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Enriching Ontologies with Encyclopedic Background Knowledge for Document Indexing

机译:丰富本体论文索引的百科全书背景知识

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The rapidly increasing number of scientific documents available publicly on the Internet creates the challenge of efficiently organizing and indexing these documents. Due to the time consuming and tedious nature of manual classification and indexing, there is a need for better methods to automate this process. This thesis proposes an approach which leverages encyclopedic background knowledge for enriching domain-specific ontologies with textual and structural information about the semantic vicinity of the ontologies' concepts. The proposed approach aims to exploit this information for improving both ontology-based methods for classifying and indexing documents and methods based on supervised machine learning.
机译:在互联网上公开提供的快速增加的科学文件创造了有效组织和索引这些文件的挑战。由于手动分类和索引的耗时和繁琐的性质,需要更好的方法来自动化此过程。本文提出了一种利用百科全书的背景知识来丰富域特异性本体的方法,这些内容与有关本体概念的语义附近的文本和结构信息。拟议的方法旨在利用这些信息,以改善基于本体的本体论,用于基于监督机器学习的分类和索引文件和方法。

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