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Using rough set theory to construct e-learning faq retrieval infrastructure

机译:使用粗糙集理论构建电子学习常见问题常见问题解答检索基础架构

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We propose a framework of e-learning FAQ (frequently asked questions) retrieval system by applying hierarchical agglomerative clustering method and rough set theory. We try to provide a possible solution to improve the learning performance of e-Learning system. The clustering method and FAQ collection are used to construct a FAQ clustering concept hierarchy. Then, we use lower/upper approximations in rough set theory to classify userspsila queries. The rough set theory can help solve uncertain problem well. Finally, the relevant FAQs for the user query are generated. The relevant FAQs are those in the cluster to which the user query is assigned.
机译:我们通过应用分层凝聚聚类方法和粗糙集理论,提出了一种电子学习常见问题解答(常见问题)检索系统的框架。我们尝试提供一个可能的解决方案来提高电子学习系统的学习性能。群集方法和常见问题解答集合用于构造常见问题解答群集概念层次结构。然后,我们在粗糙集理论中使用较低/上近似来对userspsila查询进行分类。粗糙集理论可以帮助解决不确定的问题。最后,生成用户查询的相关常见问题解答。相关的常见问题解答是分配用户查询的群集中的问题。

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