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Knowledge systematization for ontology learning methods

机译:本体学习方法的知识系统化

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摘要

The need for interoperable semantics in modern information systems forces to develop more and more intelligent solutions. The increasing demand for these solutions, the explosion of various types of information and the technological development pose new challenges and requirements. Ontologies are often viewed as the answer to this need. The connections between ontologies and Semantic Web become a very promising area. The Semantic Web's success is dependent on the quality of its underline ontologies, whereas ontologies provide a shared and a common understanding of a domain enabling communication between people and heterogeneous and distributed systems. However, key issue helps ontologies to power the Semantic Web have made ontology learning from various data sources a very auspicious field of research. It aims at semi-automatically or automatically building ontologies from given data sources with a limited human exert. A huge number of available approaches for ontology learning and the prominent differences between them cause the necessity of knowledge systematization for this domain. The paper yields the author's proposal of ontological elaboration for methods for ontology learning and their features, providing formal, practical and technological guidance to knowledge management based approach to methods supporting ontology learning.
机译:现代信息系统中互操作语义的需求势力开发越来越聪明的解决方案。对这些解决方案的需求越来越大,各种类型的信息爆炸和技术发展构成了新的挑战和要求。本体往往被视为对此需求的答案。本体和语义网之间的连接成为一个非常有希望的区域。语义Web的成功取决于其强调本体的质量,而本体论提供了对域和异构和分布式系统之间的沟通的共享和共同的理解。但是,关键问题有助于对语义网络发电的本体,从各种数据源中获得本体学习,这是一个非常吉祥的研究领域。它针对半自动或自动构建来自给定数据来源的本体,具有有限的人类发挥作用。本体学习的大量可用方法以及它们之间的突出差异导致该领域的知识系统化的必要性。本文提出了作者对本体学习方法及其特征的方法的本体论阐述的提议,为基于知识管理的方法提供了正式,实用和技术的指导,支持本体学习的方法。

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