Towards an adaptive model to personalise open learning environments using learning styles

Heba A. Fasihuddin, G. Skinner, R. Athauda
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引用次数: 26

Abstract

Open learning represents a new form of online learning. It is based on providing courses, learning materials for free to be taken by any interested learner. The current model of open learning has certain limitations which provide potential for improvement. One such area is personalization in learning environments. One avenue to enhance learning experience in open learning environments is giving consideration to learning principles and cognitive science. This paper aims to introduce a proposal for an adaptive model to personalize the open learning environments based on the theory of learning styles and particularly the Felder and Silverman Learning Style Model (FSLSM). This model consists of two main agents to perform its functionalities. First, the identification agent which is responsible of identifying the learners' learning styles by monitoring certain determined patterns of learners' behaviors with learning objects while the learner interact with learning materials. Second, the recommender agent which is responsible of providing an adaptable navigational support based on the identified learning styles and preferences. The paper presents a description of the model and its functionalities including the patterns that can be monitored in open learning environments to identify the learning styles and also how the adaptation support can be provided based on the identified styles. Future implementation will test and verify this proposed model.
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朝着一个自适应的模式,使用学习风格个性化开放学习环境
开放式学习代表了一种新的在线学习形式。它的基础是为任何感兴趣的学习者免费提供课程和学习材料。目前的开放学习模式有一定的局限性,这提供了改进的潜力。其中一个领域就是学习环境的个性化。在开放学习环境中提高学习体验的一个途径是考虑学习原则和认知科学。本文旨在介绍一种基于学习风格理论,特别是费尔德和西尔弗曼学习风格模型(FSLSM)的个性化开放学习环境的自适应模型。该模型由两个主要代理组成,以执行其功能。首先,识别代理负责识别学习者的学习风格,通过监测学习者在与学习材料互动时对学习对象的特定行为模式来识别学习者的学习风格。第二,推荐代理,它负责根据识别的学习风格和偏好提供适应性导航支持。本文介绍了该模型及其功能的描述,包括可以在开放学习环境中监控的模式,以识别学习风格,以及如何根据识别的风格提供适应支持。未来的实现将测试和验证这个提议的模型。
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