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A personalized learning content adaptation mechanism to meet diverse user needs in mobile learning environments

机译:个性化的学习内容适应机制,可满足移动学习环境中各种用户的需求

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摘要

With the heterogeneous proliferation of mobile devices, the delivery of learning materials on such devices becomes subject to more and more requirements. Personalized learning content adaptation, therefore, becomes increasingly important to meet the diverse needs imposed by devices, users, usage contexts, and infrastructure. Historical server logs offer a wealth of information on hardware capabilities, learners' preferences, and network conditions, which can be utilized to respond to a new user request with the personalized learning content created from a previous similar request. In this paper, we propose a Personalized Learning Content Adaptation Mechanism (PLCAM), which applies data mining techniques, including clustering and decision tree approaches, to efficiently manage a large number of historical learners' requests. The proposed method will intelligently and directly deliver proper personalized learning content with higher fidelity from the Sharable Content Object Reference Model (SCORM)-compliant Learning Object Repository (LOR) by means of the proposed adaptation decision and content synthesis processes. Furthermore, the experimental results indicate that it is efficient and is expected to prove beneficial to learners.
机译:随着移动设备的种类繁多,在此类设备上交付学习资料变得越来越需要。因此,个性化学习内容的适应对于满足设备,用户,使用环境和基础架构提出的各种需求变得越来越重要。历史服务器日志提供了有关硬件功能,学习者的喜好和网络状况的大量信息,这些信息可用于响应从先前类似请求创建的个性化学习内容来响应新用户请求。在本文中,我们提出了一种个性化的学习内容适应机制(PLCAM),该机制运用数据挖掘技术(包括聚类和决策树方法)来有效地管理大量历史学习者的请求。所提出的方法将通过所提出的自适应决策和内容合成过程,从可共享内容对象参考模型(SCORM)兼容的学习对象存储库(LOR)中,以更高的保真度智能,直接地提供适当的个性化学习内容。此外,实验结果表明它是有效的,并有望证明对学习者有益。

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