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Improving CBR adaptation for recommendation of associated references in a knowledge-based learning assistant system

机译:在基于知识的学习助手系统中提高CBR适应性以推荐相关参考文献

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Case adaptation is a challenging phase of case-based reasoning (CBR) for recommendation of a matched case solution. Our proposed knowledge-based recommendation system analyzes the combination of visual and textual information in CBR medical system. In this paper a case-based reasoner uses medical expressions in a textual analysis to create word association profiles. Case-based Learning Assistant System (DePicT CLASS) finds significant references and learning materials by utilizing profile of words associations according to the problem description. This research proposes a new adaptation mechanism based on substitution, abstraction, and compositional method for collaborative recommendation in medical vocational educational training. The DePicT CLASS adaptation mechanism has a combination of value comparison based on requested word association profiles and manual adaptation based on user collaborative recommendation. In the adaptation process of the system, attract rate and adapt rate are defined and utilized for evaluating the adaptation results. Therefore, recommendation is a combination of references and learning materials with highest valued keyword association strength from the most similar cases. (C) 2017 Elsevier B.V. All rights reserved.
机译:案例适应是基于案例的推理(CBR)的一个具有挑战性的阶段,用于推荐匹配的案例解决方案。我们提出的基于知识的推荐系统分析了CBR医疗系统中视觉和文本信息的组合。在本文中,基于案例的推理机在文本分析中使用医学表达式来创建单词关联配置文件。基于案例的学习助手系统(DePicT CLASS)通过根据问题描述利用单词关联的概况来查找重要的参考资料和学习材料。这项研究提出了一种基于替代,抽象和组合方法的新适应机制,用于医学职业教育培训中的协作推荐。 DePicT CLASS适应机制将基于请求的单词关联配置文件的值比较与基于用户协作推荐的手动适应结合在一起。在系统的适应过程中,定义吸引率和适应率,并将其用于评估适应结果。因此,推荐是参考书和学习材料的组合,具有来自最相似情况的最高价值的关键字关联强度。 (C)2017 Elsevier B.V.保留所有权利。

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