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Learning Analytics Models: A Brief Review

机译:学习分析模型:简要回顾

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摘要

The users of the World Wide Web produce data continuously. This happens in varied areas such as trading on line, product ratings, support and use of services, and many more, comprising Distance Education. The ever increasing amount of such data can make analysis and extraction of meaningful information progressively harder, and sophisticated analysis techniques are to be used to extract added value from data. Many companies do collection and analysis of data with the purpose to develop their marketing strategies. In the field of education, and Distance Education in particular, data collected through online Learning Management Systems (LMSs) can provide a great resource, and a strong challenge, for the analysis of learning processes, the design of training paths, and the updating and personalization of learning environments. While, on the one hand, there is an increasing demand by educational institutions to measure, demonstrate, and improve the results achieved in distance learning, on the other hand the logic of traditional reporting included in LMS platforms does not satisfy that growing need. Learning Analytics is the answer to the need for optimization of learning through the techniques of analysis of data produced by learning processes, involving all stakeholders of the system. In this paper we show and discuss a brief state of the art of models of Learning Analytics presented in the literature.
机译:万维网用户连续产生数据。这种情况发生在各个领域,例如在线交易,产品评级,支持和服务使用等,还包括远程教育。此类数据的数量不断增加,将使分析和提取有意义的信息变得越来越困难,并且将使用复杂的分析技术从数据中提取附加值。许多公司进行数据收集和分析是为了制定其营销策略。在教育领域,尤其是远程教育领域,通过在线学习管理系统(LMS)收集的数据可以为学习过程的分析,培训路径的设计以及更新和更新提供巨大的资源和强大的挑战。学习环境的个性化。一方面,教育机构对测量,演示和改善远程学习成果的需求日益增长,另一方面,LMS平台中包含的传统报告的逻辑无法满足这种增长的需求。学习分析是通过学习过程产生的数据分析技术(包括系统所有利益相关者)来解决学习优化需求的答案。在本文中,我们展示并讨论了文献中介绍的学习分析模型的简要介绍。

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