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Problem Event Extraction to Develop Causal Loop Representation from Texts

机译:从文本中提取问题事件以建立因果循环表示

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This research aims to extract consequent problem events as a cause-effect concept pair series, from teen-drug addiction web-boards. The extracted consequent problem events benefit for a problem analysis in a solving system through a Causal Loop representation. The research has three problems; how to determine a causative/effect event concept based on a verb phrase expression with an overlap problem between causative-verb concept set and effect-verb concept set, how to determine cause-effect concept pair series from several verb phrases, and how to develop a Causal Loop representation from the extracted cause-effect concept pair series. Therefore, we apply an event rate to solve the overlap problem. We then propose using N-WordCo to determine the cause-effect concept pair series and also use a similarity score to develop the Causal Loop representation. The research results provide a high precision of the problem event extraction from the documents.
机译:这项研究的目的是从青少年吸毒成瘾的网上留言板上,提取因果关系而产生的一系列问题事件。所提取的结果问题事件通过因果循环表示,有利于解决系统中的问题分析。该研究存在三个问题。如何基于动词短语表达确定因果关系事件概念,并在因果动词概念集和效果动词概念集之间存在重叠问题;如何从多个动词短语确定因果关系对系列,以及如何发展提取的因果概念对系列中的因果循环表示形式。因此,我们采用事件发生率来解决重叠问题。然后,我们建议使用N-WordCo来确定因果概念对系列,并且还使用相似性分数来发展因果环表示。研究结果提供了从文档中提取问题事件的高精度。

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