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A Statistical Approach for Semantic Relation Extraction

机译:语义关系提取的统计方法

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Semantic relations are an important component of ontologies that can support many applications e.g. text mining, question answering, and information extraction. Automatic semantic relation extraction system is a crucial tool that can reduce the bottleneck of knowledge acquisition in the ontologies construction. In this paper, we present a statistical approach for learning the semantic relations between concepts of an ontology in the agricultural domain. The semantic relations are acquired by using verbs to indicate the relations between ontology concepts. The co-occurrences of domain-verbs with their components, which are annotated the concepts, are analyzed by using several statistical methodologies. Moreover, we expand the sets of verb expressing the same semantic relation by using the extracted patterns of concept pairs of the seed verb's component. Our experiment has been done on a collection of Thai shallow parsed texts in the domain of agriculture. The precision and recall of the presented system is 65% and 82%, respectively.
机译:语义关系是可以支持许多应用的本体的重要组成部分。文本挖掘,问题回答和信息提取。自动语义关系提取系统是一个重要的工具,可以减少本体建设中知识获取的瓶颈。在本文中,我们提出了一种学习农业领域在本体概念之间的语义关系的统计方法。通过使用动词来指示本体概念之间的关系来获取语义关系。通过使用几种统计方法分析与它们的组件注释的域名的共同发生。此外,我们通过使用种子动词组件的提取模式对表达相同语义关系的动词组。我们的实验已经在农业领域的泰国浅层解读文本上完成了。所提出的系统的精确和召回分别为65%和82%。

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