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Towards Learning Domain Ontology from Legacy Documents

机译:从旧版文档学习领域本体

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Learning ontology from text is a challenge in knowledge engineering research and practice. Learning relations between concepts is even more difficult work. However, when considering only a particular domain in which the concept hierarchy and relations can be modeled manually within an acceptable period of time, the learning process may be simplified. We focus on learning composite concepts and building up a knowledge base from existing documents. Our approach tries to make the machine understand the documents sentence by sentence and finally fit the knowledge conveyed by the document in our pre-defined ontology. Basic semantic units are defined for reasoning with higher-level concepts, including classes and instances. An agricultural case study on learning instances from plant disease descriptions is presented with a web-based ontology learning tool.
机译:从文本学习本体是知识工程研究和实践中的一个挑战。学习概念之间的关系更加困难。但是,当仅考虑可以在可接受的时间段内手动建模概念层次结构和关系的特定领域时,可以简化学习过程。我们专注于学习复合概念并从现有文档中建立知识库。我们的方法试图使机器逐句地理解文档,并最终使文档传达的知识适合我们的预定义本体。定义了基本语义单元以使用更高层次的概念(包括类和实例)进行推理。通过基于网络的本体学习工具,介绍了从植物病害描述中学习实例的农业案例研究。

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