A Personality-Based Virtual Tutor for Adaptive Online Learning System

M. Samonte, G. E. Acuna, L. A. Alvarez, Jeffrey Miraflores
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Abstract

E-learning has become one of the most extensively used electronic systems in the field of education. Despite its benefits, there are some capabilities and concerns that may have a negative impact on students’ performance. As a result, personalized e-learning systems are being developed, which adapt e-learning systems to the users’ personality, knowledge, behavior, interests, or preferences. This will improve the overall learning experience and performance of the students. This study created and tested an e-learning system, called “Cybele” to help students learn cybersecurity in an online mode of learning. “Cybele” is a personality-based virtual instructor for cybersecurity online learning that includes a chatbot built using Rasa Open Source. The paper used Myers-Briggs Type Indicator (MBTI) personality model for initial learner assessment to address various student learning styles for a better online learning experience. Testing was done for the system functionality and the traditional learning approach was compared to the personalized e-learning system. Results show that students who participated in the developed adaptive e-learning environment performed better than those who pursue the traditional learning method.
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基于个性的自适应在线学习系统虚拟导师
电子学习已成为教育领域应用最广泛的电子系统之一。尽管它有好处,但也有一些能力和担忧可能会对学生的表现产生负面影响。因此,个性化的电子学习系统正在被开发,它使电子学习系统适应用户的个性、知识、行为、兴趣或偏好。这将提高学生的整体学习体验和表现。这项研究创建并测试了一个名为“Cybele”的电子学习系统,以帮助学生在在线学习模式下学习网络安全。“Cybele”是一个基于个性的网络安全在线学习虚拟讲师,其中包括一个使用Rasa开源构建的聊天机器人。本文采用Myers-Briggs类型指标(MBTI)人格模型对学习者进行初步评估,以解决学生的不同学习风格,从而获得更好的在线学习体验。对系统功能进行了测试,并将传统的学习方法与个性化的电子学习系统进行了比较。结果表明,参与开发的自适应网络学习环境的学生比采用传统学习方法的学生表现更好。
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CiteScore
2.80
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0.00%
发文量
120
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