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Rule Discovery from Textual Data based on Key Phrase Patterns

机译:基于关键短语模式的文本数据规则发现

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摘要

This paper proposes a new method for discovering rules from textual data. The method decomposes textual data into word sets by using lexical analysis, generates training examples from both key phrase relations extracted from the word sets by using key phrase patterns and text classes given by the user, and acquires key phrase relation rules from the examples by using a fuzzy inductive learning algorithm. The method is also able to deal with textual data that requires word segmentation, such as Japanese text. This paper reports on the application of the method to e-mail analysis tasks for a customer center. The e-mails are written in Japanese and have two analytical criteria: a product criterion and a contents criterion. We evaluate the acquired rules in each criterion.
机译:本文提出了一种从文本数据中发现规则的新方法。该方法通过词法分析将文本数据分解为单词集,通过使用用户指定的关键短语模式和文本类从单词集中提取的关键短语关系生成训练示例,并通过使用示例从示例中获取关键短语关系规则模糊归纳学习算法。该方法还能够处理需要单词分段的文本数据,例如日语文本。本文报告了该方法在客户中心的电子邮件分析任务中的应用。电子邮件以日语编写,具有两个分析标准:产品标准和内容标准。我们在每个标准中评估获得的规则。

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