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Using Text Comprehension Model for Learning Concepts, Context, and Topic of Web Content

机译:使用文本理解模型来学习Web内容的学习概念,上下文和主题

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Concepts in web ontologies help machines to understand data through the meanings they hold. Furthermore, learning contexts and topics of web documents also have helped in better semantic-oriented structuring and retrieval of data on the web. In this short paper we present a novel approach for domain-independent open learning of domain concepts, context and topic of any given Web document. Our approach is based on a computational version of the Construction-Integration (CI) model of text comprehension. Our proposed system mimics the way humans learn the meanings of textual units and identify domain concepts, contexts and topics in the form of semantic networks. We apply our system on a number of web documents with a range of topics and domains. The resulting semantic networks provide a quantitative and qualitative insights into the nature of the given web documents.
机译:Web Intologies的概念有助于机器来了解数据的含义。此外,学习上下文和Web文档的主题也有助于更好的语义导向结构和检索网络上的数据。在这篇短文中,我们介绍了一种新的域名开放学习的新方法,对域概念,上下文和任何给定Web文档的主题。我们的方法是基于构建集成(CI)文本理解模型的计算版本。我们建议的系统模仿人类了解文本单位的含义并以语义网络形式识别域概念,上下文和主题的方式。我们在许多具有一系列主题和域的Web文档上应用我们的系统。由此产生的语义网络提供了对给定Web文档的性质的定量和定性见解。

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