of queries are automatically classified. Our experimental results show that the proposed method outperformed both the supervised learning-based X~2 method known to excel in keyword extraction and the DF method, in terms of classification precision.
机译:在一种语言中,名词和关键词提取是普遍存在的环境中的关键要素。但是,在处理朝鲜语信息时,名词和关键字提取仍然存在很多问题。本文提出了一种考虑名词出现特征的有效名词提取方法。所提出的方法可以有效地用于需要快速处理大量文档和数据的信息检索等领域。本文还提出了一种基于类别的关键字构建方法,该方法使用无监督学习技术来确保自动对大量查询进行分类。我们的实验结果表明,在分类精度方面,该方法优于基于关键词学习的基于监督学习的X〜2方法和DF方法。

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