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A Process for Extracting Non-Taxonomic Relationships of Ontologies from Text

机译:从文本中提取本体的非生物分类关系的过程

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Manual construction of ontologies by domain experts and knowledge engineers is an expensive and time consuming task so, automatic and/or semiautomatic approaches are needed. Ontology learning looks for identifying ontology elements like non-taxonomic relationships from information sources. These relationships correspond to slots in a frame-based ontology. This article proposes an initial process for semiautomatic extraction of non-taxonomic relationships of ontologies from textual sources. It uses Natural Language Processing (NLP) techniques to identify good candidates of non-taxonomic relationships and a data mining technique to suggest their possible best level in the ontology hierarchy. Once the extraction of these relationships is essentially a retrieval task, the metrics of this field like recall, precision and f-measure are used to perform evaluation.
机译:由领域专家和知识工程师手动构建本体是一项昂贵且耗时的任务,因此,需要自动和/或半自动方法。本体学习寻求从信息源中识别诸如非分类关系之类的本体元素。这些关系对应于基于帧的本体中的时隙。本文提出了一种从文本源半自动提取本体的非分类学关系的初始过程。它使用自然语言处理(NLP)技术来识别非分类关系的良好候选者,并使用数据挖掘技术来建议它们在本体层次结构中的最佳水平。一旦这些关系的提取本质上是一项检索任务,则使用该字段的度量(如召回率,精度和f量度)来执行评估。

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