A Semantic Approach to Uncovering Implicit Relationships in Textual Databases

D. G. Vasques, P. Martins, S. O. Rezende
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Abstract

The discovery of knowledge in textual databases is an approach that basically seeks for implicit relationships between different concepts in different documents written in natural language, in order to identify new useful knowledge. To assist in this process, this approach can count on the help of Text Mining techniques. Despite all the progress made, researchers in this area must still deal with a large number of false relationships generated by most of the available processes. A semantic approach that supports the understanding of the relationships may bridge this gap. Thus, the objective of this work is to support the identification of implicit relationships between concepts present in different texts, considering the verbal semantics of relationships. To this end, analysis based on association rules were used together with metrics from complex networks and a verbal semantics approach. Through a case study, a set of texts from alternative medicine was selected and the different extractions showed that the proposed approach facilitates the identification of implicit causal relationships.
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一种揭示文本数据库隐含关系的语义方法
文本数据库中的知识发现基本上是一种寻找以自然语言书写的不同文档中不同概念之间的隐含关系,以识别新的有用知识的方法。为了在这个过程中提供帮助,这种方法可以依靠文本挖掘技术的帮助。尽管取得了很大的进展,但这一领域的研究人员仍然必须处理大多数可用过程产生的大量错误关系。支持理解关系的语义方法可能会弥合这一差距。因此,这项工作的目的是支持识别不同文本中存在的概念之间的内隐关系,考虑到关系的言语语义。为此,基于关联规则的分析与来自复杂网络的度量和口头语义方法一起使用。通过案例研究,选择了一组来自替代医学的文本,不同的提取表明,所提出的方法有助于识别隐性因果关系。
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