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Mining for Lexons: Applying Unsupervised Learning Methods to Create Ontology Bases

机译:挖掘lexons:应用无监督的学习方法来创建本体基础

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Ontologies in current computer science parlance are computer based resources that represent agreed domain semantics. This paper first introduces ontologies in general and subsequently, in particular, shortly outlines the DOGMA ontology engineering approach that separates "atomic" conceptual relations from "predicative" domain rules. In the main part of the paper, we describe and experimentally evaluate work in progress on a potential method to automatically derive the atomic conceptual relations mentioned above from a corpus of English medical texts. Preliminary outcomes are presented based on the clustering of nouns and compound nouns according to co-occurrence frequencies in the subject-verb-object syntactic context.
机译:当前计算机科学概念中的本体是基于计算机的基于计算机的资源,它代表了商定的域语义。本文首先介绍了一般的本体,特别是,特别是短暂概述了与“谓词”域规则分开了“原子”概念关系的教条本体工程方法。在本文的主要部分,我们描述并通过实验评估了在潜在的方法中,从英语医疗文本的语料库中自动得出了上述原子概念关系的潜在方法。根据主题 - 动词对象语法上下文中的共发生频率,基于名词和复合名词的聚类来呈现初步结果。

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