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Integrating Data Mining Technology into Web-based Autonomous Language Learning

机译:将数据挖掘技术集成到基于Web的自主语言学习中

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This paper attempts to integrate data mining technology into web-based autonomous language learning (WALL). WALL emphasizes learner autonomy and provides abundant resources for learner to choose freely, but it lacks the mechanism to provide customized and personalized guidance in accordance with each learner's preferences and characteristics. Through data mining on-line learning traces, we can discover some valuable information about the learners and their habitual use of teaching resources, based on which, some recommendations can be given to each learner by the system. It makes WALL more individualized and intelligent This paper presents the framework of this extended data mining system on WALL and describes in detail the functions and operations of each module, followed by the description of the basic algorithms of the central module. Finally, it confirms the feasibility and the far-reaching pedagogical implications of this data mining application.
机译:本文试图将数据挖掘技术集成到基于Web的自主语言学习(WALL)中。 WALL强调学习者的自主权,并为学习者提供自由选择的丰富资源,但是它缺乏根据每个学习者的喜好和特点提供个性化和个性化指导的机制。通过数据挖掘在线学习轨迹,我们可以发现有关学习者及其习惯性使用教学资源的一些有价值的信息,并在此基础上,系统可以为每个学习者提供一些建议。它使WALL更加个性化和智能化。本文介绍了在WALL上的扩展数据挖掘系统的框架,并详细描述了每个模块的功能和操作,然后描述了中央模块的基本算法。最后,它证实了此数据挖掘应用程序的可行性和深远的教学意义。

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