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Automatic Question Generation In Education Domain Based On Ontology

机译:基于本体论的教育领域自动问题

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Generating questions at various difficulty levels require significant time and are challenging. It requires specific knowledge and skills. The quality of the generated questions would depend on the question maker's ability to relate information and represent it in the form of a question. Thus, it is difficult to maintain the quality consistency of a large set of questions. This study introduces an ontology-based approach for automating the generation of questions to maintain consistency of question quality. Information related to the ontology is broken down into information categories in the format of SPARQL queries. The queries are then converted into questions. Experts were asked to validate the generated questions. Based on our experiments, the accuracy of the generated questions reaches 86%.
机译:在各种难度级别产生问题需要很大的时间并具有挑战性。它需要具体的知识和技能。所产生的问题的质量取决于质询制定者的相关信息,并以问题的形式代表它。因此,难以保持大量问题的质量一致性。本研究介绍了一种基于本体的方法,用于自动化产生问题以维持质量的一致性。与本体有关的信息以SPARQL查询格式分解为信息类别。然后将查询转换为问题。要求专家验证所产生的问题。根据我们的实验,所产生的问题的准确性达到86%。

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