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Advanced machine learning approaches to personalise learning: learning analytics and decision making

机译:个性化学习的先进机器学习方法:学习分析和决策

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摘要

The aim of the paper is to present methodology to personalise learning using learning analytics and to make further decisions on suitability, acceptance and use of personalised learning units. In the paper, first of all, related research review is presented. Further, an original methodology to personalise learning applying learning analytics in virtual learning environments and empirical research results are presented. Using this learning personalisation methodology, decision-making model and method are proposed to evaluate suitability, acceptance and use of personalised learning units. Personalised learning units evaluation methodology presented in the paper is based on (1) well-known principles of Multiple Criteria Decision Analysis for identifying evaluation criteria; (2) Educational Technology Acceptance & Satisfaction Model (ETAS-M) based on well-known Unified Theory on Acceptance and Use of Technology (UTAUT) model, and (3) probabilistic suitability indexes to identify learning components' suitability to particular students' needs according to their learning styles. In the paper, there are also examples of implementing the methodology using different weights of evaluation criteria. This methodology is applicable in real life situations where teachers have to help students to create and apply learning units that are most suitable for their needs and thus to improve education quality and efficiency.
机译:本文的目的是呈现使用学习分析来个性化学习的方法,并进一步决定个性化学习单位的适用性,接受和使用。在本文中,首先,提出了相关的研究审查。此外,介绍了在虚拟学习环境中应用学习的原始方法,以在虚拟学习环境中应用学习分析和经验研究结果。使用该学习个性化方法,提出了决策模型和方法来评估个性化学习单位的适用性,接受和使用。本文提出的个性化学习单位评估方法是基于(1)识别评估标准的多标准决策分析的公知原则; (2)教育技术验收与满意模型(ETAS-M)基于众所周知的统一理论,了解技术(UTAUT)模型,(3)概率适用性指标,以确定学习组件对特定学生需求的适用性根据他们的学习方式。在本文中,还存在使用不同权重的评估标准实现方法的示例。这种方法适用于现实生活中,教师必须帮助学生创建和应用最适合其需求的学习单位,从而提高教育质量和效率。

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