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Using a hybrid rule-based approach in developing an intelligent tutoring system with knowledge acquisition and update capabilities

机译:使用基于规则的混合方法开发具有知识获取和更新功能的智能辅导系统

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In this paper, we present the architecture and describe the functionality of an Intelligent Tutoring System (ITS), which uses an expert system to make decisions during the teaching process. The expert system uses neurules for knowledge representation of the pedagogical knowledge. Neurules are a type of hybrid rules integrating symbolic rules with neurocomputing. The expert system consists of three components: the user modelling unit, the pedagogical unit and the inference system. The pedagogical knowledge is distributed in a number of neurule bases within the user modelling and the pedagogical unit. Another important component of the ITS, for both its development and maintenance, is its knowledge management unit, which provides knowledge acquisition and knowledge update capabilities to the system, that is, offers expert knowledge authoring capabilities to the system.
机译:在本文中,我们介绍了体系结构并描述了智能辅导系统(ITS)的功能,该系统使用专家系统在教学过程中做出决策。专家系统使用神经元来表示教学知识。神经元是将符号规则与神经计算相结合的混合规则的一种。专家系统由三部分组成:用户建模单元,教学单元和推理系统。在用户建模和教学单元内,教学知识分布在许多神经基础中。对于ITS的开发和维护而言,ITS的另一个重要组件是其知识管理单元,它为系统提供知识获取和知识更新功能,即为系统提供专家知识编写功能。

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