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Using Multiple Classification Ripple Down Rules for Intelligent Tutoring System's Knowledge Acquisition

机译:利用多级波纹降低规则进行智能辅导系统的知识获取

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This research focuses on the knowledge acquisition (KA) for an intelligent tutoring system (ITS). ITSs have been developed to provide considerable flexibility in presentation of learning materials and greater abilities to respond to individual students' needs. Our system aims to support experts who want to accumulate the classification knowledge. Rule based reasoning has been widely used in ITSs. Knowledge acquisition bottleneck is a major problem in ITSs as it is known in AI area. This problem hinders the diffusion of ITSs. MCRDR is a well known knowledge acquisition methodology and mainly used in classification domain. MCRDR is used to acquire knowledge for the classification of learning materials (objects). The new ITS is used to develop a part of online education system for the people who learn English as a second language. Our experiment results show that the classification of learning materials can be more flexible and can be organized in multiple contexts.
机译:这项研究专注于智能补习系统(ITS)的知识获取(KA)。开发ITS的目的是在展示学习材料时提供很大的灵活性,并具有更大的能力来满足每个学生的需求。我们的系统旨在为希望积累分类知识的专家提供支持。基于规则的推理已在ITS中广泛使用。知识获取瓶颈是ITS中的一个主要问题,在AI领域众所周知。这个问题阻碍了ITS的普及。 MCRDR是一种众所周知的知识获取方法,主要用于分类领域。 MCRDR用于获取知识以对学习材料(对象)进行分类。新的ITS用于为学习英语作为第二语言的人们开发在线教育系统的一部分。我们的实验结果表明,学习材料的分类可以更加灵活,并且可以在多种情况下进行组织。

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